Method of operation of a device in a wireless communication system and device using the method
By adjusting the number of coded modulation symbols for UCI under full-duplex and half-duplex resource conditions, the problem of UCI transmission failure in wireless communication systems was solved, and reliable transmission under poor channel conditions was achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- LG ELECTRONICS INC
- Filing Date
- 2024-10-30
- Publication Date
- 2026-05-29
AI Technical Summary
In wireless communication systems, the channel environment is poor due to cross-link interference and self-interference during FD operation. Existing methods cannot effectively determine the number of coded modulation symbols for UCI, leading to UCI transmission failure.
Under full-duplex and half-duplex resource conditions, different parameter values are applied to determine the number of coded modulation symbols for UCI, and UCI is transmitted through the physical uplink shared channel.
In FD resources with poor channel conditions, reliable transmission of UCI is ensured, transmission ambiguity is avoided, and the reliability of the communication system is improved.
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Figure CN122122855A_ABST
Abstract
Description
Technical Field
[0001] This disclosure relates to a method for operating a device in a wireless communication system and an apparatus for using the method. Background Technology
[0002] With an increasing number of communication devices requiring greater communication capacity, there is a need for improved mobile broadband communications compared to existing radio access technologies. Furthermore, massive machine-type communication (MTC) that provides various services by connecting numerous devices and multiple objects is also one of the main issues to be considered in next-generation communications. Additionally, communication system designs considering reliability / latency-sensitive services / UEs are being discussed. The introduction of next-generation radio access technologies considering enhanced mobile broadband (eMBB), massive MTC (mMTC), and ultra-reliable low latency communication (URLLC) is being discussed. In this disclosure, for convenience, such new technologies may be referred to as new radio access technologies (new RAT or NR).
[0003] In NR or post-NR wireless communication systems, full-duplex (FD) operation can be performed. When performing FD operation, the device can simultaneously perform downlink reception and uplink transmission within a specific time resource. Half-duplex (HD) operation differs in that only one of downlink reception or uplink transmission can be performed within a given time resource.
[0004] For FD operation, i) some frequency resources in the same time resource can be allocated as downlink subbands and other frequency resources can be allocated as uplink subbands (this can be called subband FD or SBFD (full duplex by subband)), or ii) frequency resources in the same time resource can be allocated for both downlink reception and uplink transmission (this can be called spectrum sharing FD or SSFD (full duplex by spectrum)).
[0005] On the other hand, when the device operates with FD time / frequency resources (which can be called FD resources), the channel environment may be worse than the channel environment when the device operates with HD time / frequency resources (which can be called HD resources) due to cross-link interference (CLI), self-interference (SI), etc.
[0006] Therefore, when transmitting uplink control information (UCI) in the time resources of operating FD, if the code rate, the number of coded modulation symbols, etc., determined based on HD resources are used, the transmission of UCI may not be successfully performed.
[0007] In view of the above issues, there is a need for a method and apparatus for determining the code rate or the number of encoded modulation symbols when transmitting UCI in a communication system that supports FD operation, taking into account FD resources. Summary of the Invention
[0008] Technical issues
[0009] The technical problem to be solved by this disclosure is to provide a method for operating a device in a wireless communication system and an apparatus for using the method.
[0010] Technical solution
[0011] A method for operating a device in a wireless communication system and an apparatus using the method are provided. According to the method, a UE generates uplink control information (UCI) and transmits the UCI to the network via the Physical Uplink Shared Channel (PUSCH) of a time slot. In this case, for a specific parameter used to determine the number of coded modulation symbols for each layer used for transmitting the UCI, a first parameter value is applied when the time slot is an FD time slot consisting of full-duplex (FD) resources, and a second parameter value is applied when the time slot is an HD time slot consisting of half-duplex (HD) resources.
[0012] In another aspect, a UE, a device, and a computer-readable medium for performing the above-described methods are provided.
[0013] On the other hand, a method for operating a base station and a base station using the method are provided. According to the method for operating the base station, the base station requests uplink control information (UCI) from the UE, and the base station receives the UCI from the UE via the Physical Uplink Shared Channel (PUSCH) of the time slot. For a specific parameter used to determine the number of coded modulation symbols for each layer used to receive the UCI, a first parameter value is applied when the time slot is an FD time slot consisting of full-duplex (FD) resources, and a second parameter value is applied when the time slot is an HD time slot consisting of half-duplex (HD) resources.
[0014] Beneficial effects
[0015] According to the method of this disclosure, in FD resources that may have a channel state worse than that of the target base station, when a UCI is multiplexed on a PUSCH and transmitted, a code rate suitable for the FD resources can be applied, thereby enabling reliable transmission of the UCI.
[0016] Additionally, when sending UCI through different types of resources, ambiguity can be prevented by clarifying the value of the parameter used to determine the number of coded modulation symbols for the UCI. Attached Figure Description
[0017] Figure 1 An example of a wireless communication system to which this disclosure can be applied is shown.
[0018] Figure 2 This is a block diagram illustrating the radio protocol architecture for the user plane.
[0019] Figure 3 This is a block diagram illustrating the radio protocol architecture used for the control plane.
[0020] Figure 4 An example of a system architecture for a next-generation radio access network (NG-RAN) using NR is presented.
[0021] Figure 5 This illustrates the functional division between NG-RAN and 5GC.
[0022] Figure 6 An example of a frame structure that can be applied to NR is shown.
[0023] Figure 7 The time slot structure of an NR frame is illustrated.
[0024] Figure 8 An example of CORESET is shown.
[0025] Figure 9 An example of a frame structure for a new radio access technology is shown.
[0026] Figure 10 An example of a self-contained time slot structure is shown.
[0027] Figure 11 The physical channel and typical signal transmission are illustrated.
[0028] Figure 12 This is an example of the repeating type A of PUSCH.
[0029] Figure 13 This is an example of the repeating type B of PUSCH.
[0030] Figure 14 An example of how to apply full-duplex within a carrier wave is shown.
[0031] Figure 15 An example is shown where time resources operating in half-duplex (HD) and time resources operating in full-duplex (FD), such as SBFD or SSFD, coexist.
[0032] Figure 16 Examples of first time resources, second time resources, first frequency resources, and second frequency resources are shown.
[0033] Figure 17 Another example of first time resources, second time resources, first frequency resources, and second frequency resources is shown.
[0034] Figure 18 An example of the operation method of a UE in a wireless communication system is given.
[0035] Figure 19The signaling process and operation between the base station and the UE are illustrated.
[0036] Figure 20 Examples of wireless devices that can be applied to this specification are shown.
[0037] Figure 21 An example of the signal processing module structure is shown.
[0038] Figure 22 Another example of the structure of a signal processing module in a transmitting device is shown.
[0039] Figure 23 An example of a wireless communication device according to an implementation example of this disclosure is shown.
[0040] Figure 24 Another example of a wireless device is shown.
[0041] Figure 25 An example of a communication system 1 used in this specification is shown. Detailed Implementation
[0042] In this specification, “A or B” may mean “A only”, “B only”, or “both A and B”. In other words, in this specification, “A or B” may be interpreted as “A and / or B”. For example, in this specification, “A, B or C” may mean “A only”, “B only”, “C only”, or “any combination of A, B, and C”.
[0043] The forward slash ( / ) or comma used in this specification can mean "and / or". For example, "A / B" can mean "A and / or B". Therefore, "A / B" can mean "A only", "B only", or "both A and B". For example, "A, B, C" can mean "A, B, or C".
[0044] In this specification, "at least one of A and B" may mean "only A", "only B" or "both A and B". Additionally, in this specification, the expression "at least one of A or B" or "at least one of A and / or B" may be interpreted as "at least one of A and B".
[0045] Additionally, in this specification, "at least one of A, B, and C" may mean "A only", "B only", "C only" or "any combination of A, B, and C". Furthermore, "at least one of A, B, or C" or "at least one of A, B, and / or C" may mean "at least one of A, B, and C".
[0046] Additionally, the parentheses used in this specification may mean "for example". Specifically, when indicated as "Control Message (PDCCH)", this may mean that "PDCCH" is cited as an example of "control message". In other words, "control message" in this specification is not limited to "PDCCH", and "PDDCH" may be cited as an example of "control message". Specifically, when indicated as "Control Message (i.e., PDCCH)", this may also mean that "PDCCH" is cited as an example of "control message".
[0047] The technical features described individually in one of the accompanying drawings in this specification can be implemented individually or simultaneously.
[0048] The accompanying drawings below are used to illustrate specific embodiments of this specification. Because specific names of devices or signals / messages / fields described in the drawings are presented illustratively, the technical features of this specification are not limited to the specific names used in the following drawings.
[0049] Figure 1 This illustrates a wireless communication system to which this disclosure can be applied. This may also be referred to as an E-UTRAN (Evolved UMTS Terrestrial Radio Access Network) or an LTE (Long Term Evolution) / LTE-A system.
[0050] E-UTRAN includes a base station (BS) 20, which provides the control plane and user plane to the user equipment (UE) 10. The UE 10 can be fixed or mobile and can be referred to by other terms such as mobile station (MS), user terminal (UT), subscriber station (SS), mobile terminal (MT), radio device, terminal, etc. The BS 20 is generally a fixed station that communicates with the UE 10 and can be referred to by other terms such as evolved Node B (eNB), base transceiver system (BTS), access point, etc.
[0051] The BS interconnects via the X2 interface. The BS also connects to the Evolved Packet Core (EPC) 30 via the S1 interface, and more specifically, to the Mobility Management Entity (MME) via the S1-MME, and to the Serving Gateway (S-GW) via the S1-U.
[0052] EPC 30 includes an MME, an S-GW, and a Packet Data Network Gateway (P-GW). The MME contains UE access information or UE capability information, which is generally used for UE mobility management. The S-GW is a gateway with E-UTRAN as its endpoint. The P-GW is a gateway with PDN as its endpoint.
[0053] The radio interface protocol layer between the UE and the network can be divided into three layers—Layer 1 (L1), Layer 2 (L2), and Layer 3—based on the well-known Open Systems Interconnection (OSI) model in communication systems. The Physical Layer (PHY), belonging to Layer 1, provides information transmission services using physical channels. The Radio Resource Control (RRC) layer, belonging to Layer 3, controls radio resources between the UE and the network; therefore, the RRC layer exchanges RRC messages between the UE and the BS.
[0054] Figure 2 This is a block diagram illustrating the radio protocol architecture used in the user plane. Figure 3 This is a block diagram illustrating the radio protocol architecture used for the control plane. The user plane is the protocol stack used for user data transmission. The control plane is the protocol stack used for control signal transmission.
[0055] Reference Figure 2 and Figure 3 The PHY layer provides information transmission services to higher layers (i.e., higher-level layers) via physical channels. The PHY layer connects to the Media Access Control (MAC) layer, which is higher up, via transport channels. Data is transmitted between the MAC layer and the PHY layer via transport channels. Transport channels are classified according to how data is transmitted through the radio interface and the characteristics of the data.
[0056] Data moves between different PHY layers (i.e., the transmitter's PHY layer and the receiver's PHY layer) via physical channels. Physical channels can be modulated according to orthogonal frequency division multiplexing (OFDM) schemes and use time and frequency as radio resources.
[0057] The MAC layer's functions include mapping between logical channels and transport channels, as well as multiplexing and demultiplexing into transport blocks provided via physical channels on the transport channels of MAC Service Data Units (SDUs) that belong to the logical channels. The MAC layer provides services to the Radio Link Control (RLC) layer through logical channels.
[0058] The RLC layer's functions include the concatenation, segmentation, and reassembly of RLC SDUs. To ensure the various types of Quality of Service (QoS) required for radio bearers (RBs), the RLC layer provides three operating modes: Transparent Mode (TM), Unacknowledged Mode (UM), and Acknowledged Mode (AM). AM RLC provides error correction via Automatic Repeat Request (ARQ).
[0059] The RRC layer is defined only on the control plane. The RRC layer is associated with the configuration, reconfiguration, and release of radio bearers, and is responsible for the control of logical channels, transport channels, and PHY channels. RB represents the logical path provided by Layer 1 (PHY layer) and Layer 2 (MAC layer, RLC layer, and PDCP layer) for transmitting data between the UE and the network.
[0060] The Packet Data Convergence Protocol (PDCP) layer on the user plane performs functions including the transmission of user data and header compression and encryption. The PDCP layer on the user plane also performs functions related to the transmission of control plane data and encryption / integrity protection.
[0061] RB configuration refers to defining the characteristics of the radio protocol layer and channel to provide specific services and configuring various detailed parameters and operating methods. RBs can be divided into two types: Signaling RB (SRB) and Data RB (DRB). SRB is used as the channel for sending RRC messages in the control plane, while DRB is used as the channel for sending user data in the user plane.
[0062] If an RRC connection is established between the UE's RRC layer and the E-UTRAN's RRC layer, the UE is in RRC connected state. Otherwise, the UE is in RRC idle state.
[0063] Downlink transport channels used for transmitting data from the network to the UE include a broadcast channel (BCH) for transmitting system information and a downlink shared channel (SCH) for transmitting user service or control messages. Service or control messages for downlink multicast or broadcast services can be transmitted via the downlink SCH, or via a separate downlink multicast channel (MCH). Furthermore, UL transmission channels used for transmitting data from the UE to the network include a random access channel (RACH) for transmitting initial control messages and an uplink shared channel (SCH) for transmitting user service or control messages.
[0064] The logical channels located above the transport channel and mapped to the transport channel include the Broadcast Control Channel (BCCH), Paging Control Channel (PCCH), Common Control Channel (CCCH), Multicast Control Channel (MCCH), and Multicast Service Channel (MTCH).
[0065] A physical channel comprises multiple OFDM symbols in the time domain and multiple subcarriers in the frequency domain. A subframe comprises multiple OFDM symbols in the time domain. A Resource Allocation Unit (RB) is a unit of resource allocation that includes multiple OFDM symbols and multiple subcarriers. Additionally, each subframe may allocate specific subcarriers of a specific OFDM symbol (e.g., the first OFDM symbol) to the Physical Downlink Control Channel (PDCCH), i.e., the L1 / L2 control channel. The Transmission Time Interval (TTI) is the unit of time for subframe transmission.
[0066] The following section describes the new radio access technology (New RAT, NR).
[0067] With an increasing number of communication devices requiring greater communication capacity, there is a need for improved mobile broadband communications compared to existing radio access technologies. Furthermore, massive machine-type communication (MTC) that provides various services by connecting numerous devices and multiple objects is also one of the main issues to be considered in next-generation communications. Additionally, communication system designs considering reliability / latency-sensitive services / UEs are being discussed. The introduction of next-generation radio access technologies considering enhanced mobile broadband (eMBB), massive MTC (mMTC), and ultra-reliable low latency communication (URLLC) is being discussed. In this disclosure, for convenience, such new technologies may be referred to as new radio access technologies (new RAT or NR).
[0068] Figure 4 An example of a system architecture for a next-generation radio access network (NG-RAN) using NR is presented.
[0069] Reference Figure 4 NG-RAN may include gNBs and / or eNBs that provide user plane and control plane protocol termination to the UE. Figure 4 This example illustrates the case involving only the gNB. The gNB (eNB) connects via the Xn interface. Both the gNB and eNB connect to the 5G core network (5GC) via the NG interface. More specifically, the gNB and eNB connect to the Access and Mobility Management Function (AMF) via the NG-C interface and to the User Plane Function (UPF) via the NG-U interface.
[0070] Figure 5 This illustrates the functional division between NG-RAN and 5GC.
[0071] Reference Figure 5The gNB can provide functions such as Inter-Cell Radio Resource Management (IRM), Radio Bearer Management (RB) control, Connection Mobility Control, Radio Access Control, Measurement Configuration and Provisioning, and Dynamic Resource Allocation. The AMF can provide functions such as NAS security and Idle State Mobility Processing. The UPF can provide functions such as Mobility Anchoring and PDU Processing. The SMF can provide functions such as UE IP Address Allocation and PDU Session Control.
[0072] Figure 6 An example of a frame structure that can be applied to NR is shown.
[0073] Reference Figure 6 In NR, radio frames (hereinafter also referred to as frames) can be used for both UL transmission and downlink transmission. The frame length is 10ms, which can be defined as two 5ms half-frames (HF). HF can be defined as five 1ms subframes (SF). SF can be divided into one or more time slots, the number of time slots within an SF depending on the subcarrier spacing (SCS). Each time slot includes 12 or 14 OFDM (A) symbols depending on the cyclic prefix (CP). With normal CP, each time slot includes 14 symbols. With extended CP, each time slot includes 12 symbols. Here, symbols can include OFDM symbols (or CP-OFDM symbols) and single-carrier-FDMA (SC-FDMA) symbols (or Discrete Fourier Transform Spread Spectrum-OFDM (DFT-s-OFDM) symbols).
[0074] Table 1 below illustrates the subcarrier spacing configuration μ.
[0075] [Table 1]
[0076] Table 2 below illustrates the number of time slots (N) in a frame configured with subcarrier spacing μ. frame,μ slot The number of time slots in a subframe (N) subframe,μ slot ), the number of symbols in a time slot (N) slot symb )wait.
[0077] [Table 2]
[0078] exist Figure 6 The example shows the cases where μ = 0, 1, 2, and 3.
[0079] Table 2-1 below illustrates how the number of symbols per slot, the number of slots per frame, and the number of slots per subframe vary depending on the SCS when using extended CP.
[0080] [Table 2-1]
[0081] In NR systems, OFDM(A) parameter sets (e.g., SCS, CP length, etc.) can be configured differently across multiple cells merged into a single UE. Therefore, the (absolute time) duration of time resources (e.g., SF, time slots, or TTI) consisting of the same number of symbols (collectively referred to as Time Units (TUs) for simplicity) can be configured differently across merged cells.
[0082] Figure 7 The time slot structure is illustrated.
[0083] A time slot can include multiple symbols in the time domain. For example, in the case of normal CP, a time slot can include 14 symbols (or 7 symbols), but in the case of extended CP, a time slot can include 12 symbols (or 6 symbols). A carrier can include multiple subcarriers in the frequency domain. A resource block (RB) can be defined as multiple consecutive subcarriers in the frequency domain (e.g., 12 subcarriers). A bandwidth portion (BWP) can be defined as multiple consecutive (physical) resource blocks (P) RBs in the frequency domain, and a BWP can correspond to a set of parameters (e.g., SCS, CP length, etc.). A carrier can include up to N (e.g., 4 or 5) BWPs. Data communication can be performed through active BWPs, and only one BWP can be activated for a UE. In the resource grid, each element can be called a resource element (RE), and a complex symbol can be mapped to an RE.
[0084] The Physical Downlink Control Channel (PDCCH) may include one or more Control Channel Elements (CCEs), as illustrated in Table 3 below.
[0085] [Table 3]
[0086] In other words, PDCCH can be transmitted through resources including 1, 2, 4, 8, or 16 CCEs. Here, a CCE includes six Resource Element Groups (REGs), and a REG includes a resource block in the frequency domain and an orthogonal frequency division multiplexing (OFDM) symbol in the time domain.
[0087] The monitoring implies decoding each PDCCH candidate according to the downlink control information (DCI) format. The UE monitors a set of PDCCH candidates in one or more CORESETs (described below) on the active DL BWP of each active serving cell configured with PDCCH monitoring, based on the corresponding search space set.
[0088] In NR, a new unit called the Control Resource Set (CORESET) can be introduced. The UE can receive the PDCCH in the CORESET.
[0089] Figure 8 An example of CORESET is shown.
[0090] Reference Figure 8 CORESET includes N in the frequency domain. CORESET RB N in the resource block and time domain CORESET symb ∈{1, 2, 3} symbols. N can be provided by the base station via higher-layer signaling. CORESET RB and N CORESET symb .like Figure 8 As illustrated, a CORESET may include multiple CCEs (or REGs).
[0091] The UE can attempt to detect PDCCH in units of 1, 2, 4, 8, or 16 CCEs in the CORESET. One or more CCEs that can be attempted for PDCCH detection can be referred to as PDCCH candidates.
[0092] Multiple CORESETs can be configured for a UE.
[0093] The control area of the wireless communication system (e.g., LTE / LTE-A) of the relevant technology is configured on the entire system BW used by the base station (BS). All UEs except for some UEs that only support narrowband (e.g., eMTC / NB-IoT UEs) must be able to receive the wireless signals of the entire system BW of the BS in order to properly receive / decode the control information sent by the BS.
[0094] On the other hand, NR introduces the aforementioned CORESET. A CORESET is a radio resource used to transmit control information received by the UE, and it can utilize only a portion of the system bandwidth instead of the entire system bandwidth. The BS can allocate CORESETs to each UE and can transmit control information through the allocated CORESETs. In NR, the UE can receive control information from the BS without having to receive the entire system bandwidth.
[0095] CORESET can include UE-specific CORESET for sending UE-specific control information and public CORESET for sending common control information for all UEs.
[0096] On the other hand, depending on the application domain, NR may require high reliability. In this case, the target block error rate (BLER) of downlink control information (DCI) transmitted via a downlink control channel (e.g., physical downlink control channel (PDCCH)) can be significantly reduced compared to existing technologies. As an example of a method to meet the requirement of high reliability, the amount of content included in the DCI can be reduced and / or the amount of resources used when transmitting the DCI can be increased. In this case, resources may include at least one of resources in the time domain, resources in the frequency domain, resources in the code domain, and resources in the spatial domain.
[0097] The following technologies / features can be applied in NR.
[0098] <Self-contained subframe structure>
[0099] Figure 9 An example of a frame structure for a new radio access technology is shown.
[0100] In NR, such as Figure 9 As shown, the structure in which the control channel and data channel are time-division multiplexed within a TTI can be regarded as a frame structure in order to minimize the waiting time.
[0101] Figure 9 An example is shown where the downlink control area is located at the beginning of the TTI, and the uplink control area is located at the end of the TTI. The area between the downlink and uplink control areas can be used for the transmission of downlink data (DL data) or uplink data (UL data). This structure is characterized by sequentially performing downlink (DL) reception and uplink (UL) transmission within a subframe / slot, allowing DL data to be received and UL ACK / NACK (acknowledgment / negative acknowledgment) to be sent within a subframe / slot. As a result, the time spent until data retransmission in the event of a data transmission error is reduced, and therefore the latency for eventual data delivery can be minimized.
[0102] As mentioned above, in the subframe structure of data and control TDM, there may be time intervals required for the base station and UE to switch from transmit mode to receive mode or from receive mode to transmit mode. Therefore, some OFDM symbols during the DL to UL handover can be set as guard periods (GP) in the self-contained subframe structure.
[0103] Figure 10 An example of a self-contained time slot structure is shown.
[0104] In an NR system, a timeslot can contain DL control channels, DL or UL data, and UL control channels. For example, the first N symbols in a timeslot (hereinafter, the DL control area) can be used to transmit DL control channels, and the last M symbols in the timeslot (hereinafter, the UL control area) can be used to transmit UL control channels. N and M are both integers greater than or equal to 0. The resource area (hereinafter, the data area) located between the DL control area and the UL control area can be used for either DL data transmission or UL data transmission. For example, consider the following configuration. The time slots are listed in chronological order.
[0105] 1. DL configuration only. 2. UL configuration only. 3. Hybrid UL-DL configuration, - DL area + GP (protection period) + UL control area - DL control area + GP + UL area.
[0106] DL regions: (i) DL data region, (ii) DL control region + DL data region
[0107] UL area: (i) UL data area, (ii) UL data area + UL control area.
[0108] In the DL control area, the PDCCH can be transmitted, and in the DL data area, the Physical Downlink Shared Channel (PDSCH) can be transmitted. In the UL control area, the Physical Uplink Control Channel (PUCCH) can be transmitted, and in the UL data area, the Physical Uplink Shared Channel (PUSCH) can be transmitted. Downlink control information (DCI), such as DL data scheduling information or UL data scheduling information, can be transmitted on the PDCCH. Uplink control information (UCI), such as ACK / NACK information for DL data, Channel State Information (CSI) information, or Scheduling Request (SR), can be transmitted on the PUCCH. GP provides time slots during the transition from TX mode to RX mode in the gNB and UE, or during the transition from RX mode to TX mode in the gNB and UE. Some symbols within a subframe during the transition from DL to UL can be configured as GP.
[0109] <Simulated Beamforming #1>
[0110] The wavelength is shortened to millimeter wave (mmW), thus allowing a large number of antenna elements to be installed in the same area. That is, the wavelength is 1 cm at 30 GHz, so a total of 100 antenna elements can be installed in a two-dimensional array in a 5×5 cm panel with a spacing of 0.5λ (wavelength). Therefore, a large number of antenna elements can be used in mmW to increase beamforming (BF) gain, thereby increasing coverage or improving throughput.
[0111] In this scenario, if transceiver units (TXRUs) are provided to adjust the transmit power and phase of each antenna element, independent beamforming for each frequency resource can be performed. However, installing TXRUs for all approximately 100 antenna elements is cost-inefficient. Therefore, a method using analog phase shifters to map a large number of antenna elements to a single TXRU and control the beam direction is considered. This analog beamforming can only form a beam direction across all frequency bands, thus failing to provide frequency-selective beamforming.
[0112] Hybrid beamforming (BF) with B TXRUs (less than Q antenna elements) can be considered an intermediate form between digital BF and analog BF. In this case, the number of beam directions that can be transmitted simultaneously is limited to B, although this number depends on the method of connecting the B TXRUs and Q antenna elements.
[0113] <Simulated Beamforming #2>
[0114] When multiple antennas are used in NR (Radio Frequency I / O), hybrid beamforming, a combination of digital and analog beamforming, emerges. Here, in analog beamforming (or RF beamforming), precoding (or combination) is performed at the RF end, thus achieving performance similar to digital beamforming while reducing the number of RF chains and D / A (or A / D) converters. For ease of description, the hybrid beamforming structure can be represented by N TXRUs and M physical antennas. Then, the digital beamforming of the L data layers transmitted at the transmitter can be represented by an N×L matrix. The converted N digital signals are then converted into analog signals via TXRUs and applied using an analog beamforming matrix represented by an M×N matrix.
[0115] System information for the NR system can be broadcast. In this case, analog beams belonging to different antenna panels can be transmitted simultaneously within a single symbol. A scheme is being discussed to introduce a beam RS (BRS) as a reference signal (RS) transmitted by applying a single analog beam (corresponding to a specific antenna panel) to measure the channel of each analog beam. The BRS can be defined for multiple antenna ports, and each antenna port of the BRS can correspond to a single analog beam. In this case, unlike the BRS, a synchronization signal or xPBCH can be transmitted by applying all analog beams within a group of analog beams so that it can be correctly received by any UE.
[0116] In NR, in the time domain, a synchronization signal block (SSB, or also known as the synchronization signal and physical broadcast channel (SS / PBCH)) can consist of four OFDM symbols indexed in ascending order from 0 to 3 within the synchronization signal block, and the PBCH associated with the primary synchronization signal (PSS), secondary synchronization signal (SSS), and demodulation reference signal (DMRS) can be mapped to symbols. As mentioned above, a synchronization signal block can also be represented by an SS / PBCH block.
[0117] In NR, since multiple synchronization signal blocks (SSBs) can be transmitted at different times and SSBs can be used to perform initial access (IA), serving cell measurements, etc., it is preferable to transmit the SSB first when its transmission time and resources overlap with those of other signals. For this purpose, the network can broadcast the transmission time and resource information of the SSBs or indicate them through UE-specific RRC signaling.
[0118] In NR, beams can be used for both transmitting and receiving. If the receiving performance of the currently serving beam degrades, a process called beam fault recovery (BFR) can be performed to search for a new beam.
[0119] Since BFR processing is not intended to declare errors or failures in the link between the network and the UE, it can be assumed that the connection to the current serving cell is preserved even if BFR processing is performed. During BFR processing, measurements of different beams configured by the network (which can be represented by CSI-RS port or Synchronization Signal Block (SSB) index) can be performed, and the optimal beam for the corresponding UE can be selected. The UE can perform BFR processing in a manner that associates RACH processing with the beam that produces good measurement results.
[0120] The Transmission Configuration Indicator (TCI) state will now be described. The TCI state can be configured for each CORESET of the control channel, and the parameters used to determine the RX beam of the UE can be determined based on the TCI state.
[0121] For each DL BWP of the serving cell, the UE can be configured for three or fewer CORESETs. Additionally, the UE can receive the following information for each CORESET.
[0122] 1) CORESET index p (e.g., one of 0 to 11, where the index of each CORESET can be uniquely determined within the BWP of a serving cell). 2) PDCCH DM-RS scrambling sequence initialization values, 3) The duration of CORESET in the time domain (which can be given in symbolic units). 4) Resource block set, 5) CCE to REG mapping parameters, 6) Antenna port quasi-co-addressing, which indicates the quasi-co-addressing (QCL) information of the DM-RS antenna ports used to receive PDCCH in each CORESET (from a set of antenna port quasi-co-addressings provided by a higher-layer parameter called "TCI-State"). 7) Indications for the presence of a Transmit Configuration Indicator (TCI) field in a specific DCI format sent by PDCCH in CORESET.
[0123] Quasi-co-located (QCL) will be described. If the characteristics of the channel through which a symbol at one antenna port is transmitted can be inferred from the characteristics of the channel through which a symbol at another antenna port is transmitted, then the two antenna ports are said to be quasi-co-located (QCL). For example, when two signals A and B are transmitted from the same transmit antenna array with the same / similar spatial filters applied, the two signals may experience the same / similar channel states. From the receiver's perspective, upon receiving one of the two signals, the other signal can be detected by using the channel characteristics of the received signal.
[0124] In this sense, when signals A and B are called quasi-co-located (QCL), it can mean that signals A and B experience similar channel conditions. Therefore, the channel information estimated for detecting signal A is also useful for detecting signal B. In this paper, channel conditions can be defined based on, for example, Doppler shift, Doppler spread, average delay, delay spread, and spatial reception parameters.
[0125] The “TCI-State” parameter associates one or two downlink reference signals with the corresponding QCL types (QCL types A, B, C, and D, see Table 4).
[0126] [Table 4]
[0127] Each “TCI-State” may include parameters for configuring the QCL relationship between one or two downlink reference signals and the DM-RS port of the PDSCH (or PDDCH) or the CSI-RS port of the CSI-RS resource.
[0128] Furthermore, for each DL BWP configured for a UE in a serving cell, the UE may provide 10 (or fewer) search space sets. For each search space set, the UE may provide at least one of the following information.
[0129] 1) Search space set index s (0≤s<40), 2) Correlation between CORESET p and search space set s, 3) PDCCH monitoring periodicity and PDCCH monitoring offset (slot unit), 4) PDCCH monitoring pattern within a slot (e.g., indicating the first symbol of CORESET in the slot used for PDCCH monitoring), 5) Number of slots in which search space set s exists, 6) Number of PDCCH candidates per CCE aggregation level, 7) Information indicating whether search space set s is a CSS (Common Search Space) or a USS (UE-Specific Search Space), etc.
[0130] In NR, CORESET #0 can be configured via PBCH (or UE-specific signaling used for handover, PSCell configuration, or BWP configuration). The search space (SS) set #0 configured via PBCH can monitor different offsets (e.g., slot offset, symbol offset) for each associated SSB. This may be necessary to minimize the timing of search space monitoring by the UE. Alternatively, this may be necessary to provide a beam scan control / data area capable of performing control / data transmission on a per-beam basis to persistently perform communication with the UE under optimal beam dynamic changes.
[0131] Figure 11 The physical channel and typical signal transmission are illustrated.
[0132] Reference Figure 11 In a wireless communication system, the UE receives information from the BS via the downlink (DL) and transmits information to the BS via the uplink (UL). The information transmitted / received by the BS and UE includes data and various control information, and various physical channels exist depending on the type / purpose of the information transmitted / received by the BS and UE.
[0133] When a UE is powered on again after a power outage or enters a new cell, it performs an initial cell search operation (S11) such as adjusting synchronization with the BS. For this purpose, the UE receives the primary synchronization channel (PSCH) and secondary synchronization channel (SSCH) from the BS to adjust synchronization with the BS and obtains information such as cell identity (ID). Additionally, the UE can receive the physical broadcast channel (PBCH) from the BS to obtain broadcast information within the cell. Furthermore, the UE can receive a downlink reference signal (DL RS) during the initial cell search step to identify the downlink channel state.
[0134] (Initial) Cell search is the process by which the UE obtains time and frequency synchronization with a cell and detects the cell ID of that cell. Cell search can be based on the cell's primary synchronization signal and secondary synchronization signal, and PBCH DMRS.
[0135] After completing the initial cell search, the UE can receive the Physical Downlink Control Channel (PDCCH) and its corresponding Physical Downlink Shared Channel (PDSCH) to obtain more specific system information (S12).
[0136] Subsequently, the UE can perform a random access procedure to complete access to the BS (S13 to S16). Specifically, the UE can send a preamble via the Physical Random Access Channel (PRACH) (S13) and receive a Random Access Response (RAR) to the preamble via the PDCCH and its corresponding PDSCH (S14). Afterward, the UE can send the Physical Uplink Shared Channel (PUSCH) using the scheduling information in the RAR (S15) and can perform a contention resolution procedure similar to that of the PDCCH and its corresponding PDSCH (which can be referred to as the process of receiving a contention resolution message) (S16).
[0137] After executing the above-mentioned procedures, the UE can perform PDCCH / PDSCH reception (S17) and PUSCH / Physical Uplink Control Channel (PUCCH) transmission (S18) as a typical uplink / downlink signal transmission process. The control information sent by the UE to the BS is called Uplink Control Information (UCI). UCI includes Hybrid Automatic Repeat and Request (HARQ) Acknowledgment (ACK) / Negative ACK (NACK), Scheduling Request (SR), Channel State Information (CSI), etc. CSI includes Channel Quality Indicator (CQI), Precoding Matrix Indicator (PMI), Rank Indicator (RI), etc. Typically, UCI is transmitted via PUCCH. However, when control information and data are to be transmitted simultaneously, UCI can be transmitted via PUSCH. Additionally, the UE can periodically transmit UCI via PUSCH based on network requests / instructions.
[0138] To ensure reasonable battery consumption when configuring bandwidth adaptation (BA), only one uplink BWP (bandwidth part) and one downlink BWP, or only one downlink / uplink BWP pair for each uplink carrier, can be activated at a time in the active serving cell, and all other BWPs configured in the UE can be disabled. In the disabled BWPs, the UE does not monitor the PDCCH and does not perform transmissions on the PUCCH, PRACH, and UL-SCH.
[0139] For BA (Balance of Entity), the UE's RX and TX bandwidths are not necessarily as wide as the cell's bandwidth and can be adjusted. That is, the bandwidth can be changed (e.g., reduced for low-activity periods to save power), the position in the frequency domain can be moved (e.g., to increase scheduling flexibility), and the subcarrier spacing can be changed (e.g., to allow different services). A subset of the cell's entire bandwidth is called the Bandwidth Part (BWP), and BA is obtained by configuring the BWP for the UE and by notifying the UE of the currently active BWP among the configured BWPs. When BA is configured, the UE only needs to monitor the PDCCH on one active BWP. That is, it does not need to monitor the PDCCH on the entire downlink frequency of the cell. A BWP inactivity timer (independent of the DRX inactivity timer mentioned above) is used to switch the active BWP to the default BWP. Specifically, the timer restarts when the PDCCH is successfully decoded, and switches to the default BWP when the timer expires.
[0140] The following section describes integrated access and backhaul link (IAB). For ease of explanation, the proposed approach is described based on the new RAT (NR) system, but the scope of systems applying the proposed approach can be extended beyond NR systems to other systems such as 3GPP LTE / LTE-A systems.
[0141] One of the potential technologies aimed at realizing future cellular network configuration scenarios and applications is a technology that supports wireless backhaul and relay links, which enables flexible and high-density deployment of NR cells without scaling up the transport network.
[0142] Compared with LTE, in NR, it is expected that larger bandwidths will be available together with native deployments of massive MIMO or multi-beam systems (e.g., mmWave spectrum), thus creating opportunities for the research, development, and configuration of integrated access and backhaul links. It enables a denser network of self-backhauled NR cells in a more integrated manner by establishing multiple control and data channels / processes defined as providing access to or from the UE. Such a system is referred to as integrated access and backhaul links (IAB).
[0143] The following definitions are made in this disclosure.
[0144] - AC(x): The access link between node (x) and the UE.
[0145] - BH(xy): The backhaul link between node (x) and node (y).
[0146] In this case, the node can refer to a donor gNB (DgNB) or a relay node (RN). Here, the DgNB or the donor node can be a gNB that provides the function of supporting the backhaul for the IAB node.
[0147] When there are relay node 1 and relay node 2, and relay node 1 is connected to relay node 2 via a backhaul link and relays the data transmitted and received by relay node 2, relay node 1 is referred to as the parent node of relay node 2, and relay node 2 is referred to as the child node of relay node 1.
[0148] <PUSCH repetition>
[0149] PUSCH repetition types A and B are introduced in the standard specifications (e.g., NR Rel-15 / 16). Transmissions are performed as follows according to the PUSCH repetition type.
[0150] 1) PUSCH repetition type A
[0151] Figure 12 is an example of PUSCH repetition type A.
[0152] Refer to Figure 12PUSCH repetition type A is slot-based PUSCH repetition, and for each slot, repetition is performed using the same PUSCH start symbol position and PUSCH symbol length, such as... Figure 12 As shown. In this case, if the symbol resources constituting a specific PUSCH repetition contain invalid symbols that cannot be used for PUSCH transmission, they are discarded and the corresponding PUSCH repetition is not transmitted. For example, when a total of four PUSCH repetitions (Rep0, Rep1, Rep2, and Rep3) are transmitted in time slots N, N+1, N+2, and N+3 (one PUSCH repetition in each time slot), if the symbol resources constituting Rep1 include invalid symbols, the transmission of Rep1 is discarded, and only the transmissions of Rep0, Rep2, and Rep3 are performed. Therefore, the actual number of repetitions performed can be less than the configured number of repetitions.
[0153] For PUSCH repetition type A, frequency hopping can be configured for the UE via higher-layer parameters. One of two frequency hopping modes can be configured.
[0154] i) Intra-slot frequency hopping (intra-slot frequency hopping) is applicable to single-slot and multi-slot PUSCH transmission.
[0155] ii) Inter-slot frequency hopping is applicable to multi-slot PUSCH transmission.
[0156] 2) PUSCH repeat type B
[0157] Figure 13 This is an example of the repeating type B of PUSCH.
[0158] Reference Figure 13 Repeat PUSCH type B in units of the symbol length of the actual PUSCH sent. For example, as... Figure 13 In (a), when a PUSCH is sent over 10 symbols, PUSCH repetition is performed in units of 10 consecutive symbols. In this case, the repetition of PUSCH repetition time resources without considering slot boundaries, invalid symbols, etc., is called nominal repetition. Figure 13 (a) shows an example of configuring three nominal repeaters (denoted as N0, N1 and N2).
[0159] However, in cases of actual PUSCH duplication, a single PUSCH cannot be transmitted if it includes slot boundaries. That is, if the nominal PUSCH transmission includes slot boundaries (e.g., ...), Figure 13 In (a) N0, N2), two actual repetitions are executed with the time slot boundary as the boundary, such as Figure 13 As shown in (b). For example, in the case where the time slot boundary is the boundary, the nominal repetition N0 is performed with two actual repetitions (such as A0, A1).
[0160] Additionally, only consecutive symbols can be used to perform a single PUSCH transmission. If invalid symbols exist in the time resources where a PUSCH repetition should be sent, then consecutive symbols are used to form an actual repetition, with the invalid symbols as the boundary. For example, if symbols #0 to #9 constitute a nominal repetition and symbols #3 to #5 are invalid symbols, then symbols #0 to #2 and symbols #6 to #9 (excluding the invalid symbols) each constitute an actual repetition.
[0161] Invalid symbols can include the following: i) Downlink symbols configured via semi-static TDD UL-DL configuration, ii) Invalid symbol pattern configured via RRC (which can be configured via an invalid symbol pattern indicator). iii) SSB symbols configured via SIB1, and SSB symbols configured via "ServngCellConfigCommon". iv) Symbols for the PDCCH of SIB1, v) Invalid symbols for DL-UL switching configured via RRC.
[0162] If a symbol that cannot be used for PUSCH transmission (e.g., a DL symbol indicated by DCI format 2_0) is included in an actual duplicate resource, the corresponding actual duplicate transmission is discarded and not performed.
[0163] Now, we will describe full-duplex operation.
[0164] In 5G, new service types such as extended reality (XR), AI-based services, and autonomous vehicles are emerging. These services feature the ability to dynamically modify traffic in both the downlink (DL) and uplink (UL) directions and require low latency for the traffic to be sent, such as packets. Traffic will explode in 5G services to support these diverse new use cases.
[0165] Existing semi-static or dynamic TDD UL / DL configurations have limitations such as transmission time delay and inter-carrier interference. Existing FDD methods have limitations in terms of effective frequency resource utilization in the DL / UL direction. Therefore, to achieve low latency and efficient resource utilization in NR, the introduction of full-duplex operation within a single carrier is being discussed.
[0166] Figure 14 An example of how to apply full-duplex within a carrier wave is shown.
[0167] Reference Figure 14 Full-duplex methods include, for example, in Figure 14The sub-band full-duplex shown in (a) (which may be referred to as sub-band full-duplex or SBFD below) can also be considered as in Figure 14 The spectrum shared full-duplex (hereinafter, it may be referred to as SSFD) shown in (b) is shown.
[0168] In the case of SBFD, DL and UL transmit and receive using different frequency resources within the same carrier (e.g., carrier #0). That is, for the same time resource, different frequency resources are used in DL and UL.
[0169] In the case of SSFD, DL and UL transmit and receive using the same or overlapping frequency resources within the same carrier (e.g., carrier #0). That is, for the same time resources, the same or overlapping frequency resources can be used in DL and UL.
[0170] This full-duplex (FD) operation can also be used in conjunction with existing half-duplex (HD) operations. For example, some time resources used for existing half-duplex-based TDD operations can be used for full-duplex operations. SBFD or SSFD operations can be performed on the time resources used for full-duplex operations.
[0171] Figure 15 An example is shown where time resources operating in half-duplex (HD) and time resources operating in full-duplex (FD) (e.g., SBFD or SSFD) coexist.
[0172] exist Figure 15 In (a), some time resources that are SBFD (=SBFD) operations are designated as SBFD, while time resources that are HD operations are designated as HD. Figure 15 In (b), some time resources used as SSFD operations are designated as SSFD, while time resources used as HD operations are designated as HD. The unit of time resource can be, for example, a time slot or a symbol.
[0173] In the time resources used for SBFD operation, some frequency resources are used as DL resources, while others are used as UL resources. Between the DL and UL frequency resources, there may be a guard subband that is unused and empty for both DL and UL. The guard subband may also be referred to by other terms, such as guard frequency resources or guard subcarriers.
[0174] In the time resources utilized for SSFD operation, the entire frequency resource can be used for both DL and UL. Alternatively, to reduce the impact of interference from other adjacent carriers (which can be referred to as ACI (Adjacent Carrier Interference)), some frequency resources located at one or both ends of the carrier can be not used for DL and / or UL. That is, one or both ends of the carrier can be used as unused guard bands (guard sub-bands) for both DL and UL. Alternatively, to reduce ACI on UL reception, one or both ends of the carrier can be used only for DL transmission.
[0175] In the present disclosure, the time slot resources for HD operation are referred to as HD time slots, and the time slot resources for SBFD operation and SSFD operation are referred to as SBFD time slots and SSFD time slots respectively. SBFD time slots and SSFD time slots are also collectively referred to as FD time slots.
[0176] In the present disclosure, in the time resources for FD operation, among all the frequency resources, for convenience, the frequency resources operating in DL can be referred to as DL sub-bands, and the frequency resources operating in UL can also be referred to as UL sub-bands.
[0177] In the case of full-duplex operation, both the base station and the UE can perform full-duplex operation. That is, both the base station and the UE can simultaneously perform DL and UL transmission and reception using the same or different frequency resources in the same time resource.
[0178] Alternatively, only the base station can perform full-duplex operation, while the UE can perform half-duplex operation. The base station can simultaneously perform DL and UL transmission and reception using the same or different frequency resources in the same time resource, but the UE only performs DL reception or UL transmission in specific time resources. In this case, the base station performs full-duplex operation by simultaneously performing DL transmission and UL reception with different UEs.
[0179] In the present disclosure, the base station can perform / support full-duplex operation, while the UE can perform / support half-duplex operation. Alternatively, in the present disclosure, both the base station and the UE can perform / support full-duplex operation.
[0180] <A. Characteristics of DL / UL Time / Frequency Resources for SBFD and SSFD Operations>
[0181] The cell (base station) can perform both DL transmission and UL reception in the same time resource in an FD scheme (e.g., SBFD or SSFD). For example, the base station can perform HD operation in the first time resource and FD operation in the second time resource (which can be a time resource other than the first time resource).
[0182] Through this operation, the network can change the time resources used for transmission and reception between the first and second time resources, depending on the type of signal / channel to be transmitted and received or on the UE performing the transmission and reception. For example, for critical signals / channels less affected by interference and requiring improved transmission and reception performance (e.g., SSB and PRACH), resources can be configured such that transmission and reception are performed only in the first time resource, operating in half-duplex mode. Thus, while applying full-duplex to the cell, the transmission and reception performance of the signal / channel can be maintained. Alternatively, if the UE is significantly affected by CLI (Cross-Link Interference) when operating in full-duplex mode in the second time resource and therefore cannot properly perform transmission and reception, transmission and reception performance for the UE can be ensured by configuring resources to perform transmission and reception in the first time resource.
[0183] During the first time resource for HD operation, the UE / base station performs either DL or UL operation across all frequency resources constituting the entire system bandwidth. Within the first time resource for HD operation, the network performs DL operation via time resource 1-1 and UL operation via time resource 1-2. At this time, time resources 1-1 and 1-2 do not overlap.
[0184] In the second time resource for performing FD operation, the UE / base station performs DL operation through all or part of the frequency resources (first frequency resources) in the frequency resources of the system BW constituting the cell, and performs UL operation through all or part of the frequency resources (second frequency resources).
[0185] Figure 16 Examples of first time resources, second time resources, first frequency resources, and second frequency resources are shown.
[0186] Reference Figure 16 In (a), the operation is performed as HD in the first time resource (denoted by A). In the second time resource (denoted by B), for example, it can be performed as SBFD. In the first time resource, the resource indicated by DL corresponds to the 1-1 time resource described above, and the resource indicated by UL corresponds to the 1-2 time resource described above.
[0187] Reference Figure 16 (b) In the second time resource, the frequency resource for DL operation corresponds to the first frequency resource, and the frequency resource for UL operation corresponds to the second frequency resource.
[0188] Figure 17 Another example of first time resources, second time resources, first frequency resources, and second frequency resources is shown.
[0189] Reference Figure 17 In (a), in the first time resource (labeled A), the device operates as a half-duplex. In the second time resource (labeled B), the device may, for example, operate as an SSFD. In the first time resource, the resource labeled DL corresponds to the aforementioned 1-1 time resource, and the resource labeled UL corresponds to the aforementioned 1-2 time resource.
[0190] Reference Figure 17 (b) In the second time resource, the frequency resource for DL and DL+UL operations corresponds to the first frequency resource described above, and the frequency resource for DL+UL operations corresponds to the second frequency resource described above.
[0191] The first frequency resource and / or the second frequency resource may have all or some of the following characteristics.
[0192] 1) During SBFD operation, the first and second frequency resources do not overlap. This is to ensure that DL and UL operations are performed using different frequency resources. At this time, there may be frequency resources that do not correspond to both the first and second frequency resources, and these frequency resources are referred to as guard subbands or guard frequency resources. These guard frequency resources may be needed to reduce interference from DL transmissions to UL reception. Guard frequency resources can be located between the first and second frequency resources.
[0193] 2) During SSFD operation, the first and second frequency resources may overlap. In this case, there may be frequency resources that do not correspond to both the first and second frequency resources, and these frequency resources are referred to as guard subbands or guard frequency resources. These guard frequency resources may be needed to reduce interference from DL transmissions on adjacent carriers to UL reception, and / or to reduce interference from DL transmissions to UL receptions on adjacent carriers.
[0194] 3) During SBFD operation, the second frequency resource can consist of contiguous frequency resources, while the first frequency resource can consist of discontinuous frequency resources. In this case, the first frequency resource can consist of multiple (e.g., two) discontinuous sets, and each set can consist of contiguous frequency resources. This is to reduce interference from DL transmissions on adjacent carriers to the UL resource by placing the second frequency resource used for DL at the center of the frequency resources constituting the cell. Conversely, the first frequency resource can consist of contiguous frequency resources, while the second frequency resource can consist of discontinuous frequency resources. In this case, the second frequency resource can consist of multiple (e.g., two) discontinuous sets, and each set can consist of contiguous frequency resources. This is to reduce interference from DL transmissions on adjacent carriers to the UL resource by placing the second frequency resource used for DL at the center of the frequency resources constituting the cell.
[0195] 4) When performing SSFD operation, the second frequency resource can consist of some frequency resources from the first frequency resource. In this case, the second frequency resource can be configured to have X fewer physical resource blocks (PRBs) than the first frequency resource on one or both sides of the carrier. This is to reduce interference from DL transmissions on adjacent carriers to UL reception.
[0196] Through the above operations, the base station can perform half-duplex operation. In half-duplex operation, in the first time resource, only one of DL transmission or UL reception is performed in all frequency resources constituting the cell. It can also perform full-duplex operation. In full-duplex operation, in the second time resource, DL transmission is performed through the first frequency resource within the frequency resources constituting the cell, and UL reception is performed simultaneously through the second frequency resource within the frequency resources constituting the cell.
[0197] As described above, the network determines the 'first time resource' and 'second time resource', as well as the 'first frequency resource' and 'second frequency resource', and provides all or part of the corresponding information to the UE. The network can perform DL transmission to the UE in the 1-1 time resource within the first time resource and in the first frequency resource within the second time resource, and can perform UL reception from the UE in the 1-2 time resource within the first time resource and in the second frequency resource within the second time resource.
[0198] The network can provide the UE with all or some of the information regarding the aforementioned 'first time resource' and 'second time resource', as well as 'first frequency resource' and 'second frequency resource', and can determine the location of the resources. The UE can perform DL reception from the network through all or some of the 1-1 time resource within the first time resource and the first frequency resource within the second time resource, and can perform UL transmission to the network through the 1-2 time resource within the first time resource and the second frequency resource within the second time resource.
[0199] Meanwhile, in traditional NR TDD carriers, the base station performs only one operation—either downlink or uplink—during specific time resources. In this case, during the time resources for transmitting SSBs, the base station always operates in the downlink mode.
[0200] When the UE operates in the traditional TDD mode, the following assumptions are made for the symbols that transmit SSB (SS / PBCH).
[0201] 1) SS / PBCH transport symbols can be configured as uplinks without TDD configuration (e.g., 'TDD-UL-DL-ConfigCommon' and / or 'TDD-UL-DL-ConfigDedicated').
[0202] 2) SS / PBCH transmission symbols can be configured as uplinks in SFI (Slot Format Indication) without using DCI format 2_0.
[0203] 3) When SS / PBCH is transmitted in a flexible symbol configured via TDD (e.g., 'TDD-UL-DL-ConfigCommon' and / or 'TDD-UL-DL-ConfigDedicated'), uplink transmission is not performed if the UE's uplink transmission overlaps with the SS / PBCH symbol. In the case of SRS, SRS transmission is not performed in the overlapping symbol if SRS overlaps with the SS / PBCH symbol in a flexible symbol.
[0204] Furthermore, in FDs such as SBFD and SSFD, from the cell's perspective, DL resources and UL resources can both exist in the same time resources. Therefore, the base station can perform uplink reception while performing downlink transmission. Thus, even when transmitting SS / PBCH in the time resources for performing FD operation in the cell, the base station can perform uplink reception simultaneously.
[0205] Furthermore, under current standards and specifications, UEs cannot perform uplink transmissions within the symbol resources for transmitting SS / PBCH. That is, UEs cannot perform FD operations within the base station's SS / PBCH transmission time resources.
[0206] When a specific time resource is set as a time resource operating in SBFD mode (SBFD symbol), both DL (Deep Length) and UL (Ultra Length) resources can exist within that time resource. In this case, if there is no UL signal to be received by the base station in that time resource, the base station can perform only DL transmission. In SBFD resources, DL transmission is only performed within the DL subband. Therefore, even if there is no UL signal to be transmitted in the UL subband, only DL transmission can be performed within the DL subband.
[0207] In this scenario, if the base station has no UL transmissions to receive, even if the resources at a specific time are designated as SBFD symbols, it can consider performing DL transmissions both outside and within the DL subband to improve DL throughput. In other words, it can consider performing DL transmissions across the entire frequency band.
[0208] In other words, for resources identified as SBFD symbols, it is possible to consider reverting to TDD operation, where DL or UL operation is performed across the entire frequency band, rather than SBFD operation on the DL / UL subband.
[0209] This disclosure provides a description assuming a cell simultaneously performs DL and UL SBFD operations using different frequency resources (e.g., subbands) within the same time resource. However, the contents of this disclosure can also be applied even when the cell performs SSFD operations.
[0210] In a wireless communication system, i) the base station can perform full-duplex operation and the UE can perform half-duplex operation, or ii) the base station can perform half-duplex operation and the UE can perform full-duplex operation. Alternatively, iii) both the base station and the UE can support full-duplex operation.
[0211] UEs that know the base station can perform full-duplex operation will be referred to as FD-aware UEs in the following text. UEs that know the base station can perform SBFD operation will be referred to as SBFD-aware UEs in the following text. UEs that know the base station can perform SSFD operation will be referred to as SSFD-aware UEs in the following text.
[0212] When a base station supports both half-duplex and full-duplex operations, the base station can notify the UE of information about the resources (time and / or frequency) for which half-duplex and full-duplex operations can be performed (or are expected to be performed or are to be performed).
[0213] When the base station is a full-duplex base station capable of performing SSFD operation, UL reception can be possible simultaneously in some and / or all frequency resources where DL transmission is possible. That is, in some frequency resources, not only DL transmission / reception but also UL reception / transmission is possible. In this case, information about the frequency resources where SSFD is possible can be delivered to the UE. Furthermore, information about the time resources where SSFD is possible can be delivered to the UE.
[0214] In the case of a full-duplex UE, UL transmission may be possible simultaneously in some and / or all frequency resources where DL reception of the UE is possible. In this disclosure, a UE performing half-duplex operation may be referred to as an HD UE, and a UE capable of performing (or executing) full-duplex operation may be referred to as an FD UE.
[0215] When a base station performs full-duplex operations such as SBFD and SSFD, it can perform SSFD and / or SBFD operations only for certain time / frequency resources. When an SBFD-aware UE and / or an SSFD-aware UE know the time / frequency resources for the cell to perform SSFD and / or SBFD operations, the UE can perform operations differently based on the resources for the cell to operate in half-duplex (HD), the resources for the cell to operate in SBFD, and the resources for the cell to operate in SSFD. For example, the UE can perform transmission and reception by determining the time / frequency resources for receiving DL signals / channels and / or transmitting UL signals / channels differently based on HD resources, SBFD resources, and SSFD resources.
[0216] The base station can perform half-duplex operation, in which it performs only one of DL transmission or UL reception in all frequency resources constituting the cell in the time resources of HD operation, and can also perform full-duplex operation, in which it performs DL transmission through the first frequency resource (i.e., DL subband resource) within the frequency resources constituting the cell in the time resources of SBFD and SSFD operation, and simultaneously performs UL reception through the second frequency resource (i.e., UL subband resource) within the frequency resources constituting the cell.
[0217] To this end, the base station determines the time resources corresponding to the first time resource (i.e., the HD symbol) and the second time resource (i.e., the FD symbol), and sends configuration information about the first time resource (i.e., the HD symbol) and / or the second time resource (i.e., the FD symbol) to the UE. The FD symbol may include both SBFD symbols and SSFD symbols. More specifically, the base station may determine / determine the time resources corresponding to the HD symbol, SBFD symbol, and / or SSFD symbol, and may send configuration information about the HD symbol, SBFD symbol, and / or SSFD symbol to the UE.
[0218] In this scenario, DL subband resources and / or UL subband resources can be configured differently in time resources operating under SBFD and SSFD. In time resources operating under SBFD, DL and UL subband resources are configured to not overlap. Conversely, in time resources operating under SSFD, DL and UL subband resources can be configured to overlap. DL / UL subband resources can be configured using some frequency resources of the system bandwidth, or they can be configured using all frequency resources.
[0219] The UE receives configuration information from the network regarding HD symbols, SBFD symbols, and / or SSFD symbols, and determines the locations of these symbols. In this case, within the HD symbol, the UE performs DL reception (UL transmission) using all frequency resources configured for the UE. Furthermore, within the SBFD and / or SSFD symbols, the UE performs DL reception (UL transmission) using DL subband resources (UL subband resources), which are the same as or less than the frequency resources used by the UE for DL reception (UL transmission) in the HD symbol. In this case, even when frequency resources that do not correspond to DL subband resources (UL subband resources) are configured for DL reception (UL transmission) in the SBFD and / or SSFD symbol resources, the UE does not perform DL reception (UL transmission) in frequency resources that do not correspond to DL subband resources (UL subband resources).
[0220] In the following text, the network can be interpreted as being replaced by a base station, gNB, or CU / DU. Furthermore, the UE can be interpreted as being replaced by the MT (Mobile Terminal Unit) of the IAB node.
[0221] In the following section, in a wireless communication system supporting full-duplex (FD) operation, a method is described in which the UE determines the number of coded modulation symbols for UCI transmission differently based on time resources for FD operation and time resources for HD operation.
[0222] In time / frequency resources operating in full duplex (FD), the channel environment may be worse than in resources operating in half duplex (HD) due to cross-link interference (CLI) and self-interference (SI).
[0223] Therefore, when performing UCI transmissions via PUCCH or PUSCH in FD resources based on the channel environment in resources operating in HD, UCI transmissions may not be executed correctly.
[0224] In view of the above, a method for adjusting the amount of UCI transmission resources and the UCI transmission rate is described, such that when the UE transmits UCI in the FD time slot, the amount of resources for transmitting UCI can be increased or the transmission rate of UCI can be decreased compared to the case where the UE transmits UCI in the HD time slot.
[0225] Examples of UCI types transmitted by the UE may include HARQ-ACK, CSI Part 1, CSI Part 2, CG-UCI, etc. One or more of these various types of UCI can be multiplexed and transmitted via PUCCH or PUSCH. For XR (Extended Reality), a new type of UCI can be introduced, namely, UTO (Unused Transmission Occasion)-UCI. In this disclosure, CG-UCI can be interpreted as being replaced by UTO-UCI.
[0226] Considering that the UE can perform FD operation and whether the UE performs HD / FD operation can vary for each time resource, in this disclosure, "resources for cell HD operation" and "resources for cell FD operation" can be interpreted as being replaced by "resources for UE HD operation" and "resources for UE FD operation", respectively.
[0227] In this disclosure, a method is proposed for intra-carrier full-duplex operation in which the UE determines the number of coded modulation symbols for UCI transmission differently based on the time resources of the cell operating in FD mode and the time resources of the cell operating in HD mode.
[0228] <Number of coded modulation symbols per layer when transmitting UCI via PUSCH>
[0229] According to existing standards and specifications, when transmitting UCI via PUSCH, the number of coded modulation symbols for each layer of UCI is determined as follows. Since one coded modulation symbol maps to one resource element (RE), the number of coded modulation symbols for each layer can also be considered as the number of resource elements (REs).
[0230] 1) HARQ-ACK
[0231] In the case of HARQ-ACK transmission on PUSCH, the number of coded modulation symbols per layer used for HARQ-ACK transmission can be determined as follows (by Q'). ACK express).
[0232] [Equation 1]
[0233] In the above equation, O ACK It is the number of HARQ-ACK bits.
[0234] If O ACK If L is equal to or greater than 360, then ACK It should be 11. Otherwise, L ACK It is the number of CRC (Cyclic Redundancy Check) bits used for HARQ-ACK.
[0235]
[0236] C UL-SCH This is the number of UL-SCH code blocks used for PUSCH transmission.
[0237] If the DCI format for scheduling PUSCH transmissions includes a CBGTI field instructing the UE not to send the r-th code block, then K r =0, otherwise, K r It is the size of the r-th code block of the UL-SCH transmitted by PUSCH.
[0238] M PUSCH sc It is the scheduling bandwidth of PUSCH transmission and is expressed as the number of subcarriers.
[0239] M PT-RS sc (l) is the number of subcarriers in OFDM symbol l carrying PTRS (phase tracking reference signal) in PUSCH transmission.
[0240] M UCI sc (l) is the number of resource elements that can be used for the transmission of UCI in OFDM symbol l in PUSCH transmission. l is 0, 1, 2, ..., N. PUSCH symb,all -1. N PUSCH symb,all It is the total number of OFDM symbols in PUSCH, including OFDM symbols used for DMRS.
[0241] In the OFDM symbol carrying PUSCH DMRS, M UCI sc (l) is 0.
[0242] In OFDM symbols of DMRS that do not carry PUSCH, M UCI sc (l) equals M PUSCH sc - M PT-RS sc (l)(M UCI sc (l)= M PUSCH sc - M PT-RS sc (l)).
[0243] α (alpha) is configured by the high-level parameter "scaling".
[0244] l0 is the symbol index of the first OFDM symbol among the OFDM symbols that do not carry PUSCH, following the first DMRS symbol in the PUSCH transmission.
[0245] 2) CSI Part 1
[0246] In the case of CSI Part 1 transmission on PUSCH, the number of coded modulation symbols per layer for CSI Part 1 transmission can be determined as follows (by Q'). CSI-part1 express).
[0247] [Equation 2]
[0248] In the above equation, O CSI-1 This refers to the number of bits for CSI part 1.
[0249] If O CSI-1 If L is equal to or greater than 360, then CSI-1 It is 11. Otherwise, L CSI-1 This refers to the number of CRC bits for CSI part 1.
[0250]
[0251] C UL-SCH This is the number of UL-SCH code blocks used for PUSCH transmission.
[0252] If the DCI format for scheduling PUSCH transmissions includes a CBGTI field instructing the UE not to send the r-th code block, then K r =0, otherwise, K r It is the size of the r-th code block of the UL-SCH transmitted by PUSCH.
[0253] M PUSCH sc It is the scheduling bandwidth of PUSCH transmission and is expressed as the number of subcarriers.
[0254] M PT-RS sc (l) is the number of subcarriers in OFDM symbol l carrying PTRS in PUSCH transmission.
[0255] If CG-UCI is absent and HARQ-ACK is present in the PUSCH transmission, then Q' ACK / CG-UCI = Q' ACK When the number of HARQ-ACK information bits is greater than 2, Q' ACKQ' is the number of coded modulation symbols for each layer of HARQ-ACK transmitted on the PUSCH, and Q' is the number of HARQ-ACK information bits when the number of HARQ-ACK information bits is equal to or less than 2 bits. ACK yes .here, This refers to OFDM symbol l (l=0, 1, 2, ..., N) in PUSCH transmission. PUSCH symb,all - 1) The number of resource elements reserved by potential HARQ-ACK transmissions.
[0256] If both HARQ-ACK and CG-UCI exist in the same PUSCH, then Q' ACK / CG-UCI = Q' ACK Q' ACK It is the number of coded modulation symbols for each layer of HARQ-ACK and CG-UCI transmitted on PUSCH.
[0257] If CG-UCI exists in the same PUSCH and HARQ-ACK does not exist, then Q' ACK / CG-UCI = Q' CG-UCI Q' CG-UCI It is the number of coded modulation symbols for each layer of CG-UCI transmitted on the PUSCH.
[0258] M UCI sc (l) is the number of resource elements that can be used for the transmission of UCI in OFDM symbol l in PUSCH transmission. l is 0, 1, 2, ..., N. PUSCH symb,all - 1. N PUSCH symb,all It is the total number of OFDM symbols in PUSCH, including OFDM symbols used for DMRS.
[0259] In the OFDM symbol carrying PUSCH DMRS, M UCI sc (l) is 0.
[0260] In OFDM symbols of DMRS that do not carry PUSCH, M UCI sc (l) equals M PUSCH sc - M PT-RS sc (l)(M UCI sc (l)= M PUSCH sc - M PT-RS sc (l)).
[0261] α (alpha) is configured by the high-level parameter "scaling".
[0262] 3) CSI Part 2
[0263] In the case of CSI Part 2 transmission on PUSCH, the number of coded modulation symbols per layer for CSI Part 2 transmission can be determined as follows (by Q'). CSI-part2 express).
[0264] [Equation 3]
[0265] In the above equation, O CSI-2 This refers to the number of bits in CSI part 2.
[0266] If O CSI-2 If L is equal to or greater than 360, then CSI-2 It is 11. Otherwise, L CSI-2 This refers to the number of CRC bits for CSI part 2.
[0267]
[0268] C UL-SCH This is the number of UL-SCH code blocks used for PUSCH transmission.
[0269] If the DCI format for scheduling PUSCH transmissions includes a CBGTI field instructing the UE not to send the r-th code block, then K r =0, otherwise, K r It is the size of the r-th code block of the UL-SCH transmitted by PUSCH.
[0270] M PUSCH sc It is the scheduling bandwidth of PUSCH transmission and is expressed as the number of subcarriers.
[0271] M PT-RS sc (l) is the number of subcarriers in OFDM symbol l carrying PTRS in PUSCH transmission.
[0272] If CG-UCI is absent and HARQ-ACK is present in the PUSCH transmission, then Q' ACK / CG-UCI = Q' ACK When the number of HARQ-ACK information bits is greater than 2, Q' ACK Q' is the number of coded modulation symbols for each layer of HARQ-ACK transmitted on the PUSCH, and when the number of HARQ-ACK information bits is 1 bit or 2 bits, Q'ACK =0.
[0273] If both HARQ-ACK and CG-UCI exist in the same PUSCH, then Q' ACK / CG-UCI = Q' ACK Q' ACK It is the number of coded modulation symbols for each layer of HARQ-ACK and CG-UCI transmitted on PUSCH.
[0274] If CG-UCI exists in the same PUSCH and HARQ-ACK does not exist, then Q' ACK / CG-UCI = Q' CG-UCI Q' CG-UCI It is the number of coded modulation symbols for each layer of CG-UCI transmitted on the PUSCH.
[0275] Q' CSI-1 It is the number of coded modulation symbols for each layer of CSI Part 1 transmitted on the PUSCH.
[0276] M UCI sc (l) is the number of resource elements that can be used for the transmission of UCI in OFDM symbol l in PUSCH transmission. l is 0, 1, 2, ..., N. PUSCH symb,all - 1. N PUSCH symb,all It is the total number of OFDM symbols in PUSCH, including OFDM symbols used for DMRS.
[0277] In the OFDM symbol carrying PUSCH DMRS, M UCI sc (l) is 0.
[0278] In OFDM symbols of DMRS that do not carry PUSCH, M UCI sc (l) equals M PUSCH sc - M PT-RS sc (l)(M UCI sc (l)= M PUSCH sc - M PT-RS sc (l)).
[0279] α (alpha) is configured by the high-level parameter "scaling".
[0280] 4) CG-UCI
[0281] In the case of CG-UCI transmission on PUSCH, the number of coded modulation symbols per layer for CG-UCI transmission can be determined as follows (by Q'). CG-UCI express).
[0282] [Equation 4]
[0283] In the above equation, O CG-UCI It is the number of bits in CG-UCI.
[0284] L CG-UCI It is the number of CRC bits in CG-UCI.
[0285]
[0286] C UL-SCH It is the number of UL-SCH code blocks transmitted by PUSCH.
[0287] K r It is the size of the r-th code block of the UL-SCH transmitted by PUSCH.
[0288] M PUSCH sc It is the scheduling bandwidth of PUSCH transmission and is expressed as the number of subcarriers.
[0289] M PT-RS sc (l) is the number of subcarriers in OFDM symbol l carrying PTRS in PUSCH transmission.
[0290] M UCI sc (l) is the number of resource elements that can be used for the transmission of UCI in OFDM symbol l in PUSCH transmission. l is 0, 1, 2, ..., N. PUSCH symb,all - 1. N PUSCH symb,all It is the total number of OFDM symbols in PUSCH, including OFDM symbols used for DMRS.
[0291] In the OFDM symbol carrying PUSCH DMRS, M UCI sc (l) is 0.
[0292] In OFDM symbols of DMRS that do not carry PUSCH, M UCI sc (l) equals M PUSCH sc - M PT-RS sc (l)(MUCI sc (l)= M PUSCH sc - M PT-RS sc (l)).
[0293] α (alpha) is configured by the high-level parameter "scaling".
[0294] l0 is the symbol index of the first OFDM symbol among the OFDM symbols that do not carry PUSCH, following the first DMRS symbol in the PUSCH transmission.
[0295] 5) HARQ-ACK and CG-UCI
[0296] In the case of HARQ-ACK and CG-UCI transmissions on the PUSCH, the number of coded modulation symbols per layer for HARQ-ACK and CG-UCI transmissions can be determined as follows (by Q'). ACK express).
[0297] [Equation 5]
[0298] In the above equation, O ACK It is the number of HARQ-ACK bits.
[0299] O CG-UCI It is the number of CG-UCI bits.
[0300] If O ACK + O CG-UCI If L is greater than 360, then ACK It should be 11. Otherwise, L ACK It is the number of CRC bits for HARQ-ACK and CG-UCI.
[0301]
[0302] C UL-SCH It is the number of UL-SCH code blocks transmitted by PUSCH.
[0303] K r It is the size of the r-th code block of the UL-SCH transmitted by PUSCH.
[0304] M PUSCH sc It is the scheduling bandwidth of PUSCH transmission and is expressed as the number of subcarriers.
[0305] M PT-RS sc(l) is the number of subcarriers in OFDM symbol l carrying PTRS in PUSCH transmission.
[0306] M UCI sc (l) is the number of resource elements that can be used for the transmission of UCI in OFDM symbol l in PUSCH transmission. l is 0, 1, 2, ..., N. PUSCH symb,all - 1. N PUSCH symb,all It is the total number of OFDM symbols in PUSCH, including OFDM symbols used for DMRS.
[0307] In the OFDM symbol carrying PUSCH DMRS, M UCI sc (l) is 0.
[0308] In OFDM symbols of DMRS that do not carry PUSCH, M UCI sc (l) equals M PUSCH sc - M PT-RS sc (l)(M UCI sc (l)= M PUSCH sc - M PT-RS sc (l)).
[0309] α (alpha) is configured by the high-level parameter "scaling".
[0310] l0 is the symbol index of the first OFDM symbol among the OFDM symbols that do not carry PUSCH, following the first DMRS symbol in the PUSCH transmission.
[0311] As shown in Equations 1 through 5, the number of coded modulation symbols per layer of each UCI (which, depending on the UCI type, may also be referred to as the number of UCI transmission REs) is configured in the form of min{A, B}. min{A, B} is a function of the minimum value among the outputs A and B.
[0312] In min{A, B}, the left-hand term A can be considered as the part used to determine the number of UCI transmitted REs based on the PUSCH rate, and the number of UCI transmitted REs is obtained based on "UCI payload size" and "number of transmitted REs per PUSCH / number of transmitted bits per PUSCH". In this case, the number of UCI transmitted REs is calculated with an offset value β. PUSCH offset Scaling.
[0313] Offset values can be defined to determine the amount of resources used for HARQ-ACK information multiplexed by the UE, and the amount of resources used for CSI reports multiplexed on the PUSCH. Offset values are also defined for CG-UCI multiplexing on the CG-PUSCH. Offset values are communicated to the UE either by scheduling the DCI format of PUSCH transmissions or by signaling the offset values to the UE from a higher layer.
[0314] Depending on the UCI type, this β PUSCH offset The values can be different, and β HARQ-ACK offset β CSI-1 offset and β CSI-2 offset The values are applied to the UCI types of HARQ-ACK, CSI Part 1, and CSI Part 2, respectively.
[0315] In min{A, B}, the right-hand term B can be considered as part of setting the upper limit of the number of UCI transmission REs, and the number of UCI transmission REs is limited to no more than α(alpha) × "number of transmission REs for PUSCH". This α(alpha) value is configured by the higher-level parameter "scaling".
[0316] In this disclosure, when a UE transmits UCI via PUSCH in a cell performing FD operation, a method is described in which the number of coded modulation symbols for UCI transmission is determined differently based on the time resources of the cell operating under FD and the time resources of the cell operating under HD.
[0317] In the following text, for ease of description, when UCI is transmitted via PUSCH, the number of coded modulation symbols per layer is referred to as Q'. Depending on the type of UCI transmitted by the UE, this Q' can be represented as Q''. ACK Q' CSI-1 Q' CSI-2 Q' CG-UCI wait.
[0318] Proposal 1. Determine β based on time slot type PUSCH offset The method.
[0319] According to standard specifications, β PUSCH offset The value can be semi-statically configured to the UE via RRC signaling, or dynamically indicated via DCI signaling. When UCI is multiplexed and transmitted over general PUSCH transmission, for example, it can be configured from the base station to the UE with betaOffsets in the "UCI-OnPUSCH" field as follows.PUSCH offset Relevant information.
[0320] [Table 5]
[0321] When semi-statically configured β PUSCH offset When the value (which can be called β offset) is specified, "betaOffsets" in Table 5 is indicated as "semiStatic" and "BetaOffsets" is indicated.
[0322] Within a "BetaOffsets" information element (IE), the index value for the beta offset is indicated for each of the multiple UCI types (which can be called the beta offset index; for example, it can be represented as I when the UCI is HARQ-ACK). HARQ-ACK offset In this disclosure, each index information indicated by the “BetaOffsets” IE (e.g., betaOffsetACK-Index1, betaOffsetACK-Index2, betaOffsetACK-Index3, betaOffsetCSI-Part1-Index1, betaOffsetCSI-Part1-Index2, betaOffsetCSI-Part2-Index1, betaOffsetCSI-Part2-Index2, etc.) is called the index of the beta offset information or the beta offset index.
[0323] In this case, depending on each UCI type, a β that maps to the β offset index can be defined in the standard specification. PUSCH offset The value of . That is, when "betaOffsets" is indicated as "semiStatic", the UE will be associated with the β index corresponding to the index indicated by "BetaOffsets". PUSCH offset The value is determined as β applied by the UE. PUSCH offset value.
[0324] For example, the UE can configure I through "betaOffsetACK-Index1" in "BetaOffsets". HARQ -ACK offset,0 The value. In this case, the UE can determine the configured value of "betaOffsetACK-Index1" as I. HARQ -ACK offset,0The value will be mapped to the I in the standard specification. HARQ-ACK offset,0 The value of β HARQ-ACK offset The value is determined by the β applied by the UE. HARQ-ACK offset The value of .
[0325] When dynamically indicating β PUSCH offset When the value is specified, "betaOffsets" in Table 5 is indicated as "dynamic", and multiple "BetaOffsets" are indicated. Within a single "BetaOffsets" IE, the index values for the β offsets of multiple UCI types are indicated as follows.
[0326] Subsequently, the UE is informed of the "BetaOffsets" information applied by the UE from among multiple "BetaOffsets" information via a specific field in the UL license (e.g., the "beta_offset indicator" field). The "BetaOffsets" information applied by the UE based on the "beta_offset indicator" value can be defined in the standard specification.
[0327] In other words, the UE determines the index value of the β offset to be applied based on the indicated "beta_offset indicator". Subsequently, the UE maps the β value to the index of the β offset to be applied. PUSCH offset The value is determined by the β applied by the UE. PUSCH offset The value of .
[0328] For example, a UE can configure multiple "betaOffsetACK-Index1" values by configuring multiple "BetaOffsets". Subsequently, the "beta_offset indicator" field in the UL license indicates the "beta_offset indicator" value applied by the UE. When the "beta_offset indicator" value is indicated as i, the UE determines the value of "betaOffsetACK-Index1" configured by the i-th "BetaOffsets" indicated by "betaOffsets" as I. HARQ -ACK offset,0 The value. UE can map to I. HARQ-ACK offset,0 The value of β HARQ-ACK offset The value is determined by the β applied by the UE. HARQ-ACKoffset The value of .
[0329] Table 6 shows an example of "BetaOffsets".
[0330] [Table 6]
[0331] As described above, in this disclosure, in order for the UE to determine Q' (Q' is the number of coded modulation symbols per layer of UCI), the UE determines the β to be applied differently based on the time slot type of the time slot transmitting the UCI. PUSCH offset The value of .
[0332] Here, the time slot type can represent HD time slot and FD time slot. That is, depending on whether the time slot in which the UE multiplexes UCI and transmits UCI on the PUSCH is an HD time slot or an FD time slot, the UE can determine which β to apply differently. PUSCH offset The value of .
[0333] More specifically, HD time slots and FD time slots can be represented as follows.
[0334] HD time slots can represent time slots in which all symbols within a time slot operate in HD. On the other hand, FD time slots can represent i) time slots in which all symbols within a time slot operate in FD. ii) alternatively, FD time slots can represent time slots in which at least one symbol within a time slot operates in FD.
[0335] Alternatively, an HD time slot may represent a time slot in which all symbol resources for PUSCH transmission by the UE in the corresponding time slot consist of symbols operating in HD (e.g., UL symbols). On the other hand, an FD time slot may represent i) a time slot in which all symbol resources for PUSCH transmission by the UE in the corresponding time slot consist of symbols operating in FD, or ii) a time slot in which at least one of the symbol resources for PUSCH transmission in the corresponding time slot consists of symbols operating in FD.
[0336] In this disclosure, a symbol / time slot operating in HD can represent a symbol / time slot semi-statically configured to the UE by the base station, which serves as a symbol / time slot operating in HD for the cell. In this disclosure, a symbol / time slot operating in FD can represent a symbol / time slot semi-statically configured to the UE by the base station, which serves as a symbol / time slot operating in FD for the cell. Subsequently, when the base station dynamically indicates to the UE whether a specific symbol / time slot resource operates in HD or FD, the UE can determine the time slot for transmitting UCI by considering only the semi-statically indicated information.
[0337] The UE can determine the β to be applied to the HD time slot and the FD time slot differently as follows. PUSCHoffset The value of .
[0338] Option 1. The UE is independently instructed by the base station via RRC signaling to apply β to the HD and FD time slots. PUSCH offset The value of . More specifically, regarding β PUSCH offset The information can be indicated as at least one of options 1-1 and 1-2 below. Option 1 can be applied to semi-statically configure β. PUSCH offset The value of β and its dynamic indication PUSCH offset The value of both.
[0339] Option 1-1. In the higher-level parameter "BetaOffsets" IE, the β offset index applied to the HD timeslot and the β offset index applied to the FD timeslot are configured independently. In this case, when the timeslot transmitting the UCI is an HD timeslot, the UE can determine the β offset index by applying the β offset index applied to the HD timeslot. PUSCH offset The value of β. Alternatively, when the time slot for transmitting UCI is an FD time slot, the UE can determine β by applying the β offset index applied to the FD time slot. PUSCH offset The value of .
[0340] Option 1-2. In the high-level parameter “betaOffsets”, the “BetaOffsets” information applied to HD time slots and the “BetaOffsets” information applied to FD time slots are configured independently.
[0341] i) More specifically, when “betaOffsets” = “semiStatic”, the “BetaOffsets” information applied to HD time slots and the “BetaOffsets” information applied to FD time slots can be configured independently. In this case, when the time slot for transmitting UCI is an HD time slot, the UE can determine the β offset index and its β offset based on the “BetaOffsets” information applied to the HD time slot. PUSCH offset The value of . Alternatively, when the time slot for transmitting UCI is the FD time slot, the UE can determine the β offset index and its β value by applying the "BetaOffsets" information applied to the FD time slot. PUSCH offset The value of .
[0342] ii) When “betaOffsets” = “dynamic”, 1) Multiple "BetaOffsets" (BetaOffsets sequences) applied to HD time slots and multiple "BetaOffsets" (BetaOffsets sequences) applied to FD time slots can be configured independently. In this case, when the time slot for transmitting UCI is an HD time slot, the UE can determine the "BetaOffsets" information corresponding to the "beta_offset indicator" indicated by DCI from among the multiple "BetaOffsets" (BetaOffsets sequences) applied to the HD time slot, and can determine the β offset index and its β offset index by applying the corresponding "BetaOffsets" information. PUSCH offset The value of . Alternatively, when the time slot for transmitting UCI is the FD time slot, the UE can determine the "BetaOffsets" information corresponding to the "beta_offset indicator" indicated by DCI among multiple "BetaOffsets" (BetaOffsets sequences) applied to the FD time slot, and can determine the β offset index and its β value by applying the corresponding "BetaOffsets" information. PUSCH offset The value of .
[0343] 2) Alternatively, when the prior art configures multiple "BetaOffsets" (a sequence of BetaOffsets) consisting of A "BetaOffsets", in the method of option 1-2, it is possible to configure a sequence of 2... A "BetaOffsets" constitute multiple "BetaOffsets" (a sequence of BetaOffsets). In this case, the A "BetaOffsets" can be "BetaOffsets" applied to the HD time slot, and the remaining A "BetaOffsets" can be "BetaOffsets" applied to the FD time slot. In this case, when the time slot for transmitting UCI is the HD time slot, the UE can determine the "BetaOffsets" information corresponding to the "beta_offset indicator" indicated by DCI within the A "BetaOffsets" applied to the HD time slot, and can determine the β offset index and its β offset index by applying the corresponding "BetaOffsets" information. PUSCH offsetThe value of . Alternatively, when the time slot for transmitting UCI is the FD time slot, the UE can determine the "BetaOffsets" information corresponding to the "beta_offset indicator" indicated by DCI within the remaining A "BetaOffsets" applied to the FD time slot, and can determine the β offset index and its β value by applying the corresponding "BetaOffsets" information. PUSCH offset The value of .
[0344] In other words, when a specific β offset index is indicated to the UE, when the time slot for transmitting the UCI is an HD time slot, the UE can determine the "BetaOffsets" corresponding to the corresponding β offset index within the "BetaOffsets" applied to the HD time slot, and when the time slot for transmitting the UCI is an FD time slot, the UE can determine the "BetaOffsets" corresponding to the corresponding β offset index within the "BetaOffsets" applied to the FD time slot.
[0345] Options 1-3. In the higher-level parameter "betaOffsets" information, the "betaOffsets" applied to HD time slots and the "betaOffsets" applied to FD time slots are configured independently. For example, in "UCI-OnPUSCH", the "betaOffsets" applied to HD time slots and the "betaOffsets" applied to FD time slots are configured independently. In this case, when the time slot transmitting UCI is an HD time slot, the UE can determine the β offset index and its β offset based on the "betaOffsets" information applied to HD time slots. PUSCH offset The value of . Alternatively, when the time slot for transmitting UCI is an FD time slot, the UE can determine the β offset index and its β value by applying the "betaOffsets" information applied to the FD time slot. PUSCH offset The value of .
[0346] Option 2. The base station independently indicates to the UE, via DCI (UL License), the beta applied to the HD and FD time slots. PUSCH offset The value of . More specifically, regarding β PUSCH offset The information can be indicated as option 2-1 below. This method can be applied to dynamically indicate β. PUSCH offset The value of .
[0347] Option 2-1. Through DCI, the "beta_offset indicator" for HD time slots and the "beta_offset indicator" for FD time slots can be indicated independently. In this case, when the time slot transmitting the UCI is an HD time slot, the UE can determine the β offset index and its β based on the "beta_offset indicator" applied to the HD time slot. PUSCH offset The value of β. When the time slot for transmitting UCI is the FD time slot, the UE can determine the β offset index and its value by applying the "beta_offset indicator" information applied to the FD time slot. PUSCH offset The value of .
[0348] Option 3. The β represented by the information configured / instructed to the UE can be interpreted differently depending on the time slot type (HD time slot or FD time slot). PUSCH offset Information. More specifically, this can be as follows.
[0349] Option 3-1. The β offset index information, represented by the "beta_offsetindicator" value indicated by DCI, can be defined independently for HD and FD time slots. That is, for a specific "beta_offsetindicator" value indicated to the UE, the β offset index information mapped to the corresponding "beta_offsetindicator" value (i.e., the "BetaOffsets" information applied across multiple "BetaOffsets") can differ depending on whether the time slot transmitting the UCI is an HD or FD time slot. In this case, regarding the "beta_offsetindicator" value indicated by DCI, when the time slot transmitting the UCI is an HD time slot, the UE can determine the β offset index information mapped to the corresponding "beta_offset indicator" value in the HD time slot and the β offset index information based on it. PUSCH offset The value of . Alternatively, regarding the "beta_offset indicator" value indicated by DCI, when the time slot transmitting UCI is an FD time slot, the UE can determine the β offset index information in the FD time slot mapped to the corresponding "beta_offset indicator" value and based on its β PUSCH offset The value of .
[0350] Option 3-2. A β offset index, mapped to the β offset index information determined by the UE, can be defined independently for both HD and FD time slots. PUSCHoffset The value of β. That is, regarding the specific β offset index information determined by the UE, depending on whether the time slot for transmitting the UCI is an HD time slot or an FD time slot, the β value is mapped to the corresponding index information. PUSCH offset The values can be different. In this case, regarding a specific β offset index value, when the time slot for transmitting the UCI is an HD time slot, the UE can map the β in the HD time slot to the corresponding β offset index value. PUSCH offset The value is determined as β for UE application. PUSCH offset The value of . Alternatively, when the time slot for transmitting UCI is the FD time slot, the UE can map the β in the FD time slot to the corresponding β offset index value. PUSCH offset The value is determined as β for UE application. PUSCH offset The value of .
[0351] Option 3-3. The β offset index information applied by the UE can be interpreted / determined differently for HD and FD time slots.
[0352] For example, when the UE refers to the β offset index information determined based on existing standard specifications as IHD, and the time slot for transmitting UCI is an HD time slot, the UE can map the β offset index information to the IHD. PUSCH offset The value is determined as β for UE application. PUSCH offset The value of . On the other hand, when the time slot for transmitting UCI is an FD time slot, the UE can determine IHD+Z or IHD×Z as the β offset index to be applied, and can map the β to the corresponding index. PUSCH offset The value is determined as β for UE application. PUSCH offset The Z value. Here, the Z value can be fixed / defined as a specific value by a standard specification. Alternatively, the Z value can be information configured / indicated to the UE by the base station through RRC / MAC-CE / DCI signaling, etc.
[0353] Options 3-4. The β applied by the UE based on the β offset index determined by the UE can be interpreted / determined differently for HD and FD time slots. PUSCH offset The value of .
[0354] For example, when the UE determines β based on the β offset index information according to existing standard specifications... PUSCH offset The value of β is called β PUSCH offset,HD When the UCI is transmitted in the HD time slot, the UE can use β. PUSCHoffset,HD β determined for UE application PUSCH offset The value of β. When the time slot for transmitting UCI is the FD time slot, the UE can use β. PUSCH offset,HD +Y or β PUSCH offset,HD ×Y is determined as the β of the UE application. PUSCH offset The value of Y. The Y value can be fixed / defined by a standard specification. Alternatively, the Y value can be information configured / indicated to the UE by the base station through RRC / MAC-CE / DCI signaling, etc.
[0355] When the UE determines that it is applying β to multiplexing on PUSCH and sending UCI, PUSCH offset When the value is , multiple proposed methods can be applied together in the proposed method.
[0356] The proposed different methods can be applied to semi-statically determine β applied by the UE. PUSCH offset The case of the value and the case of dynamically determining the value.
[0357] According to the method proposed in this disclosure, the UE can operate as follows.
[0358] The UE determines the time resources for the cell to operate in HD and the time resources for the cell to operate in FD based on the configuration information from the base station.
[0359] Subsequently, when the UE multiplexes UCI on the PUSCH and transmits UCI in a specific time slot n, the UE determines the β applied to the UCI transmission based on whether the corresponding time slot n is an HD time slot or an FD time slot using the method proposed above. PUSCH offset The value of .
[0360] Subsequently, the UE is based on β PUSCH offset The determined value determines the number of coded modulation symbols for each layer used in UCI transmission, and the output bit sequence after rate matching of UCI transmission is obtained according to the corresponding number.
[0361] This can be achieved by setting the output sequence length of the rate-matched output sequence to E. r = floor(E UCI / C UCI To perform rate matching. Here, C UCI It is the number of UCI code blocks, and E UCI = N L Q' CG-UCI Qm N L It is the number of transport layers in PUSCH, and Q m It is the modulation order of PUSCH.
[0362] Subsequently, in time slot n, the UE multiplexes the output bit sequence on the PUSCH and sends the output bit sequence to the base station.
[0363] According to the proposals in this disclosure, the base station may operate as follows.
[0364] The base station determines / decides the resources for the cell to operate in FD mode and / or the resources for the cell to operate in HD mode, and signals the UE to notify it of the information regarding the time resources for the cell to operate in HD mode and / or the time resources for the cell to operate in FD mode.
[0365] The base station requests UCI information (such as HARQ-ACK, CSI, and SR) from the UE and receives UCI information via PUCCH or PUSCH.
[0366] When the base station receives UCI information from the UE via PUSCH, the base station determines the β applied to UCI transmission based on whether the corresponding timeslot n is an HD timeslot or an FD timeslot using the method proposed above. PUSCH offset The value of .
[0367] Subsequently, the base station is based on β PUSCH offset The determined value determines the number of coded modulation symbols for each layer used for UCI transmission, and UCI is received based on the corresponding number.
[0368] Proposal 2. A method for determining the α (alpha) value based on the time slot type.
[0369] According to existing standards and specifications, the value of α (alpha) can be semi-statically configured to the UE via RRC signaling. When UCI is multiplexed and transmitted on the general PUSCH transmission, for example, the value of α (alpha) applied by the UE can be configured from the base station to the UE via the “scaling” field of the “UCI-OnPUSCH” field.
[0370] [Table 7]
[0371] In this disclosure, it is proposed that, in order for the UE to determine Q' (Q' is the number of coded modulation symbols per layer of UCI), the UE determines the value of α (alpha) to be applied differently based on the slot type of the slot in which the UCI is transmitted.
[0372] The time slot type can include HD time slots and FD time slots. That is, depending on whether the time slot in which the UE multiplexes UCI and transmits UCI on the PUSCH is an HD time slot or an FD time slot, the UE can determine the value of α (alpha) to be applied differently.
[0373] In this context, HD slots and FD slots can specifically refer to the following.
[0374] HD time slots can represent time slots in which all symbols within a time slot operate in HD. On the other hand, FD time slots can represent i) time slots in which all symbols within a time slot operate in FD, or ii) time slots in which at least one symbol within a time slot operates in FD.
[0375] Alternatively, an HD slot may represent a slot in which all symbol resources for transmitting PUSCH by the UE in the corresponding slot consist of symbols that operate in HD. On the other hand, an FD slot may represent i) a slot in which all symbol resources for transmitting PUSCH by the UE in the corresponding slot consist of symbols that operate in FD, or ii) a slot in which at least one of the symbol resources for transmitting PUSCH in the corresponding slot consists of symbols that operate in FD.
[0376] In this disclosure, a symbol / time slot operating in HD can represent a symbol / time slot semi-statically configured to the UE by the base station, which serves as a symbol / time slot operating in HD for the cell. In this disclosure, a symbol / time slot operating in FD can represent a symbol / time slot semi-statically configured to the UE by the base station, which serves as a symbol / time slot operating in FD for the cell. Subsequently, when the base station dynamically indicates to the UE whether a specific symbol / time slot resource operates in HD or FD, the UE can determine the time slot for transmitting UCI by considering only the semi-statically indicated information.
[0377] The UE can determine the value of α (alpha) to be applied to the HD time slot and the FD time slot in different ways.
[0378] Option 1. The UE is instructed independently by the base station via RRC signaling of the values of α (alpha) applied to HD and FD time slots. To this end, the UE can be configured independently by the base station via higher-layer signaling with values for "scaling" (which may be referred to as scaling information) applied to HD and FD time slots. In this case, when the time slot for transmitting UCI is an HD time slot, the UE can determine the value of α (alpha) by applying the scaling information applied to the HD time slot. Alternatively, when the time slot for transmitting UCI is an FD time slot, the UE can determine the value of α (alpha) by applying the scaling information applied to the FD time slot.
[0379] Option 2. The value of α (alpha) applied by the UE based on the scaling value indicated by the base station via RRC signaling can be interpreted / determined differently for HD and FD time slots. For example, when the value indicated by scaling is called α... HD When the UCI is transmitted in an HD time slot, the UE can transmit α. HD The value is determined as the value of α (alpha) applied by the UE. When the time slot for transmitting UCI is the FD time slot, the UE can use α. HD +W or α HD ×W is determined as the value of α (alpha) applied by the UE. The W value can be fixed / defined as a specific value by a standard specification. Alternatively, the W value can be information configured / indicated to the UE by the base station through RRC / MAC-CE / DCI signaling, etc.
[0380] According to the proposals in this disclosure, the UE may operate as follows.
[0381] The UE determines the time resources for the cell to operate in HD and the time resources for the cell to operate in FD based on the configuration information from the base station.
[0382] Subsequently, when the UE multiplexes UCI on the PUSCH and transmits UCI in a specific time slot n, the UE determines the value of α (alpha) applied to the UCI transmission based on whether the corresponding time slot n is an HD time slot or an FD time slot using the method proposed above.
[0383] Subsequently, the UE determines the number of coded modulation symbols for each layer used for UCI transmission based on the determined α (alpha) value, and obtains the output bit sequence after rate matching for UCI transmission according to the corresponding number.
[0384] Subsequently, in time slot n, the UE multiplexes the corresponding output bit sequence on the PUSCH transmission and sends the output bit sequence to the base station.
[0385] According to the proposals in this disclosure, the base station may operate as follows.
[0386] The base station determines / decides the resources for the cell to operate in FD mode and / or the resources for the cell to operate in HD mode, and signals the UE to notify it of the information regarding the time resources for the cell to operate in HD mode and / or the time resources for the cell to operate in FD mode.
[0387] The base station requests UCI information (such as HARQ-ACK, CSI, and SR) from the UE and receives this UCI information via PUCCH or PUSCH.
[0388] When the base station receives UCI information from the UE via PUSCH, the base station determines the value of α (alpha) applied to UCI transmission based on whether the corresponding time slot n is an HD time slot or an FD time slot using the method proposed above.
[0389] Subsequently, the base station determines the number of coded modulation symbols for each layer used for UCI transmission based on the determined α (alpha) value, and receives UCI based on the corresponding number.
[0390] Proposal 3. Determine M based on time slot type PUSCH sc The method of value.
[0391] According to existing standards and specifications, for PUSCH transmissions that multiplex and send UCI, M PUSCH sc The value represents the "scheduling bandwidth for PUSCH transmission, expressed as the number of subcarriers". This occurs when P Physical Resource Blocks (PRBs) are allocated for PUSCH transmission, and the number of subcarriers in one PRB is N. RB sc At that time, M PUSCH sc The value can be equal to P N RB sc .
[0392] Furthermore, for example, when a cell performs an SBFD operation, some of the total time resources can be used for the SBFD operation, and the remaining time resources can be used for existing HD operations. In this case, it is possible that the base station instructs the UE to transmit a PUSCH based on the time resources used for performing the HD operation, but the UE actually transmits the corresponding PUSCH using the time resources used for performing the SBFD operation.
[0393] In this scenario, frequency resources available for UL transmission in HD operating time resources may not be included in the UL subband of SBFD operating time resources, and therefore may not be used for UL transmission. In this case, the UE can perform actual PUSCH transmission by using only some frequency resources included in the UL subband from the frequency resources allocated by the base station for PUSCH transmission.
[0394] In this scenario, even if the HD operating time resources and SBFD operating time resources receive the same frequency resource allocation for PUSCH transmission, the number of subcarriers the UE uses for PUSCH transmission in the SBFD time resources can be less than M. PUSCH sc value.
[0395] In this disclosure, considering the case where the amount of frequency resources (e.g., the number of PRBs) used by the UE for the same PUSCH transmission differs between time slots in cells operating in HD and those in cells operating in FD, it is proposed that when the UE determines Q' (Q' is the number of coded modulation symbols per layer of UCI), the UE determines the M to be applied differently based on the time slot type of the time slot transmitting the UCI. PUSCH sc The value of .
[0396] In this scenario, the time slot type can include HD time slots and FD time slots. That is, depending on whether the time slot in which the UE multiplexes and transmits the UCI on the PUSCH is an HD time slot or an FD time slot, the UE can determine which M to apply differently. PUSCH sc The value of .
[0397] In this context, HD slots and FD slots can specifically refer to the following.
[0398] HD time slots can represent time slots in which all symbols within a time slot operate in HD. On the other hand, FD time slots can represent time slots in which all symbols within a time slot operate in FD, or time slots in which at least one symbol within a time slot operates in FD.
[0399] Alternatively, an HD time slot may represent a time slot in which all symbol resources for PUSCH transmission by the UE in the corresponding time slot consist of symbols operating in HD (e.g., UL symbols). On the other hand, an FD time slot may represent i) a time slot in which all symbol resources for PUSCH transmission by the UE in the corresponding time slot consist of symbols operating in FD, or ii) a time slot in which at least one of the symbol resources for PUSCH transmission in the corresponding time slot consists of symbols operating in FD.
[0400] In this disclosure, a symbol / time slot operating in HD can represent a symbol / time slot semi-statically configured to the UE by the base station, which serves as a symbol / time slot operating in HD for the cell. In this disclosure, a symbol / time slot operating in FD can represent a symbol / time slot semi-statically configured to the UE by the base station, which serves as a symbol / time slot operating in FD for the cell. Subsequently, when the base station dynamically indicates to the UE whether a specific symbol / time slot resource operates in HD or FD, the UE can determine the time slot for transmitting UCI by considering only the semi-statically indicated information.
[0401] The UE can determine the M to be applied to the HD time slot and the FD time slot differently as follows. PUSCH sc The value of .
[0402] The UE can receive frequency resource information for scheduling PUSCH from the base station via RRC and / or DCI signaling, and can determine from the corresponding information that P1 PRBs have been allocated for PUSCH transmission. In this case, when the time slot for transmitting UCI is an HD time slot, the UE can determine M based on the number of P1 PRBs. PUSCH sc The value. That is, when the UCI is transmitted in the HD time slot, the UE can transmit P1. N RB sc Determined as M PUSCH sc Value. When the time slot for transmitting UCI is the FD time slot, the UE can determine M based on the number of PRBs among P1 PRBs used for PUSCH transmission in the corresponding time slot. PUSCH sc The value. That is, when the time slot for transmitting UCI is the FD time slot, and when the number of PRBs used for PUSCH transmission in the FD time slot is P2, the UE can use P2 N RB sc Determined as M PUSCH sc value.
[0403] In this case, more specifically, P2 can be as follows.
[0404] Alternative option a. P2 can be equal to the number of PRBs included in the UL subband among the PRBs allocated for PUSCH transmission.
[0405] Alternatively, P2 can be equal to the number of PRBs allocated for PUSCH transmission that are not included in the DL subband and / or guard subband.
[0406] Alternative option b. P2 can be equal to the number of PRBs in the RBG (RB group) that belongs to the PUSCH transmission allocation (all PRBs in the RBG are included in the UL subband).
[0407] Alternatively, P2 may be equal to the number of PRBs belonging to the RBG allocated for PUSCH transmission (at least one PRB among the PRBs constituting the RBG is not included in the DL subband and / or guard subband).
[0408] Alternative option c. P2 can be equal to the number of RBGs (at least one PRB in the RBG) allocated for PUSCH transmission (RBG group) (where at least one PRB in the RBG is included in the UL subband).
[0409] Alternatively, P2 may be equal to the number of PRBs belonging to the RBG allocated for PUSCH transmission (all PRBs constituting that RBG are not included in the DL subband and / or guard subband).
[0410] According to the proposals in this disclosure, the UE may operate as follows.
[0411] The UE determines the time resources for the cell to operate in HD and the time resources for the cell to operate in FD based on the configuration information from the base station.
[0412] Subsequently, when the UE multiplexes UCI on the PUSCH and transmits UCI in a specific time slot n, the UE determines the M applied to the UCI transmission based on whether the corresponding time slot n is an HD time slot or an FD time slot using the method proposed above. PUSCH sc The value of .
[0413] Subsequently, the UE, based on the determined M PUSCH sc The value determines the number of coded modulation symbols for each layer used in UCI transmission, and the rate-matched output bit sequence of UCI transmission is obtained based on the corresponding number.
[0414] Subsequently, in time slot n, the UE multiplexes the corresponding output bit sequence on the PUSCH transmission and sends the output bit sequence to the base station.
[0415] According to the proposals in this disclosure, the base station may operate as follows.
[0416] The base station determines / decides the resources for the cell to operate in FD mode and / or the resources for the cell to operate in HD mode, and signals the UE to notify it of the information regarding the time resources for the cell to operate in HD mode and / or the time resources for the cell to operate in FD mode.
[0417] The base station requests UCI information (such as HARQ-ACK, CSI, and SR) from the UE and receives this UCI information via PUCCH or PUSCH.
[0418] When the base station receives UCI information from the UE via PUSCH, the base station determines the M to be applied to UCI transmission based on whether the corresponding time slot n is an HD time slot or an FD time slot using the method proposed above. PUSCH sc The value of .
[0419] Subsequently, the base station based on the determined M PUSCH sc The value determines the number of coded modulation symbols for each layer used for UCI transmission, and UCI is received based on the corresponding number.
[0420] Figure 18 The operation method of UE is illustrated.
[0421] Reference Figure 18 The UE generates uplink control information (UCI) (S181).
[0422] UCI may include at least one of HARQ-ACK (Hybrid Automatic Repeat Request-Acknowledgement), CSI (Channel State Information) - Part 1, CSI - Part 2, or Configuration Grant (CG) - UCI.
[0423] The UE transmits a UCI to the network via the Physical Uplink Shared Channel (PUSCH) of the time slot, and applies a first parameter value for a specific parameter used to determine the number of coded modulation symbols (more specifically, the number of coded modulation symbols per layer) for transmission of the UCI, in the case that the time slot is an FD time slot composed of FD (full-duplex) resources, and in the case that the time slot is an HD time slot composed of HD (half-duplex) resources (S182).
[0424] For example, when UCI is HARQ-ACK, the UE can determine the time slot used to send HARQ-ACK information as follows.
[0425] i) Receiving data in DL time slot n during SPS PDSCH D In the case of the end of the process, the UE sends HARQ-ACK information for the SPS PDSCH via the PUCCH in UL slot n+k. In this case, k is provided by the "PDSCH to HARQ feedback timing indicator" field (if present) in DCI format activated by the SPS PDSCH reception.
[0426] ii) If the UE receives activation in DL slot n D If the SPS PDSCH reception or the DCI format of the scheduled PDSCH reception ends in the middle, and the DCI format does not include the "PDSCH to HARQ feedback timing indicator", then the UE sends / provides HARQ-ACK information in the PUCCH transmission of UL slot n+k, where k is provided by the higher layer parameters "dl-DataToUL-ACK", "dl-DataToUL-ACK-r16", "dl-DataToUL-ACK-DCI-2", "dl-DataToUL-ACK-r17", "dl-DataToUL-ACK-DCI-2-r17" or "dl-DataToUL-ACK-v1700".
[0427] iii) If the UE receives a scheduling in DL time slot n D The DCI format received by the PDSCH at the end of the middle, or via DL time slot n DIf the PDCCH reception at the end of the transmission detects the generation of HARQ-ACK information bits but does not schedule the PDSCH reception in DCI format, then the UE sends / provides the corresponding HARQ-ACK information in the PUCCH transmission of UL slot n+k. Here, k is the number of slots and is indicated by the "PDSCH to HARQ feedback timing indicator" field in the DCI format (if present), or by the higher-layer parameters "dl-DataToUL-ACK", "dl-DataToUL-ACK-r16", "dl-DataToUL-ACK-DCI-1-2", "dl-DataToUL-ACK-r17", "dl-DataToUL-ACK-DCI-1-2-r17" or "dl-DataToUL-ACK-v1700".
[0428] HD slots can be one of downlink (DL) slots, flexible slots, or uplink (UL) slots.
[0429] Here, a DL time slot can be a time slot in which all symbols within the time slot are composed of DL symbols. However, when the UE intends to perform a specific operation in the corresponding time slot (e.g., receiving a DL signal or transmitting a UL signal), it can refer to a time slot in which all symbols for performing the specific operation are composed of DL symbols.
[0430] A UL time slot can be a time slot in which all symbols within the time slot consist of UL symbols. However, when the UE intends to perform a specific operation in the corresponding time slot (e.g., transmitting a UL signal or receiving a DL signal), it can represent a time slot in which all symbols for performing the specific operation consist of UL symbols.
[0431] A flexible time slot can be a time slot in which all symbols within the time slot are composed of flexible symbols. However, when the UE intends to perform a specific operation in the corresponding time slot (e.g., transmission of UL signals or reception of DL signals), it can mean a time slot in which all symbols (or at least one symbol) used to perform the specific operation are composed of flexible symbols.
[0432] An FD time slot can represent a time slot in which all symbols within a time slot are operated with FD, or a time slot in which at least one symbol within a time slot is operated with FD. More specifically, an FD time slot can represent i) a time slot in which all symbol resources for transmitting PUSCH by the UE in the corresponding time slot are symbols operated with FD, or ii) a time slot in which at least one symbol among the symbol resources for transmitting PUSCH in the corresponding time slot is a symbol operated with FD.
[0433] Symbols / time slots operating in HD can be semi-statically configured by the base station to the UE for HD operation. Similarly, symbols / time slots operating in FD can be semi-statically configured by the base station to the UE for FD operation. Subsequently, when the base station dynamically indicates to the UE whether a specific symbol / time slot resource will operate in HD or FD, the UE can determine the time slot for transmitting UCI by considering only the semi-statically indicated information.
[0434] Specific parameters could be, for example, an offset value (β) that scales the number of resource elements based on the UCI load size. PUSCH offset ), or an indication of the offset value (β) PUSCH offset The information is as follows. In this case, when the time slot used to transmit the UCI is the FD time slot, the UE applies the first parameter value (for convenience, it can be called β). PUSCH offset,1 When the time slot is an HD time slot, the UE applies the second parameter value (which can be referred to as β for convenience). PUSCH offset,2 This has already been described in detail in Proposal 1.
[0435] The payload size of the UCI could be, for example, O when the UCI is HARQ-ACK. ACK +L ACK When UCI is CSI part 1, O CSI-1 +L CSI-1 When UCI is CSI part 2, O CSI-2 +L CSI-2 When UCI is CG-UCI, O CG-UCI +L CG-UCI And O when UCI is HARQ-ACK and CG-UCI ACK +O CG-UCI +L ACK For details, please refer to equations 1 through 5.
[0436] Specific parameters could be, for example, information related to setting an upper limit on the number of resource elements that can transmit UCIs, i.e., α (alpha). In this case, when the time slot used to transmit UCIs is an FD time slot, the UE applies the first parameter value (e.g., the aforementioned α). HD ), and when the time slot is an HD time slot, the UE applies the second parameter value (e.g., the α value mentioned above). HD +W or α HD W). This has already been described in detail in Proposal 2.
[0437] Specific parameters, for example, could be expressed as a value representing the scheduling bandwidth of PUSCH transmission as the number of subcarriers (M). PUSCH sc In this case, when the time slot used to transmit UCI is the FD time slot, the UE applies the first parameter value (e.g., P1 mentioned above). N RB sc ), and when the time slot is an HD time slot, the UE applies the second parameter value (e.g., P2 mentioned above). N RB sc Here, P1 is the number of Physical Resource Blocks (PRBs) allocated for PUSCH transport, and N is the number of PRBs allocated for PUSCH transport. RB sc P1 is the number of subcarriers per resource block, and P2 is the number of PRBs included in the uplink subband out of P1 PRBs. This has been described in detail in Proposal 3.
[0438] Specific parameters, for example, could be the maximum PUCCH coding rate (R) for UCI transmissions. max UCI ), or indicate the maximum PUCCH coding rate (R max UCI This information will be described in detail in the section on "Length of Rate-Matched Output Sequence in the Case of UCI Transmitted via PUCCH".
[0439] Different values for specific parameters can be applied depending on the type of UCI. For example, when the specific parameter is β... PUSCH offset If the UCI is HARQ-ACK, then β can be applied based on the type of the time slot that sent the UCI (whether it is an HD time slot or an FD time slot). HARQ-ACK offset ,1 and β HARQ-ACK offset,2 If UCI is CSI Part 1, then β can be applied based on the type of UCI transmission slot. CSI-1 offset,1 and β CSI-1 offset,2 If UCI is CSI Part 2, then β can be applied based on the type of UCI transmission slot. CSI-2 offset,1 and β CSI-2 offset,2 .
[0440] For a specific parameter, the UE can semi-statically receive / provide / configure each of a first parameter value and a second parameter value via higher-layer signals. The first parameter value is applied when the time slot used to transmit the UCI is an FD time slot, and the second parameter value is applied when the time slot is an HD time slot.
[0441] For a specific parameter, the UE can dynamically receive / provide / configure each of a first parameter value and a second parameter value through downlink control information (DCI). The first parameter value is applied when the time slot used to transmit the UCI is an FD time slot, and the second parameter value is applied when the time slot is an HD time slot.
[0442] The second parameter value can be determined based on either i) a predefined value or ii) a value from the network configuration, along with the first parameter value.
[0443] According to the method of this disclosure, when UCI is multiplexed on PUSCH and transmitted in FD resources that may have a channel state worse than that of the target base station, a code rate suitable for the FD resources can be applied, and thus UCI can be transmitted reliably.
[0444] Additionally, when sending UCI through different types of resources, ambiguity can be prevented by clarifying the value of the parameter used to determine the number of coded modulation symbols for the UCI.
[0445] Figure 19 The signaling process and operation between the base station and the UE are illustrated.
[0446] Reference Figure 19 The base station provides the UE with configuration information indicating HD resources and / or FD resources (S191). For example, the base station can determine / decide the resources for the cell to operate in FD and / or the resources for the cell to operate in HD, and can signal the UE to notify the UE of information about the time resources for the cell to operate in HD and / or the time resources for the cell to operate in FD.
[0447] The base station can request a UCI from the UE (S192). For example, the base station can request at least one of HARQ-ACK, CSI, or SR from the UE. However, this procedure may not be necessary. For example, the UE can send a HARQ-ACK to the base station even if the base station does not explicitly request a HARQ-ACK from the UE.
[0448] The UE considers whether the time slot used to transmit UCI is an FD time slot or an HD time slot and applies a first parameter value or a second parameter value as the value of a specific parameter used to determine the number of coded modulation symbols used for UCI transmission (e.g., the number of coded modulation symbols per layer) (S193).
[0449] When the base station receives UCI information from the UE through the PUSCH of a specific time slot, the base station can also use the method proposed above to determine which of the first parameter value and the second parameter value is applied as the value of the specific parameter, depending on whether the specific time slot is an HD time slot or an FD time slot.
[0450] The UE sends a UCI (S194) to the base station in the time slot.
[0451] <Length of the rate-matched output sequence when sending UCI via PUCCH>
[0452] The input bit sequence used for rate matching can be represented as d r0 d r1 d r2 d r3 ... d r(Nr-1) Here, r is the code block number, and N r This refers to the number of encoded bits for code block number r. In this case, the rate-matched output sequence length (E) of the UCI when transmitting UCI via PUCCH can be determined as shown in the table below. UCI ).
[0453] [Table 8]
[0454] This can be achieved by setting the output sequence length of the rate-matched output sequence to E. r = floor(E UCI / C UCI To perform rate matching. Here, C UCI It is the number of code blocks used for UCI, and E UCI The values are shown in Table 8. Floor(x) represents the largest integer less than or equal to x.
[0455] In Table 8, O ACK This is the number of HARQ-ACK bits to be sent on the current PUCCH. SR This is the number of SR bits to be sent on the current PUCCH. O CSI-part1 This is the number of CSI part 1 bits to be sent on the current PUCCH. O CSI-part2 This is the number of bits of CSI part 2 to be sent on the current PUCCH.
[0456] If A is equal to or greater than 360, then L is 11. Otherwise, L is the number of CRC bits. For "CSI (CSI with two parts)", A equals 0. CSI-part1 For "HARQ-ACK, CSI (CSI with two parts)", A equals O. ACK + O CSI-part1 And for "HARQ-ACK, SR, CSI (CSI with two parts)", A equals O. ACK + O SR + O CSI-part1.
[0457] R max UCI This is the maximum PUCCH encoding rate configured.
[0458] E tot As shown in Table 8.
[0459] The output bit sequence after rate matching can be represented as Here, Er is the length of the rate-matched output sequence in code block number r.
[0460] The "maxCodeRate" option can be used to configure the code rate for multiplexing HARQ-ACK, SR, and CSI reports in PUCCH transmissions using PUCCH format 2, PUCCH format 3, or PUCCH format 4.
[0461] R is the maximum PUCCH coding rate configured. max UCI The value can be configured by the higher-level parameter "maxCodeRate" as follows.
[0462] [Table 9]
[0463] In this disclosure, when a UE transmits UCI via PUCCH in a cell performing FD operation, it proposes that the UE determine the maximum PUCCH coding rate (R) for UCI transmission differently depending on whether the cell is performing FD operation or HD operation. max UCI ).
[0464] HD slots and FD slots can be more specifically referred to as follows.
[0465] An HD time slot can represent a time slot in which all symbols within the time slot are operated in HD. An FD time slot can represent a time slot in which all symbols within the time slot are operated in FD, or it can represent a time slot in which at least one symbol within the time slot is operated in FD.
[0466] Alternatively, an HD time slot may represent a time slot in which all symbol resources for PUSCH transmission by the UE in the corresponding time slot consist of symbols that operate in HD. On the other hand, an FD time slot may represent a time slot in which all symbol resources for PUSCH transmission by the UE in the corresponding time slot consist of symbols that operate in FD, or it may represent a time slot in which at least one of the symbol resources for PUSCH transmission in the corresponding time slot consists of symbols that operate in FD.
[0467] In this disclosure, a symbol / time slot operating in HD can represent a symbol / time slot semi-statically configured to the UE by the base station, which serves as a symbol / time slot operating in HD for the cell. In this disclosure, a symbol / time slot operating in FD can represent a symbol / time slot semi-statically configured to the UE by the base station, which serves as a symbol / time slot operating in FD for the cell. Subsequently, when the base station dynamically indicates to the UE whether a specific symbol / time slot resource operates in HD or FD, the UE can determine the time slot for transmitting UCI by considering only the semi-statically indicated information.
[0468] The UE can determine the R to be applied to the HD time slot and the FD time slot differently as follows. max UCI The value of .
[0469] Option 1. The UE is independently instructed by the base station via RRC signaling to apply R to the HD and FD time slots. max UCI The value of R. Therefore, the UE can be independently configured by the base station via higher-layer signaling with "maxCodeRate" values applied to HD and FD time slots. In this case, when the time slot for transmitting UCI is an HD time slot, the UE can determine R by applying the "maxCodeRate" information applied to the HD time slot. max UCI The value of R. Alternatively, when the time slot for transmitting UCI is the FD time slot, the UE can determine R by applying the "maxCodeRate" information applied to the FD time slot. max UCI The value of .
[0470] Option 2. Based on the value of "maxCodeRate" indicated by the base station to the UE via RRC signaling, the RRC applied by the UE can be interpreted / determined differently for HD and FD time slots. max UCI The value of .
[0471] For example, when the value indicated by "maxCodeRate" is called R max UCI,HD When the UCI is transmitted in the HD time slot, the UE can transmit R. max UCI,HD The value is determined as R applied by the UE. max UCI The value. On the other hand, when the time slot for transmitting UCI is the FD time slot, the UE can transmit R. max UCI,HD +U or R max UCI,HD ×U is determined to be R applied by the UE. max UCI The value of .
[0472] Here, the U-value can be fixed / defined as a specific value by standard specifications. Alternatively, the U-value can be information configured / indicated to the UE by the base station through RRC / MAC-CE / DCI signaling, etc.
[0473] According to the proposals in this disclosure, the UE may operate as follows.
[0474] The UE determines the time resources for the cell to operate in HD and the time resources for the cell to operate in FD based on the configuration information from the base station.
[0475] Subsequently, when the UE transmits UCI via PUCCH in a specific time slot n, the UE determines the R applied to the UCI transmission based on whether the corresponding time slot n is an HD time slot or an FD time slot using the method proposed above. max UCI The value of .
[0476] Subsequently, UE based on R max UCI The determined value determines the length of the rate-matched output sequence used for UCI transmission, and the rate-matched output bit sequence of UCI transmission is obtained according to the corresponding length.
[0477] Subsequently, the UE sends the corresponding output bit sequence to the base station via PUCCH in time slot n.
[0478] According to the proposals in this disclosure, the base station may operate as follows.
[0479] The base station determines / decides the resources for the cell to operate in FD mode and / or the resources for the cell to operate in HD mode, and signals the UE to notify it of the information regarding the time resources for the cell to operate in HD mode and / or the time resources for the cell to operate in FD mode.
[0480] The base station requests UCI information (such as HARQ-ACK, CSI, and SR) from the UE and receives this UCI information via PUCCH or PUSCH.
[0481] When the base station receives UCI information from the UE via PUSCH, the base station determines the R applied to UCI transmission based on whether the corresponding time slot n is an HD time slot or an FD time slot using the method proposed above. max UCI The value of .
[0482] Subsequently, the base station was based on R max UCI The determined value determines the rate-matched output sequence length used for UCI transmission, and UCI is received based on the corresponding length.
[0483] Figure 20 Wireless devices applicable to this specification are illustrated.
[0484] Reference Figure 20 The first wireless device 100 and the second wireless device 200 can transmit radio signals via various RATs (e.g., LTE and NR).
[0485] The first wireless device 100 may include at least one processor 102 and at least one memory 104, and additionally may include at least one transceiver 106 and / or at least one antenna 108. The at least one processor 102 (hereinafter simply referred to as the processor) may control at least one memory 104 (hereinafter simply referred to as the memory) and / or at least one transceiver 106 (hereinafter simply referred to as the transceiver), and may be configured to implement the descriptions, functions, processes, proposals, methods, and / or operational flows disclosed in this document. For example, the processor 102 may process information in the memory 104 to generate a first information / signal, and then transmit a radio signal including the first information / signal via the transceiver 106. Additionally, the processor 102 may receive a radio signal including a second information / signal via the transceiver 106, and then store information obtained from signal processing of the second information / signal in the memory 104. The memory 104 may be connected to the processor 102 and may store various pieces of information related to the operation of the processor 102. For example, memory 104 may store software code, including instructions for performing some or all of the processing controlled by processor 102 or for performing the descriptions, functions, processes, proposals, methods, and / or operation flowcharts disclosed in this document. Here, processor 102 and memory 104 may be part of a communication modem / circuit / chip designed to implement RAT (e.g., LTE or NR). Transceiver 106 may be connected to processor 102 and may transmit and / or receive radio signals via one or more antennas 108. Transceiver 106 may include a transmitter and / or a receiver. Transceiver 106 may be used interchangeably with a radio frequency (RF) unit. In this specification, a wireless device may refer to a communication modem / circuit / chip.
[0486] The processor (102) controls the UE to generate uplink control information (UCI) and transmits the UCI to the network via the Physical Uplink Shared Channel (PUSCH) of the time slot. In this case, for a specific parameter used to determine the number of coded modulation symbols used for UCI transmission, a first parameter value is applied when the time slot is an FD time slot consisting of full-duplex (FD) resources, and a second parameter value is applied when the time slot is an HD time slot consisting of half-duplex (HD) resources. (See reference...) Figures 18 to 19 The specific operations are described.
[0487] The second wireless device 200 may include at least one processor 202 and at least one memory 204, and may also include at least one transceiver 206 and / or at least one antenna 208. The processor 202 may control the memory 204 and / or the transceiver 206, and may be configured to implement the descriptions, functions, processes, proposals, methods, and / or operational flows disclosed in this document. For example, the processor 202 may process information in the memory 204 to generate a third information / signal, and then transmit a radio signal including the third information / signal via the transceiver 206. Additionally, the processor 202 may receive a radio signal including a fourth information / signal via the transceiver 206, and may store information obtained by processing the fourth information / signal in the memory 204. The memory 204 may be connected to the processor 202 and may store various information related to the operation of the processor 202. For example, the memory 204 may store software code including instructions for performing some or all of the processing controlled by the processor 202 or for performing the descriptions, functions, processes, proposals, methods, and / or operational flowcharts disclosed in this document. Here, processor 202 and memory 204 may be part of a communication modem / circuit / chip designed to implement RAT (e.g., LTE or NR). Transceiver 206 may be connected to processor 202 and may transmit and / or receive radio signals via one or more antennas 208. Transceiver 206 may include a transmitter and / or a receiver. Transceiver 206 may be used interchangeably with an RF unit. In this specification, wireless device may refer to a communication modem / circuit / chip.
[0488] The processor (202) requests uplink control information (UCI) from the UE and controls the base station to receive the UCI from the UE via the Physical Uplink Shared Channel (PUSCH) of the time slot. In this case, for a specific parameter used to determine the number of coded modulation symbols for UCI reception, a first parameter value is applied when the time slot is an FD time slot, and a second parameter value is applied when the time slot is an HD time slot. (See reference...) Figures 18 to 19 The specific operations are described.
[0489] The hardware components of wireless devices 100 and 200 will be described in more detail below. One or more protocol layers may be implemented by, but are not limited to, one or more processors 102 and 202. For example, one or more processors 102 and 202 may implement one or more layers (e.g., functional layers such as PHY, MAC, RLC, PDCP, RRC, and SDAP). One or more processors 102 and 202 may generate one or more Protocol Data Units (PDUs) and / or one or more Service Data Units (SDUs) in accordance with the descriptions, functions, processes, proposals, methods, and / or operation flowcharts disclosed in this document. One or more processors 102 and 202 may generate messages, control information, data, or information in accordance with the descriptions, functions, processes, proposals, methods, and / or operation flowcharts disclosed in this document. One or more processors 102 and 202 may generate signals (e.g., baseband signals) including PDUs, SDUs, messages, control information, data, or information, according to the functions, processes, proposals, and / or methods disclosed in this document, and may provide the generated signals to one or more transceivers 106 and 206. One or more processors 102 and 202 may receive signals (e.g., baseband signals) from one or more transceivers 106 and 206, and may acquire PDUs, SDUs, messages, control information, data, or information according to the descriptions, functions, processes, proposals, methods, and / or operation flowcharts disclosed in this document.
[0490] One or more processors 102 and 202 may be referred to as controllers, microcontrollers, microprocessors, or microcomputers. One or more processors 102 and 202 may be implemented by hardware, firmware, software, or a combination thereof. For example, one or more application-specific integrated circuits (ASICs), one or more digital signal processors (DSPs), one or more digital signal processing devices (DSPDs), one or more programmable logic devices (PLDs), or one or more field-programmable gate arrays (FPGAs) may be included in one or more processors 102 and 202. One or more processors 102 and 202 may be implemented using at least one computer-readable medium (CRM) including instructions to be executed by at least one processor.
[0491] That is, at least one computer-readable medium (CRM) has instructions to be executed by at least one processor to perform operations including: generating uplink control information (UCI) and transmitting the UCI to the network via a time slot's PUSCH. In this case, for a specific parameter used to determine the number of coded modulation symbols used for UCI transmission, a first parameter value is applied when the time slot is an FD time slot, and a second parameter value is applied when the time slot is an HD time slot. (See reference...) Figures 18 to 19The specific operations are described.
[0492] The descriptions, functions, processes, proposals, methods, and / or operation flowcharts disclosed in this document may be implemented using firmware or software, and such firmware or software may be configured to include modules, processes, or functions. Firmware or software configured to execute the descriptions, functions, processes, proposals, methods, and / or operation flowcharts disclosed in this document may be included in one or more processors 102 and 202, or stored in one or more memories 104 and 204, so as to be driven by one or more processors 102 and 202. The descriptions, functions, processes, proposals, methods, and / or operation flowcharts disclosed in this document may be implemented using firmware or software in the form of code, commands, and / or command sets.
[0493] One or more memories 104 and 204 may be connected to one or more processors 102 and 202 and may store various types of data, signals, messages, information, programs, codes, instructions, and / or commands. One or more memories 104 and 204 may be configured as read-only memory (ROM), random access memory (RAM), electrically erasable programmable read-only memory (EPROM), flash memory, hard disk drive, registers, cache, computer-readable storage media, and / or combinations thereof. At least one memory 104 and 204 may be located internally and / or externally to one or more processors 102 and 202. Furthermore, one or more memories 104 and 204 may be connected to one or more processors 102 and 202 via various technologies such as wired or wireless connections.
[0494] One or more transceivers 106 and 206 can transmit user data, control information, and / or radio signals / channels as disclosed in the methods and / or operation flowcharts disclosed in this document to one or more other devices. One or more transceivers 106 and 206 can receive user data, control information, and / or radio signals / channels as disclosed in the descriptions, functions, processes, proposals, methods, and / or operation flowcharts disclosed in this document from one or more other devices. For example, one or more transceivers 106 and 206 can be connected to one or more processors 102 and 202 and can transmit and receive radio signals. For example, one or more processors 102 and 202 can perform control to enable one or more transceivers 106 and 206 to transmit user data, control information, or radio signals to one or more other devices. Additionally, one or more processors 102 and 202 can perform control to enable one or more transceivers 106 and 206 to receive user data, control information, or radio signals from one or more other devices. Additionally, one or more transceivers 106 and 206 may be connected to one or more antennas 108 and 208, and one or more transceivers 106 and 206 may be configured to transmit or receive user data, control information, and / or radio signals / channels mentioned in the descriptions, functions, processes, proposals, methods, and / or operation flowcharts disclosed in this document through one or more antennas 108 and 208. In this document, one or more antennas may be multiple physical antennas or multiple logical antennas (e.g., antenna ports). One or more transceivers 106 and 206 may convert received radio signals / channels, etc., from RF band signals to baseband signals for processing by one or more processors 102 and 202. One or more transceivers 106 and 206 may convert user data, control information, radio signals / channels, etc., processed using one or more processors 102 and 202 from baseband signals to RF band signals. For this purpose, one or more transceivers 106 and 206 may include (analog) oscillators and / or filters.
[0495] Figure 21 An example of the structure of a signal processing module is shown. Here, signal processing can be performed... Figure 20 It is executed in processors 102 and 202.
[0496] Reference Figure 21 The transmitting device (e.g., processor, processor and memory, or processor and transceiver) in the UE or BS may include a scrambler 301, a modulator 302, a layer mapper 303, an antenna port mapper 304, a resource block mapper 305, and a signal generator 306.
[0497] The transmitting device can transmit one or more codewords. The encoded bits in each codeword are scrambled by a corresponding scrambler 301 and transmitted over the physical channel. The codeword can be referred to as a data string and can be equivalent to a transport block provided as a data block by the MAC layer.
[0498] The corresponding modulator 302 can modulate the scrambled bits into complex-valued modulation symbols. Modulator 302 can modulate the scrambled bits according to a modulation scheme to arrange complex-valued modulation symbols representing their positions on the signal constellation diagram. The modulation scheme is unrestricted, and m-PSK (m-phase shift keying) or m-QAM (m-quadrature amplitude modulation) can be used to modulate the coded data. The modulator can be referred to as a modulation mapper.
[0499] Complex-valued modulation symbols can be mapped to one or more transmission layers by layer mapper 303. Complex-valued modulation symbols on each layer can be mapped by antenna port mapper 304 for transmission at antenna ports.
[0500] Each resource block mapper 305 can map the complex-valued modulation symbols for each antenna port to appropriate resource elements in the virtual resource blocks allocated for transmission. The resource block mapper can map virtual resource blocks to physical resource blocks according to an appropriate mapping scheme. The resource block mapper 305 can allocate the complex-valued modulation symbols for each antenna port to appropriate subcarriers and multiplex the complex-valued modulation symbols according to the user.
[0501] Each signal generator 306 can modulate complex-valued modulation symbols, i.e., antenna-specific symbols, for each antenna port according to a specific modulation scheme (e.g., OFDM (Orthogonal Frequency Division Multiplexing)) to generate complex-valued time-domain OFDM symbol signals. The signal generator can perform an IFFT (Inverse Fast Fourier Transform) on the antenna-specific symbols and can insert a CP (Cyclic Prefix) into the IFFT-operated time-domain symbols. The OFDM symbols undergo digital-to-analog conversion and up-conversion before being transmitted to the receiving device through each transmit antenna. The signal generator may include an IFFT module, a CP insertion unit, a digital-to-analog converter (DAC), and an up-converter.
[0502] Figure 22 Another example illustrating the structure of a signal processing module in a transmitting device is given. Here, signal processing can be performed in the processor of the UE / BS, for example... Figure 20 Processors 102 and 202.
[0503] Reference Figure 22 The transmitting device (e.g., processor, processor and memory, or processor and transceiver) in the UE or BS may include a scrambler 401, a modulator 402, a layer mapper 403, a precoder 404, a resource block mapper 405, and a signal generator 406.
[0504] The transmitting device can scramble the encoded bits in the codeword using the corresponding scrambler 401, and then transmit the scrambled encoded bits through the physical channel.
[0505] The scrambled bits are modulated into complex-valued modulation symbols by the corresponding modulator 402. The modulator can modulate the scrambled bits according to a predetermined modulation scheme to arrange complex-valued modulation symbols representing the positions on the signal constellation diagram. The modulation scheme is unrestricted and can use π / 2-BPSK (π / 2-binary phase shift keying), m-PSK (m-phase shift keying), or m-QAM (m-quadrature amplitude modulation) to modulate the coded data.
[0506] Complex-valued modulation symbols can be mapped to one or more transport layers by layer mapper 403.
[0507] Complex-valued modulation symbols on each layer can be pre-coded by pre-encoder 404 for transmission at antenna ports. Here, the pre-encoder can perform transform precoding on the complex-valued modulation symbols, followed by precoding. Alternatively, the pre-encoder can perform precoding without transform precoding. Pre-encoder 404 can process the complex-valued modulation symbols according to MIMO using multiple transmit antennas to output antenna-specific symbols and assign these symbols to the corresponding resource block mapper 405. The output z of pre-encoder 404 can be obtained by multiplying the output y of layer mapper 403 by an N×M precoding matrix W. Here, N is the number of antenna ports, and M is the number of layers.
[0508] Each resource block mapper 405 maps the complex-valued modulation symbol for each antenna port to the appropriate resource element in the virtual resource block allocated for transmission.
[0509] Resource block mapper 405 can assign complex-valued modulation symbols to appropriate subcarriers and multiplex complex-valued modulation symbols according to users.
[0510] Signal generator 406 can modulate complex-valued modulation symbols according to a specific modulation scheme (e.g., OFDM) to generate complex-valued time-domain OFDM symbol signals. Signal generator 406 can perform IFFT (Inverse Fast Fourier Transform) on antenna-specific symbols and can insert CP (Cyclic Prefix) into the time-domain symbols that have undergone IFFT. The OFDM symbols are then converted from digital to analog and up-converted before being transmitted to the receiving device through each transmit antenna. Signal generator 406 may include an IFFT module, a CP insertion unit, a digital-to-analog converter (DAC), and an up-converter.
[0511] The signal processing of the receiving device can be the reverse process of the signal processing of the transmitting device. Specifically, the processor of the transmitting device decodes and demodulates the RF signal received through the antenna port of the transceiver. The receiving device may include multiple receiving antennas, and the signals received through the receiving antennas are recovered into baseband signals, and then multiplexed and demodulated according to MIMO to recover the data string intended to be transmitted by the transmitting device. The receiving device may include: a signal recovery unit that recovers the received signal into a baseband signal; a multiplexer for combining and multiplexing the received signals; and a channel demodulator for demodulating the multiplexed signal string into corresponding codewords. The signal recovery unit, multiplexer, and channel demodulator may be configured as integrated modules or independent modules for performing their functions. More specifically, the signal recovery unit may include: an analog-to-digital converter (ADC) for converting an analog signal into a digital signal; a CP removal unit for removing CP from the digital signal; a FET module for applying an FFT (Fast Fourier Transform) to the CP-removed signal to output a frequency domain signal; and a resource element demapping / equalizer for recovering the frequency domain symbols into antenna-specific symbols. The antenna-specific symbols are then recovered into the transport layer by a multiplexer, and the transport layer is recovered into codewords intended to be transmitted by a transmitting device by a channel demodulator.
[0512] Figure 23 An example of a wireless communication device according to an implementation example of this disclosure is illustrated.
[0513] Reference Figure 23 A wireless communication device, such as a UE, may include at least one of a processor 2310 (e.g., a digital signal processor (DSP) or microprocessor), a transceiver 2335, a power management module 2305, an antenna 2340, a battery 2355, a display 2315, a keyboard 2320, a global positioning system (GPS) chip 2360, a sensor 2365, a memory 2330, a user identification module (SIM) card 2325, a speaker 2345, and a microphone 2350. Multiple antennas and multiple processors may be provided.
[0514] The processor 2310 can implement the functions, processes and methods described in this specification. Figure 23 The processor 2310 in Figure 23 The memory 2330 in the memory can be Figure 20 Processors 102 and 202 in the middle.
[0515] The memory 2330 is connected to the processor 2310 and stores information related to processor operation. The memory can be located inside or outside the processor and can be connected to the processor via various technologies such as wired or wireless connections. Figure 23 The memory 2330 in the memory can be Figure 20 The memory in the memory is 104 and 204.
[0516] Users can use various technologies, such as pressing buttons on keypad 2320 or using microphone 2350 to activate sound, to input various types of information, such as phone numbers. Processor 2310 can receive and process user information and perform appropriate functions, such as making a call using the entered phone number. In some scenarios, data can be retrieved from SIM card 2325 or memory 2330 to perform appropriate functions. In some scenarios, processor 2310 can display various types of information and data on display 2315 for user convenience.
[0517] Transceiver 2335 is connected to processor 2310 and transmits and / or receives RF signals. The processor can control the transceiver to initiate communication or transmit RF signals, including various types of information or data such as voice communication data. The transceiver includes a transmitter and a receiver for transmitting and receiving RF signals. Antenna 2340 facilitates the transmission and reception of RF signals. In some implementation examples, when the transceiver receives an RF signal, it can forward the signal and convert it into a baseband frequency for use in processing performed by the processor. The signal can be processed using various techniques, such as converting it into audible or readable information, for output through speaker 2345. Figure 23 The transceivers in the figure can be transceivers 106 and 206 in Figure 29.
[0518] although Figure 23 Not shown in the diagram, but the UE may also include various components such as a camera and a Universal Serial Bus (USB) port. For example, the camera may be connected to the processor 2310.
[0519] Figure 23 This is an example of a UE implementation, and the implementation examples disclosed herein are not limited to this. The UE does not necessarily have to include... Figure 23 All components are shown. That is to say, some components, such as the keyboard 2320, GPS chip 2360, sensor 2365, and SIM card 2325, may not be required. In this case, they may not be included in the UE.
[0520] Figure 24 Another example of a wireless device is shown.
[0521] Reference Figure 24 The wireless device may include at least one processor 102 and 202, at least one memory 104 and 204, at least one transceiver 106 and 206, and at least one antenna 108 and 208.
[0522] Figure 24 Examples of wireless devices described in the document and Figure 20 The difference between the examples of wireless devices described in the text and the examples of wireless devices described in the text is that... Figure 20 The processors 102 and 202 are separate from the memories 104 and 204, while Figure 24 In the example, memories 104 and 204 are included in processors 102 and 202. That is, the processor and memory can form a chipset.
[0523] Figure 25 The communication system 1 used in this specification is shown.
[0524] Reference Figure 25 The communication system 1 used in this specification includes wireless devices, base stations (BS), and networks. In this document, a wireless device refers to a device that communicates using radio access technology (RAT) (e.g., 5G New RAT (NR)) or Long Term Evolution (LTE) and may be referred to as a communication / radio / 5G device. Wireless devices may include, but are not limited to, robots 100a, vehicles 100b-1 and 100b-2, extended reality (XR) devices 100c, handheld devices 100d, home appliances 100e, Internet of Things (IoT) devices 100f, and artificial intelligence (AI) devices / servers 400. For example, a vehicle may include a vehicle with wireless communication capabilities, an autonomous vehicle, and a vehicle capable of communication between vehicles. Here, a vehicle may include an unmanned aerial vehicle (UAV) (e.g., a drone). XR devices may include augmented reality (AR) / virtual reality (VR) / mixed reality (MR) devices and may be implemented in the form of head-mounted displays (HMDs), head-up displays (HUDs) installed in vehicles, televisions, smartphones, computers, wearable devices, home appliances, digital signage, vehicles, robots, etc. Handheld devices may include smartphones, smart tablets, wearable devices (e.g., smartwatches or smart glasses), and computers (e.g., laptops). Home appliances may include televisions, refrigerators, and washing machines. IoT devices may include sensors and smart meters. For example, the BS and network can be implemented as wireless devices, and a particular wireless device 200a can operate as a BS / network node relative to other wireless devices.
[0525] Wireless devices 100a to 100f can connect to network 300 via BS 200. AI technology can be applied to wireless devices 100a to 100f, and wireless devices 100a to 100f can connect to AI server 400 via network 300. Network 300 can be configured using a 3G network, a 4G (e.g., LTE) network, or a 5G (e.g., NR) network. Although wireless devices 100a to 100f can communicate with each other via BS 200 / network 300, wireless devices 100a to 100f can also perform direct communication with each other without going through the BS / network (e.g., secondary link communication). For example, vehicles 100b-1 and 100b-2 can perform direct communication (e.g., vehicle-to-vehicle (V2V) / vehicle-to-everything (V2X) communication). In addition, IoT devices (e.g., sensors) can perform direct communication with other IoT devices (e.g., sensors) or other wireless devices 100a to 100f.
[0526] Wireless communication / connections 150a, 150b, or 150c can be established between wireless devices 100a to 100f / BS 200 or between BS 200 and BS 200. In this document, wireless communication / connections can be established via various RATs (e.g., 5G NR) such as uplink / downlink communication 150a, secondary link communication 150b (or D2D communication), or inter-BS communication (e.g., relay, integrated access and backhaul (IAB)). Wireless devices and BS / wireless devices can transmit / receive radio signals to / from each other via wireless communication / connections 150a, 150b, or 150c. For example, wireless communication / connections 150a, 150b, or 150c can transmit / receive signals via various physical channels. To this end, at least a portion of various configuration information configuration processes, various signal processing processes (e.g., channel coding / decoding, modulation / demodulation, and resource mapping / demapping), and resource allocation processes for transmitting / receiving radio signals can be performed based on various proposals of this disclosure.
[0527] In addition, NR supports multiple parameter sets (or subcarrier spacing (SCS)) to support a variety of 5G services. For example, a 15 kHz SCS can support wide-area coverage in traditional cellular bands. A 30 kHz / 60 kHz SCS supports dense urban areas, lower latency, and wider carrier bandwidth. A 60 kHz or higher SCS uses a bandwidth greater than 24.25 GHz to overcome phase noise.
[0528] NR bands can be defined as two types of frequency ranges (FR1, FR2). The values of the frequency ranges can be changed. For example, the two types of frequency ranges (FR1, FR2) are shown in Table 10 below. For ease of explanation, in the frequency ranges used in NR systems, FR1 can represent "below 6 GHz" and FR2 can represent "above 6 GHz" and can also be referred to as millimeter wave (mmW).
[0529] [Table 10]
[0530] As mentioned above, the frequency range value in an NR system can be varied. For example, as shown in Table 11 below, FR1 can include a frequency band in the range of 410MHz to 7125MHz. That is, FR1 can include a frequency band of at least 6GHz (or 5850MHz, 5900MHz, 5925MHz, etc.). For example, the frequency band of at least 6GHz (or 5850MHz, 5900MHz, 5925MHz, etc.) included in FR1 can include unlicensed frequency bands. Unlicensed frequency bands can be used for various purposes, such as unlicensed frequency bands for vehicle-specific communications (e.g., autonomous driving).
[0531] [Table 11]
[0532] The claims disclosed in this specification can be combined in various ways. For example, technical features in the method claims of this specification can be combined to implement or perform in a device, and technical features in the device claims of this specification can be combined to implement or perform in a method. Additionally, technical features in the method claims and device claims of this specification can be combined to implement or perform in a device.
Claims
1. A method comprising the following steps: The user equipment (UE) generates uplink control information (UCI); as well as The UE sends the UCI to the network through the Physical Uplink Shared Channel (PUSCH) of the time slot. Specifically, for a particular parameter used to determine the number of coded modulation symbols for transmission of the UCI, a first parameter value is applied based on the time slot being an FD time slot composed of full-duplex FD resources, and a second parameter value is applied based on the time slot being an HD time slot composed of half-duplex HD resources.
2. The method according to claim 1, wherein, The UCI includes at least one of Hybrid Automatic Repeat Request-Acknowledge (HARQ-ACK), Channel State Information (CSI) Part 1, CSI Part 2, or Configuration License (CG-UCI).
3. The method according to claim 1, wherein, A separate value is applied to the specific parameter based on the type of the UCI.
4. The method according to claim 1, wherein, For the specific parameter, each of the first parameter value applied based on the time slot being the FD time slot and the second parameter value applied based on the time slot being the HD time slot is received semi-statically via a higher-layer signal.
5. The method according to claim 1, wherein, For the specific parameter, each of the first parameter value applied based on the time slot being the FD time slot and the second parameter value applied based on the time slot being the HD time slot is dynamically received via downlink control information (DCI).
6. The method according to claim 1, wherein, The specific parameter is information about the offset value used to scale the number of resource elements based on the payload size of the UCI.
7. The method according to claim 1, wherein, The specific parameter is information related to setting an upper limit on the number of resource elements that can send the UCI.
8. The method according to claim 1, wherein, The specific parameter M represents the scheduling bandwidth of PUSCH transmission as the number of subcarriers. PUSCH sc , Based on the fact that the time slot is the HD time slot, P1·N RB sc The value applied as the specific parameter, and based on the time slot being the FD time slot, P2·N RB sc The value applied as the specific parameter, Where P1 is the number of Physical Resource Blocks (PRBs) allocated for the PUSCH transmission, and N... RB sc P1 is the number of subcarriers per resource block, and P2 is the number of PRBs included in the uplink subband out of P1 PRBs.
9. The method according to claim 1, wherein, The specific parameter is information regarding the maximum physical uplink control channel (PUCCH) coding rate for transmissions of the UCI.
10. The method according to claim 1, wherein, The second parameter value is determined based on one of i) a predefined value and ii) a value from the network configuration, as well as the first parameter value.
11. A user equipment (UE), the UE comprising: At least one transceiver; At least one memory; as well as At least one processor, said at least one processor being operatively coupled to said at least one memory and said at least one transceiver, Wherein, the at least one memory stores instructions, the instructions causing the at least one processor to perform an operation based on execution by the at least one processor, the operation including: The user equipment (UE) generates uplink control information (UCI); and The UE sends the UCI to the network through the Physical Uplink Shared Channel (PUSCH) of the time slot. Specifically, for a particular parameter used to determine the number of coded modulation symbols for transmission of the UCI, a first parameter value is applied based on the time slot being an FD time slot composed of full-duplex FD resources, and a second parameter value is applied based on the time slot being an HD time slot composed of half-duplex HD resources.
12. The UE according to claim 11, wherein, The UCI includes at least one of Hybrid Automatic Repeat Request-Acknowledge (HARQ-ACK), Channel State Information (CSI) Part 1, CSI Part 2, or Configuration License (CG-UCI).
13. The UE according to claim 11, wherein, A separate value is applied to the specific parameter based on the type of the UCI.
14. The UE according to claim 11, wherein, For the specific parameter, each of the first parameter value applied based on the time slot being the FD time slot and the second parameter value applied based on the time slot being the HD time slot is received semi-statically via a higher-layer signal.
15. The UE according to claim 11, wherein, For the specific parameter, each of the first parameter value applied based on the time slot being the FD time slot and the second parameter value applied based on the time slot being the HD time slot is dynamically received via downlink control information (DCI).
16. The UE according to claim 11, wherein, The specific parameter is information about the offset value used to scale the number of resource elements based on the payload size of the UCI.
17. The UE according to claim 11, wherein, The specific parameter is information related to setting an upper limit on the number of resource elements that can send the UCI.
18. The UE according to claim 11, wherein, The specific parameter M represents the scheduling bandwidth of PUSCH transmission as the number of subcarriers. PUSCH sc , Based on the fact that the time slot is the HD time slot, P1·N RB sc The value applied as the specific parameter, and based on the time slot being the FD time slot, P2·N RB sc The value applied as the specific parameter, Where P1 is the number of Physical Resource Blocks (PRBs) allocated for the PUSCH transmission, and N... RB sc P1 is the number of subcarriers per resource block, and P2 is the number of PRBs included in the uplink subband out of P1 PRBs.
19. The UE according to claim 11, wherein, The specific parameter is information regarding the maximum physical uplink control channel (PUCCH) coding rate for transmissions of the UCI.
20. The UE according to claim 11, wherein, The second parameter value is determined based on one of i) a predefined value and ii) a value from the network configuration, as well as the first parameter value.
21. An apparatus, the apparatus comprising: At least one memory; as well as At least one processor, said at least one processor being operatively coupled to said at least one memory. The at least one memory includes instructions that, based on execution by the at least one processor, cause an operation to be performed. The operation includes: The UE generates uplink control information (UCI); and The UE sends the UCI to the network through the Physical Uplink Shared Channel (PUSCH) of the time slot. Specifically, for a particular parameter used to determine the number of coded modulation symbols for transmission of the UCI, a first parameter value is applied based on the time slot being an FD time slot composed of full-duplex FD resources, and a second parameter value is applied based on the time slot being an HD time slot composed of half-duplex HD resources.
22. At least one computer-readable medium CRM, said at least one CRM comprising instructions executed by at least one processor, in, The instruction causes: The UE generates uplink control information (UCI); as well as The UE sends the UCI to the network through the Physical Uplink Shared Channel (PUSCH) of the time slot. Specifically, for a particular parameter used to determine the number of coded modulation symbols for transmission of the UCI, a first parameter value is applied based on the time slot being an FD time slot composed of full-duplex FD resources, and a second parameter value is applied based on the time slot being an HD time slot composed of half-duplex HD resources.
23. A method comprising the following steps: The base station requests uplink control information (UCI) from the user equipment (UE). as well as The base station receives the UCI from the UE via the Physical Uplink Shared Channel (PUSCH) in a time slot. Specifically, for a particular parameter used to determine the number of coded modulation symbols for reception of the UCI, a first parameter value is applied based on the time slot being an FD time slot composed of full-duplex FD resources, and a second parameter value is applied based on the time slot being an HD time slot composed of half-duplex HD resources.
24. A base station, the base station comprising: At least one transceiver; At least one memory; as well as At least one processor, said at least one processor being operatively coupled to said at least one memory and said at least one transceiver, The at least one memory includes instructions that, based on execution by the at least one processor, cause an operation to be performed. The operation includes: Requesting uplink control information (UCI) from the user equipment (UE); and The UCI is received from the UE via the Physical Uplink Shared Channel (PUSCH) in the time slot. Specifically, for a particular parameter used to determine the number of coded modulation symbols for reception of the UCI, a first parameter value is applied based on the time slot being an FD time slot composed of full-duplex FD resources, and a second parameter value is applied based on the time slot being an HD time slot composed of half-duplex HD resources.