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WO2007047736A2 - Multi-view video coding using scalable video coding - Google Patents

Multi-view video coding using scalable video coding Download PDF

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Publication number
WO2007047736A2
WO2007047736A2 PCT/US2006/040658 US2006040658W WO2007047736A2 WO 2007047736 A2 WO2007047736 A2 WO 2007047736A2 US 2006040658 W US2006040658 W US 2006040658W WO 2007047736 A2 WO2007047736 A2 WO 2007047736A2
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WO
WIPO (PCT)
Prior art keywords
view
base layer
enhancement layer
layer
prediction
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PCT/US2006/040658
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French (fr)
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WO2007047736A3 (en
Inventor
Peng Yin
Christina Gomila
Yeping Su
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Thomson Licensing
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Publication date
Application filed by Thomson Licensing filed Critical Thomson Licensing
Priority to JP2008536753A priority Critical patent/JP5587552B2/en
Priority to EP06817105A priority patent/EP1946563A2/en
Priority to US11/992,721 priority patent/US9131247B2/en
Priority to CN2006800384594A priority patent/CN101292538B/en
Priority to BRPI0616745-4A priority patent/BRPI0616745A2/en
Publication of WO2007047736A2 publication Critical patent/WO2007047736A2/en
Publication of WO2007047736A3 publication Critical patent/WO2007047736A3/en
Priority to KR1020087009327A priority patent/KR101475527B1/en

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/60Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using transform coding
    • H04N19/61Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using transform coding in combination with predictive coding
    • H04N19/615Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using transform coding in combination with predictive coding using motion compensated temporal filtering [MCTF]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N13/00Stereoscopic video systems; Multi-view video systems; Details thereof
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/30Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using hierarchical techniques, e.g. scalability
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/30Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using hierarchical techniques, e.g. scalability
    • H04N19/31Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using hierarchical techniques, e.g. scalability in the temporal domain
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/30Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using hierarchical techniques, e.g. scalability
    • H04N19/33Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using hierarchical techniques, e.g. scalability in the spatial domain
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/30Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using hierarchical techniques, e.g. scalability
    • H04N19/36Scalability techniques involving formatting the layers as a function of picture distortion after decoding, e.g. signal-to-noise [SNR] scalability
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/46Embedding additional information in the video signal during the compression process
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/50Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using predictive coding
    • H04N19/597Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using predictive coding specially adapted for multi-view video sequence encoding
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/60Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using transform coding
    • H04N19/61Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using transform coding in combination with predictive coding
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/60Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using transform coding
    • H04N19/63Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using transform coding using sub-band based transform, e.g. wavelets
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/90Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using coding techniques not provided for in groups H04N19/10-H04N19/85, e.g. fractals
    • H04N19/91Entropy coding, e.g. variable length coding [VLC] or arithmetic coding

Definitions

  • the present invention generally relates to video encoding and decoding and, more particularly, to a method and apparatus for Multi-view Video Coding (MVC) using scalable video coding.
  • MVC Multi-view Video Coding
  • Stereoscopic video also referred to as three dimensional (3-D) video, creates the illusion of depth for displayed images.
  • One method for creating depth perception is to display two different two dimensional (2-D) images, where each image represents two perspectives of the same object, similar to the perspectives that both eyes naturally receive in binocular vision.
  • MVP Multi-View Profile
  • ISO/IEC International Organization for Standardization/International Electrotechnical Commission
  • MPEG-2 Moving Picture Experts Group-2
  • MVP relies on a multi-layer signal representation approach such that one view (often the left view) is assigned to a base layer, and the other view is assigned to an enhancement layer.
  • Monoscopic coding with the same tools as Main Profile (MP) is applied to the base layer.
  • the enhancement layer is coded using temporal scalability tools and a hybrid prediction of motion and disparity fields.
  • stereoscopic video coding can be performed in two different ways: (i) as a particular case of interlaced image coding, where all the fields of a particular parity are assigned to the left view and all the fields of the opposite parity are considered the right view of the stereo-view content; or alternatively (ii) by alternating frames from the left and rights views to create a single monoscopic video sequence.
  • a stereovision supplemental enhancement information (SEI) message provides an indication to the decoder of whether or not the coded video sequence represents stereoscopic content and which method was used to encode the corresponding content.
  • video object syntax includes so-called multiple auxiliary components (MAC), which are coded as gray-level images using motion-compensated DCT.
  • Motion vectors of a video object will be used for the motion compensation of its auxiliary components.
  • One utility of auxiliary components is to code depth or disparity map data.
  • auxiliary components must have the same size as the luminance component of the video object.
  • the previous method shows an improved performance compared to MPEG-2 MVP.
  • the MPEG-4 Part 2 standard has not been successfully deployed in the industry because of the superior coding gains of MPEG-4 part 10 and the high complexity of the proposed object oriented coding methods.
  • the scalable video encoder includes an encoder for encoding at least two views corresponding to multi-view video content by, encoding a particular view of the at least two views as a base layer, and encoding each of at least one other view of the at least two views as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view.
  • the at least two views are encoded based on a selection from among at least two of temporal, spatial, and signal to noise ratio scalability techniques.
  • a method for scalable video encoding includes encoding at least two views corresponding to multi-view video content by, encoding a particular view of the at least two views as a base layer, and encoding each of at least one other view of the at least two views as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view.
  • the at least two views are encoded based on a selection from among at least two of temporal, spatial, and signal to noise ratio scalability techniques.
  • a scalable video decoder for scalable video decoding.
  • the scalable video decoder includes a decoder for decoding at least two views corresponding to multi-view video content by, decoding a particular view of the at least two views as a base layer, and decoding each of at least one other view of the at least two views as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view.
  • the at least two views are decoded based on a selection from among at least two of temporal, spatial, and signal to noise ratio scalability techniques.
  • a method for scalable video decoding includes decoding at least two views corresponding to multi-view video content by, decoding a particular view of the at least two views as a base layer, and decoding each of at least one other view of the at least two views as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view.
  • the at least two views are decoded based on a selection from among at least two of temporal, spatial, and signal to noise ratio scalability techniques.
  • a video signal structure for scalable video encoding is provided.
  • the video signal structure includes a particular view of at least two views encoded as a base layer, and at least one other view of the at least two views encoded as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view.
  • the at least two views correspond to multi-view video content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
  • a storage media having scalable video signal data encoded thereupon.
  • the scalable video signal data includes a particular view of at least two views encoded as a base layer, and at least one other view of the at least two views encoded as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view.
  • the at least two views correspond to multi-view video content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
  • a scalable video encoder includes an encoder for encoding a first stereoscopic view as a base layer, and encoding at least one of a depth map and a disparity map as an enhancement layer using a prediction from the first stereoscopic view.
  • the first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
  • a method for scalable video encoding includes encoding a first stereoscopic view as a base layer, encoding at least one of a depth map and a disparity map as an enhancement layer using a prediction from the first stereoscopic view.
  • the first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
  • a scalable video decoder there is provided.
  • the scalable video decoder includes a decoder for decoding a first stereoscopic view from a base layer, and decoding at least one of a depth map and a disparity map from an enhancement layer using a prediction from the first stereoscopic view.
  • the first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are decoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
  • a method for scalable video decoding includes decoding a first stereoscopic view from a base layer, and decoding at least one of a depth map and a disparity map from an enhancement layer using a prediction from the first stereoscopic view.
  • the first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are decoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
  • a video signal structure for scalable video encoding.
  • the video signal structure includes a first stereoscopic view encoded as a base layer, and at least one of a depth map and a disparity map encoded as enhancement layer to allow a prediction from the first stereoscopic view.
  • the first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
  • a storage media having scalable video signal data encoded thereupon.
  • the scalable video signal data includes a first stereoscopic view encoded as a base layer, and at least one of a depth map and a disparity map encoded as enhancement layer to allow a prediction from the first stereoscopic view.
  • the first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
  • FIG. 1 shows a block diagram for an exemplary Joint Scalable Video Model (JSVM) 3.0 encoder to which the present principles may be applied;
  • JSVM Joint Scalable Video Model
  • FIG. 2 shows a block diagram for an exemplary decoder to which the present principles may be applied
  • FIG. 3 is a diagram for an exemplary macroblock mapping for inter-layer prediction in SVC spatial scalability for a scaling factor equal to 1/2 for each dimension;
  • FIG. 4 is a diagram for a method for scalable video encoding capable of encoding a pair of stereoscopic views of stereoscopic content in accordance with an exemplary first embodiment of the present principles;
  • FIG. 5 is a diagram for a method for scalable video decoding capable of decoding a pair of stereoscopic views of stereoscopic content in accordance with the exemplary first embodiment of the present principles
  • FIG. 6 is a diagram for a method for scalable video encoding capable of encoding a pair of stereoscopic views of stereoscopic content in accordance with an exemplary second embodiment of the present principles
  • FIG. 7 is a diagram for a method for scalable video decoding capable of decoding a pair of stereoscopic views of stereoscopic content in accordance with the exemplary second embodiment of the present principles
  • FIG. 8 is a scalable video coding method for encoding a macroblock in an enhancement layer in accordance with an exemplary embodiment of the present principles.
  • FIG. 9 is a scalable video decoding method for decoding a macroblock in an enhancement layer in accordance with an exemplary embodiment of the present principles.
  • the present invention is directed to a method and apparatus for Multi-view Video Coding (MVC) using scalable video coding.
  • MVC Multi-view Video Coding
  • the exemplary embodiments of the present invention are described with respect to stereoscopic (two-view) video content.
  • one of ordinary skill in this and related arts will be able to readily extend the present principles to multi-view video content, corresponding to two or more views, while maintaining the scope of the present invention.
  • processor or “controller” should not be construed to refer exclusively to hardware capable of executing software, and may implicitly include, without limitation, digital signal processor (“DSP”) hardware, read-only memory (“ROM”) for storing software, random access memory (“RAM”), and non-volatile storage.
  • DSP digital signal processor
  • ROM read-only memory
  • RAM random access memory
  • any switches shown in the figures are conceptual only. Their function may be carried out through the operation of program logic, through dedicated logic, through the interaction of program control and dedicated logic, or even manually, the particular technique being selectable by the implementer as more specifically understood from the context.
  • any element expressed as a means for performing a specified function is intended to encompass any way of performing that function including, for example, a) a combination of circuit elements that performs that function or b) software in any form, including, therefore, firmware, microcode or the like, combined with appropriate circuitry for executing that software to perform the function.
  • the invention as defined by such claims resides in the fact that the functionalities provided by the various recited means are combined and brought together in the manner which the claims call for. It is thus regarded that any means that can provide those functionalities are equivalent to those shown herein.
  • JSVM3.0 Joint Scalable Video Model Version 3.0
  • the JSVM3.0 encoder 100 uses three spatial layers and motion compensated temporal filtering.
  • the JSVM encoder 100 includes a two-dimensional (2D) decimator 104, a 2D decimator 106, and a motion compensated temporal filtering (MCTF) module 108, each having an input for receiving video signal data 102.
  • 2D two-dimensional decimator
  • MCTF motion compensated temporal filtering
  • An output of the 2D decimator 106 is connected in signal communication with an input of a MCTF module 110.
  • a first output of the MCTF module 110 is connected in signal communication with an input of a motion coder 112, and a second output of the MCTF module 110 is connected in signal communication with an input of a prediction module 116.
  • a first output of the motion coder 112 is connected in signal communication with a first input of a multiplexer 114.
  • a second output of the motion coder 112 is connected in signal communication with a first input of a motion coder 124.
  • a first output of the prediction module 116 is connected in signal communication with an input of a spatial transformer 118.
  • An output of the spatial transformer 118 is connected in signal communication with a second input of the multiplexer 114.
  • a second output of the prediction module 116 is connected in signal communication with an input of an interpolator 120.
  • An output of the interpolator is connected in signal communication with a first input of a prediction module 122.
  • a first output of the prediction module 122 is connected in signal communication with an input of a spatial transformer 126.
  • An output of the spatial transformer 126 is connected in signal communication with the second input of the multiplexer 114.
  • a second output of the prediction module 122 is connected in signal communication with an input of an interpolator 130.
  • An output of the interpolator 130 is connected in signal communication with a first input of a prediction module 134.
  • An output of the prediction module 134 is connected in signal communication with a spatial transformer 136.
  • An output of the spatial transformer is connected in signal communication with the second input of a multiplexer 114.
  • An output of the 2D decimator 104 is connected in signal communication with an input of a MCTF module 128.
  • a first output of the MCTF module 128 is connected in signal communication with a second input of the motion coder 124.
  • a first output of the motion coder 124 is connected in signal communication with the first input of the multiplexer 114.
  • a second output of the motion coder 124 is connected in signal communication with a first input of a motion coder 132.
  • a second output of the MCTF module 128 is connected in signal communication with a second input of the prediction module 122.
  • a first output of the MCTF module 108 is connected in signal communication with a second input of the motion coder 132.
  • An output of the motion coder 132 is connected in signal communication with the first input of the multiplexer 114.
  • a second output of the MCTF module 108 is connected in signal communication with a second input of the prediction module 134.
  • An output of the multiplexer 114 provides an output bitstream 138.
  • a motion compensated temporal decomposition is performed for each spatial layer.
  • This decomposition provides temporal scalability.
  • Motion information from lower spatial layers can be used for prediction of motion on the higher layers.
  • texture encoding spatial prediction between successive spatial layers can be applied to remove redundancy.
  • the residual signal resulting from intra prediction or motion compensated inter prediction is transform coded.
  • a quality base layer residual provides minimum reconstruction quality at each spatial layer.
  • This quality base layer can be encoded into an H.264 standard compliant stream if no inter-layer prediction is applied.
  • quality enhancement layers are additionally encoded. These enhancement layers can be chosen to either provide coarse or fine grain quality (SNR) scalability.
  • an exemplary scalable video decoder to which the present invention may be applied is indicated generally by the reference numeral 200.
  • An input of a demultiplexer 202 is available as an input to the scalable video decoder 200, for receiving a scalable bitstream.
  • a first output of the demultiplexer 202 is connected in signal communication with an input of a spatial inverse transform SNR scalable entropy decoder 204.
  • a first output of the spatial inverse transform SNR scalable entropy decoder 204 is connected in signal communication with a first input of a prediction module 206.
  • An output of the prediction module 206 is connected in signal communication with a first input of an inverse MCTF module 208.
  • a second output of the spatial inverse transform SNR scalable entropy decoder 204 is connected in signal communication with a first input of a motion vector (MV) decoder 210.
  • An output of the MV decoder 210 is connected in signal communication with a second input of the inverse MCTF module 208.
  • a second output of the demultiplexer 202 is connected in signal communication with an input of a spatial inverse transform SNR scalable entropy decoder 212.
  • a first output of the spatial inverse transform SNR scalable entropy decoder 212 is connected in signal communication with a first input of a prediction module 214.
  • a first output of the prediction module 214 is connected in signal communication with an input of an interpolation module 216.
  • An output of the interpolation module 216 is connected in signal communication with a second input of the prediction module 206.
  • a second output of the prediction module 214 is connected in signal communication with a first input of an inverse MCTF module 218.
  • a 212 is connected in signal communication with a first input of an MV decoder 220.
  • a first output of the MV decoder 220 is connected in signal communication with a second input of the MV decoder 210.
  • a second output of the MV decoder 220 is connected in signal communication with a second input of the inverse MCTF module 218.
  • a third output of the demultiplexer 202 is connected in signal communication with an input of a spatial inverse transform SNR scalable entropy decoder 222.
  • a first output of the spatial inverse transform SNR scalable entropy decoder 222 is connected in signal communication with an input of a prediction module 224.
  • a first output of the prediction module 224 is connected in signal communication with an input of an interpolation module 226.
  • An output of the interpolation module 226 is connected in signal communication with a second input of the prediction module 214.
  • a second output of the prediction module 224 is connected in signal communication with a first input of an inverse MCTF module 228.
  • a second output of the spatial inverse transform SNR scalable entropy decoder 222 is connected in signal communication with an input of an MV decoder 230.
  • a first output of the MV decoder 230 is connected in signal communication with a second input of the MV decoder 220.
  • a second output of the MV decoder 230 is connected in signal communication with a second input of the inverse MCTF module 228.
  • An output of the inverse MCTF module 228 is available as an output of the decoder 200, for outputting a layer 0 signal.
  • An output of the inverse MCTF module 218 is available as an output of the decoder 200, for outputting a layer 1 signal.
  • An output of the inverse MCTF module 208 is available as an output of the decoder 200, for outputting a layer 2 signal.
  • Intra and inter macroblocks can be predicted using the corresponding signals of previous layers.
  • motion description of each layer can be used for a prediction of the motion description for following enhancement layers.
  • H.264 SVC Scalable Video Coding
  • SVC Scalable Video Coding
  • a new message, indicator, or the like (for example, a Supplemental Enhancement Information (SEI) message) is used to indicate the SVC bitstream is used for stereoscopic video coding.
  • SEI Supplemental Enhancement Information
  • coding both views of a stereoscopic image pair in a scalable video coding scheme is performed by coding one view as base layer, and coding the second view in an enhancement layer.
  • a major difference between the present principles and MPEG-2 MVP scheme is that the present principles do not require the two views to be coded using only temporal scalability. Therefore, in accordance with the present principles, the stereoscopic views may be coded (and therefore later decoded) as temporal, spatial, or SNR scalability, depending on the demands and efficiencies available for a specific application requirement. For example, temporal scalability is more suitable when we need the most coding efficiency. Spatial/SNR scalability are more suitable when a corresponding application can benefit from different spatial resolution/quality between two views.
  • WP Weighted Prediction
  • a new supplemental enhancement information (SEI) message is provided that supports the exemplary first embodiment described herein and specifies which view corresponds to the base layer.
  • the SEI message is shown in Table 1. For example, when base_layerjsjeft_view_flag is equal to 1 , this indicates that the left view is coded in the base layer. Conversely, when basejayer_is_left_view_flag is equal to 0, this indicates that the right view is coded in the base layer.
  • one view is coded and a depth and/or disparity map in used in the enhancement layer to support a conventional non-stereo display to be able to decode the video without decoding the depth maps.
  • a depth and/or disparity map in used in the enhancement layer to support a conventional non-stereo display to be able to decode the video without decoding the depth maps.
  • the transmitted metadata may include two parameters (Nknear, Nkfar) as shown in Table 2. With these two parameters and the depth map, the correct pixel parallax can be calculated and will result in the intended depth effect on the display as seen by the viewer. Nknear specifies the knear ratio parameter normalized to 128 that shall be applied to calculate the screen parallel of a newly rendered view.
  • Nkfar specifies the kfar ratio parameter normalized to 32 that shall be applied to calculate the screen parallel of a newly rendered view.
  • One major problem of using a depth map and one coded view (e.g., the left view) to construct the other non-transmitted view (e.g., the right view) is that areas which are occluded in the left view might be visible in the right view. This might create holes in the right view.
  • Another problem is that because the left view and the depth map are lossy coded, errors may exist between the reconstructed right view and the original right view.
  • an additional SNR layer can be added. The additional SNR layer should be combined with the SEI message, so the decoder will know that the refinement is based on the reconstructed non-coded view.
  • inter-layer prediction is used to support resolution scaling less than one.
  • (1 ) mixed-block processing (2) macroblock type mapping; (3) motion vector scaling; 4) texture scaling.
  • New and/or prior techniques including those relating to spatial resolution transcoding, may be used to address these issues.
  • SVC Joint Scalable Video Model 3
  • an exemplary macroblock mapping for inter-layer prediction in SVC spatial scalability for a scaling factor equal to 1/2 for each dimension is indicated generally by the reference numeral 300.
  • one macroblock in the enhancement layer corresponds to four macroblocks in the base layer. Since those four macroblocks may have different intra/inter modes and SVC does not allow mixing modes in one macroblock, we need to decide what mode should be used for the macroblock in the enhancement layer in inter-layer prediction.
  • MVs motion vectors
  • DCT discrete cosine transform
  • depth/disparity map is contemplated to refer to one or more depth maps and/or one or more disparity maps.
  • FIGs. 4 and 5 correspond to the first exemplary embodiment of the present principles.
  • the method 400 includes a start block 405 that passes control to a decision block 410.
  • the decision block 410 determines whether or not to code a left view of the stereoscopic content as a base layer. If so, then control is passed to a function block 415. Otherwise, control is passed to a function block 425.
  • the function block 415 sets a basejayer_is_left_view_flag equal to one, writes the basejayer_is_left_view_flag in a supplemental enhancement information (SEI) message, and passes control to a function block 420.
  • SEI Supplemental Enhancement Information
  • the function block 425 sets the _base_layer_is_left_view_flag equal to zero, writes the base_layer_is_left_view_flag in the SEI message, and passes control to a function block 430.
  • the function block 430 codes the right view as the base layer and the left view as the enhancement layer using SNR, spatial, and/or temporal scalability, and passes control to the end block 435.
  • the method 500 includes a start block 505 that passes control to a function block 510.
  • the function block parses the basejayer_is_left_yiew_flag in the SEI message, and passes control to a decision block 515.
  • the decision block 515 determines whether or not the base_layer_isjeft_view_flag is equal to one. If so, then control is passed to a function block 520. Otherwise, control is passed to a function block 525.
  • the function block 520 decodes the left view from the base layer and the right view from the enhancement layer using SNR, spatial, and/or temporal scalability, and passes control to an end block 599.
  • the function block 525 decodes the right view from the base layer and the left view from the enhancement layer using SNR, spatial, and/or temporal scalability, and passes control to the end block 599.
  • FIGs. 6 and 7 correspond to the second exemplary embodiment of the present principles.
  • a method for scalable video encoding capable of encoding a pair of stereoscopic views of stereoscopic content is indicated generally by the reference numeral 600.
  • the method 600 includes a start block 605 that passes control to a function block 610.
  • the function block 610 codes one view of the stereoscopic content as a base layer and codes a depth/disparity map corresponding to the stereoscopic video as an enhancement layer using SNR, spatial, and/or temporal scalability, and passes control to a function block 615.
  • the function block 615 writes depth parameters in the SEI message, and passes control to a function block 620.
  • the function block 620 reconstructs another (non-coded) view of the stereoscopic content using reconstructed video from the base layer, a reconstructed depth/disparity map from the enhancement layer and depth parameters from the SEI message, and passes control to a function block 625.
  • the function block 625 codes an additional SNR layer based on the reconstructed non-coded view, and passes control to an end block 630.
  • FIG. 7 a method for scalable video decoding capable of decoding a pair of stereoscopic views of stereoscopic content is indicated generally by the reference numeral 700.
  • the method 700 includes a start block 705 that passes control to a function block 710.
  • the function block 710 decodes one stereoscopic view of stereoscopic content from the base layer, decodes a depth/disparity map from the enhancement layer, using SNR, spatial and/or temporal scalability, and passes control to a function block 715.
  • the function block 715 parses depth messages from the SEI message, and passes control to a function block 720.
  • the function block 720 reconstructs another stereoscopic (non-coded) view as the base layer using reconstructed video from the base layer, reconstructed depth/disparity map from the enhancement layer, and depth parameters from the SEI message, and passes control to a function block 725.
  • the function block 725 decodes an additional SNR layer based on the reconstructed non-coded view, forms a refined non-coded view, and passes control to an end block 730.
  • a scalable video coding method for encoding a macroblock in an enhancement layer is indicted generally by the reference numeral 800.
  • the method 800 includes a start block 805 that passes control to a decision block 810.
  • the decision block 810 determines whether or not to use inter-layer prediction. If so, then control is passed to a decision block 815. Otherwise, control is passed to a function block 855.
  • the decision block 815 determines whether or not to use inter-layer intra texture prediction. If so, then control is passed to a decision block 820. Otherwise, control is passed to a decision block 830. The decision block 820 determines whether or not to use weighted prediction. If so, then control is passed to a function block 825. Otherwise, control is passed to a function block 840.
  • the function block 825 codes a different between the macroblock in the enhancement layer and a weighted macroblock scaled from a set of mapped macroblocks in the base layer, and passes control to the decision block 830.
  • the decision block 830 determines whether or not to use inter-layer motion vector prediction. If so, then control is passed to a function block 835. Otherwise, control is passed to a decision block 845.
  • the function block 835 performs mode mapping and motion vector mapping, and passes control to the decision block 845.
  • the decision block 845 determines whether or not inter-layer residue prediction. If so, then control is passed to a function block 850. Otherwise, control is passed to the function block 855.
  • the function block 850 performs mode mapping and residue mapping, and passes control to the function block 855.
  • function block 850 may involve setting the spatial scaling factor equal to 2 (" ⁇ ) , n being an integer greater than zero, and performing averaging for texture downsampling of residues corresponding to the at least some blocks (850).
  • the function block 855 encodes the macroblock, and passes control to an end block 860.
  • the function block 840 codes a difference between the macroblock in the enhancement layer and a macroblock scaled from a set of mapped macroblocks in the base layer, and passes control to the decision block 830.
  • function block 855 may involve constraining a spatial scaling factor to be equal to or less than one, when the spatial scalability technique is selected
  • function blocks 835, 850, and/or 855 may involve, e.g., setting a spatial scaling factor equal to 2 ("n) , n being an integer greater than zero, performing a many-to-one block mapping from the base layer to the enhancement layer, converting blocks in the base layer having an intra prediction mode to an inter- prediction mode, and forcing motion vectors and discrete cosine transform coefficients in the intra-prediction mode to be zero.
  • function blocks 835 and/or 855 may involve, e.g., mapping a motion vector for a block in the enhancement layer to a scaled motion vector of a corner of a corresponding mapped block from a set of mapped blocks in the base layer, and assigning a reference index for the block in the enhancement layer to that of the corner of the corresponding mapped block in the base layer, the block in the enhancement layer being co-located with respect to the set of mapped blocks in the base layer.
  • function blocks 850 and/or 855 may involve setting the spatial scaling factor equal to 2 (' ⁇ ) , n being an integer greater than zero, and performing averaging for texture downsampling of residues.
  • a scalable video decoding method for decoding a macroblock in an enhancement layer is indicated generally by the reference numeral 900.
  • the method 900 includes a start block 905 that passes control to a function block 910.
  • the function block 910 parses syntax for the macroblock, and passes control to a decision block 915.
  • the decision block 915 determines whether or not an inter-layer prediction flag is equal to one. If so, then control is passed to a decision block 920. Otherwise, control is passed to a function block 960.
  • the decision block 920 determines whether or not an inter-lay intra texture prediction flag is equal to one. If so, then control is passed to a decision block 925. Otherwise, control is passed to a decision block 935.
  • the decision block 925 determines whether or not a weighted prediction flag is equal to one. If so, then control is passed to a function block 930. Otherwise, control is passed to a function block 945.
  • the function block 930 decodes the difference between the macroblock in the enhancement layer and a weighted macroblock scaled from a set of mapped macroblocks in the base layer, and passes control to a decision block 935.
  • the decision block 935 determines whether or not an inter-layer motion vector prediction flag is equal to one. If so, then control is passed to a function block 940. Otherwise, control is passed to a decision block 950.
  • the function block 940 performs mode mapping and motion vector mapping, and passes control to the decision block 950.
  • the decision block 950 determines whether or not an inter-layer residue prediction flag is equal to one. If so, then control is passed to a function block 955. Otherwise, control is passed to a function block 960.
  • the function block 955 performs mode mapping and residue mapping, and passes control to the function block 960.
  • the function block 960 decodes the macroblock, and passes control to an end block 965.
  • the function block 945 decodes the difference between the macroblock in the enhancement layer and a macroblock scaled from a set of mapped macroblocks in the base layer, and passes control to the decision block 935.
  • one advantage/feature is scalable video encoder including an encoder for encoding at least two views corresponding to multi-view video content by, encoding a particular view of the at least two views as a base layer, and encoding each of at least one other view of the at least two views as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view.
  • the at least two views are encoded based on a selection from among at least two of temporal, spatial, and signal to noise ratio scalability techniques.
  • Another advantage/feature is the scalable video encoder as described above, wherein the base layer and the enhancement layer are included a video bitstream, and the encoder adds an indicator in a message signaling the video bitstream.
  • the indicator is for indicating that the video bitstream includes multi-view video signals.
  • Yet another advantage/feature is the scalable video encoder that adds the indicator in a message as described above, wherein the message is a Supplemental Enhancement Information (SEI) message.
  • SEI Supplemental Enhancement Information
  • another advantage/feature is the scalable video encoder that adds the indicator in a message as described above, wherein the message is sent out of band. Further, another advantage/feature is the scalable video encoder that adds the indicator in a message as described above, wherein the indicator is provided as metadata.
  • another advantage/feature is the scalable video encoder that adds the indicator in a message as described above, wherein the indicator specifies one of the particular view or the at least one other view as being encoded in one of the base layer or the enhancement layer.
  • another advantage/feature is the scalable video encoder as described above, wherein the temporal, spatial, and signal to noise ratio scalability techniques are performed in compliance with the Scalable Video Coding Extension of the International Organization for Standardization/International Electrotechnical Commission Moving Picture Experts Group-4 Part 10 Advanced Video Coding standard/International Telecommunication Union, Telecommunication Sector H.264 standard.
  • another advantage/feature is the scalable video encoder as described above, wherein the encoder constrains a spatial scaling factor to be equal to or less than one, when the spatial scalability technique is selected.
  • another advantage/feature is the scalable video encoder that constrains the spatial scaling factor as described above, wherein the encoder encodes at least some blocks in the base layer and the enhancement layer using inter-layer prediction, by setting the spatial scaling factor equal to 2 (" ⁇ ) , n being an integer greater than zero, performing a many-to-one block mapping from the base layer to the enhancement layer, converting any of the at least some blocks in the base layer having an intra prediction mode to an inter-prediction mode, and forcing motion vectors and discrete cosine transform coefficients in the intra-prediction mode to be zero.
  • another advantage/feature is the scalable video encoder that encodes at least some blocks in the base layer and the enhancement layer using inter-layer prediction as described above, wherein the encoder maps a motion vector for a block in the enhancement layer to a scaled motion vector of a corner of a corresponding mapped block from a set of mapped blocks in the base layer, and assigns a reference index for the block in the enhancement layer to that of the corner of the corresponding mapped block in the base layer, the block in the enhancement layer and the set of mapped blocks in the base layer included in the at least some blocks, the block in the enhancement layer being co-located with respect to the set of mapped blocks in the base layer.
  • another advantage/feature is the scalable video encoder that constrains the spatial scaling factor as described above, wherein the encoder encodes at least some blocks in the base layer and the enhancement layer by setting the spatial scaling factor equal to 2 ("n) , n being an integer greater than zero, and performing averaging for texture downsampling of residues corresponding to the at least some blocks.
  • another advantage/feature is the scalable video encoder as described above, wherein the at least two views are encoded by enabling weighted prediction for cross view prediction between the particular view and the at least one other view.
  • another advantage/feature is the scalable video encoder that encodes the at least two views by enabling cross view prediction as described above, wherein the weighted prediction is enabled when coding a difference between a macroblock in the enhancement layer and a weighted macroblock scaled from a set of mapped macroblocks in the base layer, the macroblock in the enhancement layer being co- located with respect to the set of mapped macroblocks in the base layer.
  • another advantage/feature is the scalable video encoder as described above, wherein the at least two views correspond to a pair of stereoscopic views, with one view of the pair being encoded as the base layer and another view of the pair being encoded as the enhancement layer using a prediction from the base layer.
  • teachings of the present invention may be implemented in various forms of hardware, software, firmware, special purpose processors, or combinations thereof. Most preferably, the teachings of the present invention are implemented as a combination of hardware and software.
  • the software is preferably implemented as an application program tangibly embodied on a program storage unit.
  • the application program may be uploaded to, and executed by, a machine comprising any suitable architecture.
  • the machine is implemented on a computer platform having hardware such as one or more central processing units (“CPU"), a random access memory (“RAM”), and input/output (“I/O”) interfaces.
  • CPU central processing units
  • RAM random access memory
  • I/O input/output
  • the computer platform may also include an operating system and microinstruction code.
  • the various processes and functions described herein may be either part of the microinstruction code or part of the application program, or any combination thereof, which may be executed by a CPU.
  • various other peripheral units may be connected to the computer platform such as an additional data storage unit and a printing unit.

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Abstract

There are provided methods and apparatus for stereoscopic video coding using scalable video coding. A scalable video encoder includes an encoder (100) for encoding at least two views corresponding to multi-view video content by, encoding a particular view of the at least two views as a base layer, and encoding each of at least one other view of the at least two views as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view. The at least two views are encoded based on a selection from among at least two of temporal, spatial, and signal to noise ratio scalability techniques.

Description

MULTI-VIEW VIDEO CODING USING SCALABLE VIDEO CODING
CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Application Serial
No. 60/728,141 , filed October 19, 2005 and entitled "METHOD AND APPARATUS FOR STEREOSCOPIC VIDEO USING SCALABLE VIDEO CODEC," which is incorporated by reference herein in its entirety.
FIELD OF THE INVENTION
The present invention generally relates to video encoding and decoding and, more particularly, to a method and apparatus for Multi-view Video Coding (MVC) using scalable video coding.
BACKGROUND OF THE INVENTION
Stereoscopic video, also referred to as three dimensional (3-D) video, creates the illusion of depth for displayed images. One method for creating depth perception is to display two different two dimensional (2-D) images, where each image represents two perspectives of the same object, similar to the perspectives that both eyes naturally receive in binocular vision.
With the arrival of many high-quality stereoscopic displays in the market, it is desirable to provide a compression solution for stereoscopic video with superior coding efficiency and with reasonable coding complexity.
In recent years, much effort has been put in the design of efficient methods for compressing stereoscopic video. Conventional monoscopic compression methods can be applied independently to the left and right views of a stereo image pair. However, higher compression ratios can be achieved if the high correlation between views is exploited.
Regarding a prior art approach in which both views of a stereoscopic image pair are encoded, a Multi-View Profile (MVP) was defined in the International Organization for Standardization/International Electrotechnical Commission (ISO/IEC) Moving Picture Experts Group-2 (MPEG-2) standard to transmit a pair of video signals. MVP relies on a multi-layer signal representation approach such that one view (often the left view) is assigned to a base layer, and the other view is assigned to an enhancement layer. Monoscopic coding with the same tools as Main Profile (MP) is applied to the base layer. The enhancement layer is coded using temporal scalability tools and a hybrid prediction of motion and disparity fields.
In prior art methods relating to the International Organization for Standardization/International Electrotechnical Commission (ISO/IEC) Moving Picture Experts Group-4 (MPEG-4) Part 10 Advanced Video Coding (AVC) standard/International Telecommunication Union, Telecommunication Sector (ITU-T) H.264 standard (hereinafter the "MPEG4/H.264 standard" or simply the "H.264 standard"), stereoscopic video coding can be performed in two different ways: (i) as a particular case of interlaced image coding, where all the fields of a particular parity are assigned to the left view and all the fields of the opposite parity are considered the right view of the stereo-view content; or alternatively (ii) by alternating frames from the left and rights views to create a single monoscopic video sequence. A stereovision supplemental enhancement information (SEI) message provides an indication to the decoder of whether or not the coded video sequence represents stereoscopic content and which method was used to encode the corresponding content.
These previously known methods require minimum modifications of existing monoscopic coding techniques. However, they show a limited ability for reducing the redundancy existing between the two views in a stereoscopic pair. As a result, the encoding of stereo-view results in a large overhead when compared to the encoding of a single monoscopic view. This problem has prevented the spread of stereovision for consumer applications with limited transmission bandwidth. Other prior art methods include methods in which encoding is performed for one view plus some "additional 3-D information". This more general and simple approach to code stereoscopic content is to encode one single view plus some additional 3-D information allowing the receiver to render the second view of the stereoscopic pair. Traditionally, the transmitted 3-D information is represented by a depth and/or parity map. A depth map includes a 2-D image representation of the 3-D scene for which each pixel is assigned a depth value. Differences in pixel values correspond to differences in depth in the 3D scene. Often, depth data is encoded as a luminance channel only video stream.
In MPEG-4 Part 2, video object syntax includes so-called multiple auxiliary components (MAC), which are coded as gray-level images using motion-compensated DCT. Motion vectors of a video object will be used for the motion compensation of its auxiliary components. One utility of auxiliary components is to code depth or disparity map data. However, there is a restriction that auxiliary components must have the same size as the luminance component of the video object. The previous method shows an improved performance compared to MPEG-2 MVP. However, the MPEG-4 Part 2 standard has not been successfully deployed in the industry because of the superior coding gains of MPEG-4 part 10 and the high complexity of the proposed object oriented coding methods.
SUMMARY OF THE INVENTION These and other drawbacks and disadvantages of the prior art are addressed by the present invention, which is directed to a method and apparatus for Multi-view Video Coding (MVC) using scalable video coding.
According to an aspect of the present principles, there is provided a scalable video encoder. The scalable video encoder includes an encoder for encoding at least two views corresponding to multi-view video content by, encoding a particular view of the at least two views as a base layer, and encoding each of at least one other view of the at least two views as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view. The at least two views are encoded based on a selection from among at least two of temporal, spatial, and signal to noise ratio scalability techniques.
According to another aspect of the present principles, there is provided a method for scalable video encoding. The method includes encoding at least two views corresponding to multi-view video content by, encoding a particular view of the at least two views as a base layer, and encoding each of at least one other view of the at least two views as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view. The at least two views are encoded based on a selection from among at least two of temporal, spatial, and signal to noise ratio scalability techniques.
According to yet another aspect of the present principles, there is provided a scalable video decoder for scalable video decoding. The scalable video decoder includes a decoder for decoding at least two views corresponding to multi-view video content by, decoding a particular view of the at least two views as a base layer, and decoding each of at least one other view of the at least two views as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view. The at least two views are decoded based on a selection from among at least two of temporal, spatial, and signal to noise ratio scalability techniques.
According to still another aspect of the present principles, there is provided a method for scalable video decoding. The method includes decoding at least two views corresponding to multi-view video content by, decoding a particular view of the at least two views as a base layer, and decoding each of at least one other view of the at least two views as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view. The at least two views are decoded based on a selection from among at least two of temporal, spatial, and signal to noise ratio scalability techniques. According to a further aspect of the present principles, there is provided a video signal structure for scalable video encoding. The video signal structure includes a particular view of at least two views encoded as a base layer, and at least one other view of the at least two views encoded as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view. The at least two views correspond to multi-view video content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
According to a still further aspect of the present principles, there is provided a storage media having scalable video signal data encoded thereupon. The scalable video signal data includes a particular view of at least two views encoded as a base layer, and at least one other view of the at least two views encoded as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view. The at least two views correspond to multi-view video content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
According to an additional aspect of the present principles, there is provided a scalable video encoder. The scalable video encoder includes an encoder for encoding a first stereoscopic view as a base layer, and encoding at least one of a depth map and a disparity map as an enhancement layer using a prediction from the first stereoscopic view. The first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
According to another aspect of the present principles, there is provided a method for scalable video encoding. The method includes encoding a first stereoscopic view as a base layer, encoding at least one of a depth map and a disparity map as an enhancement layer using a prediction from the first stereoscopic view. The first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques. According to yet another aspect of the present principles, there is provided a scalable video decoder. The scalable video decoder includes a decoder for decoding a first stereoscopic view from a base layer, and decoding at least one of a depth map and a disparity map from an enhancement layer using a prediction from the first stereoscopic view. The first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are decoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
According to still another aspect of the present principles, there is provided a method for scalable video decoding. The method includes decoding a first stereoscopic view from a base layer, and decoding at least one of a depth map and a disparity map from an enhancement layer using a prediction from the first stereoscopic view. The first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are decoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
According to a still further aspect of the present principles, there is provided a video signal structure for scalable video encoding. The video signal structure includes a first stereoscopic view encoded as a base layer, and at least one of a depth map and a disparity map encoded as enhancement layer to allow a prediction from the first stereoscopic view. The first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
According to an additional aspect of the present principles, there is provided a storage media having scalable video signal data encoded thereupon. The scalable video signal data includes a first stereoscopic view encoded as a base layer, and at least one of a depth map and a disparity map encoded as enhancement layer to allow a prediction from the first stereoscopic view. The first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques. These and other aspects, features and advantages of the present invention will become apparent from the following detailed description of exemplary embodiments, which is to be read in connection with the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS The present invention may be better understood in accordance with the following exemplary figures, in which:
FIG. 1 shows a block diagram for an exemplary Joint Scalable Video Model (JSVM) 3.0 encoder to which the present principles may be applied;
FIG. 2 shows a block diagram for an exemplary decoder to which the present principles may be applied;
FIG. 3 is a diagram for an exemplary macroblock mapping for inter-layer prediction in SVC spatial scalability for a scaling factor equal to 1/2 for each dimension; FIG. 4 is a diagram for a method for scalable video encoding capable of encoding a pair of stereoscopic views of stereoscopic content in accordance with an exemplary first embodiment of the present principles;
FIG. 5 is a diagram for a method for scalable video decoding capable of decoding a pair of stereoscopic views of stereoscopic content in accordance with the exemplary first embodiment of the present principles;
FIG. 6 is a diagram for a method for scalable video encoding capable of encoding a pair of stereoscopic views of stereoscopic content in accordance with an exemplary second embodiment of the present principles; FIG. 7 is a diagram for a method for scalable video decoding capable of decoding a pair of stereoscopic views of stereoscopic content in accordance with the exemplary second embodiment of the present principles;
FIG. 8 is a scalable video coding method for encoding a macroblock in an enhancement layer in accordance with an exemplary embodiment of the present principles; and
FIG. 9 is a scalable video decoding method for decoding a macroblock in an enhancement layer in accordance with an exemplary embodiment of the present principles.
DETAILED DESCRIPTION
The present invention is directed to a method and apparatus for Multi-view Video Coding (MVC) using scalable video coding. For illustrative purposes, the exemplary embodiments of the present invention are described with respect to stereoscopic (two-view) video content. However, given the teachings of the present principles provided herein, one of ordinary skill in this and related arts will be able to readily extend the present principles to multi-view video content, corresponding to two or more views, while maintaining the scope of the present invention.
The present description illustrates the principles of the present invention. It will thus be appreciated that those skilled in the art will be able to devise various arrangements that, although not explicitly described or shown herein, embody the principles of the invention and are included within its spirit and scope. All examples and conditional language recited herein are intended for pedagogical purposes to aid the reader in understanding the principles of the invention and the concepts contributed by the inventor to furthering the art, and are to be construed as being without limitation to such specifically recited examples and conditions.
Moreover, all statements herein reciting principles, aspects, and embodiments of the invention, as well as specific examples thereof, are intended to encompass both structural and functional equivalents thereof. Additionally, it is intended that such equivalents include both currently known equivalents as well as equivalents developed in the future, i.e., any elements developed that perform the same function, regardless of structure.
Thus, for example, it will be appreciated by those skilled in the art that the block diagrams presented herein represent conceptual views of illustrative circuitry embodying the principles of the invention. Similarly, it will be appreciated that any flow charts, flow diagrams, state transition diagrams, pseudocode, and the like represent various processes which may be substantially represented in computer readable media and so executed by a computer or processor, whether or not such computer or processor is explicitly shown.
The functions of the various elements shown in the figures may be provided through the use of dedicated hardware as well as hardware capable of executing software in association with appropriate software. When provided by a processor, the functions may be provided by a single dedicated processor, by a single shared processor, or by a plurality of individual processors, some of which may be shared. Moreover, explicit use of the term "processor" or "controller" should not be construed to refer exclusively to hardware capable of executing software, and may implicitly include, without limitation, digital signal processor ("DSP") hardware, read-only memory ("ROM") for storing software, random access memory ("RAM"), and non-volatile storage.
Other hardware, conventional and/or custom, may also be included. Similarly, any switches shown in the figures are conceptual only. Their function may be carried out through the operation of program logic, through dedicated logic, through the interaction of program control and dedicated logic, or even manually, the particular technique being selectable by the implementer as more specifically understood from the context.
In the claims hereof, any element expressed as a means for performing a specified function is intended to encompass any way of performing that function including, for example, a) a combination of circuit elements that performs that function or b) software in any form, including, therefore, firmware, microcode or the like, combined with appropriate circuitry for executing that software to perform the function. The invention as defined by such claims resides in the fact that the functionalities provided by the various recited means are combined and brought together in the manner which the claims call for. It is thus regarded that any means that can provide those functionalities are equivalent to those shown herein.
Turning to FIG. 1 , an exemplary Joint Scalable Video Model Version 3.0 (hereinafter "JSVM3.0") encoder to which the present invention may be applied is indicated generally by the reference numeral 100. The JSVM3.0 encoder 100 uses three spatial layers and motion compensated temporal filtering. The JSVM encoder 100 includes a two-dimensional (2D) decimator 104, a 2D decimator 106, and a motion compensated temporal filtering (MCTF) module 108, each having an input for receiving video signal data 102.
An output of the 2D decimator 106 is connected in signal communication with an input of a MCTF module 110. A first output of the MCTF module 110 is connected in signal communication with an input of a motion coder 112, and a second output of the MCTF module 110 is connected in signal communication with an input of a prediction module 116. A first output of the motion coder 112 is connected in signal communication with a first input of a multiplexer 114. A second output of the motion coder 112 is connected in signal communication with a first input of a motion coder 124. A first output of the prediction module 116 is connected in signal communication with an input of a spatial transformer 118. An output of the spatial transformer 118 is connected in signal communication with a second input of the multiplexer 114. A second output of the prediction module 116 is connected in signal communication with an input of an interpolator 120. An output of the interpolator is connected in signal communication with a first input of a prediction module 122. A first output of the prediction module 122 is connected in signal communication with an input of a spatial transformer 126. An output of the spatial transformer 126 is connected in signal communication with the second input of the multiplexer 114. A second output of the prediction module 122 is connected in signal communication with an input of an interpolator 130. An output of the interpolator 130 is connected in signal communication with a first input of a prediction module 134. An output of the prediction module 134 is connected in signal communication with a spatial transformer 136. An output of the spatial transformer is connected in signal communication with the second input of a multiplexer 114.
An output of the 2D decimator 104 is connected in signal communication with an input of a MCTF module 128. A first output of the MCTF module 128 is connected in signal communication with a second input of the motion coder 124. A first output of the motion coder 124 is connected in signal communication with the first input of the multiplexer 114. A second output of the motion coder 124 is connected in signal communication with a first input of a motion coder 132. A second output of the MCTF module 128 is connected in signal communication with a second input of the prediction module 122.
A first output of the MCTF module 108 is connected in signal communication with a second input of the motion coder 132. An output of the motion coder 132 is connected in signal communication with the first input of the multiplexer 114. A second output of the MCTF module 108 is connected in signal communication with a second input of the prediction module 134. An output of the multiplexer 114 provides an output bitstream 138.
For each spatial layer, a motion compensated temporal decomposition is performed. This decomposition provides temporal scalability. Motion information from lower spatial layers can be used for prediction of motion on the higher layers. For texture encoding, spatial prediction between successive spatial layers can be applied to remove redundancy. The residual signal resulting from intra prediction or motion compensated inter prediction is transform coded. A quality base layer residual provides minimum reconstruction quality at each spatial layer. This quality base layer can be encoded into an H.264 standard compliant stream if no inter-layer prediction is applied. For quality scalability, quality enhancement layers are additionally encoded. These enhancement layers can be chosen to either provide coarse or fine grain quality (SNR) scalability.
Turning to FIG. 2, an exemplary scalable video decoder to which the present invention may be applied is indicated generally by the reference numeral 200. An input of a demultiplexer 202 is available as an input to the scalable video decoder 200, for receiving a scalable bitstream. A first output of the demultiplexer 202 is connected in signal communication with an input of a spatial inverse transform SNR scalable entropy decoder 204. A first output of the spatial inverse transform SNR scalable entropy decoder 204 is connected in signal communication with a first input of a prediction module 206. An output of the prediction module 206 is connected in signal communication with a first input of an inverse MCTF module 208.
A second output of the spatial inverse transform SNR scalable entropy decoder 204 is connected in signal communication with a first input of a motion vector (MV) decoder 210. An output of the MV decoder 210 is connected in signal communication with a second input of the inverse MCTF module 208.
A second output of the demultiplexer 202 is connected in signal communication with an input of a spatial inverse transform SNR scalable entropy decoder 212. A first output of the spatial inverse transform SNR scalable entropy decoder 212 is connected in signal communication with a first input of a prediction module 214. A first output of the prediction module 214 is connected in signal communication with an input of an interpolation module 216. An output of the interpolation module 216 is connected in signal communication with a second input of the prediction module 206. A second output of the prediction module 214 is connected in signal communication with a first input of an inverse MCTF module 218. A second output of the spatial inverse transform SNR scalable entropy decoder
212 is connected in signal communication with a first input of an MV decoder 220. A first output of the MV decoder 220 is connected in signal communication with a second input of the MV decoder 210. A second output of the MV decoder 220 is connected in signal communication with a second input of the inverse MCTF module 218. A third output of the demultiplexer 202 is connected in signal communication with an input of a spatial inverse transform SNR scalable entropy decoder 222. A first output of the spatial inverse transform SNR scalable entropy decoder 222 is connected in signal communication with an input of a prediction module 224. A first output of the prediction module 224 is connected in signal communication with an input of an interpolation module 226. An output of the interpolation module 226 is connected in signal communication with a second input of the prediction module 214. A second output of the prediction module 224 is connected in signal communication with a first input of an inverse MCTF module 228. A second output of the spatial inverse transform SNR scalable entropy decoder 222 is connected in signal communication with an input of an MV decoder 230. A first output of the MV decoder 230 is connected in signal communication with a second input of the MV decoder 220. A second output of the MV decoder 230 is connected in signal communication with a second input of the inverse MCTF module 228.
An output of the inverse MCTF module 228 is available as an output of the decoder 200, for outputting a layer 0 signal. An output of the inverse MCTF module 218 is available as an output of the decoder 200, for outputting a layer 1 signal. An output of the inverse MCTF module 208 is available as an output of the decoder 200, for outputting a layer 2 signal.
For spatial, temporal and SNR scalability, a large degree of inter-layer prediction is incorporated. Intra and inter macroblocks can be predicted using the corresponding signals of previous layers. Moreover, the motion description of each layer can be used for a prediction of the motion description for following enhancement layers. These techniques fall into three categories: inter-layer intra texture prediction, inter-layer motion prediction and inter-layer residue prediction.
In accordance with the present principles, we disclose two exemplary embodiments for encoding stereoscopic video that are capable of being used with Scalable Video Coding (herein after also referred to as "H.264 SVC" or simply "SVC") that is currently being developed as an amendment to the H.264 standard. According to the first method, stereoscopic content is encoded in SVC as a view pair (left and right views, or alternatively, a first and second stereoscopic view). According to the second method, stereoscopic content is encoded in SVC as one view plus depth/parity maps. For each method of the two exemplary embodiments, a new message, indicator, or the like (for example, a Supplemental Enhancement Information (SEI) message) is used to indicate the SVC bitstream is used for stereoscopic video coding. It is to be appreciated that while embodiments of the present principles are described herein with respect to H.264 SVC, those skilled in this and related arts will realize that the present principles are not so limited and may be readily applied to other video coding standards as well (including, e.g., but not limited to various MPEG standards, including MPEG-2) while maintaining the scope of the present principles.
In accordance with the first exemplary embodiment, coding both views of a stereoscopic image pair in a scalable video coding scheme is performed by coding one view as base layer, and coding the second view in an enhancement layer. A major difference between the present principles and MPEG-2 MVP scheme is that the present principles do not require the two views to be coded using only temporal scalability. Therefore, in accordance with the present principles, the stereoscopic views may be coded (and therefore later decoded) as temporal, spatial, or SNR scalability, depending on the demands and efficiencies available for a specific application requirement. For example, temporal scalability is more suitable when we need the most coding efficiency. Spatial/SNR scalability are more suitable when a corresponding application can benefit from different spatial resolution/quality between two views.
In order to support a non-stereo display to be able to decode the video without decoding the enhancement layer and to allow another view to have different resolutions, for spatial scalability applications we propose to use a scaling factor less than, or equal to, 1 in one exemplary aspect of the first exemplary embodiment.
Illumination and color discrepancies across different camera views are common in captured stereoscopic videos. Possible causes of such undesired discrepancies include, but are not limited to, poor camera calibration, different light projection direction and different surface reflection characteristic. Weighted Prediction (WP) originally developed in the H.264 standard is an effective tool to compensate for illumination/color differences when texture prediction between two views is involved. WP is supported in SVC, but it only allows for the same layer or temporal scalability. Therefore, in accordance with one exemplary implementation of the first exemplary embodiment, since we code one view in the base layer and a second view in the enhancement layer in the first exemplary embodiment, for temporal scalability, we can simply enable WP in SVC to provide a benefit in coding efficiency for cross view prediction. For spatial or SNR scalability, we propose to add WP support for lntra_BL mode, i.e., coding the difference between the macroblock in the enhancement layer and the weighted macroblock in the base layer.
A new supplemental enhancement information (SEI) message is provided that supports the exemplary first embodiment described herein and specifies which view corresponds to the base layer. The SEI message is shown in Table 1. For example, when base_layerjsjeft_view_flag is equal to 1 , this indicates that the left view is coded in the base layer. Conversely, when basejayer_is_left_view_flag is equal to 0, this indicates that the right view is coded in the base layer.
Table 1
Figure imgf000016_0001
It is to be noted that since this metadata is not required by the decoding process, the metadata could be transmitted out of band according to a different syntax specification.
In accordance with the second exemplary embodiment, one view is coded and a depth and/or disparity map in used in the enhancement layer to support a conventional non-stereo display to be able to decode the video without decoding the depth maps. We can apply spatial, or SNR scalability, depending on the application requirement. Since the depth map can be coded at a lower resolution, in spatial scalability, one possible preferred embodiment uses a scaling factor less than, or equal to, 1.
A new SEI message is provided that supports the second exemplary embodiment and that provides additional 3-D metadata that is conveyed to assist the rendering process of the non-transmitted view. In a particular embodiment, the transmitted metadata may include two parameters (Nknear, Nkfar) as shown in Table 2. With these two parameters and the depth map, the correct pixel parallax can be calculated and will result in the intended depth effect on the display as seen by the viewer. Nknear specifies the knear ratio parameter normalized to 128 that shall be applied to calculate the screen parallel of a newly rendered view.
Nkfar specifies the kfar ratio parameter normalized to 32 that shall be applied to calculate the screen parallel of a newly rendered view.
Table 2
Figure imgf000017_0001
It is to be noted that since this metadata is not required by the decoding process, the metadata could be transmitted out of band according to a different syntax specification.
One major problem of using a depth map and one coded view (e.g., the left view) to construct the other non-transmitted view (e.g., the right view) is that areas which are occluded in the left view might be visible in the right view. This might create holes in the right view. Another problem is that because the left view and the depth map are lossy coded, errors may exist between the reconstructed right view and the original right view. To improve the quality of the non-transmitted view, an additional SNR layer can be added. The additional SNR layer should be combined with the SEI message, so the decoder will know that the refinement is based on the reconstructed non-coded view.
It should be noted that currently in SVC (which uses Joint Scalable Video Model 3 (JSVM3)), spatial scalability only handles resolution scaling larger than or equal to one. In accordance with the present invention, inter-layer prediction is used to support resolution scaling less than one. For inter-lay prediction, the following issues should be addresses to handle spatial scalability for resolution scaling less than one: (1 ) mixed-block processing; (2) macroblock type mapping; (3) motion vector scaling; 4) texture scaling. New and/or prior techniques, including those relating to spatial resolution transcoding, may be used to address these issues. For simplicity, we may allow SVC to only support the scaling factor to be 2Λ(-n), where n>0. Turning to FIG. 3, an exemplary macroblock mapping for inter-layer prediction in SVC spatial scalability for a scaling factor equal to 1/2 for each dimension is indicated generally by the reference numeral 300. In such an example, one macroblock in the enhancement layer corresponds to four macroblocks in the base layer. Since those four macroblocks may have different intra/inter modes and SVC does not allow mixing modes in one macroblock, we need to decide what mode should be used for the macroblock in the enhancement layer in inter-layer prediction. We propose to force the macroblock to be inter mode, and assume the motion vectors (MVs) and discrete cosine transform (DCT) residues in intra-macroblock to be zero. For macroblock type mapping, since the smallest partition in SVC is 4x4, but the downscaling by 2 can result in a partition as small as 2x2, we propose to group each four 2x2 partitions into one 4x4 partition. The MV for each 4x4 partition is set to the MV of the corner of the corresponding 8x8 sub-macroblock. For the reference picture index, we group each four 4x4 partitions into one 8x8 partition. The reference picture index is assigned to that of the corner of the associated macroblock. For motion vector scaling, MVE = (MVB+1 )»1 , where MVE is the enhancement layer motion vector, and MVB is the corresponding base layer motion vector. For texture downscaling involving the residue, we can use the simple average method. For spatial texture, we can use the simple average method or the MPEG-4 downscaling function currently used in JSVM. For the scaling factor of 2Λ(-n), we can iteratively scale by 1/2 (n times).
It is to be appreciated that as used herein, the term "depth/disparity map" is contemplated to refer to one or more depth maps and/or one or more disparity maps. FIGs. 4 and 5 correspond to the first exemplary embodiment of the present principles.
Turning to FIG. 4, a method for scalable video encoding capable of encoding a pair of stereoscopic views of stereoscopic content is indicated generally by the reference numeral 400. The method 400 includes a start block 405 that passes control to a decision block 410. The decision block 410 determines whether or not to code a left view of the stereoscopic content as a base layer. If so, then control is passed to a function block 415. Otherwise, control is passed to a function block 425. The function block 415 sets a basejayer_is_left_view_flag equal to one, writes the basejayer_is_left_view_flag in a supplemental enhancement information (SEI) message, and passes control to a function block 420. The function block 420 codes the left view as the base layer and the right view as an enhancement layer, and passes control to an end block 435.
The function block 425 sets the _base_layer_is_left_view_flag equal to zero, writes the base_layer_is_left_view_flag in the SEI message, and passes control to a function block 430. The function block 430 codes the right view as the base layer and the left view as the enhancement layer using SNR, spatial, and/or temporal scalability, and passes control to the end block 435.
Turning to FIG. 5, a method for scalable video decoding capable of decoding a pair of stereoscopic views of stereoscopic content is indicated generally by the reference numeral 500. The method 500 includes a start block 505 that passes control to a function block 510. The function block parses the basejayer_is_left_yiew_flag in the SEI message, and passes control to a decision block 515. The decision block 515 determines whether or not the base_layer_isjeft_view_flag is equal to one. If so, then control is passed to a function block 520. Otherwise, control is passed to a function block 525.
The function block 520 decodes the left view from the base layer and the right view from the enhancement layer using SNR, spatial, and/or temporal scalability, and passes control to an end block 599.
The function block 525 decodes the right view from the base layer and the left view from the enhancement layer using SNR, spatial, and/or temporal scalability, and passes control to the end block 599. FIGs. 6 and 7 correspond to the second exemplary embodiment of the present principles.
Turning to FIG. 6, a method for scalable video encoding capable of encoding a pair of stereoscopic views of stereoscopic content is indicated generally by the reference numeral 600. The method 600 includes a start block 605 that passes control to a function block 610. The function block 610 codes one view of the stereoscopic content as a base layer and codes a depth/disparity map corresponding to the stereoscopic video as an enhancement layer using SNR, spatial, and/or temporal scalability, and passes control to a function block 615. The function block 615 writes depth parameters in the SEI message, and passes control to a function block 620. The function block 620 reconstructs another (non-coded) view of the stereoscopic content using reconstructed video from the base layer, a reconstructed depth/disparity map from the enhancement layer and depth parameters from the SEI message, and passes control to a function block 625. The function block 625 codes an additional SNR layer based on the reconstructed non-coded view, and passes control to an end block 630. Turning to FIG. 7, a method for scalable video decoding capable of decoding a pair of stereoscopic views of stereoscopic content is indicated generally by the reference numeral 700. The method 700 includes a start block 705 that passes control to a function block 710. The function block 710 decodes one stereoscopic view of stereoscopic content from the base layer, decodes a depth/disparity map from the enhancement layer, using SNR, spatial and/or temporal scalability, and passes control to a function block 715. The function block 715 parses depth messages from the SEI message, and passes control to a function block 720. The function block 720 reconstructs another stereoscopic (non-coded) view as the base layer using reconstructed video from the base layer, reconstructed depth/disparity map from the enhancement layer, and depth parameters from the SEI message, and passes control to a function block 725. The function block 725 decodes an additional SNR layer based on the reconstructed non-coded view, forms a refined non-coded view, and passes control to an end block 730.
Turning to FIG. 8, a scalable video coding method for encoding a macroblock in an enhancement layer is indicted generally by the reference numeral 800. The method 800 includes a start block 805 that passes control to a decision block 810. The decision block 810 determines whether or not to use inter-layer prediction. If so, then control is passed to a decision block 815. Otherwise, control is passed to a function block 855.
The decision block 815 determines whether or not to use inter-layer intra texture prediction. If so, then control is passed to a decision block 820. Otherwise, control is passed to a decision block 830. The decision block 820 determines whether or not to use weighted prediction. If so, then control is passed to a function block 825. Otherwise, control is passed to a function block 840.
The function block 825 codes a different between the macroblock in the enhancement layer and a weighted macroblock scaled from a set of mapped macroblocks in the base layer, and passes control to the decision block 830.
The decision block 830 determines whether or not to use inter-layer motion vector prediction. If so, then control is passed to a function block 835. Otherwise, control is passed to a decision block 845. The function block 835 performs mode mapping and motion vector mapping, and passes control to the decision block 845.
The decision block 845 determines whether or not inter-layer residue prediction. If so, then control is passed to a function block 850. Otherwise, control is passed to the function block 855. The function block 850 performs mode mapping and residue mapping, and passes control to the function block 855. In an embodiment, function block 850 may involve setting the spatial scaling factor equal to 2("π), n being an integer greater than zero, and performing averaging for texture downsampling of residues corresponding to the at least some blocks (850). The function block 855 encodes the macroblock, and passes control to an end block 860.
The function block 840 codes a difference between the macroblock in the enhancement layer and a macroblock scaled from a set of mapped macroblocks in the base layer, and passes control to the decision block 830. In an embodiment, function block 855 may involve constraining a spatial scaling factor to be equal to or less than one, when the spatial scalability technique is selected
In an embodiment, function blocks 835, 850, and/or 855 may involve, e.g., setting a spatial scaling factor equal to 2("n), n being an integer greater than zero, performing a many-to-one block mapping from the base layer to the enhancement layer, converting blocks in the base layer having an intra prediction mode to an inter- prediction mode, and forcing motion vectors and discrete cosine transform coefficients in the intra-prediction mode to be zero. In an embodiment, function blocks 835 and/or 855 may involve, e.g., mapping a motion vector for a block in the enhancement layer to a scaled motion vector of a corner of a corresponding mapped block from a set of mapped blocks in the base layer, and assigning a reference index for the block in the enhancement layer to that of the corner of the corresponding mapped block in the base layer, the block in the enhancement layer being co-located with respect to the set of mapped blocks in the base layer.
In an embodiment, function blocks 850 and/or 855 may involve setting the spatial scaling factor equal to 2('π), n being an integer greater than zero, and performing averaging for texture downsampling of residues.
Turning to FIG. 9, a scalable video decoding method for decoding a macroblock in an enhancement layer is indicated generally by the reference numeral 900. The method 900 includes a start block 905 that passes control to a function block 910. The function block 910 parses syntax for the macroblock, and passes control to a decision block 915. The decision block 915 determines whether or not an inter-layer prediction flag is equal to one. If so, then control is passed to a decision block 920. Otherwise, control is passed to a function block 960.
The decision block 920 determines whether or not an inter-lay intra texture prediction flag is equal to one. If so, then control is passed to a decision block 925. Otherwise, control is passed to a decision block 935.
The decision block 925 determines whether or not a weighted prediction flag is equal to one. If so, then control is passed to a function block 930. Otherwise, control is passed to a function block 945.
The function block 930 decodes the difference between the macroblock in the enhancement layer and a weighted macroblock scaled from a set of mapped macroblocks in the base layer, and passes control to a decision block 935.
The decision block 935 determines whether or not an inter-layer motion vector prediction flag is equal to one. If so, then control is passed to a function block 940. Otherwise, control is passed to a decision block 950. The function block 940 performs mode mapping and motion vector mapping, and passes control to the decision block 950. The decision block 950 determines whether or not an inter-layer residue prediction flag is equal to one. If so, then control is passed to a function block 955. Otherwise, control is passed to a function block 960.
The function block 955 performs mode mapping and residue mapping, and passes control to the function block 960.
The function block 960 decodes the macroblock, and passes control to an end block 965.
The function block 945 decodes the difference between the macroblock in the enhancement layer and a macroblock scaled from a set of mapped macroblocks in the base layer, and passes control to the decision block 935.
A description will now be given of some of the many attendant advantages/features of the present invention, some of which have been mentioned above. For example, one advantage/feature is scalable video encoder including an encoder for encoding at least two views corresponding to multi-view video content by, encoding a particular view of the at least two views as a base layer, and encoding each of at least one other view of the at least two views as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view. The at least two views are encoded based on a selection from among at least two of temporal, spatial, and signal to noise ratio scalability techniques.
Another advantage/feature is the scalable video encoder as described above, wherein the base layer and the enhancement layer are included a video bitstream, and the encoder adds an indicator in a message signaling the video bitstream. The indicator is for indicating that the video bitstream includes multi-view video signals. Yet another advantage/feature is the scalable video encoder that adds the indicator in a message as described above, wherein the message is a Supplemental Enhancement Information (SEI) message.
Moreover, another advantage/feature is the scalable video encoder that adds the indicator in a message as described above, wherein the message is sent out of band. Further, another advantage/feature is the scalable video encoder that adds the indicator in a message as described above, wherein the indicator is provided as metadata.
Also, another advantage/feature is the scalable video encoder that adds the indicator in a message as described above, wherein the indicator specifies one of the particular view or the at least one other view as being encoded in one of the base layer or the enhancement layer.
Additionally, another advantage/feature is the scalable video encoder as described above, wherein the temporal, spatial, and signal to noise ratio scalability techniques are performed in compliance with the Scalable Video Coding Extension of the International Organization for Standardization/International Electrotechnical Commission Moving Picture Experts Group-4 Part 10 Advanced Video Coding standard/International Telecommunication Union, Telecommunication Sector H.264 standard. Moreover, another advantage/feature is the scalable video encoder as described above, wherein the encoder constrains a spatial scaling factor to be equal to or less than one, when the spatial scalability technique is selected.
Further, another advantage/feature is the scalable video encoder that constrains the spatial scaling factor as described above, wherein the encoder encodes at least some blocks in the base layer and the enhancement layer using inter-layer prediction, by setting the spatial scaling factor equal to 2("π), n being an integer greater than zero, performing a many-to-one block mapping from the base layer to the enhancement layer, converting any of the at least some blocks in the base layer having an intra prediction mode to an inter-prediction mode, and forcing motion vectors and discrete cosine transform coefficients in the intra-prediction mode to be zero.
Also, another advantage/feature is the scalable video encoder that encodes at least some blocks in the base layer and the enhancement layer using inter-layer prediction as described above, wherein the encoder maps a motion vector for a block in the enhancement layer to a scaled motion vector of a corner of a corresponding mapped block from a set of mapped blocks in the base layer, and assigns a reference index for the block in the enhancement layer to that of the corner of the corresponding mapped block in the base layer, the block in the enhancement layer and the set of mapped blocks in the base layer included in the at least some blocks, the block in the enhancement layer being co-located with respect to the set of mapped blocks in the base layer.
Additionally, another advantage/feature is the scalable video encoder that constrains the spatial scaling factor as described above, wherein the encoder encodes at least some blocks in the base layer and the enhancement layer by setting the spatial scaling factor equal to 2("n), n being an integer greater than zero, and performing averaging for texture downsampling of residues corresponding to the at least some blocks. Moreover, another advantage/feature is the scalable video encoder as described above, wherein the at least two views are encoded by enabling weighted prediction for cross view prediction between the particular view and the at least one other view.
Further, another advantage/feature is the scalable video encoder that encodes the at least two views by enabling cross view prediction as described above, wherein the weighted prediction is enabled when coding a difference between a macroblock in the enhancement layer and a weighted macroblock scaled from a set of mapped macroblocks in the base layer, the macroblock in the enhancement layer being co- located with respect to the set of mapped macroblocks in the base layer. Additionally, another advantage/feature is the scalable video encoder as described above, wherein the at least two views correspond to a pair of stereoscopic views, with one view of the pair being encoded as the base layer and another view of the pair being encoded as the enhancement layer using a prediction from the base layer. These and other features and advantages of the present invention may be readily ascertained by one of ordinary skill in the pertinent art based on the teachings herein. It is to be understood that the teachings of the present invention may be implemented in various forms of hardware, software, firmware, special purpose processors, or combinations thereof. Most preferably, the teachings of the present invention are implemented as a combination of hardware and software. Moreover, the software is preferably implemented as an application program tangibly embodied on a program storage unit. The application program may be uploaded to, and executed by, a machine comprising any suitable architecture. Preferably, the machine is implemented on a computer platform having hardware such as one or more central processing units ("CPU"), a random access memory ("RAM"), and input/output ("I/O") interfaces. The computer platform may also include an operating system and microinstruction code. The various processes and functions described herein may be either part of the microinstruction code or part of the application program, or any combination thereof, which may be executed by a CPU. In addition, various other peripheral units may be connected to the computer platform such as an additional data storage unit and a printing unit. It is to be further understood that, because some of the constituent system components and methods depicted in the accompanying drawings are preferably implemented in software, the actual connections between the system components or the process function blocks may differ depending upon the manner in which the present invention is programmed. Given the teachings herein, one of ordinary skill in the pertinent art will be able to contemplate these and similar implementations or configurations of the present invention.
Although the illustrative embodiments have been described herein with reference to the accompanying drawings, it is to be understood that the present invention is not limited to those precise embodiments, and that various changes and modifications may be effected therein by one of ordinary skill in the pertinent art without departing from the scope or spirit of the present invention. All such changes and modifications are intended to be included within the scope of the present invention as set forth in the appended claims.

Claims

CLAIMS:
1. An apparatus comprising: an encoder (100) for encoding at least two views corresponding to multi-view video content by, encoding a particular view of the at least two views as a base layer, and encoding each of at least one other view of the at least two views as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view, wherein the at least two views are encoded based on a selection from among at least two of temporal, spatial, and signal to noise ratio scalability techniques.
2. The apparatus of claim 1 , wherein the base layer and the enhancement layer are included a video bitstream, and said encoder (100) adds an indicator in a message signaling the video bitstream, the indicator for indicating that the video bitstream includes multi-view video signals.
3. The apparatus of claim 2, wherein the message is a Supplemental Enhancement Information (SEI) message.
4. The apparatus of claim 2, wherein the message is sent out of band.
5. The apparatus of claim 2, wherein the indicator is provided as metadata.
6. The apparatus of claim 2, wherein the indicator specifies one of the particular view or the at least one other view as being encoded in one of the base layer or the enhancement layer.
7. The apparatus of claim 1 , wherein the temporal, spatial, and signal to noise ratio scalability techniques are performed in compliance with the Scalable Video Coding Extension of the International Organization for Standardization/International Electrotechnical Commission Moving Picture Experts Group-4 Part 10 Advanced Video Coding standard/International Telecommunication Union, Telecommunication Sector H.264 standard.
8. The apparatus of claim 1 , wherein said encoder (100) constrains a spatial scaling factor to be equal to or less than one, when the spatial scalability technique is selected.
9. The apparatus of claim 8, wherein said encoder (100) encodes at least some blocks in the base layer and the enhancement layer using inter-layer prediction, by setting the spatial scaling factor equal to 2('n), n being an integer greater than zero, performing a many-to-one block mapping from the base layer to the enhancement layer, converting any of the at least some blocks in the base layer having an intra prediction mode to an inter-prediction mode, and forcing motion vectors and discrete cosine transform coefficients in the intra-prediction mode to be zero.
10. The apparatus of claim 9, wherein said encoder (100) maps a motion vector for a block in the enhancement layer to a scaled motion vector of a corner of a corresponding mapped block from a set of mapped blocks in the base layer, and assigns a reference index for the block in the enhancement layer to that of the corner of the corresponding mapped block in the base layer, the block in the enhancement layer and the set of mapped blocks in the base layer included in the at least some blocks, the block in the enhancement layer being co-located with respect to the set of mapped blocks in the base layer.
11. The apparatus of claim 8, wherein said encoder (100) encodes at least some blocks in the base layer and the enhancement layer by setting the spatial scaling factor equal to 2('n), n being an integer greater than zero, and performing averaging for texture downsampling of residues corresponding to the at least some blocks.
12. The apparatus of claim 1 , wherein the at least two views are encoded by enabling weighted prediction for cross view prediction between the particular view and the at least one other view.
13. The apparatus of claim 12, wherein the weighted prediction is enabled when coding a difference between a macroblock in the enhancement layer and a weighted macroblock scaled from a set of mapped macroblocks in the base layer, the macroblock in the enhancement layer being co-located with respect to the set of mapped macroblocks in the base layer.
14. The apparatus of claim 1 , wherein the at least two views correspond to a pair of stereoscopic views, with one view of the pair being encoded as the base layer and another view of the pair being encoded as the enhancement layer using a prediction from the base layer.
15. A method for scalable video encoding, comprising encoding (420, 430) at least two views corresponding to multi-view video content by, encoding a particular view of the at least two views as a base layer, and encoding each of at least one other view of the at least two views as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view, wherein the at least two views are encoded based on a selection from among at least two of temporal, spatial, and signal to noise ratio scalability techniques.
16. The method of claim 15, wherein the base layer and the enhancement layer are included a video bitstream, and said encoding step comprises adding (415, 425) an indicator in a message signaling the video bitstream, the indicator for indicating that the video bitstream includes multi-view video signals.
17. The method of claim 16, wherein the message is a Supplemental Enhancement Information (SEI) message.
18. The method of claim 16, wherein the message is sent out of band.
19. The method of claim 16, wherein the indicator is provided as metadata.
20. The method of claim 16, wherein the indicator specifies one of the particular view or the at least one other view as being encoded in one of the base layer or the enhancement layer.
21. The method of claim 15, wherein the temporal, spatial, and signal to noise ratio scalability techniques are performed in compliance with the Scalable Video Coding Extension of the International Organization for Standardization/International Electrotechnical Commission Moving Picture Experts Group-4 Part 10 Advanced Video Coding standard/International Telecommunication Union, Telecommunication Sector H.264 standard.
22. The method of claim 15, wherein said encoding step comprises constraining a spatial scaling factor to be equal to or less than one, when the spatial scalability technique is selected (855).
23. The method of claim 22, wherein said encoding step encodes at least some blocks in the base layer and the enhancement layer using inter-layer prediction, by setting the spatial scaling factor equal to 2("n), n being an integer greater than zero, performing a many-to-one block mapping from the base layer to the enhancement layer, converting any of the at least some blocks in the base layer having an intra prediction mode to an inter-prediction mode, and forcing motion vectors and discrete cosine transform coefficients in the intra-prediction mode to be zero (835,850, 855).
24. The method of claim 23, wherein said encoding step maps a motion vector for a block in the enhancement layer to a scaled motion vector of a corner of a corresponding mapped block from a set of mapped blocks in the base layer, and assigns a reference index for the block in the enhancement layer to that of the corner of the corresponding mapped block in the base layer, the block in the enhancement layer and the set of mapped blocks in the base layer included in the at least some blocks, the block in the enhancement layer being co-located with respect to the set of mapped blocks in the base layer (835, 855).
25. The method of claim 22, wherein said encoding step encodes at least some blocks in the base layer and the enhancement layer by setting the spatial scaling factor equal to 2("n), n being an integer greater than zero, and performing averaging for texture downsampling of residues corresponding to the at least some blocks (850, 855).
26. The method of claim 15, wherein the at least two views are encoded by enabling weighted prediction for cross view prediction between the particular view and the at least one other view (825).
27. The method of claim 26, wherein the weighted prediction is enabled when coding a difference between a macroblock in the enhancement layer and a weighted macroblock scaled from a set of mapped macroblocks in the base layer, the macroblock in the enhancement layer being co-located with respect to the set of mapped macroblocks in the base layer.
28. The method of claim 15, wherein the at least two views correspond to a pair of stereoscopic views, with one view of the pair being encoded as the base layer and another view of the pair being encoded as the enhancement layer using a prediction from the base layer.
29. An apparatus comprising a decoder (200) for decoding at least two views corresponding to multi-view video content by, decoding a particular view of the at least two views as a base layer, and decoding each of at least one other view of the at least two views as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view, wherein the at least two views are decoded based on a selection from among at least two of temporal, spatial, and signal to noise ratio scalability techniques.
30. The apparatus of claim 28, wherein the base layer and the enhancement layer are included a video bitstream, and said decoder (200) reads an indicator in a message signaling the video bitstream, the indicator for indicating that the video bitstream includes multi-view video signals.
31. The apparatus of claim 29, wherein the message is a Supplemental Enhancement Information (SEI) message.
32. The apparatus of claim 29, wherein the message is received out of band.
33. The apparatus of claim 29, wherein the indicator is provided as metadata.
34. The apparatus of claim 30, wherein the indicator specifies one of the particular view or the at least one other view as being encoded in one of the base layer or the enhancement layer.
35. The apparatus of claim 29, wherein the temporal, spatial, and signal to noise ratio scalability techniques are performed in compliance with the Scalable Video Coding Extension of the International Organization for Standardization/International Electrotechnical Commission Moving Picture Experts Group-4 Part 10 Advanced Video Coding standard/International Telecommunication Union, Telecommunication Sector H.264 standard.
36. The apparatus of claim 29, wherein the at least two views are decoded by enabling weighted prediction for cross view prediction between the particular view and the at least one other view.
37. The apparatus of claim 36, wherein the weighted prediction is enabled when decoding a difference between a macroblock in the enhancement layer and a weighted macroblock scaled from a set of mapped macroblocks in the base layer, the macroblock in the enhancement layer being co-located with respect to the set of mapped macroblocks in the base layer.
38. The apparatus of claim 29, wherein the at least two views correspond to a pair of stereoscopic views, with one view of the pair being decoded as the base layer and another view of the pair being decoded as the enhancement layer using a prediction from the base layer.
39. A method for scalable video decoding, comprising decoding (520, 525) at least two views corresponding to multi-view video content by, decoding a particular view of the at least two views as a base layer, and decoding each of at least one other view of the at least two views as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view, wherein the at least two views are decoded based on a selection from among at least two of temporal, spatial, and signal to noise ratio scalability techniques.
40. The method of claim 39, wherein the base layer and the enhancement layer are included a video bitstream, and said decoder reads (510) an indicator in a message signaling the video bitstream, the indicator for indicating that the video bitstream includes multi-view video signals.
41. The method of claim 40, wherein the message is a Supplemental Enhancement Information (SEI) message.
42. The method of claim 40, wherein the message is received out of band.
43. The method of claim 40, wherein the indicator is provided as metadata.
44. The method of claim 40, wherein the indicator specifies one of the particular view or the at least one other view as being encoded in one of the base layer or the enhancement layer.
45. The method of claim 39, wherein the temporal, spatial, and signal to noise ratio scalability techniques are performed in compliance with the Scalable Video Coding Extension of the International Organization for Standardization/International Electrotechnical Commission Moving Picture Experts Group-4 Part 10 Advanced Video Coding standard/International Telecommunication Union, Telecommunication Sector H.264 standard.
46. The method of claim 39, wherein the at least two views are decoded by enabling weighted prediction for cross view prediction between the first stereoscopic view and the second stereoscopic view (930).
47. The method of claim 46, wherein the weighted prediction is enabled when decoding a difference between a macroblock in the enhancement layer and a weighted macroblock scaled from a set of mapped macroblocks in the base layer, the macroblock in the enhancement layer being co-located with respect to the set of mapped macroblocks in the base layer.
48. The scalable video encoder of claim 39, wherein the at least two views correspond to a pair of stereoscopic views, with one view of the pair being encoded as the base layer and another view of the pair being encoded as the enhancement layer using a prediction from the base layer.
49. A video signal structure for scalable video encoding, comprising: a particular view of at least two views encoded as a base layer; and at least one other view of the at least two views encoded as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view, wherein the at least two views correspond to multi-view video content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
50. A storage media having scalable video signal data encoded thereupon, comprising: a particular view of at least two views encoded as a base layer; and at least one other view of the at least two views encoded as an enhancement layer using a prediction from a lower layer corresponding to at least one of the particular view and the at least one other view, wherein the at least two views correspond to multi-view video content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
51. An apparatus comprising: an encoder (100) for encoding a first stereoscopic view as a base layer, and encoding at least one of a depth map and a disparity map as an enhancement layer using a prediction from the first stereoscopic view, wherein the first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
52. The apparatus of claim 51 , wherein the base layer and the enhancement layer are included a video bitstream, and said encoder (100) adds additional three- dimensional information relating to the particular stereoscopic content in a message signaling the video bitstream.
53. The apparatus of claim 52, wherein the message is a Supplemental Enhancement Information (SEI) message.
54. The apparatus of claim 52, wherein the message is sent out of band.
55. The apparatus of claim 52, wherein the additional three-dimensional information is provided as metadata.
56. The apparatus of claim 52, wherein said encoder (100) reconstructs a non-coded view of the particular stereoscopic content using reconstructed video from the base layer, at least one of a reconstructed depth map and a reconstructed disparity map, and the additional three-dimensional information in the message, and encodes an additional enhancement layer based on the reconstructed non-coded view.
57. The apparatus of claim 51 , wherein the temporal, spatial, and signal to noise ratio scalability techniques are performed in compliance with the Scalable Video Coding Extension of the International Organization for Standardization/International Electrotechnical Commission Moving Picture Experts Group-4 Part 10 Advanced Video Coding standard/International Telecommunication Union, Telecommunication Sector H.264 standard.
58. The apparatus of claim 51 , wherein said encoder (100) constrains a spatial scaling factor to be equal to or less than one, when the spatial scalability technique is selected.
59. The apparatus of claim 58, wherein said encoder (100) encodes at least some blocks in the base layer and the enhancement layer using inter-layer prediction, by setting the spatial scaling factor equal to 2("n), n being an integer greater than zero, performing a many-to-one block mapping from the base layer to the enhancement layer, converting any of the at least some blocks in the base layer having an intra prediction mode to an inter-prediction mode, and forcing motion vectors and discrete cosine transform coefficients in the intra-prediction mode to be zero.
60. The apparatus of claim 59, wherein said encoder (100) maps a motion vector for a block in the enhancement layer to a scaled motion vector of a corner of a corresponding mapped block from a set of mapped blocks in the base layer, and assigns a reference index for the block in the enhancement layer to that of the corner of the corresponding mapped block in the base layer, the block in the enhancement layer and the set of mapped blocks in the base layer included in the at least some blocks, the block in the enhancement layer being co-located with respect to the set of mapped blocks in the base layer.
61. The apparatus of claim 58, wherein said encoder (100) encodes at least some blocks in the base layer and the enhancement layer by setting the spatial scaling factor equal to 2("n), n being an integer greater than zero, and performing averaging for texture downsampling of residues corresponding to the at least some blocks.
62. The apparatus of claim 51 , wherein the pair of stereoscopic views is encoded by enabling weighted prediction for cross view prediction between the first stereoscopic view and the second stereoscopic view.
63. The apparatus of claim 62, wherein the weighted prediction is enabled when coding a difference between a macroblock in the enhancement layer and a weighted macroblock scaled from a set of mapped macroblocks in the base layer, the macroblock in the enhancement layer being co-located with respect to the set of mapped macroblocks in the base layer.
64. A method for scalable video encoding, comprising: encoding (610) a first stereoscopic view as a base layer; and encoding (610) at least one of a depth map and a disparity map as an enhancement layer using a prediction from the first stereoscopic view, wherein the first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
65. The method of claim 64, wherein the base layer and the enhancement layer are included a video bitstream, and said encoder adds (615) additional three- dimensional information relating to the particular stereoscopic content in a message signaling the video bitstream.
66. The method of claim 65, wherein the message is a Supplemental Enhancement Information (SEI) message.
67. The method of claim 65, wherein the message is sent out of band.
68. The method of claim 65, wherein the additional three-dimensional information is provided as metadata.
69. The method of claim 65, further comprising: reconstructing (620) a non-coded view of the particular stereoscopic content using reconstructed video from the base layer, at least one of a reconstructed depth map and a reconstructed disparity map, and the additional three-dimensional information in the message; and encoding (625) an additional enhancement layer based on the reconstructed non-coded view.
70. The method of claim 64, wherein the temporal, spatial, and signal to noise ratio scalability techniques are performed in compliance with the Scalable Video Coding Extension of the International Organization for Standardization/International Electrotechnical Commission Moving Picture Experts Group-4 Part 10 Advanced Video Coding standard/International Telecommunication Union, Telecommunication Sector H.264 standard.
71. The method of claim 64, wherein said encoder constrains a spatial scaling factor to be equal to or less than one, when the spatial scalable video encoding technique is selected (855).
72. The method of claim 71 , wherein said encoding step encodes at least some blocks in the base layer and the enhancement layer using inter-layer prediction, by setting the spatial scaling factor equal to 2("n), n being an integer greater than zero, performing a many-to-one block mapping from the base layer to the enhancement layer, converting any of the at least some blocks in the base layer having an intra prediction mode to an inter-prediction mode, and forcing motion vectors and discrete cosine transform coefficients in the intra-prediction mode to be zero (830, 850, 855).
73. The method of claim 72, wherein said encoding step maps a motion vector for a block in the enhancement layer to a scaled motion vector of a corner of a corresponding mapped block from a set of mapped blocks in the base layer, and assigns a reference index for the block in the enhancement layer to that of the corner of the corresponding mapped block in the base layer, the block in the enhancement layer and the set of mapped blocks in the base layer included in the at least some blocks, the block in the enhancement layer being co-located with respect to the set of mapped blocks in the base layer (835, 855).
74. The method of claim 72, wherein said encoding step encodes at least some blocks in the base layer and the enhancement layer by setting the spatial scaling factor equal to 2('n), n being an integer greater than zero, and performing averaging for texture downsampling of residues corresponding to the at least some blocks (850, 855).
75. The method of claim 64, wherein the pair of stereoscopic views is encoded by enabling weighted prediction for cross view prediction between the first stereoscopic view and the second stereoscopic view (825).
76. The method of claim 75, wherein the weighted prediction is enabled when coding a difference between a macroblock in the enhancement layer and a weighted macroblock scaled from a set of mapped macroblocks in the base layer, the macroblock in the enhancement layer being co-located with respect to the set of mapped macroblocks in the base layer.
77. An apparatus comprising: a decoder (200) for decoding a first stereoscopic view from a base layer, and decoding at least one of a depth map and a disparity map from an enhancement layer using a prediction from the first stereoscopic view, wherein the first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are decoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
78. The apparatus of claim 77, wherein the base layer and the enhancement layer are included a video bitstream, and said decoder (200) reads additional three- dimensional information relating to the particular stereoscopic content from a message signaling the video bitstream.
79. The apparatus of claim 78, wherein the message is a Supplemental Enhancement Information (SEI) message.
80. The apparatus of claim 78, wherein the message is sent out of band.
81. The apparatus of claim 78, wherein the additional three-dimensional information is provided as metadata.
82. The apparatus of claim 78, wherein said decoder (200) reconstructs a non-coded view of the particular stereoscopic content as the base layer using reconstructed video from the base layer, at least one of a reconstructed depth map and a reconstructed disparity map, and the additional three-dimensional information in the message, and decodes an additional enhancement layer based on the reconstructed non-coded view to form a refined non-coded view of the particular stereoscopic content.
83. The apparatus of claim 77, wherein the temporal, spatial, and signal to noise ratio scalability techniques are performed in compliance with the Scalable Video Coding Extension of the International Organization for Standardization/International Electrotechnical Commission Moving Picture Experts Group-4 Part 10 Advanced Video Coding standard/International Telecommunication Union, Telecommunication Sector H.264 standard.
84. The apparatus of claim 77, wherein the pair of stereoscopic views is decoded by enabling weighted prediction for cross view prediction between the first stereoscopic view and the second stereoscopic view.
85. The apparatus of claim 84, wherein the weighted prediction is enabled when decoding a difference between a macroblock in the enhancement layer and a weighted macroblock scaled from a set of mapped macroblocks in the base layer, the macroblock in the enhancement layer being co-located with respect to the set of mapped macroblocks in the base layer.
86. A method for scalable video decoding, comprising: decoding (710) a first stereoscopic view from a base layer; and decoding (710) at least one of a depth map and a disparity map from an enhancement layer using a prediction from the first stereoscopic view, wherein the first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are decoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
87. The method of claim 86, wherein the base layer and the enhancement layer are included a video bitstream, and method further comprises reading (715) additional three-dimensional information relating to the particular stereoscopic content from a message signaling the video bitstream.
88. The method of claim 87, wherein the message is a Supplemental Enhancement Information (SEI) message.
89. The method of claim 87, wherein the message is sent out of band.
90. The method of claim 87, wherein the additional three-dimensional information is provided as metadata.
91. The method of claim 87, further comprising: reconstructing (720) a non-coded view of the particular stereoscopic content as the base layer using reconstructed video from the base layer, at least one of a reconstructed depth map and a reconstructed disparity map, and the additional three- dimensional information in the message; and decoding (725) an additional enhancement layer based on the reconstructed non-coded view to form a refined non-coded view of the particular stereoscopic content.
92. The method of claim 86, wherein the temporal, spatial, and signal to noise ratio scalability techniques are performed in compliance with the Scalable Video Coding Extension of the International Organization for Standardization/International Electrotechnical Commission Moving Picture Experts Group-4 Part 10 Advanced Video Coding standard/International Telecommunication Union, Telecommunication Sector H.264 standard.
93. The method of claim 86, wherein the pair of stereoscopic views is decoded by enabling weighted prediction for cross view prediction between the first stereoscopic view and the second stereoscopic view (930).
94. The method of claim 93, wherein the weighted prediction is enabled when decoding a difference between a macroblock in the enhancement layer and a weighted macroblock scaled from a set of mapped macroblocks in the base layer, the macroblock in the enhancement layer being co-located with respect to the set of mapped macroblocks in the base layer.
95. A video signal structure for scalable video encoding, comprising: a first stereoscopic view encoded as a base layer; and at least one of a depth map and a disparity map encoded as enhancement layer to allow a prediction from the first stereoscopic view, wherein the first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
96. A storage media having scalable video signal data encoded thereupon, comprising: a first stereoscopic view encoded as a base layer; and at least one of a depth map and a disparity map encoded as enhancement layer to allow a prediction from the first stereoscopic view, wherein the first stereoscopic view and the at least one of the depth map and the disparity map each correspond to a particular stereoscopic content and are encoded based on a selection from among at least two of temporal, spatial, and SNR scalability techniques.
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Cited By (62)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2008020734A1 (en) * 2006-08-18 2008-02-21 Gwangju Institute Of Science And Technology A method and apparatus for encoding or decoding frames of different views in multiview video using global disparity
JP2009004940A (en) * 2007-06-20 2009-01-08 Victor Co Of Japan Ltd Multi-viewpoint image encoding method, multi-viewpoint image encoding device, and multi-viewpoint image encoding program
JP2009004939A (en) * 2007-06-20 2009-01-08 Victor Co Of Japan Ltd Multi-viewpoint image decoding method, multi-viewpoint image decoding device, and multi-viewpoint image decoding program
WO2009002092A3 (en) * 2007-06-25 2009-02-26 Samsung Electronics Co Ltd Method and apparatus for illumination compensation in multi-view video coding
WO2009002108A3 (en) * 2007-06-26 2009-02-26 Samsung Electronics Co Ltd Method and apparatus for illumination compensation in multi-view video coding
WO2009065325A1 (en) * 2007-10-24 2009-05-28 Shenzhen Huawei Communication Technologies Co. , Ltd. A video encoding/decoding method and a video encoder/decoder
JP2009164937A (en) * 2008-01-08 2009-07-23 Nippon Telegr & Teleph Corp <Ntt> Motion image multiplexing method, file reading method and apparatus, program thereof and computer-readable recording medium
WO2009130561A1 (en) * 2008-04-21 2009-10-29 Nokia Corporation Method and device for video coding and decoding
WO2010043773A1 (en) * 2008-10-17 2010-04-22 Nokia Corporation Sharing of motion vector in 3d video coding
EP2209320A1 (en) * 2007-10-17 2010-07-21 Huawei Device Co., Ltd. Video encoding decoding method and device and video codec
CN101170702B (en) * 2007-11-23 2010-08-11 四川虹微技术有限公司 Multi-view video coding method
WO2010096189A1 (en) * 2009-02-19 2010-08-26 Thomson Licensing 3d video formats
WO2010126608A3 (en) * 2009-05-01 2010-12-16 Thomson Licensing 3d video coding formats
WO2010147289A1 (en) * 2009-06-16 2010-12-23 Lg Electronics Inc. Broadcast transmitter, broadcast receiver and 3d video processing method thereof
WO2011005625A1 (en) * 2009-07-04 2011-01-13 Dolby Laboratories Licensing Corporation Support of full resolution graphics, menus, and subtitles in frame compatible 3d delivery
WO2011005624A1 (en) * 2009-07-04 2011-01-13 Dolby Laboratories Licensing Corporation Encoding and decoding architectures for format compatible 3d video delivery
US20110044664A1 (en) * 2008-06-18 2011-02-24 Maki Yukawa Three-dimensional video conversion recording device, three-dimensional video conversion recording method, recording medium, three-dimensional video conversion device, and three-dimensional video transmission device
CN102067615A (en) * 2008-06-24 2011-05-18 三星电子株式会社 Image generating method and apparatus and image processing method and apparatus
WO2011094019A1 (en) * 2010-01-29 2011-08-04 Thomson Licensing Block-based interleaving
WO2011094047A1 (en) * 2010-02-01 2011-08-04 Dolby Laboratories Licensing Corporation Filtering for image and video enhancement using asymmetric samples
WO2011108903A2 (en) * 2010-03-05 2011-09-09 한국전자통신연구원 Method and apparatus for transmission and reception in the provision of a plurality of transport interactive 3dtv broadcasting services
US20110221861A1 (en) * 2008-11-18 2011-09-15 Lg Electronics Inc. Method and apparatus for processing video signal
EP2375757A1 (en) * 2010-03-31 2011-10-12 Sony Corporation Information processing apparatus, information processing method, reproduction apparatus, reproduction method, and program
WO2010068020A3 (en) * 2008-12-08 2011-10-27 한국전자통신연구원 Multi- view video coding/decoding method and apparatus
JP2011528882A (en) * 2008-07-21 2011-11-24 トムソン ライセンシング 3D video signal encoding apparatus
EP2405433A1 (en) * 2010-07-07 2012-01-11 Sony Corporation Recording apparatus, recording method, reproducing apparatus, reproducing method, program, and recording/producing apparatus
WO2012012584A1 (en) * 2010-07-21 2012-01-26 Dolby Laboratories Licensing Corporation Systems and methods for multi-layered frame-compatible video delivery
WO2011084913A3 (en) * 2010-01-06 2012-09-20 Dolby Laboratories Licensing Corporation Complexity-adaptive scalable decoding and streaming for multi-layered video systems
WO2013040170A1 (en) * 2011-09-16 2013-03-21 Dolby Laboratories Licensing Corporation Frame-compatible full resolution stereoscopic 3d compression and decompression
US8532410B2 (en) 2008-04-25 2013-09-10 Thomson Licensing Multi-view video coding with disparity estimation based on depth information
WO2013141671A1 (en) * 2012-03-23 2013-09-26 한국전자통신연구원 Method and apparatus for inter-layer intra prediction
WO2013163155A1 (en) * 2012-04-23 2013-10-31 Qualcomm Incorporated View dependency in multi-view coding and 3d coding
US8704873B2 (en) 2009-10-28 2014-04-22 Sony Corporation Receiving stream data which may be used to implement both two-dimensional display and three-dimensional display
US8743178B2 (en) 2010-01-05 2014-06-03 Dolby Laboratories Licensing Corporation Multi-view video format control
RU2518408C2 (en) * 2007-09-24 2014-06-10 Конинклейке Филипс Электроникс Н.В. Method and system for encoding video data signal, encoded video data signal, method and system for decoding video data signal
US8761265B2 (en) 2007-04-17 2014-06-24 Thomson Licensing Hypothetical reference decoder for multiview video coding
WO2014107074A1 (en) * 2013-01-04 2014-07-10 삼성전자 주식회사 Motion compensation method and device for encoding and decoding scalable video
US8780998B2 (en) 2007-04-12 2014-07-15 Thomson Licensing Tiling in video decoding and encoding
US8913105B2 (en) 2009-01-07 2014-12-16 Thomson Licensing Joint depth estimation
US8918284B2 (en) 2010-03-31 2014-12-23 Sony Corporation Information processing apparatus, behavior prediction display method, and computer program therefor
CN104284195A (en) * 2014-10-11 2015-01-14 华为技术有限公司 Prediction method and device for depth image in three-dimensional video, encoder and decoder
US8947504B2 (en) 2009-01-28 2015-02-03 Lg Electronics Inc. Broadcast receiver and video data processing method thereof
KR101499252B1 (en) * 2007-06-08 2015-03-09 삼성전자주식회사 Method for recording three-dimensional video data and computer readable medium recording the same
US9036714B2 (en) 2009-01-26 2015-05-19 Thomson Licensing Frame packing for video coding
EP2787733A4 (en) * 2011-12-04 2015-07-22 Lg Electronics Inc Digital broadcasting reception method and apparatus capable of displaying stereoscopic images
EP2930927A1 (en) * 2009-04-27 2015-10-14 LG Electronics, Inc. Broadcast receiver and 3d video data processing method thereof
US9179153B2 (en) 2008-08-20 2015-11-03 Thomson Licensing Refined depth map
EP2744201A4 (en) * 2011-08-09 2016-03-23 Samsung Electronics Co Ltd Method and device for encoding a depth map of multi viewpoint video data, and method and device for decoding the encoded depth map
CN102326390B9 (en) * 2009-02-19 2016-04-20 汤姆逊许可证公司 3D video format
EP2744200A4 (en) * 2011-08-09 2016-07-27 Samsung Electronics Co Ltd Multiview video data encoding method and device, and decoding method and device
US9467689B2 (en) 2010-07-08 2016-10-11 Dolby Laboratories Licensing Corporation Systems and methods for multi-layered image and video delivery using reference processing signals
US9485492B2 (en) 2010-09-14 2016-11-01 Thomson Licensing Llc Compression methods and apparatus for occlusion data
RU2625519C2 (en) * 2009-04-08 2017-07-14 Сони Корпорейшн Information processing device, information processing method, program and data carrier
US10198792B2 (en) 2009-10-14 2019-02-05 Dolby Laboratories Licensing Corporation Method and devices for depth map processing
US10200749B2 (en) 2008-04-10 2019-02-05 Gvbb Holdings S.A.R.L. Method and apparatus for content replacement in live production
EP2528335B1 (en) * 2011-05-24 2019-02-20 Comcast Cable Communications, LLC Dynamic distribution of three-dimensional content
US10313702B2 (en) 2007-04-25 2019-06-04 Interdigital Madison Patent Holdings Inter-view prediction
US10791315B2 (en) 2013-01-04 2020-09-29 Qualcomm Incorporated Signaling of spatial resolution of depth views in multiview coding file format
US20210211743A1 (en) 2010-04-13 2021-07-08 Ge Video Compression, Llc Coding of a spatial sampling of a two-dimensional information signal using sub-division
US11546641B2 (en) 2010-04-13 2023-01-03 Ge Video Compression, Llc Inheritance in sample array multitree subdivision
US11611761B2 (en) 2010-04-13 2023-03-21 Ge Video Compression, Llc Inter-plane reuse of coding parameters
US11734714B2 (en) 2010-04-13 2023-08-22 Ge Video Compression, Llc Region merging and coding parameter reuse via merging

Families Citing this family (123)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6307487B1 (en) 1998-09-23 2001-10-23 Digital Fountain, Inc. Information additive code generator and decoder for communication systems
US7068729B2 (en) 2001-12-21 2006-06-27 Digital Fountain, Inc. Multi-stage code generator and decoder for communication systems
US9240810B2 (en) 2002-06-11 2016-01-19 Digital Fountain, Inc. Systems and processes for decoding chain reaction codes through inactivation
EP2355360B1 (en) 2002-10-05 2020-08-05 QUALCOMM Incorporated Systematic encoding and decoding of chain reaction codes
KR101183843B1 (en) 2003-10-06 2012-09-19 디지털 파운튼, 인크. Error-correcting multi-stage code generator and decoder for communication systems having single transmitters or multiple transmitters
JP4971144B2 (en) 2004-05-07 2012-07-11 デジタル ファウンテン, インコーポレイテッド File download and streaming system
KR101208498B1 (en) * 2005-10-10 2012-12-05 엘지전자 주식회사 digital broadcasting system, method, and data structure
US8315308B2 (en) * 2006-01-11 2012-11-20 Qualcomm Incorporated Video coding with fine granularity spatial scalability
US20070177671A1 (en) * 2006-01-12 2007-08-02 Lg Electronics Inc. Processing multiview video
JP5192393B2 (en) * 2006-01-12 2013-05-08 エルジー エレクトロニクス インコーポレイティド Multi-view video processing
KR101276847B1 (en) 2006-01-12 2013-06-18 엘지전자 주식회사 Processing multiview video
WO2007095550A2 (en) 2006-02-13 2007-08-23 Digital Fountain, Inc. Streaming and buffering using variable fec overhead and protection periods
US9270414B2 (en) 2006-02-21 2016-02-23 Digital Fountain, Inc. Multiple-field based code generator and decoder for communications systems
WO2007134196A2 (en) 2006-05-10 2007-11-22 Digital Fountain, Inc. Code generator and decoder using hybrid codes
US9432433B2 (en) 2006-06-09 2016-08-30 Qualcomm Incorporated Enhanced block-request streaming system using signaling or block creation
US9386064B2 (en) 2006-06-09 2016-07-05 Qualcomm Incorporated Enhanced block-request streaming using URL templates and construction rules
US9419749B2 (en) 2009-08-19 2016-08-16 Qualcomm Incorporated Methods and apparatus employing FEC codes with permanent inactivation of symbols for encoding and decoding processes
US9209934B2 (en) 2006-06-09 2015-12-08 Qualcomm Incorporated Enhanced block-request streaming using cooperative parallel HTTP and forward error correction
US9178535B2 (en) 2006-06-09 2015-11-03 Digital Fountain, Inc. Dynamic stream interleaving and sub-stream based delivery
EP2052546A4 (en) 2006-07-12 2010-03-03 Lg Electronics Inc A method and apparatus for processing a signal
JP5273816B2 (en) * 2007-01-04 2013-08-28 トムソン ライセンシング Method and apparatus for video error concealment in multi-view coded video using high level syntax
US8155461B2 (en) * 2007-03-27 2012-04-10 Samsung Electronics Co., Ltd. Methods and apparatuses for encoding and decoding multi-view image
US8558832B1 (en) * 2007-06-19 2013-10-15 Nvida Corporation System, method, and computer program product for generating a plurality of two-dimensional images and depth maps for a scene at a point in time
US8023562B2 (en) * 2007-09-07 2011-09-20 Vanguard Software Solutions, Inc. Real-time video coding/decoding
AU2008298602A1 (en) 2007-09-12 2009-03-19 Digital Fountain, Inc. Generating and communicating source identification information to enable reliable communications
CN101897193A (en) * 2007-10-10 2010-11-24 韩国电子通信研究院 Metadata structure for storing and playing stereoscopic data, and method for storing stereoscopic content file using this metadata
KR101591085B1 (en) * 2008-05-19 2016-02-02 삼성전자주식회사 Apparatus and method for generating and playing image file
WO2009157713A2 (en) * 2008-06-24 2009-12-30 Samsung Electronics Co., Ltd. Image processing method and apparatus
US20100232521A1 (en) * 2008-07-10 2010-09-16 Pierre Hagendorf Systems, Methods, and Media for Providing Interactive Video Using Scalable Video Coding
US9538176B2 (en) * 2008-08-08 2017-01-03 Dolby Laboratories Licensing Corporation Pre-processing for bitdepth and color format scalable video coding
KR101012760B1 (en) * 2008-09-05 2011-02-08 에스케이 텔레콤주식회사 System and Method for transmitting and receiving of Multi-view video
MX2010002097A (en) * 2008-09-30 2010-08-02 Panasonic Corp Recording medium, reproduction device, system lsi, reproduction method, spectacle, and display device associated with 3d video.
CN102232295A (en) * 2008-09-30 2011-11-02 松下电器产业株式会社 Reproduction device, recording medium, and integrated circuit
US8482654B2 (en) * 2008-10-24 2013-07-09 Reald Inc. Stereoscopic image format with depth information
KR101154051B1 (en) * 2008-11-28 2012-06-08 한국전자통신연구원 Apparatus and method for multi-view video transmission and reception
US8587639B2 (en) * 2008-12-11 2013-11-19 Alcatel Lucent Method of improved three dimensional display technique
US8798158B2 (en) * 2009-03-11 2014-08-05 Industry Academic Cooperation Foundation Of Kyung Hee University Method and apparatus for block-based depth map coding and 3D video coding method using the same
JP5267886B2 (en) * 2009-04-08 2013-08-21 ソニー株式会社 REPRODUCTION DEVICE, RECORDING MEDIUM, AND INFORMATION PROCESSING METHOD
US20100278232A1 (en) * 2009-05-04 2010-11-04 Sehoon Yea Method Coding Multi-Layered Depth Images
CN102474638B (en) * 2009-07-27 2015-07-01 皇家飞利浦电子股份有限公司 Combining 3D video and auxiliary data
WO2011019224A2 (en) * 2009-08-12 2011-02-17 엘지전자 주식회사 Method for diagnosing 3d state information, and broadcast receiver
US9414080B2 (en) * 2009-08-21 2016-08-09 Broadcom Corporation Method and system for asymmetrical rate control for 3D video compression
US9917874B2 (en) 2009-09-22 2018-03-13 Qualcomm Incorporated Enhanced block-request streaming using block partitioning or request controls for improved client-side handling
US8665968B2 (en) * 2009-09-30 2014-03-04 Broadcom Corporation Method and system for 3D video coding using SVC spatial scalability
US20110122225A1 (en) * 2009-11-23 2011-05-26 General Instrument Corporation Depth Coding as an Additional Channel to Video Sequence
US9014276B2 (en) * 2009-12-04 2015-04-21 Broadcom Corporation Method and system for 3D video coding using SVC temporal and spatial scalabilities
US8526488B2 (en) 2010-02-09 2013-09-03 Vanguard Software Solutions, Inc. Video sequence encoding system and algorithms
US9172991B2 (en) * 2010-04-30 2015-10-27 Lg Electronics Inc. Apparatus of processing an image and a method of processing thereof
US8483271B2 (en) * 2010-05-06 2013-07-09 Broadcom Corporation Method and system for 3D video pre-processing and post-processing
US20110280311A1 (en) 2010-05-13 2011-11-17 Qualcomm Incorporated One-stream coding for asymmetric stereo video
US9185439B2 (en) 2010-07-15 2015-11-10 Qualcomm Incorporated Signaling data for multiplexing video components
US9596447B2 (en) 2010-07-21 2017-03-14 Qualcomm Incorporated Providing frame packing type information for video coding
JP2012034138A (en) * 2010-07-29 2012-02-16 Toshiba Corp Signal processing apparatus and signal processing method
MY165186A (en) * 2010-08-09 2018-02-28 Panasonic Corp Image coding method, image decoding method, image coding apparatus, and image decoding apparatus
US8806050B2 (en) 2010-08-10 2014-08-12 Qualcomm Incorporated Manifest file updates for network streaming of coded multimedia data
KR20120020627A (en) * 2010-08-30 2012-03-08 삼성전자주식회사 Apparatus and method for image processing using 3d image format
US20120075436A1 (en) * 2010-09-24 2012-03-29 Qualcomm Incorporated Coding stereo video data
CN103190152B (en) * 2010-10-26 2016-04-27 韩国放送公社 For the hierarchical broadcast system and method for three-dimensional broadcast
KR101910192B1 (en) * 2010-11-12 2018-10-22 한국전자통신연구원 Method and apparatus determining image compression format of the 3dtv
US8755438B2 (en) * 2010-11-29 2014-06-17 Ecole De Technologie Superieure Method and system for selectively performing multiple video transcoding operations
KR101303719B1 (en) * 2011-02-03 2013-09-04 브로드콤 코포레이션 Method and system for utilizing depth information as an enhancement layer
US8958375B2 (en) 2011-02-11 2015-02-17 Qualcomm Incorporated Framing for an improved radio link protocol including FEC
EP2684371A4 (en) * 2011-03-10 2015-02-25 Vidyo Inc Signaling number of active layers in video coding
US20120236115A1 (en) * 2011-03-14 2012-09-20 Qualcomm Incorporated Post-filtering in full resolution frame-compatible stereoscopic video coding
WO2012131895A1 (en) * 2011-03-29 2012-10-04 株式会社東芝 Image encoding device, method and program, and image decoding device, method and program
KR20120118779A (en) * 2011-04-19 2012-10-29 삼성전자주식회사 Method and apparatus for video encoding performing inter layer prediction with pre-filtering, method and apparatus for video decoding performing inter layer prediction with post-filtering
CN102752588B (en) * 2011-04-22 2017-02-15 北京大学深圳研究生院 Video encoding and decoding method using space zoom prediction
JP2012249137A (en) * 2011-05-30 2012-12-13 Sony Corp Recording device, recording method, reproducing device, reproducing method, program and recording and reproducing device
EP2723079A4 (en) * 2011-06-15 2015-03-04 Korea Electronics Telecomm Method for coding and decoding scalable video and apparatus using same
US11496760B2 (en) 2011-07-22 2022-11-08 Qualcomm Incorporated Slice header prediction for depth maps in three-dimensional video codecs
US9521418B2 (en) 2011-07-22 2016-12-13 Qualcomm Incorporated Slice header three-dimensional video extension for slice header prediction
US9288505B2 (en) 2011-08-11 2016-03-15 Qualcomm Incorporated Three-dimensional video with asymmetric spatial resolution
US9253233B2 (en) 2011-08-31 2016-02-02 Qualcomm Incorporated Switch signaling methods providing improved switching between representations for adaptive HTTP streaming
US9390752B1 (en) * 2011-09-06 2016-07-12 Avid Technology, Inc. Multi-channel video editing
JP6156648B2 (en) * 2011-09-22 2017-07-05 サン パテント トラスト Moving picture coding method, moving picture coding apparatus, moving picture decoding method, and moving picture decoding apparatus
JP5735181B2 (en) 2011-09-29 2015-06-17 ドルビー ラボラトリーズ ライセンシング コーポレイション Dual layer frame compatible full resolution stereoscopic 3D video delivery
TWI595770B (en) 2011-09-29 2017-08-11 杜比實驗室特許公司 Frame-compatible full-resolution stereoscopic 3d video delivery with symmetric picture resolution and quality
AU2012323631B2 (en) * 2011-10-11 2015-09-17 Mediatek Inc. Method and apparatus of motion and disparity vector derivation for 3D video coding and HEVC
WO2013074964A1 (en) 2011-11-16 2013-05-23 Vanguard Software Solutions, Inc. Video compression for high efficiency video coding
US9485503B2 (en) 2011-11-18 2016-11-01 Qualcomm Incorporated Inside view motion prediction among texture and depth view components
CN103999466B (en) 2011-12-17 2017-08-15 杜比实验室特许公司 Multi-layer intercrossed frame is compatible to strengthen resolution video transmission
WO2013105207A1 (en) * 2012-01-10 2013-07-18 Panasonic Corporation Video encoding method, video encoding apparatus, video decoding method and video decoding apparatus
US20130222537A1 (en) * 2012-02-29 2013-08-29 Qualcomm Incorporated Bitstream extraction in three-dimensional video
US20130243079A1 (en) * 2012-03-19 2013-09-19 Nokia Siemens Networks Oy Storage and processing savings when adapting video bit rate to link speed
GB2500712A (en) * 2012-03-30 2013-10-02 Sony Corp An Apparatus and Method for transmitting a disparity map
WO2013153808A1 (en) * 2012-04-13 2013-10-17 パナソニック株式会社 Image decoding method and image decoding device
EP2839660B1 (en) * 2012-04-16 2020-10-07 Nokia Technologies Oy An apparatus, a method and a computer program for video coding and decoding
KR20130116782A (en) 2012-04-16 2013-10-24 한국전자통신연구원 Scalable layer description for scalable coded video bitstream
WO2013159643A1 (en) * 2012-04-24 2013-10-31 Mediatek Inc. Method and apparatus of motion vector derivation for 3d video coding
US20130287093A1 (en) * 2012-04-25 2013-10-31 Nokia Corporation Method and apparatus for video coding
WO2013169025A1 (en) * 2012-05-09 2013-11-14 엘지전자 주식회사 Method and device for encoding/decoding scalable video
US9762903B2 (en) * 2012-06-01 2017-09-12 Qualcomm Incorporated External pictures in video coding
TWI594616B (en) 2012-06-14 2017-08-01 杜比實驗室特許公司 Depth map delivery formats for stereoscopic and auto-stereoscopic displays
US9838688B2 (en) * 2012-06-22 2017-12-05 Mediatek Inc. Method and apparatus of adaptive intra prediction for inter-layer and inter-view coding
EP2892235B1 (en) 2012-09-03 2020-07-22 Sony Corporation Image processing device and method
US9998727B2 (en) 2012-09-19 2018-06-12 Qualcomm Incorporated Advanced inter-view residual prediction in multiview or 3-dimensional video coding
US9426462B2 (en) * 2012-09-21 2016-08-23 Qualcomm Incorporated Indication and activation of parameter sets for video coding
WO2014050827A1 (en) * 2012-09-25 2014-04-03 日本電信電話株式会社 Image encoding method, image decoding method, image encoding device, image decoding device, image encoding program, image decoding program, and recording medium
CN104704835B (en) * 2012-10-03 2017-11-24 联发科技股份有限公司 The apparatus and method of movable information management in Video coding
US9544612B2 (en) * 2012-10-04 2017-01-10 Intel Corporation Prediction parameter inheritance for 3D video coding
US10034013B2 (en) 2012-12-05 2018-07-24 Intel Corporation Recovering motion vectors from lost spatial scalability layers
ITTO20121073A1 (en) * 2012-12-13 2014-06-14 Rai Radiotelevisione Italiana APPARATUS AND METHOD FOR THE GENERATION AND RECONSTRUCTION OF A VIDEO FLOW
US9106922B2 (en) 2012-12-19 2015-08-11 Vanguard Software Solutions, Inc. Motion estimation engine for video encoding
US9743097B2 (en) * 2013-03-01 2017-08-22 Qualcomm Incorporated Spatial motion vector scaling for scalable video coding
US9369708B2 (en) * 2013-03-27 2016-06-14 Qualcomm Incorporated Depth coding modes signaling of depth data for 3D-HEVC
US9807421B2 (en) * 2013-04-05 2017-10-31 Sharp Kabushiki Kaisha NAL unit type restrictions
US20140301463A1 (en) * 2013-04-05 2014-10-09 Nokia Corporation Method and apparatus for video coding and decoding
CN105122805B (en) * 2013-04-05 2019-10-15 Vid拓展公司 For the equipment of the inter-layer reference picture enhancing of multi-layer video coding
WO2014166096A1 (en) * 2013-04-11 2014-10-16 Mediatek Singapore Pte. Ltd. Reference view derivation for inter-view motion prediction and inter-view residual prediction
US9288507B2 (en) * 2013-06-21 2016-03-15 Qualcomm Incorporated More accurate advanced residual prediction (ARP) for texture coding
WO2015012514A1 (en) * 2013-07-26 2015-01-29 경희대학교 산학협력단 Method and apparatus for integrally encoding/decoding different multi-layer video codecs
KR101595397B1 (en) 2013-07-26 2016-02-29 경희대학교 산학협력단 Method and apparatus for integrated encoding/decoding of different multilayer video codec
CN104427337B (en) * 2013-08-21 2018-03-27 杭州海康威视数字技术股份有限公司 Interested area video coding method and its device based on target detection
US8879858B1 (en) 2013-10-01 2014-11-04 Gopro, Inc. Multi-channel bit packing engine
CN103561255B (en) * 2013-10-24 2016-01-27 洪丹 A kind of Nakedness-yet stereoscopic display method
US9854270B2 (en) * 2013-12-19 2017-12-26 Qualcomm Incorporated Device and method for scalable coding of video information
US9826232B2 (en) * 2014-01-08 2017-11-21 Qualcomm Incorporated Support of non-HEVC base layer in HEVC multi-layer extensions
US20160050440A1 (en) * 2014-08-15 2016-02-18 Ying Liu Low-complexity depth map encoder with quad-tree partitioned compressed sensing
WO2016129899A1 (en) * 2015-02-11 2016-08-18 한국전자통신연구원 3dtv broadcast transmission and reception device
KR102517570B1 (en) 2015-02-11 2023-04-05 한국전자통신연구원 Apparatus and method for transmitting and receiving 3dtv broadcasting
CN109559349B (en) * 2017-09-27 2021-11-09 虹软科技股份有限公司 Method and device for calibration
FR3080968A1 (en) * 2018-05-03 2019-11-08 Orange METHOD AND DEVICE FOR DECODING A MULTI-VIEW VIDEO, AND METHOD AND DEVICE FOR PROCESSING IMAGES
US11468587B2 (en) * 2020-05-12 2022-10-11 Samsung Electronics Co., Ltd. System and method for depth map recovery

Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5612735A (en) * 1995-05-26 1997-03-18 Luncent Technologies Inc. Digital 3D/stereoscopic video compression technique utilizing two disparity estimates
EP0883300A2 (en) * 1997-06-05 1998-12-09 General Instrument Corporation Temporal and spatial scaleable coding for video object planes
US6055012A (en) * 1995-12-29 2000-04-25 Lucent Technologies Inc. Digital multi-view video compression with complexity and compatibility constraints
WO2004059980A1 (en) * 2002-12-27 2004-07-15 Electronics And Telecommunications Research Institute Method and apparatus for encoding and decoding stereoscopic video
EP1524859A2 (en) * 2003-10-16 2005-04-20 Sharp Kabushiki Kaisha System and method for three-dimensional video coding
WO2005069630A1 (en) * 2004-01-20 2005-07-28 Daeyang Foundation Method, medium, and apparatus for 3-dimensional encoding and/or decoding of video
US20050185711A1 (en) * 2004-02-20 2005-08-25 Hanspeter Pfister 3D television system and method
WO2006104326A1 (en) * 2005-04-01 2006-10-05 Industry Academic Cooperation Foundation Kyunghee University Scalable multi-view image encoding and decoding apparatuses and methods

Family Cites Families (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5619256A (en) * 1995-05-26 1997-04-08 Lucent Technologies Inc. Digital 3D/stereoscopic video compression technique utilizing disparity and motion compensated predictions
KR100454194B1 (en) * 2001-12-28 2004-10-26 한국전자통신연구원 Stereoscopic Video Encoder and Decoder Supporting Multi-Display Mode and Method Thereof
KR100459893B1 (en) * 2002-01-08 2004-12-04 삼성전자주식회사 Method and apparatus for color-based object tracking in video sequences
CN1685730A (en) * 2002-09-25 2005-10-19 皇家飞利浦电子股份有限公司 Method and system for processing a digital video signal
AU2003263557A1 (en) * 2002-10-23 2004-05-13 Koninklijke Philips Electronics N.V. Method for post-processing a 3d digital video signal
US20050012817A1 (en) * 2003-07-15 2005-01-20 International Business Machines Corporation Selective surveillance system with active sensor management policies
US7843959B2 (en) * 2004-01-30 2010-11-30 Telefonaktiebolaget Lm Ericsson Prioritising data elements of a data stream
JP2007525906A (en) * 2004-02-27 2007-09-06 ティディヴィジョン コーポレイション エス.エー. デ シー.ヴィ. Stereo 3D video image digital coding system and method
US7515759B2 (en) * 2004-07-14 2009-04-07 Sharp Laboratories Of America, Inc. 3D video coding using sub-sequences
TWI268715B (en) * 2004-08-16 2006-12-11 Nippon Telegraph & Telephone Picture encoding method, picture decoding method, picture encoding apparatus, and picture decoding apparatus
US7961963B2 (en) * 2005-03-18 2011-06-14 Sharp Laboratories Of America, Inc. Methods and systems for extended spatial scalability with picture-level adaptation
US8731064B2 (en) * 2006-09-11 2014-05-20 Apple Inc. Post-processing for decoder complexity scalability
US20080205791A1 (en) * 2006-11-13 2008-08-28 Ramot At Tel-Aviv University Ltd. Methods and systems for use in 3d video generation, storage and compression

Patent Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5612735A (en) * 1995-05-26 1997-03-18 Luncent Technologies Inc. Digital 3D/stereoscopic video compression technique utilizing two disparity estimates
US6055012A (en) * 1995-12-29 2000-04-25 Lucent Technologies Inc. Digital multi-view video compression with complexity and compatibility constraints
EP0883300A2 (en) * 1997-06-05 1998-12-09 General Instrument Corporation Temporal and spatial scaleable coding for video object planes
WO2004059980A1 (en) * 2002-12-27 2004-07-15 Electronics And Telecommunications Research Institute Method and apparatus for encoding and decoding stereoscopic video
EP1524859A2 (en) * 2003-10-16 2005-04-20 Sharp Kabushiki Kaisha System and method for three-dimensional video coding
WO2005069630A1 (en) * 2004-01-20 2005-07-28 Daeyang Foundation Method, medium, and apparatus for 3-dimensional encoding and/or decoding of video
US20050185711A1 (en) * 2004-02-20 2005-08-25 Hanspeter Pfister 3D television system and method
WO2006104326A1 (en) * 2005-04-01 2006-10-05 Industry Academic Cooperation Foundation Kyunghee University Scalable multi-view image encoding and decoding apparatuses and methods

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
OHM J-R: "STEREO/MULTIVIEW VIDEO ENCODING USING THE MPEG FAMILY OF STANDARDS" PROCEEDINGS OF THE SPIE, SPIE, BELLINGHAM, VA, US, vol. 3639, 25 January 1999 (1999-01-25), pages 242-255, XP008022007 ISSN: 0277-786X *
WENXIAN YANG ET AL: "Scalable Multiview Video Coding Using Wavelet" CIRCUITS AND SYSTEMS, 2005. ISCAS 2005. IEEE INTERNATIONAL SYMPOSIUM ON KOBE, JAPAN 23-26 MAY 2005, PISCATAWAY, NJ, USA,IEEE, 23 May 2005 (2005-05-23), pages 6078-6081, XP010816922 ISBN: 0-7803-8834-8 *

Cited By (162)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8179969B2 (en) 2006-08-18 2012-05-15 Gwangju Institute Of Science And Technology Method and apparatus for encoding or decoding frames of different views in multiview video using global disparity
WO2008020734A1 (en) * 2006-08-18 2008-02-21 Gwangju Institute Of Science And Technology A method and apparatus for encoding or decoding frames of different views in multiview video using global disparity
US9232235B2 (en) 2007-04-12 2016-01-05 Thomson Licensing Tiling in video encoding and decoding
US9986254B1 (en) 2007-04-12 2018-05-29 Dolby Laboratories Licensing Corporation Tiling in video encoding and decoding
US9706217B2 (en) 2007-04-12 2017-07-11 Dolby Laboratories Licensing Corporation Tiling in video encoding and decoding
US9838705B2 (en) 2007-04-12 2017-12-05 Dolby Laboratories Licensing Corporation Tiling in video encoding and decoding
US9973771B2 (en) 2007-04-12 2018-05-15 Dolby Laboratories Licensing Corporation Tiling in video encoding and decoding
US9445116B2 (en) 2007-04-12 2016-09-13 Thomson Licensing Tiling in video encoding and decoding
US10129557B2 (en) 2007-04-12 2018-11-13 Dolby Laboratories Licensing Corporation Tiling in video encoding and decoding
US10432958B2 (en) 2007-04-12 2019-10-01 Dolby Laboratories Licensing Corporation Tiling in video encoding and decoding
US10298948B2 (en) 2007-04-12 2019-05-21 Dolby Laboratories Licensing Corporation Tiling in video encoding and decoding
US9219923B2 (en) 2007-04-12 2015-12-22 Thomson Licensing Tiling in video encoding and decoding
US9185384B2 (en) 2007-04-12 2015-11-10 Thomson Licensing Tiling in video encoding and decoding
US8780998B2 (en) 2007-04-12 2014-07-15 Thomson Licensing Tiling in video decoding and encoding
US10764596B2 (en) 2007-04-12 2020-09-01 Dolby Laboratories Licensing Corporation Tiling in video encoding and decoding
US8761265B2 (en) 2007-04-17 2014-06-24 Thomson Licensing Hypothetical reference decoder for multiview video coding
US10313702B2 (en) 2007-04-25 2019-06-04 Interdigital Madison Patent Holdings Inter-view prediction
KR101499252B1 (en) * 2007-06-08 2015-03-09 삼성전자주식회사 Method for recording three-dimensional video data and computer readable medium recording the same
JP2009004940A (en) * 2007-06-20 2009-01-08 Victor Co Of Japan Ltd Multi-viewpoint image encoding method, multi-viewpoint image encoding device, and multi-viewpoint image encoding program
JP2009004939A (en) * 2007-06-20 2009-01-08 Victor Co Of Japan Ltd Multi-viewpoint image decoding method, multi-viewpoint image decoding device, and multi-viewpoint image decoding program
WO2009002092A3 (en) * 2007-06-25 2009-02-26 Samsung Electronics Co Ltd Method and apparatus for illumination compensation in multi-view video coding
US8259792B2 (en) 2007-06-25 2012-09-04 Samsung Electronics Co., Ltd. Method and apparatus for illumination compensation in multi-view video coding
WO2009002108A3 (en) * 2007-06-26 2009-02-26 Samsung Electronics Co Ltd Method and apparatus for illumination compensation in multi-view video coding
US10904509B2 (en) 2007-09-24 2021-01-26 Koninklijke Philips N.V. Method and system for encoding a video data signal, encoded video data signal, method and system for decoding a video data signal
RU2518408C2 (en) * 2007-09-24 2014-06-10 Конинклейке Филипс Электроникс Н.В. Method and system for encoding video data signal, encoded video data signal, method and system for decoding video data signal
US11677924B2 (en) 2007-09-24 2023-06-13 Koninklijke Philips N.V. Method and system for encoding a video data signal, encoded video data signal, method and system for decoding a video data signal
EP2209320A4 (en) * 2007-10-17 2010-12-01 Huawei Device Co Ltd Video encoding decoding method and device and video codec
EP2209320A1 (en) * 2007-10-17 2010-07-21 Huawei Device Co., Ltd. Video encoding decoding method and device and video codec
EP2207352A4 (en) * 2007-10-24 2011-06-08 Huawei Device Co Ltd A video encoding/decoding method and a video encoder/decoder
EP2207352A1 (en) * 2007-10-24 2010-07-14 Huawei Device Co., Ltd. A video encoding/decoding method and a video encoder/decoder
WO2009065325A1 (en) * 2007-10-24 2009-05-28 Shenzhen Huawei Communication Technologies Co. , Ltd. A video encoding/decoding method and a video encoder/decoder
JP2011501581A (en) * 2007-10-24 2011-01-06 ファーウェイ デバイス カンパニー リミテッド Video encoding method, video decoding method, video coder and video decoder
CN101170702B (en) * 2007-11-23 2010-08-11 四川虹微技术有限公司 Multi-view video coding method
JP2009164937A (en) * 2008-01-08 2009-07-23 Nippon Telegr & Teleph Corp <Ntt> Motion image multiplexing method, file reading method and apparatus, program thereof and computer-readable recording medium
US10200749B2 (en) 2008-04-10 2019-02-05 Gvbb Holdings S.A.R.L. Method and apparatus for content replacement in live production
US8855199B2 (en) 2008-04-21 2014-10-07 Nokia Corporation Method and device for video coding and decoding
WO2009130561A1 (en) * 2008-04-21 2009-10-29 Nokia Corporation Method and device for video coding and decoding
US8532410B2 (en) 2008-04-25 2013-09-10 Thomson Licensing Multi-view video coding with disparity estimation based on depth information
US20110044664A1 (en) * 2008-06-18 2011-02-24 Maki Yukawa Three-dimensional video conversion recording device, three-dimensional video conversion recording method, recording medium, three-dimensional video conversion device, and three-dimensional video transmission device
CN102067615A (en) * 2008-06-24 2011-05-18 三星电子株式会社 Image generating method and apparatus and image processing method and apparatus
JP2011528882A (en) * 2008-07-21 2011-11-24 トムソン ライセンシング 3D video signal encoding apparatus
US9179153B2 (en) 2008-08-20 2015-11-03 Thomson Licensing Refined depth map
WO2010043773A1 (en) * 2008-10-17 2010-04-22 Nokia Corporation Sharing of motion vector in 3d video coding
US9973739B2 (en) 2008-10-17 2018-05-15 Nokia Technologies Oy Sharing of motion vector in 3D video coding
US10715779B2 (en) 2008-10-17 2020-07-14 Nokia Technologies Oy Sharing of motion vector in 3D video coding
US10306201B2 (en) 2008-10-17 2019-05-28 Nokia Technologies Oy Sharing of motion vector in 3D video coding
EP2338281A1 (en) * 2008-10-17 2011-06-29 Nokia Corporation Sharing of motion vector in 3d video coding
EP2338281A4 (en) * 2008-10-17 2012-08-15 Nokia Corp Sharing of motion vector in 3d video coding
US20110221861A1 (en) * 2008-11-18 2011-09-15 Lg Electronics Inc. Method and apparatus for processing video signal
US8760495B2 (en) * 2008-11-18 2014-06-24 Lg Electronics Inc. Method and apparatus for processing video signal
WO2010068020A3 (en) * 2008-12-08 2011-10-27 한국전자통신연구원 Multi- view video coding/decoding method and apparatus
CN102308585B (en) * 2008-12-08 2014-02-26 韩国电子通信研究院 Multi- view video coding/decoding method and apparatus
US9143796B2 (en) 2008-12-08 2015-09-22 Electronics And Telecommunications Research Institute Multi-view video coding/decoding method and apparatus
US8913105B2 (en) 2009-01-07 2014-12-16 Thomson Licensing Joint depth estimation
US9420310B2 (en) 2009-01-26 2016-08-16 Thomson Licensing Frame packing for video coding
US9036714B2 (en) 2009-01-26 2015-05-19 Thomson Licensing Frame packing for video coding
US9013548B2 (en) 2009-01-28 2015-04-21 Lg Electronics Inc. Broadcast receiver and video data processing method thereof
US10341636B2 (en) 2009-01-28 2019-07-02 Lg Electronics Inc. Broadcast receiver and video data processing method thereof
US8947504B2 (en) 2009-01-28 2015-02-03 Lg Electronics Inc. Broadcast receiver and video data processing method thereof
US9736452B2 (en) 2009-01-28 2017-08-15 Lg Electronics Inc. Broadcast receiver and video data processing method thereof
US9769452B2 (en) 2009-01-28 2017-09-19 Lg Electronics Inc. Broadcast receiver and video data processing method thereof
CN105657404A (en) * 2009-02-19 2016-06-08 汤姆逊许可证公司 3D video formats
CN102326390B9 (en) * 2009-02-19 2016-04-20 汤姆逊许可证公司 3D video format
CN102326390A (en) * 2009-02-19 2012-01-18 汤姆逊许可证公司 3d video formats
US12120326B2 (en) 2009-02-19 2024-10-15 Interdigital Madison Patent Holdings Method and apparatus for encoding and decoding 3D video content
KR20160107357A (en) * 2009-02-19 2016-09-13 톰슨 라이센싱 3d video formats
WO2010096189A1 (en) * 2009-02-19 2010-08-26 Thomson Licensing 3d video formats
CN105744284A (en) * 2009-02-19 2016-07-06 汤姆逊许可证公司 3d video formats
CN102326390B (en) * 2009-02-19 2016-03-09 汤姆逊许可证公司 3d video format
JP2012518367A (en) * 2009-02-19 2012-08-09 トムソン ライセンシング 3D video format
CN105744284B (en) * 2009-02-19 2019-04-19 交互数字麦迪逊专利控股公司 Use the device of 3D video format
KR20110116239A (en) * 2009-02-19 2011-10-25 톰슨 라이센싱 3d video formats
KR101940023B1 (en) * 2009-02-19 2019-01-21 톰슨 라이센싱 3d video formats
KR101972962B1 (en) * 2009-02-19 2019-04-26 톰슨 라이센싱 3d video formats
JP2016213842A (en) * 2009-02-19 2016-12-15 トムソン ライセンシングThomson Licensing 3d video formats
RU2625519C2 (en) * 2009-04-08 2017-07-14 Сони Корпорейшн Information processing device, information processing method, program and data carrier
EP2930927A1 (en) * 2009-04-27 2015-10-14 LG Electronics, Inc. Broadcast receiver and 3d video data processing method thereof
US9942558B2 (en) 2009-05-01 2018-04-10 Thomson Licensing Inter-layer dependency information for 3DV
WO2010126612A3 (en) * 2009-05-01 2011-01-20 Thomson Licensing Reference picture lists for 3dv
WO2010126613A3 (en) * 2009-05-01 2010-12-29 Thomson Licensing Inter-layer dependency information for 3dv
WO2010126608A3 (en) * 2009-05-01 2010-12-16 Thomson Licensing 3d video coding formats
CN102484700A (en) * 2009-05-01 2012-05-30 汤姆森特许公司 3d video coding formats
US9578302B2 (en) 2009-06-16 2017-02-21 Lg Electronics Inc. Broadcast transmitter, broadcast receiver and 3D video data processing method thereof
US9088817B2 (en) 2009-06-16 2015-07-21 Lg Electronics Inc. Broadcast transmitter, broadcast receiver and 3D video processing method thereof
WO2010147289A1 (en) * 2009-06-16 2010-12-23 Lg Electronics Inc. Broadcast transmitter, broadcast receiver and 3d video processing method thereof
US8676041B2 (en) 2009-07-04 2014-03-18 Dolby Laboratories Licensing Corporation Support of full resolution graphics, menus, and subtitles in frame compatible 3D delivery
WO2011005624A1 (en) * 2009-07-04 2011-01-13 Dolby Laboratories Licensing Corporation Encoding and decoding architectures for format compatible 3d video delivery
WO2011005625A1 (en) * 2009-07-04 2011-01-13 Dolby Laboratories Licensing Corporation Support of full resolution graphics, menus, and subtitles in frame compatible 3d delivery
US9774882B2 (en) 2009-07-04 2017-09-26 Dolby Laboratories Licensing Corporation Encoding and decoding architectures for format compatible 3D video delivery
US10798412B2 (en) 2009-07-04 2020-10-06 Dolby Laboratories Licensing Corporation Encoding and decoding architectures for format compatible 3D video delivery
US10038916B2 (en) 2009-07-04 2018-07-31 Dolby Laboratories Licensing Corporation Encoding and decoding architectures for format compatible 3D video delivery
US10198792B2 (en) 2009-10-14 2019-02-05 Dolby Laboratories Licensing Corporation Method and devices for depth map processing
US10417748B2 (en) 2009-10-14 2019-09-17 Dolby Laboratories Licensing Corporation Filtering and edge encoding and decoding for depth maps
US8704873B2 (en) 2009-10-28 2014-04-22 Sony Corporation Receiving stream data which may be used to implement both two-dimensional display and three-dimensional display
US8743178B2 (en) 2010-01-05 2014-06-03 Dolby Laboratories Licensing Corporation Multi-view video format control
US10237549B2 (en) 2010-01-06 2019-03-19 Dolby Laboratories Licensing Corporation Adaptive streaming of video data over a network
US9467690B2 (en) 2010-01-06 2016-10-11 Dolby Laboratories Licensing Corporation Complexity-adaptive scalable decoding and streaming for multi-layered video systems
WO2011084913A3 (en) * 2010-01-06 2012-09-20 Dolby Laboratories Licensing Corporation Complexity-adaptive scalable decoding and streaming for multi-layered video systems
US9215445B2 (en) 2010-01-29 2015-12-15 Thomson Licensing Block-based interleaving
WO2011094019A1 (en) * 2010-01-29 2011-08-04 Thomson Licensing Block-based interleaving
US9503757B2 (en) 2010-02-01 2016-11-22 Dolby Laboratories Licensing Corporation Filtering for image and video enhancement using asymmetric samples
WO2011094047A1 (en) * 2010-02-01 2011-08-04 Dolby Laboratories Licensing Corporation Filtering for image and video enhancement using asymmetric samples
WO2011108903A3 (en) * 2010-03-05 2012-01-12 한국전자통신연구원 Method and apparatus for transmission and reception in the provision of a plurality of transport interactive 3dtv broadcasting services
WO2011108903A2 (en) * 2010-03-05 2011-09-09 한국전자통신연구원 Method and apparatus for transmission and reception in the provision of a plurality of transport interactive 3dtv broadcasting services
EP2375757A1 (en) * 2010-03-31 2011-10-12 Sony Corporation Information processing apparatus, information processing method, reproduction apparatus, reproduction method, and program
US8918284B2 (en) 2010-03-31 2014-12-23 Sony Corporation Information processing apparatus, behavior prediction display method, and computer program therefor
US11910030B2 (en) 2010-04-13 2024-02-20 Ge Video Compression, Llc Inheritance in sample array multitree subdivision
US11553212B2 (en) 2010-04-13 2023-01-10 Ge Video Compression, Llc Inheritance in sample array multitree subdivision
US11765362B2 (en) 2010-04-13 2023-09-19 Ge Video Compression, Llc Inter-plane prediction
US11546642B2 (en) 2010-04-13 2023-01-03 Ge Video Compression, Llc Coding of a spatial sampling of a two-dimensional information signal using sub-division
US11736738B2 (en) 2010-04-13 2023-08-22 Ge Video Compression, Llc Coding of a spatial sampling of a two-dimensional information signal using subdivision
US11778241B2 (en) 2010-04-13 2023-10-03 Ge Video Compression, Llc Coding of a spatial sampling of a two-dimensional information signal using sub-division
US20210211743A1 (en) 2010-04-13 2021-07-08 Ge Video Compression, Llc Coding of a spatial sampling of a two-dimensional information signal using sub-division
US12120316B2 (en) 2010-04-13 2024-10-15 Ge Video Compression, Llc Inter-plane prediction
US11734714B2 (en) 2010-04-13 2023-08-22 Ge Video Compression, Llc Region merging and coding parameter reuse via merging
US11785264B2 (en) 2010-04-13 2023-10-10 Ge Video Compression, Llc Multitree subdivision and inheritance of coding parameters in a coding block
US11611761B2 (en) 2010-04-13 2023-03-21 Ge Video Compression, Llc Inter-plane reuse of coding parameters
US12010353B2 (en) 2010-04-13 2024-06-11 Ge Video Compression, Llc Inheritance in sample array multitree subdivision
US11765363B2 (en) 2010-04-13 2023-09-19 Ge Video Compression, Llc Inter-plane reuse of coding parameters
US11810019B2 (en) 2010-04-13 2023-11-07 Ge Video Compression, Llc Region merging and coding parameter reuse via merging
US11856240B1 (en) 2010-04-13 2023-12-26 Ge Video Compression, Llc Coding of a spatial sampling of a two-dimensional information signal using sub-division
US11900415B2 (en) 2010-04-13 2024-02-13 Ge Video Compression, Llc Region merging and coding parameter reuse via merging
US11910029B2 (en) 2010-04-13 2024-02-20 Ge Video Compression, Llc Coding of a spatial sampling of a two-dimensional information signal using sub-division preliminary class
US11546641B2 (en) 2010-04-13 2023-01-03 Ge Video Compression, Llc Inheritance in sample array multitree subdivision
US11983737B2 (en) 2010-04-13 2024-05-14 Ge Video Compression, Llc Region merging and coding parameter reuse via merging
EP2405433A1 (en) * 2010-07-07 2012-01-11 Sony Corporation Recording apparatus, recording method, reproducing apparatus, reproducing method, program, and recording/producing apparatus
US8712212B2 (en) 2010-07-07 2014-04-29 Sony Corporation Recording apparatus, recording method, reproducing apparatus, reproducing method, program, and recording/producing apparatus
US9467689B2 (en) 2010-07-08 2016-10-11 Dolby Laboratories Licensing Corporation Systems and methods for multi-layered image and video delivery using reference processing signals
US10531120B2 (en) 2010-07-08 2020-01-07 Dolby Laboratories Licensing Corporation Systems and methods for multi-layered image and video delivery using reference processing signals
US10142611B2 (en) 2010-07-21 2018-11-27 Dolby Laboratories Licensing Corporation Systems and methods for multi-layered frame-compatible video delivery
JP2015167394A (en) * 2010-07-21 2015-09-24 ドルビー ラボラトリーズ ライセンシング コーポレイション System and method for multi-layered frame-compatible video delivery
US8619852B2 (en) 2010-07-21 2013-12-31 Dolby Laboratories Licensing Corporation Systems and methods for multi-layered frame-compatible video delivery
JP2013538487A (en) * 2010-07-21 2013-10-10 ドルビー ラボラトリーズ ライセンシング コーポレイション System and method for multi-layer frame compliant video delivery
JP2016036177A (en) * 2010-07-21 2016-03-17 ドルビー ラボラトリーズ ライセンシング コーポレイション System and method for multi-layered frame-compatible video delivery
JP2016149801A (en) * 2010-07-21 2016-08-18 ドルビー ラボラトリーズ ライセンシング コーポレイション System and method for multi-layered frame-compatible video distribution
US11044454B2 (en) 2010-07-21 2021-06-22 Dolby Laboratories Licensing Corporation Systems and methods for multi-layered frame compatible video delivery
JP2016149800A (en) * 2010-07-21 2016-08-18 ドルビー ラボラトリーズ ライセンシング コーポレイション System and method for multi-layered frame-compatible video distribution
US9479772B2 (en) 2010-07-21 2016-10-25 Dolby Laboratories Licensing Corporation Systems and methods for multi-layered frame-compatible video delivery
EP3923571A1 (en) * 2010-07-21 2021-12-15 Dolby Laboratories Licensing Corp. Systems and methods for multi-layered frame-compatible video delivery
WO2012012584A1 (en) * 2010-07-21 2012-01-26 Dolby Laboratories Licensing Corporation Systems and methods for multi-layered frame-compatible video delivery
US9883161B2 (en) 2010-09-14 2018-01-30 Thomson Licensing Compression methods and apparatus for occlusion data
US9485492B2 (en) 2010-09-14 2016-11-01 Thomson Licensing Llc Compression methods and apparatus for occlusion data
US11122253B2 (en) 2011-05-24 2021-09-14 Tivo Corporation Dynamic distribution of multi-dimensional multimedia content
US10368052B2 (en) 2011-05-24 2019-07-30 Comcast Cable Communications, Llc Dynamic distribution of three-dimensional content
EP2528335B1 (en) * 2011-05-24 2019-02-20 Comcast Cable Communications, LLC Dynamic distribution of three-dimensional content
US11991340B2 (en) 2011-05-24 2024-05-21 Tivo Corporation Dynamic distribution of content
KR101927967B1 (en) 2011-08-09 2018-12-12 삼성전자주식회사 Method and apparatus for encoding and decoding depth map of multi-view video data
EP2744200A4 (en) * 2011-08-09 2016-07-27 Samsung Electronics Co Ltd Multiview video data encoding method and device, and decoding method and device
US9402066B2 (en) 2011-08-09 2016-07-26 Samsung Electronics Co., Ltd. Method and device for encoding a depth map of multi viewpoint video data, and method and device for decoding the encoded depth map
EP2744201A4 (en) * 2011-08-09 2016-03-23 Samsung Electronics Co Ltd Method and device for encoding a depth map of multi viewpoint video data, and method and device for decoding the encoded depth map
US9473788B2 (en) 2011-09-16 2016-10-18 Dolby Laboratories Licensing Corporation Frame-compatible full resolution stereoscopic 3D compression and decompression
WO2013040170A1 (en) * 2011-09-16 2013-03-21 Dolby Laboratories Licensing Corporation Frame-compatible full resolution stereoscopic 3d compression and decompression
US10009591B2 (en) 2011-12-04 2018-06-26 Lg Electronics Inc. Digital broadcasting reception method and apparatus capable of displaying stereoscopic images
EP2787733A4 (en) * 2011-12-04 2015-07-22 Lg Electronics Inc Digital broadcasting reception method and apparatus capable of displaying stereoscopic images
WO2013141671A1 (en) * 2012-03-23 2013-09-26 한국전자통신연구원 Method and apparatus for inter-layer intra prediction
US10205961B2 (en) 2012-04-23 2019-02-12 Qualcomm Incorporated View dependency in multi-view coding and 3D coding
WO2013163155A1 (en) * 2012-04-23 2013-10-31 Qualcomm Incorporated View dependency in multi-view coding and 3d coding
US10791315B2 (en) 2013-01-04 2020-09-29 Qualcomm Incorporated Signaling of spatial resolution of depth views in multiview coding file format
US10873736B2 (en) 2013-01-04 2020-12-22 Qualcomm Incorporated Indication of current view dependency on reference view in multiview coding file format
US11178378B2 (en) 2013-01-04 2021-11-16 Qualcomm Incorporated Signaling of spatial resolution of depth views in multiview coding file format
WO2014107074A1 (en) * 2013-01-04 2014-07-10 삼성전자 주식회사 Motion compensation method and device for encoding and decoding scalable video
CN104284195A (en) * 2014-10-11 2015-01-14 华为技术有限公司 Prediction method and device for depth image in three-dimensional video, encoder and decoder

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