WO2018127160A1 - Transmitting sounding reference signals in new radio - Google Patents

Transmitting sounding reference signals in new radio Download PDF

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Publication number
WO2018127160A1
WO2018127160A1 PCT/CN2018/071683 CN2018071683W WO2018127160A1 WO 2018127160 A1 WO2018127160 A1 WO 2018127160A1 CN 2018071683 W CN2018071683 W CN 2018071683W WO 2018127160 A1 WO2018127160 A1 WO 2018127160A1
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WO
WIPO (PCT)
Prior art keywords
srs
waveform
transmit
dft
ofdm waveform
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Ceased
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PCT/CN2018/071683
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French (fr)
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WO2018127160A8 (en
Inventor
Yu Zhang
Chao Wei
Hao Xu
Wanshi Chen
Wei Zeng
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Qualcomm Inc
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Qualcomm Inc
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Publication date
Application filed by Qualcomm Inc filed Critical Qualcomm Inc
Priority to CN201880004956.5A priority Critical patent/CN110089180B/en
Priority to US16/467,872 priority patent/US11483107B2/en
Priority to EP18736432.8A priority patent/EP3566520A4/en
Publication of WO2018127160A1 publication Critical patent/WO2018127160A1/en
Publication of WO2018127160A8 publication Critical patent/WO2018127160A8/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0001Arrangements for dividing the transmission path
    • H04L5/0014Three-dimensional division
    • H04L5/0023Time-frequency-space
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L25/00Baseband systems
    • H04L25/02Details ; arrangements for supplying electrical power along data transmission lines
    • H04L25/0202Channel estimation
    • H04L25/0224Channel estimation using sounding signals
    • H04L25/0226Channel estimation using sounding signals sounding signals per se
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • H04L27/0008Modulated-carrier systems arrangements for allowing a transmitter or receiver to use more than one type of modulation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • H04L27/26Systems using multi-frequency codes
    • H04L27/2601Multicarrier modulation systems
    • H04L27/2602Signal structure
    • H04L27/261Details of reference signals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • H04L27/26Systems using multi-frequency codes
    • H04L27/2601Multicarrier modulation systems
    • H04L27/2602Signal structure
    • H04L27/261Details of reference signals
    • H04L27/2613Structure of the reference signals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • H04L27/26Systems using multi-frequency codes
    • H04L27/2601Multicarrier modulation systems
    • H04L27/2626Arrangements specific to the transmitter only
    • H04L27/2627Modulators
    • H04L27/2634Inverse fast Fourier transform [IFFT] or inverse discrete Fourier transform [IDFT] modulators in combination with other circuits for modulation
    • H04L27/2636Inverse fast Fourier transform [IFFT] or inverse discrete Fourier transform [IDFT] modulators in combination with other circuits for modulation with FFT or DFT modulators, e.g. standard single-carrier frequency-division multiple access [SC-FDMA] transmitter or DFT spread orthogonal frequency division multiplexing [DFT-SOFDM]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0001Arrangements for dividing the transmission path
    • H04L5/0003Two-dimensional division
    • H04L5/0005Time-frequency
    • H04L5/0007Time-frequency the frequencies being orthogonal, e.g. OFDM(A) or DMT
    • H04L5/001Time-frequency the frequencies being orthogonal, e.g. OFDM(A) or DMT the frequencies being arranged in component carriers
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0048Allocation of pilot signals, i.e. of signals known to the receiver
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • H04L27/26Systems using multi-frequency codes
    • H04L27/2601Multicarrier modulation systems
    • H04L27/2626Arrangements specific to the transmitter only
    • H04L27/2627Modulators

Definitions

  • the present disclosure relates generally to communication systems, and more particularly, to methods and apparatus for transmitting sounding reference signals (SRS) in communications systems operating according to new radio (NR) technologies.
  • SRS sounding reference signals
  • NR new radio
  • Wireless communication systems are widely deployed to provide various telecommunication services such as telephony, video, data, messaging, and broadcasts.
  • Typical wireless communication systems may employ multiple-access technologies capable of supporting communication with multiple users by sharing available system resources (e.g., bandwidth, transmit power) .
  • multiple-access technologies include Long Term Evolution (LTE) systems, code division multiple access (CDMA) systems, time division multiple access (TDMA) systems, frequency division multiple access (FDMA) systems, orthogonal frequency division multiple access (OFDMA) systems, single-carrier frequency division multiple access (SC-FDMA) systems, and time division synchronous code division multiple access (TD-SCDMA) systems.
  • LTE Long Term Evolution
  • CDMA code division multiple access
  • TDMA time division multiple access
  • FDMA frequency division multiple access
  • OFDMA orthogonal frequency division multiple access
  • SC-FDMA single-carrier frequency division multiple access
  • TD-SCDMA time division synchronous code division multiple access
  • a wireless multiple-access communication system may include a number of base stations, each simultaneously supporting communication for multiple communication devices, otherwise known as user equipment (UEs) .
  • UEs user equipment
  • a set of one or more base stations may define an eNodeB (eNB) .
  • eNB eNodeB
  • a wireless multiple access communication system may include a number of distributed units (DUs) (e.g., edge units (EUs) , edge nodes (ENs) , radio heads (RHs) , smart radio heads (SRHs) , transmission reception points (TRPs) , etc.
  • DUs distributed units
  • EUs edge units
  • ENs edge nodes
  • RHs radio heads
  • SSRHs smart radio heads
  • TRPs transmission reception points
  • CUs central units
  • CUs central units
  • CNs central nodes
  • ANCs access node controllers
  • a set of one or more distributed units, in communication with a central unit may define an access node (e.g., a new radio base station (NR BS) , a new radio node-B (NR NB) , a network node, 5G NB, eNB, etc. ) .
  • NR BS new radio base station
  • NR NB new radio node-B
  • 5G NB 5G NB
  • eNB evolved Node controller
  • a base station or DU may communicate with a set of UEs on downlink channels (e.g., for transmissions from a base station or to a UE) and uplink channels (e.g., for transmissions from a UE to a base station or distributed unit) .
  • downlink channels e.g., for transmissions from a base station or to a UE
  • uplink channels e.g., for transmissions from a UE to a base station or distributed unit
  • NR new radio
  • 3GPP Third Generation Partnership Project
  • the SRS may provide information concerning the uplink channel which allows frequency dependent scheduling on the uplink by a base station, NodeB, or eNodeB.
  • the SRS may be used to measure the uplink channel quality over a portion of the uplink channel bandwidth.
  • a UE may be instructed by an eNodeB to transmit the SRS across a particular portion of the uplink channel bandwidth.
  • Certain aspects provide a method for wireless communication by a user equipment.
  • the method generally includes determining whether to transmit a sounding reference signal (SRS) using a discrete Fourier transform (DFT) spread orthogonal frequency domain multiplexing (DFT-S-OFDM) waveform or a cyclic prefix orthogonal frequency domain multiplexing (CP-OFDM) waveform, and transmitting the SRS using the determined waveform.
  • SRS sounding reference signal
  • DFT discrete Fourier transform
  • DFT-S-OFDM discrete Fourier transform
  • CP-OFDM cyclic prefix orthogonal frequency domain multiplexing
  • Certain aspects provide a method for wireless communication by a base station.
  • the method generally includes determining whether a user equipment (UE) is to transmit a sounding reference signal (SRS) using a discrete Fourier transform (DFT) spread orthogonal frequency domain multiplexing (DFT-S-OFDM) waveform or a cyclic prefix orthogonal frequency domain multiplexing (CP-OFDM) waveform, sending an indication of the determined waveform to the UE, and processing the SRS, based on the determined waveform.
  • DFT discrete Fourier transform
  • DFT-S-OFDM discrete Fourier transform
  • CP-OFDM cyclic prefix orthogonal frequency domain multiplexing
  • the apparatus generally includes a processor configured to determine whether to transmit a sounding reference signal (SRS) using a discrete Fourier transform (DFT) spread orthogonal frequency domain multiplexing (DFT-S-OFDM) waveform or a cyclic prefix orthogonal frequency domain multiplexing (CP-OFDM) waveform, and to cause the apparatus to transmit the SRS using the determined waveform, and a memory coupled with the processor.
  • SRS sounding reference signal
  • DFT-S-OFDM discrete Fourier transform
  • CP-OFDM cyclic prefix orthogonal frequency domain multiplexing
  • the apparatus generally includes a processor configured to determine whether a user equipment (UE) is to transmit a sounding reference signal (SRS) using a discrete Fourier transform (DFT) spread orthogonal frequency domain multiplexing (DFT-S-OFDM) waveform or a cyclic prefix orthogonal frequency domain multiplexing (CP-OFDM) waveform, to cause the apparatus to send an indication of the determined waveform to the UE, and to process the SRS, based on the determined waveform, and a memory coupled with the processor.
  • DFT discrete Fourier transform
  • DFT-S-OFDM discrete Fourier transform
  • CP-OFDM cyclic prefix orthogonal frequency domain multiplexing
  • the one or more aspects comprise the features hereinafter fully described and particularly pointed out in the claims.
  • the following description and the annexed drawings set forth in detail certain illustrative features of the one or more aspects. These features are indicative, however, of but a few of the various ways in which the principles of various aspects may be employed, and this description is intended to include all such aspects and their equivalents.
  • FIG. 1 is a block diagram conceptually illustrating an example telecommunications system, in accordance with certain aspects of the present disclosure.
  • FIG. 2 is a block diagram illustrating an example logical architecture of a distributed RAN, in accordance with certain aspects of the present disclosure.
  • FIG. 3 is a diagram illustrating an example physical architecture of a distributed RAN, in accordance with certain aspects of the present disclosure.
  • FIG. 4 is a block diagram conceptually illustrating a design of an example BS and user equipment (UE) , in accordance with certain aspects of the present disclosure.
  • FIG. 5 is a diagram showing examples for implementing a communication protocol stack, in accordance with certain aspects of the present disclosure.
  • FIG. 6 illustrates an example of a DL-centric subframe, in accordance with certain aspects of the present disclosure.
  • FIG. 7 illustrates an example of an UL-centric subframe, in accordance with certain aspects of the present disclosure.
  • FIGs. 8A and 8B illustrate example operations for wireless communications, in accordance with certain aspects of the present disclosure.
  • FIG. 9 example operations for wireless communications, in accordance with aspects of the present disclosure.
  • FIG. 10 illustrates a technique for multiplexing SRSs using different waveforms in frequency, in accordance with certain aspects of the present disclosure.
  • FIG. 11 illustrates a technique for transmitting an SRS, in accordance with certain aspects of the present disclosure.
  • FIG. 12 illustrates a technique for determining a waveform for transmitting an SRS, in accordance with certain aspects of the present disclosure.
  • FIG. 13 illustrates a technique for determining a waveform for transmitting an SRS, in accordance with certain aspects of the present disclosure.
  • FIG. 14 illustrates a technique for determining a waveform for transmitting an SRS, in accordance with certain aspects of the present disclosure.
  • aspects of the present disclosure provide apparatus, methods, processing systems, and computer readable mediums for new radio (NR) (new radio access technology or 5G technology) .
  • NR new radio access technology
  • 5G technology new radio access technology
  • NR may support various wireless communication services, such as Enhanced mobile broadband (eMBB) targeting wide bandwidth (e.g., 80 MHz and wider) , millimeter wave (mmW) targeting high carrier frequency (e.g., 27 GHz and higher) , massive MTC (mMTC) targeting non-backward compatible MTC techniques, and/or mission critical targeting ultra-reliable low latency communications (URLLC) .
  • eMBB Enhanced mobile broadband
  • mmW millimeter wave
  • mMTC massive MTC
  • URLLC ultra-reliable low latency communications
  • These services may include latency and reliability requirements.
  • These services may also have different transmission time intervals (TTI) to meet respective quality of service (QoS) requirements.
  • TTI transmission time intervals
  • QoS quality of service
  • these services may co-exist in the same subframe.
  • a network e.g., a network entity, such as a BS
  • CP-OFDM cyclic prefix orthogonal frequency domain multiplexing
  • DFT-S-OFDM discrete Fourier transform spread orthogonal frequency domain multiplexing
  • UEs support both CP-OFDM and DFT-S-OFDM based waveforms.
  • a CDMA network may implement a radio technology such as Universal Terrestrial Radio Access (UTRA) , cdma2000, etc.
  • UTRA includes Wideband CDMA (WCDMA) and other variants of CDMA.
  • cdma2000 covers IS-2000, IS-95 and IS-856 standards.
  • a TDMA network may implement a radio technology such as Global System for Mobile Communications (GSM) .
  • An OFDMA network may implement a radio technology such as NR (e.g.
  • E-UTRA Evolved UTRA
  • UMB Ultra Mobile Broadband
  • IEEE 802.11 Wi-Fi
  • IEEE 802.16 WiMAX
  • IEEE 802.20 Flash-OFDMA
  • UMTS Universal Mobile Telecommunication System
  • NR is an emerging wireless communications technology under development in conjunction with the 5G Technology Forum (5GTF) .
  • 3GPP Long Term Evolution (LTE) and LTE-Advanced (LTE-A) are releases of UMTS that use E-UTRA.
  • UTRA, E-UTRA, UMTS, LTE, LTE-A and GSM are described in documents from an organization named ā€œ3rd Generation Partnership Projectā€ (3GPP) .
  • cdma2000 and UMB are described in documents from an organization named ā€œ3rd Generation Partnership Project 2ā€ (3GPP2) .
  • the techniques described herein may be used for the wireless networks and radio technologies mentioned above as well as other wireless networks and radio technologies. For clarity, while aspects may be described herein using terminology commonly associated with 3G and/or 4G wireless technologies, aspects of the present disclosure can be applied in other generation-based communication systems, such as 5G and later, including NR technologies.
  • FIG. 1 illustrates an example wireless network 100, such as a new radio (NR) or 5G network, in which aspects of the present disclosure may be performed, for example, for enabling connectivity sessions and internet protocol (IP) establishment, as described in greater detail below.
  • NR new radio
  • 5G 5th Generation
  • IP internet protocol
  • the wireless network 100 may include a number of BSs 110 and other network entities.
  • a BS may be a station that communicates with UEs.
  • Each BS 110 may provide communication coverage for a particular geographic area.
  • the term ā€œcellā€ can refer to a coverage area of a Node B and/or a Node B subsystem serving this coverage area, depending on the context in which the term is used.
  • the term ā€œcellā€ and eNB, Node B, 5G NB, AP, NR BS, NR BS, or TRP may be interchangeable.
  • a cell may not necessarily be stationary, and the geographic area of the cell may move according to the location of a mobile base station.
  • the base stations may be interconnected to one another and/or to one or more other base stations or network nodes (not shown) in the wireless network 100 through various types of backhaul interfaces such as a direct physical connection, a virtual network, or the like using any suitable transport network.
  • any number of wireless networks may be deployed in a given geographic area.
  • Each wireless network may support a particular radio access technology (RAT) and may operate on one or more frequencies.
  • a RAT may also be referred to as a radio technology, an air interface, etc.
  • a frequency may also be referred to as a carrier, a frequency channel, etc.
  • Each frequency may support a single RAT in a given geographic area in order to avoid interference between wireless networks of different RATs.
  • NR or 5G RAT networks may be deployed.
  • a BS may provide communication coverage for a macro cell, a pico cell, a femto cell, and/or other types of cell.
  • a macro cell may cover a relatively large geographic area (e.g., several kilometers in radius) and may allow unrestricted access by UEs with service subscription.
  • a pico cell may cover a relatively small geographic area and may allow unrestricted access by UEs with service subscription.
  • a femto cell may cover a relatively small geographic area (e.g., a home) and may allow restricted access by UEs having association with the femto cell (e.g., UEs in a Closed Subscriber Group (CSG) , UEs for users in the home, etc. ) .
  • CSG Closed Subscriber Group
  • a BS for a macro cell may be referred to as a macro BS.
  • a BS for a pico cell may be referred to as a pico BS.
  • a BS for a femto cell may be referred to as a femto BS or a home BS.
  • the BSs 110a, 110b and 110c may be macro BSs for the macro cells 102a, 102b and 102c, respectively.
  • the BS 110x may be a pico BS for a pico cell 102x.
  • the BSs 110y and 110z may be femto BS for the femto cells 102y and 102z, respectively.
  • a BS may support one or multiple (e.g., three) cells.
  • the wireless network 100 may also include relay stations.
  • a relay station is a station that receives a transmission of data and/or other information from an upstream station (e.g., a BS or a UE) and sends a transmission of the data and/or other information to a downstream station (e.g., a UE or a BS) .
  • a relay station may also be a UE that relays transmissions for other UEs.
  • a relay station 110r may communicate with the BS 110a and a UE 120r in order to facilitate communication between the BS 110a and the UE 120r.
  • a relay station may also be referred to as a relay BS, a relay, etc.
  • the wireless network 100 may be a heterogeneous network that includes BSs of different types, e.g., macro BS, pico BS, femto BS, relays, etc. These different types of BSs may have different transmit power levels, different coverage areas, and different impact on interference in the wireless network 100.
  • macro BS may have a high transmit power level (e.g., 20 Watts) whereas pico BS, femto BS, and relays may have a lower transmit power level (e.g., 1 Watt) .
  • the wireless network 100 may support synchronous or asynchronous operation.
  • the BSs may have similar frame timing, and transmissions from different BSs may be approximately aligned in time.
  • the BSs may have different frame timing, and transmissions from different BSs may not be aligned in time.
  • the techniques described herein may be used for both synchronous and asynchronous operation.
  • a network controller 130 may coupled to a set of BSs and provide coordination and control for these BSs.
  • the network controller 130 may communicate with the BSs 110 via a backhaul.
  • the BSs 110 may also communicate with one another, e.g., directly or indirectly via wireless or wireline backhaul.
  • the UEs 120 may be dispersed throughout the wireless network 100, and each UE may be stationary or mobile.
  • a UE may also be referred to as a mobile station, a terminal, an access terminal, a subscriber unit, a station, a Customer Premises Equipment (CPE) , a cellular phone, a smart phone, a personal digital assistant (PDA) , a wireless modem, a wireless communication device, a handheld device, a laptop computer, a cordless phone, a wireless local loop (WLL) station, a tablet, a camera, a gaming device, a netbook, a smartbook, an ultrabook, a medical device or medical equipment, a biometric sensor and/or device, a wearable device such as a smart watch, smart clothing, smart glasses, a smart wrist band, smart jewelry (e.g., a smart ring, a smart bracelet, etc.
  • CPE Customer Premises Equipment
  • PDA personal digital assistant
  • WLL wireless local loop
  • MTC machine-type communication
  • eMTC evolved MTC
  • MTC and eMTC UEs include, for example, robots, drones, remote devices, sensors, meters, monitors, location tags, etc., that may communicate with a BS, another device (e.g., remote device) , or some other entity.
  • a wireless node may provide, for example, connectivity for or to a network (e.g., a wide area network such as Internet or a cellular network) via a wired or wireless communication link.
  • a network e.g., a wide area network such as Internet or a cellular network
  • Some UEs may be considered Internet-of-Things (IoT) devices.
  • IoT Internet-of-Things
  • a solid line with double arrows indicates desired transmissions between a UE and a serving BS, which is a BS designated to serve the UE on the downlink and/or uplink.
  • a dashed line with double arrows indicates interfering transmissions between a UE and a BS.
  • Certain wireless networks utilize orthogonal frequency division multiplexing (OFDM) on the downlink and single-carrier frequency division multiplexing (SC-FDM) on the uplink.
  • OFDM and SC-FDM partition the system bandwidth into multiple (K) orthogonal subcarriers, which are also commonly referred to as tones, bins, etc.
  • K orthogonal subcarriers
  • Each subcarrier may be modulated with data.
  • modulation symbols are sent in the frequency domain with OFDM and in the time domain with SC-FDM.
  • the spacing between adjacent subcarriers may be fixed, and the total number of subcarriers (K) may be dependent on the system bandwidth.
  • the spacing of the subcarriers may be 15 kHz and the minimum resource allocation (called a ā€˜resource block’ ) may be 12 subcarriers (or 180 kHz) . Consequently, the nominal FFT size may be equal to 128, 256, 512, 1024 or 2048 for system bandwidth of 1.25, 2.5, 5, 10 or 20 megahertz (MHz) , respectively.
  • the system bandwidth may also be partitioned into subbands. For example, a subband may cover 1.08 MHz (i.e., 6 resource blocks) , and there may be 1, 2, 4, 8 or 16 subbands for system bandwidth of 1.25, 2.5, 5, 10 or 20 MHz, respectively.
  • NR may utilize OFDM with a CP on the uplink and downlink and include support for half-duplex operation using time division duplex (TDD) .
  • TDD time division duplex
  • a single component carrier bandwidth of 100 MHz may be supported.
  • NR resource blocks may span 12 sub-carriers with a sub-carrier bandwidth of 75 kHz over a 0.1 ms duration.
  • Each radio frame may consist of 50 subframes with a length of 10 ms. Consequently, each subframe may have a length of 0.2 ms.
  • Each subframe may indicate a link direction (i.e., DL or UL) for data transmission and the link direction for each subframe may be dynamically switched.
  • Each subframe may include DL and/or UL user data as well as DL and/or UL control data.
  • UL and DL subframes for NR may be as described in more detail below with respect to FIGs. 6 and 7.
  • Beamforming may be supported and beam direction may be dynamically configured.
  • MIMO transmissions with precoding may also be supported.
  • MIMO configurations in the DL may support up to 8 transmit antennas with multi-layer DL transmissions up to 8 streams and up to 2 streams per UE. Multi-layer transmissions with up to 2 streams per UE may be supported. Aggregation of multiple cells may be supported with up to 8 serving cells.
  • NR may support a different air interface, other than an OFDM-based.
  • NR networks may include entities such CUs and/or DUs.
  • a scheduling entity e.g., a base station
  • the scheduling entity may be responsible for scheduling, assigning, reconfiguring, and releasing resources for one or more subordinate entities. That is, for scheduled communication, subordinate entities utilize resources allocated by the scheduling entity.
  • Base stations are not the only entities that may function as a scheduling entity. That is, in some examples, a UE may function as a scheduling entity, scheduling resources for one or more subordinate entities (e.g., one or more other UEs) .
  • the UE is functioning as a scheduling entity, and other UEs utilize resources scheduled by the UE for wireless communication.
  • a UE may function as a scheduling entity in a peer-to-peer (P2P) network, and/or in a mesh network.
  • P2P peer-to-peer
  • UEs may optionally communicate directly with one another in addition to communicating with the scheduling entity.
  • a scheduling entity and one or more subordinate entities may communicate utilizing the scheduled resources.
  • a RAN may include a CU and DUs.
  • a NR BS e.g., eNB, 5G Node B, Node B, transmission reception point (TRP) , access point (AP)
  • NR cells can be configured as access cell (ACells) or data only cells (DCells) .
  • the RAN e.g., a central unit or distributed unit
  • DCells may be cells used for carrier aggregation or dual connectivity, but not used for initial access, cell selection/reselection, or handover. In some cases DCells may not transmit synchronization signals-in some case cases DCells may transmit SS.
  • NR BSs may transmit downlink signals to UEs indicating the cell type. Based on the cell type indication, the UE may communicate with the NR BS. For example, the UE may determine NR BSs to consider for cell selection, access, handover, and/or measurement based on the indicated cell type.
  • FIG. 2 illustrates an example logical architecture of a distributed radio access network (RAN) 200, which may be implemented in the wireless communication system illustrated in FIG. 1.
  • a 5G access node 206 may include an access node controller (ANC) 202.
  • the ANC may be a central unit (CU) of the distributed RAN 200.
  • the backhaul interface to the next generation core network (NG-CN) 204 may terminate at the ANC.
  • the backhaul interface to neighboring next generation access nodes (NG-ANs) may terminate at the ANC.
  • the ANC may include one or more TRPs 208 (which may also be referred to as BSs, NR BSs, Node Bs, 5G NBs, APs, or some other term) .
  • TRPs 208 which may also be referred to as BSs, NR BSs, Node Bs, 5G NBs, APs, or some other term.
  • TRP may be used interchangeably with ā€œcell. ā€
  • the TRPs 208 may be a DU.
  • the TRPs may be connected to one ANC (ANC 202) or more than one ANC (not illustrated) .
  • ANC ANC
  • RaaS radio as a service
  • a TRP may include one or more antenna ports.
  • the TRPs may be configured to individually (e.g., dynamic selection) or jointly (e.g., joint transmission) serve traffic to a UE.
  • the local architecture 200 may be used to illustrate fronthaul definition.
  • the architecture may be defined that support fronthauling solutions across different deployment types.
  • the architecture may be based on transmit network capabilities (e.g., bandwidth, latency, and/or jitter) .
  • the architecture may share features and/or components with LTE.
  • the next generation AN (NG-AN) 210 may support dual connectivity with NR.
  • the NG-AN may share a common fronthaul for LTE and NR.
  • the architecture may enable cooperation between and among TRPs 208. For example, cooperation may be preset within a TRP and/or across TRPs via the ANC 202. According to aspects, no inter-TRP interface may be needed or present.
  • a dynamic configuration of split logical functions may be present within the architecture 200.
  • the Radio Resource Control (RRC) layer, Packet Data Convergence Protocol (PDCP) layer, Radio Link Control (RLC) layer, Medium Access Control (MAC) layer, and a Physical (PHY) layers may be adaptably placed at the DU or CU (e.g., TRP or ANC, respectively) .
  • a BS may include a central unit (CU) (e.g., ANC 202) and/or one or more distributed units (e.g., one or more TRPs 208) .
  • CU central unit
  • distributed units e.g., one or more TRPs 208 .
  • FIG. 3 illustrates an example physical architecture of a distributed RAN 300, according to aspects of the present disclosure.
  • a centralized core network unit (C-CU) 302 may host core network functions.
  • the C-CU may be centrally deployed.
  • C-CU functionality may be offloaded (e.g., to advanced wireless services (AWS) ) , in an effort to handle peak capacity.
  • AWS advanced wireless services
  • a centralized RAN unit (C-RU) 304 may host one or more ANC functions.
  • the C-RU may host core network functions locally.
  • the C-RU may have distributed deployment.
  • the C-RU may be closer to the network edge.
  • a DU 306 may host one or more TRPs (edge node (EN) , an edge unit (EU) , a radio head (RH) , a smart radio head (SRH) , or the like) .
  • the DU may be located at edges of the network with radio frequency (RF) functionality.
  • RF radio frequency
  • FIG. 4 illustrates example components of the BS 110 and UE 120 illustrated in FIG. 1, which may be used to implement aspects of the present disclosure.
  • the BS may include a TRP.
  • One or more components of the BS 110 and UE 120 may be used to practice aspects of the present disclosure.
  • antennas 452, Tx/Rx 222, processors 466, 458, 464, and/or controller/processor 480 of the UE 120 and/or antennas 434, processors 460, 420, 438, and/or controller/processor 440 of the BS 110 may be used to perform the operations described herein and illustrated with reference to FIGs. 8A, 8B, and 9.
  • FIG. 4 shows a block diagram of a design of a BS 110 and a UE 120, which may be one of the BSs and one of the UEs in FIG. 1.
  • the base station 110 may be the macro BS 110c in FIG. 1, and the UE 120 may be the UE 120y.
  • the base station 110 may also be a base station of some other type.
  • the base station 110 may be equipped with antennas 434a through 434t, and the UE 120 may be equipped with antennas 452a through 452r.
  • a transmit processor 420 may receive data from a data source 412 and control information from a controller/processor 440.
  • the control information may be for the Physical Broadcast Channel (PBCH) , Physical Control Format Indicator Channel (PCFICH) , Physical Hybrid ARQ Indicator Channel (PHICH) , Physical Downlink Control Channel (PDCCH) , etc.
  • the data may be for the Physical Downlink Shared Channel (PDSCH) , etc.
  • the processor 420 may process (e.g., encode and symbol map) the data and control information to obtain data symbols and control symbols, respectively.
  • the processor 420 may also generate reference symbols, e.g., for the PSS, SSS, and cell-specific reference signal.
  • a transmit (TX) multiple-input multiple-output (MIMO) processor 430 may perform spatial processing (e.g., precoding) on the data symbols, the control symbols, and/or the reference symbols, if applicable, and may provide output symbol streams to the modulators (MODs) 432a through 432t.
  • the TX MIMO processor 430 may perform certain aspects described herein for RS multiplexing.
  • Each modulator 432 may process a respective output symbol stream (e.g., for OFDM, etc. ) to obtain an output sample stream.
  • Each modulator 432 may further process (e.g., convert to analog, amplify, filter, and upconvert) the output sample stream to obtain a downlink signal.
  • Downlink signals from modulators 432a through 432t may be transmitted via the antennas 434a through 434t, respectively.
  • the antennas 452a through 452r may receive the downlink signals from the base station 110 and may provide received signals to the demodulators (DEMODs) 454a through 454r, respectively.
  • Each demodulator 454 may condition (e.g., filter, amplify, downconvert, and digitize) a respective received signal to obtain input samples.
  • Each demodulator 454 may further process the input samples (e.g., for OFDM, etc. ) to obtain received symbols.
  • a MIMO detector 456 may obtain received symbols from all the demodulators 454a through 454r, perform MIMO detection on the received symbols if applicable, and provide detected symbols. For example, MIMO detector 456 may provide detected RS transmitted using techniques described herein.
  • a receive processor 458 may process (e.g., demodulate, deinterleave, and decode) the detected symbols, provide decoded data for the UE 120 to a data sink 460, and provide decoded control information to a controller/processor 480.
  • a transmit processor 464 may receive and process data (e.g., for the Physical Uplink Shared Channel (PUSCH) ) from a data source 462 and control information (e.g., for the Physical Uplink Control Channel (PUCCH) from the controller/processor 480.
  • the transmit processor 464 may also generate reference symbols for a reference signal.
  • the symbols from the transmit processor 464 may be precoded by a TX MIMO processor 466 if applicable, further processed by the demodulators 454a through 454r (e.g., for SC-FDM, etc. ) , and transmitted to the base station 110.
  • the uplink signals from the UE 120 may be received by the antennas 434, processed by the modulators 432, detected by a MIMO detector 436 if applicable, and further processed by a receive processor 438 to obtain decoded data and control information sent by the UE 120.
  • the receive processor 438 may provide the decoded data to a data sink 439 and the decoded control information to the controller/processor 440.
  • the controllers/processors 440 and 480 may direct the operation at the base station 110 and the UE 120, respectively.
  • the processor 440 and/or other processors and modules at the base station 110 may perform or direct, e.g., the execution of the functional blocks illustrated in FIGs. 8A, 8B, and 9, and/or other processes for the techniques described herein.
  • the processor 480 and/or other processors and modules at the UE 120 may also perform or direct processes for the techniques described herein.
  • the memories 442 and 482 may store data and program codes for the BS 110 and the UE 120, respectively.
  • a scheduler 444 may schedule UEs for data transmission on the downlink and/or uplink.
  • FIG. 5 illustrates a diagram 500 showing examples for implementing a communications protocol stack, according to aspects of the present disclosure.
  • the illustrated communications protocol stacks may be implemented by devices operating in a in a 5G system (e.g., a system that supports uplink-based mobility) .
  • Diagram 500 illustrates a communications protocol stack including a Radio Resource Control (RRC) layer 510, a Packet Data Convergence Protocol (PDCP) layer 515, a Radio Link Control (RLC) layer 520, a Medium Access Control (MAC) layer 525, and a Physical (PHY) layer 530.
  • RRC Radio Resource Control
  • PDCP Packet Data Convergence Protocol
  • RLC Radio Link Control
  • MAC Medium Access Control
  • PHY Physical
  • the layers of a protocol stack may be implemented as separate modules of software, portions of a processor or ASIC, portions of non-collocated devices connected by a communications link, or various combinations thereof. Collocated and non-collocated implementations may be used, for example, in a protocol stack for a network access device (e.g., ANs, CUs, and/or DUs) or a UE.
  • a network access device e.g., ANs, CUs, and/or DUs
  • a first option 505-a shows a split implementation of a protocol stack, in which implementation of the protocol stack is split between a centralized network access device (e.g., an ANC 202 in FIG. 2) and distributed network access device (e.g., DU 208 in FIG. 2) .
  • a centralized network access device e.g., an ANC 202 in FIG. 2
  • distributed network access device e.g., DU 208 in FIG. 2
  • an RRC layer 510 and a PDCP layer 515 may be implemented by the central unit
  • an RLC layer 520, a MAC layer 525, and a PHY layer 530 may be implemented by the DU.
  • the CU and the DU may be collocated or non-collocated.
  • the first option 505-a may be useful in a macro cell, micro cell, or pico cell deployment.
  • a second option 505-b shows a unified implementation of a protocol stack, in which the protocol stack is implemented in a single network access device (e.g., access node (AN) , new radio base station (NR BS) , a new radio Node-B (NR NB) , a network node (NN) , or the like. ) .
  • the RRC layer 510, the PDCP layer 515, the RLC layer 520, the MAC layer 525, and the PHY layer 530 may each be implemented by the AN.
  • the second option 505-b may be useful in a femto cell deployment.
  • a UE may implement an entire protocol stack (e.g., the RRC layer 510, the PDCP layer 515, the RLC layer 520, the MAC layer 525, and the PHY layer 530) .
  • an entire protocol stack e.g., the RRC layer 510, the PDCP layer 515, the RLC layer 520, the MAC layer 525, and the PHY layer 530.
  • FIG. 6 is a diagram 600 showing an example of a DL-centric subframe.
  • the DL-centric subframe may include a control portion 602.
  • the control portion 602 may exist in the initial or beginning portion of the DL-centric subframe.
  • the control portion 602 may include various scheduling information and/or control information corresponding to various portions of the DL-centric subframe.
  • the control portion 602 may be a physical DL control channel (PDCCH) , as indicated in FIG. 6.
  • the DL-centric subframe may also include a DL data portion 604.
  • the DL data portion 604 may sometimes be referred to as the payload of the DL-centric subframe.
  • the DL data portion 604 may include the communication resources utilized to communicate DL data from the scheduling entity (e.g., UE or BS) to the subordinate entity (e.g., UE) .
  • the DL data portion 604 may be a physical DL shared channel (PDSCH) .
  • PDSCH physical DL shared channel
  • the DL-centric subframe may also include a common UL portion 606.
  • the common UL portion 606 may sometimes be referred to as an UL burst, a common UL burst, and/or various other suitable terms.
  • the common UL portion 606 may include feedback information corresponding to various other portions of the DL-centric subframe.
  • the common UL portion 606 may include feedback information corresponding to the control portion 602.
  • Non-limiting examples of feedback information may include an ACK signal, a NACK signal, a HARQ indicator, and/or various other suitable types of information.
  • the common UL portion 606 may include additional or alternative information, such as information pertaining to random access channel (RACH) procedures, scheduling requests (SRs) , and various other suitable types of information.
  • RACH random access channel
  • SRs scheduling requests
  • the end of the DL data portion 604 may be separated in time from the beginning of the common UL portion 606.
  • This time separation may sometimes be referred to as a gap, a guard period, a guard interval, and/or various other suitable terms.
  • This separation provides time for the switch-over from DL communication (e.g., reception operation by the subordinate entity (e.g., UE) ) to UL communication (e.g., transmission by the subordinate entity (e.g., UE) ) .
  • DL communication e.g., reception operation by the subordinate entity (e.g., UE)
  • UL communication e.g., transmission by the subordinate entity (e.g., UE)
  • FIG. 7 is a diagram 700 showing an example of an UL-centric subframe.
  • the UL -centric subframe may include a control portion 702.
  • the control portion 702 may exist in the initial or beginning portion of the UL-centric subframe.
  • the control portion 702 in FIG. 7 may be similar to the control portion described above with reference to FIG. 6.
  • the UL-centric subframe may also include an UL data portion 704.
  • the UL data portion 704 may sometimes be referred to as the payload of the UL-centric subframe.
  • the UL portion may refer to the communication resources utilized to communicate UL data from the subordinate entity (e.g., UE) to the scheduling entity (e.g., UE or BS) .
  • the control portion 702 may be a physical DL control channel (PDCCH) .
  • PDCCH physical DL control channel
  • the end of the control portion 702 may be separated in time from the beginning of the UL data portion 704. This time separation may sometimes be referred to as a gap, guard period, guard interval, and/or various other suitable terms. This separation provides time for the switch-over from DL communication (e.g., reception operation by the scheduling entity) to UL communication (e.g., transmission by the scheduling entity) .
  • the UL-centric subframe may also include a common UL portion 706.
  • the common UL portion 706 in FIG. 7 may be similar to the common UL portion 706 described above with reference to FIG. 7.
  • the common UL portion 706 may additional or alternative include information pertaining to channel quality indicator (CQI) , sounding reference signals (SRSs) , and various other suitable types of information.
  • CQI channel quality indicator
  • SRSs sounding reference signals
  • One of ordinary skill in the art will understand that the foregoing is merely one example of an UL-centric subframe and alternative structures having similar features may exist without necessarily deviating from the aspects described herein.
  • two or more subordinate entities may communicate with each other using sidelink signals.
  • Real-world applications of such sidelink communications may include public safety, proximity services, UE-to-network relaying, vehicle-to-vehicle (V2V) communications, Internet of Everything (IoE) communications, IoT communications, mission-critical mesh, and/or various other suitable applications.
  • a sidelink signal may refer to a signal communicated from one subordinate entity (e.g., UE1) to another subordinate entity (e.g., UE2) without relaying that communication through the scheduling entity (e.g., UE or BS) , even though the scheduling entity may be utilized for scheduling and/or control purposes.
  • the sidelink signals may be communicated using a licensed spectrum (unlike wireless local area networks, which typically use an unlicensed spectrum) .
  • a UE may operate in various radio resource configurations, including a configuration associated with transmitting pilots using a dedicated set of resources (e.g., a radio resource control (RRC) dedicated state, etc. ) or a configuration associated with transmitting pilots using a common set of resources (e.g., an RRC common state, etc. ) .
  • RRC radio resource control
  • the UE may select a dedicated set of resources for transmitting a pilot signal to a network.
  • the UE may select a common set of resources for transmitting a pilot signal to the network.
  • a pilot signal transmitted by the UE may be received by one or more network access devices, such as an AN, or a DU, or portions thereof.
  • Each receiving network access device may be configured to receive and measure pilot signals transmitted on the common set of resources, and also receive and measure pilot signals transmitted on dedicated sets of resources allocated to the UEs for which the network access device is a member of a monitoring set of network access devices for the UE.
  • One or more of the receiving network access devices, or a CU to which receiving network access device (s) transmit the measurements of the pilot signals may use the measurements to identify serving cells for the UEs, or to initiate a change of serving cell for one or more of the UEs.
  • DFT-S-OFDM discrete Fourier transform spread orthogonal frequency division multiplexing
  • PUSCHs physical channels
  • signals such as UL demodulation reference signals (DMRS) and sounding reference signals (SRS) .
  • DMRS UL demodulation reference signals
  • SRS sounding reference signals
  • IFDMA interleaved frequency division multiple access
  • NR supports DFT-S-OFDM based waveform and CP-OFDM waveform for uplink transmissions, at least for eMBB uplink transmissions on bandwidths of up to 40 GHz.
  • a CP-OFDM waveform may be used for uplink single-stream and multi-stream (e.g., MIMO) transmissions.
  • a DFT-S-OFDM based waveform may be used for single stream transmissions in which communications from a UE are limited by a link budget for the UE. That is, a UE that is experiencing poor link conditions, for example, due to interference or long distance to a BS, may use DFT-S-OFDM based waveforms for transmitting to the BS to improve the signal strength received by the BS.
  • a network may decide and communicate to a UE which one of CP-OFDM and DFT-S-OFDM based waveforms the UE should use when transmitting (e.g., transmitting SRS) to the network.
  • UEs support both CP-OFDM and DFT-S-OFDM based waveforms.
  • SRS transmission using a DFT-S-OFDM based waveform may be less efficient in resource utilization than SRS transmission using a CP-OFDM based waveform.
  • SRS are transmitted using a DFT-S-OFDM waveform
  • the whole DFT-S-OFDM symbol has to be reserved for SRS and cannot be multiplexed with PUSCH, in order to preserve the single carrier property of the uplink transmission.
  • frequency multiplexing of SRS and physical uplink shared channel is allowed by using a structure similar to a channel state information reference signal (CSI-RS) structure, wherein multiple ports are multiplexed in frequency and/or in code (e.g., FDM and/or CDM) to transmit SRS and a PUSCH may be mapped to resource elements (REs) that are not occupied by the SRS.
  • CSI-RS channel state information reference signal
  • a CP-OFDM waveform may allow a UE to use subband precoding in an SRS transmission.
  • DCI signals may be used to allocate resources to the UE.
  • a DCI may be used by the UE to schedule DL resources on the PDSCH and UL resources on the PUSCH.
  • subband-wise precoded SRS may be used for frequency-selective precoding in UL with a small amount of overhead in DCIs.
  • the small amount of overhead in DCIs may include a few (e.g., two) bits in UL grants (e.g., in the DCIs granting the UL grants) to indicate which precoded SRS ports a UE should use in transmitting the subband-wise precoded SRS.
  • the network may configure a UE to transmit SRS using one of a CP-OFDM and a DFT-S-OFDM based waveform.
  • FIG. 8A illustrates example operations 800 for wireless communications, according to aspects of the present disclosure.
  • Operations 800 may be performed by a UE, for example, UE 120, shown in FIG. 1.
  • Operations 800 begin, at block 802, with the UE determining whether to transmit a sounding reference signal (SRS) using a discrete Fourier transform (DFT) spread orthogonal frequency domain multiplexing (DFT-S-OFDM) waveform or a cyclic prefix orthogonal frequency domain multiplexing (CP-OFDM) waveform.
  • SRS sounding reference signal
  • DFT discrete Fourier transform
  • DFT-S-OFDM discrete Fourier transform
  • CP-OFDM cyclic prefix orthogonal frequency domain multiplexing
  • operations 800 continue with the UE transmitting the SRS using the determined waveform.
  • the UE 120 may transmit an SRS using a DFT-S-OFDM waveform.
  • FIG. 8B illustrates example operations 805 for wireless communications, according to aspects of the present disclosure. Operations 805 may be performed by a UE, for example, UE 120, shown in FIG. 1.
  • Operations 805 begin, at block 806, with the UE receiving an indication of whether to transmit a sounding reference signal (SRS) using a discrete Fourier transform (DFT) spread orthogonal frequency domain multiplexing (DFT-S-OFDM) waveform or a cyclic prefix orthogonal frequency domain multiplexing (CP-OFDM) waveform.
  • SRS sounding reference signal
  • DFT discrete Fourier transform
  • DFT-S-OFDM discrete Fourier transform
  • CP-OFDM cyclic prefix orthogonal frequency domain multiplexing
  • operations 805 continue with the UE transmitting the SRS using the determined waveform.
  • the UE 120 transmits an SRS using a DFT-S-OFDM waveform.
  • FIG. 9 illustrates example operations 900 for wireless communications, in accordance with aspects of the present disclosure.
  • Operations 900 may be performed by a BS, for example, BS 110, shown in FIG. 1.
  • Operations 900 may be complementary to operations 805, described above with reference to FIG. 8B.
  • Operations 900 begin, at block 902, with the BS determining whether a user equipment (UE) is to transmit a sounding reference signal (SRS) using a discrete Fourier transform (DFT) spread orthogonal frequency domain multiplexing (DFT-S-OFDM) waveform or a cyclic prefix orthogonal frequency domain multiplexing (CP-OFDM) waveform.
  • UE user equipment
  • DFT discrete Fourier transform
  • DFT-S-OFDM discrete Fourier transform
  • CP-OFDM cyclic prefix orthogonal frequency domain multiplexing
  • operations 900 continue with the BS sending an indication of the determined waveform to the UE.
  • BS 110 sends an indication of the DFT-S-OFDM waveform to UE 120.
  • Operations 900 continue at block 906 with the BS processing the SRS, based on the determined waveform. Still in the example from above, BS 110 processes the SRS based on the DFT-S-OFDM waveform (determined in block 902) .
  • a UE can be configured with (e.g., programmed to transmit) one or more waveforms for SRS transmission. At least one of the one or more waveforms is a DFT-S-OFDM based waveform (e.g., similar to the SRS waveform used by UEs operating in an LTE system) . Another waveform may be a CP-OFDM waveform (e.g., similar to DL DMRS waveform used by BSs in an LTE system) .
  • FIG. 10 illustrates a technique 1000 for multiplexing SRSs using different waveforms in frequency.
  • the SRS may have a comb structure in the frequency domain, and a UE may transmit the SRS on one of the combs.
  • UEs 1 and 2 e.g., two of the UEs 120 shown in FIG. 1 may use DFT-S-OFDM based waveform (s) to transmit their SRSs on combs 0 and 1 of a bandwidth, respectfully.
  • the various SRS ports for each of the UEs 1 and 2 may be multiplexed on a same comb for each UE by using different cyclic shifts for each of the SRS ports.
  • UE 3 may use a CP-OFDM based waveform to transmit SRS on combs 2 and 3, as illustrated in frequency band 1030.
  • Two SRS ports may be multiplexed in frequency domain using a size-2 orthogonal cover code.
  • FIG. 11 illustrates a technique 1100 for transmitting an SRS, in accordance with aspects of the present disclosure.
  • the waveform selected may depend on other UL physical channels/signals.
  • the waveform for SRS transmission, by a UE, in a slot and/or bandwidth part may be associated with the waveform used for the transmission of UL physical channels and/or signals by the UE in the same slot and/or bandwidth part.
  • a UE uses a DFT-S-OFDM based waveform to transmit an SRS 1114 in the same slot and/or bandwidth part, as illustrated at 1110.
  • a UE uses a CP-OFDM waveform to transmit an SRS 1124 in the same slot and/or bandwidth part, as illustrated at 1120.
  • the waveform for SRS transmission by a UE in a slot and/or bandwidth part may be associated with the number of ports to be sounded in that slot and/or bandwidth part. For example, if a UE is configured and/or indicated to transmit a single port SRS, the UE may use a DFT-S-OFDM based waveform, while if the UE is configured and/or indicated to transmit SRS using two or more antenna ports, the UE may use a CP-OFDM waveform.
  • the UE may be configured with a value of X via a signal (e.g., RRC signaling) and/or via a field in the signal triggering the UE to transmit the N-port SRS.
  • FIG. 12 illustrates a technique 1200 for determining a waveform for transmitting an SRS, in accordance with aspects of the present disclosure.
  • the waveform for SRS transmission may be determined based on whether the SRS is transmitted on a single or multiple component carriers (CCs) .
  • CCs component carriers
  • one of CP-OFDM and DFT-S-FDMA based waveforms can be used for one CC, and different waveforms can be configured for different CCs.
  • a CP-OFDM waveform may be used for SRS transmission on one CC, as shown at 1210
  • a DFT-S-OFDM waveform may be used on another CC, as shown at 1220.
  • FIG. 13 illustrates a technique 1300 for determining a waveform for transmitting an SRS, in accordance with aspects of the present disclosure.
  • a DFT-S-OFDM based waveform may be used for SRS transmission on multiple CCs, as shown at 1310.
  • a UE may determine a waveform to use in transmitting an SRS based on a number of CCs, N, associated with a single RF chain of the UE. For example, the UE may use a DFT-S-OFDM based waveform to transmit the SRS if N ⁇ X; otherwise, the UE may use a CP-OFDM waveform.
  • the value of X may be determined by the UE according to a networking standard and/or configured by the network (e.g., send to the UE in an RRC signal from a BS) .
  • a UE may be configured to use different waveforms for SRS transmission on different subband sets (i.e., bandwidth parts or partial bands) .
  • the UE may transmit SRS on one bandwidth part using a DFT-S-OFDM based waveform, and on another bandwidth part using a CP-OFDM waveform.
  • FIG. 14 illustrates a technique 1400 for determining a waveform for transmitting an SRS, in accordance with aspects of the present disclosure.
  • a UE may be configured with different waveforms for SRS transmission on different slot sets (e.g., subframe sets) .
  • a UE may be configured with two slot sets, 1410 and 1420.
  • the UE may transmit an SRS using a DFT-S-OFDM based waveform in slots in the 1st slot set 1410, and using a CP-OFDM waveform in slots in the 2nd slot set 1420.
  • a UE may determine a waveform for SRS transmission based on a configuration that is independent from other UL physical channels or signals via L1, L2, and/or higher-layer signaling. On receiving the signaling, the UE may start to use the indicated waveform for SRS transmission in a next SRS transmission instance.
  • a waveform to be used for an SRS can be dynamically indicated by L1 signaling (e.g., one or more bits in a DCI may indicate one of the configured waveforms to a UE) .
  • the waveform to use for SRS may be semi-persistently configured by L1 signaling (e.g., in DCI) or L2 signaling (e.g., in a medium access control (MAC) control element (CE) ) .
  • L1 signaling e.g., in DCI
  • L2 signaling e.g., in a medium access control (MAC) control element (CE)
  • CE control element
  • the waveform can be semi-statically indicated and/or configured by higher-layer signaling (e.g., RRC signaling) .
  • the transmit power for SRS can be either waveform dependent or waveform independent. That is, a UE may determine transmit power for an SRS to be transmitted using a same set of open-loop power control (OLPC) parameters or separate OLPC parameters for CP-OFDM waveform SRS and DFT-S-OFDM waveform SRS.
  • the OLPC parameters may include a UE transmit power (P CMAX ) , an SRS power offset (P SRS_OFFSET ) , and a path loss compensation component ( ⁇ ) .
  • the UE may configure one set of OLPC parameters for SRS regardless of whether CP-OFDM or DFT-S-OFDM based waveform is used.
  • the UE may configure two sets of OLPC parameters, with a first set for use when the UE is transmitting SRS using a DFT-S-OFDM waveform and a second set for use when the UE is transmitting SRS using a CP-OFDM waveform.
  • a UE may be configured to use a same or separate close-loop power control (CLPC) processes and commands for transmitting SRS.
  • CLPC close-loop power control
  • Each type of waveform e.g., CP-OFDM and DFT-S-OFDM
  • a transmit power control (TPC) command received from a BS may be explicitly associated with a waveform.
  • CRC parity bits in a transmission from a BS may be scrambled with one of two radio network temporary identifiers (RNTIs) for TPC, with one RNTI used to indicate the TPC is intended for SRS using CP-OFDM waveform and the other RNTI used to indicate the TPC is intended for SRS using a DFT-S-OFDM waveform.
  • RNTIs radio network temporary identifiers
  • a TPC command may be implicitly associated with a waveform. For example, if a TPC is issued in an UL-centric slot and a PUSCH is scheduled for the UE, the UE may assume that it’s for the SRS using the waveform as same as that for the PUSCH transmission.
  • the methods disclosed herein comprise one or more steps or actions for achieving the described method.
  • the method steps and/or actions may be interchanged with one another without departing from the scope of the claims.
  • the order and/or use of specific steps and/or actions may be modified without departing from the scope of the claims.
  • a phrase referring to ā€œat least one ofā€ a list of items refers to any combination of those items, including single members.
  • ā€œat least one of: a, b, or cā€ is intended to cover a, b, c, a-b, a-c, b-c, and a-b-c, as well as any combination with multiples of the same element (e.g., a-a, a-a-a, a-a-b, a-a-c, a-b-b, a-c-c, b-b, b-b-b, b-b-c, c-c, and c-c-c or any other ordering of a, b, and c) .
  • determining encompasses a wide variety of actions. For example, ā€œdeterminingā€ may include calculating, computing, processing, deriving, investigating, looking up (e.g., looking up in a table, a database or another data structure) , ascertaining and the like. Also, ā€œdeterminingā€ may include receiving (e.g., receiving information) , accessing (e.g., accessing data in a memory) and the like. Also, ā€œdeterminingā€ may include resolving, selecting, choosing, establishing and the like.
  • the various operations of methods described above may be performed by any suitable means capable of performing the corresponding functions.
  • the means may include various hardware and/or software component (s) and/or module (s) , including, but not limited to a circuit, an application specific integrated circuit (ASIC) , or processor.
  • ASIC application specific integrated circuit
  • means for transmitting, means for sending, and/or means for receiving may comprise one or more of a transmit processor 420, a TX MIMO processor 430, a receive processor 438, or antenna (s) 434 of the base station 110 and/or the transmit processor 464, a TX MIMO processor 466, a receive processor 458, or antenna (s) 452 of the user equipment 120.
  • means for generating, means for multiplexing, means for determining, means for processing, and/or means for applying may comprise one or more processors, such as the controller/processor 440 of the base station 110 and/or the controller/processor 480 of the user equipment 120.
  • DSP digital signal processor
  • ASIC application specific integrated circuit
  • FPGA field programmable gate array
  • PLD programmable logic device
  • a general-purpose processor may be a microprocessor, but in the alternative, the processor may be any commercially available processor, controller, microcontroller, or state machine.
  • a processor may also be implemented as a combination of computing devices, e.g., a combination of a DSP and a microprocessor, a plurality of microprocessors, one or more microprocessors in conjunction with a DSP core, or any other such configuration.
  • an example hardware configuration may comprise a processing system in a wireless node.
  • the processing system may be implemented with a bus architecture.
  • the bus may include any number of interconnecting buses and bridges depending on the specific application of the processing system and the overall design constraints.
  • the bus may link together various circuits including a processor, machine-readable media, and a bus interface.
  • the bus interface may be used to connect a network adapter, among other things, to the processing system via the bus.
  • the network adapter may be used to implement the signal processing functions of the PHY layer.
  • a user interface e.g., keypad, display, mouse, joystick, etc.
  • a user interface e.g., keypad, display, mouse, joystick, etc.
  • the bus may also link various other circuits such as timing sources, peripherals, voltage regulators, power management circuits, and the like, which are well known in the art, and therefore, will not be described any further.
  • the processor may be implemented with one or more general-purpose and/or special-purpose processors. Examples include microprocessors, microcontrollers, DSP processors, and other circuitry that can execute software. Those skilled in the art will recognize how best to implement the described functionality for the processing system depending on the particular application and the overall design constraints imposed on the overall system.
  • the functions may be stored or transmitted over as one or more instructions or code on a computer readable medium.
  • Software shall be construed broadly to mean instructions, data, or any combination thereof, whether referred to as software, firmware, middleware, microcode, hardware description language, or otherwise.
  • Computer-readable media include both computer storage media and communication media including any medium that facilitates transfer of a computer program from one place to another.
  • the processor may be responsible for managing the bus and general processing, including the execution of software modules stored on the machine-readable storage media.
  • a computer-readable storage medium may be coupled to a processor such that the processor can read information from, and write information to, the storage medium. In the alternative, the storage medium may be integral to the processor.
  • the machine-readable media may include a transmission line, a carrier wave modulated by data, and/or a computer readable storage medium with instructions stored thereon separate from the wireless node, all of which may be accessed by the processor through the bus interface.
  • the machine-readable media, or any portion thereof may be integrated into the processor, such as the case may be with cache and/or general register files.
  • machine-readable storage media may include, by way of example, RAM (Random Access Memory) , flash memory, ROM (Read Only Memory) , PROM (Programmable Read-Only Memory) , EPROM (Erasable Programmable Read-Only Memory) , EEPROM (Electrically Erasable Programmable Read-Only Memory) , registers, magnetic disks, optical disks, hard drives, or any other suitable storage medium, or any combination thereof.
  • RAM Random Access Memory
  • ROM Read Only Memory
  • PROM Programmable Read-Only Memory
  • EPROM Erasable Programmable Read-Only Memory
  • EEPROM Electrical Erasable Programmable Read-Only Memory
  • registers magnetic disks, optical disks, hard drives, or any other suitable storage medium, or any combination thereof.
  • the machine-readable media may be embodied in a computer-program product.
  • a software module may comprise a single instruction, or many instructions, and may be distributed over several different code segments, among different programs, and across multiple storage media.
  • the computer-readable media may comprise a number of software modules.
  • the software modules include instructions that, when executed by an apparatus such as a processor, cause the processing system to perform various functions.
  • the software modules may include a transmission module and a receiving module. Each software module may reside in a single storage device or be distributed across multiple storage devices.
  • a software module may be loaded into RAM from a hard drive when a triggering event occurs.
  • the processor may load some of the instructions into cache to increase access speed.
  • One or more cache lines may then be loaded into a general register file for execution by the processor.
  • any connection is properly termed a computer-readable medium.
  • the software is transmitted from a website, server, or other remote source using a coaxial cable, fiber optic cable, twisted pair, digital subscriber line (DSL) , or wireless technologies such as infrared (IR) , radio, and microwave
  • the coaxial cable, fiber optic cable, twisted pair, DSL, or wireless technologies such as infrared, radio, and microwave are included in the definition of medium.
  • Disk and disc include compact disc (CD) , laser disc, optical disc, digital versatile disc (DVD) , floppy disk, and disc where disks usually reproduce data magnetically, while discs reproduce data optically with lasers.
  • computer-readable media may comprise non-transitory computer-readable media (e.g., tangible media) .
  • computer-readable media may comprise transitory computer-readable media (e.g., a signal) . Combinations of the above should also be included within the scope of computer-readable media.
  • certain aspects may comprise a computer program product for performing the operations presented herein.
  • a computer program product may comprise a computer-readable medium having instructions stored (and/or encoded) thereon, the instructions being executable by one or more processors to perform the operations described herein. For example, instructions for perform the operations described herein and illustrated in FIGs. 13, 17, and 18.
  • modules and/or other appropriate means for performing the methods and techniques described herein can be downloaded and/or otherwise obtained by a user terminal and/or base station as applicable.
  • a user terminal and/or base station can be coupled to a server to facilitate the transfer of means for performing the methods described herein.
  • various methods described herein can be provided via storage means (e.g., RAM, ROM, a physical storage medium such as a compact disc (CD) or floppy disk, etc. ) , such that a user terminal and/or base station can obtain the various methods upon coupling or providing the storage means to the device.
  • storage means e.g., RAM, ROM, a physical storage medium such as a compact disc (CD) or floppy disk, etc.
  • CD compact disc
  • floppy disk etc.
  • any other suitable technique for providing the methods and techniques described herein to a device can be utilized.

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Abstract

Certain aspects of the present disclosure relate to methods and apparatus for transmitting sounding reference signals (SRS) in communications systems operating according to new radio (NR) technologies. An exemplary method that a user equipment (UE) may perform includes determining whether to transmit a sounding reference signal (SRS) using a discrete Fourier transform (DFT) spread orthogonal frequency domain multiplexing (DFT-S-OFDM) waveform or a cyclic prefix orthogonal frequency domain multiplexing (CP-OFDM) waveform, and transmitting the SRS using the determined waveform.

Description

TRANSMITTINGĀ SOUNDINGĀ REFERENCEĀ SIGNALSĀ INĀ NEWĀ RADIO
ThisĀ applicationĀ claimsĀ priorityĀ toĀ InternationalĀ ApplicationĀ No.Ā PCT/CN2017/070429Ā filedĀ JanuaryĀ 6,Ā 2017,Ā whichĀ isĀ assignedĀ toĀ theĀ assigneeĀ ofĀ theĀ presentĀ applicationĀ andĀ isĀ expresslyĀ incorporatedĀ byĀ referenceĀ hereinĀ inĀ itsĀ entirety.
Field
TheĀ presentĀ disclosureĀ relatesĀ generallyĀ toĀ communicationĀ systems,Ā andĀ moreĀ particularly,Ā toĀ methodsĀ andĀ apparatusĀ forĀ transmittingĀ soundingĀ referenceĀ signalsĀ (SRS)Ā inĀ communicationsĀ systemsĀ operatingĀ accordingĀ toĀ newĀ radioĀ (NR)Ā technologies.
Background
WirelessĀ communicationĀ systemsĀ areĀ widelyĀ deployedĀ toĀ provideĀ variousĀ telecommunicationĀ servicesĀ suchĀ asĀ telephony,Ā video,Ā data,Ā messaging,Ā andĀ broadcasts.Ā TypicalĀ wirelessĀ communicationĀ systemsĀ mayĀ employĀ multiple-accessĀ technologiesĀ capableĀ ofĀ supportingĀ communicationĀ withĀ multipleĀ usersĀ byĀ sharingĀ availableĀ systemĀ resourcesĀ (e.g.,Ā bandwidth,Ā transmitĀ power)Ā .Ā ExamplesĀ ofĀ suchĀ multiple-accessĀ technologiesĀ includeĀ LongĀ TermĀ EvolutionĀ (LTE)Ā systems,Ā codeĀ divisionĀ multipleĀ accessĀ (CDMA)Ā systems,Ā timeĀ divisionĀ multipleĀ accessĀ (TDMA)Ā systems,Ā frequencyĀ divisionĀ multipleĀ accessĀ (FDMA)Ā systems,Ā orthogonalĀ frequencyĀ divisionĀ multipleĀ accessĀ (OFDMA)Ā systems,Ā single-carrierĀ frequencyĀ divisionĀ multipleĀ accessĀ (SC-FDMA)Ā systems,Ā andĀ timeĀ divisionĀ synchronousĀ codeĀ divisionĀ multipleĀ accessĀ (TD-SCDMA)Ā systems.
InĀ someĀ examples,Ā aĀ wirelessĀ multiple-accessĀ communicationĀ systemĀ mayĀ includeĀ aĀ numberĀ ofĀ baseĀ stations,Ā eachĀ simultaneouslyĀ supportingĀ communicationĀ forĀ multipleĀ communicationĀ devices,Ā otherwiseĀ knownĀ asĀ userĀ equipmentĀ (UEs)Ā .Ā InĀ LTEĀ orĀ LTE-AĀ network,Ā aĀ setĀ ofĀ oneĀ orĀ moreĀ baseĀ stationsĀ mayĀ defineĀ anĀ eNodeBĀ (eNB)Ā .Ā InĀ otherĀ examplesĀ (e.g.,Ā inĀ aĀ nextĀ generationĀ orĀ 5GĀ network)Ā ,Ā aĀ wirelessĀ multipleĀ accessĀ communicationĀ systemĀ mayĀ includeĀ aĀ numberĀ ofĀ distributedĀ unitsĀ (DUs)Ā (e.g.,Ā edgeĀ unitsĀ (EUs)Ā ,Ā edgeĀ nodesĀ (ENs)Ā ,Ā radioĀ headsĀ (RHs)Ā ,Ā smartĀ radioĀ headsĀ (SRHs)Ā ,Ā transmissionĀ receptionĀ pointsĀ (TRPs)Ā ,Ā etc.Ā )Ā inĀ communicationĀ withĀ aĀ numberĀ ofĀ centralĀ unitsĀ (CUs)Ā (e.g.,Ā centralĀ nodesĀ (CNs)Ā ,Ā accessĀ nodeĀ controllersĀ (ANCs)Ā ,Ā etc.Ā )Ā ,Ā whereĀ aĀ setĀ ofĀ oneĀ orĀ moreĀ distributedĀ units,Ā inĀ communicationĀ withĀ aĀ centralĀ unit,Ā mayĀ defineĀ anĀ accessĀ nodeĀ (e.g.,Ā aĀ newĀ radioĀ baseĀ stationĀ (NRĀ BS)Ā ,Ā aĀ newĀ radioĀ node-BĀ (NRĀ NB)Ā ,Ā aĀ  networkĀ node,Ā 5GĀ NB,Ā eNB,Ā etc.Ā )Ā .Ā AĀ baseĀ stationĀ orĀ DUĀ mayĀ communicateĀ withĀ aĀ setĀ ofĀ UEsĀ onĀ downlinkĀ channelsĀ (e.g.,Ā forĀ transmissionsĀ fromĀ aĀ baseĀ stationĀ orĀ toĀ aĀ UE)Ā andĀ uplinkĀ channelsĀ (e.g.,Ā forĀ transmissionsĀ fromĀ aĀ UEĀ toĀ aĀ baseĀ stationĀ orĀ distributedĀ unit)Ā .
TheseĀ multipleĀ accessĀ technologiesĀ haveĀ beenĀ adoptedĀ inĀ variousĀ telecommunicationĀ standardsĀ toĀ provideĀ aĀ commonĀ protocolĀ thatĀ enablesĀ differentĀ wirelessĀ devicesĀ toĀ communicateĀ onĀ aĀ municipal,Ā national,Ā regional,Ā andĀ evenĀ globalĀ level.Ā AnĀ exampleĀ ofĀ anĀ emergingĀ telecommunicationĀ standardĀ isĀ newĀ radioĀ (NR)Ā ,Ā forĀ example,Ā 5GĀ radioĀ access.Ā NRĀ isĀ aĀ setĀ ofĀ enhancementsĀ toĀ theĀ LTEĀ mobileĀ standardĀ promulgatedĀ byĀ ThirdĀ GenerationĀ PartnershipĀ ProjectĀ (3GPP)Ā .Ā ItĀ isĀ designedĀ toĀ betterĀ supportĀ mobileĀ broadbandĀ InternetĀ accessĀ byĀ improvingĀ spectralĀ efficiency,Ā loweringĀ costs,Ā improvingĀ services,Ā makingĀ useĀ ofĀ newĀ spectrum,Ā andĀ betterĀ integratingĀ withĀ otherĀ openĀ standardsĀ usingĀ OFDMAĀ withĀ aĀ cyclicĀ prefixĀ (CP)Ā onĀ theĀ downlinkĀ (DL)Ā andĀ onĀ theĀ uplinkĀ (UL)Ā asĀ wellĀ asĀ supportĀ beamforming,Ā multiple-inputĀ multiple-outputĀ (MIMO)Ā antennaĀ technology,Ā andĀ carrierĀ aggregation.
However,Ā asĀ theĀ demandĀ forĀ mobileĀ broadbandĀ accessĀ continuesĀ toĀ increase,Ā thereĀ existsĀ aĀ needĀ forĀ furtherĀ improvementsĀ inĀ NRĀ technology.Ā Preferably,Ā theseĀ improvementsĀ shouldĀ beĀ applicableĀ toĀ otherĀ multi-accessĀ technologiesĀ andĀ theĀ telecommunicationĀ standardsĀ thatĀ employĀ theseĀ technologies.
BRIEFĀ SUMMARY
TheĀ systems,Ā methods,Ā andĀ devicesĀ ofĀ theĀ disclosureĀ eachĀ haveĀ severalĀ aspects,Ā noĀ singleĀ oneĀ ofĀ whichĀ isĀ solelyĀ responsibleĀ forĀ itsĀ desirableĀ attributes.Ā WithoutĀ limitingĀ theĀ scopeĀ ofĀ thisĀ disclosureĀ asĀ expressedĀ byĀ theĀ claimsĀ whichĀ follow,Ā someĀ featuresĀ willĀ nowĀ beĀ discussedĀ briefly.Ā AfterĀ consideringĀ thisĀ discussion,Ā andĀ particularlyĀ afterĀ readingĀ theĀ sectionĀ entitledĀ ā€œDetailedĀ Descriptionā€Ā oneĀ willĀ understandĀ howĀ theĀ featuresĀ ofĀ thisĀ disclosureĀ provideĀ advantagesĀ thatĀ includeĀ improvedĀ communicationsĀ betweenĀ accessĀ pointsĀ andĀ stationsĀ inĀ aĀ wirelessĀ network.
CertainĀ aspectsĀ ofĀ theĀ presentĀ disclosureĀ generallyĀ relateĀ toĀ methodsĀ andĀ apparatusĀ forĀ transmittingĀ soundingĀ referenceĀ signalsĀ (SRS)Ā .Ā TheĀ SRSĀ mayĀ provideĀ informationĀ concerningĀ theĀ uplinkĀ channelĀ whichĀ allowsĀ frequencyĀ dependentĀ schedulingĀ onĀ theĀ uplinkĀ byĀ aĀ baseĀ station,Ā NodeB,Ā orĀ eNodeB.Ā InĀ oneĀ example,Ā theĀ SRSĀ mayĀ beĀ usedĀ toĀ measureĀ theĀ uplinkĀ channelĀ qualityĀ overĀ aĀ portionĀ ofĀ theĀ uplinkĀ  channelĀ bandwidth.Ā AĀ UEĀ mayĀ beĀ instructedĀ byĀ anĀ eNodeBĀ toĀ transmitĀ theĀ SRSĀ acrossĀ aĀ particularĀ portionĀ ofĀ theĀ uplinkĀ channelĀ bandwidth.
CertainĀ aspectsĀ provideĀ aĀ methodĀ forĀ wirelessĀ communicationĀ byĀ aĀ userĀ equipment.Ā TheĀ methodĀ generallyĀ includesĀ determiningĀ whetherĀ toĀ transmitĀ aĀ soundingĀ referenceĀ signalĀ (SRS)Ā usingĀ aĀ discreteĀ FourierĀ transformĀ (DFT)Ā spreadĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (DFT-S-OFDM)Ā waveformĀ orĀ aĀ cyclicĀ prefixĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (CP-OFDM)Ā waveform,Ā andĀ transmittingĀ theĀ SRSĀ usingĀ theĀ determinedĀ waveform.
CertainĀ aspectsĀ provideĀ aĀ methodĀ forĀ wirelessĀ communicationĀ byĀ aĀ baseĀ station.Ā TheĀ methodĀ generallyĀ includesĀ determiningĀ whetherĀ aĀ userĀ equipmentĀ (UE)Ā isĀ toĀ transmitĀ aĀ soundingĀ referenceĀ signalĀ (SRS)Ā usingĀ aĀ discreteĀ FourierĀ transformĀ (DFT)Ā spreadĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (DFT-S-OFDM)Ā waveformĀ orĀ aĀ cyclicĀ prefixĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (CP-OFDM)Ā waveform,Ā sendingĀ anĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ toĀ theĀ UE,Ā andĀ processingĀ theĀ SRS,Ā basedĀ onĀ theĀ determinedĀ waveform.
CertainĀ aspectsĀ provideĀ anĀ apparatusĀ forĀ wirelessĀ communication.Ā TheĀ apparatusĀ generallyĀ includesĀ aĀ processorĀ configuredĀ toĀ determineĀ whetherĀ toĀ transmitĀ aĀ soundingĀ referenceĀ signalĀ (SRS)Ā usingĀ aĀ discreteĀ FourierĀ transformĀ (DFT)Ā spreadĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (DFT-S-OFDM)Ā waveformĀ orĀ aĀ cyclicĀ prefixĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (CP-OFDM)Ā waveform,Ā andĀ toĀ causeĀ theĀ apparatusĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ determinedĀ waveform,Ā andĀ aĀ memoryĀ coupledĀ withĀ theĀ processor.
CertainĀ aspectsĀ provideĀ anĀ apparatusĀ forĀ wirelessĀ communication.Ā TheĀ apparatusĀ generallyĀ includesĀ aĀ processorĀ configuredĀ toĀ determineĀ whetherĀ aĀ userĀ equipmentĀ (UE)Ā isĀ toĀ transmitĀ aĀ soundingĀ referenceĀ signalĀ (SRS)Ā usingĀ aĀ discreteĀ FourierĀ transformĀ (DFT)Ā spreadĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (DFT-S-OFDM)Ā waveformĀ orĀ aĀ cyclicĀ prefixĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (CP-OFDM)Ā waveform,Ā toĀ causeĀ theĀ apparatusĀ toĀ sendĀ anĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ toĀ theĀ UE,Ā andĀ toĀ processĀ theĀ SRS,Ā basedĀ onĀ theĀ determinedĀ waveform,Ā andĀ aĀ memoryĀ coupledĀ withĀ theĀ processor.
AspectsĀ generallyĀ includeĀ methods,Ā apparatus,Ā systems,Ā computerĀ readableĀ mediums,Ā andĀ processingĀ systems,Ā asĀ substantiallyĀ describedĀ hereinĀ withĀ referenceĀ toĀ andĀ asĀ illustratedĀ byĀ theĀ accompanyingĀ drawings.
ToĀ theĀ accomplishmentĀ ofĀ theĀ foregoingĀ andĀ relatedĀ ends,Ā theĀ oneĀ orĀ moreĀ aspectsĀ compriseĀ theĀ featuresĀ hereinafterĀ fullyĀ describedĀ andĀ particularlyĀ pointedĀ outĀ inĀ theĀ claims.Ā TheĀ followingĀ descriptionĀ andĀ theĀ annexedĀ drawingsĀ setĀ forthĀ inĀ detailĀ certainĀ illustrativeĀ featuresĀ ofĀ theĀ oneĀ orĀ moreĀ aspects.Ā TheseĀ featuresĀ areĀ indicative,Ā however,Ā ofĀ butĀ aĀ fewĀ ofĀ theĀ variousĀ waysĀ inĀ whichĀ theĀ principlesĀ ofĀ variousĀ aspectsĀ mayĀ beĀ employed,Ā andĀ thisĀ descriptionĀ isĀ intendedĀ toĀ includeĀ allĀ suchĀ aspectsĀ andĀ theirĀ equivalents.
BRIEFĀ DESCRIPTIONĀ OFĀ THEĀ DRAWINGS
SoĀ thatĀ theĀ mannerĀ inĀ whichĀ theĀ above-recitedĀ featuresĀ ofĀ theĀ presentĀ disclosureĀ canĀ beĀ understoodĀ inĀ detail,Ā aĀ moreĀ particularĀ description,Ā brieflyĀ summarizedĀ above,Ā mayĀ beĀ hadĀ byĀ referenceĀ toĀ aspects,Ā someĀ ofĀ whichĀ areĀ illustratedĀ inĀ theĀ appendedĀ drawings.Ā ItĀ isĀ toĀ beĀ noted,Ā however,Ā thatĀ theĀ appendedĀ drawingsĀ illustrateĀ onlyĀ certainĀ typicalĀ aspectsĀ ofĀ thisĀ disclosureĀ andĀ areĀ thereforeĀ notĀ toĀ beĀ consideredĀ limitingĀ ofĀ itsĀ scope,Ā forĀ theĀ descriptionĀ mayĀ admitĀ toĀ otherĀ equallyĀ effectiveĀ aspects.
FIG.Ā 1Ā isĀ aĀ blockĀ diagramĀ conceptuallyĀ illustratingĀ anĀ exampleĀ telecommunicationsĀ system,Ā inĀ accordanceĀ withĀ certainĀ aspectsĀ ofĀ theĀ presentĀ disclosure.
FIG.Ā 2Ā isĀ aĀ blockĀ diagramĀ illustratingĀ anĀ exampleĀ logicalĀ architectureĀ ofĀ aĀ distributedĀ RAN,Ā inĀ accordanceĀ withĀ certainĀ aspectsĀ ofĀ theĀ presentĀ disclosure.
FIG.Ā 3Ā isĀ aĀ diagramĀ illustratingĀ anĀ exampleĀ physicalĀ architectureĀ ofĀ aĀ distributedĀ RAN,Ā inĀ accordanceĀ withĀ certainĀ aspectsĀ ofĀ theĀ presentĀ disclosure.
FIG.Ā 4Ā isĀ aĀ blockĀ diagramĀ conceptuallyĀ illustratingĀ aĀ designĀ ofĀ anĀ exampleĀ BSĀ andĀ userĀ equipmentĀ (UE)Ā ,Ā inĀ accordanceĀ withĀ certainĀ aspectsĀ ofĀ theĀ presentĀ disclosure.
FIG.Ā 5Ā isĀ aĀ diagramĀ showingĀ examplesĀ forĀ implementingĀ aĀ communicationĀ protocolĀ stack,Ā inĀ accordanceĀ withĀ certainĀ aspectsĀ ofĀ theĀ presentĀ disclosure.
FIG.Ā 6Ā illustratesĀ anĀ exampleĀ ofĀ aĀ DL-centricĀ subframe,Ā inĀ accordanceĀ withĀ certainĀ aspectsĀ ofĀ theĀ presentĀ disclosure.
FIG.Ā 7Ā illustratesĀ anĀ exampleĀ ofĀ anĀ UL-centricĀ subframe,Ā inĀ accordanceĀ withĀ certainĀ aspectsĀ ofĀ theĀ presentĀ disclosure.
FIGs.Ā 8AĀ andĀ 8BĀ illustrateĀ exampleĀ operationsĀ forĀ wirelessĀ communications,Ā inĀ accordanceĀ withĀ certainĀ aspectsĀ ofĀ theĀ presentĀ disclosure.
FIG.Ā 9Ā exampleĀ operationsĀ forĀ wirelessĀ communications,Ā inĀ accordanceĀ withĀ aspectsĀ ofĀ theĀ presentĀ disclosure.
FIG.Ā 10Ā illustratesĀ aĀ techniqueĀ forĀ multiplexingĀ SRSsĀ usingĀ differentĀ waveformsĀ inĀ frequency,Ā inĀ accordanceĀ withĀ certainĀ aspectsĀ ofĀ theĀ presentĀ disclosure.
FIG.Ā 11Ā illustratesĀ aĀ techniqueĀ forĀ transmittingĀ anĀ SRS,Ā inĀ accordanceĀ withĀ certainĀ aspectsĀ ofĀ theĀ presentĀ disclosure.
FIG.Ā 12Ā illustratesĀ aĀ techniqueĀ forĀ determiningĀ aĀ waveformĀ forĀ transmittingĀ anĀ SRS,Ā inĀ accordanceĀ withĀ certainĀ aspectsĀ ofĀ theĀ presentĀ disclosure.
FIG.Ā 13Ā illustratesĀ aĀ techniqueĀ forĀ determiningĀ aĀ waveformĀ forĀ transmittingĀ anĀ SRS,Ā inĀ accordanceĀ withĀ certainĀ aspectsĀ ofĀ theĀ presentĀ disclosure.
FIG.Ā 14Ā illustratesĀ aĀ techniqueĀ forĀ determiningĀ aĀ waveformĀ forĀ transmittingĀ anĀ SRS,Ā inĀ accordanceĀ withĀ certainĀ aspectsĀ ofĀ theĀ presentĀ disclosure.
ToĀ facilitateĀ understanding,Ā identicalĀ referenceĀ numeralsĀ haveĀ beenĀ used,Ā whereĀ possible,Ā toĀ designateĀ identicalĀ elementsĀ thatĀ areĀ commonĀ toĀ theĀ figures.Ā ItĀ isĀ contemplatedĀ thatĀ elementsĀ disclosedĀ inĀ oneĀ aspectĀ mayĀ beĀ beneficiallyĀ utilizedĀ onĀ otherĀ aspectsĀ withoutĀ specificĀ recitation.
DETAILEDĀ DESCRIPTION
AspectsĀ ofĀ theĀ presentĀ disclosureĀ provideĀ apparatus,Ā methods,Ā processingĀ systems,Ā andĀ computerĀ readableĀ mediumsĀ forĀ newĀ radioĀ (NR)Ā (newĀ radioĀ accessĀ technologyĀ orĀ 5GĀ technology)Ā .
NRĀ mayĀ supportĀ variousĀ wirelessĀ communicationĀ services,Ā suchĀ asĀ EnhancedĀ mobileĀ broadbandĀ (eMBB)Ā targetingĀ wideĀ bandwidthĀ (e.g.,Ā 80Ā MHzĀ andĀ wider)Ā ,Ā millimeterĀ waveĀ (mmW)Ā targetingĀ highĀ carrierĀ frequencyĀ (e.g.,Ā 27Ā GHzĀ andĀ higher)Ā ,Ā massiveĀ MTCĀ (mMTC)Ā targetingĀ non-backwardĀ compatibleĀ MTCĀ techniques,Ā and/orĀ missionĀ criticalĀ targetingĀ ultra-reliableĀ lowĀ latencyĀ communicationsĀ (URLLC)Ā .Ā TheseĀ servicesĀ mayĀ includeĀ latencyĀ andĀ reliabilityĀ requirements.Ā TheseĀ servicesĀ mayĀ alsoĀ haveĀ differentĀ transmissionĀ timeĀ intervalsĀ (TTI)Ā toĀ meetĀ respectiveĀ qualityĀ ofĀ serviceĀ (QoS)Ā requirements.Ā InĀ addition,Ā theseĀ servicesĀ mayĀ co-existĀ inĀ theĀ sameĀ subframe.
AspectsĀ ofĀ theĀ presentĀ disclosureĀ relateĀ toĀ transmittingĀ soundingĀ referenceĀ signalsĀ (SRS)Ā .Ā AccordingĀ toĀ aspectsĀ ofĀ theĀ presentĀ disclosure,Ā aĀ networkĀ (e.g.,Ā aĀ networkĀ entity,Ā suchĀ asĀ aĀ BS)Ā mayĀ decideĀ andĀ communicateĀ toĀ aĀ UEĀ whichĀ oneĀ ofĀ cyclicĀ prefixĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (CP-OFDM)Ā andĀ discreteĀ FourierĀ transformĀ spreadĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (DFT-S-OFDM)Ā basedĀ waveformsĀ theĀ UEĀ shouldĀ useĀ whenĀ transmittingĀ (e.g.,Ā transmittingĀ SRS)Ā toĀ theĀ network.Ā InĀ oneĀ example,Ā UEsĀ supportĀ bothĀ CP-OFDMĀ andĀ DFT-S-OFDMĀ basedĀ waveforms.
TheĀ followingĀ descriptionĀ providesĀ examples,Ā andĀ isĀ notĀ limitingĀ ofĀ theĀ scope,Ā applicability,Ā orĀ examplesĀ setĀ forthĀ inĀ theĀ claims.Ā ChangesĀ mayĀ beĀ madeĀ inĀ theĀ functionĀ andĀ arrangementĀ ofĀ elementsĀ discussedĀ withoutĀ departingĀ fromĀ theĀ scopeĀ ofĀ theĀ disclosure.Ā VariousĀ examplesĀ mayĀ omit,Ā substitute,Ā orĀ addĀ variousĀ proceduresĀ orĀ componentsĀ asĀ appropriate.Ā ForĀ instance,Ā theĀ methodsĀ describedĀ mayĀ beĀ performedĀ inĀ anĀ orderĀ differentĀ fromĀ thatĀ described,Ā andĀ variousĀ stepsĀ mayĀ beĀ added,Ā omitted,Ā orĀ combined.Ā Also,Ā featuresĀ describedĀ withĀ respectĀ toĀ someĀ examplesĀ mayĀ beĀ combinedĀ inĀ someĀ otherĀ examples.Ā ForĀ example,Ā anĀ apparatusĀ mayĀ beĀ implementedĀ orĀ aĀ methodĀ mayĀ beĀ practicedĀ usingĀ anyĀ numberĀ ofĀ theĀ aspectsĀ setĀ forthĀ herein.Ā InĀ addition,Ā theĀ scopeĀ ofĀ theĀ disclosureĀ isĀ intendedĀ toĀ coverĀ suchĀ anĀ apparatusĀ orĀ methodĀ whichĀ isĀ practicedĀ usingĀ otherĀ structure,Ā functionality,Ā orĀ structureĀ andĀ functionalityĀ inĀ additionĀ toĀ orĀ otherĀ thanĀ theĀ variousĀ aspectsĀ ofĀ theĀ disclosureĀ setĀ forthĀ herein.Ā ItĀ shouldĀ beĀ understoodĀ thatĀ anyĀ aspectĀ ofĀ theĀ disclosureĀ disclosedĀ hereinĀ mayĀ beĀ embodiedĀ byĀ oneĀ orĀ moreĀ elementsĀ ofĀ aĀ claim.Ā TheĀ wordĀ ā€œexemplaryā€Ā isĀ usedĀ hereinĀ toĀ meanĀ ā€œservingĀ asĀ anĀ example,Ā instance,Ā orĀ illustration.Ā ā€Ā AnyĀ aspectĀ describedĀ hereinĀ asĀ ā€œexemplaryā€Ā isĀ notĀ necessarilyĀ toĀ beĀ construedĀ asĀ preferredĀ orĀ advantageousĀ overĀ otherĀ aspects.
TheĀ techniquesĀ describedĀ hereinĀ mayĀ beĀ usedĀ forĀ variousĀ wirelessĀ communicationĀ networksĀ suchĀ asĀ LTE,Ā CDMA,Ā TDMA,Ā FDMA,Ā OFDMA,Ā SC-FDMAĀ andĀ otherĀ networks.Ā TheĀ termsĀ ā€œnetworkā€Ā andĀ ā€œsystemā€Ā areĀ oftenĀ usedĀ interchangeably.Ā AĀ CDMAĀ networkĀ mayĀ implementĀ aĀ radioĀ technologyĀ suchĀ asĀ UniversalĀ TerrestrialĀ RadioĀ AccessĀ (UTRA)Ā ,Ā cdma2000,Ā etc.Ā UTRAĀ includesĀ WidebandĀ CDMAĀ (WCDMA)Ā andĀ otherĀ variantsĀ ofĀ CDMA.Ā cdma2000Ā coversĀ IS-2000,Ā IS-95Ā andĀ IS-856Ā standards.Ā AĀ TDMAĀ networkĀ mayĀ implementĀ aĀ radioĀ technologyĀ suchĀ asĀ GlobalĀ SystemĀ forĀ MobileĀ CommunicationsĀ (GSM)Ā .Ā AnĀ OFDMAĀ networkĀ mayĀ implementĀ aĀ radioĀ technologyĀ suchĀ asĀ NRĀ (e.g.Ā 5GĀ RA)Ā ,Ā EvolvedĀ UTRAĀ (E-UTRA)Ā ,Ā UltraĀ MobileĀ BroadbandĀ (UMB)Ā ,Ā IEEEĀ 802.11Ā (Wi-Fi)Ā ,Ā IEEEĀ 802.16Ā (WiMAX)Ā ,Ā IEEEĀ 802.20,Ā Flash-OFDMA,Ā etc.Ā UTRAĀ andĀ E-UTRAĀ areĀ partĀ ofĀ UniversalĀ MobileĀ TelecommunicationĀ SystemĀ (UMTS)Ā .Ā NRĀ isĀ anĀ emergingĀ wirelessĀ communicationsĀ technologyĀ underĀ developmentĀ inĀ conjunctionĀ withĀ theĀ 5GĀ TechnologyĀ ForumĀ (5GTF)Ā .Ā 3GPPĀ LongĀ TermĀ EvolutionĀ (LTE)Ā andĀ LTE-AdvancedĀ (LTE-A)Ā areĀ releasesĀ ofĀ UMTSĀ thatĀ useĀ E-UTRA.Ā UTRA,Ā E-UTRA,Ā UMTS,Ā LTE,Ā LTE-AĀ andĀ GSMĀ areĀ describedĀ inĀ documentsĀ fromĀ anĀ organizationĀ namedĀ ā€œ3rdĀ GenerationĀ PartnershipĀ Projectā€Ā (3GPP)Ā .Ā cdma2000Ā andĀ UMBĀ areĀ describedĀ inĀ documentsĀ fromĀ anĀ organizationĀ namedĀ ā€œ3rdĀ GenerationĀ PartnershipĀ ProjectĀ 2ā€Ā (3GPP2)Ā .Ā TheĀ techniquesĀ describedĀ hereinĀ mayĀ beĀ usedĀ forĀ theĀ wirelessĀ networksĀ andĀ radioĀ technologiesĀ mentionedĀ aboveĀ asĀ wellĀ asĀ otherĀ wirelessĀ networksĀ andĀ radioĀ technologies.Ā ForĀ clarity,Ā whileĀ aspectsĀ mayĀ beĀ describedĀ hereinĀ usingĀ terminologyĀ commonlyĀ associatedĀ withĀ 3GĀ and/orĀ 4GĀ wirelessĀ technologies,Ā aspectsĀ ofĀ theĀ presentĀ disclosureĀ canĀ beĀ appliedĀ inĀ otherĀ generation-basedĀ communicationĀ systems,Ā suchĀ asĀ 5GĀ andĀ later,Ā includingĀ NRĀ technologies.
EXAMPLEĀ WIRELESSĀ COMMUNICATIONSĀ SYSTEM
FIG.Ā 1Ā illustratesĀ anĀ exampleĀ wirelessĀ networkĀ 100,Ā suchĀ asĀ aĀ newĀ radioĀ (NR)Ā orĀ 5GĀ network,Ā inĀ whichĀ aspectsĀ ofĀ theĀ presentĀ disclosureĀ mayĀ beĀ performed,Ā forĀ example,Ā forĀ enablingĀ connectivityĀ sessionsĀ andĀ internetĀ protocolĀ (IP)Ā establishment,Ā asĀ describedĀ inĀ greaterĀ detailĀ below.
AsĀ illustratedĀ inĀ FIG.Ā 1,Ā theĀ wirelessĀ networkĀ 100Ā mayĀ includeĀ aĀ numberĀ ofĀ BSsĀ 110Ā andĀ otherĀ networkĀ entities.Ā AĀ BSĀ mayĀ beĀ aĀ stationĀ thatĀ communicatesĀ withĀ UEs.Ā EachĀ BSĀ 110Ā mayĀ provideĀ communicationĀ coverageĀ forĀ aĀ particularĀ geographicĀ area.Ā InĀ 3GPP,Ā theĀ termĀ ā€œcellā€Ā canĀ referĀ toĀ aĀ coverageĀ areaĀ ofĀ aĀ NodeĀ BĀ and/orĀ aĀ NodeĀ BĀ  subsystemĀ servingĀ thisĀ coverageĀ area,Ā dependingĀ onĀ theĀ contextĀ inĀ whichĀ theĀ termĀ isĀ used.Ā InĀ NRĀ systems,Ā theĀ termĀ ā€œcellā€Ā andĀ eNB,Ā NodeĀ B,Ā 5GĀ NB,Ā AP,Ā NRĀ BS,Ā NRĀ BS,Ā orĀ TRPĀ mayĀ beĀ interchangeable.Ā InĀ someĀ examples,Ā aĀ cellĀ mayĀ notĀ necessarilyĀ beĀ stationary,Ā andĀ theĀ geographicĀ areaĀ ofĀ theĀ cellĀ mayĀ moveĀ accordingĀ toĀ theĀ locationĀ ofĀ aĀ mobileĀ baseĀ station.Ā InĀ someĀ examples,Ā theĀ baseĀ stationsĀ mayĀ beĀ interconnectedĀ toĀ oneĀ anotherĀ and/orĀ toĀ oneĀ orĀ moreĀ otherĀ baseĀ stationsĀ orĀ networkĀ nodesĀ (notĀ shown)Ā inĀ theĀ wirelessĀ networkĀ 100Ā throughĀ variousĀ typesĀ ofĀ backhaulĀ interfacesĀ suchĀ asĀ aĀ directĀ physicalĀ connection,Ā aĀ virtualĀ network,Ā orĀ theĀ likeĀ usingĀ anyĀ suitableĀ transportĀ network.
InĀ general,Ā anyĀ numberĀ ofĀ wirelessĀ networksĀ mayĀ beĀ deployedĀ inĀ aĀ givenĀ geographicĀ area.Ā EachĀ wirelessĀ networkĀ mayĀ supportĀ aĀ particularĀ radioĀ accessĀ technologyĀ (RAT)Ā andĀ mayĀ operateĀ onĀ oneĀ orĀ moreĀ frequencies.Ā AĀ RATĀ mayĀ alsoĀ beĀ referredĀ toĀ asĀ aĀ radioĀ technology,Ā anĀ airĀ interface,Ā etc.Ā AĀ frequencyĀ mayĀ alsoĀ beĀ referredĀ toĀ asĀ aĀ carrier,Ā aĀ frequencyĀ channel,Ā etc.Ā EachĀ frequencyĀ mayĀ supportĀ aĀ singleĀ RATĀ inĀ aĀ givenĀ geographicĀ areaĀ inĀ orderĀ toĀ avoidĀ interferenceĀ betweenĀ wirelessĀ networksĀ ofĀ differentĀ RATs.Ā InĀ someĀ cases,Ā NRĀ orĀ 5GĀ RATĀ networksĀ mayĀ beĀ deployed.
AĀ BSĀ mayĀ provideĀ communicationĀ coverageĀ forĀ aĀ macroĀ cell,Ā aĀ picoĀ cell,Ā aĀ femtoĀ cell,Ā and/orĀ otherĀ typesĀ ofĀ cell.Ā AĀ macroĀ cellĀ mayĀ coverĀ aĀ relativelyĀ largeĀ geographicĀ areaĀ (e.g.,Ā severalĀ kilometersĀ inĀ radius)Ā andĀ mayĀ allowĀ unrestrictedĀ accessĀ byĀ UEsĀ withĀ serviceĀ subscription.Ā AĀ picoĀ cellĀ mayĀ coverĀ aĀ relativelyĀ smallĀ geographicĀ areaĀ andĀ mayĀ allowĀ unrestrictedĀ accessĀ byĀ UEsĀ withĀ serviceĀ subscription.Ā AĀ femtoĀ cellĀ mayĀ coverĀ aĀ relativelyĀ smallĀ geographicĀ areaĀ (e.g.,Ā aĀ home)Ā andĀ mayĀ allowĀ restrictedĀ accessĀ byĀ UEsĀ havingĀ associationĀ withĀ theĀ femtoĀ cellĀ (e.g.,Ā UEsĀ inĀ aĀ ClosedĀ SubscriberĀ GroupĀ (CSG)Ā ,Ā UEsĀ forĀ usersĀ inĀ theĀ home,Ā etc.Ā )Ā .Ā AĀ BSĀ forĀ aĀ macroĀ cellĀ mayĀ beĀ referredĀ toĀ asĀ aĀ macroĀ BS.Ā AĀ BSĀ forĀ aĀ picoĀ cellĀ mayĀ beĀ referredĀ toĀ asĀ aĀ picoĀ BS.Ā AĀ BSĀ forĀ aĀ femtoĀ cellĀ mayĀ beĀ referredĀ toĀ asĀ aĀ femtoĀ BSĀ orĀ aĀ homeĀ BS.Ā InĀ theĀ exampleĀ shownĀ inĀ FIG.Ā 1,Ā theĀ  BSs Ā 110a,Ā 110bĀ andĀ 110cĀ mayĀ beĀ macroĀ BSsĀ forĀ theĀ  macroĀ cells Ā 102a,Ā 102bĀ andĀ 102c,Ā respectively.Ā TheĀ BSĀ 110xĀ mayĀ beĀ aĀ picoĀ BSĀ forĀ aĀ picoĀ cellĀ 102x.Ā TheĀ  BSs Ā 110yĀ andĀ 110zĀ mayĀ beĀ femtoĀ BSĀ forĀ theĀ  femtoĀ cells Ā 102yĀ andĀ 102z,Ā respectively.Ā AĀ BSĀ mayĀ supportĀ oneĀ orĀ multipleĀ (e.g.,Ā three)Ā cells.
TheĀ wirelessĀ networkĀ 100Ā mayĀ alsoĀ includeĀ relayĀ stations.Ā AĀ relayĀ stationĀ isĀ aĀ stationĀ thatĀ receivesĀ aĀ transmissionĀ ofĀ dataĀ and/orĀ otherĀ informationĀ fromĀ anĀ upstreamĀ stationĀ (e.g.,Ā aĀ BSĀ orĀ aĀ UE)Ā andĀ sendsĀ aĀ transmissionĀ ofĀ theĀ dataĀ and/orĀ otherĀ  informationĀ toĀ aĀ downstreamĀ stationĀ (e.g.,Ā aĀ UEĀ orĀ aĀ BS)Ā .Ā AĀ relayĀ stationĀ mayĀ alsoĀ beĀ aĀ UEĀ thatĀ relaysĀ transmissionsĀ forĀ otherĀ UEs.Ā InĀ theĀ exampleĀ shownĀ inĀ FIG.Ā 1,Ā aĀ relayĀ stationĀ 110rĀ mayĀ communicateĀ withĀ theĀ BSĀ 110aĀ andĀ aĀ UEĀ 120rĀ inĀ orderĀ toĀ facilitateĀ communicationĀ betweenĀ theĀ BSĀ 110aĀ andĀ theĀ UEĀ 120r.Ā AĀ relayĀ stationĀ mayĀ alsoĀ beĀ referredĀ toĀ asĀ aĀ relayĀ BS,Ā aĀ relay,Ā etc.
TheĀ wirelessĀ networkĀ 100Ā mayĀ beĀ aĀ heterogeneousĀ networkĀ thatĀ includesĀ BSsĀ ofĀ differentĀ types,Ā e.g.,Ā macroĀ BS,Ā picoĀ BS,Ā femtoĀ BS,Ā relays,Ā etc.Ā TheseĀ differentĀ typesĀ ofĀ BSsĀ mayĀ haveĀ differentĀ transmitĀ powerĀ levels,Ā differentĀ coverageĀ areas,Ā andĀ differentĀ impactĀ onĀ interferenceĀ inĀ theĀ wirelessĀ networkĀ 100.Ā ForĀ example,Ā macroĀ BSĀ mayĀ haveĀ aĀ highĀ transmitĀ powerĀ levelĀ (e.g.,Ā 20Ā Watts)Ā whereasĀ picoĀ BS,Ā femtoĀ BS,Ā andĀ relaysĀ mayĀ haveĀ aĀ lowerĀ transmitĀ powerĀ levelĀ (e.g.,Ā 1Ā Watt)Ā .
TheĀ wirelessĀ networkĀ 100Ā mayĀ supportĀ synchronousĀ orĀ asynchronousĀ operation.Ā ForĀ synchronousĀ operation,Ā theĀ BSsĀ mayĀ haveĀ similarĀ frameĀ timing,Ā andĀ transmissionsĀ fromĀ differentĀ BSsĀ mayĀ beĀ approximatelyĀ alignedĀ inĀ time.Ā ForĀ asynchronousĀ operation,Ā theĀ BSsĀ mayĀ haveĀ differentĀ frameĀ timing,Ā andĀ transmissionsĀ fromĀ differentĀ BSsĀ mayĀ notĀ beĀ alignedĀ inĀ time.Ā TheĀ techniquesĀ describedĀ hereinĀ mayĀ beĀ usedĀ forĀ bothĀ synchronousĀ andĀ asynchronousĀ operation.
AĀ networkĀ controllerĀ 130Ā mayĀ coupledĀ toĀ aĀ setĀ ofĀ BSsĀ andĀ provideĀ coordinationĀ andĀ controlĀ forĀ theseĀ BSs.Ā TheĀ networkĀ controllerĀ 130Ā mayĀ communicateĀ withĀ theĀ BSsĀ 110Ā viaĀ aĀ backhaul.Ā TheĀ BSsĀ 110Ā mayĀ alsoĀ communicateĀ withĀ oneĀ another,Ā e.g.,Ā directlyĀ orĀ indirectlyĀ viaĀ wirelessĀ orĀ wirelineĀ backhaul.
TheĀ UEsĀ 120Ā (e.g.,Ā 120x,Ā 120y,Ā etc.Ā )Ā mayĀ beĀ dispersedĀ throughoutĀ theĀ wirelessĀ networkĀ 100,Ā andĀ eachĀ UEĀ mayĀ beĀ stationaryĀ orĀ mobile.Ā AĀ UEĀ mayĀ alsoĀ beĀ referredĀ toĀ asĀ aĀ mobileĀ station,Ā aĀ terminal,Ā anĀ accessĀ terminal,Ā aĀ subscriberĀ unit,Ā aĀ station,Ā aĀ CustomerĀ PremisesĀ EquipmentĀ (CPE)Ā ,Ā aĀ cellularĀ phone,Ā aĀ smartĀ phone,Ā aĀ personalĀ digitalĀ assistantĀ (PDA)Ā ,Ā aĀ wirelessĀ modem,Ā aĀ wirelessĀ communicationĀ device,Ā aĀ handheldĀ device,Ā aĀ laptopĀ computer,Ā aĀ cordlessĀ phone,Ā aĀ wirelessĀ localĀ loopĀ (WLL)Ā station,Ā aĀ tablet,Ā aĀ camera,Ā aĀ gamingĀ device,Ā aĀ netbook,Ā aĀ smartbook,Ā anĀ ultrabook,Ā aĀ medicalĀ deviceĀ orĀ medicalĀ equipment,Ā aĀ biometricĀ sensorĀ and/orĀ device,Ā aĀ wearableĀ deviceĀ suchĀ asĀ aĀ smartĀ watch,Ā smartĀ clothing,Ā smartĀ glasses,Ā aĀ smartĀ wristĀ band,Ā smartĀ jewelryĀ (e.g.,Ā aĀ smartĀ ring,Ā aĀ smartĀ bracelet,Ā etc.Ā )Ā ,Ā anĀ entertainmentĀ deviceĀ (e.g.,Ā aĀ musicĀ  device,Ā aĀ videoĀ device,Ā aĀ satelliteĀ radio,Ā etc.Ā )Ā ,Ā aĀ vehicularĀ componentĀ orĀ sensor,Ā aĀ smartĀ meterĀ and/orĀ sensor,Ā industrialĀ manufacturingĀ equipment,Ā aĀ globalĀ positioningĀ systemĀ device,Ā orĀ anyĀ otherĀ suitableĀ deviceĀ thatĀ isĀ configuredĀ toĀ communicateĀ viaĀ aĀ wirelessĀ orĀ wiredĀ medium.Ā SomeĀ UEsĀ mayĀ beĀ consideredĀ evolvedĀ orĀ machine-typeĀ communicationĀ (MTC)Ā devicesĀ orĀ evolvedĀ MTCĀ (eMTC)Ā devices.Ā MTCĀ andĀ eMTCĀ UEsĀ include,Ā forĀ example,Ā robots,Ā drones,Ā remoteĀ devices,Ā sensors,Ā meters,Ā monitors,Ā locationĀ tags,Ā etc.,Ā thatĀ mayĀ communicateĀ withĀ aĀ BS,Ā anotherĀ deviceĀ (e.g.,Ā remoteĀ device)Ā ,Ā orĀ someĀ otherĀ entity.Ā AĀ wirelessĀ nodeĀ mayĀ provide,Ā forĀ example,Ā connectivityĀ forĀ orĀ toĀ aĀ networkĀ (e.g.,Ā aĀ wideĀ areaĀ networkĀ suchĀ asĀ InternetĀ orĀ aĀ cellularĀ network)Ā viaĀ aĀ wiredĀ orĀ wirelessĀ communicationĀ link.Ā SomeĀ UEsĀ mayĀ beĀ consideredĀ Internet-of-ThingsĀ (IoT)Ā devices.
InĀ FIG.Ā 1,Ā aĀ solidĀ lineĀ withĀ doubleĀ arrowsĀ indicatesĀ desiredĀ transmissionsĀ betweenĀ aĀ UEĀ andĀ aĀ servingĀ BS,Ā whichĀ isĀ aĀ BSĀ designatedĀ toĀ serveĀ theĀ UEĀ onĀ theĀ downlinkĀ and/orĀ uplink.Ā AĀ dashedĀ lineĀ withĀ doubleĀ arrowsĀ indicatesĀ interferingĀ transmissionsĀ betweenĀ aĀ UEĀ andĀ aĀ BS.
CertainĀ wirelessĀ networksĀ (e.g.,Ā LTE)Ā utilizeĀ orthogonalĀ frequencyĀ divisionĀ multiplexingĀ (OFDM)Ā onĀ theĀ downlinkĀ andĀ single-carrierĀ frequencyĀ divisionĀ multiplexingĀ (SC-FDM)Ā onĀ theĀ uplink.Ā OFDMĀ andĀ SC-FDMĀ partitionĀ theĀ systemĀ bandwidthĀ intoĀ multipleĀ (K)Ā orthogonalĀ subcarriers,Ā whichĀ areĀ alsoĀ commonlyĀ referredĀ toĀ asĀ tones,Ā bins,Ā etc.Ā EachĀ subcarrierĀ mayĀ beĀ modulatedĀ withĀ data.Ā InĀ general,Ā modulationĀ symbolsĀ areĀ sentĀ inĀ theĀ frequencyĀ domainĀ withĀ OFDMĀ andĀ inĀ theĀ timeĀ domainĀ withĀ SC-FDM.Ā TheĀ spacingĀ betweenĀ adjacentĀ subcarriersĀ mayĀ beĀ fixed,Ā andĀ theĀ totalĀ numberĀ ofĀ subcarriersĀ (K)Ā mayĀ beĀ dependentĀ onĀ theĀ systemĀ bandwidth.Ā ForĀ example,Ā theĀ spacingĀ ofĀ theĀ subcarriersĀ mayĀ beĀ 15Ā kHzĀ andĀ theĀ minimumĀ resourceĀ allocationĀ (calledĀ aĀ ā€˜resourceĀ block’ )Ā mayĀ beĀ 12Ā subcarriersĀ (orĀ 180Ā kHz)Ā .Ā Consequently,Ā theĀ nominalĀ FFTĀ sizeĀ mayĀ beĀ equalĀ toĀ 128,Ā 256,Ā 512,Ā 1024Ā orĀ 2048Ā forĀ systemĀ bandwidthĀ ofĀ 1.25,Ā 2.5,Ā 5,Ā 10Ā orĀ 20Ā megahertzĀ (MHz)Ā ,Ā respectively.Ā TheĀ systemĀ bandwidthĀ mayĀ alsoĀ beĀ partitionedĀ intoĀ subbands.Ā ForĀ example,Ā aĀ subbandĀ mayĀ coverĀ 1.08Ā MHzĀ (i.e.,Ā 6Ā resourceĀ blocks)Ā ,Ā andĀ thereĀ mayĀ beĀ 1,Ā 2,Ā 4,Ā 8Ā orĀ 16Ā subbandsĀ forĀ systemĀ bandwidthĀ ofĀ 1.25,Ā 2.5,Ā 5,Ā 10Ā orĀ 20Ā MHz,Ā respectively.
WhileĀ aspectsĀ ofĀ theĀ examplesĀ describedĀ hereinĀ mayĀ beĀ associatedĀ withĀ LTEĀ technologies,Ā aspectsĀ ofĀ theĀ presentĀ disclosureĀ mayĀ beĀ applicableĀ withĀ otherĀ wirelessĀ communicationsĀ systems,Ā suchĀ asĀ NR.Ā NRĀ mayĀ utilizeĀ OFDMĀ withĀ aĀ CPĀ onĀ theĀ uplinkĀ  andĀ downlinkĀ andĀ includeĀ supportĀ forĀ half-duplexĀ operationĀ usingĀ timeĀ divisionĀ duplexĀ (TDD)Ā .Ā AĀ singleĀ componentĀ carrierĀ bandwidthĀ ofĀ 100Ā MHzĀ mayĀ beĀ supported.Ā NRĀ resourceĀ blocksĀ mayĀ spanĀ 12Ā sub-carriersĀ withĀ aĀ sub-carrierĀ bandwidthĀ ofĀ 75Ā kHzĀ overĀ aĀ 0.1Ā msĀ duration.Ā EachĀ radioĀ frameĀ mayĀ consistĀ ofĀ 50Ā subframesĀ withĀ aĀ lengthĀ ofĀ 10Ā ms.Ā Consequently,Ā eachĀ subframeĀ mayĀ haveĀ aĀ lengthĀ ofĀ 0.2Ā ms.Ā EachĀ subframeĀ mayĀ indicateĀ aĀ linkĀ directionĀ (i.e.,Ā DLĀ orĀ UL)Ā forĀ dataĀ transmissionĀ andĀ theĀ linkĀ directionĀ forĀ eachĀ subframeĀ mayĀ beĀ dynamicallyĀ switched.Ā EachĀ subframeĀ mayĀ includeĀ DLĀ and/orĀ ULĀ userĀ dataĀ asĀ wellĀ asĀ DLĀ and/orĀ ULĀ controlĀ data.Ā ULĀ andĀ DLĀ subframesĀ forĀ NRĀ mayĀ beĀ asĀ describedĀ inĀ moreĀ detailĀ belowĀ withĀ respectĀ toĀ FIGs.Ā 6Ā andĀ 7.Ā BeamformingĀ mayĀ beĀ supportedĀ andĀ beamĀ directionĀ mayĀ beĀ dynamicallyĀ configured.Ā MIMOĀ transmissionsĀ withĀ precodingĀ mayĀ alsoĀ beĀ supported.Ā MIMOĀ configurationsĀ inĀ theĀ DLĀ mayĀ supportĀ upĀ toĀ 8Ā transmitĀ antennasĀ withĀ multi-layerĀ DLĀ transmissionsĀ upĀ toĀ 8Ā streamsĀ andĀ upĀ toĀ 2Ā streamsĀ perĀ UE.Ā Multi-layerĀ transmissionsĀ withĀ upĀ toĀ 2Ā streamsĀ perĀ UEĀ mayĀ beĀ supported.Ā AggregationĀ ofĀ multipleĀ cellsĀ mayĀ beĀ supportedĀ withĀ upĀ toĀ 8Ā servingĀ cells.Ā Alternatively,Ā NRĀ mayĀ supportĀ aĀ differentĀ airĀ interface,Ā otherĀ thanĀ anĀ OFDM-based.Ā NRĀ networksĀ mayĀ includeĀ entitiesĀ suchĀ CUsĀ and/orĀ DUs.
InĀ someĀ examples,Ā accessĀ toĀ theĀ airĀ interfaceĀ mayĀ beĀ scheduled,Ā whereinĀ aĀ schedulingĀ entityĀ (e.g.,Ā aĀ baseĀ station)Ā allocatesĀ resourcesĀ forĀ communicationĀ amongĀ someĀ orĀ allĀ devicesĀ andĀ equipmentĀ withinĀ itsĀ serviceĀ areaĀ orĀ cell.Ā WithinĀ theĀ presentĀ disclosure,Ā asĀ discussedĀ furtherĀ below,Ā theĀ schedulingĀ entityĀ mayĀ beĀ responsibleĀ forĀ scheduling,Ā assigning,Ā reconfiguring,Ā andĀ releasingĀ resourcesĀ forĀ oneĀ orĀ moreĀ subordinateĀ entities.Ā ThatĀ is,Ā forĀ scheduledĀ communication,Ā subordinateĀ entitiesĀ utilizeĀ resourcesĀ allocatedĀ byĀ theĀ schedulingĀ entity.Ā BaseĀ stationsĀ areĀ notĀ theĀ onlyĀ entitiesĀ thatĀ mayĀ functionĀ asĀ aĀ schedulingĀ entity.Ā ThatĀ is,Ā inĀ someĀ examples,Ā aĀ UEĀ mayĀ functionĀ asĀ aĀ schedulingĀ entity,Ā schedulingĀ resourcesĀ forĀ oneĀ orĀ moreĀ subordinateĀ entitiesĀ (e.g.,Ā oneĀ orĀ moreĀ otherĀ UEs)Ā .Ā InĀ thisĀ example,Ā theĀ UEĀ isĀ functioningĀ asĀ aĀ schedulingĀ entity,Ā andĀ otherĀ UEsĀ utilizeĀ resourcesĀ scheduledĀ byĀ theĀ UEĀ forĀ wirelessĀ communication.Ā AĀ UEĀ mayĀ functionĀ asĀ aĀ schedulingĀ entityĀ inĀ aĀ peer-to-peerĀ (P2P)Ā network,Ā and/orĀ inĀ aĀ meshĀ network.Ā InĀ aĀ meshĀ networkĀ example,Ā UEsĀ mayĀ optionallyĀ communicateĀ directlyĀ withĀ oneĀ anotherĀ inĀ additionĀ toĀ communicatingĀ withĀ theĀ schedulingĀ entity.
Thus,Ā inĀ aĀ wirelessĀ communicationĀ networkĀ withĀ aĀ scheduledĀ accessĀ toĀ time–frequencyĀ resourcesĀ andĀ havingĀ aĀ cellularĀ configuration,Ā aĀ P2PĀ configuration,Ā andĀ aĀ  meshĀ configuration,Ā aĀ schedulingĀ entityĀ andĀ oneĀ orĀ moreĀ subordinateĀ entitiesĀ mayĀ communicateĀ utilizingĀ theĀ scheduledĀ resources.
AsĀ notedĀ above,Ā aĀ RANĀ mayĀ includeĀ aĀ CUĀ andĀ DUs.Ā AĀ NRĀ BSĀ (e.g.,Ā eNB,Ā 5GĀ NodeĀ B,Ā NodeĀ B,Ā transmissionĀ receptionĀ pointĀ (TRP)Ā ,Ā accessĀ pointĀ (AP)Ā )Ā mayĀ correspondĀ toĀ oneĀ orĀ multipleĀ BSs.Ā NRĀ cellsĀ canĀ beĀ configuredĀ asĀ accessĀ cellĀ (ACells)Ā orĀ dataĀ onlyĀ cellsĀ (DCells)Ā .Ā ForĀ example,Ā theĀ RANĀ (e.g.,Ā aĀ centralĀ unitĀ orĀ distributedĀ unit)Ā canĀ configureĀ theĀ cells.Ā DCellsĀ mayĀ beĀ cellsĀ usedĀ forĀ carrierĀ aggregationĀ orĀ dualĀ connectivity,Ā butĀ notĀ usedĀ forĀ initialĀ access,Ā cellĀ selection/reselection,Ā orĀ handover.Ā InĀ someĀ casesĀ DCellsĀ mayĀ notĀ transmitĀ synchronizationĀ signals-inĀ someĀ caseĀ casesĀ DCellsĀ mayĀ transmitĀ SS.Ā NRĀ BSsĀ mayĀ transmitĀ downlinkĀ signalsĀ toĀ UEsĀ indicatingĀ theĀ cellĀ type.Ā BasedĀ onĀ theĀ cellĀ typeĀ indication,Ā theĀ UEĀ mayĀ communicateĀ withĀ theĀ NRĀ BS.Ā ForĀ example,Ā theĀ UEĀ mayĀ determineĀ NRĀ BSsĀ toĀ considerĀ forĀ cellĀ selection,Ā access,Ā handover,Ā and/orĀ measurementĀ basedĀ onĀ theĀ indicatedĀ cellĀ type.
FIG.Ā 2Ā illustratesĀ anĀ exampleĀ logicalĀ architectureĀ ofĀ aĀ distributedĀ radioĀ accessĀ networkĀ (RAN)Ā 200,Ā whichĀ mayĀ beĀ implementedĀ inĀ theĀ wirelessĀ communicationĀ systemĀ illustratedĀ inĀ FIG.Ā 1.Ā AĀ 5GĀ accessĀ nodeĀ 206Ā mayĀ includeĀ anĀ accessĀ nodeĀ controllerĀ (ANC)Ā 202.Ā TheĀ ANCĀ mayĀ beĀ aĀ centralĀ unitĀ (CU)Ā ofĀ theĀ distributedĀ RANĀ 200.Ā TheĀ backhaulĀ interfaceĀ toĀ theĀ nextĀ generationĀ coreĀ networkĀ (NG-CN)Ā 204Ā mayĀ terminateĀ atĀ theĀ ANC.Ā TheĀ backhaulĀ interfaceĀ toĀ neighboringĀ nextĀ generationĀ accessĀ nodesĀ (NG-ANs)Ā mayĀ terminateĀ atĀ theĀ ANC.Ā TheĀ ANCĀ mayĀ includeĀ oneĀ orĀ moreĀ TRPsĀ 208Ā (whichĀ mayĀ alsoĀ beĀ referredĀ toĀ asĀ BSs,Ā NRĀ BSs,Ā NodeĀ Bs,Ā 5GĀ NBs,Ā APs,Ā orĀ someĀ otherĀ term)Ā .Ā AsĀ describedĀ above,Ā aĀ TRPĀ mayĀ beĀ usedĀ interchangeablyĀ withĀ ā€œcell.Ā ā€
TheĀ TRPsĀ 208Ā mayĀ beĀ aĀ DU.Ā TheĀ TRPsĀ mayĀ beĀ connectedĀ toĀ oneĀ ANCĀ (ANCĀ 202)Ā orĀ moreĀ thanĀ oneĀ ANCĀ (notĀ illustrated)Ā .Ā ForĀ example,Ā forĀ RANĀ sharing,Ā radioĀ asĀ aĀ serviceĀ (RaaS)Ā ,Ā andĀ serviceĀ specificĀ ANDĀ deployments,Ā theĀ TRPĀ mayĀ beĀ connectedĀ toĀ moreĀ thanĀ oneĀ ANC.Ā AĀ TRPĀ mayĀ includeĀ oneĀ orĀ moreĀ antennaĀ ports.Ā TheĀ TRPsĀ mayĀ beĀ configuredĀ toĀ individuallyĀ (e.g.,Ā dynamicĀ selection)Ā orĀ jointlyĀ (e.g.,Ā jointĀ transmission)Ā serveĀ trafficĀ toĀ aĀ UE.
TheĀ localĀ architectureĀ 200Ā mayĀ beĀ usedĀ toĀ illustrateĀ fronthaulĀ definition.Ā TheĀ architectureĀ mayĀ beĀ definedĀ thatĀ supportĀ fronthaulingĀ solutionsĀ acrossĀ differentĀ  deploymentĀ types.Ā ForĀ example,Ā theĀ architectureĀ mayĀ beĀ basedĀ onĀ transmitĀ networkĀ capabilitiesĀ (e.g.,Ā bandwidth,Ā latency,Ā and/orĀ jitter)Ā .
TheĀ architectureĀ mayĀ shareĀ featuresĀ and/orĀ componentsĀ withĀ LTE.Ā AccordingĀ toĀ aspects,Ā theĀ nextĀ generationĀ ANĀ (NG-AN)Ā 210Ā mayĀ supportĀ dualĀ connectivityĀ withĀ NR.Ā TheĀ NG-ANĀ mayĀ shareĀ aĀ commonĀ fronthaulĀ forĀ LTEĀ andĀ NR.
TheĀ architectureĀ mayĀ enableĀ cooperationĀ betweenĀ andĀ amongĀ TRPsĀ 208.Ā ForĀ example,Ā cooperationĀ mayĀ beĀ presetĀ withinĀ aĀ TRPĀ and/orĀ acrossĀ TRPsĀ viaĀ theĀ ANCĀ 202.Ā AccordingĀ toĀ aspects,Ā noĀ inter-TRPĀ interfaceĀ mayĀ beĀ neededĀ orĀ present.
AccordingĀ toĀ aspects,Ā aĀ dynamicĀ configurationĀ ofĀ splitĀ logicalĀ functionsĀ mayĀ beĀ presentĀ withinĀ theĀ architectureĀ 200.Ā AsĀ willĀ beĀ describedĀ inĀ moreĀ detailĀ withĀ referenceĀ toĀ FIG.Ā 5,Ā theĀ RadioĀ ResourceĀ ControlĀ (RRC)Ā layer,Ā PacketĀ DataĀ ConvergenceĀ ProtocolĀ (PDCP)Ā layer,Ā RadioĀ LinkĀ ControlĀ (RLC)Ā layer,Ā MediumĀ AccessĀ ControlĀ (MAC)Ā layer,Ā andĀ aĀ PhysicalĀ (PHY)Ā layersĀ mayĀ beĀ adaptablyĀ placedĀ atĀ theĀ DUĀ orĀ CUĀ (e.g.,Ā TRPĀ orĀ ANC,Ā respectively)Ā .Ā AccordingĀ toĀ certainĀ aspects,Ā aĀ BSĀ mayĀ includeĀ aĀ centralĀ unitĀ (CU)Ā (e.g.,Ā ANCĀ 202)Ā and/orĀ oneĀ orĀ moreĀ distributedĀ unitsĀ (e.g.,Ā oneĀ orĀ moreĀ TRPsĀ 208)Ā .
FIG.Ā 3Ā illustratesĀ anĀ exampleĀ physicalĀ architectureĀ ofĀ aĀ distributedĀ RANĀ 300,Ā accordingĀ toĀ aspectsĀ ofĀ theĀ presentĀ disclosure.Ā AĀ centralizedĀ coreĀ networkĀ unitĀ (C-CU)Ā 302Ā mayĀ hostĀ coreĀ networkĀ functions.Ā TheĀ C-CUĀ mayĀ beĀ centrallyĀ deployed.Ā C-CUĀ functionalityĀ mayĀ beĀ offloadedĀ (e.g.,Ā toĀ advancedĀ wirelessĀ servicesĀ (AWS)Ā )Ā ,Ā inĀ anĀ effortĀ toĀ handleĀ peakĀ capacity.
AĀ centralizedĀ RANĀ unitĀ (C-RU)Ā 304Ā mayĀ hostĀ oneĀ orĀ moreĀ ANCĀ functions.Ā Optionally,Ā theĀ C-RUĀ mayĀ hostĀ coreĀ networkĀ functionsĀ locally.Ā TheĀ C-RUĀ mayĀ haveĀ distributedĀ deployment.Ā TheĀ C-RUĀ mayĀ beĀ closerĀ toĀ theĀ networkĀ edge.
AĀ DUĀ 306Ā mayĀ hostĀ oneĀ orĀ moreĀ TRPsĀ (edgeĀ nodeĀ (EN)Ā ,Ā anĀ edgeĀ unitĀ (EU)Ā ,Ā aĀ radioĀ headĀ (RH)Ā ,Ā aĀ smartĀ radioĀ headĀ (SRH)Ā ,Ā orĀ theĀ like)Ā .Ā TheĀ DUĀ mayĀ beĀ locatedĀ atĀ edgesĀ ofĀ theĀ networkĀ withĀ radioĀ frequencyĀ (RF)Ā functionality.
FIG.Ā 4Ā illustratesĀ exampleĀ componentsĀ ofĀ theĀ BSĀ 110Ā andĀ UEĀ 120Ā illustratedĀ inĀ FIG.Ā 1,Ā whichĀ mayĀ beĀ usedĀ toĀ implementĀ aspectsĀ ofĀ theĀ presentĀ disclosure.Ā AsĀ describedĀ above,Ā theĀ BSĀ mayĀ includeĀ aĀ TRP.Ā OneĀ orĀ moreĀ componentsĀ ofĀ theĀ BSĀ 110Ā  andĀ UEĀ 120Ā mayĀ beĀ usedĀ toĀ practiceĀ aspectsĀ ofĀ theĀ presentĀ disclosure.Ā ForĀ example,Ā antennasĀ 452,Ā Tx/RxĀ 222,Ā  processors Ā 466,Ā 458,Ā 464,Ā and/orĀ controller/processorĀ 480Ā ofĀ theĀ UEĀ 120Ā and/orĀ antennasĀ 434,Ā  processors Ā 460,Ā 420,Ā 438,Ā and/orĀ controller/processorĀ 440Ā ofĀ theĀ BSĀ 110Ā mayĀ beĀ usedĀ toĀ performĀ theĀ operationsĀ describedĀ hereinĀ andĀ illustratedĀ withĀ referenceĀ toĀ FIGs.Ā 8A,Ā 8B,Ā andĀ 9.
FIG.Ā 4Ā showsĀ aĀ blockĀ diagramĀ ofĀ aĀ designĀ ofĀ aĀ BSĀ 110Ā andĀ aĀ UEĀ 120,Ā whichĀ mayĀ beĀ oneĀ ofĀ theĀ BSsĀ andĀ oneĀ ofĀ theĀ UEsĀ inĀ FIG.Ā 1.Ā ForĀ aĀ restrictedĀ associationĀ scenario,Ā theĀ baseĀ stationĀ 110Ā mayĀ beĀ theĀ macroĀ BSĀ 110cĀ inĀ FIG.Ā 1,Ā andĀ theĀ UEĀ 120Ā mayĀ beĀ theĀ UEĀ 120y.Ā TheĀ baseĀ stationĀ 110Ā mayĀ alsoĀ beĀ aĀ baseĀ stationĀ ofĀ someĀ otherĀ type.Ā TheĀ baseĀ stationĀ 110Ā mayĀ beĀ equippedĀ withĀ antennasĀ 434aĀ throughĀ 434t,Ā andĀ theĀ UEĀ 120Ā mayĀ beĀ equippedĀ withĀ antennasĀ 452aĀ throughĀ 452r.
AtĀ theĀ baseĀ stationĀ 110,Ā aĀ transmitĀ processorĀ 420Ā mayĀ receiveĀ dataĀ fromĀ aĀ dataĀ sourceĀ 412Ā andĀ controlĀ informationĀ fromĀ aĀ controller/processorĀ 440.Ā TheĀ controlĀ informationĀ mayĀ beĀ forĀ theĀ PhysicalĀ BroadcastĀ ChannelĀ (PBCH)Ā ,Ā PhysicalĀ ControlĀ FormatĀ IndicatorĀ ChannelĀ (PCFICH)Ā ,Ā PhysicalĀ HybridĀ ARQĀ IndicatorĀ ChannelĀ (PHICH)Ā ,Ā PhysicalĀ DownlinkĀ ControlĀ ChannelĀ (PDCCH)Ā ,Ā etc.Ā TheĀ dataĀ mayĀ beĀ forĀ theĀ PhysicalĀ DownlinkĀ SharedĀ ChannelĀ (PDSCH)Ā ,Ā etc.Ā TheĀ processorĀ 420Ā mayĀ processĀ (e.g.,Ā encodeĀ andĀ symbolĀ map)Ā theĀ dataĀ andĀ controlĀ informationĀ toĀ obtainĀ dataĀ symbolsĀ andĀ controlĀ symbols,Ā respectively.Ā TheĀ processorĀ 420Ā mayĀ alsoĀ generateĀ referenceĀ symbols,Ā e.g.,Ā forĀ theĀ PSS,Ā SSS,Ā andĀ cell-specificĀ referenceĀ signal.Ā AĀ transmitĀ (TX)Ā multiple-inputĀ multiple-outputĀ (MIMO)Ā processorĀ 430Ā mayĀ performĀ spatialĀ processingĀ (e.g.,Ā precoding)Ā onĀ theĀ dataĀ symbols,Ā theĀ controlĀ symbols,Ā and/orĀ theĀ referenceĀ symbols,Ā ifĀ applicable,Ā andĀ mayĀ provideĀ outputĀ symbolĀ streamsĀ toĀ theĀ modulatorsĀ (MODs)Ā 432aĀ throughĀ 432t.Ā ForĀ example,Ā theĀ TXĀ MIMOĀ processorĀ 430Ā mayĀ performĀ certainĀ aspectsĀ describedĀ hereinĀ forĀ RSĀ multiplexing.Ā EachĀ modulatorĀ 432Ā mayĀ processĀ aĀ respectiveĀ outputĀ symbolĀ streamĀ (e.g.,Ā forĀ OFDM,Ā etc.Ā )Ā toĀ obtainĀ anĀ outputĀ sampleĀ stream.Ā EachĀ modulatorĀ 432Ā mayĀ furtherĀ processĀ (e.g.,Ā convertĀ toĀ analog,Ā amplify,Ā filter,Ā andĀ upconvert)Ā theĀ outputĀ sampleĀ streamĀ toĀ obtainĀ aĀ downlinkĀ signal.Ā DownlinkĀ signalsĀ fromĀ modulatorsĀ 432aĀ throughĀ 432tĀ mayĀ beĀ transmittedĀ viaĀ theĀ antennasĀ 434aĀ throughĀ 434t,Ā respectively.
AtĀ theĀ UEĀ 120,Ā theĀ antennasĀ 452aĀ throughĀ 452rĀ mayĀ receiveĀ theĀ downlinkĀ signalsĀ fromĀ theĀ baseĀ stationĀ 110Ā andĀ mayĀ provideĀ receivedĀ signalsĀ toĀ theĀ demodulatorsĀ  (DEMODs)Ā 454aĀ throughĀ 454r,Ā respectively.Ā EachĀ demodulatorĀ 454Ā mayĀ conditionĀ (e.g.,Ā filter,Ā amplify,Ā downconvert,Ā andĀ digitize)Ā aĀ respectiveĀ receivedĀ signalĀ toĀ obtainĀ inputĀ samples.Ā EachĀ demodulatorĀ 454Ā mayĀ furtherĀ processĀ theĀ inputĀ samplesĀ (e.g.,Ā forĀ OFDM,Ā etc.Ā )Ā toĀ obtainĀ receivedĀ symbols.Ā AĀ MIMOĀ detectorĀ 456Ā mayĀ obtainĀ receivedĀ symbolsĀ fromĀ allĀ theĀ demodulatorsĀ 454aĀ throughĀ 454r,Ā performĀ MIMOĀ detectionĀ onĀ theĀ receivedĀ symbolsĀ ifĀ applicable,Ā andĀ provideĀ detectedĀ symbols.Ā ForĀ example,Ā MIMOĀ detectorĀ 456Ā mayĀ provideĀ detectedĀ RSĀ transmittedĀ usingĀ techniquesĀ describedĀ herein.Ā AĀ receiveĀ processorĀ 458Ā mayĀ processĀ (e.g.,Ā demodulate,Ā deinterleave,Ā andĀ decode)Ā theĀ detectedĀ symbols,Ā provideĀ decodedĀ dataĀ forĀ theĀ UEĀ 120Ā toĀ aĀ dataĀ sinkĀ 460,Ā andĀ provideĀ decodedĀ controlĀ informationĀ toĀ aĀ controller/processorĀ 480.
OnĀ theĀ uplink,Ā atĀ theĀ UEĀ 120,Ā aĀ transmitĀ processorĀ 464Ā mayĀ receiveĀ andĀ processĀ dataĀ (e.g.,Ā forĀ theĀ PhysicalĀ UplinkĀ SharedĀ ChannelĀ (PUSCH)Ā )Ā fromĀ aĀ dataĀ sourceĀ 462Ā andĀ controlĀ informationĀ (e.g.,Ā forĀ theĀ PhysicalĀ UplinkĀ ControlĀ ChannelĀ (PUCCH)Ā fromĀ theĀ controller/processorĀ 480.Ā TheĀ transmitĀ processorĀ 464Ā mayĀ alsoĀ generateĀ referenceĀ symbolsĀ forĀ aĀ referenceĀ signal.Ā TheĀ symbolsĀ fromĀ theĀ transmitĀ processorĀ 464Ā mayĀ beĀ precodedĀ byĀ aĀ TXĀ MIMOĀ processorĀ 466Ā ifĀ applicable,Ā furtherĀ processedĀ byĀ theĀ demodulatorsĀ 454aĀ throughĀ 454rĀ (e.g.,Ā forĀ SC-FDM,Ā etc.Ā )Ā ,Ā andĀ transmittedĀ toĀ theĀ baseĀ stationĀ 110.Ā AtĀ theĀ BSĀ 110,Ā theĀ uplinkĀ signalsĀ fromĀ theĀ UEĀ 120Ā mayĀ beĀ receivedĀ byĀ theĀ antennasĀ 434,Ā processedĀ byĀ theĀ modulatorsĀ 432,Ā detectedĀ byĀ aĀ MIMOĀ detectorĀ 436Ā ifĀ applicable,Ā andĀ furtherĀ processedĀ byĀ aĀ receiveĀ processorĀ 438Ā toĀ obtainĀ decodedĀ dataĀ andĀ controlĀ informationĀ sentĀ byĀ theĀ UEĀ 120.Ā TheĀ receiveĀ processorĀ 438Ā mayĀ provideĀ theĀ decodedĀ dataĀ toĀ aĀ dataĀ sinkĀ 439Ā andĀ theĀ decodedĀ controlĀ informationĀ toĀ theĀ controller/processorĀ 440.
TheĀ controllers/ processors Ā 440Ā andĀ 480Ā mayĀ directĀ theĀ operationĀ atĀ theĀ baseĀ stationĀ 110Ā andĀ theĀ UEĀ 120,Ā respectively.Ā TheĀ processorĀ 440Ā and/orĀ otherĀ processorsĀ andĀ modulesĀ atĀ theĀ baseĀ stationĀ 110Ā mayĀ performĀ orĀ direct,Ā e.g.,Ā theĀ executionĀ ofĀ theĀ functionalĀ blocksĀ illustratedĀ inĀ FIGs.Ā 8A,Ā 8B,Ā andĀ 9,Ā and/orĀ otherĀ processesĀ forĀ theĀ techniquesĀ describedĀ herein.Ā TheĀ processorĀ 480Ā and/orĀ otherĀ processorsĀ andĀ modulesĀ atĀ theĀ UEĀ 120Ā mayĀ alsoĀ performĀ orĀ directĀ processesĀ forĀ theĀ techniquesĀ describedĀ herein.Ā TheĀ  memories Ā 442Ā andĀ 482Ā mayĀ storeĀ dataĀ andĀ programĀ codesĀ forĀ theĀ BSĀ 110Ā andĀ theĀ UEĀ 120,Ā respectively.Ā AĀ schedulerĀ 444Ā mayĀ scheduleĀ UEsĀ forĀ dataĀ transmissionĀ onĀ theĀ downlinkĀ and/orĀ uplink.
FIG.Ā 5Ā illustratesĀ aĀ diagramĀ 500Ā showingĀ examplesĀ forĀ implementingĀ aĀ communicationsĀ protocolĀ stack,Ā accordingĀ toĀ aspectsĀ ofĀ theĀ presentĀ disclosure.Ā TheĀ illustratedĀ communicationsĀ protocolĀ stacksĀ mayĀ beĀ implementedĀ byĀ devicesĀ operatingĀ inĀ aĀ inĀ aĀ 5GĀ systemĀ (e.g.,Ā aĀ systemĀ thatĀ supportsĀ uplink-basedĀ mobility)Ā .Ā DiagramĀ 500Ā illustratesĀ aĀ communicationsĀ protocolĀ stackĀ includingĀ aĀ RadioĀ ResourceĀ ControlĀ (RRC)Ā layerĀ 510,Ā aĀ PacketĀ DataĀ ConvergenceĀ ProtocolĀ (PDCP)Ā layerĀ 515,Ā aĀ RadioĀ LinkĀ ControlĀ (RLC)Ā layerĀ 520,Ā aĀ MediumĀ AccessĀ ControlĀ (MAC)Ā layerĀ 525,Ā andĀ aĀ PhysicalĀ (PHY)Ā layerĀ 530.Ā InĀ variousĀ examplesĀ theĀ layersĀ ofĀ aĀ protocolĀ stackĀ mayĀ beĀ implementedĀ asĀ separateĀ modulesĀ ofĀ software,Ā portionsĀ ofĀ aĀ processorĀ orĀ ASIC,Ā portionsĀ ofĀ non-collocatedĀ devicesĀ connectedĀ byĀ aĀ communicationsĀ link,Ā orĀ variousĀ combinationsĀ thereof.Ā CollocatedĀ andĀ non-collocatedĀ implementationsĀ mayĀ beĀ used,Ā forĀ example,Ā inĀ aĀ protocolĀ stackĀ forĀ aĀ networkĀ accessĀ deviceĀ (e.g.,Ā ANs,Ā CUs,Ā and/orĀ DUs)Ā orĀ aĀ UE.
AĀ firstĀ optionĀ 505-aĀ showsĀ aĀ splitĀ implementationĀ ofĀ aĀ protocolĀ stack,Ā inĀ whichĀ implementationĀ ofĀ theĀ protocolĀ stackĀ isĀ splitĀ betweenĀ aĀ centralizedĀ networkĀ accessĀ deviceĀ (e.g.,Ā anĀ ANCĀ 202Ā inĀ FIG.Ā 2)Ā andĀ distributedĀ networkĀ accessĀ deviceĀ (e.g.,Ā DUĀ 208Ā inĀ FIG.Ā 2)Ā .Ā InĀ theĀ firstĀ optionĀ 505-a,Ā anĀ RRCĀ layerĀ 510Ā andĀ aĀ PDCPĀ layerĀ 515Ā mayĀ beĀ implementedĀ byĀ theĀ centralĀ unit,Ā andĀ anĀ RLCĀ layerĀ 520,Ā aĀ MACĀ layerĀ 525,Ā andĀ aĀ PHYĀ layerĀ 530Ā mayĀ beĀ implementedĀ byĀ theĀ DU.Ā InĀ variousĀ examplesĀ theĀ CUĀ andĀ theĀ DUĀ mayĀ beĀ collocatedĀ orĀ non-collocated.Ā TheĀ firstĀ optionĀ 505-aĀ mayĀ beĀ usefulĀ inĀ aĀ macroĀ cell,Ā microĀ cell,Ā orĀ picoĀ cellĀ deployment.
AĀ secondĀ optionĀ 505-bĀ showsĀ aĀ unifiedĀ implementationĀ ofĀ aĀ protocolĀ stack,Ā inĀ whichĀ theĀ protocolĀ stackĀ isĀ implementedĀ inĀ aĀ singleĀ networkĀ accessĀ deviceĀ (e.g.,Ā accessĀ nodeĀ (AN)Ā ,Ā newĀ radioĀ baseĀ stationĀ (NRĀ BS)Ā ,Ā aĀ newĀ radioĀ Node-BĀ (NRĀ NB)Ā ,Ā aĀ networkĀ nodeĀ (NN)Ā ,Ā orĀ theĀ like.Ā )Ā .Ā InĀ theĀ secondĀ option,Ā theĀ RRCĀ layerĀ 510,Ā theĀ PDCPĀ layerĀ 515,Ā theĀ RLCĀ layerĀ 520,Ā theĀ MACĀ layerĀ 525,Ā andĀ theĀ PHYĀ layerĀ 530Ā mayĀ eachĀ beĀ implementedĀ byĀ theĀ AN.Ā TheĀ secondĀ optionĀ 505-bĀ mayĀ beĀ usefulĀ inĀ aĀ femtoĀ cellĀ deployment.
RegardlessĀ ofĀ whetherĀ aĀ networkĀ accessĀ deviceĀ implementsĀ partĀ orĀ allĀ ofĀ aĀ protocolĀ stack,Ā aĀ UEĀ mayĀ implementĀ anĀ entireĀ protocolĀ stackĀ (e.g.,Ā theĀ RRCĀ layerĀ 510,Ā theĀ PDCPĀ layerĀ 515,Ā theĀ RLCĀ layerĀ 520,Ā theĀ MACĀ layerĀ 525,Ā andĀ theĀ PHYĀ layerĀ 530)Ā .
FIG.Ā 6Ā isĀ aĀ diagramĀ 600Ā showingĀ anĀ exampleĀ ofĀ aĀ DL-centricĀ subframe.Ā TheĀ DL-centricĀ subframeĀ mayĀ includeĀ aĀ controlĀ portionĀ 602.Ā TheĀ controlĀ portionĀ 602Ā mayĀ existĀ inĀ theĀ initialĀ orĀ beginningĀ portionĀ ofĀ theĀ DL-centricĀ subframe.Ā TheĀ controlĀ portionĀ 602Ā mayĀ includeĀ variousĀ schedulingĀ informationĀ and/orĀ controlĀ informationĀ correspondingĀ toĀ variousĀ portionsĀ ofĀ theĀ DL-centricĀ subframe.Ā InĀ someĀ configurations,Ā theĀ controlĀ portionĀ 602Ā mayĀ beĀ aĀ physicalĀ DLĀ controlĀ channelĀ (PDCCH)Ā ,Ā asĀ indicatedĀ inĀ FIG.Ā 6.Ā TheĀ DL-centricĀ subframeĀ mayĀ alsoĀ includeĀ aĀ DLĀ dataĀ portionĀ 604.Ā TheĀ DLĀ dataĀ portionĀ 604Ā mayĀ sometimesĀ beĀ referredĀ toĀ asĀ theĀ payloadĀ ofĀ theĀ DL-centricĀ subframe.Ā TheĀ DLĀ dataĀ portionĀ 604Ā mayĀ includeĀ theĀ communicationĀ resourcesĀ utilizedĀ toĀ communicateĀ DLĀ dataĀ fromĀ theĀ schedulingĀ entityĀ (e.g.,Ā UEĀ orĀ BS)Ā toĀ theĀ subordinateĀ entityĀ (e.g.,Ā UE)Ā .Ā InĀ someĀ configurations,Ā theĀ DLĀ dataĀ portionĀ 604Ā mayĀ beĀ aĀ physicalĀ DLĀ sharedĀ channelĀ (PDSCH)Ā .
TheĀ DL-centricĀ subframeĀ mayĀ alsoĀ includeĀ aĀ commonĀ ULĀ portionĀ 606.Ā TheĀ commonĀ ULĀ portionĀ 606Ā mayĀ sometimesĀ beĀ referredĀ toĀ asĀ anĀ ULĀ burst,Ā aĀ commonĀ ULĀ burst,Ā and/orĀ variousĀ otherĀ suitableĀ terms.Ā TheĀ commonĀ ULĀ portionĀ 606Ā mayĀ includeĀ feedbackĀ informationĀ correspondingĀ toĀ variousĀ otherĀ portionsĀ ofĀ theĀ DL-centricĀ subframe.Ā ForĀ example,Ā theĀ commonĀ ULĀ portionĀ 606Ā mayĀ includeĀ feedbackĀ informationĀ correspondingĀ toĀ theĀ controlĀ portionĀ 602.Ā Non-limitingĀ examplesĀ ofĀ feedbackĀ informationĀ mayĀ includeĀ anĀ ACKĀ signal,Ā aĀ NACKĀ signal,Ā aĀ HARQĀ indicator,Ā and/orĀ variousĀ otherĀ suitableĀ typesĀ ofĀ information.Ā TheĀ commonĀ ULĀ portionĀ 606Ā mayĀ includeĀ additionalĀ orĀ alternativeĀ information,Ā suchĀ asĀ informationĀ pertainingĀ toĀ randomĀ accessĀ channelĀ (RACH)Ā procedures,Ā schedulingĀ requestsĀ (SRs)Ā ,Ā andĀ variousĀ otherĀ suitableĀ typesĀ ofĀ information.Ā AsĀ illustratedĀ inĀ FIG.Ā 6,Ā theĀ endĀ ofĀ theĀ DLĀ dataĀ portionĀ 604Ā mayĀ beĀ separatedĀ inĀ timeĀ fromĀ theĀ beginningĀ ofĀ theĀ commonĀ ULĀ portionĀ 606.Ā ThisĀ timeĀ separationĀ mayĀ sometimesĀ beĀ referredĀ toĀ asĀ aĀ gap,Ā aĀ guardĀ period,Ā aĀ guardĀ interval,Ā and/orĀ variousĀ otherĀ suitableĀ terms.Ā ThisĀ separationĀ providesĀ timeĀ forĀ theĀ switch-overĀ fromĀ DLĀ communicationĀ (e.g.,Ā receptionĀ operationĀ byĀ theĀ subordinateĀ entityĀ (e.g.,Ā UE)Ā )Ā toĀ ULĀ communicationĀ (e.g.,Ā transmissionĀ byĀ theĀ subordinateĀ entityĀ (e.g.,Ā UE)Ā )Ā .Ā OneĀ ofĀ ordinaryĀ skillĀ inĀ theĀ artĀ willĀ understandĀ thatĀ theĀ foregoingĀ isĀ merelyĀ oneĀ exampleĀ ofĀ aĀ DL-centricĀ subframeĀ andĀ alternativeĀ structuresĀ havingĀ similarĀ featuresĀ mayĀ existĀ withoutĀ necessarilyĀ deviatingĀ fromĀ theĀ aspectsĀ describedĀ herein.
FIG.Ā 7Ā isĀ aĀ diagramĀ 700Ā showingĀ anĀ exampleĀ ofĀ anĀ UL-centricĀ subframe.Ā TheĀ ULĀ -centricĀ subframeĀ mayĀ includeĀ aĀ controlĀ portionĀ 702.Ā TheĀ controlĀ portionĀ 702Ā mayĀ existĀ inĀ theĀ initialĀ orĀ beginningĀ portionĀ ofĀ theĀ UL-centricĀ subframe.Ā TheĀ controlĀ portionĀ 702Ā inĀ FIG.Ā 7Ā mayĀ beĀ similarĀ toĀ theĀ controlĀ portionĀ describedĀ aboveĀ withĀ referenceĀ toĀ FIG.Ā 6.Ā TheĀ UL-centricĀ subframeĀ mayĀ alsoĀ includeĀ anĀ ULĀ dataĀ portionĀ 704.Ā TheĀ ULĀ dataĀ portionĀ 704Ā mayĀ sometimesĀ beĀ referredĀ toĀ asĀ theĀ payloadĀ ofĀ theĀ UL-centricĀ subframe.Ā TheĀ ULĀ portionĀ mayĀ referĀ toĀ theĀ communicationĀ resourcesĀ utilizedĀ toĀ communicateĀ ULĀ dataĀ fromĀ theĀ subordinateĀ entityĀ (e.g.,Ā UE)Ā toĀ theĀ schedulingĀ entityĀ (e.g.,Ā UEĀ orĀ BS)Ā .Ā InĀ someĀ configurations,Ā theĀ controlĀ portionĀ 702Ā mayĀ beĀ aĀ physicalĀ DLĀ controlĀ channelĀ (PDCCH)Ā .
AsĀ illustratedĀ inĀ FIG.Ā 7,Ā theĀ endĀ ofĀ theĀ controlĀ portionĀ 702Ā mayĀ beĀ separatedĀ inĀ timeĀ fromĀ theĀ beginningĀ ofĀ theĀ ULĀ dataĀ portionĀ 704.Ā ThisĀ timeĀ separationĀ mayĀ sometimesĀ beĀ referredĀ toĀ asĀ aĀ gap,Ā guardĀ period,Ā guardĀ interval,Ā and/orĀ variousĀ otherĀ suitableĀ terms.Ā ThisĀ separationĀ providesĀ timeĀ forĀ theĀ switch-overĀ fromĀ DLĀ communicationĀ (e.g.,Ā receptionĀ operationĀ byĀ theĀ schedulingĀ entity)Ā toĀ ULĀ communicationĀ (e.g.,Ā transmissionĀ byĀ theĀ schedulingĀ entity)Ā .Ā TheĀ UL-centricĀ subframeĀ mayĀ alsoĀ includeĀ aĀ commonĀ ULĀ portionĀ 706.Ā TheĀ commonĀ ULĀ portionĀ 706Ā inĀ FIG.Ā 7Ā mayĀ beĀ similarĀ toĀ theĀ commonĀ ULĀ portionĀ 706Ā describedĀ aboveĀ withĀ referenceĀ toĀ FIG.Ā 7.Ā TheĀ commonĀ ULĀ portionĀ 706Ā mayĀ additionalĀ orĀ alternativeĀ includeĀ informationĀ pertainingĀ toĀ channelĀ qualityĀ indicatorĀ (CQI)Ā ,Ā soundingĀ referenceĀ signalsĀ (SRSs)Ā ,Ā andĀ variousĀ otherĀ suitableĀ typesĀ ofĀ information.Ā OneĀ ofĀ ordinaryĀ skillĀ inĀ theĀ artĀ willĀ understandĀ thatĀ theĀ foregoingĀ isĀ merelyĀ oneĀ exampleĀ ofĀ anĀ UL-centricĀ subframeĀ andĀ alternativeĀ structuresĀ havingĀ similarĀ featuresĀ mayĀ existĀ withoutĀ necessarilyĀ deviatingĀ fromĀ theĀ aspectsĀ describedĀ herein.
InĀ someĀ circumstances,Ā twoĀ orĀ moreĀ subordinateĀ entitiesĀ (e.g.,Ā UEs)Ā mayĀ communicateĀ withĀ eachĀ otherĀ usingĀ sidelinkĀ signals.Ā Real-worldĀ applicationsĀ ofĀ suchĀ sidelinkĀ communicationsĀ mayĀ includeĀ publicĀ safety,Ā proximityĀ services,Ā UE-to-networkĀ relaying,Ā vehicle-to-vehicleĀ (V2V)Ā communications,Ā InternetĀ ofĀ EverythingĀ (IoE)Ā communications,Ā IoTĀ communications,Ā mission-criticalĀ mesh,Ā and/orĀ variousĀ otherĀ suitableĀ applications.Ā Generally,Ā aĀ sidelinkĀ signalĀ mayĀ referĀ toĀ aĀ signalĀ communicatedĀ fromĀ oneĀ subordinateĀ entityĀ (e.g.,Ā UE1)Ā toĀ anotherĀ subordinateĀ entityĀ (e.g.,Ā UE2)Ā withoutĀ relayingĀ thatĀ communicationĀ throughĀ theĀ schedulingĀ entityĀ (e.g.,Ā UEĀ orĀ BS)Ā ,Ā  evenĀ thoughĀ theĀ schedulingĀ entityĀ mayĀ beĀ utilizedĀ forĀ schedulingĀ and/orĀ controlĀ purposes.Ā InĀ someĀ examples,Ā theĀ sidelinkĀ signalsĀ mayĀ beĀ communicatedĀ usingĀ aĀ licensedĀ spectrumĀ (unlikeĀ wirelessĀ localĀ areaĀ networks,Ā whichĀ typicallyĀ useĀ anĀ unlicensedĀ spectrum)Ā .
AĀ UEĀ mayĀ operateĀ inĀ variousĀ radioĀ resourceĀ configurations,Ā includingĀ aĀ configurationĀ associatedĀ withĀ transmittingĀ pilotsĀ usingĀ aĀ dedicatedĀ setĀ ofĀ resourcesĀ (e.g.,Ā aĀ radioĀ resourceĀ controlĀ (RRC)Ā dedicatedĀ state,Ā etc.Ā )Ā orĀ aĀ configurationĀ associatedĀ withĀ transmittingĀ pilotsĀ usingĀ aĀ commonĀ setĀ ofĀ resourcesĀ (e.g.,Ā anĀ RRCĀ commonĀ state,Ā etc.Ā )Ā .Ā WhenĀ operatingĀ inĀ theĀ RRCĀ dedicatedĀ state,Ā theĀ UEĀ mayĀ selectĀ aĀ dedicatedĀ setĀ ofĀ resourcesĀ forĀ transmittingĀ aĀ pilotĀ signalĀ toĀ aĀ network.Ā WhenĀ operatingĀ inĀ theĀ RRCĀ commonĀ state,Ā theĀ UEĀ mayĀ selectĀ aĀ commonĀ setĀ ofĀ resourcesĀ forĀ transmittingĀ aĀ pilotĀ signalĀ toĀ theĀ network.Ā InĀ eitherĀ case,Ā aĀ pilotĀ signalĀ transmittedĀ byĀ theĀ UEĀ mayĀ beĀ receivedĀ byĀ oneĀ orĀ moreĀ networkĀ accessĀ devices,Ā suchĀ asĀ anĀ AN,Ā orĀ aĀ DU,Ā orĀ portionsĀ thereof.Ā EachĀ receivingĀ networkĀ accessĀ deviceĀ mayĀ beĀ configuredĀ toĀ receiveĀ andĀ measureĀ pilotĀ signalsĀ transmittedĀ onĀ theĀ commonĀ setĀ ofĀ resources,Ā andĀ alsoĀ receiveĀ andĀ measureĀ pilotĀ signalsĀ transmittedĀ onĀ dedicatedĀ setsĀ ofĀ resourcesĀ allocatedĀ toĀ theĀ UEsĀ forĀ whichĀ theĀ networkĀ accessĀ deviceĀ isĀ aĀ memberĀ ofĀ aĀ monitoringĀ setĀ ofĀ networkĀ accessĀ devicesĀ forĀ theĀ UE.Ā OneĀ orĀ moreĀ ofĀ theĀ receivingĀ networkĀ accessĀ devices,Ā orĀ aĀ CUĀ toĀ whichĀ receivingĀ networkĀ accessĀ deviceĀ (s)Ā transmitĀ theĀ measurementsĀ ofĀ theĀ pilotĀ signals,Ā mayĀ useĀ theĀ measurementsĀ toĀ identifyĀ servingĀ cellsĀ forĀ theĀ UEs,Ā orĀ toĀ initiateĀ aĀ changeĀ ofĀ servingĀ cellĀ forĀ oneĀ orĀ moreĀ ofĀ theĀ UEs.
EXAMPLEĀ TECHNIQUESĀ FORĀ TRANSMITTINGĀ SOUNDINGĀ REFERENCEĀ SIGNALS
InĀ communicationsĀ systemsĀ operatingĀ accordingĀ toĀ LTEĀ standards,Ā aĀ discreteĀ FourierĀ transformĀ spreadĀ orthogonalĀ frequencyĀ divisionĀ multiplexingĀ (DFT-S-OFDM)Ā basedĀ waveformĀ isĀ usedĀ forĀ transmissionĀ ofĀ ULĀ physicalĀ channelsĀ (e.g.,Ā PUSCHs)Ā andĀ signals,Ā suchĀ asĀ ULĀ demodulationĀ referenceĀ signalsĀ (DMRS)Ā andĀ soundingĀ referenceĀ signalsĀ (SRS)Ā .
SRSĀ areĀ transmittedĀ usingĀ anĀ interleavedĀ frequencyĀ divisionĀ multipleĀ accessĀ (IFDMA)Ā waveform,Ā whichĀ isĀ aĀ specialĀ DFT-S-OFDMĀ waveform.
NRĀ supportsĀ DFT-S-OFDMĀ basedĀ waveformĀ andĀ CP-OFDMĀ waveformĀ forĀ uplinkĀ transmissions,Ā atĀ leastĀ forĀ eMBBĀ uplinkĀ transmissionsĀ onĀ bandwidthsĀ ofĀ upĀ toĀ 40Ā GHz.
AccordingĀ toĀ aspectsĀ ofĀ theĀ presentĀ disclosure,Ā aĀ CP-OFDMĀ waveformĀ mayĀ beĀ usedĀ forĀ uplinkĀ single-streamĀ andĀ multi-streamĀ (e.g.,Ā MIMO)Ā transmissions.
WhileĀ CP-OFDMĀ mayĀ beĀ usedĀ forĀ allĀ uplinkĀ transmissions,Ā inĀ wirelessĀ communicationsĀ systemsĀ operatingĀ accordingĀ toĀ NRĀ technologies,Ā aĀ DFT-S-OFDMĀ basedĀ waveformĀ mayĀ beĀ usedĀ forĀ singleĀ streamĀ transmissionsĀ inĀ whichĀ communicationsĀ fromĀ aĀ UEĀ areĀ limitedĀ byĀ aĀ linkĀ budgetĀ forĀ theĀ UE.Ā ThatĀ is,Ā aĀ UEĀ thatĀ isĀ experiencingĀ poorĀ linkĀ conditions,Ā forĀ example,Ā dueĀ toĀ interferenceĀ orĀ longĀ distanceĀ toĀ aĀ BS,Ā mayĀ useĀ DFT-S-OFDMĀ basedĀ waveformsĀ forĀ transmittingĀ toĀ theĀ BSĀ toĀ improveĀ theĀ signalĀ strengthĀ receivedĀ byĀ theĀ BS.
AccordingĀ toĀ aspectsĀ ofĀ theĀ presentĀ disclosure,Ā aĀ networkĀ (e.g.,Ā aĀ networkĀ entity,Ā suchĀ asĀ aĀ BS)Ā mayĀ decideĀ andĀ communicateĀ toĀ aĀ UEĀ whichĀ oneĀ ofĀ CP-OFDMĀ andĀ DFT-S-OFDMĀ basedĀ waveformsĀ theĀ UEĀ shouldĀ useĀ whenĀ transmittingĀ (e.g.,Ā transmittingĀ SRS)Ā toĀ theĀ network.Ā InĀ oneĀ example,Ā UEsĀ supportĀ bothĀ CP-OFDMĀ andĀ DFT-S-OFDMĀ basedĀ waveforms.
AccordingĀ toĀ aspectsĀ ofĀ theĀ presentĀ disclosure,Ā SRSĀ transmissionĀ usingĀ aĀ DFT-S-OFDMĀ basedĀ waveformĀ mayĀ beĀ lessĀ efficientĀ inĀ resourceĀ utilizationĀ thanĀ SRSĀ transmissionĀ usingĀ aĀ CP-OFDMĀ basedĀ waveform.Ā WhenĀ SRSĀ areĀ transmittedĀ usingĀ aĀ DFT-S-OFDMĀ waveform,Ā theĀ wholeĀ DFT-S-OFDMĀ symbolĀ hasĀ toĀ beĀ reservedĀ forĀ SRSĀ andĀ cannotĀ beĀ multiplexedĀ withĀ PUSCH,Ā inĀ orderĀ toĀ preserveĀ theĀ singleĀ carrierĀ propertyĀ ofĀ theĀ uplinkĀ transmission.
AccordingĀ toĀ aspectsĀ ofĀ theĀ presentĀ disclosure,Ā whenĀ SRSĀ areĀ transmittedĀ usingĀ aĀ CP-OFDMĀ waveform,Ā frequencyĀ multiplexingĀ ofĀ SRSĀ andĀ physicalĀ uplinkĀ sharedĀ channelĀ (PUSCH)Ā isĀ allowedĀ byĀ usingĀ aĀ structureĀ similarĀ toĀ aĀ channelĀ stateĀ informationĀ referenceĀ signalĀ (CSI-RS)Ā structure,Ā whereinĀ multipleĀ portsĀ areĀ multiplexedĀ inĀ frequencyĀ and/orĀ inĀ codeĀ (e.g.,Ā FDMĀ and/orĀ CDM)Ā toĀ transmitĀ SRSĀ andĀ aĀ PUSCHĀ mayĀ beĀ mappedĀ toĀ resourceĀ elementsĀ (REs)Ā thatĀ areĀ notĀ occupiedĀ byĀ theĀ SRS.
InĀ aspectsĀ ofĀ theĀ presentĀ disclosure,Ā aĀ CP-OFDMĀ waveformĀ mayĀ allowĀ aĀ UEĀ toĀ useĀ subbandĀ precodingĀ inĀ anĀ SRSĀ transmission.Ā DCIĀ signalsĀ mayĀ beĀ usedĀ toĀ allocateĀ  resourcesĀ toĀ theĀ UE.Ā ForĀ example,Ā aĀ DCIĀ mayĀ beĀ usedĀ byĀ theĀ UEĀ toĀ scheduleĀ DLĀ resourcesĀ onĀ theĀ PDSCHĀ andĀ ULĀ resourcesĀ onĀ theĀ PUSCH.Ā InĀ oneĀ example,Ā subband-wiseĀ precodedĀ SRSĀ mayĀ beĀ usedĀ forĀ frequency-selectiveĀ precodingĀ inĀ ULĀ withĀ aĀ smallĀ amountĀ ofĀ overheadĀ inĀ DCIs.Ā TheĀ smallĀ amountĀ ofĀ overheadĀ inĀ DCIsĀ mayĀ includeĀ aĀ fewĀ (e.g.,Ā two)Ā bitsĀ inĀ ULĀ grantsĀ (e.g.,Ā inĀ theĀ DCIsĀ grantingĀ theĀ ULĀ grants)Ā toĀ indicateĀ whichĀ precodedĀ SRSĀ portsĀ aĀ UEĀ shouldĀ useĀ inĀ transmittingĀ theĀ subband-wiseĀ precodedĀ SRS.Ā TheĀ networkĀ mayĀ configureĀ aĀ UEĀ toĀ transmitĀ SRSĀ usingĀ oneĀ ofĀ aĀ CP-OFDMĀ andĀ aĀ DFT-S-OFDMĀ basedĀ waveform.
FIG.Ā 8AĀ illustratesĀ exampleĀ operationsĀ 800Ā forĀ wirelessĀ communications,Ā accordingĀ toĀ aspectsĀ ofĀ theĀ presentĀ disclosure.Ā OperationsĀ 800Ā mayĀ beĀ performedĀ byĀ aĀ UE,Ā forĀ example,Ā UEĀ 120,Ā shownĀ inĀ FIG.Ā 1.
OperationsĀ 800Ā begin,Ā atĀ blockĀ 802,Ā withĀ theĀ UEĀ determiningĀ whetherĀ toĀ transmitĀ aĀ soundingĀ referenceĀ signalĀ (SRS)Ā usingĀ aĀ discreteĀ FourierĀ transformĀ (DFT)Ā spreadĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (DFT-S-OFDM)Ā waveformĀ orĀ aĀ cyclicĀ prefixĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (CP-OFDM)Ā waveform.Ā ForĀ example,Ā UEĀ 120,Ā shownĀ inĀ FIG.Ā 1,Ā mayĀ determineĀ toĀ transmitĀ anĀ SRSĀ usingĀ aĀ DFT-S-OFDMĀ waveform.
AtĀ blockĀ 804,Ā operationsĀ 800Ā continueĀ withĀ theĀ UEĀ transmittingĀ theĀ SRSĀ usingĀ theĀ determinedĀ waveform.Ā ContinuingĀ theĀ exampleĀ fromĀ above,Ā theĀ UEĀ 120Ā mayĀ transmitĀ anĀ SRSĀ usingĀ aĀ DFT-S-OFDMĀ waveform.
FIG.Ā 8BĀ illustratesĀ exampleĀ operationsĀ 805Ā forĀ wirelessĀ communications,Ā accordingĀ toĀ aspectsĀ ofĀ theĀ presentĀ disclosure.Ā OperationsĀ 805Ā mayĀ beĀ performedĀ byĀ aĀ UE,Ā forĀ example,Ā UEĀ 120,Ā shownĀ inĀ FIG.Ā 1.
OperationsĀ 805Ā begin,Ā atĀ blockĀ 806,Ā withĀ theĀ UEĀ receivingĀ anĀ indicationĀ ofĀ whetherĀ toĀ transmitĀ aĀ soundingĀ referenceĀ signalĀ (SRS)Ā usingĀ aĀ discreteĀ FourierĀ transformĀ (DFT)Ā spreadĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (DFT-S-OFDM)Ā waveformĀ orĀ aĀ cyclicĀ prefixĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (CP-OFDM)Ā waveform.Ā ForĀ example,Ā UEĀ 120,Ā shownĀ inĀ FIG.Ā 1,Ā receivesĀ anĀ indicationĀ toĀ transmitĀ anĀ SRSĀ usingĀ aĀ DFT-S-OFDMĀ waveform.
AtĀ blockĀ 808,Ā operationsĀ 805Ā continueĀ withĀ theĀ UEĀ transmittingĀ theĀ SRSĀ usingĀ theĀ determinedĀ waveform.Ā ContinuingĀ theĀ exampleĀ fromĀ above,Ā theĀ UEĀ 120Ā transmitsĀ anĀ SRSĀ usingĀ aĀ DFT-S-OFDMĀ waveform.
FIG.Ā 9Ā illustratesĀ exampleĀ operationsĀ 900Ā forĀ wirelessĀ communications,Ā inĀ accordanceĀ withĀ aspectsĀ ofĀ theĀ presentĀ disclosure.Ā OperationsĀ 900Ā mayĀ beĀ performedĀ byĀ aĀ BS,Ā forĀ example,Ā BSĀ 110,Ā shownĀ inĀ FIG.Ā 1.Ā OperationsĀ 900Ā mayĀ beĀ complementaryĀ toĀ operationsĀ 805,Ā describedĀ aboveĀ withĀ referenceĀ toĀ FIG.Ā 8B.
OperationsĀ 900Ā begin,Ā atĀ blockĀ 902,Ā withĀ theĀ BSĀ determiningĀ whetherĀ aĀ userĀ equipmentĀ (UE)Ā isĀ toĀ transmitĀ aĀ soundingĀ referenceĀ signalĀ (SRS)Ā usingĀ aĀ discreteĀ FourierĀ transformĀ (DFT)Ā spreadĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (DFT-S-OFDM)Ā waveformĀ orĀ aĀ cyclicĀ prefixĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (CP-OFDM)Ā waveform.Ā ForĀ example,Ā BSĀ 110,Ā shownĀ inĀ FIG.Ā 1,Ā determinesĀ thatĀ UEĀ 120Ā isĀ toĀ transmitĀ anĀ SRSĀ usingĀ aĀ DFT-S-OFDMĀ waveform.
AtĀ blockĀ 904,Ā operationsĀ 900Ā continueĀ withĀ theĀ BSĀ sendingĀ anĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ toĀ theĀ UE.Ā ContinuingĀ theĀ exampleĀ fromĀ above,Ā BSĀ 110Ā sendsĀ anĀ indicationĀ ofĀ theĀ DFT-S-OFDMĀ waveformĀ toĀ UEĀ 120.
OperationsĀ 900Ā continueĀ atĀ blockĀ 906Ā withĀ theĀ BSĀ processingĀ theĀ SRS,Ā basedĀ onĀ theĀ determinedĀ waveform.Ā StillĀ inĀ theĀ exampleĀ fromĀ above,Ā BSĀ 110Ā processesĀ theĀ SRSĀ basedĀ onĀ theĀ DFT-S-OFDMĀ waveformĀ (determinedĀ inĀ blockĀ 902)Ā .
DifferentĀ SRSĀ waveformsĀ canĀ beĀ multiplexedĀ inĀ frequencyĀ inĀ oneĀ RB.Ā AccordingĀ toĀ aspectsĀ ofĀ theĀ presentĀ disclosure,Ā aĀ UEĀ canĀ beĀ configuredĀ withĀ (e.g.,Ā programmedĀ toĀ transmit)Ā oneĀ orĀ moreĀ waveformsĀ forĀ SRSĀ transmission.Ā AtĀ leastĀ oneĀ ofĀ theĀ oneĀ orĀ moreĀ waveformsĀ isĀ aĀ DFT-S-OFDMĀ basedĀ waveformĀ (e.g.,Ā similarĀ toĀ theĀ SRSĀ waveformĀ usedĀ byĀ UEsĀ operatingĀ inĀ anĀ LTEĀ system)Ā .Ā AnotherĀ waveformĀ mayĀ beĀ aĀ CP-OFDMĀ waveformĀ (e.g.,Ā similarĀ toĀ DLĀ DMRSĀ waveformĀ usedĀ byĀ BSsĀ inĀ anĀ LTEĀ system)Ā .
FIG.Ā 10Ā illustratesĀ aĀ techniqueĀ 1000Ā forĀ multiplexingĀ SRSsĀ usingĀ differentĀ waveformsĀ inĀ frequency.Ā TheĀ SRSĀ mayĀ haveĀ aĀ combĀ structureĀ inĀ theĀ frequencyĀ domain,Ā andĀ aĀ UEĀ mayĀ transmitĀ theĀ SRSĀ onĀ oneĀ ofĀ theĀ combs.Ā AsĀ illustratedĀ inĀ  frequencyĀ bands Ā 1010Ā andĀ 1020,Ā UEsĀ 1Ā andĀ 2Ā (e.g.,Ā twoĀ ofĀ theĀ UEsĀ 120Ā shownĀ inĀ FIG.Ā 1)Ā mayĀ useĀ DFT-S-OFDMĀ basedĀ waveformĀ (s)Ā toĀ transmitĀ theirĀ SRSsĀ onĀ  combs Ā 0Ā andĀ 1Ā ofĀ aĀ bandwidth,Ā  respectfully.Ā TheĀ variousĀ SRSĀ portsĀ forĀ eachĀ ofĀ theĀ  UEs Ā 1Ā andĀ 2Ā mayĀ beĀ multiplexedĀ onĀ aĀ sameĀ combĀ forĀ eachĀ UEĀ byĀ usingĀ differentĀ cyclicĀ shiftsĀ forĀ eachĀ ofĀ theĀ SRSĀ ports.Ā UEĀ 3Ā (e.g.,Ā anotherĀ UEĀ 120Ā shownĀ inĀ FIG.Ā 1)Ā mayĀ useĀ aĀ CP-OFDMĀ basedĀ waveformĀ toĀ transmitĀ SRSĀ onĀ  combs Ā 2Ā andĀ 3,Ā asĀ illustratedĀ inĀ frequencyĀ bandĀ 1030.Ā TwoĀ SRSĀ portsĀ mayĀ beĀ multiplexedĀ inĀ frequencyĀ domainĀ usingĀ aĀ size-2Ā orthogonalĀ coverĀ code.
FIG.Ā 11Ā illustratesĀ aĀ techniqueĀ 1100Ā forĀ transmittingĀ anĀ SRS,Ā inĀ accordanceĀ withĀ aspectsĀ ofĀ theĀ presentĀ disclosure.Ā TheĀ waveformĀ selectedĀ mayĀ dependĀ onĀ otherĀ ULĀ physicalĀ channels/signals.Ā TheĀ waveformĀ forĀ SRSĀ transmission,Ā byĀ aĀ UE,Ā inĀ aĀ slotĀ and/orĀ bandwidthĀ partĀ (i.e.,Ā aĀ partialĀ band)Ā mayĀ beĀ associatedĀ withĀ theĀ waveformĀ usedĀ forĀ theĀ transmissionĀ ofĀ ULĀ physicalĀ channelsĀ and/orĀ signalsĀ byĀ theĀ UEĀ inĀ theĀ sameĀ slotĀ and/orĀ bandwidthĀ part.Ā ForĀ example,Ā ifĀ aĀ UEĀ isĀ configuredĀ and/orĀ indicatedĀ toĀ transmitĀ aĀ PUSCHĀ 1112Ā usingĀ aĀ DFT-S-OFDMĀ basedĀ waveformĀ inĀ aĀ slotĀ and/orĀ bandwidthĀ part,Ā theĀ UEĀ usesĀ aĀ DFT-S-OFDMĀ basedĀ waveformĀ toĀ transmitĀ anĀ SRSĀ 1114Ā inĀ theĀ sameĀ slotĀ and/orĀ bandwidthĀ part,Ā asĀ illustratedĀ atĀ 1110.Ā InĀ anotherĀ example,Ā ifĀ aĀ UEĀ isĀ configuredĀ and/orĀ indicatedĀ toĀ transmitĀ aĀ PUSCHĀ 1122Ā usingĀ aĀ CP-OFDMĀ waveformĀ inĀ aĀ slotĀ and/orĀ bandwidthĀ part,Ā theĀ UEĀ usesĀ aĀ CP-OFDMĀ waveformĀ toĀ transmitĀ anĀ SRSĀ 1124Ā inĀ theĀ sameĀ slotĀ and/orĀ bandwidthĀ part,Ā asĀ illustratedĀ atĀ 1120.
InĀ aspectsĀ ofĀ theĀ presentĀ disclosure,Ā theĀ waveformĀ forĀ SRSĀ transmissionĀ byĀ aĀ UEĀ inĀ aĀ slotĀ and/orĀ bandwidthĀ partĀ (i.e.,Ā aĀ partialĀ band)Ā mayĀ beĀ associatedĀ withĀ theĀ numberĀ ofĀ portsĀ toĀ beĀ soundedĀ inĀ thatĀ slotĀ and/orĀ bandwidthĀ part.Ā ForĀ example,Ā ifĀ aĀ UEĀ isĀ configuredĀ and/orĀ indicatedĀ toĀ transmitĀ aĀ singleĀ portĀ SRS,Ā theĀ UEĀ mayĀ useĀ aĀ DFT-S-OFDMĀ basedĀ waveform,Ā whileĀ ifĀ theĀ UEĀ isĀ configuredĀ and/orĀ indicatedĀ toĀ transmitĀ SRSĀ usingĀ twoĀ orĀ moreĀ antennaĀ ports,Ā theĀ UEĀ mayĀ useĀ aĀ CP-OFDMĀ waveform.
AccordingĀ toĀ aspectsĀ ofĀ theĀ presentĀ disclosure,Ā ifĀ aĀ UEĀ isĀ configuredĀ and/orĀ indicatedĀ toĀ transmitĀ anĀ N-portĀ SRS,Ā theĀ UEĀ mayĀ determineĀ toĀ useĀ aĀ DFT-S-OFDMĀ basedĀ waveformĀ whenĀ NĀ <Ā X,Ā orĀ aĀ CP-OFDMĀ waveformĀ shallĀ beĀ usedĀ whenĀ NĀ >=Ā X.Ā TheĀ UEĀ mayĀ beĀ configuredĀ withĀ aĀ valueĀ ofĀ XĀ viaĀ aĀ signalĀ (e.g.,Ā RRCĀ signaling)Ā and/orĀ viaĀ aĀ fieldĀ inĀ theĀ signalĀ triggeringĀ theĀ UEĀ toĀ transmitĀ theĀ N-portĀ SRS.
FIG.Ā 12Ā illustratesĀ aĀ techniqueĀ 1200Ā forĀ determiningĀ aĀ waveformĀ forĀ transmittingĀ anĀ SRS,Ā inĀ accordanceĀ withĀ aspectsĀ ofĀ theĀ presentĀ disclosure.Ā TheĀ waveformĀ forĀ SRSĀ transmissionĀ mayĀ beĀ determinedĀ basedĀ onĀ whetherĀ theĀ SRSĀ isĀ transmittedĀ onĀ aĀ singleĀ orĀ multipleĀ componentĀ carriersĀ (CCs)Ā .Ā ForĀ non-simultaneousĀ  sounding,Ā e.g.,Ā anĀ SRSĀ isĀ toĀ beĀ transmittedĀ onĀ onlyĀ oneĀ CCĀ inĀ aĀ slot,Ā oneĀ ofĀ CP-OFDMĀ andĀ DFT-S-FDMAĀ basedĀ waveformsĀ canĀ beĀ usedĀ forĀ oneĀ CC,Ā andĀ differentĀ waveformsĀ canĀ beĀ configuredĀ forĀ differentĀ CCs.Ā ForĀ example,Ā aĀ CP-OFDMĀ waveformĀ mayĀ beĀ usedĀ forĀ SRSĀ transmissionĀ onĀ oneĀ CC,Ā asĀ shownĀ atĀ 1210,Ā andĀ aĀ DFT-S-OFDMĀ waveformĀ mayĀ beĀ usedĀ onĀ anotherĀ CC,Ā asĀ shownĀ atĀ 1220.
FIG.Ā 13Ā illustratesĀ aĀ techniqueĀ 1300Ā forĀ determiningĀ aĀ waveformĀ forĀ transmittingĀ anĀ SRS,Ā inĀ accordanceĀ withĀ aspectsĀ ofĀ theĀ presentĀ disclosure.Ā ForĀ simultaneousĀ sounding,Ā e.g.,Ā anĀ SRSĀ isĀ toĀ beĀ transmittedĀ onĀ multipleĀ CCsĀ inĀ aĀ slot,Ā aĀ DFT-S-OFDMĀ basedĀ waveformĀ mayĀ beĀ usedĀ forĀ SRSĀ transmissionĀ onĀ multipleĀ CCs,Ā asĀ shownĀ atĀ 1310.
AccordingĀ toĀ aspectsĀ ofĀ theĀ presentĀ disclosure,Ā aĀ UEĀ mayĀ determineĀ aĀ waveformĀ toĀ useĀ inĀ transmittingĀ anĀ SRSĀ basedĀ onĀ aĀ numberĀ ofĀ CCs,Ā N,Ā associatedĀ withĀ aĀ singleĀ RFĀ chainĀ ofĀ theĀ UE.Ā ForĀ example,Ā theĀ UEĀ mayĀ useĀ aĀ DFT-S-OFDMĀ basedĀ waveformĀ toĀ transmitĀ theĀ SRSĀ ifĀ NĀ <Ā X;Ā otherwise,Ā theĀ UEĀ mayĀ useĀ aĀ CP-OFDMĀ waveform.Ā TheĀ valueĀ ofĀ XĀ mayĀ beĀ determinedĀ byĀ theĀ UEĀ accordingĀ toĀ aĀ networkingĀ standardĀ and/orĀ configuredĀ byĀ theĀ networkĀ (e.g.,Ā sendĀ toĀ theĀ UEĀ inĀ anĀ RRCĀ signalĀ fromĀ aĀ BS)Ā .
InĀ aspectsĀ ofĀ theĀ presentĀ disclosure,Ā aĀ UEĀ mayĀ beĀ configuredĀ toĀ useĀ differentĀ waveformsĀ forĀ SRSĀ transmissionĀ onĀ differentĀ subbandĀ setsĀ (i.e.,Ā bandwidthĀ partsĀ orĀ partialĀ bands)Ā .Ā ForĀ example,Ā whenĀ aĀ UEĀ isĀ configuredĀ withĀ twoĀ bandwidthĀ parts,Ā theĀ UEĀ mayĀ transmitĀ SRSĀ onĀ oneĀ bandwidthĀ partĀ usingĀ aĀ DFT-S-OFDMĀ basedĀ waveform,Ā andĀ onĀ anotherĀ bandwidthĀ partĀ usingĀ aĀ CP-OFDMĀ waveform.
FIG.Ā 14Ā illustratesĀ aĀ techniqueĀ 1400Ā forĀ determiningĀ aĀ waveformĀ forĀ transmittingĀ anĀ SRS,Ā inĀ accordanceĀ withĀ aspectsĀ ofĀ theĀ presentĀ disclosure.Ā InĀ aspectsĀ ofĀ theĀ presentĀ disclosure,Ā aĀ UEĀ mayĀ beĀ configuredĀ withĀ differentĀ waveformsĀ forĀ SRSĀ transmissionĀ onĀ differentĀ slotĀ setsĀ (e.g.,Ā subframeĀ sets)Ā .Ā ForĀ example,Ā aĀ UEĀ mayĀ beĀ configuredĀ withĀ twoĀ slotĀ sets,Ā 1410Ā andĀ 1420.Ā InĀ theĀ example,Ā theĀ UEĀ mayĀ transmitĀ anĀ SRSĀ usingĀ aĀ DFT-S-OFDMĀ basedĀ waveformĀ inĀ slotsĀ inĀ theĀ 1stĀ slotĀ setĀ 1410,Ā andĀ usingĀ aĀ CP-OFDMĀ waveformĀ inĀ slotsĀ inĀ theĀ 2ndĀ slotĀ setĀ 1420.
AccordingĀ toĀ aspectsĀ ofĀ theĀ presentĀ disclosure,Ā aĀ UEĀ mayĀ determineĀ aĀ waveformĀ forĀ SRSĀ transmissionĀ basedĀ onĀ aĀ configurationĀ thatĀ isĀ independentĀ fromĀ otherĀ  ULĀ physicalĀ channelsĀ orĀ signalsĀ viaĀ L1,Ā L2,Ā and/orĀ higher-layerĀ signaling.Ā OnĀ receivingĀ theĀ signaling,Ā theĀ UEĀ mayĀ startĀ toĀ useĀ theĀ indicatedĀ waveformĀ forĀ SRSĀ transmissionĀ inĀ aĀ nextĀ SRSĀ transmissionĀ instance.Ā ForĀ example,Ā aĀ waveformĀ toĀ beĀ usedĀ forĀ anĀ SRSĀ canĀ beĀ dynamicallyĀ indicatedĀ byĀ L1Ā signalingĀ (e.g.,Ā oneĀ orĀ moreĀ bitsĀ inĀ aĀ DCIĀ mayĀ indicateĀ oneĀ ofĀ theĀ configuredĀ waveformsĀ toĀ aĀ UE)Ā .Ā InĀ anotherĀ example,Ā theĀ waveformĀ toĀ useĀ forĀ SRSĀ mayĀ beĀ semi-persistentlyĀ configuredĀ byĀ L1Ā signalingĀ (e.g.,Ā inĀ DCI)Ā orĀ L2Ā signalingĀ (e.g.,Ā inĀ aĀ mediumĀ accessĀ controlĀ (MAC)Ā controlĀ elementĀ (CE)Ā )Ā .Ā InĀ yetĀ anotherĀ example,Ā theĀ waveformĀ canĀ beĀ semi-staticallyĀ indicatedĀ and/orĀ configuredĀ byĀ higher-layerĀ signalingĀ (e.g.,Ā RRCĀ signaling)Ā .
In aspects of the present disclosure, the transmit power for SRS can be either waveform dependent or waveform independent. That is, a UE may determine transmit power for an SRS to be transmitted using a same set of open-loop power control (OLPC) parameters or separate OLPC parameters for CP-OFDM waveform SRS and DFT-S-OFDM waveform SRS. The OLPC parameters may include a UE transmit power (P CMAX) , an SRS power offset (P SRS_OFFSET) , and a path loss compensation component (α) .
IfĀ theĀ UEĀ determinesĀ transmitĀ powerĀ forĀ anĀ SRSĀ independentĀ ofĀ theĀ typeĀ ofĀ waveformĀ toĀ beĀ usedĀ forĀ thatĀ SRS,Ā thenĀ theĀ UEĀ mayĀ configureĀ oneĀ setĀ ofĀ OLPCĀ parametersĀ forĀ SRSĀ regardlessĀ ofĀ whetherĀ CP-OFDMĀ orĀ DFT-S-OFDMĀ basedĀ waveformĀ isĀ used.
IfĀ theĀ UEĀ determinesĀ transmitĀ powerĀ forĀ anĀ SRSĀ dependingĀ onĀ theĀ typeĀ ofĀ waveformĀ toĀ beĀ usedĀ forĀ thatĀ SRS,Ā thenĀ theĀ UEĀ mayĀ configureĀ twoĀ setsĀ ofĀ OLPCĀ parameters,Ā withĀ aĀ firstĀ setĀ forĀ useĀ whenĀ theĀ UEĀ isĀ transmittingĀ SRSĀ usingĀ aĀ DFT-S-OFDMĀ waveformĀ andĀ aĀ secondĀ setĀ forĀ useĀ whenĀ theĀ UEĀ isĀ transmittingĀ SRSĀ usingĀ aĀ CP-OFDMĀ waveform.
SimilarlyĀ toĀ theĀ OLPCĀ parametersĀ discussedĀ above,Ā aĀ UEĀ mayĀ beĀ configuredĀ toĀ useĀ aĀ sameĀ orĀ separateĀ close-loopĀ powerĀ controlĀ (CLPC)Ā processesĀ andĀ commandsĀ forĀ transmittingĀ SRS.Ā EachĀ typeĀ ofĀ waveformĀ (e.g.,Ā CP-OFDMĀ andĀ DFT-S-OFDM)Ā mayĀ haveĀ itsĀ ownĀ powerĀ controlĀ adjustmentĀ state.Ā AĀ transmitĀ powerĀ controlĀ (TPC)Ā commandĀ receivedĀ fromĀ aĀ BSĀ mayĀ beĀ explicitlyĀ associatedĀ withĀ aĀ waveform.Ā ForĀ example,Ā CRCĀ parityĀ bitsĀ inĀ aĀ transmissionĀ fromĀ aĀ BSĀ mayĀ beĀ scrambledĀ withĀ oneĀ ofĀ twoĀ radioĀ networkĀ temporaryĀ identifiersĀ (RNTIs)Ā forĀ TPC,Ā withĀ oneĀ RNTIĀ usedĀ toĀ indicateĀ theĀ TPCĀ isĀ  intendedĀ forĀ SRSĀ usingĀ CP-OFDMĀ waveformĀ andĀ theĀ otherĀ RNTIĀ usedĀ toĀ indicateĀ theĀ TPCĀ isĀ intendedĀ forĀ SRSĀ usingĀ aĀ DFT-S-OFDMĀ waveform.Ā AĀ TPCĀ commandĀ mayĀ beĀ implicitlyĀ associatedĀ withĀ aĀ waveform.Ā ForĀ example,Ā ifĀ aĀ TPCĀ isĀ issuedĀ inĀ anĀ UL-centricĀ slotĀ andĀ aĀ PUSCHĀ isĀ scheduledĀ forĀ theĀ UE,Ā theĀ UEĀ mayĀ assumeĀ thatĀ it’sĀ forĀ theĀ SRSĀ usingĀ theĀ waveformĀ asĀ sameĀ asĀ thatĀ forĀ theĀ PUSCHĀ transmission.
TheĀ methodsĀ disclosedĀ hereinĀ compriseĀ oneĀ orĀ moreĀ stepsĀ orĀ actionsĀ forĀ achievingĀ theĀ describedĀ method.Ā TheĀ methodĀ stepsĀ and/orĀ actionsĀ mayĀ beĀ interchangedĀ withĀ oneĀ anotherĀ withoutĀ departingĀ fromĀ theĀ scopeĀ ofĀ theĀ claims.Ā InĀ otherĀ words,Ā unlessĀ aĀ specificĀ orderĀ ofĀ stepsĀ orĀ actionsĀ isĀ specified,Ā theĀ orderĀ and/orĀ useĀ ofĀ specificĀ stepsĀ and/orĀ actionsĀ mayĀ beĀ modifiedĀ withoutĀ departingĀ fromĀ theĀ scopeĀ ofĀ theĀ claims.
AsĀ usedĀ herein,Ā aĀ phraseĀ referringĀ toĀ ā€œatĀ leastĀ oneĀ ofā€Ā aĀ listĀ ofĀ itemsĀ refersĀ toĀ anyĀ combinationĀ ofĀ thoseĀ items,Ā includingĀ singleĀ members.Ā AsĀ anĀ example,Ā ā€œatĀ leastĀ oneĀ of:Ā a,Ā b,Ā orĀ cā€Ā isĀ intendedĀ toĀ coverĀ a,Ā b,Ā c,Ā a-b,Ā a-c,Ā b-c,Ā andĀ a-b-c,Ā asĀ wellĀ asĀ anyĀ combinationĀ withĀ multiplesĀ ofĀ theĀ sameĀ elementĀ (e.g.,Ā a-a,Ā a-a-a,Ā a-a-b,Ā a-a-c,Ā a-b-b,Ā a-c-c,Ā b-b,Ā b-b-b,Ā b-b-c,Ā c-c,Ā andĀ c-c-cĀ orĀ anyĀ otherĀ orderingĀ ofĀ a,Ā b,Ā andĀ c)Ā .
AsĀ usedĀ herein,Ā theĀ termĀ ā€œdeterminingā€Ā encompassesĀ aĀ wideĀ varietyĀ ofĀ actions.Ā ForĀ example,Ā ā€œdeterminingā€Ā mayĀ includeĀ calculating,Ā computing,Ā processing,Ā deriving,Ā investigating,Ā lookingĀ upĀ (e.g.,Ā lookingĀ upĀ inĀ aĀ table,Ā aĀ databaseĀ orĀ anotherĀ dataĀ structure)Ā ,Ā ascertainingĀ andĀ theĀ like.Ā Also,Ā ā€œdeterminingā€Ā mayĀ includeĀ receivingĀ (e.g.,Ā receivingĀ information)Ā ,Ā accessingĀ (e.g.,Ā accessingĀ dataĀ inĀ aĀ memory)Ā andĀ theĀ like.Ā Also,Ā ā€œdeterminingā€Ā mayĀ includeĀ resolving,Ā selecting,Ā choosing,Ā establishingĀ andĀ theĀ like.
TheĀ previousĀ descriptionĀ isĀ providedĀ toĀ enableĀ anyĀ personĀ skilledĀ inĀ theĀ artĀ toĀ practiceĀ theĀ variousĀ aspectsĀ describedĀ herein.Ā VariousĀ modificationsĀ toĀ theseĀ aspectsĀ willĀ beĀ readilyĀ apparentĀ toĀ thoseĀ skilledĀ inĀ theĀ art,Ā andĀ theĀ genericĀ principlesĀ definedĀ hereinĀ mayĀ beĀ appliedĀ toĀ otherĀ aspects.Ā Thus,Ā theĀ claimsĀ areĀ notĀ intendedĀ toĀ beĀ limitedĀ toĀ theĀ aspectsĀ shownĀ herein,Ā butĀ isĀ toĀ beĀ accordedĀ theĀ fullĀ scopeĀ consistentĀ withĀ theĀ languageĀ claims,Ā whereinĀ referenceĀ toĀ anĀ elementĀ inĀ theĀ singularĀ isĀ notĀ intendedĀ toĀ meanĀ ā€œoneĀ andĀ onlyĀ oneā€Ā unlessĀ specificallyĀ soĀ stated,Ā butĀ ratherĀ ā€œoneĀ orĀ more.Ā ā€Ā UnlessĀ specificallyĀ statedĀ otherwise,Ā theĀ termĀ ā€œsomeā€Ā refersĀ toĀ oneĀ orĀ more.Ā AllĀ structuralĀ andĀ functionalĀ equivalentsĀ toĀ theĀ elementsĀ ofĀ theĀ variousĀ aspectsĀ describedĀ throughoutĀ thisĀ disclosureĀ thatĀ areĀ knownĀ orĀ laterĀ comeĀ toĀ beĀ knownĀ toĀ thoseĀ ofĀ ordinaryĀ skillĀ inĀ theĀ artĀ  areĀ expresslyĀ incorporatedĀ hereinĀ byĀ referenceĀ andĀ areĀ intendedĀ toĀ beĀ encompassedĀ byĀ theĀ claims.Ā Moreover,Ā nothingĀ disclosedĀ hereinĀ isĀ intendedĀ toĀ beĀ dedicatedĀ toĀ theĀ publicĀ regardlessĀ ofĀ whetherĀ suchĀ disclosureĀ isĀ explicitlyĀ recitedĀ inĀ theĀ claims.Ā NoĀ claimĀ elementĀ isĀ toĀ beĀ construedĀ underĀ theĀ provisionsĀ ofĀ 35Ā U.S.C. §112,Ā sixthĀ paragraph,Ā unlessĀ theĀ elementĀ isĀ expresslyĀ recitedĀ usingĀ theĀ phraseĀ ā€œmeansĀ forā€Ā or,Ā inĀ theĀ caseĀ ofĀ aĀ methodĀ claim,Ā theĀ elementĀ isĀ recitedĀ usingĀ theĀ phraseĀ ā€œstepĀ for.Ā ā€
TheĀ variousĀ operationsĀ ofĀ methodsĀ describedĀ aboveĀ mayĀ beĀ performedĀ byĀ anyĀ suitableĀ meansĀ capableĀ ofĀ performingĀ theĀ correspondingĀ functions.Ā TheĀ meansĀ mayĀ includeĀ variousĀ hardwareĀ and/orĀ softwareĀ componentĀ (s)Ā and/orĀ moduleĀ (s)Ā ,Ā including,Ā butĀ notĀ limitedĀ toĀ aĀ circuit,Ā anĀ applicationĀ specificĀ integratedĀ circuitĀ (ASIC)Ā ,Ā orĀ processor.Ā Generally,Ā whereĀ thereĀ areĀ operationsĀ illustratedĀ inĀ figures,Ā thoseĀ operationsĀ mayĀ haveĀ correspondingĀ counterpartĀ means-plus-functionĀ componentsĀ withĀ similarĀ numbering.
ForĀ example,Ā meansĀ forĀ transmitting,Ā meansĀ forĀ sending,Ā and/orĀ meansĀ forĀ receivingĀ mayĀ compriseĀ oneĀ orĀ moreĀ ofĀ aĀ transmitĀ processorĀ 420,Ā aĀ TXĀ MIMOĀ processorĀ 430,Ā aĀ receiveĀ processorĀ 438,Ā orĀ antennaĀ (s)Ā 434Ā ofĀ theĀ baseĀ stationĀ 110Ā and/orĀ theĀ transmitĀ processorĀ 464,Ā aĀ TXĀ MIMOĀ processorĀ 466,Ā aĀ receiveĀ processorĀ 458,Ā orĀ antennaĀ (s)Ā 452Ā ofĀ theĀ userĀ equipmentĀ 120.Ā Additionally,Ā meansĀ forĀ generating,Ā meansĀ forĀ multiplexing,Ā meansĀ forĀ determining,Ā meansĀ forĀ processing,Ā and/orĀ meansĀ forĀ applyingĀ mayĀ compriseĀ oneĀ orĀ moreĀ processors,Ā suchĀ asĀ theĀ controller/processorĀ 440Ā ofĀ theĀ baseĀ stationĀ 110Ā and/orĀ theĀ controller/processorĀ 480Ā ofĀ theĀ userĀ equipmentĀ 120.
TheĀ variousĀ illustrativeĀ logicalĀ blocks,Ā modulesĀ andĀ circuitsĀ describedĀ inĀ connectionĀ withĀ theĀ presentĀ disclosureĀ mayĀ beĀ implementedĀ orĀ performedĀ withĀ aĀ generalĀ purposeĀ processor,Ā aĀ digitalĀ signalĀ processorĀ (DSP)Ā ,Ā anĀ applicationĀ specificĀ integratedĀ circuitĀ (ASIC)Ā ,Ā aĀ fieldĀ programmableĀ gateĀ arrayĀ (FPGA)Ā orĀ otherĀ programmableĀ logicĀ deviceĀ (PLD)Ā ,Ā discreteĀ gateĀ orĀ transistorĀ logic,Ā discreteĀ hardwareĀ components,Ā orĀ anyĀ combinationĀ thereofĀ designedĀ toĀ performĀ theĀ functionsĀ describedĀ herein.Ā AĀ general-purposeĀ processorĀ mayĀ beĀ aĀ microprocessor,Ā butĀ inĀ theĀ alternative,Ā theĀ processorĀ mayĀ beĀ anyĀ commerciallyĀ availableĀ processor,Ā controller,Ā microcontroller,Ā orĀ stateĀ machine.Ā AĀ processorĀ mayĀ alsoĀ beĀ implementedĀ asĀ aĀ combinationĀ ofĀ computingĀ devices,Ā e.g.,Ā aĀ combinationĀ ofĀ aĀ DSPĀ andĀ aĀ microprocessor,Ā aĀ pluralityĀ ofĀ microprocessors,Ā oneĀ orĀ moreĀ microprocessorsĀ inĀ conjunctionĀ withĀ aĀ DSPĀ core,Ā orĀ anyĀ otherĀ suchĀ configuration.
IfĀ implementedĀ inĀ hardware,Ā anĀ exampleĀ hardwareĀ configurationĀ mayĀ compriseĀ aĀ processingĀ systemĀ inĀ aĀ wirelessĀ node.Ā TheĀ processingĀ systemĀ mayĀ beĀ implementedĀ withĀ aĀ busĀ architecture.Ā TheĀ busĀ mayĀ includeĀ anyĀ numberĀ ofĀ interconnectingĀ busesĀ andĀ bridgesĀ dependingĀ onĀ theĀ specificĀ applicationĀ ofĀ theĀ processingĀ systemĀ andĀ theĀ overallĀ designĀ constraints.Ā TheĀ busĀ mayĀ linkĀ togetherĀ variousĀ circuitsĀ includingĀ aĀ processor,Ā machine-readableĀ media,Ā andĀ aĀ busĀ interface.Ā TheĀ busĀ interfaceĀ mayĀ beĀ usedĀ toĀ connectĀ aĀ networkĀ adapter,Ā amongĀ otherĀ things,Ā toĀ theĀ processingĀ systemĀ viaĀ theĀ bus.Ā TheĀ networkĀ adapterĀ mayĀ beĀ usedĀ toĀ implementĀ theĀ signalĀ processingĀ functionsĀ ofĀ theĀ PHYĀ layer.Ā InĀ theĀ caseĀ ofĀ aĀ userĀ terminalĀ 120Ā (seeĀ FIG.Ā 1)Ā ,Ā aĀ userĀ interfaceĀ (e.g.,Ā keypad,Ā display,Ā mouse,Ā joystick,Ā etc.Ā )Ā mayĀ alsoĀ beĀ connectedĀ toĀ theĀ bus.Ā TheĀ busĀ mayĀ alsoĀ linkĀ variousĀ otherĀ circuitsĀ suchĀ asĀ timingĀ sources,Ā peripherals,Ā voltageĀ regulators,Ā powerĀ managementĀ circuits,Ā andĀ theĀ like,Ā whichĀ areĀ wellĀ knownĀ inĀ theĀ art,Ā andĀ therefore,Ā willĀ notĀ beĀ describedĀ anyĀ further.Ā TheĀ processorĀ mayĀ beĀ implementedĀ withĀ oneĀ orĀ moreĀ general-purposeĀ and/orĀ special-purposeĀ processors.Ā ExamplesĀ includeĀ microprocessors,Ā microcontrollers,Ā DSPĀ processors,Ā andĀ otherĀ circuitryĀ thatĀ canĀ executeĀ software.Ā ThoseĀ skilledĀ inĀ theĀ artĀ willĀ recognizeĀ howĀ bestĀ toĀ implementĀ theĀ describedĀ functionalityĀ forĀ theĀ processingĀ systemĀ dependingĀ onĀ theĀ particularĀ applicationĀ andĀ theĀ overallĀ designĀ constraintsĀ imposedĀ onĀ theĀ overallĀ system.
IfĀ implementedĀ inĀ software,Ā theĀ functionsĀ mayĀ beĀ storedĀ orĀ transmittedĀ overĀ asĀ oneĀ orĀ moreĀ instructionsĀ orĀ codeĀ onĀ aĀ computerĀ readableĀ medium.Ā SoftwareĀ shallĀ beĀ construedĀ broadlyĀ toĀ meanĀ instructions,Ā data,Ā orĀ anyĀ combinationĀ thereof,Ā whetherĀ referredĀ toĀ asĀ software,Ā firmware,Ā middleware,Ā microcode,Ā hardwareĀ descriptionĀ language,Ā orĀ otherwise.Ā Computer-readableĀ mediaĀ includeĀ bothĀ computerĀ storageĀ mediaĀ andĀ communicationĀ mediaĀ includingĀ anyĀ mediumĀ thatĀ facilitatesĀ transferĀ ofĀ aĀ computerĀ programĀ fromĀ oneĀ placeĀ toĀ another.Ā TheĀ processorĀ mayĀ beĀ responsibleĀ forĀ managingĀ theĀ busĀ andĀ generalĀ processing,Ā includingĀ theĀ executionĀ ofĀ softwareĀ modulesĀ storedĀ onĀ theĀ machine-readableĀ storageĀ media.Ā AĀ computer-readableĀ storageĀ mediumĀ mayĀ beĀ coupledĀ toĀ aĀ processorĀ suchĀ thatĀ theĀ processorĀ canĀ readĀ informationĀ from,Ā andĀ writeĀ informationĀ to,Ā theĀ storageĀ medium.Ā InĀ theĀ alternative,Ā theĀ storageĀ mediumĀ mayĀ beĀ integralĀ toĀ theĀ processor.Ā ByĀ wayĀ ofĀ example,Ā theĀ machine-readableĀ mediaĀ mayĀ includeĀ aĀ transmissionĀ line,Ā aĀ carrierĀ waveĀ modulatedĀ byĀ data,Ā and/orĀ aĀ computerĀ readableĀ storageĀ mediumĀ withĀ instructionsĀ storedĀ thereonĀ separateĀ fromĀ theĀ wirelessĀ node,Ā allĀ ofĀ whichĀ mayĀ beĀ  accessedĀ byĀ theĀ processorĀ throughĀ theĀ busĀ interface.Ā Alternatively,Ā orĀ inĀ addition,Ā theĀ machine-readableĀ media,Ā orĀ anyĀ portionĀ thereof,Ā mayĀ beĀ integratedĀ intoĀ theĀ processor,Ā suchĀ asĀ theĀ caseĀ mayĀ beĀ withĀ cacheĀ and/orĀ generalĀ registerĀ files.Ā ExamplesĀ ofĀ machine-readableĀ storageĀ mediaĀ mayĀ include,Ā byĀ wayĀ ofĀ example,Ā RAMĀ (RandomĀ AccessĀ Memory)Ā ,Ā flashĀ memory,Ā ROMĀ (ReadĀ OnlyĀ Memory)Ā ,Ā PROMĀ (ProgrammableĀ Read-OnlyĀ Memory)Ā ,Ā EPROMĀ (ErasableĀ ProgrammableĀ Read-OnlyĀ Memory)Ā ,Ā EEPROMĀ (ElectricallyĀ ErasableĀ ProgrammableĀ Read-OnlyĀ Memory)Ā ,Ā registers,Ā magneticĀ disks,Ā opticalĀ disks,Ā hardĀ drives,Ā orĀ anyĀ otherĀ suitableĀ storageĀ medium,Ā orĀ anyĀ combinationĀ thereof.Ā TheĀ machine-readableĀ mediaĀ mayĀ beĀ embodiedĀ inĀ aĀ computer-programĀ product.
AĀ softwareĀ moduleĀ mayĀ compriseĀ aĀ singleĀ instruction,Ā orĀ manyĀ instructions,Ā andĀ mayĀ beĀ distributedĀ overĀ severalĀ differentĀ codeĀ segments,Ā amongĀ differentĀ programs,Ā andĀ acrossĀ multipleĀ storageĀ media.Ā TheĀ computer-readableĀ mediaĀ mayĀ compriseĀ aĀ numberĀ ofĀ softwareĀ modules.Ā TheĀ softwareĀ modulesĀ includeĀ instructionsĀ that,Ā whenĀ executedĀ byĀ anĀ apparatusĀ suchĀ asĀ aĀ processor,Ā causeĀ theĀ processingĀ systemĀ toĀ performĀ variousĀ functions.Ā TheĀ softwareĀ modulesĀ mayĀ includeĀ aĀ transmissionĀ moduleĀ andĀ aĀ receivingĀ module.Ā EachĀ softwareĀ moduleĀ mayĀ resideĀ inĀ aĀ singleĀ storageĀ deviceĀ orĀ beĀ distributedĀ acrossĀ multipleĀ storageĀ devices.Ā ByĀ wayĀ ofĀ example,Ā aĀ softwareĀ moduleĀ mayĀ beĀ loadedĀ intoĀ RAMĀ fromĀ aĀ hardĀ driveĀ whenĀ aĀ triggeringĀ eventĀ occurs.Ā DuringĀ executionĀ ofĀ theĀ softwareĀ module,Ā theĀ processorĀ mayĀ loadĀ someĀ ofĀ theĀ instructionsĀ intoĀ cacheĀ toĀ increaseĀ accessĀ speed.Ā OneĀ orĀ moreĀ cacheĀ linesĀ mayĀ thenĀ beĀ loadedĀ intoĀ aĀ generalĀ registerĀ fileĀ forĀ executionĀ byĀ theĀ processor.Ā WhenĀ referringĀ toĀ theĀ functionalityĀ ofĀ aĀ softwareĀ moduleĀ below,Ā itĀ willĀ beĀ understoodĀ thatĀ suchĀ functionalityĀ isĀ implementedĀ byĀ theĀ processorĀ whenĀ executingĀ instructionsĀ fromĀ thatĀ softwareĀ module.
Also,Ā anyĀ connectionĀ isĀ properlyĀ termedĀ aĀ computer-readableĀ medium.Ā ForĀ example,Ā ifĀ theĀ softwareĀ isĀ transmittedĀ fromĀ aĀ website,Ā server,Ā orĀ otherĀ remoteĀ sourceĀ usingĀ aĀ coaxialĀ cable,Ā fiberĀ opticĀ cable,Ā twistedĀ pair,Ā digitalĀ subscriberĀ lineĀ (DSL)Ā ,Ā orĀ wirelessĀ technologiesĀ suchĀ asĀ infraredĀ (IR)Ā ,Ā radio,Ā andĀ microwave,Ā thenĀ theĀ coaxialĀ cable,Ā fiberĀ opticĀ cable,Ā twistedĀ pair,Ā DSL,Ā orĀ wirelessĀ technologiesĀ suchĀ asĀ infrared,Ā radio,Ā andĀ microwaveĀ areĀ includedĀ inĀ theĀ definitionĀ ofĀ medium.Ā DiskĀ andĀ disc,Ā asĀ usedĀ herein,Ā includeĀ compactĀ discĀ (CD)Ā ,Ā laserĀ disc,Ā opticalĀ disc,Ā digitalĀ versatileĀ discĀ (DVD)Ā ,Ā floppyĀ disk,Ā and
Figure PCTCN2018071683-appb-000001
discĀ whereĀ disksĀ usuallyĀ reproduceĀ dataĀ magnetically,Ā whileĀ discsĀ reproduceĀ dataĀ opticallyĀ withĀ lasers.Ā Thus,Ā inĀ someĀ aspectsĀ computer-readableĀ  mediaĀ mayĀ compriseĀ non-transitoryĀ computer-readableĀ mediaĀ (e.g.,Ā tangibleĀ media)Ā .Ā InĀ addition,Ā forĀ otherĀ aspectsĀ computer-readableĀ mediaĀ mayĀ compriseĀ transitoryĀ computer-readableĀ mediaĀ (e.g.,Ā aĀ signal)Ā .Ā CombinationsĀ ofĀ theĀ aboveĀ shouldĀ alsoĀ beĀ includedĀ withinĀ theĀ scopeĀ ofĀ computer-readableĀ media.
Thus,Ā certainĀ aspectsĀ mayĀ compriseĀ aĀ computerĀ programĀ productĀ forĀ performingĀ theĀ operationsĀ presentedĀ herein.Ā ForĀ example,Ā suchĀ aĀ computerĀ programĀ productĀ mayĀ compriseĀ aĀ computer-readableĀ mediumĀ havingĀ instructionsĀ storedĀ (and/orĀ encoded)Ā thereon,Ā theĀ instructionsĀ beingĀ executableĀ byĀ oneĀ orĀ moreĀ processorsĀ toĀ performĀ theĀ operationsĀ describedĀ herein.Ā ForĀ example,Ā instructionsĀ forĀ performĀ theĀ operationsĀ describedĀ hereinĀ andĀ illustratedĀ inĀ FIGs.Ā 13,Ā 17,Ā andĀ 18.
Further,Ā itĀ shouldĀ beĀ appreciatedĀ thatĀ modulesĀ and/orĀ otherĀ appropriateĀ meansĀ forĀ performingĀ theĀ methodsĀ andĀ techniquesĀ describedĀ hereinĀ canĀ beĀ downloadedĀ and/orĀ otherwiseĀ obtainedĀ byĀ aĀ userĀ terminalĀ and/orĀ baseĀ stationĀ asĀ applicable.Ā ForĀ example,Ā suchĀ aĀ deviceĀ canĀ beĀ coupledĀ toĀ aĀ serverĀ toĀ facilitateĀ theĀ transferĀ ofĀ meansĀ forĀ performingĀ theĀ methodsĀ describedĀ herein.Ā Alternatively,Ā variousĀ methodsĀ describedĀ hereinĀ canĀ beĀ providedĀ viaĀ storageĀ meansĀ (e.g.,Ā RAM,Ā ROM,Ā aĀ physicalĀ storageĀ mediumĀ suchĀ asĀ aĀ compactĀ discĀ (CD)Ā orĀ floppyĀ disk,Ā etc.Ā )Ā ,Ā suchĀ thatĀ aĀ userĀ terminalĀ and/orĀ baseĀ stationĀ canĀ obtainĀ theĀ variousĀ methodsĀ uponĀ couplingĀ orĀ providingĀ theĀ storageĀ meansĀ toĀ theĀ device.Ā Moreover,Ā anyĀ otherĀ suitableĀ techniqueĀ forĀ providingĀ theĀ methodsĀ andĀ techniquesĀ describedĀ hereinĀ toĀ aĀ deviceĀ canĀ beĀ utilized.
ItĀ isĀ toĀ beĀ understoodĀ thatĀ theĀ claimsĀ areĀ notĀ limitedĀ toĀ theĀ preciseĀ configurationĀ andĀ componentsĀ illustratedĀ above.Ā VariousĀ modifications,Ā changesĀ andĀ variationsĀ mayĀ beĀ madeĀ inĀ theĀ arrangement,Ā operationĀ andĀ detailsĀ ofĀ theĀ methodsĀ andĀ apparatusĀ describedĀ aboveĀ withoutĀ departingĀ fromĀ theĀ scopeĀ ofĀ theĀ claims.

Claims (70)

  1. AĀ methodĀ forĀ wirelessĀ communicationsĀ byĀ aĀ userĀ equipmentĀ (UE)Ā ,Ā comprising:
    determiningĀ whetherĀ toĀ transmitĀ aĀ soundingĀ referenceĀ signalĀ (SRS)Ā usingĀ aĀ discreteĀ FourierĀ transformĀ (DFT)Ā spreadĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (DFT-S-OFDM)Ā waveformĀ orĀ aĀ cyclicĀ prefixĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (CP-OFDM)Ā waveform;Ā and
    transmittingĀ theĀ SRSĀ usingĀ theĀ determinedĀ waveform.
  2. TheĀ methodĀ ofĀ claimĀ 1,Ā whereinĀ theĀ determinationĀ comprisesĀ determiningĀ toĀ useĀ aĀ sameĀ waveformĀ usedĀ forĀ anĀ uplinkĀ transmissionĀ byĀ theĀ UEĀ inĀ aĀ sameĀ slotĀ orĀ aĀ sameĀ bandwidthĀ partĀ asĀ theĀ SRS.
  3. TheĀ methodĀ ofĀ claimĀ 1,Ā whereinĀ theĀ determinationĀ comprisesĀ determiningĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ basedĀ onĀ aĀ numberĀ ofĀ antennaĀ portsĀ usedĀ inĀ transmittingĀ theĀ SRS.
  4. TheĀ methodĀ ofĀ claimĀ 3,Ā whereinĀ theĀ determinationĀ comprises:
    determiningĀ toĀ useĀ theĀ DFT-S-OFDMĀ waveformĀ ifĀ theĀ numberĀ ofĀ antennaĀ portsĀ isĀ lowerĀ thanĀ aĀ threshold;Ā and
    determiningĀ toĀ useĀ theĀ CP-OFDMĀ waveformĀ ifĀ theĀ numberĀ ofĀ antennaĀ portsĀ isĀ greaterĀ thanĀ orĀ equalĀ toĀ theĀ threshold.
  5. TheĀ methodĀ ofĀ claimĀ 1,Ā whereinĀ theĀ determinationĀ comprisesĀ determiningĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ basedĀ onĀ aĀ componentĀ carrierĀ (CC)Ā orĀ aĀ bandwidthĀ partĀ usedĀ toĀ transmitĀ theĀ SRS.
  6. TheĀ methodĀ ofĀ claimĀ 1,Ā whereinĀ theĀ determinationĀ comprisesĀ determiningĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ  waveformĀ basedĀ onĀ aĀ numberĀ ofĀ componentĀ carriersĀ (CCs)Ā orĀ bandwidthĀ partsĀ usedĀ toĀ transmitĀ theĀ SRS.
  7. TheĀ methodĀ ofĀ claimĀ 6,Ā whereinĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ isĀ configuredĀ forĀ physicalĀ uplinkĀ sharedĀ channelsĀ (PUSCHs)Ā inĀ eachĀ CCĀ andĀ theĀ determinationĀ comprisesĀ determiningĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveform.
  8. TheĀ methodĀ ofĀ claimĀ 6,Ā whereinĀ theĀ determinationĀ comprisesĀ determiningĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ basedĀ onĀ aĀ numberĀ ofĀ CCsĀ inĀ aĀ sameĀ frequencyĀ band.
  9. TheĀ methodĀ ofĀ claimĀ 8,Ā whereinĀ theĀ determinationĀ comprises:
    determiningĀ toĀ useĀ theĀ DFT-S-OFDMĀ waveformĀ ifĀ theĀ numberĀ ofĀ CCsĀ inĀ theĀ sameĀ frequencyĀ bandĀ isĀ lessĀ thanĀ aĀ threshold;Ā and
    determiningĀ toĀ useĀ theĀ CP-OFDMĀ waveformĀ ifĀ theĀ numberĀ ofĀ CCsĀ inĀ theĀ sameĀ bandĀ isĀ greaterĀ thanĀ orĀ equalĀ toĀ theĀ threshold.
  10. TheĀ methodĀ ofĀ claimĀ 6,Ā whereinĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ isĀ configuredĀ forĀ physicalĀ uplinkĀ sharedĀ channelsĀ (PUSCHs)Ā inĀ eachĀ bandwidthĀ partĀ andĀ theĀ determinationĀ comprisesĀ determiningĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveform.
  11. TheĀ methodĀ ofĀ claimĀ 6,Ā whereinĀ theĀ determinationĀ comprisesĀ determiningĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ basedĀ onĀ aĀ numberĀ ofĀ bandwidthĀ partsĀ inĀ aĀ sameĀ frequencyĀ band.
  12. TheĀ methodĀ ofĀ claimĀ 1,Ā whereinĀ theĀ UEĀ isĀ configuredĀ withĀ oneĀ orĀ moreĀ bandwidthĀ partsĀ withinĀ aĀ systemĀ bandwidthĀ andĀ theĀ determinationĀ comprisesĀ determiningĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ basedĀ onĀ aĀ bandwidthĀ partĀ usedĀ toĀ transmitĀ theĀ SRS.
  13. TheĀ methodĀ ofĀ claimĀ 1,Ā whereinĀ theĀ determinationĀ comprisesĀ determiningĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ basedĀ onĀ aĀ slotĀ inĀ whichĀ theĀ SRSĀ isĀ toĀ beĀ transmitted.
  14. TheĀ methodĀ ofĀ claimĀ 1,Ā whereinĀ theĀ determinationĀ comprisesĀ determiningĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ basedĀ onĀ anĀ indicationĀ receivedĀ fromĀ aĀ baseĀ stationĀ (BS)Ā .
  15. TheĀ methodĀ ofĀ claimĀ 14,Ā furtherĀ comprising:
    receivingĀ theĀ indicationĀ viaĀ layerĀ oneĀ (L1)Ā signaling.
  16. TheĀ methodĀ ofĀ claimĀ 14,Ā whereinĀ theĀ indicationĀ comprisesĀ aĀ semi-persistentĀ configurationĀ andĀ theĀ methodĀ furtherĀ comprises:
    receivingĀ theĀ semi-persistentĀ configurationĀ viaĀ atĀ leastĀ oneĀ ofĀ layerĀ oneĀ (L1)Ā signaling,Ā layerĀ 2Ā (L2)Ā signaling,Ā orĀ radioĀ resourceĀ controlĀ (RRC)Ā signaling.
  17. TheĀ methodĀ ofĀ claimĀ 1,Ā furtherĀ comprising:
    determining,Ā basedĀ onĀ aĀ setĀ ofĀ open-loopĀ powerĀ controlĀ (OLPC)Ā parameters,Ā aĀ transmitĀ power,Ā whereinĀ transmittingĀ theĀ SRSĀ comprisesĀ transmittingĀ theĀ SRSĀ atĀ theĀ determinedĀ transmitĀ power.
  18. TheĀ methodĀ ofĀ claimĀ 17,Ā furtherĀ comprising:
    configuringĀ aĀ firstĀ setĀ ofĀ OLPCĀ parametersĀ forĀ useĀ withĀ DFT-S-OFDMĀ waveformĀ SRS;
    configuringĀ aĀ secondĀ setĀ ofĀ OLPCĀ parametersĀ forĀ useĀ withĀ CP-OFDMĀ waveformĀ SRS;Ā and
    determiningĀ toĀ useĀ theĀ firstĀ setĀ ofĀ OLPCĀ parametersĀ orĀ theĀ secondĀ setĀ ofĀ OLPCĀ parametersĀ basedĀ onĀ theĀ determinedĀ waveform.
  19. TheĀ methodĀ ofĀ claimĀ 1,Ā furtherĀ comprising:
    determining,Ā basedĀ onĀ aĀ receivedĀ closed-loopĀ powerĀ controlĀ (CLPC)Ā command,Ā aĀ transmitĀ power,Ā whereinĀ transmittingĀ theĀ SRSĀ comprisesĀ transmittingĀ theĀ SRSĀ atĀ theĀ determinedĀ transmitĀ power.
  20. TheĀ methodĀ ofĀ claimĀ 19,Ā furtherĀ comprising:
    receivingĀ theĀ CLPCĀ command;
    maintainingĀ aĀ powerĀ controlĀ adjustmentĀ stateĀ forĀ DFT-S-OFDMĀ waveformĀ SRSĀ andĀ anotherĀ powerĀ controlĀ adjustmentĀ stateĀ forĀ CP-OFDMĀ waveformĀ SRS;
    determiningĀ whetherĀ toĀ applyĀ theĀ CLPCĀ commandĀ toĀ theĀ DFT-S-OFDMĀ waveformĀ SRSĀ powerĀ controlĀ adjustmentĀ stateĀ orĀ toĀ theĀ CP-OFDMĀ waveformĀ SRSĀ powerĀ controlĀ adjustmentĀ state;Ā and
    applyingĀ theĀ CLPCĀ commandĀ toĀ theĀ determinedĀ powerĀ controlĀ adjustmentĀ state,Ā whereinĀ determiningĀ theĀ transmitĀ powerĀ comprisesĀ determiningĀ theĀ transmitĀ powerĀ basedĀ onĀ aĀ correspondingĀ powerĀ controlĀ adjustmentĀ state.
  21. AĀ methodĀ forĀ wirelessĀ communicationsĀ byĀ aĀ baseĀ stationĀ (BS)Ā ,Ā comprising:
    determiningĀ whetherĀ aĀ userĀ equipmentĀ (UE)Ā isĀ toĀ transmitĀ aĀ soundingĀ referenceĀ signalĀ (SRS)Ā usingĀ aĀ discreteĀ FourierĀ transformĀ (DFT)Ā spreadĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (DFT-S-OFDM)Ā waveformĀ orĀ aĀ cyclicĀ prefixĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (CP-OFDM)Ā waveform;
    sendingĀ anĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ toĀ theĀ UE;Ā and
    processingĀ theĀ SRS,Ā basedĀ onĀ theĀ determinedĀ waveform.
  22. TheĀ methodĀ ofĀ claimĀ 21,Ā whereinĀ sendingĀ theĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ comprisesĀ sendingĀ anĀ indicationĀ ofĀ aĀ sameĀ waveformĀ toĀ beĀ usedĀ forĀ anĀ uplinkĀ transmissionĀ byĀ theĀ UEĀ inĀ aĀ sameĀ slotĀ orĀ aĀ sameĀ bandwidthĀ partĀ asĀ theĀ SRS.
  23. TheĀ methodĀ ofĀ claimĀ 21,Ā whereinĀ sendingĀ theĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ comprisesĀ sendingĀ anĀ indicationĀ ofĀ aĀ numberĀ ofĀ antennaĀ portsĀ toĀ beĀ usedĀ byĀ theĀ UEĀ inĀ transmittingĀ theĀ SRS.
  24. TheĀ methodĀ ofĀ claimĀ 23,Ā whereinĀ sendingĀ theĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ comprises:
    sendingĀ anĀ indicationĀ thatĀ theĀ UEĀ isĀ toĀ useĀ theĀ DFT-S-OFDMĀ waveformĀ ifĀ theĀ numberĀ ofĀ antennaĀ portsĀ isĀ lowerĀ thanĀ aĀ threshold;Ā and
    sendingĀ anĀ indicationĀ thatĀ theĀ UEĀ isĀ toĀ useĀ theĀ CP-OFDMĀ waveformĀ ifĀ theĀ numberĀ ofĀ antennaĀ portsĀ isĀ greaterĀ thanĀ orĀ equalĀ toĀ theĀ threshold.
  25. TheĀ methodĀ ofĀ claimĀ 24,Ā furtherĀ comprising:
    sendingĀ anĀ indicationĀ ofĀ theĀ thresholdĀ toĀ theĀ UE.
  26. TheĀ methodĀ ofĀ claimĀ 21,Ā whereinĀ sendingĀ theĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ comprisesĀ sendingĀ aĀ componentĀ carrierĀ (CC)Ā orĀ aĀ bandwidthĀ partĀ usedĀ toĀ transmitĀ theĀ SRS.
  27. TheĀ methodĀ ofĀ claimĀ 21,Ā whereinĀ sendingĀ theĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ comprisesĀ sendingĀ aĀ numberĀ ofĀ componentĀ carriersĀ (CCs)Ā orĀ bandwidthĀ partsĀ usedĀ toĀ transmitĀ theĀ SRS.
  28. TheĀ methodĀ ofĀ claimĀ 21,Ā whereinĀ theĀ UEĀ isĀ configuredĀ withĀ oneĀ orĀ moreĀ bandwidthĀ partsĀ withinĀ aĀ systemĀ bandwidthĀ andĀ sendingĀ theĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ comprisesĀ indicatingĀ aĀ bandwidthĀ partĀ toĀ beĀ usedĀ toĀ transmitĀ theĀ SRS.
  29. TheĀ methodĀ ofĀ claimĀ 21,Ā whereinĀ sendingĀ theĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ comprisesĀ indicatingĀ aĀ slotĀ inĀ whichĀ theĀ UEĀ isĀ toĀ transmitĀ theĀ SRS.
  30. TheĀ methodĀ ofĀ claimĀ 21,Ā whereinĀ sendingĀ theĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ comprisesĀ sendingĀ theĀ indicationĀ viaĀ layerĀ oneĀ (L1)Ā signaling.
  31. TheĀ methodĀ ofĀ claimĀ 21,Ā whereinĀ sendingĀ theĀ indicationĀ comprisesĀ sendingĀ aĀ semi-persistentĀ configurationĀ viaĀ atĀ leastĀ oneĀ ofĀ layerĀ oneĀ (L1)Ā ,Ā layerĀ 2Ā (L2)Ā signaling,Ā orĀ radioĀ resourceĀ controlĀ (RRC)Ā signaling.
  32. TheĀ methodĀ ofĀ claimĀ 21,Ā furtherĀ comprising:
    sendingĀ anĀ indicationĀ toĀ adjustĀ aĀ transmitĀ powerĀ ofĀ theĀ SRSĀ ofĀ theĀ determinedĀ waveform,Ā whereinĀ processingĀ theĀ SRSĀ isĀ basedĀ onĀ theĀ transmitĀ powerĀ ofĀ theĀ SRS.
  33. TheĀ methodĀ ofĀ claimĀ 32,Ā furtherĀ comprising:
    determiningĀ toĀ sendĀ theĀ indicationĀ toĀ adjustĀ theĀ transmitĀ powerĀ ofĀ theĀ SRSĀ basedĀ onĀ aĀ previouslyĀ receivedĀ SRSĀ ofĀ theĀ determinedĀ waveform.
  34. TheĀ methodĀ ofĀ claimĀ 21,Ā furtherĀ comprising:
    sendingĀ aĀ closed-loopĀ powerĀ controlĀ (CLPC)Ā commandĀ forĀ SRSĀ toĀ theĀ UE,Ā basedĀ onĀ theĀ processingĀ ofĀ theĀ SRS.
  35. TheĀ methodĀ ofĀ claimĀ 34,Ā furtherĀ comprising:
    maintainingĀ aĀ powerĀ controlĀ adjustmentĀ stateĀ forĀ DFT-S-OFDMĀ waveformĀ SRSĀ forĀ theĀ UEĀ andĀ anotherĀ powerĀ controlĀ adjustmentĀ stateĀ forĀ CP-OFDMĀ waveformĀ SRSĀ forĀ theĀ UE,Ā whereinĀ theĀ CLPCĀ commandĀ indicatesĀ whetherĀ theĀ CLPCĀ commandĀ shouldĀ beĀ appliedĀ toĀ DFT-S-OFDMĀ waveformĀ SRSĀ orĀ CP-OFDMĀ waveformĀ SRS;
    determiningĀ whetherĀ theĀ CLPCĀ commandĀ shouldĀ applyĀ toĀ theĀ DFT-S-OFDMĀ waveformĀ SRSĀ powerĀ controlĀ adjustmentĀ stateĀ orĀ toĀ theĀ CP-OFDMĀ waveformĀ SRSĀ powerĀ controlĀ adjustmentĀ state;Ā and
    sendingĀ anĀ indicationĀ ofĀ theĀ determinedĀ powerĀ controlĀ adjustmentĀ stateĀ toĀ whichĀ theĀ CLPCĀ commandĀ applies.
  36. AnĀ apparatusĀ forĀ wirelessĀ communications,Ā comprising:
    aĀ processorĀ configuredĀ to:
    determineĀ whetherĀ toĀ transmitĀ aĀ soundingĀ referenceĀ signalĀ (SRS)Ā usingĀ aĀ discreteĀ FourierĀ transformĀ (DFT)Ā spreadĀ orthogonalĀ frequencyĀ domainĀ  multiplexingĀ (DFT-S-OFDM)Ā waveformĀ orĀ aĀ cyclicĀ prefixĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (CP-OFDM)Ā waveform;Ā and
    causeĀ theĀ apparatusĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ determinedĀ waveform;Ā and
    aĀ memoryĀ coupledĀ withĀ theĀ processor.
  37. TheĀ apparatusĀ ofĀ claimĀ 36,Ā whereinĀ theĀ processorĀ isĀ configuredĀ toĀ determineĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ byĀ determiningĀ toĀ useĀ aĀ sameĀ waveformĀ usedĀ forĀ anĀ uplinkĀ transmissionĀ byĀ theĀ apparatusĀ inĀ aĀ sameĀ slotĀ orĀ aĀ sameĀ bandwidthĀ partĀ asĀ theĀ SRS.
  38. TheĀ apparatusĀ ofĀ claimĀ 36,Ā whereinĀ theĀ processorĀ isĀ configuredĀ toĀ determineĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ basedĀ onĀ aĀ numberĀ ofĀ antennaĀ portsĀ usedĀ inĀ transmittingĀ theĀ SRS.
  39. TheĀ apparatusĀ ofĀ claimĀ 38,Ā whereinĀ theĀ processorĀ isĀ configuredĀ to:
    determineĀ toĀ useĀ theĀ DFT-S-OFDMĀ waveformĀ ifĀ theĀ numberĀ ofĀ antennaĀ portsĀ isĀ lowerĀ thanĀ aĀ threshold;Ā and
    determineĀ toĀ useĀ theĀ CP-OFDMĀ waveformĀ ifĀ theĀ numberĀ ofĀ antennaĀ portsĀ isĀ greaterĀ thanĀ orĀ equalĀ toĀ theĀ threshold.
  40. TheĀ apparatusĀ ofĀ claimĀ 36,Ā whereinĀ theĀ processorĀ isĀ configuredĀ toĀ determineĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ basedĀ onĀ aĀ componentĀ carrierĀ (CC)Ā orĀ aĀ bandwidthĀ partĀ usedĀ toĀ transmitĀ theĀ SRS.
  41. TheĀ apparatusĀ ofĀ claimĀ 36,Ā whereinĀ theĀ processorĀ isĀ configuredĀ toĀ determineĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ byĀ determiningĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ basedĀ onĀ aĀ numberĀ ofĀ componentĀ carriersĀ (CCs)Ā orĀ bandwidthĀ partsĀ usedĀ toĀ transmitĀ theĀ SRS.
  42. TheĀ apparatusĀ ofĀ claimĀ 41,Ā whereinĀ theĀ processorĀ isĀ furtherĀ configuredĀ to:
    causeĀ theĀ apparatusĀ toĀ transmitĀ physicalĀ uplinkĀ sharedĀ channelsĀ (PUSCHs)Ā inĀ eachĀ CCĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveform;Ā and
    determineĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveform.
  43. TheĀ methodĀ ofĀ claimĀ 41,Ā whereinĀ theĀ processorĀ isĀ furtherĀ configuredĀ toĀ determineĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ byĀ determiningĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ basedĀ onĀ aĀ numberĀ ofĀ CCsĀ inĀ aĀ sameĀ frequencyĀ band.
  44. TheĀ apparatusĀ ofĀ claimĀ 43,Ā whereinĀ theĀ processorĀ isĀ furtherĀ configuredĀ toĀ determineĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ by:
    determiningĀ toĀ useĀ theĀ DFT-S-OFDMĀ waveformĀ ifĀ theĀ numberĀ ofĀ CCsĀ inĀ theĀ sameĀ frequencyĀ bandĀ isĀ lessĀ thanĀ aĀ threshold;Ā and
    determiningĀ toĀ useĀ theĀ CP-OFDMĀ waveformĀ ifĀ theĀ numberĀ ofĀ CCsĀ inĀ theĀ sameĀ bandĀ isĀ greaterĀ thanĀ orĀ equalĀ toĀ theĀ threshold.
  45. TheĀ apparatusĀ ofĀ claimĀ 41,Ā whereinĀ theĀ processorĀ isĀ furtherĀ configuredĀ to:
    causeĀ theĀ apparatusĀ toĀ transmitĀ physicalĀ uplinkĀ sharedĀ channelsĀ (PUSCHs)Ā inĀ eachĀ bandwidthĀ partĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveform;Ā and
    determineĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveform.
  46. TheĀ apparatusĀ ofĀ claimĀ 41,Ā whereinĀ theĀ processorĀ isĀ configuredĀ toĀ determineĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ basedĀ onĀ aĀ numberĀ ofĀ bandwidthĀ partsĀ inĀ aĀ sameĀ frequencyĀ band.
  47. TheĀ apparatusĀ ofĀ claimĀ 36,Ā whereinĀ theĀ apparatusĀ isĀ configuredĀ withĀ oneĀ orĀ moreĀ bandwidthĀ partsĀ withinĀ aĀ systemĀ bandwidthĀ andĀ theĀ processorĀ isĀ configuredĀ toĀ determineĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ basedĀ onĀ aĀ bandwidthĀ partĀ usedĀ toĀ transmitĀ theĀ SRS.
  48. TheĀ apparatusĀ ofĀ claimĀ 36,Ā whereinĀ theĀ processorĀ isĀ configuredĀ toĀ determineĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ basedĀ onĀ aĀ slotĀ inĀ whichĀ theĀ SRSĀ isĀ toĀ beĀ transmitted.
  49. TheĀ apparatusĀ ofĀ claimĀ 36,Ā whereinĀ theĀ processorĀ isĀ configuredĀ toĀ determineĀ whetherĀ toĀ transmitĀ theĀ SRSĀ usingĀ theĀ DFT-S-OFDMĀ waveformĀ orĀ theĀ CP-OFDMĀ waveformĀ basedĀ onĀ anĀ indicationĀ receivedĀ fromĀ aĀ baseĀ stationĀ (BS)Ā .
  50. TheĀ apparatusĀ ofĀ claimĀ 49,Ā whereinĀ theĀ processorĀ isĀ furtherĀ configuredĀ to:
    causeĀ theĀ apparatusĀ toĀ receiveĀ theĀ indicationĀ viaĀ layerĀ oneĀ (L1)Ā signaling.
  51. TheĀ apparatusĀ ofĀ claimĀ 49,Ā whereinĀ theĀ indicationĀ comprisesĀ aĀ semi-persistentĀ configurationĀ andĀ theĀ processorĀ isĀ furtherĀ configuredĀ to:
    causeĀ theĀ apparatusĀ toĀ receiveĀ theĀ semi-persistentĀ configurationĀ viaĀ atĀ leastĀ oneĀ ofĀ layerĀ oneĀ (L1)Ā signaling,Ā layerĀ 2Ā (L2)Ā signaling,Ā orĀ radioĀ resourceĀ controlĀ (RRC)Ā signaling.
  52. TheĀ apparatusĀ ofĀ claimĀ 36,Ā whereinĀ theĀ processorĀ isĀ furtherĀ configuredĀ to:
    determine,Ā basedĀ onĀ aĀ setĀ ofĀ open-loopĀ powerĀ controlĀ (OLPC)Ā parameters,Ā aĀ transmitĀ power;Ā and
    causeĀ theĀ apparatusĀ toĀ transmitĀ theĀ SRSĀ atĀ theĀ determinedĀ transmitĀ power.
  53. TheĀ apparatusĀ ofĀ claimĀ 52,Ā whereinĀ theĀ processorĀ isĀ furtherĀ configuredĀ to:
    configureĀ aĀ firstĀ setĀ ofĀ OLPCĀ parametersĀ forĀ useĀ withĀ DFT-S-OFDMĀ waveformĀ SRS;
    configureĀ aĀ secondĀ setĀ ofĀ OLPCĀ parametersĀ forĀ useĀ withĀ CP-OFDMĀ waveformĀ SRS;Ā and
    determineĀ toĀ useĀ theĀ firstĀ setĀ ofĀ OLPCĀ parametersĀ orĀ theĀ secondĀ setĀ ofĀ OLPCĀ parametersĀ basedĀ onĀ theĀ determinedĀ waveform.
  54. TheĀ apparatusĀ ofĀ claimĀ 36,Ā whereinĀ theĀ processorĀ isĀ furtherĀ configuredĀ to:
    determine,Ā basedĀ onĀ aĀ receivedĀ closed-loopĀ powerĀ controlĀ (CLPC)Ā command,Ā aĀ transmitĀ power;Ā and
    causeĀ theĀ apparatusĀ toĀ transmitĀ theĀ SRSĀ atĀ theĀ determinedĀ transmitĀ power.
  55. TheĀ apparatusĀ ofĀ claimĀ 54,Ā whereinĀ theĀ processorĀ isĀ furtherĀ configuredĀ to:
    causeĀ theĀ apparatusĀ toĀ receiveĀ theĀ CLPCĀ command;
    maintainĀ aĀ powerĀ controlĀ adjustmentĀ stateĀ forĀ DFT-S-OFDMĀ waveformĀ SRSĀ andĀ anotherĀ powerĀ controlĀ adjustmentĀ stateĀ forĀ CP-OFDMĀ waveformĀ SRS;
    determineĀ whetherĀ toĀ applyĀ theĀ CLPCĀ commandĀ toĀ theĀ DFT-S-OFDMĀ waveformĀ SRSĀ powerĀ controlĀ adjustmentĀ stateĀ orĀ toĀ theĀ CP-OFDMĀ waveformĀ SRSĀ powerĀ controlĀ adjustmentĀ state;
    applyĀ theĀ CLPCĀ commandĀ toĀ theĀ determinedĀ powerĀ controlĀ adjustmentĀ state;Ā and
    causeĀ theĀ apparatusĀ toĀ transmitĀ theĀ SRSĀ basedĀ onĀ aĀ correspondingĀ powerĀ controlĀ adjustmentĀ state.
  56. AnĀ apparatusĀ forĀ wirelessĀ communications,Ā comprising:
    aĀ processorĀ configuredĀ to:
    determineĀ whetherĀ aĀ userĀ equipmentĀ (UE)Ā isĀ toĀ transmitĀ aĀ soundingĀ referenceĀ signalĀ (SRS)Ā usingĀ aĀ discreteĀ FourierĀ transformĀ (DFT)Ā spreadĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (DFT-S-OFDM)Ā waveformĀ orĀ aĀ cyclicĀ prefixĀ orthogonalĀ frequencyĀ domainĀ multiplexingĀ (CP-OFDM)Ā waveform;
    causeĀ theĀ apparatusĀ toĀ sendĀ anĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ toĀ theĀ UE;Ā and
    processĀ theĀ SRS,Ā basedĀ onĀ theĀ determinedĀ waveform;Ā and
    aĀ memoryĀ coupledĀ withĀ theĀ processor.
  57. TheĀ apparatusĀ ofĀ claimĀ 56,Ā whereinĀ theĀ processorĀ isĀ configuredĀ toĀ causeĀ theĀ apparatusĀ toĀ sendĀ theĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ byĀ causingĀ theĀ apparatusĀ toĀ sendĀ anĀ indicationĀ ofĀ aĀ sameĀ waveformĀ toĀ beĀ usedĀ forĀ anĀ uplinkĀ transmissionĀ byĀ theĀ UEĀ inĀ aĀ sameĀ slotĀ orĀ aĀ sameĀ bandwidthĀ partĀ asĀ theĀ SRS.
  58. TheĀ apparatusĀ ofĀ claimĀ 56,Ā whereinĀ theĀ processorĀ isĀ configuredĀ toĀ causeĀ theĀ apparatusĀ toĀ sendĀ theĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ byĀ causingĀ theĀ apparatusĀ toĀ sendĀ anĀ indicationĀ ofĀ aĀ numberĀ ofĀ antennaĀ portsĀ toĀ beĀ usedĀ byĀ theĀ UEĀ inĀ transmittingĀ theĀ SRS.
  59. TheĀ apparatusĀ ofĀ claimĀ 58,Ā whereinĀ theĀ processorĀ isĀ configuredĀ toĀ causeĀ theĀ apparatusĀ toĀ sendĀ theĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ by:
    causingĀ theĀ apparatusĀ toĀ sendĀ anĀ indicationĀ thatĀ theĀ UEĀ isĀ toĀ useĀ theĀ DFT-S-OFDMĀ waveformĀ ifĀ theĀ numberĀ ofĀ antennaĀ portsĀ isĀ lowerĀ thanĀ aĀ threshold;Ā and
    causingĀ theĀ apparatusĀ toĀ sendĀ anĀ indicationĀ thatĀ theĀ UEĀ isĀ toĀ useĀ theĀ CP-OFDMĀ waveformĀ ifĀ theĀ numberĀ ofĀ antennaĀ portsĀ isĀ greaterĀ thanĀ orĀ equalĀ toĀ theĀ threshold.
  60. TheĀ apparatusĀ ofĀ claimĀ 59,Ā whereinĀ theĀ processorĀ isĀ furtherĀ configuredĀ to:
    caueĀ theĀ apparatusĀ toĀ sendĀ anĀ indicationĀ ofĀ theĀ thresholdĀ toĀ theĀ UE.
  61. TheĀ apparatusĀ ofĀ claimĀ 56,Ā whereinĀ theĀ processorĀ isĀ configuredĀ toĀ causeĀ theĀ apparatusĀ toĀ sendĀ theĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ byĀ causingĀ theĀ apparatusĀ toĀ sendĀ aĀ componentĀ carrierĀ (CC)Ā orĀ aĀ bandwidthĀ partĀ usedĀ toĀ transmitĀ theĀ SRS.
  62. TheĀ apparatusĀ ofĀ claimĀ 56,Ā whereinĀ theĀ processorĀ isĀ configuredĀ toĀ causeĀ theĀ apparatusĀ toĀ sendĀ theĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ byĀ causingĀ theĀ apparatusĀ toĀ sendĀ aĀ numberĀ ofĀ componentĀ carriersĀ (CCs)Ā orĀ bandwidthĀ partsĀ usedĀ toĀ transmitĀ theĀ SRS.
  63. TheĀ apparatusĀ ofĀ claimĀ 56,Ā whereinĀ theĀ UEĀ isĀ configuredĀ withĀ oneĀ orĀ moreĀ bandwidthĀ partsĀ withinĀ aĀ systemĀ bandwidthĀ andĀ theĀ processorĀ isĀ configuredĀ toĀ causeĀ theĀ apparatusĀ toĀ sendĀ theĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ byĀ causingĀ theĀ apparatusĀ toĀ sendĀ anĀ indicationĀ ofĀ aĀ bandwidthĀ partĀ toĀ beĀ usedĀ toĀ transmitĀ theĀ SRS.
  64. TheĀ apparatusĀ ofĀ claimĀ 56,Ā whereinĀ theĀ processorĀ isĀ configuredĀ toĀ causeĀ theĀ apparatusĀ toĀ sendĀ theĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ byĀ causingĀ theĀ apparatusĀ toĀ sendĀ anĀ indicationĀ ofĀ aĀ slotĀ inĀ whichĀ theĀ UEĀ isĀ toĀ transmitĀ theĀ SRS.
  65. TheĀ apparatusĀ ofĀ claimĀ 56,Ā whereinĀ theĀ processorĀ isĀ configuredĀ toĀ causeĀ theĀ apparatusĀ toĀ sendĀ theĀ indicationĀ ofĀ theĀ determinedĀ waveformĀ byĀ causingĀ theĀ apparatusĀ toĀ sendĀ theĀ indicationĀ viaĀ layerĀ oneĀ (L1)Ā signaling.
  66. TheĀ apparatusĀ ofĀ claimĀ 56,Ā whereinĀ theĀ processorĀ isĀ configuredĀ toĀ causeĀ theĀ apparatusĀ toĀ sendĀ theĀ indicationĀ byĀ sendingĀ aĀ semi-persistentĀ configurationĀ viaĀ atĀ leastĀ oneĀ ofĀ layerĀ oneĀ (L1)Ā ,Ā layerĀ 2Ā (L2)Ā signaling,Ā orĀ radioĀ resourceĀ controlĀ (RRC)Ā signaling.
  67. TheĀ apparatusĀ ofĀ claimĀ 56,Ā whereinĀ theĀ processorĀ isĀ furtherĀ configuredĀ to:
    causeĀ theĀ apparatusĀ toĀ sendĀ anĀ indicationĀ toĀ adjustĀ aĀ transmitĀ powerĀ ofĀ theĀ SRSĀ ofĀ theĀ determinedĀ waveform;Ā and
    processĀ theĀ SRSĀ basedĀ onĀ theĀ transmitĀ powerĀ ofĀ theĀ SRS.
  68. TheĀ apparatusĀ ofĀ claimĀ 67,Ā whereinĀ theĀ processorĀ isĀ furtherĀ configuredĀ to:
    determineĀ toĀ causeĀ theĀ apparatusĀ toĀ sendĀ theĀ indicationĀ toĀ adjustĀ theĀ transmitĀ powerĀ ofĀ theĀ SRSĀ basedĀ onĀ aĀ previouslyĀ receivedĀ SRSĀ ofĀ theĀ determinedĀ waveform.
  69. TheĀ apparatusĀ ofĀ claimĀ 56,Ā whereinĀ theĀ processorĀ isĀ furtherĀ configuredĀ to:
    causeĀ theĀ apparatusĀ toĀ sendĀ aĀ closed-loopĀ powerĀ controlĀ (CLPC)Ā commandĀ forĀ SRSĀ toĀ theĀ UE,Ā basedĀ onĀ theĀ processingĀ ofĀ theĀ SRS.
  70. TheĀ methodĀ ofĀ claimĀ 69,Ā whereinĀ theĀ processorĀ isĀ furtherĀ configuredĀ to:
    maintainĀ aĀ powerĀ controlĀ adjustmentĀ stateĀ forĀ DFT-S-OFDMĀ waveformĀ SRSĀ forĀ theĀ UEĀ andĀ anotherĀ powerĀ controlĀ adjustmentĀ stateĀ forĀ CP-OFDMĀ waveformĀ SRSĀ forĀ theĀ UE,Ā whereinĀ theĀ CLPCĀ commandĀ indicatesĀ whetherĀ theĀ CLPCĀ commandĀ shouldĀ beĀ appliedĀ toĀ DFT-S-OFDMĀ waveformĀ SRSĀ orĀ CP-OFDMĀ waveformĀ SRS;
    determineĀ whetherĀ theĀ CLPCĀ commandĀ shouldĀ applyĀ toĀ theĀ DFT-S-OFDMĀ waveformĀ SRSĀ powerĀ controlĀ adjustmentĀ stateĀ orĀ toĀ theĀ CP-OFDMĀ waveformĀ SRSĀ powerĀ controlĀ adjustmentĀ state;Ā and
    causeĀ theĀ apparatusĀ toĀ sendĀ anĀ indicationĀ ofĀ theĀ determinedĀ powerĀ controlĀ adjustmentĀ stateĀ toĀ whichĀ theĀ CLPCĀ commandĀ applies.
PCT/CN2018/071683 2017-01-06 2018-01-06 Transmitting sounding reference signals in new radio Ceased WO2018127160A1 (en)

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