integrated circuits

By using a PDCCH to indicate frequency ranges and slot formats, the communication system optimizes resource allocation in unlicensed carriers, addressing interference issues and enhancing bandwidth utilization.

JP7760034B2Active Publication Date: 2025-10-24PANASONIC INTELLECTUAL PROPERTY CORP OF AMERICA
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Patent Information

Application Number
JP2024211168
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-01-10
Filing Date
2024-12-04
Publication Date
2025-10-24
Estimated Expiration
2039-12-04

AI Technical Summary

Technical Problem

Existing communication systems face challenges in efficiently allocating resources in unlicensed carriers due to interference from competing radio access technologies like Wi-Fi, leading to inefficiencies in bandwidth utilization and resource sharing.

Method used

A transceiver device and scheduling node communicate using a Physical Downlink Control Channel (PDCCH) to indicate applicable frequency ranges and slot formats, allowing flexible resource allocation and utilization in unlicensed carriers, even when partial access is available.

Benefits of technology

This approach enhances bandwidth utilization by enabling flexible resource sharing between uplink and downlink transmissions, reducing interference and improving communication efficiency in unlicensed spectrum.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To realize flexible allocation of resources in an unlicensed carrier.SOLUTION: A transceiver device comprises: a transceiver that, in operation, receives a physical downlink control channel (PDCCH) indicating a frequency range and a slot format, the frequency range being included in a carrier and applicable for transmissions taking place between the transceiver device and a scheduling device, the slot format indicating a sequence of symbol types according to which transmission is performed on a plurality of symbols included in a slot within the frequency range, the symbol types including at least one of an uplink symbol type, a downlink symbol type, and a flexible symbol type; and circuitry that, in operation, determines the frequency range and the slot format based on the PDCCH. In operation, the transceiver transmits within the frequency range according to the slot format.SELECTED DRAWING: Figure 8
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Description

[Technical Field]

[0001] The present disclosure relates to transmitting and receiving signals in a communication system, and more particularly to methods and apparatus for such transmission and reception. [Background technology]

[0002] The 3rd Generation Partnership Project (3GPP) is working on technical specifications for next-generation cellular technology, also known as fifth generation (5G), which includes "new radio" (NR) radio access technologies (RATs) operating in frequency bands ranging from sub-1 GHz to millimeter wave bands. NR is the successor to technologies represented by Long Term Evolution (LTE) and LTE Advanced (LTE-A).

[0003] For systems such as LTE, LTE-A, and NR, further modifications and options may facilitate efficient operation of the communication system and particular devices associated with the system. Summary of the Invention

[0004] One non-limiting exemplary embodiment facilitates flexible allocation of resources in unlicensed carriers.

[0005] In one embodiment, the disclosed technology features a transceiver device that, during operation, receives a Physical Downlink Control Channel (PDCCH) that indicates a frequency range included in a carrier and applicable to transmissions between the transceiver device and a scheduling device, and a slot format that indicates a sequence of symbol types according to which transmissions are to be made in a plurality of symbols included in the frequency range, the symbol types including at least one of an uplink symbol type, a downlink symbol type, and a flexible symbol type. The transceiver device, during operation, includes circuitry that determines the frequency range and the slot format based on the received PDCCH. During operation, the transceiver transmits in the determined frequency range according to the determined slot format.

[0006] It should be noted that the general or specific embodiments may be realized as a system, a method, an integrated circuit, a computer program, a storage medium, or any combination thereof.

[0007] Further benefits and advantages of the disclosed embodiments and various implementations will become apparent from the specification and drawings. These benefits and / or advantages may be obtained individually by the various embodiments and features of the specification and drawings. However, not all of these features need be present to obtain one or more of such benefits and / or advantages. [Brief explanation of the drawings]

[0008] In the following, exemplary embodiments are explained in more detail with reference to the accompanying drawings. [Figure 1] FIG. 1 illustrates an example architecture for a 3GPP NR system, including example user and control plane architectures for LTE eNBs, gNBs, and UEs. [Figure 2]Schematic diagram showing free channel determination on unlicensed wideband carriers [Figure 3] Schematic diagram showing channel occupancy after determining an available channel [Figure 4] Flowchart illustrating a communication method for a scheduling device and a transceiver device [Figure 5] Block diagram showing a scheduling device and a transceiver device [Figure 6] 1 is a block diagram illustrating processing circuitry of a transceiver device; [Figure 7] 1 is a block diagram illustrating a processing circuit of a scheduling device; [Figure 8] FIG. 1 illustrates an exemplary slot format and applicable frequency ranges. [Figure 9] 1 is a flowchart illustrating an example of a method for a UE to determine slot format and applicable frequency ranges. [Figure 10] FIG. 1 illustrates an exemplary slot format and applicable frequency ranges per group. [Figure 11] A diagram showing applicable frequency ranges and their respective slot formats. [Figure 12] 1 is a flowchart illustrating an example of a method for a UE to determine applicable frequency ranges and respective slot formats. DETAILED DESCRIPTION OF THE INVENTION

[0009] FIG. 1 illustrates an exemplary example of a communication system including a base station, a terminal, and a core network. Such a communication system may be a 3GPP system, such as NR and / or LTE and / or UMTS. For example, as illustrated in FIG. 1, a base station (BS) may be a gNB (gNodeB (e.g., an NR base station)) or an eNB (eNodeB (e.g., an LTE base station)). However, the present disclosure is not limited to these 3GPP systems or any other systems. Even though embodiments and exemplary implementations are described using some terminology of a 3GPP system, the present disclosure is also applicable to any other communication system, in particular, any cellular, wireless, and / or mobile system.

[0010] NR helps provide a single technical framework that addresses all defined usage scenarios, requirements, and deployment scenarios, including enhanced mobile broadband (eMBB), ultra-reliable low-latency communications (URLLC), and massive machine-type communications (mMTC). For example, deployment scenarios for eMBB may include indoor hotspots, dense urban areas, suburban areas, urban areas, and high-speed areas. Deployment scenarios for URLLC may include industrial control systems, mobile health management (remote monitoring, diagnosis, and treatment), real-time vehicle control, and wide-area monitoring and control systems for smart grids. mMTC may include scenarios using a large number of devices with low-latency data transmission, such as smart wearables and sensor networks. eMBB and URLLC services are similar in that both require very high bandwidth, but differ in that URLLC services require ultra-low latency. In NR, the physical layer is based on time-frequency resources (such as orthogonal frequency division multiplexing (OFDM) as in LTE) and may support multi-antenna operation.

[0011] In LTE and NR, a terminal is referred to as user equipment (UE). This may be a mobile device such as a wireless phone, smartphone, tablet computer, or USB (Universal Serial Bus) stick that has user equipment functionality. However, the term mobile device is not limited thereto, and in general, a repeater may have the functionality of such a mobile device, or a mobile device may function as a repeater.

[0012] A base station is a network node forming part of a network for providing services to terminals, for example, a base station is a network node that provides wireless access to terminals.

[0013] 3GPP is considering NR-based operation in unlicensed spectrum (NR-U) (see, for example, 3GPP TR 38.889, "Study on NR-based access to unlicensed spectrum," v1.0.0). NR-U can operate at 5 GHz or 6 GHz in the sub-7 GHz band. However, the present disclosure is not limited to a particular band and may also be applicable to, for example, the 52 GHz mmWave band.

[0014] Wideband operation in unlicensed spectrum is one of the essential elements for NR-U. For example, NR-U may support the possibility of configuring a serving cell with a bandwidth (within an unlicensed wideband carrier) larger than 20 MHz (see FIG. 2). Furthermore, if it is not possible to guarantee the absence of transmissions by other radio access technologies (RATs), such as Wi-Fi (registered trademark; hereinafter the same), in the band in which NR-U operates, the NR-U operating bandwidth may be selected as a multiple of 20 MHz, such as 80 MHz as shown in FIG. 2. Furthermore, at least for bands in which it is not possible to guarantee the absence of Wi-Fi or other competing systems, e.g., due to regulations, clear channel determination (e.g., LBT (listen-before-talk)) may be performed in units of 20 MHz or frequency ranges, as shown in FIG. 2.

[0015] The LBT procedure is defined as a mechanism for a device to apply a Clear Channel Assessment (CCA) check before using a channel. CCA utilizes at least energy detection to determine whether other signals are present or absent in the channel and whether the channel is occupied or free. For example, European and Japanese regulations require the use of LBT in unlicensed spectrum. This carrier sensing via LBT is a way to fairly share unlicensed spectrum, apart from regulatory requirements, and therefore LBT is considered an essential feature for fair and friendly operation in unlicensed spectrum within the framework of a global solution.

[0016] If the detected energy level exceeds the configured CCA threshold (e.g., -73 dBm / MHz in Europe, see ETSI 301 893, section 4.8.3), the channel is considered occupied; conversely, if the detected power level is below the configured CCA threshold, the channel is considered vacant. If the channel is classified as vacant, the device is allowed to transmit immediately. The maximum duration of a transmission is limited to promote fair resource sharing with other devices operating in the same band.

[0017] As can be seen in FIG. 2, the LBT clear channel determination for each 20 MHz frequency range may result in some portions of the wideband carrier being blocked by Wi-Fi or other competing systems, but NR may still use the clear portions that are not used by one or more competing RATs.

[0018] In unlicensed spectrum operation, after acquiring a channel via LBT, an initiating device (e.g., a scheduling device such as an NR gNB) can occupy the channel for up to a maximum channel occupation time (COT), as shown in Figure 3.

[0019] The initiating device (e.g., gNB) can share the obtained time-frequency resources with responding devices (e.g., one or more transceiver devices, such as UEs). Sharing the obtained time-frequency resources can facilitate enabling flexible resource usage between uplink (UL) and downlink (DL) (see FIG. 3). For example, DL and UL resources may be reallocated based on traffic demand in each direction.

[0020] Furthermore, sharing the acquired resources can facilitate enabling UL transmissions without performing LBT in the gNB's acquired COT. In particular, if the interval between UL and DL transmissions is sufficiently small (e.g., less than 16 μs), the UE does not need to perform LBT for a UL transmission immediately after a DL burst, thus reducing LBT overhead.

[0021] Furthermore, sharing the acquired time-frequency resources allows for semi-statically configured or periodic reference signal, signaling, or data transmissions. For example, if a semi-statically configured UL transmission configured by higher layers is within the COT of the gNB, but the UL resources are not shared by the gNB, the UL transmission needs to be dropped.

[0022] In FIG. 3, the COT is shown over two slots for the sake of explanation only. For example, the maximum COT may be assumed to be 8 ms or 9 ms. For example, a COT of 8 ms corresponds to 8 slots for a 15 kHz subcarrier spacing, and 16 slots for a 30 kHz subcarrier spacing. Also, in the example shown in FIG. 3, the clear channel determination is performed at the end of slot (#j-1), and the COT starts from the first symbol of the slot preceding the slot for which the clear channel determination is performed. However, various opportunities or times at which the initiating device can acquire the channel may be considered. For example, the opportunity may be every two symbols or twice per slot.

[0023] To enable resource sharing, responding devices need to know the time-frequency resources available for receiving or transmitting before they can acquire dynamic scheduling. Reasons for this need include: Responding devices may need to filter out interference outside the reception or transmission bandwidth (e.g., in the portion of the bandwidth used by competing systems). The importance of filtering out interfering transmissions depends on the type of transmission intended and may be particularly great for uplink transmissions. For DL ​​data reception and UL data transmission, UEs need to filter out interference in order to receive dynamic scheduling information. Additionally, for the UL, some UEs may need to readjust their filters, for example, to control intra-carrier leakage. No dynamic scheduling is provided for semi-statically configured transmission or reception such as SSB (Synchronization Signal Block), periodic CSI-RS (Channel State Information Reference Signal), PRACH (Physical Random Access Channel), configured Grant Type 1 UL transmissions, etc. Therefore, the responding device needs to know whether the semi-statically configured resources are still available within the COT. Knowing the available transmission or reception bandwidth can facilitate simplifying the resource allocation scheme in dynamic scheduling, e.g., less information about the transmission or reception bandwidth needs to be signaled in the scheduling information.

[0024] The present disclosure provides techniques that can facilitate an initiating device signaling available time-frequency resources to a responding device for an obtained COT in NR-U, particularly considering the reuse of a design based on the slot format of NR, as described below.

[0025] In slot-based scheduling, a slot corresponds to the timing granularity (TTI (Transmission Time Interval)) for scheduling assignments. Generally, the TTI defines the timing granularity for scheduling assignments. One TTI is the time interval over which a given signal is mapped to the physical layer. For example, conventionally, the TTI length can vary from 14 symbols (slot-based scheduling) to 2 symbols (non-slot-based scheduling). Downlink and uplink transmissions are specified to be organized into frames (10 ms duration) consisting of 10 subframes (1 ms duration). In slot-based transmissions, subframes are divided into slots, the number of slots being determined by the numerology / subcarrier spacing. Specified values ​​range from 10 slots per frame (1 slot per subframe) for 15 kHz subcarrier spacing to 320 slots per frame (32 slots per subframe) for 240 kHz subcarrier spacing. The number of OFDM symbols per slot is 14 with the normal cyclic prefix and 12 with the extended cyclic prefix (see 3GPP TS 38.211 V15.3.0 "Physical channels and modulation", 2018-09, Sections 4.1 (general frame structure), 4.2 (Numerologies), 4.3.1 (frames and subframes), and 4.3.2 (slots)). However, the allocation of time resources for transmission may be non-slot-based. In particular, a TTI in a non-slot-based allocation may correspond to a minislot instead of a slot. That is, one or more minislots may be allocated to a requested transmission of data / control signaling. In a non-slot-based allocation, the shortest length of a TTI may conventionally be two OFDM symbols.

[0026] In NR Release 15, a slot format is used to configure DL symbols (D), UL symbols (U), and flexible symbols (F). In particular, when the parameter SlotFormatIndicator is configured in the UE by higher layers, the UE is provided with the SFI-RNTI (Slot Format Indicator - Radio Network Temporary Identifier) ​​by the higher layer parameter sfi-RNTI and the payload size of DCI format 2_0 by the higher layer parameter dci-PayloadSize (see, e.g., 3GPP TS 38.213 V15.3.0 "Physical layer procedures for control (Release 15)", 2018-09, Sections 11, 11.1, and 11.1.1, which is incorporated herein by reference in its entirety, without including any views or conclusions reached therein).

[0027] Therefore, the UE determines the slot format based on both the semi-static RRC (Radio Resource Control) configuration of the slot format and the dynamic SFI-PDCCH (Slot Format Indicator - Physical Downlink Control Channel, DCI format 2_0 with CRC scrambled by SFI-RNTI) according to the following rules shown in Table 1: [Table 1]

[0028] In particular, the slot format indicates the respective symbol type (UL, DL, flexible) for the symbols (e.g., all symbols) included in one slot or a few consecutive slots. For example, if the format "DDDDFFFFFFFFFF" is semi-statically configured in the UE for slot #j, and then the gNB wants to allocate some symbols for the UL (specifically, symbols configured as flexible), the SFI-PDCCH may dynamically indicate "DDDDDFFUUUUUUUUU." The above-mentioned Release 15 NR slot format applies to the entire serving cell. For example, if "D" is indicated (semi-statically or dynamically) in a slot, it applies to the entire wideband carrier.

[0029] As mentioned above, sharing the obtained time-frequency resources can facilitate enabling flexible resource usage UL and DL in NR-U. To allow dynamic slot format changes via PDCCH, all symbols of one slot or a few consecutive slots can be semi-statically configured as flexible (this can be considered to effectively correspond to not providing any actual semi-static slot format configuration at all).

[0030] Also, as mentioned above, the Release 15 NR slot format applies to the entire serving cell. Therefore, it is suitable for scenarios where NR-U is operating in a relatively narrow band, such as a 20 MHz carrier bandwidth, and where partial access of the wideband carrier is not permitted (e.g., in an 80 MHz wideband carrier, NR-U operation can either use the entire carrier in the absence of LBT, or cannot use any of the 20 MHz LBT subbands if they are blocked by other systems).

[0031] To enhance wideband operation, in the embodiments of the communication method and device described below, the initiating device (scheduling device) indicates via the PDCCH the slot format (defining DL symbols, UL symbols, and flexible symbols) as well as one or more applicable frequency ranges associated therewith, thus facilitating support of partial carrier access to the wideband carrier, as shown in FIG.

[0032] The present disclosure provides a communication method for a transceiver device, as shown in Figure 4. The method includes receiving a PDCCH (Physical Downlink Control Channel) indicating applicable frequency ranges and slot formats (S430), determining applicable frequency ranges and slot formats based on the received PDCCH (S440), and transmitting (transmitting (UL) or receiving (DL)) in the applicable frequency ranges according to the slot formats (S470).

[0033] Corresponding to the above-described communication method for a transceiver device, a transceiver device 560 is provided as shown in FIG. The transceiver device 560 includes a transceiver 570 (a transceiver including one or more hardware components, such as one or more antennas, and control circuitry for controlling the operation of the hardware components) that receives a PDCCH indicating an applicable frequency range and slot format during operation, and a circuit 580 (or processing circuitry) that determines an applicable frequency range and slot format based on the PDCCH during operation. The transceiver 570 performs (UL or DL) transmission (transmit (UL) / receive (DL)) during operation. For example, the transceiver device is a NR UE. Accordingly, the transceiver 570 and the circuit 580 are also referred to as a “UE transceiver” and “UE circuitry” in this disclosure. However, these terms are used merely to distinguish the circuit 580 and the transceiver 570 from circuits and transceivers included in other devices, such as a base station. The transceiver device 560 may be a terminal device or a communication device of a similar communication system. UE circuitry 580 (which may be considered "slot format and frequency determination circuitry") is shown in FIG. 6 as including frequency range determination circuitry 681 and slot format determination circuitry 682.

[0034] A communication method for a scheduling device (or scheduling node) is also provided. As shown in Figure 4, the method for a scheduling device includes determining a PDCCH indicating an applicable frequency range and a slot format (S410), transmitting the PDCCH (S420), scheduling a transmission (receive (UL) or transmit (DL)) (S450), and transmitting the transmission (receive (UL) or transmit (DL)) in the applicable frequency range according to the slot format (S460).

[0035] Corresponding to the above-described communication method for a scheduling device, a scheduling device 510 (or scheduling node) is provided as shown in FIG. 5. The scheduling device 510 includes a circuit 530 that, in operation, determines a PDCCH indicating an applicable frequency range and slot format, and a transceiver 520 that, in operation, transmits the PDCCH. The circuit 530, in operation, schedules transmissions, and the transceiver 520, in operation, transmits (receives (UL) or transmits (DL)) in the applicable frequency range indicated by the PDCCH according to the slot format indicated by the PDCCH. For example, the scheduling device is a network node (base station) (gNB) in an NR system or a network node (base station) in a similar wireless communication system. The circuit 530 may also be referred to as a "slot format determination circuit," or alternatively, as a "network node circuit" to distinguish it from other circuits, such as the UE circuit 580. The network node circuit 530 shown in FIG. 7 includes a frequency range determination circuit 731, a slot format determination circuit 732, a PDCCH determination circuit 733, and a scheduling circuit 734.

[0036] In further description, unless an explicit description or context indicates otherwise, the details and embodiments apply to each of the transceiver device 560, the scheduling node (or scheduling device) 510, and the respective methods for the transceiver device and the scheduling node.

[0037] The scheduling node 510 transmits a PDCCH to the transceiver device 560. The applicable frequency range indicated by the PDCCH is an applicable frequency range included in the carrier and applicable to transmissions between the transceiver device and the scheduling device. The carrier may be an unlicensed carrier (or an unlicensed wideband carrier). The PDCCH indicates one or more applicable frequency ranges of the carrier. An applicable frequency range is a frequency range ((sub)interval, subband, or partition) within the unlicensed carrier that is not used by a competing RAT system (e.g., Wi-Fi) for the duration of one slot or for the duration of a COT that includes multiple slots. The partitions of the unlicensed carrier (or the bandwidth within the unlicensed carrier in which the NR-U is operating) may each have equal width. For example, as described above, if the bandwidth within the carrier in which the NR-U is operating is a multiple of 20 MHz, the width of the frequency range may be 20 MHz.

[0038] The applicable frequency range is a frequency range that is applicable for transmissions made between the transceiver device 560 and the scheduling node 510. This transmission may be an uplink transmission from the transceiver device 560 to the scheduling node 510 (the transceiver device 560 transmits and the scheduling node 510 receives) or a downlink transmission from the scheduling node 510 to the transceiver device 560 (the scheduling node 510 transmits and the transceiver device 560 receives). The transceiver device 560 and the scheduling node 510 communicate with each other via a wireless channel, in particular a channel in an unlicensed frequency band / carrier.

[0039] A slot format indicates a sequence of symbol types according to which transmissions are performed in one or a few consecutive slots (e.g., 14 symbols in one slot) in an applicable frequency range. Accordingly, a slot format assigns a symbol type to each symbol in one or a few consecutive slots. Here, symbol types include uplink symbol types, downlink symbol types, and flexible symbol types. Exemplary slot formats for a normal cyclic prefix (a slot having 14 symbols) are "DDFFFFFFFFFUUU" (slot format 26) and "DDFFUUUUUUUUUUU" (slot format 38). For slot formats for a normal cyclic prefix, see also Table 11.1.1-1 in Section 11.1.1 of 3GPP TS 38.213 V15.3.0, "Physical layer procedures for control (Release 15)," 2018-09.

[0040] The PDCCH indicates the slot format by an indicator (e.g., a dedicated bit field) in the DCI carried by the PDCCH. The DCI format may be the above-mentioned DCI format 2_0 or a similar format, modified in that it indicates the applicable frequency range in addition to the slot format. Alternatively, the applicable frequency range may be indicated by a DCI different from the slot format. Each slot format may be mapped to an index or provided together with an index according to a table or mapping (configured statically and / or semi-statically). The indicator in the PDCCH represents the index of each corresponding slot format from the configuration. Alternatively, the indicator may include a bitmap indicating each symbol type individually. In an alternative method, no static or semi-static table is required, although signaling overhead would increase.

[0041] With regard to indication of applicable frequency ranges, the present disclosure provides explicit and implicit indication via the PDCCH, as will be further described.

[0042] The scheduling node 510 schedules transmissions. Specifically, the scheduling node 510 generates control information, transmits the control information including the scheduling information for the transmission (a scheduling grant for the UL or a scheduling assignment for the DL), and transmits the control information to the transceiver device 560, which receives the control information including the scheduling grant. For example, the control information including the (UL) scheduling grant or the (DL) scheduling assignment is transmitted on a channel different from the (first) PDCCH that carries an indication of one or more applicable frequency ranges and slot formats. For example, the scheduling grant may be dynamically signaled and included in a (second) PDCCH different from the PDCCH, or may be signaled semi-statically. The (UL or DL) transmission is performed in the applicable frequency range according to the determined slot format indicated by the first PDCCH and according to the transmitted (scheduling device 510) and received (transceiver device 560) control information included in the channel different from the first PDCCH.

[0043] The UL or DL ​​transmissions made in the applicable frequency ranges may be transmissions of data, control information, or reference signals. For example, the transmissions include at least one of the following types of transmissions: Periodic uplink transmissions made with symbols designated as uplink by the slot format indicated by the PDCCH; Periodic downlink transmissions made with symbols designated as downlink by the slot format indicated by the PDCCH; Semi-statically configured uplink transmissions performed in symbols designated as uplink by the slot format indicated by the PDCCH; Semi-statically configured downlink transmissions performed in symbols designated as downlink by the slot format indicated by the PDCCH; Dynamic uplink transmissions that occur in symbols designated as uplink or flexible by the slot format indicated by the PDCCH; Dynamic downlink transmissions that take place in symbols designated as downlink or flexible by the slot format indicated by the PDCCH.

[0044] Here, a semi-statically configured transmission is a transmission that is configured less frequently than a dynamically (e.g., by DCI) scheduled transmission. Furthermore, it should be noted that a semi-statically configured transmission may, but need not necessarily, be periodic. In particular, on the one hand, some semi-statically configured transmissions (e.g., PRACH (Physical Random Access Channel)) may not actually occur periodically. The PRACH resource is semi-statically configured (and the PRACH resource is periodic in time). However, the actual PRACH transmission depends on the need and does not need to occur periodically. On the other hand, other semi-statically configured signals, such as SSBs (Synchronization Resource Blocks), periodic CSI-RS (Channel State Information Reference Signals), or periodic SRS (Sounding Reference Signals), are transmitted periodically.

[0045] As described above, the carrier including the applicable frequency range may be an unlicensed carrier. For example, the carrier may be shared by a first communication system, such as NR or NR-U, including the scheduling device 510 and the transceiver device 560, and a second communication system, such as a Wi-Fi system, that uses the same unlicensed wideband carrier or a portion of the unlicensed wideband carrier. The scheduling device 510 may further perform a clear channel determination to determine an unused frequency range (or multiple unused frequency ranges) that are not currently used by the second communication system, and thus obtain one or more unused frequency ranges for one or more transmissions within the COT. For example, the multiple frequency ranges are multiple 20 MHz ranges. By obtaining one or more unused frequency ranges, the scheduling device 510 may be considered to initiate communication on the unlicensed wideband carrier and may be considered an initiating device. Then, in step S410, the scheduling device determines a (first) PDCCH based on the result of the clear channel determination. Specifically, the scheduling device selects one or more frequency ranges from among the unused frequency ranges as the applicable frequency ranges, and determines and generates information (DCI) to be transmitted on the PDCCH, the DCI including an indication of the unused frequency ranges as the applicable frequency ranges.

[0046] For example, the PDCCH indicating the applicable frequency ranges and slot formats is a group-common (GC) PDCCH that the scheduling device 510 transmits to a group of transceiver devices including the transceiver device 560. Thus, the indicated one or more applicable frequency ranges and slot formats are used by the group of transceiver devices. The transceiver devices in the group may be configured (e.g., by RRC) with a group-common RNTI (Radio Network Temporary Identifier) ​​(i.e., the CRC bits of the DCI) that the scheduling device 510 uses to scramble the DCI carried by the GC PDCCH. The transceiver devices use the group-common RNTI to descramble the DCI carried by the GC PDCCH.

[0047] (GC PDCCH indicating one slot format) In some embodiments, a group-common (GC) PDCCH includes one slot format, and the applicable frequency range is explicitly indicated by the GC PDCCH. For example, this PDCCH includes a first field indicating the (applicable) frequency range and a second field indicating the slot format. Thus, in addition to the second field (or slot format indicator), which may be the above-mentioned indicator of an index corresponding to the slot format, this PDCCH also carries an explicit indicator of a range (or ranges) within the (unlicensed) wideband carrier that are not currently used for communications not involving the addressed group of transceiver devices (such as communications of another communication system). For example, the first bit field may be one of the following options: First option: One or more applicable frequency ranges are explicitly represented by a bitmap, with one bit in the bitmap representing an applicable range (e.g., a 20 MHz range). Second option: One or more applicable frequency ranges (if contiguous, applicable portions of the unlicensed wideband carrier) are represented by the start position and length of the applicable portion, the length having a specified granularity, such as 20 MHz.

[0048] According to a first option, in some embodiments, the first field (i.e., the indicator of the applicable frequency ranges) is a bitmap including a plurality of bits, each corresponding to a plurality of ranges (e.g., 20 MHz ranges) included in the carrier, including the applicable frequency range. The bitmap indicates whether or not a (each) of the plurality of ranges is applicable for transmission. In particular, a bit in the bitmap (or each bit in the bitmap) indicates whether or not a corresponding frequency range is applicable for transmissions made according to the slot format.

[0049] In the example shown in Figure 8, an 80 MHz wide unlicensed wideband carrier is subdivided into four 20 MHz frequency ranges. The gNB (or similar scheduling device 510) performs clear channel determination (LBT) to determine the availability of each 20 MHz range. For example, the scheduling device 510 may be successful over frequency ranges (20 MHz (sub)bands) #1, #2, and #3 (determine that ranges #1-#3 are available), but fail for frequency range #4 (i.e., determine that this frequency is blocked / used by another system / RAT and therefore unavailable).

[0050] The scheduling device 510 generates a bitmap indicating applicable frequency ranges according to the result of the LBT (e.g., "0111"), where frequency range #1 corresponds to the least significant bit. However, the present disclosure is not limited thereto, and the bitmap may be, for example, "1110".

[0051] The scheduling device 510 then transmits a GC PDCCH including a bitmap indicator of the applicable frequency range to a transceiver device or a group of transceiver devices communicating with the scheduling device. Meanwhile, the UE (or other transceiver device 560 (UE)) monitors the GC PDCCH according to the search space configuration provided by RRC (e.g., as shown in FIG. 8, the search space includes all slots in the #1 frequency band (20 MHz subband)). The search space configuration for monitoring the GC PDCCH includes both time-domain and frequency-domain configuration. In the time domain, this configuration configures a monitoring period, such as once per slot or multiple times per slot, and a monitoring offset, which indicates which one or more symbols the UE should monitor. In the example given in FIG. 8, monitoring is performed on the first symbol per slot, but this should not be considered a limitation of the present invention. In the frequency domain, the above configuration instructs the UE on frequency-domain resources for monitoring the (GC) PDCCH. Such frequency-domain resources may be located within one 20 MHz subband or multiple 20 MHz subbands. This may be determined by the scheduling device 510 based on statistics regarding blocking in each subband. Thus, the search space may be set in subbands that are less or least likely to be blocked by other systems to facilitate reliable reception of the GC PDCCH by the UE. If such statistical information is not available and / or to maximize the success rate of the scheduling device 510 in delivering a (GC ) PDCCH that includes an indicator of one or more applicable frequency ranges, the transceiver device 560 (UE) may be configured to monitor the (GC ) PDCCH across all 20 MHz subbands.

[0052] In Figure 8, the PDCCH is contained in the first symbol in time order (e.g., labeled symbol #0). Similarly, in Figures 10 and 11, described further below, the GC PDCCH is shown at the beginning of the slot in two or three figures. However, the GC PDCCH (or search space) need not contain a symbol at the beginning of the slot, but may be allocated to other symbols. Furthermore, as mentioned above, clear channel assessment (CCA) may be performed at the end of the previous slot or at a different opportunity to acquire the channel.

[0053] In the GC PDCCH, one slot format (e.g., "DDDDDDDFFUUUUUU") and one or more applicable frequency ranges (e.g., "0111") are indicated. According to the received GC PDCCH, the UE derives the transmission and / or reception bandwidth as 60 MHz across the first three 20 MHz subbands / frequency ranges. Therefore, the UE applies the slot format "DDDDDDFFUUUUUU" to only the first three 20 MHz subbands and marks the #4 20 MHz subband as not applicable. The UE drops any RRC-configured transmission or reception (e.g., PDCCH, semi-persistent scheduling (SPS) PDSCH, CSI-RS, SRS, configured grant PUSCH, PRACH) in the #4 20 MHz subband. The UE derives the symbols to transmit or receive according to the slot format "DDDDDFFUUUUUUU". For dynamically scheduled transmissions (e.g., PDSCH scheduled by DCI format 1_1), the UE interprets the frequency domain resource allocation field by assuming that the available frequency range is #1 to #3 (60 MHz in total).

[0054] FIG. 9 shows method steps performed by the UE (or transceiver device 560). In step S901, the UE receives a GC PDCCH monitoring configuration via RRC. In step S902, the UE monitors the GC PDCCH according to the configuration. In step S430 shown in FIG. 4, the UE receives a GC PDCCH including COT resource sharing information. Specifically, the resource sharing information includes an indicator of an applicable frequency range and an indicator of a slot format. Steps S941 to S945 are substeps of step S440. Specifically, in step S941, the UE decodes the GC PDCCH to obtain a dynamic slot format and one or more applicable frequency ranges. In steps 942 and 943, the UE determines a slot format for each 20 MHz subband (or subbands with a different width, such as 40 MHz). Specifically, for each (20 MHz) subband / frequency range, the UE determines or judges whether the frequency range is applicable. If applicable, the UE shall replace the symbols semi-statically configured as flexible symbols with dynamic UL or DL ​​symbols (see Table 11) as indicated by the dynamic slot format included in the GC PDCCH. If not applicable, the UE shall mark the (20 MHz) frequency range in question as unavailable or not applicable and shall not intend to receive or transmit in this unavailable frequency range.

[0055] In the above description of Figures 8 and 9, the applicable frequency ranges are indicated by a bitmap comprising bits corresponding to the frequency ranges according to option 1 above. However, the availability or applicability of a frequency range may also be signaled (by the gNB) or determined or determined by an indicator of the start position and length of the applicable part of the unlicensed carrier according to option 2.

[0056] Thus, in some embodiments, the applicable frequency range is included in a set of consecutive applicable frequency ranges, and the first field indicates the starting position of the set of consecutive applicable frequency ranges and the length of the set of consecutive applicable frequency ranges. For example, if an 80 MHz wideband carrier is subdivided into 20 MHz frequency ranges, two bits may indicate the starting position (or starting frequency range) of the set of applicable frequency ranges, and two further bits may indicate the length in units of the applicable (20 MHz) frequency range. In the example shown in FIG. 8, the starting position is frequency range 1 (represented by two bits (e.g., "00")), and the length of the set of applicable ranges is 3 (represented by "10"). Such a set of consecutive applicable frequency ranges may be signaled by a bit field "0010". If there are no applicable ranges (if the entire carrier is blocked), this may be indicated by an "impossible" combination such as "1111" (a set of applicable frequency ranges with a length of 4 starting at frequency range position #4). The bit length may be further reduced by alternative encoding methods. In an example where the wideband carrier includes five 20 MHz frequency ranges, the total number of combinations of start position and length is 5 + 4 + 3 + 2 + 1 = 15. Therefore, only log2(15) = 4 bits are required for joint coding. If the start position and length are coded separately, a total of 3 + 3 = 6 bits are required. Also, to be able to indicate the non-contiguous case, option 2 requires additional signaling (e.g., first and second start positions and first and second lengths).

[0057] As mentioned above, if a (20 MHz) frequency range included in the unlicensed carrier is indicated as applicable (e.g., by an indicator according to the first or second option), the UE follows a slot format decision rule that determines the slot format from both the semi-static configuration and the dynamic indication, and also obtains scheduling information from a further channel (e.g., in a scheduling DCI if the transmission is dynamically scheduled). If a frequency range is indicated as not applicable, the UE neither receives nor transmits in this inapplicable frequency range, even if the slot format indicates DL or UL resources or the scheduling DCI schedules resources in the inapplicable frequency range.

[0058] An overview of the combination of semi-static symbol indication (semi-static slot format), dynamic symbol indication (dynamic slot format) and (semi-static or periodic) configuration or (dynamic) scheduling is provided in Table 2 (semi-static and periodic transmission) and Table 3. [Table 2] [Table 3]

[0059] According to Table 2 (Cases 1a, 1g), quasi-static (quasi-statically configured) or periodic DL transmissions are permitted on (dynamically indicated) DL symbols within the union of one or more applicable frequency ranges (a "union" is one or more frequency ranges that are indicated as applicable). Quasi-static or periodic UL transmissions are permitted on (dynamically indicated) UL symbols within the union of one or more applicable frequency ranges (Cases 1d, 1j).

[0060] As can be further seen from Table 3, dynamic DL transmission is allowed on DL symbols and flexible symbols within the union of one or more applicable frequency ranges (cases 1a, 1g, and 1h). Dynamic UL transmission is allowed on UL symbols and flexible symbols within the union of one or more applicable frequency ranges. Furthermore, for dynamic DL / UL transmission, the frequency domain resource allocation field in the scheduling DCI is interpreted only for the union of one or more applicable frequency ranges (cases 1d, 1i, and 1j).

[0061] Also, as shown in Tables 2 and 3, the UE shall not transmit or receive in the frequency ranges / regions indicated as not applicable by the indicator in the GC PDCCH, regardless of the slot format indication and dynamic scheduling or semi-static configuration.

[0062] As described above, the slot format indication may be indicated by a semi-static indication and a dynamic indication. Thus, in some embodiments, the slot format indicated by the (GC) PDCCH is a dynamic slot format, and the communication method further includes receiving RRC signaling including the (semi-statically) configured slot format. Furthermore, as shown in Tables 2 and 3, if the configured slot format specifies a symbol in the slot as flexible, the dynamic slot format specifies the symbol as flexible, uplink, or downlink. Thus, if the dynamic symbol indication does not conflict with the (dynamic) scheduling or (semi-static) configuration (e.g., UL vs. DL), the semi-static indication of a symbol to be flexible may still be overridden by the dynamic "downlink" or "uplink" symbol indication, still allowing transmission without causing an error case.

[0063] Furthermore, as described above, embodiments using explicit indication of one or more applicable frequency ranges allow reusing or maintaining slot format indication rules based on both semi-static and dynamic slot format indications and restricting this indication to accessible / applicable subbands / frequency ranges (e.g., 20 MHz ranges). Thus, the flexibility and reliability provided by the combined semi-static and dynamic indications is applicable when unlicensed carriers are only partially available. Furthermore, a single slot format indication in the GC PDCCH is sufficient, which may facilitate a reduction or saving of PDCCH overhead. Furthermore, the above-described embodiments may facilitate simplifying the frequency-domain resource allocation field in the scheduling DCI. For example, indications regarding resources in non-applicable frequency ranges may be omitted from the scheduling DCI.

[0064] As mentioned above, the RRC may configure the monitoring of the slot format indication to occur once per slot, at one or more symbols at the beginning of the slot. In this case, applying the slot format indication is straightforward. In other cases where the period for monitoring the slot format indication is less than one slot, such as every two symbols, after the UE receives the slot format, the UE only needs to consider indications of one or more symbols in the future and ignore indications of one or more symbols that occurred before receiving the slot format.

[0065] In other cases where the monitoring period for the slot format indication is greater than one slot, such as every two slots, if the (GC) PDCCH indicating the slot format includes one slot format, the UE may apply the same slot format to multiple consecutive slots until the next monitoring opportunity. Alternatively, the scheduling device 510 may simultaneously indicate the slot formats for multiple consecutive slots from the current monitoring opportunity to the next monitoring opportunity. Using this alternative scheme, different slot formats can be indicated for multiple consecutive slots between two monitoring opportunities. Note that this alternative scheme is still referred to as a "GC PDCCH indicating one slot format," in the sense that there is no individual slot format indicated for each individual applicable frequency range. The case where each individual applicable frequency range is associated with a separate slot format is addressed in the following embodiment labeled "GC PDCCH indicating multiple slot formats."

[0066] (Multiple groups of transceiver devices) For example, a single group-common PDCCH addressing one group of transceiver devices is transmitted at a time by the scheduling device 510. However, multiple (i.e., two or more) transceiver device groups (or UE groups) may be addressed using two or more respective GC PDCCHs, with each group-common PDCCH thus indicating the applicable frequency range and slot format used by each respective group of transceiver devices.

[0067] Thus, in some embodiments, the first GC PDCCH indicates a first set of applicable frequency ranges and a first slot format according to which transmissions between the scheduling device and the first group of transceiver devices are to occur in the first set of applicable frequency ranges. The second GC PDCCH indicates a second set of applicable frequency ranges and a second slot format according to which transmissions between the scheduling device and the second group of transceiver devices are to occur in the second set of applicable frequency ranges. The first and second GC PDCCHs are transmitted by the scheduling device 510 for reception by the first and second groups of UEs / transceiver devices, respectively. Generally, multiple GC PDCCHs are transmitted to multiple transceiver device groups, where the first set of applicable frequency ranges and the second set of applicable frequency ranges (and possibly further sets of applicable frequency ranges) do not overlap. Non-overlapping means that a frequency range (subband) included in a first set of applicable frequency ranges that is applicable to a first group is not included in a second set of applicable frequency ranges that is applicable to a second group. A set of frequency ranges includes one or more applicable frequency ranges.

[0068] For example, as shown in FIG. 10, the gNB / scheduling device performs LBT and successfully determines that frequency ranges #1, #2, and #3 are unused, but fails for frequency range #4 because it is used by another communication system. The gNB then determines UL and DL partitioning in the frequency and time domains according to the traffic demands required by different UE groups (e.g., UEs in group 1 may have more DL traffic demands than UEs in group 2). Based on the determined UL and DL partitioning of resources, the gNB determines a first GC PDCCH (GC PDCCH1) and a second GC PDCCH (GC PDCCH2). The gNB transmits GC PDCCH1 to group 1, signaling a 40 MHz bandwidth (bitmap (“0011”)) and slot format (“DDDDDDDDDDDFUU”) across subbands #1 and #2. The UEs in group 1 receive and decode GC PDCCH1 and derive their resource usage (symbol type and frequency range) accordingly. Similarly, the gNB transmits GC PDCCH2 to Group 2, informing it of the 20 MHz bandwidth (bitmap "0100") and slot format (e.g., "DDDDDDFFUUUUUU"). Group 2 UEs receive and decode PDCCH2 and derive their resource usage accordingly. Similar to the embodiment with one group-common PDCCH, an indicator of the start position and length of the applicable frequency range may be used for a set of contiguous frequency ranges instead of a bitmap.

[0069] The UE groups may be distinguished by different group-common RNTIs for decoding the GC PDCCH. For example, a first group-common RNTI for decoding the first GC PDCCH is configured for the UEs in a first group, and a second group-common RNTI for decoding the second GC PDCCH is configured for the UEs in a second group.

[0070] It can therefore be facilitated to provide flexibility in UL and DL indication, in particular by allocating UL and DL resources to different UE groups and by dividing the available bandwidth in the unlicensed carrier among multiple UE groups according to traffic demands.

[0071] (GC PDCCH indicating multiple slot formats) In the above embodiments labeled "GC PDCCH indicating one slot format" and "multiple groups of transceiver devices," the GC PDCCH indicates one slot format for transmission in one or more frequency ranges indicated as applicable (see above embodiments for the meaning of one slot format). In further embodiments, one GC PDCCH includes multiple slot formats, each slot format corresponding to one frequency range.

[0072] Therefore, multiple slot formats are included in one GC PDCCH. The applicable frequency range is indicated by including the corresponding slot format in the GC PDCCH. Furthermore, each subband slot format is implicitly interpreted as corresponding to a frequency range of a given size, such as 20 MHz. For example, the order in which multiple slot format indicators are provided in the PDCCH indicates which frequency range a certain slot format (indication) corresponds to.

[0073] In some embodiments, the PDCCH includes multiple fields that indicate multiple slot formats according to which transmissions are to occur in multiple frequency ranges, respectively.

[0074] For example, the slot format is indicated in the PDCCH for each subband of an unlicensed wideband carrier, regardless of whether the unlicensed wideband carrier is used by another (second) communication system and whether transmissions can be scheduled / configured to occur on the subcarrier.

[0075] Therefore, if the clear channel determination identifies a frequency range among the plurality of frequency ranges that is determined in the clear channel determination to be currently used (and blocked) by the second communication system, the slot format corresponding to the blocked frequency range may be determined to be a unique slot format. For example, the slot format corresponding to the blocked frequency range may specify each symbol of the plurality of symbols of the slot as flexible ("FFFFFFFFFFFFFF").

[0076] An example of one GC PDCCH, each indicating a slot format for each 20 MHz range, is shown in Figure 11. As shown, the UL and DL bandwidths of a UE (or group of UEs) may differ in a given symbol. For example, for a semi-static or periodic transmission in symbol #2, it can be seen that the UE reception bandwidth (downlink) is 40 MHz (frequency ranges #1 and #2) and the transmission bandwidth is 20 MHz (frequency range #3). Note that to facilitate self-interference mitigation, the guard band between DL and UL should not be used to carry data. For a dynamic DL transmission in symbol #2, the frequency domain resource allocation field may be interpreted as the 20 MHz subbands #1, #2, and #4 together (since it includes DL symbols and flexible symbols) or the entire active BWP (bandwidth portion). For a dynamic UL transmission in symbol #2, the frequency domain resource allocation field may be interpreted as the 20 MHz subbands #3 and #4 together or the entire active BWP. Since flexible symbols are not allowed for quasi-static or periodic transmission, from the UE's point of view there is no difference between quasi-static or periodic transmission whether the flexible symbols are blocked by other systems or not, whereas dynamic transmission must always follow the dynamic scheduling decisions of the scheduling device gNB, so it is the responsibility of the scheduling device to ensure that flexible symbols are not scheduled if the frequency range is blocked by other systems.

[0077] If a UE is required to simultaneously receive and transmit on the same carrier, the UE should be provided with self-interference cancellation capability. However, similar to the section "Multiple Groups of Transceiver Devices," different subbands may be assigned to different UE groups to mitigate the self-interference cancellation requirements for the UE. For example, for each frequency range, a respective slot format is indicated in the GC PDCCH, but a UE or UE group may be configured to evaluate only one of the slot formats or a subset of the slot formats and transmit in the corresponding frequency range or subset of frequency ranges.

[0078] Similar to what is described in the section "GC PDCCH indicating one slot format", if the monitoring period of the slot format indication is greater than one slot, the scheduling device may indicate multiple slot formats (corresponding to multiple consecutive slots in the time domain) as well as multiple slot formats corresponding to applicable frequency ranges in the frequency domain.

[0079] According to Table 2 above, quasi-static or periodic DL transmissions are permitted in the union of one or more frequency ranges containing downlink symbols (frequency ranges in which one or more symbols are designated as DL by the slot format). Quasi-static or periodic UL transmissions are permitted in UL symbols in the union of one or more frequency ranges containing UL symbols.

[0080] Furthermore, according to Table 3, in the case of dynamic DL transmission, the frequency domain resource allocation field in the scheduling DCI is interpreted for the union of one or more frequency bands including DL symbols and flexible symbols or the entire DL active bandwidth portion (BWP) depending on the RRC configuration. Using the union of one or more frequency ranges including DL symbols and flexible symbols as a reference can reduce the size of the resource allocation bits in the scheduling DCI. On the other hand, using the active BWP as a reference is more robust because the resource allocation information does not depend on the slot format indication. In the case of dynamic UL transmission, the frequency domain resource allocation field in the scheduling DCI is interpreted for the union of one or more frequency ranges including UL symbols and flexible symbols or the entire UL active BWP, similar to the DL.

[0081] Note that case 2 in Tables 2 and 3 does not occur in embodiments with a (GC) PDCCH indicating multiple slot formats, since in these embodiments the slot format only defines symbols over an applicable frequency range of 20 MHz, and no explicit indication of frequency ranges as "applicable" or "not applicable" is provided.

[0082] FIG. 12 shows method steps performed by the UE (or transceiver device 560). Steps S901, S902, and S430 are the same as the corresponding steps shown for the embodiment with one slot format indication in FIG. 9. The remaining steps are substeps of step S440 in this embodiment. In step S1241, the UE decodes the GC PDCCH to obtain the dynamic slot format for each subband (e.g., 20 MHz range). In step S1242, the UE ignores the semi-static slot format if one is provided. In step S1243, the UE applies the dynamic slot format for each (20 MHz) frequency range individually / respectively.

[0083] When the same symbol is dynamically indicated as an uplink symbol and a downlink symbol in different frequency ranges, most quasi-static indications (except for flexible symbols) will result in an error case in one of the frequency ranges, so the quasi-static slot format is ignored in step S1242. However, step S1242 is optional. For example, the quasi-static slot format may be interpreted as applying one of the indicated frequency ranges. Alternatively, in addition to multiple dynamic slot format indications, multiple quasi-static slot format indications may also be provided for each frequency range.

[0084] In an embodiment in which the GC PDCCH indicates multiple slot formats for multiple subbands, if one transceiver device or UE can support full duplex, the multiple "subband" slot formats allow different slot formats for different subbands (frequency ranges, e.g., 20 MHz) to be indicated to one transceiver device or UE, thus facilitating more flexible frequency band utilization.

[0085] The present disclosure can be realized by software, hardware, or software cooperating with hardware. Each functional block used in the above-described embodiments can be realized, in part or in whole, by an LSI such as an integrated circuit (IC), and each process described in each embodiment can be controlled, in part or in whole, by the same LSI or a combination of LSIs. The LSI can be formed as an individual chip, or a single chip can be formed to include some or all of the functional blocks. The LSI can include a data input / output unit coupled thereto. Herein, LSIs are sometimes referred to as ICs, system LSIs, super LSIs, or ultra LSIs depending on their level of integration. However, the technology for realizing an integrated circuit is not limited to LSIs and can be realized using dedicated circuits, general-purpose processors, or dedicated processors. Furthermore, FPGAs (field programmable gate arrays), which can be programmed after LSI fabrication, and reconfigurable processors, which can reconfigure the connections and settings of circuit cells arranged within LSIs, can also be used. The present disclosure can be realized using digital or analog processing. When LSI is replaced by future integrated circuit technology as a result of advances in semiconductor technology or other derivative technologies, the future integrated circuit technology can be used to integrate functional blocks. Biotechnology can also be applied.

[0086] The present disclosure may be implemented by any type of apparatus, device, or system with communication capabilities (collectively referred to as communication apparatus).

[0087] Non-limiting examples of communication devices include telephones (e.g., cell phones, smartphones), tablets, personal computers (PCs) (e.g., laptops, desktops, netbooks), cameras (e.g., digital still / video cameras), digital players (e.g., digital audio / video players), wearable devices (e.g., wearable cameras, smartwatches, tracking devices), game consoles, digital book readers, telehealth / telemedicine devices, communication-enabled vehicles (e.g., cars, airplanes, ships), and combinations of the above devices.

[0088] Communications equipment is not limited to portable or mobile equipment, but also includes non-portable or fixed equipment, devices, or systems of any kind, such as smart home devices (appliances, lighting, smart meters, control panels, etc.), vending machines, and any other "things" that may exist on an Internet of Things (IoT) network.

[0089] Communications include data communications via cellular systems, wireless LAN systems, communications satellite systems, etc., as well as data communications via combinations of these.

[0090] A communications apparatus also includes devices such as controllers and sensors connected or coupled to a communications device that performs the communications functions described in this disclosure. For example, a communications apparatus may include a controller or sensor that generates control or data signals used by the communications device to perform the communications functions of the communications apparatus.

[0091] The communication apparatus also includes infrastructure facilities, such as base stations, access points, and any other apparatus, device, or system that communicates with or controls the various apparatuses listed above, but are not limited to these.

[0092] As described above, devices and methods are provided that enable resource sharing between an initiating device and a responding device in an NR unlicensed (or similar wireless communication system operating on an unlicensed carrier).

[0093] A communication method for a transceiver device is provided, the communication method comprising: receiving a Physical Downlink Control Channel (PDCCH) indicating a frequency range, included in a carrier, applicable for transmission between the transceiver device and a scheduling device, and a slot format indicating a sequence of symbol types according to which the transmission is to be performed in a plurality of symbols included in a slot in the frequency range, the symbol types including at least one of an uplink symbol type, a downlink symbol type, and a flexible symbol type; determining the frequency range and the slot format based on the received PDCCH; and performing the transmission in the determined frequency range according to the determined slot format.

[0094] In some embodiments, the PDCCH includes a first field indicating the frequency range and a second field indicating the slot format.

[0095] For example, the first field is a bitmap including a plurality of bits corresponding to a plurality of ranges included in the carrier and including the frequency range, and the bitmap indicates whether a range among the plurality of ranges is applicable to the transmission.

[0096] In some embodiments, the frequency range is included in a set of consecutive applicable frequency ranges, and the first field indicates a starting position of the set of consecutive applicable frequency ranges and a length of the set of consecutive applicable frequency ranges.

[0097] In some embodiments, a plurality of frequency ranges including the frequency range are included in the carrier and are applicable to the transmissions made between the transceiver device and the scheduling device, and the PDCCH includes a plurality of fields indicating a plurality of slot formats according to which the transmissions are made in the plurality of frequency ranges, respectively.

[0098] For example, the carrier is an unlicensed carrier.

[0099] For example, the PDCCH is a group-common PDCCH that is received by a group of transceiver devices including the transceiver device.

[0100] In some embodiments, the slot format indicated by the PDCCH is a dynamic slot format, and the communication method includes receiving RRC signaling including a configured slot format, and if the configured slot format specifies a symbol in the slot as flexible, the dynamic slot format specifies the symbol as flexible, uplink, or downlink.

[0101] For example, the transmission includes at least one of: periodic uplink transmission performed on symbols designated as uplink by the slot format indicated by the PDCCH; periodic downlink transmission performed on symbols designated as downlink by the slot format indicated by the PDCCH; semi-statically configured uplink transmission performed on symbols designated as uplink by the slot format indicated by the PDCCH; semi-statically configured downlink transmission performed on symbols designated as downlink by the slot format indicated by the PDCCH; dynamic uplink transmission performed on symbols designated as uplink or flexible by the slot format indicated by the PDCCH; and dynamic downlink transmission performed on symbols designated as downlink or flexible by the slot format indicated by the PDCCH.

[0102] Further provided is a communication method for a scheduling device, comprising: determining a Physical Downlink Control Channel (PDCCH) indicating a frequency range included in a carrier and applicable for transmissions made between the scheduling device and a transceiver device, and a slot format indicating a sequence of symbol types according to which the transmissions are to be made in a plurality of symbols comprised in a slot in the frequency range, the symbol types comprising at least one of an uplink symbol type, a downlink symbol type, and a flexible symbol type; transmitting the PDCCH; and scheduling the transmissions and making the transmissions in the frequency range indicated by the PDCCH according to the slot format indicated by the PDCCH.

[0103] For example, the carrier is an unlicensed carrier shared by a first communications system including the scheduling device and the transceiver device and a second communications system, and the communications method includes performing a clear channel determination to determine an unused frequency range that is not currently used by the second communications system, and determining the PDCCH based on a result of the clear channel determination.

[0104] For example, the PDCCH is a group-common PDCCH transmitted to a group of transceiver devices including the transceiver device.

[0105] In some embodiments, the PDCCH is a first group-common PDCCH indicating a first set of applicable frequency ranges that includes the frequency range and a first slot format according to which the transmissions are to be made between the scheduling device and a first group of transceiver devices that includes the transceiver device in the first set of applicable frequency ranges, and the communication method includes transmitting a second group-common PDCCH indicating a second set of applicable frequency ranges and a second slot format according to which the transmissions are to be made between the scheduling device and a second group of transceiver devices that includes the transceiver device in the second set of applicable frequency ranges, wherein the first set of applicable frequency ranges and the second set of applicable frequency ranges do not overlap.

[0106] In some embodiments, the PDCCH includes a first field indicating the frequency range and a second field indicating the slot format.

[0107] For example, the first field is a bitmap including a plurality of bits corresponding to a plurality of ranges included in the carrier and including the frequency range, and the bitmap indicates whether a range among the plurality of ranges is applicable to the transmission.

[0108] For example, the frequency range is included in a set of consecutive applicable frequency ranges, and the first field indicates the starting position of the set of consecutive applicable frequency ranges and the length of the set of consecutive applicable frequency ranges.

[0109] In some embodiments, a plurality of frequency ranges including the frequency range are included in the carrier and are applicable to the transmissions made between the transceiver device and the scheduling device, and the PDCCH includes a plurality of fields indicating a plurality of slot formats according to which the transmissions are made in the plurality of frequency ranges, respectively.

[0110] For example, the frequency range is included in a plurality of frequency ranges, the slot format is included in a plurality of slot formats, the PDCCH includes a plurality of fields indicating the plurality of slot formats according to which the transmission is to be performed in the plurality of frequency ranges, respectively, and when an operating frequency range determined in the clear channel determination to be currently used by the second communication system is identified among the plurality of frequency ranges, the slot format corresponding to the operating frequency range is determined to flexibly use each symbol of the plurality of symbols.

[0111] For example, the slot format indicated by the PDCCH is a dynamic slot format, and the communication method includes transmitting RRC signaling including a configured slot format, and if the configured slot format specifies a symbol in the slot as flexible, the dynamic slot format specifies the symbol as flexible, uplink, or downlink.

[0112] For example, the transmission includes at least one of: periodic uplink transmission performed on symbols designated as uplink by the slot format indicated by the PDCCH; periodic downlink transmission performed on symbols designated as downlink by the slot format indicated by the PDCCH; semi-statically configured uplink transmission performed on symbols designated as uplink by the slot format indicated by the PDCCH; semi-statically configured downlink transmission performed on symbols designated as downlink by the slot format indicated by the PDCCH; dynamic uplink transmission performed on symbols designated as uplink or flexible by the slot format indicated by the PDCCH; and dynamic downlink transmission performed on symbols designated as downlink or flexible by the slot format indicated by the PDCCH.

[0113] Further provided is a transceiver device comprising: a transceiver device that, during operation, receives a physical downlink control channel (PDCCH) indicating a frequency range comprised in a carrier and applicable for transmissions made between the transceiver device and a scheduling device, and a slot format indicating a sequence of symbol types according to which the transmissions are to be made in a plurality of symbols comprised in a slot in the frequency range, the symbol types comprising at least one of an uplink symbol type, a downlink symbol type, and a flexible symbol type; and circuitry that, during operation, determines the frequency range and the slot format based on the received PDCCH, wherein, during operation, the transceiver makes the transmissions in the determined frequency range according to the determined slot format.

[0114] In some embodiments, the PDCCH includes a first field indicating the frequency range and a second field indicating the slot format.

[0115] For example, the first field is a bitmap including a plurality of bits corresponding to a plurality of ranges included in the carrier and including the frequency range, and the bitmap indicates whether a range among the plurality of ranges is applicable to the transmission.

[0116] For example, the frequency range is included in a set of consecutive applicable frequency ranges, and the first field indicates the starting position of the set of consecutive applicable frequency ranges and the length of the set of consecutive applicable frequency ranges.

[0117] In some embodiments, a plurality of frequency ranges including the frequency range are included in the carrier and are applicable to the transmissions made between the transceiver device and the scheduling device, and the PDCCH includes a plurality of fields indicating a plurality of slot formats according to which the transmissions are made in the plurality of frequency ranges, respectively.

[0118] For example, the carrier is an unlicensed carrier.

[0119] For example, the PDCCH is a group-common PDCCH that is received by a group of transceiver devices including the transceiver device.

[0120] In some embodiments, the slot format indicated by the PDCCH is a dynamic slot format, and during operation, the transceiver receives RRC signaling including a configured slot format, and if the configured slot format specifies a symbol in the slot as flexible, the dynamic slot format specifies the symbol as flexible, uplink, or downlink.

[0121] For example, the transmission includes at least one of: periodic uplink transmission performed on symbols designated as uplink by the slot format indicated by the PDCCH; periodic downlink transmission performed on symbols designated as downlink by the slot format indicated by the PDCCH; semi-statically configured uplink transmission performed on symbols designated as uplink by the slot format indicated by the PDCCH; semi-statically configured downlink transmission performed on symbols designated as downlink by the slot format indicated by the PDCCH; dynamic uplink transmission performed on symbols designated as uplink or flexible by the slot format indicated by the PDCCH; and dynamic downlink transmission performed on symbols designated as downlink or flexible by the slot format indicated by the PDCCH.

[0122] Further provided is a scheduling device comprising: circuitry for determining, in operation, a physical downlink control channel (PDCCH) indicating a frequency range included on a carrier and applicable for transmissions made between the scheduling device and a transceiver device; and a slot format indicating a sequence of symbol types according to which the transmissions are to be made in a plurality of symbols included in a slot in the frequency range, the symbol types comprising at least one of an uplink symbol type, a downlink symbol type, and a flexible symbol type; and a transceiver for transmitting the PDCCH, wherein, in operation, the circuitry schedules the transmissions and wherein, in operation, the transceiver makes the transmissions in the frequency range indicated by the PDCCH in accordance with the slot format indicated by the PDCCH.

[0123] For example, the carrier is an unlicensed carrier shared by a first communication system including the scheduling device and the transceiver device and a second communication system, and the transceiver performs, during operation, a clear channel determination to determine an unused frequency range that is not currently used by the second communication system, and determines the PDCCH based on a result of the clear channel determination.

[0124] For example, the PDCCH is a group-common PDCCH transmitted to a group of transceiver devices including the transceiver device.

[0125] In some embodiments, the PDCCH is a first group-common PDCCH indicating a first set of applicable frequency ranges that includes the frequency range and a first slot format according to which the transmissions are to be made between the scheduling device and a first group of transceiver devices that includes the transceiver device in the first set of applicable frequency ranges, and the transceiver, during operation, transmits a second group-common PDCCH indicating a second set of applicable frequency ranges and a second slot format according to which the transmissions are to be made between the scheduling device and a second group of transceiver devices that includes the transceiver device in the second set of applicable frequency ranges, wherein the first set of applicable frequency ranges and the second set of applicable frequency ranges do not overlap.

[0126] For example, the PDCCH includes a first field indicating the frequency range and a second field indicating the slot format.

[0127] For example, the first field is a bitmap including a plurality of bits corresponding to a plurality of ranges included in the carrier and including the frequency range, and the bitmap indicates whether a range among the plurality of ranges is applicable to the transmission.

[0128] In some embodiments, the frequency range is included in a set of consecutive applicable frequency ranges, and the first field indicates a starting position of the set of consecutive applicable frequency ranges and a length of the set of consecutive applicable frequency ranges.

[0129] In some embodiments, a plurality of frequency ranges including the frequency range are included in the carrier and are applicable to the transmissions made between the transceiver device and the scheduling device, and the PDCCH includes a plurality of fields indicating a plurality of slot formats according to which the transmissions are made in the plurality of frequency ranges, respectively.

[0130] For example, the frequency range is included in a plurality of frequency ranges, the slot format is included in a plurality of slot formats, the PDCCH includes a plurality of fields indicating the plurality of slot formats according to which the transmission is to be performed in the plurality of frequency ranges, respectively, and when an operating frequency range determined in the clear channel determination to be currently used by the second communication system is identified among the plurality of frequency ranges, the slot format corresponding to the operating frequency range is determined to flexibly use each symbol of the plurality of symbols.

[0131] For example, a plurality of frequency ranges including the frequency range are included in the carrier and are applicable to the transmission between the transceiver device and the scheduling device, and the PDCCH includes a plurality of fields indicating a plurality of slot formats according to which the transmission is to be carried out in the plurality of frequency ranges, respectively.

[0132] For example, the slot format indicated by the PDCCH is a dynamic slot format, and the transceiver transmits RRC signaling including a configured slot format during operation, and if the configured slot format specifies a symbol in the slot as flexible, the dynamic slot format specifies the symbol as flexible, uplink, or downlink.

[0133] For example, the transmission includes at least one of: periodic uplink transmission performed on symbols designated as uplink by the slot format indicated by the PDCCH; periodic downlink transmission performed on symbols designated as downlink by the slot format indicated by the PDCCH; semi-statically configured uplink transmission performed on symbols designated as uplink by the slot format indicated by the PDCCH; semi-statically configured downlink transmission performed on symbols designated as downlink by the slot format indicated by the PDCCH; dynamic uplink transmission performed on symbols designated as uplink or flexible by the slot format indicated by the PDCCH; and dynamic downlink transmission performed on symbols designated as downlink or flexible by the slot format indicated by the PDCCH.

[0134] In summary, the present disclosure provides a transceiver device and a scheduling device, and a communication method for the transceiver device and the scheduling device. The transceiver device includes: a transceiver that, during operation, receives a physical downlink control channel (PDCCH) that indicates an applicable frequency range included in a carrier and applicable to transmissions between the transceiver device and the scheduling device, and a slot format that indicates a sequence of symbol types according to which transmissions are to be performed in a plurality of symbols included in the slot in the applicable frequency range, the symbol types including at least one of an uplink symbol type, a downlink symbol type, and a flexible symbol type; and circuitry that, during operation, determines the applicable frequency range and the slot format based on the PDCCH. During operation, the transceiver transmits in the determined applicable frequency range according to the slot format.

Claims

1. An integrated circuit for controlling processing of a scheduling device, said processing comprising: - a frequency range included in a carrier and applicable to transmissions made between said scheduling device and a transceiver device; a slot format indicating a sequence of symbol types according to which the transmission is to be carried out in a plurality of symbols included in the slot in the frequency range, the symbol types including at least one of an uplink symbol type, a downlink symbol type, and a flexible symbol type; determining a physical downlink control channel (PDCCH) indicating transmitting the PDCCH; scheduling the transmission and transmitting in the frequency range indicated by the PDCCH according to the slot format indicated by the PDCCH; Including, The PDCCH includes a first field indicating the frequency range and a second field indicating the slot format; the slot format indicates a slot format for a plurality of consecutive slots simultaneously, and the frequency range indicated by the first field is applicable to transmissions between the transceiver device and the scheduling device in the plurality of consecutive slots indicated by the second field. Integrated circuit.

2. the carrier is an unlicensed carrier shared by a first communication system including the scheduling device and the transceiver device and a second communication system; The process comprises: performing a clear channel determination to determine an unused frequency range not currently being used by the second communication system; determining the PDCCH based on a result of the vacant channel determination; Including, 10. The integrated circuit of claim 1.

3. the PDCCH is a group common PDCCH transmitted to a group of transceiver devices including the transceiver device; 10. The integrated circuit of claim 1.

4. the PDCCH is a first group-common PDCCH indicating a first set of applicable frequency ranges that includes the frequency range and a first slot format according to which the transmissions between the scheduling device and a first group of transceiver devices that includes the transceiver device are to be performed in the first set of applicable frequency ranges; the processing includes transmitting a second group-common PDCCH indicating a second set of applicable frequency ranges and a second slot format according to which the transmissions between the scheduling device and a second group of transceiver devices including the transceiver device are to occur in the second set of applicable frequency ranges; the first set of applicable frequency ranges and the second set of applicable frequency ranges do not overlap; 10. The integrated circuit of claim 1.

5. the frequency range is included in a plurality of frequency ranges, and the slot format is included in a plurality of slot formats; The PDCCH includes a plurality of fields indicating the plurality of slot formats according to which the transmission is to be performed in the plurality of frequency ranges, respectively; when a usage frequency range determined in the free channel determination to be currently used by a second communication system is identified among the plurality of frequency ranges in the free channel determination, a slot format corresponding to the usage frequency range is determined so as to flexibly use each symbol among the plurality of symbols.

4. The integrated circuit of claim 3.