WO2013155253A1 - Multi-access scheme and signal structure for d2d communications - Google Patents
Multi-access scheme and signal structure for d2d communications Download PDFInfo
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Definitions
- D2D communications is one means for improving the performance of LTE (Long Term Evolution) and other cellular networks.
- terminals referred to as user equipments or UEs in LTE
- UEs user equipments
- eNB evolved node B
- D2D communication between two or more D2D devices is typically very local, due to the short distance between D2D devices and uses very lower transmit power.
- D2D communications is also a powerful way to increase spatial reuse in cellular systems for higher throughput.
- Fig. 1 shows example UE devices for D2D communications and an eNB.
- Fig. 2 illustrates a signal structure for D2D communications in one embodiment.
- Fig. 4 shows an example algorithm performed by the D2D receiver in accessing the channel via CSMA.
- Fig. 5 illustrates an example of numbering designations used for D2D slots distributed in time and frequency.
- Fig. 6 is a diagram illustrating a problem with CSMA when transmission powers vary among D2D devices.
- Fig. 7 shows the operation of an auto-correlator bank for detecting transmit power from the preamble.
- UEs 10 and 20 both communicate with the eNB 40 via LTE links and with one another via D2D link.
- the physical layer of LTE is based upon orthogonal frequency division multiplexing (OFDM) for the downlink and a related technique, single carrier frequency division multiplexing (SC-FDM), for the uplink.
- OFDM orthogonal frequency division multiplexing
- SC-FDM single carrier frequency division multiplexing
- complex modulation symbols according to a modulation scheme such as QAM (quadrature amplitude modulation) are each
- LTE also provides for MIMO (multi-input multi-output) operation where multiple layers of data are transmitted and received by multiple antennas and where each of the complex modulation symbols is mapped into one of the multiple transmission layers and then mapped to a particular antenna port. Each RE is then uniquely identified by the antenna port, sub-carrier position, and OFDM/SC- FDM symbol index within a radio frame. LTE transmissions in the time domain are organized into radio frames, each having a duration of 10 ms.
- the above-described frame structure is applicable to both the uplink and downlink without modification.
- TDD time division duplex
- subframes are allocated for either uplink or downlink transmission with a special subframe occurring at the transition from downlink to uplink transmission (but not at the transition from uplink to downlink transmission).
- the eNB manages the allocation of uplink and downlink subframes within each radio frame during TDD operation.
- UEs acting as D2D devices may communicate using time-frequency resources allocated for the D2D link by the eNB. Timing and synchronization is then done as in a conventional LTE link where each D2D device synchronizes its clock and symbol/slot boundary with the eNB as the conventional UE. Since D2D communications are usually within a short distance, the propagation time from the same eNB to the communicating D2D devices should be roughly the same. More precisely, the difference between the two timings (e.g. the symbol boundaries) of the communicating D2D pair should be around 0.2-1 ⁇ s, which is within the cyclic prefix of OFDM or SC-FDM, obviating the need for additional synchronization mechanisms.
- the timing and frequency synchronization can be achieved as in the conventional system, there are still additional aspects for D2D communications.
- eNBs such as macro eNB and pico eNB deployed in the area of the D2D devices.
- the eNBs from different operators may not synchronize each other or have the same OFDM symbol duration. Therefore, the time and/or frequency reference for the communicating D2D devices has to be specified.
- the communicating D2D devices may associate with the same eNB and that eNB specifies an eNB e.g. a macro or a pico eNB for the synchronization.
- eNB In addition to the timing and frequency synchronization, other physical and MAC layer parameters such as carrier frequency, bandwidth, cyclic prefix length, group ID, and D2D frequency-time resource are all needed to be specified by an eNB or a D2D coordinator or D2D group owner.
- time-frequency resources as allocated by the eNB, there are two modulation options for D2D data modulation, OFDM and SC-FDM, which are employed for the downlink and uplink in a conventional LTE device, respectively.
- the two schemes share most of the hardware components such as those for performing the FFT (fast Fourier transform) and IFFT (inverse fast Fourier transform).
- SC-FDM suffers less from a high PAPR (peak-to-average power ratio) than OFDM, it may still be desirable to use OFDM for D2D.
- PAPR peak-to-average power ratio
- SC-FDM suffers from inter-symbol interference (ISI) while OFDM does not.
- ISI inter-symbol interference
- a channel training signal is needed.
- the existing reference signal (RS) patterns used in LTE such as UE-RS or DM-RS may employed for D2D as well.
- the channel characteristics such as multipath delay and time variation are quite different for a D2D link compared with a typical LTE link.
- D2D devices are usually indoors and experience less mobility and delay spread than conventional UEs. Therefore, the RS density for the D2D link may be made smaller than that of a conventional cellular link, and reducing the RS density improves the throughput.
- OFDMA or SC-FDM could be used for D2D communications, somewhat different channel training designs could be used for each.
- the channel training signal should be a set of reference subcarriers, which may a subset of the existing RS pattern.
- the eNB communicates with the eNB over both the downlink and uplink. This allows both the timing and power level to be controlled via various control channel signals between the eNB and the UE such as ranging and power control feedback.
- the situation is different in the distributed D2D case. Since one D2D device may receive signals from different D2D devices, the received power will typically vary from device to device.
- RF radio frequency
- ADC analog-to-digital converter
- Accurate digitization of the received signal requires that the gain of the amplification be such that the resulting amplified signal will fall within a proper range of the ADC.
- a short preamble may be placed at the beginning of the transmission. This short preamble should be located at the same frequency band or sub-band as the subsequent data signal.
- the short preamble may comprise multiple periods of the same signal in the time domain, where the repetition of the same signal enables detection of the preamble via autocorrelation.
- the duration of the short preamble may be, for example, between .5 and 20 ⁇ s.
- 1 slot x 1 RB can be defined as the basic resource allocation unit, referred to herein as a D2D slot or D2D packet.
- the basic resource allocation unit can be 2 slot x 1 RB.
- An example of a signal structure for a D2D packet 200 incorporating the features described above for SC-FDM is as shown in Fig. 2. Following the short preamble SP and a reference signal RS, are the SC-FDM symbols for carrying control information or data, which are carried by resource elements mapped to a physical D2D control channel (PdCCH) or a physical D2D shared channel (PdSCH), respectively.
- PdCCH physical D2D control channel
- PdSCH physical D2D shared channel
- the other technique mainly relies on the D2D devices themselves to contend for transmissions using those allocated time-frequency resources as well as manage any interference.
- the second technique is most suitable for sensor networks, which typically have small size packets but a large control overhead. For such small packets, scheduling and interference control by the eNB may be inefficient for at least two reasons. First, there will be a large number of D2D devices and links, and the eNB cannot be totally aware of the interference status between any two D2D links. And even if the eNB can ask D2D devices to report the interference measurements, the system may not be able to afford the large feedback overhead from those reports or the large control overhead in scheduling so many D2D transmissions.
- carrier sensing multiple access is used for in-band D2D communication.
- the CSMA not only achieves high spatial reuse but also reduces the control overhead between the D2D device and the eNB.
- the resources for D2D communications are allocated by the eNB.
- the eNB broadcasts the resource allocation to a group of D2D devices.
- the grouping of the devices may be according to the qualities of the channels between them.
- the resources may be divided into D2D slots or PRB pairs, where a group of allocated D2D slots or PRB pairs may be localized in time or/and frequency or may be distributed in f equency and time.
- each such D2D slot is used as a time slot for slotted aloha-type CS A incorporating a back-off mechanism to reduce collision frequency.
- the steps involved in an example algorithm are as shown in Fig. 4 for a D2D device that wishes to transmit.
- the device randomly selects a number N to begin a countdown.
- the device senses the beginning of the next D2D slot.
- a transmitting D2D device may specify a reservation time in the PdCCH of a transmitted packet to indicate how long the device is to be transmitting.
- D2D devices can skip the operation of carrier sensing and go to sleep state until the reservation time runs out. This reduces the power consumption of the D2D devices.
- another embodiment involves using the eNB if needed to fulfill latency requirements. For example, the D2D device can ask the eNB to forward the
- D2D data to the destination D2D device if the D2D link cannot send the data out in time. This improves the latency of the D2D traffic by using eNB as a backup.
- D2D device may transmit data to different D2D devices at different distances, the transmission power should be varied according to the transmission distance for the purposes of reducing interference, increasing spatial reuse, and optimizing power efficiency.
- carrier sensing multiple access such as described above is the most efficient way for channel access control.
- CSMA alone cannot support fair access among nodes with different transmission powers. The reason is that, a device can no longer predict its interference level at another device using the received signal from the conventional carrier sensing. For example, as illustrated in Fig. 6, node C would like to transmit and doesn't want to interfere with any existing transmissions on the air. Node C does carrier sensing and detects the existing transmission from node A to node B.
- node C In conventional CSMA, if the received signal power detected from the carrier sensing is below a certain threshold, node C should consider the channel idle and may access the channel. The assumption here, however, is that the interference level is reciprocal between any transmitter and receiver pair. If a receiver experiences an interference level from a transmitter, the transmitter should experience the same interference level when the original transmitter listens to the original receiver's transmitter. This relies on the fact that the wireless channel is reciprocal and the transmission power is constant among all nodes. However, when the transmission power varies across nodes, this assumption is no longer true. In the example in Fig. 6, node A and node B are close to each other, node A uses low power to talk to node B. The resultant interference from node A to node C is small because of the reduced transmission power. Therefore, if node C does not know that node A reduced its transmission power, node C may start transmitting with full power to talk to node B.
- high power transmission or reliable encoding such as repetition, spreading, and channel code may be applied for broadcasting the transmit power level.
- a D2D receiver wishing to transmit may then use the transmission power information for transmission power estimation during carrier sensing.
- the transmit power level is signaled at the beginning of each transmission burst.
- the path loss can be estimated by subtracting the received signal power from the transmitted power. Using the estimated path loss, the D2D receiver can decide if it can transmit and what transmit power level should be used. Described below are example techniques for transmitting the transmission power indicator.
- FIG. 7 An example of an auto- correlator bank in a D2D receiver used to distinguish between preamble periods of 2 ⁇ s and 3 ⁇ s is shown in Fig. 7.
- versions of the signal delayed by 2 us and 3 ⁇ s are produced by delay elements 320 and 330, respectively.
- the delayed versions of the signal are then correlated with the undelayed signal by correlators 310 and 311.
- the outputs of the correlators are then compared by comparer 312 to detect the periodicity of the preamble.
- the transmit power indicator ( ⁇ I) may be put in the channel training signals if one prefers using digital samples.
- the TPI may be placed in the reference signals such as a single SC- FDM symbol used as the RS in SC-FDM or in the different resource elements used as reference signals in OFDM.
- a different channel training sequence can be applied for each different transmit power level. Since the number of power levels may be between four and eight, only a handful of sequences may be needed, and sequence detection error would be negligible at the operating SNR of the data frame.
- the transmission power can be detected during the entire D2D packet as compared to the other options. If the listener to the channel misses the beginning of the D2D packet, it can still learn about the transmission power later using the distributed reference signals.
- a UE comprises a radio transceiver to provide an air interface for communicating with an eNB and for D2D
- the radio transceiver may: receive allocations of time-frequency resources for D2D communications from the eNB and establish a D2D communications session with a second UE.
- the processing circuitry may be to establish timing and frequency synchronization with the same eNB as the second UE.
- the resources or D2D transmissions to and from the second UE may be the same resource structures as used in a cellular LTE link or may be organized into D2D slots with each D2D slot beginning with a preamble and containing a plurality of
- Channel training signals or reference signals of a D2D slot may have a lower density than used in the cellular LTE link.
- the processing circuitry may be further to detect the preamble of received D2D slots via autocorrelation.
- the processing circuitry may be further to initiate a
- the processing circuitry may be further to initiate a communications session with the second UE by: if the current D2D slot is not busy, starting a countdown with a selected number; decrementing the countdown after each non- busy D2D slot is detected and suspending the countdown when a busy D2D slot is detected; and sending the D2D transmission to the second UE at the start of the next D2D slot after the countdown reaches zero.
- CSMA carrier sense multiple access
- a D2D slot may further includes a reservation time encoded in a control channel that specifies how many D2D slots are to be consecutively transmitted by a transmitting device.
- the D2D slots may be numbered consecutively in the time and/or frequency domain.
- the processing circuitry may be further to, when a reservation time is detected in a D2D slot, discontinue sensing of D2D slots until the reservation time expires.
- the processing circuitry may be further to, when a reservation time is detected in a D2D slot, enter a sleep state until the reservation time expires.
- the processing circuitry may be further to transmit an indication of a transmission power level in each D2D slot.
- the preamble may be a repeating signal sequence in the time domain with a periodicity indicative of the transmission power level.
- the processing circuitry may further comprise a bank of correlators with different correlation durations for detecting arrival of the preamble and transmission power level.
- a UE comprises a radio transceiver to provide an air interface for communicating with an eNB and for D2D
- the processing circuitry may be further to transmit the indication of transmission power level in one or more reference symbols, where a specified reference symbol or specified sequence of reference symbols indicates the transmission power level.
- the transmission power level may be specified before actual data transmission for enabling interference prediction when multiple transmit power levels coexist.
- the processing circuitry may be further to transmit and indication of transmission power level as encoded bits in a physical layer header following a preamble.
- the physical layer header may further comprise an indication of the number of D2D slots that make up a transport block and are to be consecutively sent.
- the processing circuitry may be further to receive allocations of time- frequency resources for D2D communications from the eNB in response to a channel reservation request, and wherein an indication of transmission power level for D2D communications and the duration of the reservation are contained in the channel reservation request.
- the channel reservation request may be transmitted at sufficiently high power that other UEs in proximity to the device may learn of the channel reservation and transmission power level.
- a UE comprises a radio transceiver to provide an air interface for communicating with an eNB and for D2D
- communications and processing circuitry connected to the radio transceiver to: receive allocations of time-frequency resources for D2D communications from the eNB; establish a D2D communications session with a second UE, wherein D2D transmissions to and from the second UE are organized into D2D slots with each D2D slot containing a plurality of OFDM/SC-FDM symbols, by initiating a communications session with the second UE using carrier sense multiple access (CSMA) with respect to a D2D slot by: sensing a current D2D slot to determine if transmission activity is present; and, if the current D2D slot is not busy, sending a D2D transmission to the second UE at the start of a subsequent D2D slot.
- CSMA carrier sense multiple access
- the processing circuitry may be further to initiate a communications session with the second UE by: if the current D2D slot is not busy, starting a countdown with a selected number; decrementing the countdown after each non- busy D2D slot is detected and suspending the countdown when a busy D2D slot is detected; and sending the D2D transmission to the second UE at the start of the next D2D slot after the countdown reaches zero.
- the specified number for the countdown may be randomly or pseudo-randomly selected.
- a D2D slot may further include a reservation time encoded in a control channel that specifies how many D2D slots are to be consecutively transmitted by a transmitting device.
- the processing circuitry may be further to, when a reservation time is detected in a D2D slot, discontinue sensing of D2D slots until the reservation time expires.
- the processing circuitry may be further to, when a reservation time is detected in a D2D slot, enter a sleep state until the reservation time expires.
- the embodiments as described above may be implemented as methods for operation and or in various hardware configurations that may include a processor for executing instructions that perform the methods. Such instructions may be contained in a suitable storage medium from which they are transferred to a memory or other processor-executable medium.
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JP2015505892A JP5986289B2 (en) | 2012-04-13 | 2013-04-11 | Multiple access scheme and signal structure for D2D communication |
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TWI835986B (en) * | 2019-03-29 | 2024-03-21 | 美商高通公司 | Adaptive gain control for sidelink communications |
US11882554B2 (en) | 2019-06-27 | 2024-01-23 | Qualcomm Incorporated | Opportunistic transmission for sidelink communications |
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