WO2021142655A1 - Determining a length of sounding reference signal symbols - Google Patents
Determining a length of sounding reference signal symbols Download PDFInfo
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- WO2021142655A1 WO2021142655A1 PCT/CN2020/072217 CN2020072217W WO2021142655A1 WO 2021142655 A1 WO2021142655 A1 WO 2021142655A1 CN 2020072217 W CN2020072217 W CN 2020072217W WO 2021142655 A1 WO2021142655 A1 WO 2021142655A1
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- sounding reference
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/08—Arrangements for detecting or preventing errors in the information received by repeating transmission, e.g. Verdan system
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
- H04B1/69—Spread spectrum techniques
- H04B1/713—Spread spectrum techniques using frequency hopping
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/06—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
- H04B7/0602—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using antenna switching
- H04B7/0604—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using antenna switching with predefined switching scheme
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L27/00—Modulated-carrier systems
- H04L27/26—Systems using multi-frequency codes
- H04L27/2601—Multicarrier modulation systems
- H04L27/2602—Signal structure
- H04L27/261—Details of reference signals
- H04L27/2613—Structure of the reference signals
Definitions
- the subject matter disclosed herein relates generally to wireless communications and more particularly relates to determining a length of sounding reference signal symbols.
- HARQ-ACK may represent collectively the Positive Acknowledge ( “ACK” ) and the Negative Acknowledge ( “NAK” ) .
- ACK means that a TB is correctly received while NAK means a TB is erroneously received.
- multiple sounding reference signal symbols may be used.
- the method includes determining a length of a set of sounding reference signal symbols based on: a number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols; a number of frequency hops corresponding to the set of sounding reference signal symbols; a number of antenna switches corresponding to the set of sounding reference signal symbols; and a guard symbol configuration corresponding to the set of sounding reference signal symbols.
- An apparatus for determining a length of sounding reference signal symbols includes a processor that determines a length of a set of sounding reference signal symbols based on: a number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols; a number of frequency hops corresponding to the set of sounding reference signal symbols; a number of antenna switches corresponding to the set of sounding reference signal symbols; and a guard symbol configuration corresponding to the set of sounding reference signal symbols.
- a method for determining a number of frequency hops includes determining a number of frequency hops corresponding to a set of sounding reference signal symbols based on a length of the set of sounding reference signal symbols.
- An apparatus for determining a number of frequency hops includes a processor that determines a number of frequency hops corresponding to a set of sounding reference signal symbols based on a length of the set of sounding reference signal symbols.
- Figure 1 is a schematic block diagram illustrating one embodiment of a wireless communication system for determining a length of sounding reference signal symbols
- Figure 2 is a schematic block diagram illustrating one embodiment of an apparatus that may be used for determining a length of sounding reference signal symbols
- Figure 3 is a schematic block diagram illustrating one embodiment of an apparatus that may be used for determining a length of sounding reference signal symbols
- Figure 4 is a schematic block diagram illustrating one embodiment of an SRS pattern in which frequency hopping is performed before antenna switching
- Figure 5 is a schematic block diagram illustrating another embodiment of an SRS pattern in which frequency hopping is performed before antenna switching
- Figure 6 is a schematic block diagram illustrating a further embodiment of an SRS pattern in which frequency hopping is performed before antenna switching;
- Figure 7 is a schematic block diagram illustrating one embodiment of an SRS pattern in which antenna switching is performed before frequency hopping
- Figure 8 is a schematic block diagram illustrating another embodiment of an SRS pattern in which antenna switching is performed before frequency hopping
- Figure 9 is a schematic block diagram illustrating a further embodiment of an SRS pattern in which antenna switching is performed before frequency hopping;
- Figure 10 is a schematic block diagram illustrating one embodiment of minimizing a total guard period for an SRS pattern
- Figure 11 is a schematic block diagram illustrating another embodiment of minimizing a total guard period for an SRS pattern
- Figure 12 is a schematic flow chart diagram illustrating one embodiment of a method for determining a length of sounding reference signal symbols.
- Figure 13 is a schematic flow chart diagram illustrating one embodiment of a method for determining a number of frequency hops.
- embodiments may be embodied as a system, apparatus, method, or program product. Accordingly, embodiments may take the form of an entirely hardware embodiment, an entirely software embodiment (including firmware, resident software, micro-code, etc. ) or an embodiment combining software and hardware aspects that may all generally be referred to herein as a “circuit, ” “module” or “system. ” Furthermore, embodiments may take the form of a program product embodied in one or more computer readable storage devices storing machine readable code, computer readable code, and/or program code, referred hereafter as code. The storage devices may be tangible, non-transitory, and/or non-transmission. The storage devices may not embody signals. In a certain embodiment, the storage devices only employ signals for accessing code.
- modules may be implemented as a hardware circuit comprising custom very-large-scale integration ( “VLSI” ) circuits or gate arrays, off-the-shelf semiconductors such as logic chips, transistors, or other discrete components.
- VLSI very-large-scale integration
- a module may also be implemented in programmable hardware devices such as field programmable gate arrays, programmable array logic, programmable logic devices or the like.
- Modules may also be implemented in code and/or software for execution by various types of processors.
- An identified module of code may, for instance, include one or more physical or logical blocks of executable code which may, for instance, be organized as an object, procedure, or function. Nevertheless, the executables of an identified module need not be physically located together, but may include disparate instructions stored in different locations which, when joined logically together, include the module and achieve the stated purpose for the module.
- a module of code may be a single instruction, or many instructions, and may even be distributed over several different code segments, among different programs, and across several memory devices.
- operational data may be identified and illustrated herein within modules, and may be embodied in any suitable form and organized within any suitable type of data structure. The operational data may be collected as a single data set, or may be distributed over different locations including over different computer readable storage devices.
- the software portions are stored on one or more computer readable storage devices.
- the computer readable medium may be a computer readable storage medium.
- the computer readable storage medium may be a storage device storing the code.
- the storage device may be, for example, but not limited to, an electronic, magnetic, optical, electromagnetic, infrared, holographic, micromechanical, or semiconductor system, apparatus, or device, or any suitable combination of the foregoing.
- a computer readable storage medium may be any tangible medium that can contain, or store a program for use by or in connection with an instruction execution system, apparatus, or device.
- Code for carrying out operations for embodiments may be any number of lines and may be written in any combination of one or more programming languages including an object oriented programming language such as Python, Ruby, Java, Smalltalk, C++, or the like, and conventional procedural programming languages, such as the "C" programming language, or the like, and/or machine languages such as assembly languages.
- the code may execute entirely on the user's computer, partly on the user's computer, as a stand-alone software package, partly on the user's computer and partly on a remote computer or entirely on the remote computer or server.
- the remote computer may be connected to the user's computer through any type of network, including a local area network ( “LAN” ) or a wide area network ( “WAN” ) , or the connection may be made to an external computer (for example, through the Internet using an Internet Service Provider) .
- LAN local area network
- WAN wide area network
- the code may also be stored in a storage device that can direct a computer, other programmable data processing apparatus, or other devices to function in a particular manner, such that the instructions stored in the storage device produce an article of manufacture including instructions which implement the function/act specified in the schematic flowchart diagrams and/or schematic block diagrams block or blocks.
- the code may also be loaded onto a computer, other programmable data processing apparatus, or other devices to cause a series of operational steps to be performed on the computer, other programmable apparatus or other devices to produce a computer implemented process such that the code which execute on the computer or other programmable apparatus provide processes for implementing the functions/acts specified in the flowchart and/or block diagram block or blocks.
- each block in the schematic flowchart diagrams and/or schematic block diagrams may represent a module, segment, or portion of code, which includes one or more executable instructions of the code for implementing the specified logical function (s) .
- Figure 1 depicts an embodiment of a wireless communication system 100 for determining a length of sounding reference signal symbols.
- the wireless communication system 100 includes remote units 102 and network units 104. Even though a specific number of remote units 102 and network units 104 are depicted in Figure 1, one of skill in the art will recognize that any number of remote units 102 and network units 104 may be included in the wireless communication system 100.
- the remote units 102 may include computing devices, such as desktop computers, laptop computers, personal digital assistants ( “PDAs” ) , tablet computers, smart phones, smart televisions (e.g., televisions connected to the Internet) , set-top boxes, game consoles, security systems (including security cameras) , vehicle on-board computers, network devices (e.g., routers, switches, modems) , IoT devices, or the like.
- the remote units 102 include wearable devices, such as smart watches, fitness bands, optical head-mounted displays, or the like.
- the remote units 102 may be referred to as subscriber units, mobiles, mobile stations, users, terminals, mobile terminals, fixed terminals, subscriber stations, UE, user terminals, a device, or by other terminology used in the art.
- the remote units 102 may communicate directly with one or more of the network units 104 via UL communication signals and/or the remote units 102 may communicate directly with other remote units 102 via sidelink communication.
- the network units 104 may be distributed over a geographic region.
- a network unit 104 may also be referred to as an access point, an access terminal, a base, a base station, a Node-B, an eNB, a gNB, a Home Node-B, a RAN, a relay node, a device, a network device, an IAB node, a donor IAB node, or by any other terminology used in the art.
- the network units 104 are generally part of a radio access network that includes one or more controllers communicably coupled to one or more corresponding network units 104.
- the radio access network is generally communicably coupled to one or more core networks, which may be coupled to other networks, like the Internet and public switched telephone networks, among other networks.
- core networks like the Internet and public switched telephone networks, among other networks.
- the wireless communication system 100 is compliant with the 5G or NG (Next Generation) standard of the 3GPP protocol, wherein the network unit 104 transmits using NG RAN technology. More generally, however, the wireless communication system 100 may implement some other open or proprietary communication protocol, for example, WiMAX, among other protocols.
- the present disclosure is not intended to be limited to the implementation of any particular wireless communication system architecture or protocol.
- the network units 104 may serve a number of remote units 102 within a serving area, for example, a cell or a cell sector via a wireless communication link.
- the network units 104 transmit DL communication signals to serve the remote units 102 in the time, frequency, and/or spatial domain.
- a remote unit 102 and/or a network unit 104 may determine a length of a set of sounding reference signal symbols based on: a number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols; a number of frequency hops corresponding to the set of sounding reference signal symbols; a number of antenna switches corresponding to the set of sounding reference signal symbols; and a guard symbol configuration corresponding to the set of sounding reference signal symbols. Accordingly, a remote unit 102 and/or a network unit 104 may be used for determining a length of sounding reference signal symbols.
- a remote unit 102 and/or a network unit 104 may determine a number of frequency hops corresponding to a set of sounding reference signal symbols based on a length of the set of sounding reference signal symbols. Accordingly, a remote unit 102 and/or a network unit 104 may be used for determining a number of frequency hops.
- Figure 2 depicts one embodiment of an apparatus 200 that may be used for determining a length of sounding reference signal symbols.
- the apparatus 200 includes one embodiment of the remote unit 102.
- the remote unit 102 may include a processor 202, a memory 204, an input device 206, a display 208, a transmitter 210, and a receiver 212.
- the input device 206 and the display 208 are combined into a single device, such as a touchscreen.
- the remote unit 102 may not include any input device 206 and/or display 208.
- the remote unit 102 may include one or more of the processor 202, the memory 204, the transmitter 210, and the receiver 212, and may not include the input device 206 and/or the display 208.
- the processor 202 may include any known controller capable of executing computer-readable instructions and/or capable of performing logical operations.
- the processor 202 may be a microcontroller, a microprocessor, a central processing unit ( “CPU” ) , a graphics processing unit ( “GPU” ) , an auxiliary processing unit, a field programmable gate array ( “FPGA” ) , or similar programmable controller.
- the processor 202 executes instructions stored in the memory 204 to perform the methods and routines described herein.
- the processor 202 may determine a length of a set of sounding reference signal symbols based on: a number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols; a number of frequency hops corresponding to the set of sounding reference signal symbols; a number of antenna switches corresponding to the set of sounding reference signal symbols; and a guard symbol configuration corresponding to the set of sounding reference signal symbols. In various embodiments, the processor 202 may determine a number of frequency hops corresponding to a set of sounding reference signal symbols based on a length of the set of sounding reference signal symbols.
- the processor 202 is communicatively coupled to the memory 204, the input device 206, the display 208, the transmitter 210, and the receiver 212.
- the memory 204 in one embodiment, is a computer readable storage medium.
- the memory 204 includes volatile computer storage media.
- the memory 204 may include a RAM, including dynamic RAM ( “DRAM” ) , synchronous dynamic RAM ( “SDRAM” ) , and/or static RAM ( “SRAM” ) .
- the memory 204 includes non-volatile computer storage media.
- the memory 204 may include a hard disk drive, a flash memory, or any other suitable non-volatile computer storage device.
- the memory 204 includes both volatile and non-volatile computer storage media.
- the memory 204 also stores program code and related data, such as an operating system or other controller algorithms operating on the remote unit 102.
- the input device 206 may include any known computer input device including a touch panel, a button, a keyboard, a stylus, a microphone, or the like.
- the input device 206 may be integrated with the display 208, for example, as a touchscreen or similar touch-sensitive display.
- the input device 206 includes a touchscreen such that text may be input using a virtual keyboard displayed on the touchscreen and/or by handwriting on the touchscreen.
- the input device 206 includes two or more different devices, such as a keyboard and a touch panel.
- the display 208 may include any known electronically controllable display or display device.
- the display 208 may be designed to output visual, audible, and/or haptic signals.
- the display 208 includes an electronic display capable of outputting visual data to a user.
- the display 208 may include, but is not limited to, an LCD display, an LED display, an OLED display, a projector, or similar display device capable of outputting images, text, or the like to a user.
- the display 208 may include a wearable display such as a smart watch, smart glasses, a heads-up display, or the like.
- the display 208 may be a component of a smart phone, a personal digital assistant, a television, a table computer, a notebook (laptop) computer, a personal computer, a vehicle dashboard, or the like.
- the display 208 includes one or more speakers for producing sound.
- the display 208 may produce an audible alert or notification (e.g., a beep or chime) .
- the display 208 includes one or more haptic devices for producing vibrations, motion, or other haptic feedback.
- all or portions of the display 208 may be integrated with the input device 206.
- the input device 206 and display 208 may form a touchscreen or similar touch-sensitive display.
- the display 208 may be located near the input device 206.
- the remote unit 102 may have any suitable number of transmitters 210 and receivers 212.
- the transmitter 210 and the receiver 212 may be any suitable type of transmitters and receivers.
- the transmitter 210 and the receiver 212 may be part of a transceiver.
- Figure 3 depicts one embodiment of an apparatus 300 that may be used for determining a length of sounding reference signal symbols.
- the apparatus 300 includes one embodiment of the network unit 104.
- the network unit 104 may include a processor 302, a memory 304, an input device 306, a display 308, a transmitter 310, and a receiver 312.
- the processor 302, the memory 304, the input device 306, the display 308, the transmitter 310, and the receiver 312 may be substantially similar to the processor 202, the memory 204, the input device 206, the display 208, the transmitter 210, and the receiver 212 of the remote unit 102, respectively.
- the processor 302 determines a length of a set of sounding reference signal symbols based on: a number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols; a number of frequency hops corresponding to the set of sounding reference signal symbols; a number of antenna switches corresponding to the set of sounding reference signal symbols; and a guard symbol configuration corresponding to the set of sounding reference signal symbols. In various embodiments, the processor 302 determines a number of frequency hops corresponding to a set of sounding reference signal symbols based on a length of the set of sounding reference signal symbols. Although only one transmitter 310 and one receiver 312 are illustrated, the network unit 104 may have any suitable number of transmitters 310 and receivers 312. The transmitter 310 and the receiver 312 may be any suitable type of transmitters and receivers. In one embodiment, the transmitter 310 and the receiver 312 may be part of a transceiver.
- SRS in addition to a legacy SRS may be used for DL efficiency enhancement.
- the additional SRS may be transmitted in any symbol other than a last symbol in a subframe that includes the additional SRS. As may be appreciated, if a legacy SRS is used, it is generally transmitted in the last symbol (e.g., OFDM symbol) in a subframe.
- both legacy SRS and additional SRS symbols may be configured for the same UE in one or more of the following configurations: 1) if legacy SRS is aperiodic, the UE may transmit one of legacy SRS or additional SRS symbols in the same subframe; 2) if legacy SRS is periodic, the UE may transmit legacy SRS and additional SRS symbols in the same or different subframes; and 3) if legacy SRS is aperiodic, the UE may transmit legacy SRS and additional SRS symbols in the same subframes.
- a triggering mechanism may be included.
- repetition, frequency hopping, and/or antenna switching may be supported within a subframe.
- a guard symbol may be inserted between frequency hops and/or antenna switches to allow enough time for an RF transmission chain to make an adjustment between the frequencies and/or the antennas.
- a guard symbol may be inserted between a last additional SRS symbol in a subframe and a legacy SRS symbol in the subframe.
- time domain allocation of additional SRS may be defined in terms of a starting OFDM symbol, and a duration of additional SRS symbols including potential guard symbols may be specified in TS 36.211 as follows: 1) an additional SRS spans one or more OFDM symbols in the time domain, where: a) the starting OFDM symbol l 0 within the subframe is given by the higher-layer parameter additionalSRS-startPos; b) the duration N in number of OFDM symbols, including potential guard symbols, is given by the higher-layer parameter additionalSRS-duration; 2) mapping to physical resources shall be done according to clause 5.5.3.2.1 with the following exceptions: a) frequency hopping between OFDM symbols is supported; b) where l is the index of the OFDM symbol number carrying additional SRS within the subframe not counting guard symbol (s) , and R ⁇ ⁇ 1, 2, 3, 4, 6, 7, 8, 9, 12, 13 ⁇ is the repetition factor given by the higher-layer parameter additionalSRS-RepNum; c) B SRS is given by the higher-layer parameter additionalS
- guard symbol for antenna switching and/or frequency hopping.
- guard symbol for frequency hopping GS FH and a guard symbol for antenna switching GS AS may be independently configured by RRC, there are four different possible combinations as shown in Table 1.
- Equation 1 and/or Equation 1: Simplified may be used if frequency hopping is performed before antenna switching.
- a required number of additional SRS symbols N may be calculated according to Equation 1 and/or Equation 1: Simplified.
- N is the number of additional SRS symbols (e.g., a length of a set of SRS symbols)
- R is a number of SRS symbol repetitions for the additional SRS symbols
- N AS is a number of antenna switches for the additional SRS symbols
- N FH is a number of frequency hops for the additional SRS symbols
- GS AS is a number of guard symbols for antenna switching
- GS FH is a number of guard symbols for frequency hopping.
- N R*N AS *N FH + (N AS *GS AS -1) *GS AS + (N FH *GS FH -1) *GS FH *N AS
- Equation 1 Simplified
- N R*N AS *N FH + (N AS -1) *GS AS + (N FH -1) *GS FH *N AS
- Equation 2 and/or Equation 2: Simplified may be used if antenna switching is performed before frequency hopping.
- a required number of additional SRS symbols N may be calculated according to Equation 2 and/or Equation 2: Simplified.
- N R*N AS *N FH + (N FH *GS FH -1) *GS FH + (N AS *GS AS -1) *GS AS *N FH
- Equation 2 Simplified
- N R*N AS *N FH + (N FH -1) *GS FH + (N AS -1) *GS AS *N FH
- Equation 3 and/or Equation 3 Simplified may be used to minimize a total guard period for frequency hopping and/or antenna switching based on configured GS AS and GS FH .
- N R*N AS *N FH + (N AS *GS AS -1) *GS AS * (1-GS FH ) + (N FH *GS FH -1) *GS FH * (1-GS AS ) + (N AS *N FH -1) *GS AS *GS FH
- Equation 3 Simplified
- N R*N AS *N FH + (N AS -1) *GS AS * (1-GS FH ) + (N FH -1) *GS FH * (1-GS AS ) + (N AS *N FH -1) *GS AS *GS FH
- a number of antenna switches N AS may be determined by RRC configuration such that the number of antenna switches is: a) 2 if there are 1 transmitter and 2 receivers configured or if a number of pairs is configured as 2 for 2 transmitters and 4 receivers; b) 3 if the number of pairs is configured as 3 for 2 transmitters and 4 receivers; and/or c) 4 for 1 transmitter and 4 receivers.
- Equation 3 and/or Equation 3 Simplified, if a total number of additional SRS symbols N is given, a number of frequency hops N FH may be derived, or if the number of frequency hops N FH is given, the total number of additional SRS symbols N may be derived.
- FIG. 4 through 11 Various examples of SRS patterns are illustrated in Figures 4 through 11. For the examples provided in Figures 4 through 6, two hop frequency hopping and two hop antenna switching are concurrently configured and frequency hopping is performed before antenna switching. As may be appreciated, a different number of additional SRS symbols may be required for different configurations of the values of GS AS and GS FH .
- Figure 4 is a schematic block diagram illustrating one embodiment of an SRS pattern 400 in which frequency hopping is performed before antenna switching.
- a first symbol 402, a second symbol 404, a third symbol 406, a fourth symbol 408, a fifth symbol 410, a sixth symbol 412, a seventh symbol 414, an eighth symbol 416, a ninth symbol 418, a tenth symbol 420, an eleventh symbol 422, a twelfth symbol 424, and a thirteenth symbol 426 are illustrated over a first frequency 428 and a second frequency 430.
- a first SRS symbol 432 and a second SRS symbol 434 are transmitted as the first symbol 402 and the second symbol 404 in the first frequency 428 by a first antenna.
- a first guard symbol 436 is transmitted as the third symbol 406.
- a third SRS symbol 438 and a fourth SRS symbol 440 are transmitted as the fourth symbol 408 and the fifth symbol 410 in the second frequency 430 by the first antenna.
- a second guard symbol 442 is transmitted as the sixth symbol 412.
- a fifth SRS symbol 444 and a sixth SRS symbol 446 are transmitted as the seventh symbol 414 and the eighth symbol 416 in the first frequency 428 by the second antenna.
- a third guard symbol 448 is transmitted as the ninth symbol 418.
- a seventh SRS symbol 450 and an eighth SRS symbol 452 are transmitted as the tenth symbol 420 and the eleventh symbol 422 in the second frequency 430 by the second antenna.
- Figure 5 is a schematic block diagram illustrating another embodiment of an SRS pattern 500 in which frequency hopping is performed before antenna switching.
- a first symbol 502, a second symbol 504, a third symbol 506, a fourth symbol 508, a fifth symbol 510, a sixth symbol 512, a seventh symbol 514, an eighth symbol 516, a ninth symbol 518, a tenth symbol 520, an eleventh symbol 522, a twelfth symbol 524, and a thirteenth symbol 526 are illustrated over a first frequency 528 and a second frequency 530.
- a first SRS symbol 532 and a second SRS symbol 534 are transmitted as the first symbol 502 and the second symbol 504 in the first frequency 528 by a first antenna.
- a first guard symbol 536 is transmitted as the third symbol 506.
- a third SRS symbol 538 and a fourth SRS symbol 540 are transmitted as the fourth symbol 508 and the fifth symbol 510 in the second frequency 530 by the first antenna.
- a second guard symbol 546 is transmitted as the eighth symbol 516.
- a seventh SRS symbol 548 and an eighth SRS symbol 550 are transmitted as the ninth symbol 518 and the tenth symbol 520 in the second frequency 530 by the second antenna.
- Figure 6 is a schematic block diagram illustrating a further embodiment of an SRS pattern 600 in which frequency hopping is performed before antenna switching.
- a first symbol 602, a second symbol 604, a third symbol 606, a fourth symbol 608, a fifth symbol 610, a sixth symbol 612, a seventh symbol 614, an eighth symbol 616, a ninth symbol 618, a tenth symbol 620, an eleventh symbol 622, a twelfth symbol 624, and a thirteenth symbol 626 are illustrated over a first frequency 628 and a second frequency 630.
- a first SRS symbol 632 and a second SRS symbol 634 are transmitted as the first symbol 602 and the second symbol 604 in the first frequency 628 by a first antenna.
- a third SRS symbol 636 and a fourth SRS symbol 638 are transmitted as the third symbol 606 and the fourth symbol 608 in the second frequency 630 by the first antenna.
- a first guard symbol 640 is transmitted as the fifth symbol 610.
- a fifth SRS symbol 642 and a sixth SRS symbol 644 are transmitted as the sixth symbol 612 and the seventh symbol 614 in the first frequency 628 by the second antenna.
- a seventh SRS symbol 646 and an eighth SRS symbol 648 are transmitted as the eighth symbol 616 and the ninth symbol 618 in the second frequency 630 by the second antenna.
- two hop frequency hopping and two hop antenna switching are concurrently configured and antenna switching is performed before frequency hopping.
- a different number of additional SRS symbols may be required for different configuration of the values of GS AS and GS FH .
- Figure 7 is a schematic block diagram illustrating one embodiment of an SRS pattern 700 in which antenna switching is performed before frequency hopping.
- a first symbol 702, a second symbol 704, a third symbol 706, a fourth symbol 708, a fifth symbol 710, a sixth symbol 712, a seventh symbol 714, an eighth symbol 716, a ninth symbol 718, a tenth symbol 720, an eleventh symbol 722, a twelfth symbol 724, and a thirteenth symbol 726 are illustrated over a first frequency 728 and a second frequency 730.
- a first SRS symbol 732 and a second SRS symbol 734 are transmitted as the first symbol 702 and the second symbol 704 in the first frequency 728 by a first antenna.
- a first guard symbol 736 is transmitted as the third symbol 706.
- a third SRS symbol 738 and a fourth SRS symbol 740 are transmitted as the fourth symbol 708 and the fifth symbol 710 in the first frequency 728 by a second antenna.
- a second guard symbol 742 is transmitted as the sixth symbol 712.
- a fifth SRS symbol 744 and a sixth SRS symbol 746 are transmitted as the seventh symbol 714 and the eighth symbol 716 in the second frequency 730 by the first antenna.
- a third guard symbol 748 is transmitted as the ninth symbol 718.
- a seventh SRS symbol 750 and an eighth SRS symbol 752 are transmitted as the tenth symbol 720 and the eleventh symbol 722 in the second frequency 730 by the second antenna.
- Figure 8 is a schematic block diagram illustrating another embodiment of an SRS pattern 800 in which antenna switching is performed before frequency hopping.
- a first symbol 802, a second symbol 804, a third symbol 806, a fourth symbol 808, a fifth symbol 810, a sixth symbol 812, a seventh symbol 814, an eighth symbol 816, a ninth symbol 818, a tenth symbol 820, an eleventh symbol 822, a twelfth symbol 824, and a thirteenth symbol 826 are illustrated over a first frequency 828 and a second frequency 830.
- a first SRS symbol 832 and a second SRS symbol 834 are transmitted as the first symbol 802 and the second symbol 804 in the first frequency 828 by a first antenna.
- a third SRS symbol 836 and a fourth SRS symbol 838 are transmitted as the third symbol 806 and the fourth symbol 808 in the first frequency 828 by a second antenna.
- a first guard symbol 840 is transmitted as the fifth symbol 810.
- a fifth SRS symbol 842 and a sixth SRS symbol 844 are transmitted as the sixth symbol 812 and the seventh symbol 814 in the second frequency 830 by the first antenna.
- a seventh SRS symbol 846 and an eighth SRS symbol 848 are transmitted as the eighth symbol 816 and the ninth symbol 818 in the second frequency 830 by the second antenna.
- Figure 9 is a schematic block diagram illustrating a further embodiment of an SRS pattern 900 in which antenna switching is performed before frequency hopping.
- a first symbol 902, a second symbol 904, a third symbol 906, a fourth symbol 908, a fifth symbol 910, a sixth symbol 912, a seventh symbol 914, an eighth symbol 916, a ninth symbol 918, a tenth symbol 920, an eleventh symbol 922, a twelfth symbol 924, and a thirteenth symbol 926 are illustrated over a first frequency 928 and a second frequency 930.
- a first SRS symbol 932 and a second SRS symbol 934 are transmitted as the first symbol 902 and the second symbol 904 in the first frequency 928 by a first antenna.
- a first guard symbol 936 is transmitted as the third symbol 906.
- a third SRS symbol 938 and a fourth SRS symbol 940 are transmitted as the fourth symbol 908 and the fifth symbol 910 in the first frequency 928 by a second antenna..
- a fifth SRS symbol 942 and a sixth SRS symbol 944 are transmitted as the sixth symbol 912 and the seventh symbol 914 in the second frequency 930 by the first antenna.
- a second guard symbol 946 is transmitted as the eighth symbol 916.
- a seventh SRS symbol 948 and an eighth SRS symbol 950 are transmitted as the ninth symbol 918 and the tenth symbol 920 in the second frequency 930 by the second antenna.
- Figure 10 is a schematic block diagram illustrating one embodiment of minimizing a total guard period for an SRS pattern 1000.
- GS AS 0
- GS FH 1
- antenna switching is performed before frequency hopping
- N 9
- a first symbol 1002, a second symbol 1004, a third symbol 1006, a fourth symbol 1008, a fifth symbol 1010, a sixth symbol 1012, a seventh symbol 1014, an eighth symbol 1016, a ninth symbol 1018, a tenth symbol 1020, an eleventh symbol 1022, a twelfth symbol 1024, and a thirteenth symbol 1026 are illustrated over a first frequency 1028 and a second frequency 1030.
- a first SRS symbol 1032 and a second SRS symbol 1034 are transmitted as the first symbol 1002 and the second symbol 1004 in the first frequency 1028 by a first antenna.
- a third SRS symbol 1036 and a fourth SRS symbol 1038 are transmitted as the third symbol 1006 and the fourth symbol 1008 in the first frequency 1028 by a second antenna.
- a first guard symbol 1040 is transmitted as the fifth symbol 1010.
- a fifth SRS symbol 1042 and a sixth SRS symbol 1044 are transmitted as the sixth symbol 1012 and the seventh symbol 1014 in the second frequency 1030 by the first antenna.
- a seventh SRS symbol 1046 and an eighth SRS symbol 1048 are transmitted as the eighth symbol 1016 and the ninth symbol 1018 in the second frequency 1030 by the second antenna.
- Figure 11 is a schematic block diagram illustrating another embodiment of minimizing a total guard period for an SRS pattern 1100.
- frequency hopping is performed before antenna switching
- N 9.
- a first symbol 1102, a second symbol 1104, a third symbol 1106, a fourth symbol 1108, a fifth symbol 1110, a sixth symbol 1112, a seventh symbol 1114, an eighth symbol 1116, a ninth symbol 1118, a tenth symbol 1120, an eleventh symbol 1122, a twelfth symbol 1124, and a thirteenth symbol 1126 are illustrated over a first frequency 1128 and a second frequency 1130.
- a first SRS symbol 1132 and a second SRS symbol 1134 are transmitted as the first symbol 1102 and the second symbol 1104 in the first frequency 1128 by a first antenna.
- a third SRS symbol 1136 and a fourth SRS symbol 1138 are transmitted as the third symbol 1106 and the fourth symbol 1108 in the second frequency 1130 by the first antenna.
- a first guard symbol 1140 is transmitted as the fifth symbol 1110.
- a fifth SRS symbol 1142 and a sixth SRS symbol 1144 are transmitted as the sixth symbol 1112 and the seventh symbol 1114 in the first frequency 1128 by the second antenna.
- a seventh SRS symbol 1146 and an eighth SRS symbol 1148 are transmitted as the eighth symbol 1116 and the ninth symbol 1118 in the second frequency 1130 by the second antenna.
- a number of frequency hops N FH is given by or if frequency hopping is enabled and 1 if frequency hopping is not enabled.
- BW SRS is a total configured bandwidth for additional SRS
- BW hop is a subband bandwidth per hop. It should be noted that in various embodiments, a floor () operation is used for and a ceiling () operation is used for
- a guard symbol GS SS may be used between additional SRS symbols and a legacy SRS symbol at the end of the same subframe.
- the guard symbol GS SS is not included in a total length of additional SRS symbols N.
- a network may configure a starting OFDM symbol l 0 for the additional SRS as shown in Equation 4.
- a network may configure N and l 0 to satisfy Equation 3 and Equation 4.
- a UE may not expect to receive a configuration of N and l 0 such that l 0 >13-N-GS SS .
- a dropping rule may be defined for additional SRS symbols if a UE receives a l 0 >13-N-GS SS .
- a UE may derive it from N FH as
- Figure 12 is a schematic flow chart diagram illustrating one embodiment of a method 1200 for determining a length of sounding reference signal symbols.
- the method 1200 is performed by an apparatus, such as the remote unit 102 and/or the network unit 104.
- the method 1200 may be performed by a processor executing program code, for example, a microcontroller, a microprocessor, a CPU, a GPU, an auxiliary processing unit, a FPGA, or the like.
- the method 1200 may include determining 1202 a length of a set of sounding reference signal symbols based on: a number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols; a number of frequency hops corresponding to the set of sounding reference signal symbols; a number of antenna switches corresponding to the set of sounding reference signal symbols; and a guard symbol configuration corresponding to the set of sounding reference signal symbols.
- the set of sounding reference signal symbols includes at least one guard symbol.
- the method 1200 further comprises determining whether the set of sounding reference signal symbols conflict with a last symbol in a subframe that includes the set of sounding reference signal symbols, wherein the last symbol in the subframe is not part of the set of sounding reference signal symbols.
- determining whether the set of sounding reference signal symbols conflict with the last symbol in the subframe comprises determining whether the set of sounding reference signal symbols conflict with the last symbol in the subframe based on the length of the set of sounding reference signal symbols and a starting symbol position for the set of sounding reference signal symbols.
- the set of sounding reference signal symbols and the last symbol in the subframe are separated by a guard symbol.
- the method 1200 further comprises, in response to determining that the set of sounding reference signal symbols conflict with the last symbol in the subframe, determining one or more sounding reference signal symbols of the set of sounding reference signal symbols to discard.
- a user equipment determines the length of the set of sounding reference signal symbols.
- a network unit determines the length of the set of sounding reference signal symbols.
- the method 1200 further comprises configuring a time domain resource for the set of sounding reference signal symbols.
- configuring the time domain resource for the set of sounding reference signal symbols comprises configuring a total length of the set of sounding reference signal symbols, a starting position for the set of sounding reference signal symbols, or a combination thereof.
- configuring the time domain resource for the set of sounding reference signal symbols comprises configuring the time domain resource for the set of sounding reference signal symbols based on: the number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols; the number of frequency hops corresponding to the set of sounding reference signal symbols; the number of antenna switches corresponding to the set of sounding reference signal symbols; and the guard symbol configuration corresponding to the set of sounding reference signal symbols.
- the method 1200 further comprises determining the number of frequency hops corresponding to the set of sounding reference signal symbols based on the length of the set of sounding reference signal symbols. In one embodiment, the method 1200 further comprises determining a subband bandwidth per hop based on the number of frequency hops corresponding to the set of sounding reference signal symbols.
- Figure 13 is a schematic flow chart diagram illustrating one embodiment of a method 1300 for determining a number of frequency hops.
- the method 1300 is performed by an apparatus, such as the remote unit 102 and/or the network unit 104.
- the method 1300 may be performed by a processor executing program code, for example, a microcontroller, a microprocessor, a CPU, a GPU, an auxiliary processing unit, a FPGA, or the like.
- the method 1300 may include determining 1302 a number of frequency hops corresponding to a set of sounding reference signal symbols based on a length of the set of sounding reference signal symbols.
- the method 1300 further comprises determining a size of a subband bandwidth based on the number of frequency hops and a sounding bandwidth.
- a method comprises: determining a length of a set of sounding reference signal symbols based on: a number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols; a number of frequency hops corresponding to the set of sounding reference signal symbols; a number of antenna switches corresponding to the set of sounding reference signal symbols; and a guard symbol configuration corresponding to the set of sounding reference signal symbols.
- the set of sounding reference signal symbols includes at least one guard symbol.
- the method further comprises determining whether the set of sounding reference signal symbols conflict with a last symbol in a subframe that includes the set of sounding reference signal symbols, wherein the last symbol in the subframe is not part of the set of sounding reference signal symbols.
- determining whether the set of sounding reference signal symbols conflict with the last symbol in the subframe comprises determining whether the set of sounding reference signal symbols conflict with the last symbol in the subframe based on the length of the set of sounding reference signal symbols and a starting symbol position for the set of sounding reference signal symbols.
- the set of sounding reference signal symbols and the last symbol in the subframe are separated by a guard symbol.
- the method further comprises, in response to determining that the set of sounding reference signal symbols conflict with the last symbol in the subframe, determining one or more sounding reference signal symbols of the set of sounding reference signal symbols to discard.
- a user equipment determines the length of the set of sounding reference signal symbols.
- a network unit determines the length of the set of sounding reference signal symbols.
- the method further comprises configuring a time domain resource for the set of sounding reference signal symbols.
- configuring the time domain resource for the set of sounding reference signal symbols comprises configuring a total length of the set of sounding reference signal symbols, a starting position for the set of sounding reference signal symbols, or a combination thereof.
- configuring the time domain resource for the set of sounding reference signal symbols comprises configuring the time domain resource for the set of sounding reference signal symbols based on: the number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols; the number of frequency hops corresponding to the set of sounding reference signal symbols; the number of antenna switches corresponding to the set of sounding reference signal symbols; and the guard symbol configuration corresponding to the set of sounding reference signal symbols.
- the method further comprises determining the number of frequency hops corresponding to the set of sounding reference signal symbols based on the length of the set of sounding reference signal symbols.
- the method further comprises determining a subband bandwidth per hop based on the number of frequency hops corresponding to the set of sounding reference signal symbols.
- an apparatus comprises: a processor that determines a length of a set of sounding reference signal symbols based on: a number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols; a number of frequency hops corresponding to the set of sounding reference signal symbols; a number of antenna switches corresponding to the set of sounding reference signal symbols; and a guard symbol configuration corresponding to the set of sounding reference signal symbols.
- the set of sounding reference signal symbols includes at least one guard symbol.
- the processor determines whether the set of sounding reference signal symbols conflict with a last symbol in a subframe that includes the set of sounding reference signal symbols, and the last symbol in the subframe is not part of the set of sounding reference signal symbols.
- the processor determining whether the set of sounding reference signal symbols conflict with the last symbol in the subframe comprises the processor determining whether the set of sounding reference signal symbols conflict with the last symbol in the subframe based on the length of the set of sounding reference signal symbols and a starting symbol position for the set of sounding reference signal symbols.
- the set of sounding reference signal symbols and the last symbol in the subframe are separated by a guard symbol.
- the processor in response to determining that the set of sounding reference signal symbols conflict with the last symbol in the subframe, determines one or more sounding reference signal symbols of the set of sounding reference signal symbols to discard.
- a user equipment determines the length of the set of sounding reference signal symbols.
- a network unit determines the length of the set of sounding reference signal symbols.
- the processor configures a time domain resource for the set of sounding reference signal symbols.
- the processor configuring the time domain resource for the set of sounding reference signal symbols comprises the processor configuring a total length of the set of sounding reference signal symbols, a starting position for the set of sounding reference signal symbols, or a combination thereof.
- the processor configuring the time domain resource for the set of sounding reference signal symbols comprises the processor configuring the time domain resource for the set of sounding reference signal symbols based on: the number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols; the number of frequency hops corresponding to the set of sounding reference signal symbols; the number of antenna switches corresponding to the set of sounding reference signal symbols; and the guard symbol configuration corresponding to the set of sounding reference signal symbols.
- the processor determines the number of frequency hops corresponding to the set of sounding reference signal symbols based on the length of the set of sounding reference signal symbols.
- the processor determines a subband bandwidth per hop based on the number of frequency hops corresponding to the set of sounding reference signal symbols.
- a method comprises: determining a number of frequency hops corresponding to a set of sounding reference signal symbols based on a length of the set of sounding reference signal symbols.
- the method further comprises determining a size of a subband bandwidth based on the number of frequency hops and a sounding bandwidth.
- an apparatus comprises: a processor that determines a number of frequency hops corresponding to a set of sounding reference signal symbols based on a length of the set of sounding reference signal symbols.
- the processor determines a size of a subband bandwidth based on the number of frequency hops and a sounding bandwidth.
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Abstract
Description
Claims (36)
- A method comprising:determining a length of a set of sounding reference signal symbols based on:a number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols;a number of frequency hops corresponding to the set of sounding reference signal symbols;a number of antenna switches corresponding to the set of sounding reference signal symbols; anda guard symbol configuration corresponding to the set of sounding reference signal symbols.
- The method of claim 1, wherein the set of sounding reference signal symbols includes at least one guard symbol.
- The method of claim 1, further comprising determining whether the set of sounding reference signal symbols conflict with a last symbol in a subframe that includes the set of sounding reference signal symbols, wherein the last symbol in the subframe is not part of the set of sounding reference signal symbols.
- The method of claim 3, wherein determining whether the set of sounding reference signal symbols conflict with the last symbol in the subframe comprises determining whether the set of sounding reference signal symbols conflict with the last symbol in the subframe based on the length of the set of sounding reference signal symbols and a starting symbol position for the set of sounding reference signal symbols.
- The method of claim 3, wherein the set of sounding reference signal symbols and the last symbol in the subframe are separated by a guard symbol.
- The method of claim 3, further comprising, in response to determining that the set of sounding reference signal symbols conflict with the last symbol in the subframe, determining one or more sounding reference signal symbols of the set of sounding reference signal symbols to discard.
- The method of claim 1, wherein a user equipment determines the length of the set of sounding reference signal symbols.
- The method of claim 1, wherein a network unit determines the length of the set of sounding reference signal symbols.
- The method of claim 8, further comprising configuring a time domain resource for the set of sounding reference signal symbols.
- The method of claim 9, wherein configuring the time domain resource for the set of sounding reference signal symbols comprises configuring a total length of the set of sounding reference signal symbols, a starting position for the set of sounding reference signal symbols, or a combination thereof.
- The method of claim 9, wherein configuring the time domain resource for the set of sounding reference signal symbols comprises configuring the time domain resource for the set of sounding reference signal symbols based on:the number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols;the number of frequency hops corresponding to the set of sounding reference signal symbols;the number of antenna switches corresponding to the set of sounding reference signal symbols; andthe guard symbol configuration corresponding to the set of sounding reference signal symbols.
- The method of claim 1, further comprising determining the number of frequency hops corresponding to the set of sounding reference signal symbols based on the length of the set of sounding reference signal symbols.
- The method of claim 12, further comprising determining a subband bandwidth per hop based on the number of frequency hops corresponding to the set of sounding reference signal symbols.
- The method of claim 1, wherein determining the length of the set of sounding reference signal symbols comprises determining the length of the set of sounding reference signal symbols as follows: N=R*N AS*N FH+ (N AS*GS AS-1) *GS AS+ (N FH*GS FH-1) *GS FH*N AS, N is the length of the set of sounding reference signal symbols, R is the number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols, N AS is the number of antenna switches corresponding to the set of sounding reference signal symbols, N FH is the number of frequency hops corresponding to the set of sounding reference signal symbols, GS AS is a number of guard symbols for antenna switching, and GS FH is a number of guard symbols for frequency hopping.
- The method of claim 1, wherein determining the length of the set of sounding reference signal symbols comprises determining the length of the set of sounding reference signal symbols as follows: N=R*N AS*N FH+ (N FH*GS FH-1) *GS FH+ (N AS*GS AS-1) *GS AS*N FH, N is the length of the set of sounding reference signal symbols, R is the number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols, N AS is the number of antenna switches corresponding to the set of sounding reference signal symbols, N FH is the number of frequency hops corresponding to the set of sounding reference signal symbols, GS AS is a number of guard symbols for antenna switching, and GS FH is a number of guard symbols for frequency hopping.
- The method of claim 1, wherein determining the length of the set of sounding reference signal symbols comprises determining the length of the set of sounding reference signal symbols as follows: N=R*N AS*N FH+ (N AS*GS AS-1) *GS AS* (1-GS FH) + (N FH*GS FH-1) *GS FH* (1-GS AS) + (N AS*N FH-1) *GS AS*GS FH, N is the length of the set of sounding reference signal symbols, R is the number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols, N AS is the number of antenna switches corresponding to the set of sounding reference signal symbols, N FH is the number of frequency hops corresponding to the set of sounding reference signal symbols, GS AS is a number of guard symbols for antenna switching, and GS FH is a number of guard symbols for frequency hopping.
- An apparatus comprising:a processor that determines a length of a set of sounding reference signal symbols based on:a number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols;a number of frequency hops corresponding to the set of sounding reference signal symbols;a number of antenna switches corresponding to the set of sounding reference signal symbols; anda guard symbol configuration corresponding to the set of sounding reference signal symbols.
- The apparatus of claim 17, wherein the set of sounding reference signal symbols includes at least one guard symbol.
- The apparatus of claim 17, wherein the processor determines whether the set of sounding reference signal symbols conflict with a last symbol in a subframe that includes the set of sounding reference signal symbols, and the last symbol in the subframe is not part of the set of sounding reference signal symbols.
- The apparatus of claim 19, wherein the processor determining whether the set of sounding reference signal symbols conflict with the last symbol in the subframe comprises the processor determining whether the set of sounding reference signal symbols conflict with the last symbol in the subframe based on the length of the set of sounding reference signal symbols and a starting symbol position for the set of sounding reference signal symbols.
- The apparatus of claim 19, wherein the set of sounding reference signal symbols and the last symbol in the subframe are separated by a guard symbol.
- The apparatus of claim 19, wherein the processor, in response to determining that the set of sounding reference signal symbols conflict with the last symbol in the subframe, determines one or more sounding reference signal symbols of the set of sounding reference signal symbols to discard.
- The apparatus of claim 17, wherein a user equipment determines the length of the set of sounding reference signal symbols.
- The apparatus of claim 17, wherein a network unit determines the length of the set of sounding reference signal symbols.
- The apparatus of claim 24, wherein the processor configures a time domain resource for the set of sounding reference signal symbols.
- The apparatus of claim 25, wherein the processor configuring the time domain resource for the set of sounding reference signal symbols comprises the processor configuring a total length of the set of sounding reference signal symbols, a starting position for the set of sounding reference signal symbols, or a combination thereof.
- The apparatus of claim 25, wherein the processor configuring the time domain resource for the set of sounding reference signal symbols comprises the processor configuring the time domain resource for the set of sounding reference signal symbols based on:the number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols;the number of frequency hops corresponding to the set of sounding reference signal symbols;the number of antenna switches corresponding to the set of sounding reference signal symbols; andthe guard symbol configuration corresponding to the set of sounding reference signal symbols.
- The apparatus of claim 17, wherein the processor determines the number of frequency hops corresponding to the set of sounding reference signal symbols based on the length of the set of sounding reference signal symbols.
- The apparatus of claim 28, wherein the processor determines a subband bandwidth per hop based on the number of frequency hops corresponding to the set of sounding reference signal symbols.
- The apparatus of claim 17, wherein the processor determining the length of the set of sounding reference signal symbols comprises the processor determining the length of the set of sounding reference signal symbols as follows: N=R*N AS*N FH+ (N AS*GS AS-1) *GS AS+ (N FH*GS FH-1) *GS FH*N AS, N is the length of the set of sounding reference signal symbols, R is the number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols, N AS is the number of antenna switches corresponding to the set of sounding reference signal symbols, N FH is the number of frequency hops corresponding to the set of sounding reference signal symbols, GS AS is a number of guard symbols for antenna switching, and GS FH is a number of guard symbols for frequency hopping.
- The apparatus of claim 17, wherein the processor determining the length of the set of sounding reference signal symbols comprises the processor determining the length of the set of sounding reference signal symbols as follows: N=R*N AS*N FH+ (N FH*GS FH-1) * GS FH+ (N AS*GS AS-1) *GS AS*N FH, N is the length of the set of sounding reference signal symbols, R is the number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols, N AS is the number of antenna switches corresponding to the set of sounding reference signal symbols, N FH is the number of frequency hops corresponding to the set of sounding reference signal symbols, GS AS is a number of guard symbols for antenna switching, and GS FH is a number of guard symbols for frequency hopping.
- The apparatus of claim 17, wherein the processor determining the length of the set of sounding reference signal symbols comprises the processor determining the length of the set of sounding reference signal symbols as follows: N=R*N AS*N FH+ (N AS*GS AS-1) *GS AS* (1-GS FH) + (N FH*GS FH-1) *GS FH* (1-GS AS) + (N AS*N FH-1) *GS AS*GS FH, N is the length of the set of sounding reference signal symbols, R is the number of sounding reference signal symbol repetitions corresponding to the set of sounding reference signal symbols, N AS is the number of antenna switches corresponding to the set of sounding reference signal symbols, N FH is the number of frequency hops corresponding to the set of sounding reference signal symbols, GS AS is a number of guard symbols for antenna switching, and GS FH is a number of guard symbols for frequency hopping.
- A method comprising:determining a number of frequency hops corresponding to a set of sounding reference signal symbols based on a length of the set of sounding reference signal symbols.
- The method of claim 33, further comprising determining a size of a subband bandwidth based on the number of frequency hops and a sounding bandwidth.
- An apparatus comprising:a processor that determines a number of frequency hops corresponding to a set of sounding reference signal symbols based on a length of the set of sounding reference signal symbols.
- The apparatus of claim 35, wherein the processor determines a size of a subband bandwidth based on the number of frequency hops and a sounding bandwidth.
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