Downlink power adjustment method and apparatus in wireless communication system
Dynamic downlink power adjustment in wireless communication systems, particularly in IAB environments, enhances backhaul link performance by using CSI-RS resource-based control information.
Patent Information
- Application Number
- JP2024506739
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-11-05
- Filing Date
- 2022-08-04
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2042-08-04
AI Technical Summary
Existing wireless communication systems face challenges in dynamically adjusting downlink transmission power, particularly in integrated access and backhaul (IAB) environments, which affect the performance of backhaul links.
A method and apparatus for dynamically adjusting downlink transmission power by receiving and transmitting control information related to CSI-RS resources and power offsets, allowing for dynamic power adjustments based on configuration information.
This approach enables dynamic power adjustment of downlink transmissions, improving the performance of backhaul links in IAB-supported systems.
Smart Images

Figure 0007733211000020 
Figure 0007733211000021 
Figure 0007733211000022
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to wireless communication systems, and more particularly to a method and apparatus for adjusting the power of downlink transmissions in a wireless communication system. [Background technology]
[0002] Mobile communication systems were developed to provide voice services while ensuring user activity. However, the scope of mobile communication systems has expanded beyond voice to include data services, and the explosive growth in traffic is causing resource shortages. Users are also demanding faster services, so there is a demand for more advanced mobile communication systems.
[0003] The requirements for next-generation mobile communication systems are to accommodate large and explosive data traffic, dramatically increase the transmission rate per user, accommodate a significantly increased number of connected devices, support very low end-to-end latency, and high energy efficiency.To achieve this, various technologies are being researched, including dual connectivity, massive multiple input multiple output (MIMO), in-band full duplex, non-orthogonal multiple access (NOMA), super wideband support, and device networking. Summary of the Invention [Problem to be solved by the invention]
[0004] The technical problem of the present disclosure is to provide a method and apparatus for adjusting (updating) the power of downlink transmission.
[0005] Furthermore, a further technical object of the present disclosure is to provide a method and apparatus for dynamically adjusting (updating) downlink transmission power in a wireless communication system that supports integrated access and backhaul (IAB).
[0006] The technical problems to be solved by the present disclosure are not limited to the technical problems mentioned above, and other technical problems not mentioned will be clearly understood by a person having ordinary skill in the art to which the present disclosure pertains from the following description. [Means for solving the problem]
[0007] A method for receiving control information in a wireless communication system according to an embodiment of the present disclosure, the method being performed by a terminal, may include receiving, from a base station, first configuration information associated with a serving cell and second configuration information associated with a CSI-RS resource, the first configuration information including information on energy per resource element (EPRE) of a secondary synchronization signal (SSS), and the second configuration information including information on a first power offset of the EPRE of the CSI-RS resource relative to the EPRE for the SSS, and receiving control information for downlink transmission power adjustment from the base station. The control information may include an index of a CSI-RS resource associated with the downlink transmission power adjustment.
[0008] According to another aspect of the present disclosure, a method for transmitting control information in a wireless communication system, the method being performed by a base station, may include transmitting, to a terminal, first configuration information associated with a serving cell and second configuration information associated with a CSI-RS resource, the first configuration information including information on energy per resource element (EPRE) of a secondary synchronization signal (SSS), and the second configuration information including information on a first power offset of the EPRE of the CSI-RS resource relative to the EPRE for the SSS; and transmitting, to the terminal, control information for power adjustment of downlink transmission. The control information may include an index of a CSI-RS resource associated with the power adjustment of the downlink transmission. [Effects of the Invention]
[0009] According to embodiments of the present disclosure, the power of downlink transmissions can be dynamically adjusted / updated.
[0010] According to an embodiment of the present disclosure, in a wireless communication system supporting IAB, the performance of the backhaul link can be improved by dynamically adjusting / updating the downlink transmission power.
[0011] The effects obtained from the present disclosure are not limited to the effects mentioned above, and other effects not mentioned will be clearly understood by those having ordinary skill in the art to which the present disclosure pertains from the following description. [Brief explanation of the drawings]
[0012] The accompanying drawings, which are included as part of the detailed description to aid in understanding the present disclosure, provide examples of the present disclosure and, together with the detailed description, explain the technical features of the present disclosure.
[0013] [Figure 1]1 illustrates the structure of a wireless communication system to which the present disclosure can be applied.
[0014] [Figure 2] 1 illustrates an example of a frame structure in a wireless communication system to which the present disclosure can be applied.
[0015] [Figure 3] 1 illustrates an example of a resource grid in a wireless communication system to which the present disclosure can be applied.
[0016] [Figure 4] 1 illustrates an example of a physical resource block in a wireless communication system to which the present disclosure can be applied.
[0017] [Figure 5] 1 illustrates an example of a slot structure in a wireless communication system to which the present disclosure can be applied.
[0018] [Figure 6] 1 illustrates examples of physical channels used in a wireless communication system to which the present disclosure can be applied, and a general signal transmission / reception method using the physical channels.
[0019] [Figure 7] 1 illustrates a network having integrated access and backhaul links in a wireless communication system to which the present disclosure can be applied.
[0020] [Figure 8] 1 illustrates a network having integrated access and backhaul links in a wireless communication system to which the present disclosure can be applied.
[0021] [Figure 9] 1 illustrates an SA mode using NGC and an NSA mode using EPC in a wireless communication system to which the present disclosure can be applied.
[0022] [Figure 10] FIG. 1 illustrates an example of an integrated access and backhaul link in a wireless communication system to which the present disclosure can be applied.
[0023] [Figure 11] 1 illustrates an example of a wireless communication system to which the present disclosure can be applied, including multiple MT-CCs and multiple DU-cells.
[0024] [Figure 12] 1 illustrates a case where an IAB node is connected to a parent node 1 and a parent node 2 in a wireless communication system to which the present disclosure can be applied.
[0025] [Figure 13] 10 is a diagram illustrating a signaling procedure between a base station and a terminal for a downlink power adjustment method according to one embodiment of the present disclosure.
[0026] [Figure 14] FIG. 10 is a diagram illustrating an example of a terminal operation for a downlink power adjustment method according to an embodiment of the present disclosure.
[0027] [Figure 15] FIG. 10 is a diagram illustrating the operation of a base station for a downlink power adjustment method according to an embodiment of the present disclosure.
[0028] [Figure 16] FIG. 1 is a block diagram illustrating a wireless communication device according to an embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0029] Preferred embodiments of the present disclosure will be described in detail below with reference to the accompanying drawings. The detailed description disclosed below together with the accompanying drawings is intended to describe exemplary embodiments of the present disclosure and is not intended to represent the only embodiments in which the present disclosure can be implemented. The detailed description below includes specific details to provide a complete understanding of the present disclosure. However, it will be understood by those skilled in the art that the present disclosure can be implemented without such specific details.
[0030] In some cases, in order to avoid obscuring the concepts of the present disclosure, known structures and devices may be omitted or shown in block diagram form, focusing on the core functions of each structure and device.
[0031] In this disclosure, when a component is "coupled," "coupled," or "connected" to another component, this may include a direct connection as well as an indirect connection where there is another component between them. Also, in this disclosure, the terms "comprise" or "have" specify the presence of stated features, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, steps, operations, elements, components, and / or groups thereof.
[0032] In this disclosure, terms such as "first" and "second" are used only to distinguish one component from another, and are not used to limit the components, and do not limit the order or importance of the components unless otherwise specified. Therefore, within the scope of this disclosure, a first component in one embodiment may be referred to as a second component in another embodiment, and similarly, a second component in one embodiment may be referred to as a first component in another embodiment.
[0033] The terms used in this disclosure are for the purpose of describing particular embodiments and are not intended to limit the scope of the claims. As used in the description of the embodiments and the appended claims, the singular forms "a," "an," and "the" are intended to include the plural forms unless the context clearly dictates otherwise. The term "and / or" used in this disclosure means that one of the associated listed items may be used, or that any and all possible combinations of two or more of them may be used. Also, in this disclosure, " / " between words has the same meaning as "and / or" unless otherwise specified.
[0034] The present disclosure is described with respect to a wireless communication network or a wireless communication system, and operations performed in a wireless communication network may be performed in the process in which a device (e.g., a base station) that manages the wireless communication network controls the network and transmits or receives signals, or in the process in which a terminal coupled to the wireless network transmits or receives signals to or from the network or between terminals.
[0035] In this disclosure, transmitting or receiving a channel includes transmitting or receiving information or signals on that channel. For example, transmitting a control channel means transmitting control information or signals on the control channel. Similarly, transmitting a data channel means transmitting data information or signals on the data channel.
[0036] Hereinafter, downlink (DL) refers to communication from a base station to a terminal, and uplink (UL) refers to communication from a terminal to a base station. In the downlink, a transmitter may be part of the base station, and a receiver may be part of the terminal. In the uplink, a transmitter may be part of the terminal, and a receiver may be part of the base station. The base station may be expressed as a first communication device, and the terminal may be expressed as a second communication device. A base station (BS) may be replaced with terms such as a fixed station, Node B, evolved-Node B (eNB), Next Generation Node B (gNB), base transceiver system (BTS), access point (AP), network (5G network), artificial intelligence (AI) system / module, road side unit (RSU), robot, unmanned aerial vehicle (UAV), augmented reality (AR) device, virtual reality (VR) device, etc. Furthermore, a terminal may be fixed or mobile, and may be replaced with terms such as UE (User Equipment), MS (Mobile Station), UT (user terminal), MSS (Mobile Subscriber Station), SS (Subscriber Station), AMS (Advanced Mobile Station), WT (Wireless terminal), MTC (Machine-Type Communication) device, M2M (Machine-to-Machine) device, D2D (Device-to-Device) device, vehicle, RSU (road side unit), robot, AI (Artificial Intelligence) module, drone (UAV: Unmanned Aerial Vehicle), AR (Augmented Reality) device, VR (Virtual Reality) device, etc.
[0037] The following technologies may be used for various wireless access systems, such as CDMA, FDMA, TDMA, OFDMA, SC-FDMA, etc. CDMA may be implemented by radio technologies such as UTRA (Universal Terrestrial Radio Access) and CDMA2000. TDMA may be implemented by radio technologies such as GSM (Global System for Mobile communications) / GPRS (General Packet Radio Service) / EDGE (Enhanced Data Rates for GSM Evolution). OFDMA may be implemented by radio technologies such as IEEE 802.11 (Wi-Fi®), IEEE 802.16 (WiMAX®), IEEE 802-20, E-UTRA (Evolved UTRA), etc. UTRA is part of UMTS (Universal Mobile Telecommunications System). 3GPP (3rd Generation Partnership Project) LTE (Long Term Evolution) is a part of E-UMTS (Evolved UMTS) that uses E-UTRA, and LTE-A (Advanced) / LTE-A pro is an evolved version of 3GPP LTE. 3GPP NR (New Radio or New Radio Access Technology) is an evolved version of 3GPP LTE / LTE-A / LTE-A pro.
[0038] For clarity, the following description will be based on a 3GPP (registered trademark) communication system (e.g., LTE-A, NR), but the technical concept of the present disclosure is not limited thereto. LTE refers to technology from 3GPP Technical Specification (TS) 36.xxx Release 8 onward. Specifically, LTE technology from 3GPP TS 36.xxx Release 10 onward is called LTE-A, and LTE technology from 3GPP TS 36.xxx Release 13 onward is called LTE-A pro. 3GPP NR refers to technology from TS 38.xxx Release 15 onward. LTE / NR may be referred to as a 3GPP system. "xxx" refers to the standard document detail number. LTE / NR may be referred to as a 3GPP system. For background technology, terms, abbreviations, etc. used in the description of the present disclosure, please refer to the matters described in standard documents published before the present disclosure. For example, the following documents may be referenced:
[0039] In 3GPP LTE, reference can be made to TS 36.211 (Physical channels and modulation), TS 36.212 (Multiplexing and channel coding), TS 36.213 (Physical layer procedures), TS 36.300 (General description), and TS 36.331 (Radio resource control).
[0040] For 3GPP NR, reference can be made to TS 38.211 (Physical Channels and Modulation), TS 38.212 (Multiplexing and Channel Coding), TS 38.213 (Physical Layer Procedures for Control), TS 38.214 (Physical Layer Procedures for Data), TS 38.300 (General Description of NR and NG-RAN (New Generation-Radio Access Network)), and TS 38.331 (Radio Resource Control Protocol Standard).
[0041] The terminology abbreviations that may be used in this disclosure are defined as follows:
[0042] - BM: Beam management
[0043] - CQI: Channel Quality Indicator
[0044] - CRI: Channel state information-reference signal resource indicator
[0045] - CSI: Channel State Information
[0046] - CSI-IM: Channel state information-interference measurement
[0047] - CSI-RS: Channel state information-reference signal
[0048] - DMRS: Demodulation Reference Signal
[0049] - FDM: Frequency Division Multiplexing
[0050] - FFT: Fast Fourier transform
[0051] - IFDMA: Interleaved frequency division multiple access
[0052] - IFFT: Inverse fast Fourier transform
[0053] - L1-RSRP: Layer 1 reference signal received power
[0054] - L1-RSRQ: Layer 1 reference signal received quality
[0055] - MAC: Medium Access Control
[0056] - NZP: Non-zero power
[0057] - OFDM: Orthogonal frequency division multiplexing
[0058] - PDCCH: Physical downlink control channel
[0059] - PDSCH: Physical downlink shared channel
[0060] - PMI: Precoding matrix indicator
[0061] - RE: resource element
[0062] - RI: Rank indicator
[0063] - RRC: Radio resource control
[0064] - RSSI: received signal strength indicator
[0065] - Rx: Reception
[0066] - QCL: quasi co-location
[0067] - SINR: Signal to interference and noise ratio
[0068] - SSB (or SS / PBCH block): Synchronization signal block (including primary synchronization signal (PSS), secondary synchronization signal (SSS), and physical broadcast channel (PBCH))
[0069] - TDM: time division multiplexing
[0070] - TRP: transmission and reception point
[0071] - TRS: Tracking reference signal
[0072] - Tx: transmission
[0073] - UE: User equipment
[0074] - ZP: Zero power
[0075] System in general
[0076] As more communication devices require greater communication capacity, there is a growing need for improved mobile broadband communication compared to existing radio access technologies (RATs). Massive Machine Type Communications (MTC), which connects multiple devices and objects to provide a variety of services anytime, anywhere, is also one of the key issues being considered for next-generation communications. In addition, communication system designs that take into account reliability- and latency-sensitive services / terminals are also being discussed. Thus, the introduction of next-generation RATs that take into account technologies such as enhanced mobile broadband communication (eMBB), massive MTC (MMTC), and ultra-reliable and low latency communication (URLLC) is being discussed. For convenience, these technologies will be referred to as NR in this disclosure. NR is an example of a 5G RAT.
[0077] New RAT systems, including NR, use an OFDM transmission scheme or a similar transmission scheme. A new RAT system may follow OFDM parameters different from those of LTE. Alternatively, a new RAT system may follow the existing LTE / LTE-A numerology but support a larger system bandwidth (e.g., 100 MHz). Alternatively, one cell may support multiple numerologies. That is, terminals operating with different numerologies may coexist within one cell.
[0078] A numerology corresponds to a subcarrier spacing in the frequency domain. Different numerologies can be defined by scaling the reference subcarrier spacing by an integer N.
[0079] FIG. 1 illustrates the structure of a wireless communication system to which the present disclosure can be applied.
[0080] Referring to FIG. 1, the NG-RAN is composed of gNBs that provide the NG-RA (NG-Radio Access) user plane (i.e., new access stratum (AS) sublayer / Packet Data Convergence Protocol (PDCP) / Radio Link Control (RLC) / MAC / PHY) and control plane (RRC) protocol termination for the UE. The gNBs are interconnected via an Xn interface. The gNBs are also connected to an NGC (New Generation Core) via an NG interface. More specifically, the gNBs are connected to an AMF (Access and Mobility Management Function) via an N2 interface and to a UPF (User Plane Function) via an N3 interface.
[0081] FIG. 2 illustrates a frame structure in a wireless communication system to which the present disclosure can be applied.
[0082] An NR system can support multiple numerologies. Here, a numerology may be defined by subcarrier spacing and cyclic prefix (CP) overhead. In this case, multiple subcarrier spacings may be derived by scaling the base (reference) subcarrier spacing by an integer N (or μ). Furthermore, even if it is assumed that very low subcarrier spacings are not used at very high carrier frequencies, the numerology used may be selected independently of the frequency band. Furthermore, an NR system may support various frame structures based on multiple numerologies.
[0083] The following describes OFDM numerologies and frame structures that can be considered in an NR system. A number of OFDM numerologies supported in an NR system may be defined as shown in Table 1 below.
[0084] [Table 1]
[0085] NR supports multiple numerologies (or subcarrier spacing (SCS)) to support various 5G services. For example, a 15 kHz SCS supports wide areas in traditional cellular bands, a 30 kHz / 60 kHz SCS supports dense urban areas, lower latency, and wider carrier bandwidths, and a 60 kHz or higher SCS supports bandwidths greater than 24.25 GHz to overcome phase noise.
[0086] The NR frequency band is defined as two types of frequency ranges (FR1 and FR2). FR1 and FR2 may be configured as shown in Table 2 below. FR2 may also refer to millimeter wave (mmW).
[0087] [Table 2]
[0088] In relation to the frame structure in an NR system, the size of the various fields in the time domain is T c =1 / (Δf max N f ) where Δf max =480 10 3 Hz and Nf = 4096. Downlink and uplink transmission is T f =1 / (Δf max N f / 100)·T c The radio frame is organized into radio frames each having a duration of T = 10 ms. sf =(Δf max N f / 1000)·T c In this case, there may be one set of frames for the uplink and one set of frames for the downlink. In addition, transmission from a terminal in uplink frame number i begins T TA =(N TA +N TA,offset )T c For a subcarrier spacing configuration μ, a slot is allocated within a subframe. s μ ∈{0,...,N slot subframe,μ -1}, and n s,f μ ∈{0,...,N slot frame,μ The slots are numbered in increasing order {N -1}. symb slot It consists of N consecutive OFDM symbols, symb slot is determined by the CP. s μ The start of OFDM symbol n s μ N symb slotNot all terminals can transmit and receive at the same time, which means that not all OFDM symbols in a downlink slot or uplink slot can be used.
[0089] Table 3 shows the number of OFDM symbols per slot (N symb slot ), the number of slots per radio frame (N slot frame,μ ), the number of slots per subframe (N slot subframe,μ ) and Table 4 shows the number of OFDM symbols per slot, the number of slots per radio frame, and the number of slots per subframe in the extended CP.
[0090] [Table 3]
[0091] [Table 4]
[0092] Figure 2 shows an example where μ = 2 (SCS is 60 kHz), and one subframe can include four slots as shown in Table 3. One subframe = {1, 2, 4} slots shown in Figure 2 is an example, and the number of slots that can be included in one subframe is defined as shown in Table 3 or Table 4. Also, a mini-slot can include 2, 4, or 7 symbols, or more or fewer symbols.
[0093] In relation to physical resources in an NR system, antenna ports, resource grids, resource elements, resource blocks, carrier parts, etc. may be considered. The physical resources that can be considered in an NR system will be specifically described below.
[0094] First, with respect to antenna ports, the antenna port is defined so that the channel on which symbols on the antenna port are carried can be inferred from the channel on which other symbols on the same antenna port are carried. If the large-scale properties of the channel on which symbols on one antenna port are carried can be inferred from the channel on which symbols on the other antenna port are carried, the two antenna ports are said to have a QC / QCL (quasi co-located or quasi co-location) relationship. Here, the large-scale properties include one or more of delay spread, Doppler spread, frequency shift, average received power, and received timing.
[0095] FIG. 3 illustrates an example of a resource grid in a wireless communication system to which the present disclosure is applicable.
[0096] Referring to FIG. 3, the resource grid is divided into N RB μ N sc RB It consists of subcarriers, and one subframe is 14.2 μ In the NR system, a transmitted signal is composed of N OFDM symbols. RB μN sc RB One or more resource grids consisting of subcarriers and two μ N symb (μ) OFDM symbols, where N RB μ ≦N RB max,μ The above N RB max,μ represents the maximum transmission bandwidth, which may vary not only depending on the numerology but also between the uplink and downlink. In this case, one resource grid may be configured for each μ and antenna port p. Each element of the resource grid for μ and antenna port p is called a resource element, and is represented by an index pair. JPEG0007733211000005.jpg999, where k=0,...,N RB μ N sc RB -1 is the index in the frequency domain, JPEG0007733211000006.jpg9118,...,2 μ N symb (μ) -1 represents the position of the symbol within the subframe. When referring to resource elements in a slot, the index pair (k, l) is used, where l = 0,...,N symb μ μ and the resource element for antenna port p. JPEG0007733211000007.jpg9107 is a complex value JPEG0007733211000008.jpg11109. If there is no risk of confusion or if a specific antenna port or numerology is not specified, the indices p and μ may be dropped, so that the complex value is JPEG0007733211000009.jpg1398. Also, a resource block (RB) is a set of N sc RB = 12 consecutive subcarriers.
[0097] Point A serves as a common reference point for the resource block grid and is obtained as follows:
[0098] - offsetToPointA for the primary cell (PCell) downlink indicates the frequency offset between point A and the lowest subcarrier of the lowest resource block that overlaps with the SS / PBCH block used by the terminal for initial cell selection. It is expressed in resource block units assuming 15 kHz subcarrier spacing for FR1 and 60 kHz subcarrier spacing for FR2.
[0099] - absoluteFrequencyPointA indicates the frequency-location of point A expressed as in ARFCN (absolute radio-frequency channel number).
[0100] Common resource blocks are numbered from 0 upwards in the frequency domain for a subcarrier spacing setting μ. The center of subcarrier 0 of common resource block 0 for a subcarrier spacing setting μ coincides with 'point A'. In the frequency domain, common resource block number n CRB μ The relationship between the resource elements (k, l) for the subcarrier spacing setting μ is given by the following equation 1.
[0101]
number
[0102] In Equation 1, k is defined relative to point A so that k=0 corresponds to the subcarrier centered at point A. The physical resource blocks are numbered from 0 to N within the bandwidth part (BWP). BWP,i size,μ Physical resource block n in BWP i is numbered from -1 to i. PRB and common resource block n CRB The relationship between is given by Equation 2 below.
[0103]
number
[0104] N BWP,i start,μ is the common resource block where the BWP starts relative to common resource block 0.
[0105] Fig. 4 illustrates a physical resource block in a wireless communication system to which the present disclosure can be applied, and Fig. 5 illustrates a slot structure in a wireless communication system to which the present disclosure can be applied.
[0106] 4 and 5, a slot includes multiple symbols in the time domain. For example, in the general CP, one slot includes seven symbols, while in the extended CP, one slot includes six symbols.
[0107] A carrier wave includes multiple subcarriers in the frequency domain. A resource block (RB) is defined as multiple (e.g., 12) consecutive subcarriers in the frequency domain. A bandwidth part (BWP) is defined as multiple consecutive (physical) resource blocks in the frequency domain, and may correspond to one numerology (e.g., SCS, CP length, etc.). A carrier wave can include up to N (e.g., 5) BWPs. Data communication is performed using activated BWPs, and only one BWP may be activated for one terminal. Each element in the resource grid is called a resource element (RE), and one complex symbol may be mapped to it.
[0108] The NR system may support up to 400 MHz per component carrier (CC). If a terminal operating on such a wideband CC keeps the radio frequency (RF) chip for the entire CC on at all times, battery consumption may increase. Considering various application cases (e.g., eMBB, URLLC, MMTc, V2X, etc.) operating within a single wideband CC, different numerologies (e.g., subcarrier spacing, etc.) may be supported for each frequency band within the CC. Each terminal may have different capabilities for maximum bandwidth. In consideration of this, a base station may instruct a terminal to operate only with a portion of the bandwidth of a wideband CC, rather than the entire bandwidth. For convenience, this portion of the bandwidth is defined as a bandwidth part (BWP). A BWP may consist of contiguous RBs on the frequency axis and may correspond to one numerology (e.g., subcarrier spacing, CP length, slot / minislot duration).
[0109] Meanwhile, a base station can configure multiple BWPs within one CC configured for a terminal. For example, a BWP occupying a relatively small frequency region can be configured in a PDCCH monitoring slot, and the PDSCH indicated by the PDCCH can be scheduled on a larger BWP. Alternatively, when UEs are concentrated in a specific BWP, other BWPs can be configured for some terminals for load balancing. Alternatively, both BWPs can be configured within the same slot by excluding a portion of the spectrum from the entire bandwidth, taking into account frequency domain inter-cell interference cancellation between neighboring cells. That is, a base station can configure at least one DL / UL BWP for a terminal associated with a wideband CC. The base station can activate at least one DL / UL BWP configured at a specific time (through L1 signaling, MAC Control Element (CE), RRC signaling, etc.). In addition, the base station can instruct switching to another configured DL / UL BWP (by L1 signaling, MAC CE, RRC signaling, etc.). Alternatively, the base station may switch to a predetermined DL / UL BWP when a timer value expires on a timer basis. In this case, the activated DL / UL BWP is defined as an active DL / UL BWP. However, in situations where the UE is performing an initial access procedure or before an RRC connection is set up, the UE may not be able to receive the configuration for the DL / UL BWP. Therefore, the DL / UL BWP assumed by the UE in such a situation is defined as the initially active DL / UL BWP.
[0110] FIG. 6 illustrates physical channels used in a wireless communication system to which the present disclosure is applicable, and a general signal transmission / reception method using the physical channels.
[0111] In a wireless communication system, a terminal receives information from a base station through a downlink and transmits information to the base station through an uplink. Information exchanged between the base station and the terminal includes data and various control information, and various physical channels exist depending on the type / purpose of the information exchanged.
[0112] When a terminal is powered on or newly enters a cell, it performs an initial cell search, such as synchronizing with a base station (S601). To do this, the terminal receives a primary synchronization signal (PSS) and a secondary synchronization signal (SSS) from the base station to synchronize with the base station and acquire information such as a cell identifier (ID). The terminal then receives a physical broadcast channel (PBCH) from the base station to acquire broadcast information within the cell. Meanwhile, the terminal can receive a downlink reference signal (DL RS) during the initial cell search phase to check the downlink channel status.
[0113] After completing the initial cell search, the terminal receives a Physical Downlink Control Channel (PDCCH) and a Physical Downlink Shared Channel (PDSCH) based on the information carried on the PDCCH, thereby obtaining more specific system information (S602).
[0114] Meanwhile, when the terminal first connects to the base station or when there are no radio resources for signal transmission, the terminal can perform a random access procedure (RACH) with the base station (steps S603 to S606). To this end, the terminal transmits a specific sequence as a preamble on a physical random access channel (PRACH) (steps S603 and S605) and can receive a response message to the preamble on a PDCCH and a corresponding PDSCH (steps S604 and S606). In the case of a contention-based RACH, a contention resolution procedure can also be performed.
[0115] After performing the above-described procedures, the UE can then perform PDCCH / PDSCH reception (S607) and Physical Uplink Shared Channel (PUSCH) / Physical Uplink Control Channel (PUCCH) transmission (S608) as a general uplink / downlink signal transmission procedure. In particular, the UE receives downlink control information (DCI) through the PDCCH. Here, DCI includes control information such as resource allocation information for the UE, and its format varies depending on its purpose.
[0116] Meanwhile, control information that a terminal transmits to a base station on the uplink or that the terminal receives from a base station includes downlink / uplink ACK / NACK (Acknowledgement / Non-Acknowledgement) signals, CQI (Channel Quality Indicator), PMI (Precoding Matrix Indicator), RI (Rank Indicator), etc. In a 3GPP LTE system, a terminal can transmit the above-mentioned control information such as CQI / PMI / RI on a PUSCH and / or a PUCCH.
[0117] Table 5 shows an example of a DCI format in an NR system.
[0118] [Table 5]
[0119] Referring to Table 5, DCI formats 0_0, 0_1, and 0_2 may include resource information related to PUSCH scheduling (e.g., UL / SUL (Supplementary UL), frequency resource allocation, time resource allocation, frequency hopping, etc.), transport block (TB)-related information (e.g., Modulation Coding and Scheme (MCS), New Data Indicator (NDI), Redundancy Version (RV), etc.), hybrid-automatic repeat and request (HARQ)-related information (e.g., process number, Downlink Assignment Index (DAI), PDSCH-HARQ feedback timing, etc.), multiple antenna-related information (e.g., DMRS sequence initialization information, antenna port, CSI request, etc.), and power control information (e.g., PUSCH power control, etc.), and the control information included in each DCI format may be predefined. DCI format 0_0 is used for PUSCH scheduling in one cell. The information included in DCI format 0_0 is CRC (cyclic redundancy check) scrambled using C-RNTI (Cell RNTI: Cell Radio Network Temporary Identifier), CS-RNTI (Configured Scheduling RNTI), or MCS-C-RNTI (Modulation Coding Scheme Cell RNTI) and then transmitted.
[0120] DCI format 0_0 is used for PUSCH scheduling in one cell. Information included in DCI format 0_0 is CRC (cyclic redundancy check) scrambled using a Cell Radio Network Temporary Identifier (C-RNTI), a Configured Scheduling RNTI (CS-RNTI), or a Modulation Coding Scheme Cell RNTI (MCS-C-RNTI) before being transmitted.
[0121] DCI format 0_1 is used to indicate scheduling of one or more PUSCHs in one cell or downlink feedback information of configured grants (CGs) to a terminal. The information included in DCI format 0_1 is CRC-scrambled using C-RNTI, CS-RNTI, SP-CSI-RNTI (Semi-Persistent CSI RNTI), or MCS-C-RNTI and then transmitted.
[0122] DCI format 0_2 is used for PUSCH scheduling in one cell. Information included in DCI format 0_2 is CRC scrambled using C-RNTI, CS-RNTI, SP-CSI-RNTI, or MCS-C-RNTI and then transmitted.
[0123] Next, DCI formats 1_0, 1_1, and 1_2 may include resource information related to PDSCH scheduling (e.g., frequency resource allocation, time resource allocation, VRB (virtual resource block)-PRB (physical resource block) mapping, etc.), transmission block (TB) related information (e.g., MCS, NDI, RV, etc.), HARQ related information (e.g., process number, DAI, PDSCH-HARQ feedback timing, etc.), multiple antenna related information (e.g., antenna port, TCI (transmission configuration indicator), SRS (sounding reference signal) request, etc.), and PUCCH related information (e.g., PUCCH power control, PUCCH resource indicator, etc.), and the control information included in each DCI format may be pre-defined.
[0124] DCI format 1_0 is used for PDSCH scheduling in one DL cell. Information included in DCI format 1_0 is CRC scrambled using C-RNTI, CS-RNTI, or MCS-C-RNTI and then transmitted.
[0125] DCI format 1_1 is used for scheduling PDSCH in one cell. Information included in DCI format 1_1 is CRC scrambled using C-RNTI, CS-RNTI, or MCS-C-RNTI and then transmitted.
[0126] DCI format 1_2 is used for scheduling PDSCH in one cell. Information included in DCI format 1_2 is CRC scrambled using C-RNTI, CS-RNTI, or MCS-C-RNTI and then transmitted.
[0127] Integrated Access and Backhaul (IAB)
[0128] Definitions of terms and abbreviations that may be used in this disclosure are defined as follows:
[0129] - IAB-node: RAN node that supports wireless access for UE and wirelessly backhauls access traffic
[0130] - IAB-donor: RAN node that provides the UE interface to the core network and the radio backhaul function for the IAB-node
[0131] - IAB: Integrated Access and Backhaul
[0132] - DgNB: Donor gNB
[0133] - AC: Access
[0134] - BH: Backhaul
[0135] - DU: Distributed Unit
[0136] - MT: Mobile terminal
[0137] - CU: Centralized Unit
[0138] - IAB-MT: IAB mobile terminal
[0139] - NGC: Next-Generation Core network
[0140] - SA: Stand-alone
[0141] - NSA: Non-stand-alone
[0142] - EPC: Evolved Packet Core
[0143] 1) IAB overview
[0144] One potential technology that will enable future cellular network deployment scenarios and applications is support for wireless backhaul and relay links, which will allow for flexible and very dense deployment of NR cells without congesting the transmission network.
[0145] In addition to the native deployment of massive MIMO or multi-beam systems for NR, the larger bandwidth available for NR compared to LTE (e.g., mmWave spectrum) allows for the development and deployment of integrated access and backhaul (IAB) links. Building on the many control and data channels / procedures defined to provide access for UEs, this makes it easier to deploy a dense network of self-backhauled NR cells in a more integrated manner.
[0146] FIG. 7 illustrates a network having integrated access and backhaul links in a wireless communication system to which the present disclosure may be applied.
[0147] Here, a relay node (rTRP) can multiplex access and backhaul links in time, frequency or space (e.g., beam-based operation).
[0148] The different links may operate at the same or different frequencies (also known as "in-band" and "out-band" relays).
[0149] In addition, operating an NR system in the mmWave spectrum presents several unique challenges, including experiencing severe short-term blocking that cannot be easily mitigated by current RRC-based handover mechanisms due to the larger timescale required for procedure completion compared to short-term blocking. To overcome short-term blocking in mmWave systems, a fast RAN-based mechanism for switching between rTRPs may be required, which does not necessarily require core network intervention. The need to mitigate short-term blocking for NR operation in the mmWave spectrum, along with the easier deployment of self-backhauled NR cells mentioned above, requires the development of an integrated framework that allows fast switching of access and backhaul links. Over-the-air (OTA) coordination between rTRPs can also be considered to mitigate interference and support end-to-end route selection and optimization.
[0150] FIG. 8 illustrates a network having integrated access and backhaul links in a wireless communication system to which the present disclosure may be applied.
[0151] An IAB node can operate in stand-alone (SA) or non-stand-alone (NSA) mode. When operating in NSA, the IAB node uses only NR links for backhauling. A UE connecting to an IAB node can select a different operation mode from the IAB node. A UE can also be connected to a different type of core network than the connected IAB node. In this case, an (enhanced) dedicated core network (e)Decor (enhanced) or slicing may be used to select the core network (CN). An IAB node operating in NSA mode may be connected to the same or a different eNB. A UE also operating as an NSA node can be connected to the same or a different eNB as the connected IAB node.
[0152] FIG. 9 illustrates an SA mode using NGC and an NSA mode using EPC in a wireless communication system to which the present disclosure can be applied.
[0153] Referring to Figure 9(a), the UE and IAB nodes can operate in strand-alone (SA) mode with the NGC. Referring to Figure 9(b), the UE operates in non-stand-alone (NSA) mode with the EPC, while the IAB nodes can operate in SA mode with the NGC. Referring to Figure 9(c), the UE and IAB nodes can operate in NSA with the EPC.
[0154] FIG. 10 is a diagram illustrating an example of an integrated access and backhaul link in a wireless communication system to which the present disclosure can be applied.
[0155] Referring to Figure 10(a), a link between a donor node and an IAB node or a link between IAB nodes is called a backhaul link. Meanwhile, a link between a donor node and a UE or a link between an IAB node and a UE is called an access link (operation). That is, a link between an MT and a parent DU or a link between a DU and a child MT is called a backhaul link, and a link between a DU and a UE is called an access link.
[0156] Referring to Figure 10(b), a link between an IAB node and a parent node is called a parent link, and a link between an IAB node and a descendant node / UE is called a descendant link. That is, a link between an MT and a parent DU is called a parent link, and a link between a DU and a descendant MT / UE is called a descendant link.
[0157] However, depending on the analysis or perspective, the link between the IAB node and the parent node can also be called a backhaul link, and the link between the IAB node and the descendant node / UE can also be called an access link.
[0158] 2) IAB node initial access
[0159] An IAB-node can follow the same initial attachment procedures as a UE, including cell search, system information (SI) acquisition, and random access, to initially establish a connection to a parent IAB node or IAB donor. The SSB / CSI-RS-based Radio Resource Management (RRM) measurements defined in Rel-15 NR are the starting point for IAB node discovery and measurements.
[0160] The IAB node discovery procedure, where half-duplex constraints and multi-hop topologies are applied, needs to be considered, including how to avoid conflicting SSB configurations between IAB nodes and the feasibility of CSI-RS-based IAB node discovery. When considering the cell identity to be used at a given IAB node, two additional cases may be considered:
[0161] - Case 1: IAB donor and IAB node share the same cell ID
[0162] - Case 2: IAB donor and IAB node maintain separate cell IDs
[0163] Additionally, a mechanism for multiplexing random access channel (RACH) transmissions from the UE and RACH transmissions from the IAB nodes needs to be further considered.
[0164] In SA deployment, the initial IAB node discovery by the MT (1st stage) follows the same Rel-15 initial attachment procedure as the UE (including cell search, SI acquisition, and random access based on the same SSBs available to the access UE) to set up a connection to the initial parent IAB node or IAB donor.
[0165] In the NSA deployment (from the access UE perspective), when the IAB node MT makes an initial connection to an NR carrier, it follows the same one-stage initial connection as in the SA deployment (from the access UE perspective). The SSB / RMSI (remaining material system information) periodicity assumed by the MT for the initial connection may be longer than the 20 ms assumed by Rel-15 UEs, and a single value may be selected from the following possible values: 20 ms, 40 ms, 80 ms, and 160 ms.
[0166] 3) Backhaul Link Measurement
[0167] For link management and route selection, measurements on multiple backhaul links need to be considered. To support half-duplex constraints from the perspective of a given IAB node, the IAB supports the search and measurement of candidate backhaul links (after initial connection) that utilize resources that are orthogonal in time to the resources used by the access UE for cell search and measurement. In this regard, the following can be further considered.
[0168] TDM on SSB (e.g., by hop order, cell ID, etc.)
[0169] - SSB muting at IAB nodes
[0170] - Multiplexing of SSBs for access UEs and IABs within or across half frames
[0171] - Additional IAB node discovery signals (e.g., CSI-RS) that are TDMed with Rel-15 SSB transmissions
[0172] - Off-raster SSB
[0173] - Another transmission period for backhaul link detection and measurement compared to the period used by the access UE
[0174] Coordination mechanisms for various solutions need to be further considered, including mechanisms for the coordination of reference signal (RS) transmissions and measurement occasions for IAB nodes.
[0175] For backhaul link RSRP (reference signal received power) / RSRQ (reference signal received quality) RRM measurements, IAB supports both SSB-based and CSI-RS-based solutions.
[0176] After the IAB node DU is activated (stage 2), for IAB node-to-IAB node and donor detection, the IAB node-to-IAB node discovery procedure must take into account the half-duplex constraints in IAB nodes and multi-hop topologies. The following solutions are supported:
[0177] - SSB-based solution: Uses SSB that is orthogonal (TDM and / or FDM) to the SSB used by the access UE
[0178] 4) Backhaul Link Management
[0179] IAB nodes support mechanisms for detecting and recovering from backhaul link failures based on Rel-15 mechanisms. Improvements to beam failure recovery (BFR) and radio link failure (RLF) procedures need to be supported by the NR IAB, including:
[0180] Enhancements to support interaction between Beam Failure Recovery success indication and RLF;
[0181] - To avoid backhaul link outages, improvements to existing beam management procedures for faster beam switching / coordination / recovery need to be considered for IAB nodes.
[0182] In addition, a solution to prevent RLF in descendant IAB nodes due to parent backhaul link failure must be supported.
[0183] 5) Mechanisms for sending / receiving or path switching across multiple backhaul links
[0184] Mechanisms for efficient path switching or transmission / reception on multiple backhaul links simultaneously (e.g., multiple TRP operation and intra-frequency dual connectivity) must be considered.
[0185] 6) Backhaul and access link scheduling
[0186] DL IAB node transmissions (i.e., transmissions over the backhaul link from an IAB node served by an IAB node to a descendant IAB node and transmissions from an IAB node served by an IAB node to an access link to a UE) must be scheduled by the IAB node itself, while UL IAB transmissions (backhaul link transmissions from an IAB node to a parent IAB node or IAB donor) must be scheduled by the parent IAB node or IAB donor.
[0187] 7) Backhaul and access link multiplexing
[0188] IAB supports time division multiplexing (TDM), frequency division multiplexing (FDM), and spatial division multiplexing (SDM) between parent and descendant links at an IAB node due to the half-duplex constraint. Taking into account the IAB node half-duplex constraint, an efficient TDM / FDM / SDM multiplexing mechanism for parent and descendant link traffic over multiple hops must be considered. The following solutions for various multiplexing options can be further considered:
[0189] - A mechanism for orthogonal division of time slot or frequency resources between access and backhaul links over one or multiple hops.
[0190] - Various DL / UL slot configurations for access and backhaul links
[0191] - DL and UL power control improvements and timing requirements allowing intra-panel FDM and SDM of parent and descendant links
[0192] - Interference management, including cross-link interference
[0193] 8) IAB Node Synchronization and Timing Alignment
[0194] The feasibility of OTA synchronization and the impact of timing misalignment on IAB performance (e.g., the number of hops that can be supported) were studied. Assuming a ≤3us timing requirement across IAB nodes in overlapping coverage, timing advance (TA)-based OTA synchronization can support multi-hop IAB networks (up to 5 hops) for FR2.
[0195] The IAB supports TA-based synchronization between IAB nodes, including multiple backhaul hops.
[0196] - Case A: DL transmission time alignment across IAB nodes and IAB donors: If DL TX (transmission) and UL RX (reception) are not well aligned at the parent node, descendant nodes require additional information for alignment to properly set DL TX timing for OTA base timing and synchronization.
[0197] Case A is supported for both access and backhaul link transmission time alignment.
[0198] - Case B (Case A DL transmission time + UL transmission time (DL and UL transmission times are aligned within an IAB node)): The DL transmission time for all IAB nodes is aligned with the parent IAB node or donor DL time. The UL transmission time of an IAB node may be aligned with the DL transmission time of the IAB node.
[0199] The Case B implementation, if supported by an IAB node, must be under parent or network control.
[0200] To enable DL transmission alignment between IAB nodes, the following solutions may be supported:
[0201] - Alt 1: IAB nodes must perform parallel (always time multiplexed) Case A and Case B UL transmissions.
[0202] - Alt 2: Signaling between parent and IAB nodes for the time difference between DL Tx and UL Rx times at the parent node to correct potential misalignment of DL Tx times at the descendant node: The descendant IAB node compares the difference between its DL Tx time and its BH (backhaul) Rx time. If the signaled difference at the parent node is greater than that measured at the descendant node, the descendant node advances its Tx time; if it is less, its Tx time is delayed.
[0203] Case C (Case A + UL receive time (DL and UL receive times are aligned within the IAB node)): DL transmission times for all IAB nodes are aligned with the parent IAB node or donor DL timing. The UL receive time of an IAB node may be aligned with the DL receive time of the IAB node. If DL TX and UL RX are not well aligned at the parent node, additional information for alignment is required for descendant nodes to properly set the DL Tx time for OTA-based timing and synchronization.
[0204] Case C is made compatible with Rel-15 UEs by introducing i) an "effective" negative TA, and ii) TDM between descendant IAB nodes / Rel-16 UEs that support the new TA value and descendant IAB nodes / UEs that do not support the new TA value. The following solutions may be supported to enable alignment between DL and UL reception within an IAB node:
[0205] - Alt 1: Introduction of negative initial TA (time alignment) for IAB nodes applies to descendant nodes of IAB nodes that apply Case C timing.
[0206] - Alt 2: Apply positive TA that allows symbol alignment instead of slot alignment between DL and UL reception at IAB nodes.
[0207] - Alt 3: To achieve an effective negative TA, signaling of a relative offset to the most recent TA value is applied to descendant nodes of the IAB node applying Case C.
[0208] Besides OTA synchronization, other technologies such as Global Navigation Satellite System (GNSS) and Precision Time Protocol (PTP) can be used to achieve synchronization between IAB nodes.
[0209] 9) Resource Allocation for the IAB
[0210] From an IAB node MT perspective, the following time domain resources may be indicated for the parent link:
[0211] - DL time resources;
[0212] - UL time resources;
[0213] -Flexible time resources.
[0214] From the IAB node DU perspective, the following time resources may be indicated on descendant links:
[0215] - DL time resources;
[0216] - UL time resources;
[0217] -Flexible time resources.
[0218] Each of the DL, UL and flexible time resource types of a DU descendant link may belong to one of the following three categories:
[0219] - Hard: The time resource is always available for the DU descendant link.
[0220] Soft: The availability of the time resource to a DU descendant link is explicitly and / or implicitly controlled by the parent node.
[0221] - Not available: A resource that is not used for communication of DU descendant links.
[0222] To support the resource allocation mechanism for IAB nodes, semi-static configuration of IAB node DU resources is supported. Dynamic indication (L1 signaling) of soft resource availability for IAB node DUs to IAB nodes is also supported. Using the existing Rel-15 L1 signaling as a baseline, potential improvements (e.g., new slot formats), rules for DU / MT behavior in the event of collisions across multiple hops, and processing time constraints at IAB nodes must be considered.
[0223] 10)IAB operation
[0224] Table 6 shows an example of a DCI format in an NR system.
[0225] [Table 6]
[0226] DCI format 2_5 is used to signal the availability of soft resources.
[0227] The following information may be transmitted in DCI format 2_5 with CRC scrambled by the availability indicator - RNTI (AI-RNTI):
[0228] - availability indicator 1, availability indicator 2, ..., availability indicator N.
[0229] The size of DCI format 2_5 with CRC scrambled by AI-RNTI may be configured by higher layers up to a maximum of 128 bits.
[0230] Unless otherwise specified in this disclosure, the term "UE" may equally apply to an IAB node MT of an IAB node, i.e., unless otherwise specified, the actions of a UE described in this disclosure may also be performed by an IAB node MT.
[0231] The procedure for an IAB node MT to perform a cell search, system information acquisition or random access procedure is the same as for a UE, except for the following:
[0232] For the initial cell selection, the IAB node MT may assume that the half-frames in which the SS / PBCH blocks reside have a period of 16 frames.
[0233] For a physical random access channel (PRACH) transmission, the IAB node MT determines the frame and subframe within the frame that contains the PRACH occasion.
[0234] The IAB node MT determines an association period for mapping SS / PBCH blocks to PRACH occasions based on the PRACH configuration period in Table 7. The association pattern period includes one or more association periods and is determined so that the pattern between PRACH opportunities and SS / PBCH blocks is repeated at most every 640 msec. PRACH opportunities within a PRACH slot are valid depending on the conditions.
[0235] Table 7 illustrates a mapping between the PRACH configuration period for an IAB node MT and the association period of SS / PBCH blocks to PRACH opportunities.
[0236] [Table 7]
[0237] IAB node receives T from the serving cell delta If a value is provided, (N TA +N TA,offset )·T c / 2+T delta >0, the IAB node (N TA +N TA,offset )·T c / 2+T delta It can be assumed that N is the time difference between the DU transmission of a signal to the serving cell and the reception of said signal by the IAB node MT, where N TA and N TA,offset may be obtained according to TS 38.2134.2 clause. IAB nodes can use the time difference to determine the DU transmission time.
[0238] The slot format for IAB node DU or IAB node MT includes a DL symbol, a UL symbol, and a flexible symbol.
[0239] For each serving cell of the IAB node DU, the IAB node DU can receive instructions on the slot format for multiple slots via IAB-DU-Resource-Configuration. For each serving cell, the IAB node MT can receive instructions on the slot format for multiple slots via tdd-UL-DL-ConfigDedicated-IAB-MT. When the IAB node MT is provided with tdd-UL-DL-ConfigDedicated-IAB-MT, the parameter tdd-UL-DL-ConfigDedicated-IAB-MT overrides only the flexible symbols in the slot format for multiple slots provided by TDD-UL-DL-ConfigurationCommon.
[0240] tdd-UL-DL-ConfigDedicated-IAB-MT provides a set of slot configurations via slotSpecificConfigurationsToAddModList-IAB-MT, and for each slot configuration from the set of slot configurations, provides a slot index via "slotIndex", and provides a set of symbols for the slot via "symbols".
[0241] Here, if "symbols"="allDownlink", all symbols in the slot are DL. If "symbols"="allUplink", all symbols in the slot are UL.
[0242] Also, if "symbols" = "explicit", nrofDownlinkSymbols provides the number of first DL symbols in the slot, and nrofUplinkSymbols provides the number of last UL symbols in the slot. If nrofDownlinkSymbols is not provided, there is no first DL symbol in the slot, and if nrofUplinkSymbols is not provided, there is no last UL symbol in the slot. The remaining symbols in the slot are flexible.
[0243] Also, if "symbols" = "explicit-IAB-MT", nrofUplinkSymbols provides the number of first UL symbols in the slot, and nrofDownlinkSymbols provides the number of last DL symbols in the slot. If nrofUplinkSymbols is not provided, there is no first UL symbol in the slot, and if nrofDownlinkSymbols is not provided, there is no last DL symbol in the slot. The remaining symbols in the slot are flexible.
[0244] The IAB-MT applies the format provided by the symbol to each slot having the index provided by "slotIndex".
[0245] The IAB node MT may be provided with a list of slot format combinations applicable to one serving cell by SlotFormatCombinationsPerCell-IAB-MT, and may be provided with a setting to monitor DCI format 2_0, which indicates a slot format combination from the list of slot format combinations across multiple slots, by SlotFormatIndicator-IAB-MT. In addition to the slot formats defined in TS 38.21311.1, the SFI (slot format indicator) field for the IAB node MT in DCI format 2_0 can indicate a slot format from the slot formats in Table 8 to the IAB node MT.
[0246] Table 8 illustrates an example slot format for a normal cyclic prefix (CP).
[0247] [Table 8]
[0248] For the serving cell of the IAB node MT, the IAB node MT may be provided with multiple symbols not used for the IAB node MT in slots where the IAB node is switched between the IAB node MT and the IAB node DU by guard-SymbolsProvided. The SCS setting for multiple symbols is provided by guardSymbol-SCS.
[0249] With reference to the slot of the IAB node DU serving cell, the symbols within the slot of the IAB node DU serving cell may be configured as hard, soft, or unavailable type. If a DL, UL, or flexible symbol is configured as hard, the IAB node DU serving cell can transmit, receive, or transmit or receive, respectively, on that symbol.
[0250] When a DL, UL or flexible symbol is configured as soft, an IAB node DU can transmit, receive, or transmit or receive, respectively, on said symbol only if:
[0251] - for an IAB node MT, the capability to transmit or receive by an IAB node DU on soft symbols is the same as if the soft symbols were set as unavilable, or
[0252] - If the IAB node DU detects DCI format 2_5 with an AI (availability indicator) index field value indicating the soft symbols available for transmission or reception
[0253] If a symbol is set as unavilable, the IAB node DU will neither transmit nor receive on that symbol.
[0254] When an IAB node DU transmits an SS / PBCH block or periodic CSI-RS in a slot symbol or receives a PRACH or SR (scheduling request) in a slot symbol, the slot symbol is set to hard.
[0255] When the AvailabilityIndicator is provided to the IAB node, the IAB node is provided with the AI-RNTI via "ai-RNTI" and the payload size of DCI format 2_5 via "dci-PayloadSize-AI". The IAB node is also provided with the search space set configuration for PDCCH monitoring via "SearchSpace-IAB".
[0256] For each serving cell of an IAB node DU in the serving cell set of the IAB node DU, the IAB node DU may be provided with:
[0257] - ID of IAB node DU serving cell via "iabDuCellId-AI"
[0258] - The position of the AI (Availability Indicator) index field in DCI format 2_5 according to "positionInDCI-AI"
[0259] - a set of availability combinations containing each availability combination by "availabilityCombinations"
[0260] - "resourceAvailability" indicating the availability of soft symbols in one or more slots for the IAB node DU serving cell, and
[0261] - A mapping of the soft symbol availability combinations provided by "AvailabilityCombination" to the corresponding AI index field values of DCI format 2_5 provided by "AvailabilityCombinationId"
[0262] The AI index field value of DCI format 2_5 indicates to the IAB node DU the soft symbol availability in each slot for each DL BWP or UL BWP starting from the slot where the IAB node detects DCI format 2_5. The number of slots is equal to or greater than the PDCCH monitoring period for DCI format 2_5 provided by SearchSpace-IAB. The AI index field contains max{ceil(log2(maxAIindex+1)),1} bits, where maxAIindex is the maximum value of the values provided by the corresponding availabilityCombinationId. The availability for soft symbols in a slot is identified by the corresponding resourceAvailability value provided in Table 9.
[0263] Table 9 illustrates the mapping between resourceAvailability element values and types of in-slot soft symbol availability.
[0264] [Table 9]
[0265] If the PDCCH monitoring period for DCI format 2_5 is smaller than the duration of the soft symbol availability combination for the number of slots acquired by the UE in the PDCCH monitoring occasion for DCI format 2_5 according to the corresponding AI index field, and if the UE detects one or more DCI formats 2_5 indicating a soft symbol availability combination in a slot, the UE expects that each of the one or more DCI formats 2_5 indicates the same value for the soft symbol availability combination in the slot.
[0266] The random access preamble may only be transmitted in the time resource given by the higher layer parameter prach-ConfigurationIndex according to Tables 6.3.3.2-2 to 6.3.3.2-4 defined in TS 38.211, which differs depending on FR1 or FR2 and spectrum type defined in TS 38.104.
[0267] Once all higher layer parameters prach-ConfigurationFrameOffset, prach-ConfigurationPeriodScaling and prach-ConfigurationSOffset have been configured for the IAB-MT part of an IAB node, the following applies in Tables 6.3.3.2-2 to 6.3.3.2-4 defined in TS 38.211:
[0268] - In Table 6.3.3.2-2 to Table 6.3.3.2-4, n SFN mod x=y is n SFN mod x IAB=(y+Δy) mod x IAB where Δy∈{0,1,...,x IAB -1} is given by the higher layer parameter prach-ConfigurationFrameOffset. IAB = δx, where δ is given by the higher layer parameter prach-ConfigurationPeriodScaling.
[0269] - The subframe number in Table 6.3.3.2-2 to Table 6.3.3.2-3 and the slot number in Table 6.3.3.2-4 are (s n +Δs) mod L, where s n is the slot or subframe number, Δs is given by the higher layer parameter prach-ConfigurationSOffset, and L is the number of subframes in a frame in Tables 6.3.3.2-2 to 6.3.3.2-3, and the number of slots in a frame in Table 6.3.3.2-4.
[0270] gNB (IAB-DU) downlink transmit power indication
[0271] In Rel-16NR, the downlink power of a gNB is indicated by RRC according to 3GPP TS 38.331 as follows:
[0272] Table 10 illustrates the ServingCellConfigCommon information element (IE).
[0273] [Table 10]
[0274] Referring to Table 10, the ss-PBCH-BlockPower parameter indicates the average energy per resource element (EPRE) in dBm of the resource elements (REs) carrying the secondary synchronization signal used by the network for SSB transmissions (see TS 38.213 clause 7).
[0275] Table 11 illustrates an example of the NZP-CSI-RS-Resource IE.
[0276] [Table 11]
[0277] In Table 11, the powerControlOffset parameter indicates the power offset of PDSCH REs relative to NZP CSI-RS REs, and is a value in dB (see TS 38.214 subclause 5.2.2.3.1 and 4.1). The powerControlOffsetSS parameter indicates the power offset of NZP CSI-RS REs relative to SSS REs, and is a value in dB (see TS 38.214 subclause 5.2.2.3.1).
[0278] That is, the IAB-MT is instructed in dBm of the transmission signal strength of the SSS (Secondary Synchronization signal) transmitted by the parent IAB-DU in ss-PBCH-BlockPower (Table 10). The IAB-MT is also instructed in dBm of the transmission power of a specific NZP-CSI-RS-Resource RE as an offset from the SSS RE, and can infer / calculate the transmission power of the NZP-CSI-RS-Resource RE transmitted by the parent IAB-DU from dBm. The IAB-MT is also instructed in dBm of the transmission power of the PDSCH RE as an offset from the NZP-CSI-RS-Resource RE, and can infer / calculate the transmission power of the PDSCH RE transmitted by the parent IAB-DU from dBm.
[0279] DL transmission power adjustment method for IAB-MT
[0280] In existing IAB nodes, the DU and MT operate using time division multiplexing (TDM), which means they use different time resources. However, for efficient resource management, resource multiplexing such as spatial division multiplexing (SDM) / frequency division multiplexing (FDM) and full duplexing (FD) between the DU and MT is required. As shown in Figure 10(b), the link between an IAB node (i.e., IAB MT) and a parent node (i.e., a parent DU) is called a parent link, and the link between an IAB node (i.e., IAB DU) and a descendant node (i.e., a descendant MT) is called a descendant link. Here, TDM operation between a parent link and a descendant link has been previously discussed, and SDM / FDM and FD operation are currently under discussion.
[0281] DUs and MTs that reside within the same IAB node (or are co-located) cannot operate simultaneously due to intra-node interference, slot / symbol boundary misalignment, power sharing, etc., and can operate in a time-division multiplexed fashion.
[0282] On the other hand, SDM / FDM multiplexing may be used between the DU and MT. This is applicable, for example, when the DU and MT use different panels and there is little interference between the panels. In this case, the DU and MT existing in the same IAB node (or coexisting) can transmit or receive simultaneously, but the DU and MT cannot transmit and receive, or receive and transmit, respectively, simultaneously.
[0283] Alternatively, full duplexing (FD) may be used between the DU and MT. This may be applied when there is little interference between the DU and MT, for example, when the frequency domain in which the DU operates and the frequency domain in which the MT operates are far apart. In this case, the DU and MT that exist (or coexist) within the same IAB node can freely transmit and receive simultaneously. The DU and MT can transmit or receive simultaneously, and the DU and MT can also transmit and receive, or receive and transmit simultaneously.
[0284] There may be N (N is a natural number) MT-component carriers (CC) and M DU cells in an IAB node.
[0285] FIG. 11 illustrates a plurality of MT-CCs and a plurality of DU-cells in a wireless communication system to which the present disclosure can be applied.
[0286] Figure 11 illustrates an example in which an IAB node is configured with N = 3 MT-CCs and M = 3 DU-cells. MT-CCs within an IAB node can operate on the same or different frequency resources, and one MT-CC can be connected to one or more parent DU-cells. DU-cells within an IAB node can operate on the same or different frequency resources.
[0287] For a specific MT-CC / DU-cell pair in an IAB node, the MT-CC and DU-cell may have a TDM or no-TDM relationship for the following four Tx / Rx direction combinations. The TDM / no-TDM relationship may differ depending on the Tx / Rx combination.
[0288] - DU-Tx / MT-Tx
[0289] - DU-Rx / MT-Rx
[0290] - DU-Tx / MT-Rx
[0291] - DU-Rx / MT-Tx
[0292] For example, for a specific MT-CC / DU-cell pair, all four Tx / Rx combinations can operate in TDM. In this case, the DU-cell and MT-CC must always operate in TDM regardless of the Tx / Rx direction of the DU-cell and MT-CC.
[0293] As another example, for a specific MT-CC / DU-cell pair, all four Tx / Rx combinations can operate without TDM. In this case, the DU-cell and MT-CC can always operate simultaneously without TDM regardless of the Tx / Rx direction of the DU-cell and MT-CC.
[0294] As another example, for a specific MT-CC / DU-cell pair, the DU-Tx / MT-Tx and DU-Rx / MT-Rx can operate with no-TDM, and the DU-Tx / MT-Rx and DU-Rx / MT-Tx can operate with TDM. This corresponds to using a scheme (e.g., SDM / FDM) that allows simultaneous operation when the Tx / Rx directions of the DU-cell and MT-CC are the same, and can also operate simultaneously when the Tx / Rx directions of the DU-cell and MT-CC are the same. Such TDM / no-TDM information for each Tx / Rx combination may be set / determined differently / independently for each specific MT-CC / DU-cell pair within the IAB node.
[0295] It is also possible for one IAB node to be connected to two or more parent nodes. An IAB node may have multiple redundant routes to an IAB donor CU. For an IAB node operating in SA mode, NR dual connectivity (DC) is used to enable route redundancy in the backhaul (BH) by allowing the IAB-MT to have concurrent backhaul (BH) radio link control (RLC) channels with two parent nodes. The parent node must be connected to the same IAB donor CU-CP, which controls the establishment and release of redundant routes through the two parent nodes. Together with the IAB donor CU, the parent node assumes the roles of master node and secondary node of the IAB-MT. The NR DC framework (e.g., master cell group (MCG) / secondary cell group (SCG) related procedures) is used to configure dual radio links with the parent node.
[0296] Here, the IAB MT may be connected to two parent DUs using, for example, a dual-connectivity method or a dual active protocol stack based handover (DAPS-HO) method.
[0297] FIG. 12 illustrates a case where an IAB node is connected to parent node 1 and parent node 2 in a wireless communication system to which the present disclosure can be applied.
[0298] For the sake of convenience, the present disclosure assumes the following:
[0299] An MT in an IAB node (i.e., IAB(node)MT) is connected to a DU in parent node 1 (i.e., parent(node)DU1) and a DU in parent node 2 (i.e., parent(node)DU2).
[0300] - The link between Parent DU1 and IAB MT is called Parent Link 1, and the link between Parent DU2 and IAB MT is called Parent Link 2.
[0301] - A link between an IAB node DU (i.e., an IAB (node) DU) and a descendant IAB node and / or access UE is called a descendant link.
[0302] - Parent link 1 and parent link 2 may be connected through the same or different MT-CC in the IAB MT.
[0303] - Parent link 1 and descendant link can operate using different time resources in TDM.
[0304] - Among the MT-CCs of the IAB nodes, the MT-CC connected to parent IAB node 1 is called CG1, the MT-CC connected to parent IAB node 2 is called CG2, and the MT-CC connected to parent IAB node x is called CGx. Alternatively, the DU-cell in parent IAB node 1 connected to an IAB node is called CG1, the DU-cell in parent IAB node 2 is called CG2, and the DU-cell in parent IAB node x is called CGx.
[0305] In this disclosure, MT may refer to MT-CC and DU may refer to DU-cell.
[0306] An IAB node may have (i.e., be connected to) multiple parent IAB nodes, and the multiple connected parent IAB nodes are connected to each other via a direct, single-hop, or multi-hop wireless backhaul, making real-time coordination between parent nodes impossible. Here, the multiple parent IAB nodes may be connected via the same or different MTs of the IAB node. Each parent IAB node can provide an availability indicator (AI) to its descendant nodes.
[0307] Therefore, power control of the IAB-DU is essential to guarantee the performance of the backhaul link, and it was agreed to introduce desired power adjustment as assistance information for DL power control, as shown in Table 12 below.
[0308] [Table 12]
[0309] That is, in terms of desired power adjustment, information that assists the parent node in DL power allocation may be indicated to the parent node DU by the IAB-MT.
[0310] When the parent IAB receives the desired power adjustment from the descendant IAB-MT, it must indicate to the descendant IAB-MT that it accepts the power adjustment. If the parent IAB does not indicate this, the descendant IAB-MT (e.g., UE) will not know that the transmit power of the parent IAB (e.g., gNB) has increased or decreased, which may affect path loss estimation. That is, the descendant IAB-MT (e.g., UE) must indicate to the UE the amount of change in transmit power relative to a signal (e.g., SSB or CSI-RS) that it expects to transmit at a constant power. In existing NR, this is updated by RRC. However, DL power control due to simultaneous operation of IABs may be performed dynamically. Therefore, the parent IAB (e.g., gNB) needs to dynamically notify the descendant IAB-MT (e.g., UE) of changes in DL transmission power using dynamic signaling (e.g., MAC-CE or DCI, etc.).
[0311] Considering the desired power adjustment for DL power control (PC) according to a multiplexing scenario, the following is true.
[0312] - Multiplexing Case B (MT Rx + DU Rx): (Depending on the implementation) To ensure the stability of automatic gain control (AGC) operation, prevent quantization distortion, ensure amplifier linearity, etc., the descendant IAB-MT (e.g., UE) can request the desired power adjustment to limit the received power level within a specific range.
[0313] - Multiplexing Case D (MT Rx + DU Tx): In the descendant link DL, there are signals such as SSB and CSI-RS whose transmit power is expected to remain constant. Such signals may exist as signal interference (SI) with a large power level in the MT Rx. Therefore, the descendant IAB-MT (e.g., UE) can request a boost in the power level of the signal received from the parent.
[0314] Unlike UL PC, the multiplexing case B may be a request to increase or decrease the transmission power of the parent DU, and the multiplexing case D may be a request to increase the transmission power of the parent DU. Therefore, a method is proposed that considers applying assistance information according to the multiplexing scenario. Here, the application scope of the desired power adjustment for DL power control may be applied only to UE-specific signals, not to cell-specific signals, because cell-specific signals affect the entire cell coverage.
[0315] For convenience of explanation, this disclosure will describe power control of the IAB-DU based on a request from the IAB-MT, but power control of the IAB-DI may also be applied in the same manner even without a request from the IAB-MT. That is, in this disclosure, operations related to a request from the IAB-MT may be selectively applied.
[0316] Furthermore, even if not specifically mentioned in this disclosure, IAB-MT can be replaced with UE and IAB-DU with gNB.
[0317] Furthermore, although the present disclosure primarily describes the proposed method for a single-panel / single-RF IAB for convenience of explanation, the present disclosure is not limited thereto, and the proposed method may also be applied to single-panel / multiple-RF, multiple-panel / single-RF, and multiple-panel / multiple-RF environments.
[0318] In the present disclosure, "A or B" can mean "A only," "B only," or "both A and B." In other words, in the present disclosure, "A or B" can be interpreted as "A and / or B." For example, in the present disclosure, "A, B, or C" can mean "A only," "B only," "C only," or "any combination of A, B, and C."
[0319] As used in this disclosure, a slash ( / ) or a comma can mean "and / or." For example, "A / B" can mean "A and / or B." Thus, "A / B" can mean "A only," "B only," or "both A and B." For example, "A, B, C" can mean "A, B, or C."
[0320] In the present disclosure, "at least one of A and B" can mean "A only," "B only," or "both A and B." Furthermore, in the present disclosure, the expressions "at least one of A or B" or "at least one of A and / or B" may be interpreted as being the same as "at least one of A and B."
[0321] Furthermore, in this disclosure, "at least one of A, B and C" can 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" can mean "at least one of A, B and C."
[0322] Furthermore, parentheses used in the present disclosure may mean "for example." Specifically, when "control information (PDCCH)" is displayed, it may mean that "PDCCH" is proposed as an example of "control information." In other words, in the present disclosure, "control information" is not limited to "PDCCH," and "PDDCH" may be proposed as an example of "control information." Furthermore, when "control information (i.e., PDCCH)" is displayed, it may mean that "PDCCH" is proposed as an example of "control information."
[0323] In the present disclosure, technical features described separately in one drawing may be embodied separately or simultaneously.
[0324] The DL power control request of the IAB-MT may be made with a desired power adjustment. This disclosure describes how to request this based on a resource or multiplexing scenario, how the parent IAB-DU that received the request instructs the IAB-MT when accepting and applying such a request, and the operation of the IAB-MT that received such an instruction.
[0325] The methods proposed in this disclosure described below can be extended to UEs for IAB-MT and gNBs and base stations for IAB-DU.
[0326] Example 1) Method for requesting desired power adjustment for downlink of IAB-MT
[0327] The IAB-MT may consider the following methods for requesting a desired downlink power adjustment from the parent IAB-DU (i.e., a request for a downlink transmission power adjustment): For example, the IAB-MT may transmit a desired power adjustment request via MAC-CE / UCI, etc., using the methods described below.
[0328] Method 1) The IAB-MT can request a desired power adjustment from the parent IAB-DU on a resource-by-resource basis (at the resource level). That is, the IAB-MT can transmit a request for downlink transmission power adjustment on a resource-by-resource basis (at the resource level). In other words, when the IAB-MT requests a desired power adjustment from the parent IAB-DU, it can include information about the resource for which the desired power adjustment is requested.
[0329] Here, the term "resource" may refer to all resources from which the IAB-MT receives signals. For example, the term may refer to an NZP-CSI-RS resource, which is an RS-based resource, or may refer to a time domain and / or a frequency domain (and / or a spatial domain) resource. In other words, the term may refer to a resource as a unit in which a specific channel / signal is transmitted, or may refer to a resource as a unit in the time / frequency / spatial domain, such as a slot / symbol / RB / subcarrier / BWP / layer.
[0330] When the IAB-MT requests power adjustment for a specific resource using the above method and the parent IAB-DU receives the request or is expected to perform the power adjustment in response to the request, the IAB-MT can expect the transmit power for the resource to be changed. For example, when the IAB-MT requests power adjustment for a specific CSI-RS resource and the parent IAB-DU later indicates that it has received the request (e.g., an indication in the form of an ACK), the IAB-MT can expect the parent IAB-DU to perform power control (i.e., power adjustment) only for the CSI-RS resource. Alternatively, when the IAB-MT requests power adjustment for a specific CSI-RS resource, the IAB-MT can expect the parent IAB-DU to perform power control only for the CSI-RS resource for a period in which the parent IAB-DU is expected to perform power control.
[0331] Alternatively, if the IAB-MT requests power adjustment for a specific resource and the parent IAB-DU is expected to receive the request or adjust the power accordingly, the IAB-MT may expect the transmit power to be changed for not only the resource but also other resources. For example, if the IAB-MT requests power adjustment for a specific CSI-RS resource and the parent IAB-DU later indicates that it has received the request (e.g., in the form of an ACK), the IAB-MT may expect the parent IAB-DU to perform power control not only for the CSI-RS resource (i.e., the requested resource) but also for other resources, or for all signals / channels other than signals that are expected to be transmitted at constant power later. Alternatively, when the IAB-MT requests power adjustment for a specific CSI-RS resource, for the period in which the parent IAB-DU is expected to perform power control, the IAB-MT can expect the parent IAB-DU to perform power control not only for that CSI-RS resource (i.e., the requested resource) but also for other resources, or for all signals / channels other than signals that are expected to be transmitted at constant power later.
[0332] Method 2) The IAB-MT can request the parent IAB-DU for desired power adjustment for each multiplexing scenario (e.g., multiplexing mode) (i.e., DU-Tx / MT-Tx, DU-Rx / MT-Rx, DU-Tx / MT-Rx, DU-Rx / MT-Tx). That is, the IAB-MT can transmit a request for downlink transmission power adjustment for each multiplexing scenario (e.g., multiplexing mode).
[0333] In other words, when the IAB-MT requests a desired power adjustment from the parent IAB-DU, the IAB-MT can transmit information about the multiplexing scenario (eg, multiplexing mode) for which the desired power adjustment is requested.
[0334] Here, the IAB-MT requesting power adjustment for each multiplexing scenario may mean the following: A multiplexing scenario may be mapped to specific time resources and / or frequency resources and / or beam (or space) resources by prior agreement, and power adjustment for each multiplexing scenario may be requested based on this mapping. Here, mapping a multiplexing scenario to a specific time interval means, for example, that the IAB multiplexing scenario is mapped according to slot index n for which the IAB-MT requests power adjustment, and the parent IAB-DU may adjust the transmission power of the parent IAB-DU at the time when the specific multiplexing scenario of the IAB is applied based on slot index n. In this case, the IAB-MT may transmit, in addition to the power adjustment request, information on the specific time / frequency / space resources to which power adjustment is applied (or where application begins).
[0335] Alternatively, a power adjustment reported by an IAB node when it is applying a first multiplexing scenario may be applied only to a specific second multiplexing scenario of the IAB node (here, the first multiplexing scenario may be the same as or different from the second multiplexing scenario). For example, if an IAB-MT requests desired power control for DL during a time interval when it operates in simultaneous Tx-Tx mode, the parent IAB-DU may understand / consider the desired power control to be a power control request for a time interval when the IAB-MT operates in simultaneous Rx-Rx mode. As yet another example, if an IAB-MT requests desired power control for DL during a time interval when it operates in simultaneous Tx-Rx mode (MT-Tx / DU-Rx), the parent IAB-DU may understand / consider the desired power control to be a power control request for a time interval when the IAB-MT operates in simultaneous Rx-Tx mode (MT-RX / DU-Tx).
[0336] Here, mapping a multiplexing scenario to a specific beam resource may mean, for example, that the IAB's multiplexing scenario is mapped according to the CSI-RS resource ID M (M is a natural number) for which the IAB-MT requests power adjustment, and the parent IAB-DU adjusts the transmission power of the parent IAB-DU at the time when the IAB's specific multiplexing scenario is applied based on the CSI-RS resource ID M.
[0337] When the IAB-MT requests DL power adjustment using the above-mentioned methods (e.g., methods 1 and 2), it can determine whether it is possible to request DL power adjustment (i.e., send a request) based on the current (i.e., before adjustment) transmission power level of the parent IAB-DU.
[0338] For example, the IAB-MT can determine whether the transmission power of the parent IAB-DU can be adjusted based on the powerControlOffsetSS value of the NZP-CSI-RS-Resource IE (see Table 11 above). For example, if the powerControlOffsetSS is indicated as the lowest value (currently db-3, expandable in the future, e.g., db-10), the IAB-MT can determine that power adjustment of the parent IAB-DU is not possible for the CSI-RS resource, for the group of CSI-RS resources, or for a specific multiplexing scenario, and therefore does not need to request DL power adjustment. Alternatively, the IAB-MT can consider requesting power control based on the corresponding value. For example, when the powerControlOffsetSS currently indicated for a specific NZP-CSI-RS-Resource is db0, the IAB-MT may directly report a desired value (e.g., db3) from a candidate set for the powerControlOffsetSS of the NZP-CSI-RS-Resource, or the power control adjustment request may mean / indicate one of the values of powerControlOffsetSS according to the mapping relationship.
[0339] The IAB-MT can determine that DL power adjustment cannot be requested if the powerControlOffsetSS list includes db-3, db0, db3, and db6, as in Rel-16. Alternatively, the IAB-MT can determine that DL power adjustment can be requested if the powerControlOffsetSS list has an expanded number and / or finer granularity (e.g., db-9, db-6, db-3, db0, db3, db6, db9, etc.). That is, the IAB-MT can determine whether to request DL power adjustment based on the powerControlOffsetSS list. Conversely, the parent IAB-DU can configure the IAB-MT with a powerControlOffsetSS value (i.e., a different list) that is different from Rel-16 only if it supports DL power adjustment.
[0340] As described above, the IAB-MT can transmit a request for downlink transmission power adjustment to the parent IAB-DU only when the IAB-MT determines that it is possible to transmit a request for downlink transmission power adjustment based on the power level of the downlink transmission.
[0341] When the IAB-MT requests downlink power control adjustment from the parent IAB-DU in the above-mentioned methods (e.g., methods 1 and 2), it can request power control based on the SSB transmission power or can also indicate a CSI-RS resource index or a CSI-RS group index. Then, the IAB-MT can expect power control for the reported resources.
[0342] When the IAB-MT requests downlink power control adjustment from the parent IAB-DU in the above-mentioned methods (e.g., methods 1 and 2), an association between such desired power adjustment request and a slot index must be determined. In addition to the desired power adjustment request, an association must also be determined with the desired IAB-MT UL power spectral density (PSD) range. In addition, an association must also be determined between the desired power adjustment request requested by the IAB-MT and the desired power adjustment provided by the parent IAB. In all cases, the association with the slot index can consider the following cases.
[0343] Case 1) If the IAB-MT's request for desired DL Tx power adjustment is associated with a slot index (i.e., indicated together with a slot index), the IAB-MT can determine that the request for desired DL Tx power adjustment can be accepted only for that slot index (i.e., DL power adjustment applies only to the slot having the indicated slot index). Since the period of such indication is very short, if the IAB-MT makes a request for desired DL Tx power adjustment together with a slot index and determines that the request can be accepted only for that slot index, the IAB-MT's request can be made using UCI, and the parent IAB node's DL Tx power update can also be made using DCI.
[0344] Case 2) If the IAB-MT's desired DL Tx power adjustment request is associated with a slot index (i.e., indicated together with a slot index), the IAB-MT can determine that the desired DL Tx power adjustment request can be accepted for the time from the slot index onward (i.e., the DL power adjustment applies for the time from the slot index onward). Here, the valid period from the slot index onward may be determined by prior agreement or configured by the parent IAB node. For example, it may apply until the IAB node's multiplexing mode is changed, or until the IAB node, currently operating in TDM mode, changes to no-TDM mode, or until the IAB node, currently operating in no-TDM mode, changes to TDM mode. Alternatively, regardless of such agreement / configuration, the IAB-MT can expect the request to be applied continuously from the slot index onward. Regardless of whether a validity period is set or not, the request of the IAB-MT may be made in the MAC-CE (or UCI), and the resulting DL Tx power update of the parent IAB node may also be made in the MAC-CE (or DCI).
[0345] Case 3) If the IAB-MT's request for desired DL Tx power adjustment is associated with a slot index (i.e., indicated together with a slot index), the IAB-MT can determine that the request for desired DL Tx power adjustment can be accepted only for the slot index periodically (i.e., DL power adjustment is applied periodically to the slot having the indicated slot index). The period for applying the slot index can be determined by prior agreement or set by the parent IAB node. For example, a subframe can be set as the period, or a period according to the UL / DL configuration can be set as the period. Alternatively, it can be considered that the multiplexing mode of the IAB node is set periodically, and the slot index can be applied for each such period. The IAB-MT request according to the above method can be made by the UCI / MAC-CE, and the parent IAB node's DL Tx power update can also be made by the DCI / MAC-CE.
[0346] Example 2) Operation of Parent IAB-DU in Response to Request for Desired Power Adjustment for Downlink of IAB-MT
[0347] When a parent IAB receives a desired power adjustment from a descendant IAB-MT in the same manner as in Example 1, the parent IAB can instruct the descendant IAB-MT to accept such power adjustment. Without this instruction, the descendant IAB-MT would not know that the parent IAB's transmit power has been lowered or increased, which may affect path loss estimation, etc. That is, the parent IAB needs to instruct the descendant IAB-MT on the amount of change in transmit power compared to a signal (e.g., SSB or CSI-RS) that the descendant IAB-MT expects to be transmitted at constant power. In existing NR, this is updated by RRC. However, DL power control due to simultaneous operation of IABs can be performed dynamically. Therefore, the parent IAB needs to dynamically notify the descendant IAB-MT of a change in DL transmit power via MAC-CE or DCI.
[0348] Example 2-1) Parent IAB-DU Instructions
[0349] The parent IAB-DU can indicate to the IAB-MT that it has received the IAB-MT's DL power control (i.e., adjustment) request. That is, the IAB-MT can receive information from the parent IAB-DU to notify it that it has received a DL power control (i.e., adjustment) request. However, such an indication does not mean that the parent IAB-DU's power control has been applied or that the transmission power has been changed. That is, the parent IAB-DU can notify the IAB-MT that it has received the IAB-MT's power control request.
[0350] The reason for this operation is that if the IAB-MT requests power control but does not know whether the IAB-DU has received the IAB-MT, the IAB-MT can determine that the IAB-DU did not recognize that the IAB-MT requires power control. This can cause the IAB-MT to request continuous power control, which can lead to continuous unnecessary signaling. Therefore, the parent IAB-DU can transmit to the IAB-MT via RRC / MAC-CE / DCI, etc., that it has received the IAB-MT's desired power control request, which requests adjustment of its downlink power. An explicit indication can be used to transmit the request. For example, the reception of the request can be indicated by a single bit, similar to the HARQ-ACK method. Alternatively, the notification can be implicit, based on a pre-agreed / pre-defined rule.
[0351] This operation of the parent IAB-DU indicating that it has received a DL power control request from the IAB-MT may mean that the IAB-MT will not make a DL power control request for a specific time period (predefined or set by the parent IAB-DU) after the indicated time point. For example, the indication that it has received a DL power control request from the IAB-DU may mean that the IAB-MT will disable the DL power control request for N slots (N is a natural number) or M subframes (M is a natural number) based on the slot in which the IAB-MT requested DL power control. In other words, the IAB-MT cannot transmit any other DL power control requests to the parent IAB-DU during this time period.
[0352] Example 2-2) Method of instructing change / adjustment of DL transmission power of parent IAB-DU
[0353] The parent IAB-DU can change the DL power level (i.e., power adjustment) transmitted to the IAB-MT in response to or without a DL power control request (i.e., a request for downlink transmission power adjustment) from the IAB-MT. That is, the parent IAB-DU can transmit control information for downlink transmission power adjustment to the IAB-MT. Here, the control information may be transmitted even without a request for downlink transmission power adjustment from the IAB-MT. This is because the DL power control request does not mandate a specific operation of the parent IAB-DU.
[0354] Since the IAB can apply various multiplexing scenarios and various timing cases, power adjustment requests can be dynamically requested by the UCI / MAC-CE. Furthermore, even without a request from the IAB-MT, the parent IAB-DU is likely to need to quickly change the DL power. However, as mentioned above, currently, DL power is indicated only through RRC signaling, and therefore, an enhancement is needed.
[0355] The parent IAB-DU can update information / values indicating the relative transmission power of a signal (e.g., SSB, CSI-RS, etc.) transmitted at constant power like SSB (e.g., SSB) versus intensity (e.g., per-RE energy (EPRE) ratio / offset, value indicating relative power compared to SSB, etc.) via lower layer signaling (e.g., MAC-CE or DCI). That is, control information for downlink transmission power adjustment may include information indicating the relative transmission power of a signal (e.g., SSB, CSI-RS, etc.) transmitted at constant power (e.g., SSB, CSI-RS, etc.) versus intensity (e.g., per-RE energy (EPRE) ratio / offset, value indicating relative power compared to SSB, etc.).
[0356] Such updates can be considered to be indicated by a single value and calculated from the corresponding value, or to be indicated and updated for all (possible) corresponding values. For example, if the parent IAB-DU indicates a single value delta for updating the transmit power strength, this can update the value indicating the transmit power for a specific resource or multiple resources according to a prior agreement or contract (or configuration by the parent IAB-DU).
[0357] The indication of a DL transmission power change (i.e., adjustment) of the parent IAB-DU may be given based on the SSB power or based on a specific CSI-RS or a group of CSI-RSs. Furthermore, when instructing an update of a corresponding value, it may be possible to indicate and update the index of the CSI-RS or the index of the group of CSI-RSs. For example, the parent IAB-DU may indicate to the IAB-MT, as lower layer signaling (e.g., MAC-CE or DCI) (i.e., control information for downlink transmission power adjustment), i) the index of the CSI-RS (or the index of the CSI-RS group) and ii) information / value (e.g., an EPRE ratio / offset in dB) indicating the DL transmission power relative to the transmission power of the CSI-RS (or the group of CSI-RSs). In this case, the IAB-MT can calculate / derive the DL transmission power (e.g., the EPRE of downlink transmission) based on i) the transmission power (e.g., the EPRE of the CSI-RS) of the CSI-RS (or the CSI-RS group) having the index of the CSI-RS (or the index of the CSI-RS group) indicated by lower layer signaling (e.g., MAC-CE or DCI) and ii) information indicating the DL transmission power relative to the transmission power of the CSI-RS (or the group of CSI-RS) (e.g., the EPRE ratio / offset in dB).
[0358] The DL transmit power change (i.e., adjustment) update, which is a response from the parent IAB node to the IAB node's desired downlink power request described above (or the parent IAB node's DL transmit power change (i.e., adjustment) update without the IAB node's desired downlink power request), may be limited to specific resources. For example, it may be considered to limit the DL transmit power change update to time resources. When the parent IAB node updates the transmit power in downlink signaling (e.g., MAC-CE or DCI) using the above method, it may indicate a set of time resources or the time resource itself for a specific time resource (e.g., slot index, subframe index, time domain Hard / Soft / NA (non-available), etc.). Here, if the parent IAB node indicates time resources as Hard / Soft / NA, the resources indicated as Hard are used by the IAB node's DUs, and the IAB node can therefore expect the parent IAB node not to change the DL Tx power for the time resources indicated as Hard. That is, when a parent IAB node instructs both a DL Tx power change and time domain H / S / NA, the IAB node may, by prior agreement (or by configuration of the parent IAB node), expect the DL Tx power to be changed for i) Soft and NA resources, or ii) only for NA resources. As described above, the parent IAB node may instruct that the DL Tx power has been changed for a specific time resource index or a set of specific time resource indexes, and DL transmission may be performed with DL Tx power that is not updated for time resources other than the specified specific time resource index or set of specific time resource indexes. Therefore, the IAB node may expect the DL Tx power to be changed only for the specified time resource or set of specified time resources, and not to be changed for non-specified time resources or set of non-specified time resources.
[0359] Example 3) Operation of IAB-MT by grant from parent IAB-DU
[0360] When receiving a DL transmission power change (i.e., adjustment) update from the parent IAB-DU, such as by the method of Example 2, the IAB-MT can report CSI associated with the CSI-RS resource (or CSI-RS resource group) indicated in the DL transmission power change (i.e., adjustment) update based on (or taking into account or applying) the DL transmission power change (i.e., adjustment) update.
[0361] For example, when the parent IAB-DU indicates a change in DL power through lower layer signaling (e.g., MAC-CE / DCI, etc.) using the method of Example 2, the IAB-MT can update or reset the time window for RSRP reporting. Alternatively, when the parent IAB-DU indicates a change in DL power through lower layer signaling (e.g., MAC-CE / DCI, etc.), this can mean that the parent IAB-DU indicates a change in DL power through lower layer signaling to instruct the IAB-MT to report RSRP or a differential RSRP. In this case, when the parent IAB-DU indicates power control for a specific resource, i.e., for a specific CSI-RS, the power control may be applied only to that CSI-RS (i.e., the CSI-RS resource specified in the power control instruction).
[0362] When the parent IAB-DU indicates by lower layer signaling (e.g., MAC-CE / DCI, etc.) that it has changed the DL power for a specific CSI-RS, such as by the method described above, the IAB-MT can update or reset the time window for reporting the CSI-RSRP for that CSI-RS. Alternatively, when the parent IAB-DU indicates by lower layer signaling (e.g., MAC-CE / DCI, etc.) that it has changed the DL power for a specific CSI-RS, this can mean that it instructs the IAB-MT to report the CSI-RSRP or a differential CSI-RSRP for that CSI-RS.
[0363] In the above, RSRP report means L1 (layer 1) report, and time window means filtering for L1 reporting. That is, updating or resetting the time window means filtering so that L1 reporting is performed using only CSI-RS received after the IAB-DU indicates that the DL power has been changed.
[0364] FIG. 13 is a diagram illustrating a signaling procedure between a base station and a terminal for a downlink power adjustment method according to an embodiment of the present disclosure.
[0365] FIG. 13 illustrates a signaling procedure between a user equipment (UE) and a base station (BS) based on a previously proposed method (e.g., any one or more combinations of Examples 1 to 3 and their detailed embodiments). The illustration of FIG. 13 is provided for convenience of explanation and does not limit the scope of the present disclosure. Some steps illustrated in FIG. 13 may be omitted depending on the situation and / or configuration. Also, the base station and the terminal in FIG. 13 are merely examples and may be embodied by the apparatus illustrated later in FIG. 16. For example, the processor 102 / 202 in FIG. 16 may control the transceiver 106 / 206 to transmit and receive channels / signals / data / information, etc., and may control the memory 104 / 204 to store the transmitted or received channels / signals / data / information, etc.
[0366] Furthermore, in the operation between the base station and the terminal in Figure 13, even if not specifically mentioned, the above-mentioned proposed method (e.g., any one or a combination of several of Examples 1 to 3 and their detailed examples) may be referred to / applied.
[0367] A base station may collectively refer to an object that transmits and receives data to and from a terminal. For example, the base station may be a concept including one or more Transmission Points (TPs) and one or more Transmission and Reception Points (TRPs). Furthermore, the TP and / or TRP may include a base station panel, a transmission and reception unit, etc. Furthermore, the term "TRP" may be used in place of expressions such as a panel, an antenna array, a cell (e.g., a macro cell, a small cell, a pico cell, etc.), a transmission point (TP), a base station (gNB, etc.), etc. As described above, a TRP may be distinguished by information (e.g., an index, an ID) related to a CORESET group (or a CORESET pool). For example, if one terminal is configured to transmit and receive data to and from multiple TRPs (or cells), this may mean that multiple CORESET groups (or CORESET pools) are configured for one terminal. Such a configuration for a CORESET group (or a CORESET pool) may be performed by higher layer signaling (for example, RRC signaling, etc.).
[0368] 13, for convenience of explanation, signaling between one base station and a terminal is considered, but it goes without saying that the signaling scheme can be extended to signaling between multiple TRPs and multiple UEs. In the following description, a base station may be interpreted as one TRP. Alternatively, a base station may include multiple TRPs, or may be one cell including multiple TRPs.
[0369] 13, the base station may correspond to an IAB node (i.e., IAB-DU) and may also be referred to as a parent IAB node (i.e., parent IAB-DU). Also, the terminal may correspond to an IAB node (i.e., IAB-MT) and may also be referred to as a descendant IAB node (i.e., descendant IAB-DU).
[0370] 13, a terminal receives configuration information related to downlink transmission power from a base station (S1301). That is, the base station transmits the configuration information related to downlink transmission power to the terminal.
[0371] Here, the configuration information related to the downlink transmission power may include the configuration information described in the above-mentioned proposed method (e.g., any one or a combination of embodiments 1 to 3 and their detailed embodiments).
[0372] For example, the configuration information related to the downlink transmission power may include first configuration information related to the serving cell and second configuration information related to the CSI-RS resources.
[0373] Here, the first configuration information may include information ([dBm]) regarding the energy per resource element (EPRE) of the SSS used for SSS transmission. For example, the first configuration information may correspond to a ServingCellConfigCommon IE.
[0374] The second configuration information may also include information ([dB]) on a power offset (hereinafter referred to as a first power offset) of the EPRE of the CSI-RS resource compared to the EPRE for the SSS. For example, the second configuration information may correspond to an NZP-CSI-RS-Resource IE.
[0375] The terminal may transmit a request for downlink transmission power adjustment to the base station (S1302). That is, the base station may receive a request for downlink transmission power adjustment from the terminal.
[0376] As described above, the base station may perform power control (adjustment) for downlink transmission even if there is no request for power adjustment for downlink transmission from the terminal, i.e., step S1302 may be omitted, and step S1304 (described later) may be performed regardless.
[0377] Alternatively, the base station may perform power control (adjustment) as described below in response to a request for downlink transmission power adjustment from the terminal (step S1304).
[0378] Here, the request for power adjustment of downlink transmission may include information regarding the resources for which power adjustment is requested (e.g., time / frequency / spatial resources, or resources of a specific channel / signal) or multiplexing mode (i.e., DU-Tx / MT-Tx, DU-Rx / MT-Rx, DU-Tx / MT-Rx, DU-Rx / MT-Tx).
[0379] Furthermore, the terminal can transmit a request for power adjustment of the downlink transmission to the base station only when it is determined that the terminal is capable of transmitting a request for power adjustment of the downlink transmission based on the power level of the downlink transmission of the base station.
[0380] The terminal may receive information from the base station to indicate that it has received a request for downlink transmission power adjustment (S1303). That is, the base station may transmit information to the terminal to indicate that it has received a request for downlink transmission power adjustment.
[0381] As described above, step S1302 may be omitted, and if step S1302 is omitted, step S1303 is also omitted.
[0382] Alternatively, even if step S1302 is performed, step S1303 may be omitted. That is, control information for downlink transmission power adjustment may be transmitted from the UE in response to the request for downlink transmission power adjustment, and in this case, the UE may confirm / recognize that the base station has received the request for downlink transmission power adjustment.
[0383] The terminal receives control information for downlink transmission power adjustment (i.e., update) from the base station (S1304). That is, the base station transmits control information for downlink transmission power adjustment (i.e., update) to the terminal.
[0384] Here, the control information may be transmitted by lower layer signaling (e.g., MAC CE, DCI, etc.), for example, DL transmission (Tx) power adjustment MAC CE.
[0385] The control information may include resource information (e.g., SSB, CSI-RS resource index, etc.) associated with power adjustment of downlink transmission. The control information may also include information on a power offset (hereinafter referred to as a second power offset) of the downlink transmission power (e.g., EPRE) relative to the resource (e.g., SSB, CSI-RS resource index, etc.) associated with power adjustment of downlink transmission. In this case, the downlink transmission power (e.g., EPRE) may be derived from the power (e.g., EPRE) of the resource (e.g., SSB, CSI-RS resource index, etc.) associated with power adjustment of downlink transmission based on the second power offset.
[0386] Furthermore, the control information for power adjustment of downlink transmission may include a time resource (e.g., a slot index, a subframe index, etc.), a frequency resource (e.g., an RB index, etc.), and / or a spatial resource (e.g., a layer index, etc.) on which the power adjustment is performed. In this case, the power adjustment of downlink transmission indicated by the control information may be applied only to the time / frequency / spatial resource.
[0387] Alternatively, the control information for power adjustment of downlink transmission may include information on a channel / signal (e.g., PDSCH, PDCCH, CSI-RS, etc.) on which power adjustment is performed. In this case, the power adjustment of downlink transmission indicated by the control information may be applied only to the corresponding channel / signal.
[0388] Meanwhile, although not shown, when reporting CSI for a CSI-RS resource indicated by control information for downlink transmission power adjustment, the UE may report the CSI-RS based on the control information. For example, if the transmission power of a PDSCH for a specific CSI-RS resource is adjusted (updated) by the control information for downlink transmission power adjustment, when reporting CSI based on the specific CSI-RS, the UE may calculate a CQI based on the adjusted (updated) PDSCH transmission power and include it in the CSI to report.
[0389] FIG. 14 is a diagram illustrating an operation of a terminal with respect to a downlink power adjustment method according to an embodiment of the present disclosure.
[0390] FIG. 14 illustrates an example of the operation of a terminal based on the previously proposed method (e.g., a combination of any one or more of Examples 1 to 3 and their detailed embodiments). The illustration of FIG. 14 is merely for convenience of explanation and does not limit the scope of the present disclosure. Some steps illustrated in FIG. 14 may be omitted depending on the situation and / or setting. Also, the terminal in FIG. 14 is merely an example and may be embodied by the device illustrated in FIG. 16 below. For example, the processor 102 / 202 in FIG. 16 may control the transceiver 106 / 206 to transmit and receive channels / signals / data / information (e.g., RRC signaling, MAC CE, DCI for UL / DL scheduling, SRS, PDCCH, PDSCH, PUSCH, PUCCH, etc.) and store the transmitted or received channels / signals / data / information in the memory 104 / 204.
[0391] 14, the base station may correspond to an IAB node (i.e., IAB-DU) and may also be referred to as a parent IAB node (i.e., parent IAB-DU). Also, the terminal may correspond to an IAB node (i.e., IAB-MT) and may also be referred to as a descendant IAB node (i.e., descendant IAB-DU).
[0392] The terminal receives first configuration information associated with a serving cell and second configuration information associated with CSI-RS resources from a base station (S1401).
[0393] Here, the first configuration information may include information ([dBm]) regarding the energy per resource element (EPRE) of the SSS used for SSS transmission. For example, the first configuration information may correspond to a ServingCellConfigCommon IE.
[0394] The second configuration information may also include information ([dB]) on a power offset (hereinafter referred to as a first power offset) of the EPRE of the CSI-RS resource compared to the EPRE for the SSS. For example, the second configuration information may correspond to an NZP-CSI-RS-Resource IE.
[0395] The terminal receives control information for power adjustment (ie, update) of downlink transmission from the base station (S1402).
[0396] Here, the control information may be transmitted in lower layer signaling (e.g., MAC CE, DCI, etc.), for example, DL transmission (Tx) power adjustment MAC CE.
[0397] The control information may include resource information (e.g., SSB, CSI-RS resource index, etc.) associated with power adjustment of downlink transmission. The control information may also include information on a power offset (hereinafter referred to as a second power offset) of the downlink transmission power (e.g., EPRE) relative to the resource (e.g., SSB, CSI-RS resource index, etc.) associated with power adjustment of downlink transmission. In this case, the downlink transmission power (e.g., EPRE) may be derived from the power (e.g., EPRE) of the resource (e.g., SSB, CSI-RS resource index, etc.) associated with power adjustment of downlink transmission based on the second power offset.
[0398] Furthermore, the control information for power adjustment of downlink transmission may include a time resource (e.g., a slot index, a subframe index, etc.), a frequency resource (e.g., an RB index, etc.), and / or a space resource (e.g., a layer index, etc.) on which the power adjustment is performed. In this case, the power adjustment of downlink transmission indicated by the control information may be applied only to the time / frequency / space resource.
[0399] Alternatively, the control information for power adjustment of downlink transmission may include information on a channel / signal (e.g., PDSCH, PDCCH, CSI-RS, etc.) on which power adjustment is performed. In this case, the power adjustment of downlink transmission indicated by the control information may be applied only to the corresponding channel / signal.
[0400] Meanwhile, although not shown, the terminal may transmit a request for downlink transmission power adjustment to the base station and may receive control information for downlink transmission power adjustment in response thereto. Here, the request for downlink transmission power adjustment may include information on resources for which power adjustment is requested (e.g., time / frequency / spatial resources or resources of a specific channel / signal) or multiplexing modes (i.e., DU-Tx / MT-Tx, DU-Rx / MT-Rx, DU-Tx / MT-Rx, DU-Rx / MT-Tx). Furthermore, the terminal may transmit the request for downlink transmission power adjustment to the base station only when it is determined that the terminal is able to transmit the request for downlink transmission power adjustment based on the downlink transmission power level of the base station.
[0401] Although not shown, the terminal can transmit a request for downlink transmission power adjustment to the base station, and can receive information from the base station in response to the request for downlink transmission power adjustment, indicating that the request for downlink transmission power adjustment has been received. The terminal can also receive control information for downlink transmission power adjustment from the base station.
[0402] Furthermore, although not shown, when reporting CSI for a CSI-RS resource indicated by control information for downlink transmission power adjustment, the UE may report the CSI-RS based on the control information. For example, if the transmission power of a PDSCH for a specific CSI-RS resource is adjusted (updated) by the control information for downlink transmission power adjustment, when reporting CSI based on the specific CSI-RS, the UE may calculate a CQI based on the adjusted (updated) PDSCH transmission power and include it in the CSI to report.
[0403] FIG. 15 is a diagram illustrating an operation of a base station for a downlink power adjustment method according to an embodiment of the present disclosure.
[0404] FIG. 15 illustrates an example of the operation of a base station based on the previously proposed method (e.g., a combination of any one or more of Examples 1 to 3 and their detailed embodiments). The illustration of FIG. 15 is for convenience of explanation and does not limit the scope of the present disclosure. Some steps illustrated in FIG. 15 may be omitted depending on the situation and / or settings. Also, the base station in FIG. 15 is merely an example and may be embodied by the apparatus illustrated in FIG. 16 below. For example, the processor 102 / 202 in FIG. 16 may control the transceiver 106 / 206 to transmit and receive channels / signals / data / information (e.g., RRC signaling, MAC CE, DCI for UL / DL scheduling, SRS, PDCCH, PDSCH, PUSCH, PUCCH, etc.) and store the transmitted or received channels / signals / data / information in the memory 104 / 204.
[0405] 15, the base station may correspond to an IAB node (i.e., IAB-DU) and may also be referred to as a parent IAB node (i.e., parent IAB-DU). The terminal may correspond to an IAB node (i.e., IAB-MT) and may also be referred to as a descendant IAB node (i.e., descendant IAB-DU).
[0406] The base station transmits first configuration information associated with a serving cell and second configuration information associated with CSI-RS resources to the terminal (S1501).
[0407] Here, the first configuration information may include information ([dBm]) regarding the energy per resource element (EPRE) of the SSS used for SSS transmission. For example, the first configuration information may correspond to a ServingCellConfigCommon IE.
[0408] The second configuration information may also include information ([dB]) on a power offset (hereinafter referred to as a first power offset) of the EPRE of the CSI-RS resource compared to the EPRE for the SSS. For example, the second configuration information may correspond to an NZP-CSI-RS-Resource IE.
[0409] The base station transmits control information for power adjustment (ie, update) of downlink transmission to the terminal (S1502).
[0410] Here, the control information may be transmitted by lower layer signaling (e.g., MAC CE, DCI, etc.), for example, DL transmission (Tx) power adjustment MAC CE.
[0411] The control information may include resource information (e.g., SSB, CSI-RS resource index, etc.) associated with power adjustment of downlink transmission. The control information may also include information on a power offset (hereinafter referred to as a second power offset) of the downlink transmission power (e.g., EPRE) relative to the resource (e.g., SSB, CSI-RS resource index, etc.) associated with power adjustment of downlink transmission. In this case, the downlink transmission power (e.g., EPRE) may be derived from the power (e.g., EPRE) of the resource (e.g., SSB, CSI-RS resource index, etc.) associated with power adjustment of downlink transmission based on the second power offset.
[0412] Furthermore, the control information for power adjustment of downlink transmission may include a time resource (e.g., a slot index, a subframe index, etc.), a frequency resource (e.g., an RB index, etc.), and / or a space resource (e.g., a layer index, etc.) on which the power adjustment is performed. In this case, the power adjustment of downlink transmission indicated by the control information may be applied only to the time / frequency / space resource.
[0413] Alternatively, the control information for power adjustment of downlink transmission may include information on a channel / signal (e.g., PDSCH, PDCCH, CSI-RS, etc.) on which power adjustment is performed. In this case, the power adjustment of downlink transmission indicated by the control information may be applied only to the corresponding channel / signal.
[0414] As described above, a base station that has transmitted control information for power adjustment (i.e., update) of downlink transmission can subsequently perform downlink transmission based on the adjusted power (e.g., at a specific time / frequency / space resource or for a specific channel / signal) during downlink transmission.
[0415] Meanwhile, although not shown, the base station may receive a request for downlink transmission power adjustment from the terminal and may transmit control information for downlink transmission power adjustment in response to the request. Here, the request for downlink transmission power adjustment may include information on resources for which power adjustment is requested (e.g., time / frequency / spatial resources or resources of a specific channel / signal) or multiplexing modes (i.e., DU-Tx / MT-Tx, DU-Rx / MT-Rx, DU-Tx / MT-Rx, DU-Rx / MT-Tx). Furthermore, the terminal may transmit the request for downlink transmission power adjustment to the base station only when it is determined that the terminal is able to transmit the request for downlink transmission power adjustment based on the power level of the base station's downlink transmission.
[0416] Although not shown, the base station can receive a request for downlink transmission power adjustment from the terminal, and in response thereto, can transmit information to the terminal to notify that the request for downlink transmission power adjustment has been received. The base station can also transmit control information for downlink transmission power adjustment to the terminal.
[0417] Also, although not shown, when reporting CSI for a CSI-RS resource indicated by control information for downlink transmission power adjustment, the UE can report the CSI-RS based on the control information. For example, if the transmission power of a PDSCH for a specific CSI-RS resource is adjusted (updated) according to control information for downlink transmission power adjustment, when reporting CSI based on the specific CSI-RS, the UE can calculate a CQI based on the adjusted (updated) PDSCH transmission power and include it in the CSI for reporting. That is, when the base station receives a CSI report for a specific CSI-RS from the UE according to control information for downlink transmission power adjustment, the base station can confirm / recognize that the CQI in the CSI has been calculated using the adjusted power for the PDSCH.
[0418] General devices to which the present disclosure can be applied
[0419] FIG. 16 illustrates a block diagram of a wireless communication device according to an embodiment of the present disclosure.
[0420] Referring to FIG. 16, a first wireless device 100 and a second wireless device 200 can transmit and receive wireless signals using various wireless access technologies (e.g., LTE, NR).
[0421] The first wireless device 100 may include one or more processors 102 and one or more memories 104, and may further include one or more transceivers 106 and / or one or more antennas 108. The processor 102 may be configured to control the memory 104 and / or the transceiver 106 to implement the descriptions, functions, procedures, suggestions, methods, and / or operational flowcharts disclosed in this disclosure. For example, the processor 102 may process information in the memory 104 to generate first information / signals and then transmit a wireless signal including the first information / signals from the transceiver 106. The processor 102 may also receive a wireless signal including second information / signals from the transceiver 106 and then store information obtained from signal processing of the second information / signals in the memory 104. The memory 104 may be coupled to the processor 102 and may store various information related to the operation of the processor 102. For example, the memory 104 may store software code including instructions for performing some or all of the processes controlled by the processor 102 or for implementing the descriptions, functions, procedures, suggestions, methods, and / or operational flowcharts disclosed in this disclosure. Here, the processor 102 and the memory 104 may be part of a communications modem / circuit / chip designed to implement a wireless communication technology (e.g., LTE, NR). The transceiver 106 may be coupled to the processor 102 and may transmit and / or receive wireless signals via one or more antennas 108. The transceiver 106 may include a transmitter and / or a receiver. The transceiver 106 may also be referred to as an RF (Radio Frequency) unit. In the present invention, a wireless device may refer to a communications modem / circuit / chip.
[0422] The second wireless device 200 includes one or more processors 202, one or more memories 204, and may further include one or more transceivers 206 and / or one or more antennas 208. The processor 202 may be configured to control the memory 204 and / or the transceiver 206 to implement the descriptions, functions, procedures, suggestions, methods, and / or operational flowcharts disclosed in this disclosure. For example, the processor 202 may process information in the memory 204 to generate third information / signal, and then transmit a wireless signal including the third information / signal from the transceiver 206. The processor 202 may also receive a wireless signal including fourth information / signal from the transceiver 206, and then store information obtained from signal processing of the fourth information / signal in the memory 204. The memory 204 may be coupled 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 processes controlled by the processor 202 or for implementing the descriptions, functions, procedures, suggestions, methods, and / or operational flowcharts disclosed in this disclosure. Here, the processor 202 and the memory 204 may be part of a communications modem / circuit / chip designed to implement a wireless communication technology (e.g., LTE, NR). The transceiver 206 may be coupled to the processor 202 and may transmit and / or receive wireless signals via one or more antennas 208. The transceiver 206 may include a transmitter and / or a receiver. The transceiver 206 may also be referred to as an RF unit. In the present invention, a wireless device may refer to a communications modem / circuit / chip.
[0423] The hardware elements of the wireless devices 100, 200 are described in more detail below. Without limitation, one or more protocol layers may be implemented by one or more processors 102, 202. For example, one or more processors 102, 202 may implement one or more layers (e.g., functional layers such as PHY, MAC, RLC, PDCP, RRC, and SDAP). The one or more processors 102, 202 may generate one or more protocol data units (PDUs) and / or one or more service data units (SDUs) according to the descriptions, functions, procedures, suggestions, methods, and / or operational flow diagrams disclosed in this disclosure. The one or more processors 102, 202 may generate messages, control information, data, or information according to the descriptions, functions, procedures, suggestions, methods, and / or operational flow diagrams disclosed in this disclosure. The one or more processors 102, 202 can generate signals (e.g., baseband signals) including PDUs, SDUs, messages, control information, data, or information according to the functions, procedures, suggestions, and / or methods disclosed in this disclosure and provide them to the one or more transceivers 106, 206. The one or more processors 102, 202 can receive signals (e.g., baseband signals) from the one or more transceivers 106, 206 and obtain the PDUs, SDUs, messages, control information, data, or information according to the descriptions, functions, procedures, suggestions, methods, and / or operational flowcharts disclosed in this disclosure.
[0424] The one or more processors 102, 202 may be referred to as a controller, microcontroller, microprocessor, or microcomputer. The one or more processors 102, 202 may be implemented using hardware, firmware, software, or a combination thereof. As an example, the one or more processors 102, 202 may include 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). The descriptions, functions, procedures, suggestions, methods, and / or operational flowcharts disclosed in this disclosure may be implemented using firmware or software, and the firmware or software may be implemented to include modules, procedures, functions, etc. Firmware or software configured to execute the descriptions, functions, procedures, suggestions, methods, and / or operational flow diagrams disclosed in this disclosure may be included in one or more processors 102, 202 or stored in one or more memories 104, 204 and executed by one or more processors 102, 202. The descriptions, functions, procedures, suggestions, methods, and / or operational flow diagrams disclosed in this disclosure may be embodied by firmware or software in the form of code, instructions, and / or collections of instructions.
[0425] One or more memories 104, 204 may be coupled to one or more processors 102, 202 and may store various types of data, signals, messages, information, programs, code, instructions, and / or instructions. The one or more memories 104, 204 may be comprised of ROM, RAM, EPROM, flash memory, hard drives, registers, cache memory, computer-readable storage media, and / or combinations thereof. The one or more memories 104, 204 may be located internal and / or external to the one or more processors 102, 202. Additionally, the one or more memories 104, 204 may be coupled to the one or more processors 102, 202 via various techniques, such as wired or wireless connections.
[0426] One or more transceivers 106, 206 may transmit user data, control information, wireless signals / channels, etc., as referred to in the methods and / or operational flowcharts of the present disclosure, to one or more other devices. One or more transceivers 106, 206 may receive user data, control information, wireless signals / channels, etc., as referred to in the descriptions, functions, procedures, suggestions, methods and / or operational flowcharts of the present disclosure, from one or more other devices. For example, one or more transceivers 106, 206 may be coupled to one or more processors 102, 202 and may transmit and receive wireless signals. For example, one or more processors 102, 202 may control one or more transceivers 106, 206 to transmit user data, control information, or wireless signals to one or more other devices. Also, one or more processors 102, 202 may control one or more transceivers 106, 206 to receive user data, control information, or wireless signals from one or more other devices. Furthermore, one or more transceivers 106, 206 may be coupled to one or more antennas 108, 208, and the one or more transceivers 106, 206 may be configured to transmit and receive user data, control information, wireless signals / channels, etc., referred to in the descriptions, functions, procedures, suggestions, methods, and / or operational flowcharts disclosed in this disclosure, via the one or more antennas 108, 208. In this disclosure, the one or more antennas may be multiple physical antennas or multiple logical antennas (e.g., antenna ports). The one or more transceivers 106, 206 may convert the received user data, control information, wireless signals / channels, etc., from RF band signals to baseband signals for processing using one or more processors 102, 202. The one or more transceivers 106, 206 may convert the user data, control information, wireless signals / channels, etc., processed using one or more processors 102, 202, from baseband signals to RF band signals. To that end, one or more of the transceivers 106, 206 may include (analog) oscillators and / or filters.
[0427] The embodiments described above are combinations of the components and features of the present disclosure in a predetermined form. Each component or feature should be considered optional unless otherwise explicitly stated. Each component or feature may be implemented without being combined with other components or features. It is also possible to combine some components and / or features to form embodiments of the present disclosure. The order of operations described in the embodiments of the present disclosure may be changed. Some components or features of one embodiment may be included in another embodiment, or may be replaced with corresponding components or features of another embodiment. It is clear that claims that do not have an explicit reference relationship in the claims may be combined to form embodiments, or may be included as new claims by amendment after filing.
[0428] It is obvious to those skilled in the art that the present disclosure can be embodied in other specific forms without departing from the essential features of the present disclosure. Therefore, the above detailed description should not be interpreted as limiting in any respect, but should be considered as illustrative. The scope of the present disclosure should be determined by reasonable interpretation of the appended claims, and any modifications within the equivalent scope of the present disclosure are included in the scope of the present disclosure.
[0429] The scope of the present disclosure includes software or machine-executable instructions (e.g., operating systems, applications, firmware, programs, etc.) that cause a device or computer to perform operations according to the methods of various embodiments, as well as non-transitory computer-readable media on which such software or instructions are stored and executable on a device or computer. Instructions usable for programming a processing system to perform features described in this disclosure may be stored on or in a storage medium or computer-readable storage medium, and computer program products including such storage media may be used to embody features described in this disclosure. Storage media may include high-speed random access memory such as DRAM, SRAM, DDR RAM, or other random access solid-state memory devices, but may also include non-volatile memory such as one or more magnetic disk storage devices, optical disk storage devices, flash memory devices, or other non-volatile solid-state storage devices. Memory optionally includes one or more storage devices located remotely from the processor. Memory, or alternatively, non-volatile memory devices within memory, comprise non-transitory computer-readable storage media. The features described in this disclosure may be embodied in software and / or firmware stored on any one of a number of machine-readable media and capable of controlling the hardware of a processing system and allowing the processing system to interact with other mechanisms that utilize the results of embodiments of the present disclosure. Such software or firmware may include, but is not limited to, application code, device drivers, operating systems, and execution environments / containers.
[0430] Here, the wireless communication technology implemented in the wireless devices 100 and 200 of the present disclosure may include LTE, NR, 6G, and also Narrowband Internet of Things (NB-IoT) for low-power communication. Here, for example, the NB-IoT technology may be an example of a Low Power Wide Area Network (LPWAN) technology and may be implemented according to standards such as LTE Cat NB1 and / or LTE Cat NB2, and is not limited to the above-mentioned names. Additionally or alternatively, the wireless communication technology implemented in the wireless devices (XXX, YYY) of the present disclosure may perform communication based on the LTE-M technology. Here, for example, the LTE-M technology may be an example of an LPWAN technology and may be referred to by various names such as enhanced Machine Type Communication (eMTC). For example, LTE-M technology may be implemented by at least one of various standards, such as 1) LTE CAT 0, 2) LTE Cat M1, 3) LTE Cat M2, 4) LTE non-BL (non-Bandwidth Limited), 5) LTE-MTC, 6) LTE Machine Type Communication, and / or 7) LTE M, and is not limited to the above names. Additionally or alternatively, wireless communication technologies implemented in the wireless device (XXX, YYY) of the present disclosure may include at least one of ZigBee (registered trademark), Bluetooth (registered trademark), and a Low Power Wide Area Network (LPWAN), which consider low-power communication, and are not limited to the above names. As an example, ZigBee technology can create personal area networks (PANs) related to small / low-power digital communication based on various standards, such as IEEE 802.15.4, and may be referred to by various names. [Industrial Applicability]
[0431] The method proposed in this disclosure has been described mainly as being applied to 3GPP LTE / LTE-A and 5G systems, but it can also be applied to various other wireless communication systems in addition to 3GPP LTE / LTE-A and 5G systems.
Claims
1. A step in which a user equipment (UE) receives, from a base station, first configuration information related to a serving cell and second configuration information related to channel state information-reference signal (CSI-RS) resources, The first setting information includes information regarding an energy per resource element (EPRE) of a secondary synchronization signal (SSS), The second configuration information includes information regarding a first power offset of an EPRE of the CSI-RS resource relative to the EPRE of the SSS; the EPRE of the CSI-RS resource is derived from the EPRE of the SSS and the first power offset; receiving, by the UE, control information for power adjustment of downlink transmission from the base station; the control information includes: i) information for identifying the CSI-RS resource; and ii) information regarding a second power offset of an EPRE of the downlink transmission relative to the EPRE of the CSI-RS resource; the EPRE of the downlink transmission is derived from the EPRE of the CSI-RS resource and the second power offset; A method in which, based on the control information for power adjustment of the downlink transmission, a CSI report related to the CSI-RS resource indicated by the control information is performed.
2. The method described in claim 1, wherein the power adjustment of the downlink transmission is applied to the downlink transmission within a slot set based on the control information.
3. The method further includes transmitting a request for power adjustment of the downlink transmission to the base station; The method of claim 1 , wherein the control information is transmitted in response to the request for a power adjustment of the downlink transmission.
4. The method of claim 3 , wherein the request for power adjustment of the downlink transmission includes information regarding a resource or multiplexing mode for which power adjustment is requested.
5. The method described in claim 3, wherein the request for power adjustment of the downlink transmission is sent to the base station only when the UE determines that the request for power adjustment of the downlink transmission is possible based on the EPRE of the CSI-RS resource.
6. The method of claim 3, further comprising receiving information from the base station to indicate that the request for power adjustment of the downlink transmission has been received.
7. At least one transceiver for transmitting and receiving radio signals; at least one processor for controlling the at least one transceiver; The at least one processor receiving, from a base station, first configuration information related to a serving cell and second configuration information related to a channel state information-reference signal (CSI-RS) resource; The first setting information includes information regarding an energy per resource element (EPRE) of a secondary synchronization signal (SSS), The second configuration information includes information regarding a first power offset of an EPRE of the CSI-RS resource relative to the EPRE of the SSS; the EPRE of the CSI-RS resource is derived from the EPRE of the SSS and the first power offset; configured to receive control information for power adjustment of downlink transmissions from the base station; the control information includes: i) information for identifying the CSI-RS resource; and ii) information regarding a second power offset of an EPRE of the downlink transmission relative to the EPRE of the CSI-RS resource; the EPRE of the downlink transmission is derived from the EPRE of the CSI-RS resource and the second power offset; A UE (user equipment) performs CSI reporting related to the CSI-RS resource indicated by the control information based on the control information for power adjustment of the downlink transmission.
8. At least one transceiver for transmitting and receiving radio signals; at least one processor for controlling the at least one transceiver; The at least one processor transmitting, to a user equipment (UE), first configuration information related to a serving cell and second configuration information related to channel state information-reference signal (CSI-RS) resources; The first setting information includes information regarding an energy per resource element (EPRE) of a secondary synchronization signal (SSS), The second configuration information includes information regarding a first power offset of an EPRE of the CSI-RS resource relative to the EPRE of the SSS; the EPRE of the CSI-RS resource is derived from the EPRE of the SSS and the first power offset; configured to transmit, to the UE, control information for power adjustment of downlink transmissions; the control information includes: i) information for identifying the CSI-RS resource; and ii) information regarding a second power offset of an EPRE of the downlink transmission relative to the EPRE of the CSI-RS resource; the EPRE of the downlink transmission is derived from the EPRE of the CSI-RS resource and the second power offset; A base station, wherein, based on the control information for adjusting the power of the downlink transmission, a CSI report related to the CSI-RS resource indicated by the control information is performed.
Citation Information
Patent Citations
System and method for channel and interference measurements in wireless networks
JP2020501386A