Grant-free uplink transmission

The WTRU implements prioritized grant-free uplink transmissions with multiplexing for improved reliability and efficiency in wireless communication systems.

JP7755000B2Active Publication Date: 2025-10-15INTERDIGITAL PATENT HOLDINGS INC
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Patent Information

Application Number
JP2024101285
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2017-11-15
Filing Date
2024-06-24
Publication Date
2025-10-15
Estimated Expiration
2038-11-15

AI Technical Summary

Technical Problem

Existing wireless communication systems lack efficient mechanisms for grant-free uplink transmissions, particularly in managing transport blocks and ensuring priority-based retransmissions.

Method used

A wireless transmit/receive unit (WTRU) performs grant-free transmissions with prioritized portions, including acknowledgement information and channel quality information, and employs multiplexing with different redundancy versions for successful retransmissions.

Benefits of technology

Enhances the reliability and efficiency of uplink transmissions by allowing prioritized retransmissions and multiplexing strategies, optimizing resource utilization in wireless communication systems.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide grant-free transmissions.SOLUTION: A wireless transmit receive unit (WTRU) may send a grant-free transmission comprising a first part which may be associated with a priority and a second part associated with a second priority . The first part's priority may be higher than the second part's priority. The WTRU may select a first back off value from a first range of back off values. The WTRU may determine whether the grant-free transmission was successful. If the grant-free transmission was not successful, the WTRU may send a retransmission of the grant-free transmission, where the retransmission of the grant-free transmission may include the first part and may not include the second part. The retransmission may select a second back off value from a second range of back off values, which may be a larger than the first range of back off values. The second back off value may indicate the number of grant-free resources to skip prior to sending the retransmission.SELECTED DRAWING: Figure 5
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Description

[Technical Field]

[0001] This application claims priority from U.S. Provisional Patent Application No. 62 / 586,473, filed November 15, 2017, which is incorporated herein by reference in its entirety. [Background technology]

[0002] In a wireless communication system, a central node may serve one or more wireless transmit / receive units (WTRUs). When the central node serves one or more WTRUs, opportunities to transmit transport blocks (TBs) to the central node may be managed by the central node. For example, the central node may schedule WTRU uplink (UL) transmissions. Summary of the Invention [Problem to be solved by the invention]

[0003] Provides grant-free uplink transmission.

[0004] A wireless transmit / receive unit (WTRU) may send a grant-free transmission on a grant-free resource. The WTRU may send the grant-free transmission including a first portion and a second portion. The first portion and the second portion may each be associated with a priority. The priority associated with the first portion may be a higher priority than the priority associated with the second portion. For example, the first portion may include acknowledgement information (e.g., hybrid automatic repeat request (HARQ)), and the second portion may include channel quality information (CQI). The WTRU may select a first back-off value for the first grant-free transmission from a first range of back-off values. The WTRU may determine whether the first grant-free transmission is successful. If the first grant-free transmission is not successful, the WTRU may send a retransmission of the first grant-free transmission. The retransmission may include the first portion and may not include the second portion. The WTRU may select a second back-off value for the retransmission from a second range of back-off values. The second range of backoff values ​​may be greater than the first range of backoff values ​​and may indicate a number of grant-free resources to skip before sending a retransmission.

[0005] Multiplexing may be used for a first grant-free transmission and / or a retransmission of the first grant-free transmission. The first grant-free transmission may be multiplexed onto a transport block using a first redundancy version. The retransmission may be multiplexed onto another transport block using a second redundancy version. The second redundancy version may be associated with higher redundancy than the first redundancy version.

[0006] A more detailed understanding can be had from the following description, taken in conjunction with the accompanying drawings, in which: [Effects of the Invention]

[0007] Provides grant-free uplink transmission. [Brief explanation of the drawings]

[0008] [Figure 1A] FIG. 1 is a system diagram illustrating an example communication system in which one or more disclosed embodiments may be implemented. [Figure 1B] 1B is a system diagram illustrating an example wireless transmit / receive unit (WTRU) that may be used within the communication system illustrated in FIG. 1A, according to an embodiment. [Figure 1C] 1B is a system diagram illustrating an example radio access network (RAN) and an example core network (CN) that can be used within the communication system illustrated in FIG. 1A, according to an embodiment. [Figure 1D] 1B is a system diagram illustrating a further exemplary RAN and a further exemplary CN that may be used within the communication system illustrated in FIG. 1A, according to an embodiment. [Figure 2] 1 illustrates an example of scheduled grant-free (GF) resources during a slot. [Figure 3] 1 illustrates exemplary grant-free resources scheduled within a slot (e.g., scheduled within a slot by a gNodeB (gNB)). [Figure 4] Shown are exemplary grant-free resources scheduled in a slot (e.g., scheduled in a slot by a gNB) and three WTRUs attempting to use resources for a pending transport block (TB) of a wireless transmit / receive unit (WTRU). [Figure 5] Shown are exemplary grant-free resources scheduled in a slot (e.g., scheduled in a slot by a gNB) and three WTRUs attempting to use resources for the WTRU's reserved TB. DETAILED DESCRIPTION OF THE INVENTION

[0009] A detailed description, which may include exemplary embodiments, is now described with reference to various drawings. While this detailed description may provide detailed examples of possible implementations, it should be noted that the details are intended to be illustrative and are not intended to limit the scope of the present application.

[0010] 1A illustrates an exemplary communication system 100 in which one or more disclosed embodiments may be implemented. The communication system 100 may be a multiple-access system that provides content, such as voice, data, video, messaging, broadcast, etc., to multiple wireless users. The communication system 100 may enable the multiple wireless users to access such content through sharing of system resources, including wireless bandwidth. For example, the communication system 100 may utilize one or more channel access methods, such as code division multiple access (CDMA), time division multiple access (TDMA), frequency division multiple access (FDMA), orthogonal FDMA (OFDMA), single-carrier FDMA (SC-FDMA), zero-tailed unique word DFT spread OFDM (ZT UW DTS-s OFDM), unique word OFDM (UW-OFDM), resource block filtered OFDM, and filter bank multicarrier (FBMC).

[0011] 1A, communications system 100 may include wireless transmit / receive units (WTRUs) 102a, 102b, 102c, 102d, RANs 104 / 113, CNs 106 / 115, public switched telephone network (PSTN) 108, the Internet 110, and other networks 112, although it will be appreciated that the disclosed embodiments contemplate any number of WTRUs, base stations, networks, and / or network elements. Each of WTRUs 102a, 102b, 102c, 102d may be any type of device configured to operate and / or communicate in a wireless environment. By way of example, the WTRUs 102a, 102b, 102c, 102d, any of which may be referred to as a “station” and / or “STA,” may be configured to transmit and / or receive wireless signals and may include user equipment (UE), mobile stations, fixed or mobile subscriber units, subscription-based units, pagers, cellular phones, personal digital assistants (PDAs), smartphones, laptops, netbooks, personal computers, wireless sensors, hotspot or Mi-Fi devices, Internet of Things (IoT) devices, watches or other wearables, head-mounted displays (HMDs), vehicles, drones, medical devices and applications (e.g., remote surgery), industrial devices and applications (e.g., robots and / or other wireless devices operating in industrial and / or automated processing chain situations), consumer electronics devices, and devices operating on commercial and / or industrial wireless networks. Any of the WTRUs 102a, 102b, 102c, 102d may be referred to interchangeably as a UE.

[0012] The communications system 100 may also include a base station 114a and / or a base station 114b. Each of the base stations 114a, 114b may be any type of device configured to wirelessly interface with at least one of the WTRUs 102a, 102b, 102c, 102d to facilitate access to one or more communications networks, such as the CN 106 / 115, the Internet 110, and / or other networks 112. By way of example, the base stations 114a, 114b may be a base transceiver station (BTS), a NodeB, an eNodeB, a Home NodeB, a Home eNodeB, a gNB, an NR NodeB, a site controller, an access point (AP), a wireless router, etc. Although the base stations 114a, 114b are each depicted as a single element, it will be understood that the base stations 114a, 114b may include any number of interconnected base stations and / or network elements.

[0013] The base station 114a may be part of the RAN 104 / 113, which may also include other base stations and / or network elements (not shown), such as a base station controller (BSC), a radio network controller (RNC), relay nodes, etc. The base station 114a and / or base station 114b may be configured to transmit and / or receive wireless signals on one or more carrier frequencies, which may be referred to as a cell (not shown). These frequencies may be in the licensed spectrum, the unlicensed spectrum, or a combination of the licensed and unlicensed spectrum. A cell may provide coverage for wireless services in a particular geographic area, which may be relatively fixed or may change over time. A cell may be further divided into cell sectors. For example, the cell associated with the base station 114a may be divided into three sectors. Thus, in one embodiment, the base station 114a may include three transceivers, one for each sector of the cell. In an embodiment, the base station 114a may utilize multiple-input multiple-output (MIMO) technology and may utilize multiple transceivers for each sector of the cell. For example, beamforming may be used to transmit and / or receive signals in desired spatial directions.

[0014] The base stations 114a, 114b may communicate with one or more of the WTRUs 102a, 102b, 102c, 102d over the air interface 116, which may be any suitable wireless communication link (e.g., radio frequency (RF), microwave, centimeter wave, micrometer wave, infrared (IR), ultraviolet (UV), visible light, etc.). The air interface 116 may be established using any suitable radio access technology (RAT).

[0015] More specifically, as described above, the communication system 100 may be a multiple-access system and may employ one or more channel access schemes, such as CDMA, TDMA, FDMA, OFDMA, and SC-FDMA. For example, the base station 114a and the WTRUs 102a, 102b, and 102c in the RAN 104 / 113 may implement a radio technology such as Universal Mobile Telecommunications System (UMTS) Terrestrial Radio Access (UTRA), which may establish the air interface 115 / 116 / 117 using Wideband CDMA (WCDMA). WCDMA may include communication protocols such as High Speed ​​Packet Access (HSPA) and / or Evolved HSPA (HSPA+). HSPA may include High Speed ​​Downlink (DL) Packet Access (HSDPA) and / or High Speed ​​Uplink (UL) Packet Access (HSUPA).

[0016] The base station 114a and the WTRUs 102a, 102b, 102c may establish the air interface 116 using Long Term Evolution (LTE), and / or LTE Advanced (LTE-A), and / or LTE Advanced Pro (LTE-A Pro), or may implement a radio technology such as Evolved UMTS Terrestrial Radio Access (E-UTRA).

[0017] In an embodiment, the base station 114a and the WTRUs 102a, 102b, 102c may implement a radio technology such as New Radio (NR) radio access, which may establish the air interface 116 using NR.

[0018] In an embodiment, the base station 114a and the WTRUs 102a, 102b, 102c may implement multiple radio access technologies. For example, the base station 114a and the WTRUs 102a, 102b, 102c may implement both LTE radio access and NR radio access, e.g., using a dual connectivity (DC) principle. Thus, the air interface utilized by the WTRUs 102a, 102b, 102c may be characterized by multiple types of radio access technologies and / or transmissions sent to / from multiple types of base stations (e.g., eNBs and gNBs).

[0019] In other embodiments, the base station 114a and the WTRUs 102a, 102b, 102c may implement a wireless technology such as IEEE 802.11 (i.e., Wireless Fidelity (WiFi)), IEEE 802.16 (i.e., Worldwide Interoperability for Microwave Access (WiMAX)), CDMA2000, CDMA2000 1X, CDMA2000 EV-DO, Interim Standard 2000 (IS-2000), Interim Standard 95 (IS-95), Interim Standard 856 (IS-856), Global System for Mobile Communications (GSM), Enhanced Data Rates for GSM Evolution (EDGE), and GSM EDGE (GERAN).

[0020] 1A may be, for example, a wireless router, a Home NodeB, a Home eNodeB, or an access point and may utilize any suitable RAT to facilitate wireless connectivity in a localized area, such as a business, a home, a vehicle, a campus, an industrial facility, an air corridor (e.g., used by drones), and a roadway. In one embodiment, the base station 114b and the WTRUs 102c, 102d may implement a radio technology such as IEEE 802.11 to establish a wireless local area network (WLAN). In an embodiment, the base station 114b and the WTRUs 102c, 102d may implement a radio technology such as IEEE 802.15 to establish a wireless personal area network (WPAN). In yet another embodiment, the base station 114b and the WTRUs 102c, 102d may utilize a cellular-based RAT (e.g., WCDMA, CDMA2000, GSM, LTE, LTE-A, LTE-A Pro, NR, etc.) to establish a picocell or femtocell. 1A, the base station 114b may have a direct connection to the Internet 110. Therefore, the base station 114b may not need to access the Internet 110 via the CN 106 / 115.

[0021] The RAN 104 / 113 may communicate with the CN 106 / 115, which may be any type of network configured to provide voice, data, application, and / or Voice over Internet Protocol (VoIP) services to one or more of the WTRUs 102a, 102b, 102c, 102d. The data may have various quality of service (QoS) requirements, such as different throughput, delay, error resilience, reliability, data throughput, and mobility requirements. The CN 106 / 115 may provide call control, billing services, mobile location-based services, prepaid calling, Internet connectivity, video distribution, etc., and / or perform high-level security functions, such as user authentication. Although not shown in FIG. 1A , it will be understood that the RAN 104 / 113 and / or the CN 106 / 115 may communicate directly or indirectly with other RANs that utilize the same RAT as the RAN 104 / 113 or a different RAT. For example, in addition to being connected to the RAN 104 / 113, which may utilize NR radio technology, the CN 106 / 115 may also communicate with another RAN (not shown) that utilizes GSM, UMTS, CDMA2000, WiMAX, E-UTRA, or WiFi radio technology.

[0022] The CN 106 / 115 may also serve as a gateway for the WTRUs 102a, 102b, 102c, 102d to access the PSTN 108, the Internet 110, and / or other networks 112. The PSTN 108 may include a circuit-switched telephone network that provides basic telephone service. The Internet 110 may include a global system of interconnected computer networks and devices that use common communication protocols, such as Transmission Control Protocol (TCP), User Datagram Protocol (UDP), and / or Internet Protocol (IP) in the TCP / IP Internet protocol suite. The network 112 may include wired and / or wireless communication networks owned and / or operated by other service providers. For example, the network 112 may include another CN connected to one or more RANs that may utilize the same RAT as the RAN 104 / 113 or a different RAT.

[0023] Some or all of the WTRUs 102a, 102b, 102c, 102d in communication system 100 may include multi-mode capabilities (e.g., WTRUs 102a, 102b, 102c, 102d may include multiple transceivers for communicating with different wireless networks over different wireless links.) For example, WTRU 102c shown in FIG. 1A may be configured to communicate with base station 114a, which may employ cellular-based wireless technology, and with base station 114b, which may utilize IEEE 802.11 wireless technology.

[0024] 1B is a system diagram illustrating an example WTRU 102. As shown in FIG. 1B, the WTRU 102 may include, among other things, a processor 118, a transceiver 120, a transmit / receive element 122, a speaker / microphone 124, a keypad 126, a display / touchpad 128, non-removable memory 130, removable memory 132, a power source 134, a global positioning system (GPS) chipset 136, and / or other peripherals 138. It will be understood that the WTRU 102 may include any subcombination of the above elements while remaining consistent with an embodiment.

[0025] The processor 118 may be a general-purpose processor, a special-purpose processor, a conventional processor, a digital signal processor (DSP), multiple microprocessors, one or more microprocessors in conjunction with a DSP core, a controller, a microcontroller, an application-specific integrated circuit (ASIC), a field-programmable gate array (FPGA) circuit, any other type of integrated circuit (IC), a state machine, etc. The processor 118 may perform signal coding, data processing, power control, input / output processing, and / or any other functionality that enables the WTRU 102 to operate in a wireless environment. The processor 118 may be coupled to the transceiver 120, which may be coupled to the transmit / receive element 122. While FIG. 1B depicts the processor 118 and the transceiver 120 as separate components, it will be understood that the processor 118 and the transceiver 120 may be integrated together in an electronic package or chip.

[0026] The transmit / receive element 122 may be configured to transmit signals to or receive signals from a base station (e.g., base station 114a) over the air interface 116. For example, in one embodiment, the transmit / receive element 122 may be an antenna configured to transmit and / or receive RF signals. In an embodiment, the transmit / receive element 122 may be an emitter / detector configured to transmit and / or receive IR, UV, or visible light signals, for example. In yet another embodiment, the transmit / receive element 122 may be configured to transmit and / or receive both RF and light signals. It will be understood that the transmit / receive element 122 may be configured to transmit and / or receive any combination of wireless signals.

[0027] 1B, the transmit / receive element 122 is depicted as a single element, the WTRU 102 may include any number of transmit / receive elements 122. More specifically, the WTRU 102 may utilize MIMO technology. Thus, in one embodiment, the WTRU 102 may include two or more transmit / receive elements 122 (e.g., multiple antennas) for transmitting and receiving wireless signals over the air interface 116.

[0028] The transceiver 120 may be configured to modulate signals to be transmitted by the transmit / receive element 122 and demodulate signals received by the transmit / receive element 122. As mentioned above, the WTRU 102 may have multi-mode capabilities. Thus, the transceiver 120 may include multiple transceivers to enable the WTRU 102 to communicate via multiple RATs, such as, for example, NR and IEEE 802.11.

[0029] The processor 118 of the WTRU 102 may be coupled to and may receive user input data from a speaker / microphone 124, a keypad 126, and / or a display / touchpad 128 (e.g., a liquid crystal display (LCD) display unit or an organic light emitting diode (OLED) display unit). The processor 118 may output user data to the speaker / microphone 124, the keypad 126, and / or the display / touchpad 128. Additionally, the processor 118 may obtain information from and store data in any type of suitable memory, such as non-removable memory 130 and / or removable memory 132. The non-removable memory 130 may include random access memory (RAM), read-only memory (ROM), a hard disk, or any other type of memory storage device. The removable memory 132 may include a subscriber identity module (SIM) card, a memory stick, a secure digital (SD) memory card, etc. In other embodiments, the processor 118 may obtain information from, and store data in, memory that is not physically located on the WTRU 102, such as located on a server or home computer (not shown).

[0030] The processor 118 may receive power from the power source 134 and may be configured to distribute and / or control the power to other components within the WTRU 102. The power source 134 may be any suitable device for powering the WTRU 102. For example, the power source 134 may include one or more dry batteries (e.g., nickel-cadmium (NiCd), nickel-zinc (NiZn), nickel-metal hydride (NiMH), lithium-ion (Li-ion), etc.), solar cells, fuel cells, etc.

[0031] The processor 118 may also be coupled to a GPS chipset 136, which may be configured to provide location information (e.g., longitude and latitude) regarding the current location of the WTRU 102. In addition to or instead of information from the GPS chipset 136, the WTRU 102 may receive location information over the air interface 116 from base stations (e.g., base stations 114a, 114b) and / or may determine its location based on the timing of signals received from two or more nearby base stations. It will be appreciated that the WTRU 102 may obtain location information using any suitable location-determination method while remaining consistent with an embodiment.

[0032] The processor 118 may further be coupled to other peripherals 138, which may include one or more software and / or hardware modules that provide additional features, functionality, and / or wired or wireless connectivity. For example, the peripherals 138 may include an accelerometer, an e-compass, a satellite transceiver, a digital camera (for photos and / or videos), a universal serial bus (USB) port, a vibration device, a television transceiver, a hands-free headset, a Bluetooth module, a frequency modulation (FM) radio unit, a digital music player, a media player, a video game player module, an internet browser, a virtual reality and / or augmented reality (VR / AR) device, an activity tracker, and the like. The peripheral device 138 may include one or more sensors, which may be one or more of a gyroscope, an accelerometer, a Hall effect sensor, a magnetometer, an orientation sensor, a proximity sensor, a temperature sensor, a time sensor, a geolocation sensor, an altimeter, a light sensor, a touch sensor, a magnetometer, a barometer, a gesture sensor, a biometric sensor, and / or a humidity sensor.

[0033] The WTRU 102 may include a full-duplex radio where transmission and reception of some or all of the signals associated with a particular subframe (e.g., for both the UL (e.g., for transmission) and the downlink (e.g., for reception)) may be parallel and / or simultaneous. The full-duplex radio may include an interference management unit 139 to reduce and / or substantially eliminate self-interference via hardware (e.g., a choke) or via signal processing via a processor (e.g., a separate processor (not shown) or the processor 118). In an embodiment, the WTRU 102 may include a half-duplex radio for transmission and reception of some or all of the signals (e.g., associated with a particular subframe for either the UL (e.g., for transmission) or the downlink (e.g., for reception)).

[0034] 1C is a system diagram illustrating the RAN 104 and the CN 106, according to an embodiment. As described above, the RAN 104 may employ E-UTRA radio technology to communicate with the WTRUs 102a, 102b, 102c over the air interface 116. The RAN 104 may also communicate with the CN 106.

[0035] The RAN 104 may include eNodeBs 160a, 160b, and 160c, although it will be understood that the RAN 104 may include any number of eNodeBs while remaining consistent with an embodiment. The eNodeBs 160a, 160b, and 160c may each include one or more transceivers for communicating with the WTRUs 102a, 102b, and 102c over the air interface 116. In one embodiment, the eNodeBs 160a, 160b, and 160c may implement MIMO technology. Thus, the eNodeB 160a, for example, may use multiple antennas to transmit wireless signals to and / or receive wireless signals from the WTRU 102a.

[0036] Each of the eNodeBs 160a, 160b, 160c may be associated with a particular cell (not shown) and may be configured to handle radio resource management decisions, handover decisions, scheduling of users in the UL and / or DL, etc. As shown in FIG. 1C, the eNodeBs 160a, 160b, 160c may communicate with each other over an X2 interface.

[0037] 1C may include a mobility management entity (MME) 162, a serving gateway (SGW) 164, and a packet data network (PDN) gateway (or PGW) 166. While each of the above elements is depicted as part of the CN 106, it will be understood that any of these elements may be owned and / or operated by an entity different from the CN operator.

[0038] The MME 162 may be connected to each of the eNodeBs 160a, 160b, 160c in the RAN 104 via an S1 interface and may act as a control node. For example, the MME 162 may be responsible for authenticating users of the WTRUs 102a, 102b, 102c, bearer activation / deactivation, selecting a particular serving gateway during initial attach of the WTRUs 102a, 102b, 102c, etc. The MME 162 may provide a control plane function for switching between the RAN 104 and other RANs (not shown) that employ other radio technologies, such as GSM and / or WCDMA.

[0039] The SGW 164 may be connected to each of the eNodeBs 160a, 160b, 160c in the RAN 104 via an S1 interface. The SGW 164 may generally route and forward user data packets to / from the WTRUs 102a, 102b, 102c. The SGW 164 may perform other functions, such as anchoring the user plane during inter-eNodeB handover, triggering paging when DL data is available to the WTRUs 102a, 102b, 102c, and managing and storing the context of the WTRUs 102a, 102b, 102c.

[0040] The SGW 164 may be connected to a PGW 166, which may provide the WTRUs 102a, 102b, 102c with access to packet-switched networks, such as the Internet 110, to facilitate communications between the WTRUs 102a, 102b, 102c and IP-enabled devices.

[0041] The CN 106 may facilitate communications with other networks. For example, the CN 106 may provide the WTRUs 102a, 102b, 102c with access to circuit-switched networks, such as the PSTN 108, to facilitate communications between the WTRUs 102a, 102b, 102c and traditional landline communication devices. For example, the CN 106 may include or communicate with an IP gateway (e.g., an IP Multimedia Subsystem (IMS) server) that serves as an interface between the CN 106 and the PSTN 108. In addition, the CN 106 may provide the WTRUs 102a, 102b, 102c with access to other networks 112, which may include other wired and / or wireless networks owned and / or operated by other service providers.

[0042] Although in Figures 1A-1D the WTRU is described as a wireless terminal, it is contemplated that in certain representative embodiments such a terminal may use a wired communication interface (e.g., temporary or permanent) with a communication network.

[0043] In an exemplary embodiment, the other network 112 may be a WLAN.

[0044] A WLAN in infrastructure basic service set (BSS) mode may have an access point (AP) for the BSS and one or more stations (STAs) associated with the AP. The AP may have access to or interface with a distribution system (DS) or another type of wired / wireless network that carries traffic within and / or outside the BSS. Traffic originating from outside the BSS to a STA may arrive through the AP and be delivered to the STA. Traffic originating from a STA to a destination outside the BSS may be sent to the AP for delivery to the respective destination. Traffic between STAs within the BSS may be sent through the AP; for example, a source STA may send traffic to the AP, and the AP may deliver the traffic to the destination STA. Traffic between STAs within the BSS may be considered and / or referred to as peer-to-peer traffic. Peer-to-peer traffic may be sent (e.g., directly) between a source STA and a destination STA using direct link setup (DLS). In certain representative embodiments, the DLS may use 802.11e DLS or 802.11z Tunneled DLS (TDLS). A WLAN using an Independent BSS (IBSS) mode may not have an AP, and STAs within or using an IBSS (e.g., all of the STAs) may communicate directly with each other. IBSS mode communication may sometimes be referred to herein as "ad hoc" mode communication.

[0045] When using the 802.11ac infrastructure mode of operation or a similar mode of operation, an AP may transmit beacons on a fixed channel, such as a primary channel. The primary channel may be a fixed width (e.g., a 20 MHz wide bandwidth) or a width dynamically configured via signaling. The primary channel may be the operating channel of the BSS and may be used by STAs to establish a connection with the AP. In one representative embodiment, for example, in an 802.11 system, carrier sense multiple access with collision avoidance (CSMA / CA) may be implemented. With CSMA / CA, STAs (e.g., every STA), including the AP, may sense the primary channel. If the primary channel is sensed / detected and / or determined to be busy by a particular STA, the particular STA may back off. Within a given BSS, one STA (e.g., only one station) may transmit at any given time.

[0046] High-throughput (HT) STAs may use 40 MHz wide channels for communication, for example, by combining a primary 20 MHz channel with adjacent or non-adjacent 20 MHz channels to form a 40 MHz wide channel.

[0047] A very high throughput (VHT) STA can support channels of 20 MHz, 40 MHz, 80 MHz, and / or 160 MHz width. A 40 MHz and / or 80 MHz channel may be formed by combining contiguous 20 MHz channels. A 160 MHz channel may be formed by combining eight contiguous 20 MHz channels or two non-contiguous 80 MHz channels, which may be referred to as an 80+80 configuration. For the 80+80 configuration, after channel encoding, the data may be passed through a segment parser that may split the data into two streams. Inverse fast Fourier transform (IFFT) processing and time-domain processing may be performed separately for each stream. The streams may be mapped onto two 80 MHz channels, and the data may be transmitted by the transmitting STA. At the receiver of the receiving STA, the operations described above for the 80+80 configuration may be reversed, and the combined data may be transmitted to the medium access control (MAC).

[0048] Sub-1 GHz mode operation is supported by 802.11af and 802.11ah. Channel operating bandwidths and carriers are reduced in 802.11af and 802.11ah compared to those used in 802.11n and 802.11ac. 802.11af supports 5 MHz, 10 MHz, and 20 MHz bandwidths in the TV White Space (TVWS) spectrum, while 802.11ah supports 1 MHz, 2 MHz, 4 MHz, 8 MHz, and 16 MHz bandwidths using non-TVWS spectrum. According to a representative embodiment, 802.11ah may support meter-type control / machine-type communication, such as MTC devices in macro coverage areas. MTC devices may have limited functionality, including, for example, support for certain bandwidths and / or limited bandwidths (e.g., only support for those bandwidths). MTC devices may include batteries with above-threshold battery life (e.g., to maintain very long battery life).

[0049] WLAN systems capable of supporting multiple channels and channel bandwidths, such as 802.11n, 802.11ac, 802.11af, and 802.11ah, include a channel that may be designated as a primary channel. The primary channel may have a bandwidth equal to the largest common operating bandwidth supported by all STAs in a BSS. The bandwidth of the primary channel may be set and / or limited by a STA that supports the smallest bandwidth operating mode among all STAs operating in the BSS. In the example of 802.11ah, for a STA (e.g., an MTC-type device) that supports (e.g., only supports) the 1 MHz mode, the primary channel may be 1 MHz wide, even if the AP and other STAs in the BSS support 2 MHz, 4 MHz, 8 MHz, 16 MHz, and / or other channel bandwidth operating modes. Carrier sensing and / or network allocation vector (NAV) setting may depend on the status of the primary channel. For example, if the primary channel is busy because a STA (that only supports 1 MHz operating mode) is transmitting to the AP, the entire available frequency band may be considered busy, even though most of the frequency band may remain idle and available for use.

[0050] In the United States, the available frequency bands that may be used by 802.11ah are 902 MHz to 928 MHz. In South Korea, the available frequency bands are 917.5 MHz to 923.5 MHz. In Japan, the available frequency bands are 916.5 MHz to 927.5 MHz. The total bandwidth available for 802.11ah is 6 MHz to 26 MHz, depending on country regulations.

[0051] 1D is a system diagram illustrating the RAN 113 and the CN 115, according to an embodiment. As described above, the RAN 113 may communicate with the WTRUs 102a, 102b, and 102c over the air interface 116 using NR radio technology. The RAN 113 may also communicate with the CN 115.

[0052] The RAN 113 may include gNBs 180a, 180b, and 180c, although it will be understood that the RAN 113 may include any number of gNBs while remaining consistent with an embodiment. The gNBs 180a, 180b, and 180c may each include one or more transceivers for communicating with the WTRUs 102a, 102b, and 102c over the air interface 116. In one embodiment, the gNBs 180a, 180b, and 180c may implement MIMO technology. For example, the gNB 180a, 180b may utilize beamforming to transmit signals to and / or receive signals from the gNBs 180a, 180b, and 180c. Thus, the gNB 180a may, for example, transmit wireless signals to and / or receive wireless signals from the WTRU 102a using multiple antennas. In an embodiment, the gNBs 180a, 180b, 180c may implement carrier aggregation technology. For example, the gNB 180a may transmit multiple component carriers to the WTRU 102a (not shown). A subset of these component carriers may be on an unlicensed spectrum, while the remaining component carriers may be on a licensed spectrum. In an embodiment, the gNBs 180a, 180b, 180c may implement coordinated multipoint (CoMP) technology. For example, the WTRU 102a may receive coordinated transmissions from the gNBs 180a and 180b (and / or 180c).

[0053] The WTRUs 102a, 102b, 102c may communicate with the gNBs 180a, 180b, 180c using transmissions associated with a scalable numerology. For example, the OFDM symbol spacing and / or OFDM subcarrier spacing may vary for different transmissions, different cells, and / or different portions of the wireless transmission spectrum. The WTRUs 102a, 102b, 102c may communicate with the gNBs 180a, 180b, 180c using subframes or transmission time intervals (TTIs) of different or scalable lengths (e.g., including different numbers of OFDM symbols and / or lasting for different lengths of absolute time).

[0054] The gNBs 180a, 180b, 180c may be configured to communicate with the WTRUs 102a, 102b, 102c in a standalone configuration and / or a non-standalone configuration. In a standalone configuration, the WTRUs 102a, 102b, 102c may communicate with the gNBs 180a, 180b, 180c without accessing another RAN (e.g., eNodeBs 160a, 160b, 160c). In a standalone configuration, the WTRUs 102a, 102b, 102c may utilize one or more of the gNBs 180a, 180b, 180c as mobility anchor points. In a standalone configuration, the WTRUs 102a, 102b, 102c may communicate with the gNBs 180a, 180b, 180c using signals in unlicensed bands. In a non-standalone configuration, the WTRUs 102a, 102b, 102c may communicate with / connect to a gNB 180a, 180b, 180c while also communicating with / connecting to another RAN, such as an eNodeB 160a, 160b, 160c. For example, the WTRUs 102a, 102b, 102c may implement the DC principle to communicate with one or more gNBs 180a, 180b, 180c and one or more eNodeBs 160a, 160b, 160c substantially simultaneously. In a non-standalone configuration, the eNodeBs 160a, 160b, 160c may act as mobility anchors for the WTRUs 102a, 102b, 102c, and the gNBs 180a, 180b, 180c may provide additional coverage and / or throughput for serving the WTRUs 102a, 102b, 102c.

[0055] Each of the gNBs 180a, 180b, 180c may be associated with a particular cell (not shown) and may be configured to handle radio resource management decisions, handover decisions, scheduling of users in the UL and / or DL, support for network slicing, dual connectivity, interworking between NR and E-UTRA, routing of user plane data to User Plane Functions (UPFs) 184a, 184b and routing of control plane information to Access and Mobility Management Functions (AMFs) 182a, 182b, etc. As shown in FIG. 1D , the gNBs 180a, 180b, 180c may communicate with each other over the Xn interface.

[0056] 1D may include at least one AMF 182a, 182b, at least one UPF 184a, 184b, at least one Session Management Function (SMF) 183a, 183b, and possibly a Data Network (DN) 185a, 185b. While each of the above elements is depicted as part of the CN 115, it will be understood that any of these elements may be owned and / or operated by an entity different from the CN operator.

[0057] The AMF 182a, 182b may be connected to one or more of the gNBs 180a, 180b, 180c in the RAN 113 via an N2 interface and may act as a control node. For example, the AMF 182a, 182b may be responsible for authenticating users of the WTRUs 102a, 102b, 102c, supporting network slicing (e.g., handling different PDU sessions with different requirements), selecting a particular SMF 183a, 183b, managing registration areas, terminating NAS signaling, and mobility management. Network slicing may be used by the AMF 182a, 182b to customize CN support for the WTRUs 102a, 102b, 102c based on the type of service utilized by the WTRUs 102a, 102b, 102c. Different network slices may be established for different use cases, such as services relying on Ultra-Reliable Low-Latency (URLLC) access, services relying on eMBB access, and / or services for Machine-Type Communication (MTC) access, etc. The AMF 162 may provide a control plane function for switching between the RAN 113 and other RANs (not shown) that employ other radio technologies, such as LTE, LTE-A, LTE-A Pro, and / or non-3GPP access technologies such as WiFi.

[0058] The SMFs 183a and 183b may be connected to the AMFs 182a and 182b in the CN 115 via an N11 interface. The SMFs 183a and 183b may also be connected to the UPFs 184a and 184b in the CN 115 via an N4 interface. The SMFs 183a and 183b may select and control the UPFs 184a and 184b and configure the routing of traffic through the UPFs 184a and 184b. The SMFs 183a and 183b may perform other functions, such as managing and assigning UE IP addresses, managing PDU sessions, controlling policy enforcement and QoS, and providing downlink data notification. PDU session types may be IP-based, non-IP-based, Ethernet-based, etc.

[0059] The UPFs 184a, 184b may be connected to one or more of the gNBs 180a, 180b, 180c in the RAN 113 via an N3 interface, which may provide the WTRUs 102a, 102b, 102c with access to packet-switched networks, such as the Internet 110, to facilitate communications between the WTRUs 102a, 102b, 102c and IP-enabled devices. The UPFs 184a, 184b may perform other functions, such as routing and forwarding packets, enforcing user plane policies, supporting multihoming PDU sessions, handling user plane QoS, buffering downlink packets, and providing mobility anchoring.

[0060] The CN 115 may facilitate communication with other networks. For example, the CN 115 may include or communicate with an IP gateway (e.g., an IP Multimedia Subsystem (IMS) server) that serves as an interface between the CN 115 and the PSTN 108. In addition, the CN 115 may provide the WTRUs 102a, 102b, 102c with access to other networks 112, which may include other wired and / or wireless networks owned and / or operated by other service providers. In one embodiment, the WTRUs 102a, 102b, 102c may be connected to local data networks (DNs) 185a, 185b through the UPFs 184a, 184b via an N3 interface to the UPFs 184a, 184b and an N6 interface between the UPFs 184a, 184b and the DNs 185a, 185b.

[0061] 1A-1D and the corresponding description of FIG. 1A-1DD, one or more or all of the functions described herein with respect to one or more of the WTRUs 102a-d, base stations 114a-b, eNodeBs 160a-c, MME 162, SGW 164, PGW 166, gNBs 180a-c, AMFs 182a-b, UPFs 184a-b, SMFs 183a-b, DNs 185a-b, and / or any other devices described herein may be performed by one or more emulation devices (not shown). The emulation devices may be one or more devices configured to emulate one or more or all of the functions described herein. For example, the emulation devices may be used to test other devices and / or to simulate network and / or WTRU functions.

[0062] The emulation device may be designed to perform one or more tests of other devices in a laboratory environment and / or in an operator network environment. For example, one or more emulation devices may perform one or more or all functions while fully or partially implemented and / or deployed as part of a wired and / or wireless communication network to test other devices in the communication network. One or more emulation devices may perform one or more or all functions while temporarily implemented / deployed as part of a wired and / or wireless communication network. The emulation device may be directly coupled to another device for testing purposes and / or may perform tests using over-the-air wireless communication.

[0063] The one or more emulation devices may perform one or more functions, including all functions, without being implemented / deployed as part of a wired and / or wireless communication network. For example, the emulation devices may be utilized in a test lab and / or in a test scenario in an undeployed (e.g., test) wired and / or wireless communication network to perform tests of one or more components. The one or more emulation devices may be test equipment. Direct RF coupling and / or wireless communication via RF circuitry (which may include, for example, one or more antennas) may be used by the emulation devices to transmit and / or receive data.

[0064] Although the features and elements described herein contemplate LTE, LTE-A, New Radio (NR), and / or 5G-specific protocols, it should be understood that the features and elements described herein are not limited to LTE, LTE-A, New Radio (NR), and / or 5G-specific protocols and may be applicable to other wireless systems.

[0065] In a wireless communication system, a central node (e.g., a gNodeB) may serve one or more WTRUs. When the central node serves one or more WTRUs, opportunities to transmit transport blocks (TBs) to the central node may be managed by the central node. For example, a gNodeB (gNB) may schedule WTRU uplink (UL) transmissions by assigning time-frequency resources (e.g., separate time-frequency resources) to one or more WTRUs (e.g., each WTRU) and / or granting one or more resources (e.g., each resource) to the WTRU. Such an arrangement for UL transmission may be referred to as grant-based UL transmission.

[0066] A gNB may broadcast the existence of one or more time-frequency resources and may allow one or more WTRUs (e.g., a set of WTRUs) to contend for the resources (e.g., each resource) and / or access the resources without an UL grant (e.g., a specific UL grant). Such an arrangement for UL transmission (e.g., in New Radio (NR)) may be referred to as grant-free (GF) UL transmission or grant-less UL transmission. Applications of GF UL transmission may be in ultra-reliable low-latency communication (URLLC), massive machine-type communication (mMTC or MMTC), and / or enhanced mobile broadband (eMBB or EMBB) communication. MMTC can enable communication between a large number of low-cost and power-constrained (e.g., battery-powered) devices intended to support applications (e.g., smart metering, logistics, and / or field and body sensors). URLLC can enable devices and / or machines to communicate reliably (e.g., ultra-reliably) with very low latency and / or high availability. Enabling devices and / or machines to communicate with ultra-reliability, very low latency, and / or high availability can enable URLLC to serve applications in vehicular communications, industrial control, factory automation, remote surgery, smart grids, and / or public safety. EMBB can provide enhancements to one or more (e.g., diverse) parameters (e.g., data rate, latency, and coverage) of mobile broadband access.

[0067] A GF UL transmission may be performed. One or more of the following may apply: The gNB may specify GF resources (e.g., via radio resource control (RRC) signaling). The GF resources may be WTRU-specific or WTRU-dependent. The WTRU may select GF resources and / or transmit the TB on the GF resources. If the WTRU does not receive a hybrid automatic repeat request acknowledgment (HARQ-ACK) (e.g., a corresponding HARQ-ACK for the TB) (e.g., after a certain period of time), the WTRU may retransmit the TB (e.g., plan to retransmit the TB). The WTRU may retransmit the TB on another GF resource and / or on granted resources (e.g., if the gNB has granted resources). The WTRU may retransmit using the GF resources, e.g., until a maximum number of retries is reached.

[0068] In a GF UL transmission, a TB may be transmitted (e.g., transmitted K times) across consecutive resources (e.g., K consecutive GF resources). Such a transmission may be referred to as a GF transmission with K repetitions. For a GF UL transmission (e.g., a TB transmission with K repetitions), the repetitions may follow a redundancy-version (RV) sequence (e.g., to a previous known sequence) that may be configured by WTRU-specific RRC signaling. The RV sequence may include a sequence of redundancy version values ​​used by the WTRU. In an embodiment, the RV sequence may include a sequence of one or more repeated redundancy versions (e.g., four repetitions of a redundancy version of 0, such as [0,0,0,0]). In an embodiment, the RV sequence may include a sequence of one or more redundancy versions where the first and third redundancy version values ​​are 0 and the second and fourth redundancy version values ​​are 3 (e.g., [0,3,0,3]).

[0069] For example, there may be inefficiencies in GF UL transmissions (e.g., each one). The inefficiencies may be due to the nature of the GF transmissions and / or may depend on the number of WTRUs attempting to use the (e.g., each) GF resource.

[0070] Depending on the application for which GF operation is used (e.g., URLLC or mMTC), there may be a likelihood (e.g., low or high) of collisions between WTRUs attempting to access GF resources. A large number of attempting WTRUs results in a high collision probability and / or low overall efficiency. The likelihood of collisions between attempting WTRUs can be reduced.

[0071] The WTRU may multiplex uplink control information (UCI) with the TB (e.g., the TB that the WTRU attempts to transmit using GF resources). For example, the behavior of the WTRU after performing a GF operation may be used to determine whether the gNB received the UCI (e.g., whether reception was successful).

[0072] One or more types of GF transmission (e.g., in NR) may be performed. The gNB may specify GF resources using one or more of the following: The gNB may specify GF resources via radio resource control (RRC) configuration (e.g., reconfiguration) without L1 signaling (e.g., Type 1). The gNB may specify GF resources via RRC configuration via L1 signaling (e.g., Type 2). The gNB may specify GF resources via RRC configuration via L1 signaling (e.g., which may modify one or more RRC configuration parameters) (e.g., Type 3).

[0073] Grant-free (GF) resources may be selected by one or more WTRUs. For example, a WTRU selecting a GF resource from (e.g., the set of) one or more GF resources may perform an UL GF transmission. One or more of the following may apply: The WTRU may receive a HARQ-NACK for a TB transmitted via GF operation (e.g., previously transmitted). The WTRU may not receive a HARQ-ACK or HARQ-NACK for a transmitted TB transmission. The WTRU may attempt to transmit the same TB (e.g., retransmit the same TB) or transmit another TB (e.g., when the WTRU receives a HARQ-NACK or when the WTRU does not receive a HARQ-NACK or HARQ-ACK). The WTRU may select the next resource for the UL GF transmission. The WTRU may attempt to transmit an UL GF transmission on a GF resource on which another WTRU is also attempting to transmit, such as in mMTC applications, which may increase the likelihood of collisions between WTRUs.

[0074] The WTRU may retransmit the pending TB on a GF resource (e.g., the next immediately available GF resource). For example, the WTRU may retransmit the pending TB on the next immediately available GF resource (e.g., because doing so can reduce potential delay). If two or more WTRUs (e.g., all WTRUs) that collided during a previous GF resource (which may, for example, lead to a HARQ-NACK or DRX) retransmit their pending TBs on the next (e.g., next immediately) GF resource(s), the likelihood of another collision may increase.

[0075] Opportunistic resource selection for GF retransmissions may be performed. An example of opportunistic resource selection for GF retransmissions is shown in FIG. 2. For example, as shown in FIG. 2, if a GF transmission by a WTRU is unsuccessful, the WTRU may select an upcoming GF resource to retransmit its pending TB. One or more (e.g., two) WTRUs may attempt to transmit their pending TBs on GF resource 1 in FIG. 2. For example, due to a collision, the gNB may fail to decode a TB (e.g., one of the TBs). The gNB may not be able to identify which WTRU used GF resource 1. The gNB may not be able to send HARQ feedback to the WTRU. The WTRU may decide to retransmit the pending TB on the next available (e.g., next immediately available) GF resource (e.g., GF resource 2) because doing so reduces delay (e.g., potential delay). If the WTRU determines to retransmit the pending TB on the next available (e.g., next immediately available) GF resource, the likelihood of a collision may be low (e.g., not possible). The likelihood of collision may increase if two or more (eg, all) WTRUs that collided during the previous GF resource 1 retransmit their pending TBs on the same resource.

[0076] The WTRU may not retransmit on one or more subsequent GF resources (e.g., one or more immediately following GF resources) and / or may retransmit a pending TB in an opportunistic manner (e.g., to reduce the likelihood of collisions). The WTRU may back off from a retransmission, for example, by skipping a random number of GF resources (backoff values) before initiating a retransmission. Backing off on random number of GF resources may result in spreading out WTRU attempts over a longer period of time, for example, because the random number may be selected from a predefined range (backoff value range) and / or may be derived according to a probability (e.g., non-deterministic) such that the likelihood of two or more WTRUs deriving (e.g., drawing) the same random number (the same backoff value) is minimized. For example, the backoff counter (e.g., backoff value) may be uniformly derived (e.g., drawn) from a predefined range (e.g., 0 to T1). A larger T1 (e.g., a larger back-off range) may, for example, decrease the likelihood of a collision (e.g., another collision) between competing WTRUs. For example, if T1=3, two WTRUs (e.g., two WTRUs that collided in a previous attempt to transmit during a given GF resource) may be more likely (e.g., higher than when T1=1) to derive (e.g., draw) different back-off values ​​from a range (e.g., a range of back-off values ​​including 0, 1, 2, 3) and / or transmit on separate GF resources. The two WTRUs may derive (e.g., draw) the same number (e.g., back-off value) from a range (e.g., a range of back-off values ​​including 0, 1, 2, 3). If the derived (e.g., drawn) numbers are identical (e.g., the back-off values ​​are identical), the two WTRUs may transmit (e.g., retransmit) on the same GF resource, which may lead to (e.g., another) collision. If a transmission (eg, a retransmission) fails (eg, also fails), the next GF resource for transmission may be selected (eg, selected again).The next GF resource for a transmission may be randomly selected from a range (e.g., 0 to T2) that may be wider (e.g., larger) than the previous range (e.g., T2 may be 2×T1+1). For example, if T1=3, then T2=7, and a WTRU (e.g., each WTRU) among two or more WTRUs that collided in a previous GF UL transmission may randomly derive (e.g., draw) a back-off value with a uniform distribution from a range (e.g., a range of back-off values ​​including 0, 1, 2, 3, 4, 5, 6, 7). The range of back-off values ​​may increase. Increasing the range of back-off values ​​may increase the probability that different back-off counters are derived (e.g., drawn) by the competing WTRUs and / or that distinct GF resources are used by the competing WTRUs to transmit a transmission (e.g., to transmit a transmission next). As described herein, the back-off range may be referred to as a contention window size (CWS).

[0077] The WTRU may, for example, select a range of backoff values ​​(e.g., T0 to T i ), skipping resources (e.g., skipping the next t-1 GF resources), and / or transmitting / retransmitting on a resource (e.g., the t-th GF resource). T0 may be equal to 0 (e.g., the first transmission may have a backoff counter of zero), T1 may be equal to 3, and T i is 2×T i-1 +1 (e.g., leading to T2=7, T3=15, etc.). For example, for the first transmission, a non-zero backoff counter may be used for T0 (e.g., T0=3, which may lead to T0=3, T1=7, T2=15, etc., and T i =2×T i-1 +1). Examples may include a factor by which the backoff value range can be doubled (e.g., after a collision). For example, T i =3×(T i-1The increase may be performed by a different factor (e.g., 3, which may triple the back-off value range), such that T = T + 1) - 1). The back-off value range may be increased to reduce the likelihood of another collision between two or more competing WTRUs. i The sequence of values ​​may be predefined for a WTRU (e.g., some or all WTRUs), may be communicated via RRC signaling, etc. A WTRU (e.g., each WTRU) may select T according to whether it is transmitting during a first time, whether it is retransmitting during a first time, whether it is retransmitting during a second time, etc. i The value may be selected (e.g., randomly selected) (e.g., so that the backoff range can be different for the first transmission, the first retransmission, the second retransmission, etc.). i The sequence of values ​​may be provided to each WTRU via WTRU-specific RRC signaling, and the sequence for one WTRU may be different from another WTRU, for example, depending on the priority given to each WTRU (e.g., a WTRU operating in a low latency application may be prioritized over a WTRU operating in an MMTC application).

[0078] The values ​​of T0, T1, T2, etc., and / or the probabilities at which the values ​​are derived (e.g., drawn) may be predefined (e.g., predefined in a specification) and / or signaled (e.g., signaled by RRC). The gNB may customize parameters (e.g., parameters indicating the values ​​of T0, T1, T2, etc., and / or the probabilities at which the values ​​are derived) according to, for example, a deployment and / or application.

[0079] A WTRU (e.g., each WTRU) may a priori select (e.g., be granted) a random subset of available grant-free resources for transmission, which may be unique to the WTRU (e.g., each WTRU). The grant-free resources may be selected for transmission by the WTRU. The WTRU may select the grant-free resources without receiving a unique and / or explicit grant from the gNB. For example, rather than the gNB assigning a set of resources to the WTRU (e.g., all grant-free WTRUs), the WTRU (e.g., each WTRU) may a priori select (e.g., be granted) a random subset of available grant-free resources for transmission. The subset of grant-free resources may be unique to the WTRU (e.g., each WTRU). If an initial transmission fails, the WTRU may send a retransmission on a resource (e.g., the next uniquely available grant-free resource from the subset of grant-free resources). Randomizing the WTRU-specific grant-free resources (eg, a subset of grant-free resources that are unique to the WTRU) may reduce the probability that a collision occurs between subsequent transmissions of a transmitting WTRU.

[0080] Whether the GF transmission succeeds or fails may be determined. When the WTRU transmits a TB to a gNB (e.g., the WTRU's gNB), the WTRU may, for example, receive a HARQ-ACK or HARQ-NACK after (e.g., in response to) the transmission. The timing between the UL transmission and the corresponding HARQ feedback (e.g., expected to be sent by the gNB to the WTRU) may be represented by a parameter that may be obtained from one or more fields in the DCI or configured by an RRC parameter.

[0081] For a GF UL transmission, the WTRU may not receive or detect a HARQ-ACK or HARQ-NACK (due to collision of two or more transmissions due to the WTRU transmitting on the same GF resource). After a certain period of time (e.g., an acknowledgement time), the WTRU may determine that a previously transmitted TB was not received by the gNB and / or may attempt to transmit the TB using a GF resource (e.g., the next available GF resource). For a GF UL transmission, the timing between the GF UL transmission and the expected HARQ feedback may be represented by a parameter (e.g., an acknowledgement time) that may be conveyed in one or more fields in the DCI or may be specified by RRC.

[0082] One or more WTRUs may attempt to use GF resources (e.g., available GF resources) in one or more (e.g., several) consecutive slots. If the WTRUs (e.g., all WTRUs) wait the same time period before determining that a previous GF transmission failed, the WTRUs (e.g., all WTRUs) may target the same GF resource (e.g., the next immediately available GF resource) for transmission, for example, to perform a retransmission. A fixed period during which the WTRUs (e.g., all WTRUs) determine whether a previous GF transmission failed may increase the likelihood of collisions for the next GF resource used for transmission. A WTRU may use a corresponding period (e.g., waiting time) that is different from another WTRU. Such a variable waiting time may, for example, distribute retransmission attempts by the WTRUs over a range of two or more (e.g., several) GF resources and / or over two or more (e.g., several) slots. For a GF UL transmission, the timing between the GF UL transmission and the time (e.g., maximum time) at which the corresponding HARQ feedback will be received (e.g., expected to be received) may be represented by a parameter (e.g., which may be carried in one or more fields in the DCI and / or specified by a WTRU-specific RRC). Such a time interval may differ from one WTRU to another. The gNB may define the time interval. For example, the gNB may assign a time period to one or more WTRUs (e.g., each WTRU). This may be a gNB directed method. The gNB may specify a range of times from which the WTRU can select (e.g., randomly select) a value and / or select a value that results in the timing between the GF UL transmission and the maximum time at which the corresponding HARQ feedback will be received (e.g., expected to be received).The gNB that specifies a time range and / or selects a value may be more WTRU autonomous (e.g., more WTRU autonomous). The WTRU may provide value feedback to the gNB (e.g., it may be necessary to provide value feedback). Providing value feedback to the gNB can, for example, reduce the amount of grant-free blind decoding when the gNB is able to identify the WTRU, and it may not be necessary to decode the payload.

[0083] The range of the time interval may be determined by a parameter (e.g., traffic class). For example, low latency traffic may have a smaller range and / or latency tolerant traffic may have a larger range. The WTRU may have a range (e.g., a single range) that can be determined based on the usage type of the WTRU. (e.g., range for URLLC usage type < range for eMBB usage type < range for mMTC usage type). The WTRU may have two or more ranges (e.g., multiple) that can be selected based on the type of traffic to be transmitted.

[0084] For example, one or more GF resources may be sensed to reduce collisions. In a GF UL transmission, one or more WTRUs may attempt to transmit their reserved TBs on the same GF resource. For example, one or more WTRUs may attempt to transmit their reserved TBs on the same GF resource because the GF resource may be up for grabs by one or more WTRUs (e.g., any WTRU) configured to perform GF UL transmissions. Attempts by multiple WTRUs to use the same GF resource may, for example, result in collisions between the WTRUs (e.g., failed transmissions), which may lead to the WTRUs' TBs not being decoded (e.g., failed decoding). WTRUs may avoid such collisions, for example, by sensing the resource (e.g., GF resource) to discover whether another WTRU is using the resource before attempting to transmit their reserved TBs during the same GF resource.

[0085] One or more time-domain GF resources may be sensed. A WTRU (e.g., each WTRU) attempting to use a GF resource may perform resource sensing, e.g., select a beginning portion of the resource to discover resource availability. If resource usage is not detected (e.g., the WTRU determines that no other WTRUs are using the resource), the WTRU may decide (e.g., after processing) to transmit its reserved TB on the remaining portion of the GF resource. Sensing the medium may include, e.g., performing energy detection (ED) while sensing the portion. FIG. 3 shows an example in which an attempting WTRU senses the first symbol of a GF resource (e.g., the first three symbols of the GF resource). To benefit from such behavior, an attempting WTRU (e.g., each attempting WTRU) may select a sensing interval that may be different from the sensing interval of another attempting WTRU. For example, a WTRU may determine to sense for the availability of a grant-free resource during the WTRU's first few OFDM symbols (e.g., the first three symbols as in FIG. 3) and / or throughout the entire bandwidth of the grant-free resource. If it is detected (e.g., using energy detection) that no other WTRUs are using the resources, the WTRU may determine, for example, after processing, to transmit its reserved TB on the remaining portion of the GF resources.

[0086] A WTRU (e.g., each WTRU) may select a number of symbols (e.g., a random number) that can be derived (e.g., drawn) using, for example, an a priori known probability distribution. For example, a WTRU (e.g., all attempting WTRUs) may derive (e.g., draw) a number (e.g., a random number) uniformly from a range (e.g., 0, 1, 2, 3, 4) and / or perform resource sensing during the derived number of symbols and / or throughout the entire bandwidth of the GF resource. Figure 4 shows an example in which three WTRUs attempt to use a grant-free resource and the WTRUs (e.g., each WTRU) uniformly derive (e.g., draw) a value (e.g., a single value) from an a priori known range (e.g., 0, 1, 2, 3, 4). With reference to Figure 4, one or more of the following may apply. The sensing interval for WTRU1 may be four symbols, the sensing interval for WTRU2 may be three symbols, and / or the sensing interval for WTRU3 may be one symbol. The three WTRUs may pseudo-randomly (e.g., according to a distribution) derive (e.g., draw) the number n from an a priori known range (e.g., 0, 1, 2, 3, 4) and / or sense resource availability during the first n symbols and throughout the bandwidth of the grant-free resources. WTRU1 may sense the medium during the first four OFDM symbols of the GF resources. WTRU2 may sense the medium during the first three OFDM symbols of the GF resources. WTRU3 may sense the medium during one OFDM symbol of the GF resources. WTRU3 may be the first WTRU to find the medium available and / or may attempt to transmit its reserved TB, for example, on the remaining portion of the GF resources (e.g., after processing). WTRU1 and WTRU2 may determine that the GF resources are in use and / or may refrain from using the GF resources (e.g., after sensing the medium for the expected period of time). Two or more WTRUs may derive (e.g., derive) the same number and / or sense the resources for the same period of time, which may lead to collisions between the WTRUs.The likelihood of such an outcome decreases as the resource detection range increases.

[0087] Two or more WTRUs may attempt to use GF resources (e.g., the same GF resources). WTRU3 may not attempt to use the GF resources (e.g., may not perform resource sensing). WTRU2 and WTRU1 may sense the medium. For example, WTRU2 may be the first WTRU to determine that the medium is available and / or may transmit (attempt to transmit) its reserved TBs on the remainder of the resources (e.g., after processing). WTRU1 may determine that the GF resources are in use (e.g., after sensing the medium for a period (e.g., a predicted period)) and / or may refrain from using the GF resources. If neither WTRU3 nor WTRU2 are attempting to use the GF resources (e.g., do not perform resource sensing), WTRU1 may determine that the GF resources are not in use and / or may transmit its reserved TBs (e.g., after its sensing period expires).

[0088] Depending on the sensing (e.g., energy detection) performed by a WTRU (e.g., each WTRU) and / or the accuracy of the sensing performed, the WTRU may determine that a GF resource is in use early (e.g., earlier than the end of its sensing interval) and / or may stop sensing the resource. For example, depending on the sensing performed by the WTRU and / or the accuracy of the sensing, the WTRU may fail to sense that the medium is in use and / or may attempt to use the resource, which may result in a collision.

[0089] One or more frequency-domain GF resources may be detected. The WTRUs may perform resource detection (e.g., consistently) over the same number of OFDM symbols (e.g., one OFDM symbol and / or several a priori known OFDM symbols) and / or over a variable number of resource blocks (RBs). FIG. 5 shows an example in which three WTRUs attempt to use a given grant-free resource and / or the WTRUs (e.g., each WTRU) derive (e.g., pull) a value (e.g., a single value) from an a priori known range. As illustrated in FIG. 5, WTRU1, WTRU2, and WTRU3 may perform resource detection over the same number of OFDM symbols but different numbers of RBs. With reference to FIG. 5, one or more of the following may apply: The detection interval for WTRU1 may be 9 RBs (e.g., before a GF transmission). The detection interval for WTRU2 may be 7 RBs (e.g., before a GF transmission). The sensing interval for WTRU3 may be 4 RBs (e.g., before GF transmission). The three WTRUs may pseudo-randomly derive (e.g., draw) the number n from an a priori known range (e.g., per distribution) and / or sense resource availability during the top n RBs of the first OFDM symbol (or, e.g., the first few a priori known OFDM symbols). WTRU1 may sense the medium during the top 9 RBs of the GF resource. WTRU2 may sense the medium during the top 7 RBs of the GF resource. WTRU3 may sense the medium during the top 4 RBs of the GF resource. WTRU3 may be the first WTRU to find the medium available and / or may attempt to transmit its reserved TB on the remainder of the resource, e.g., after processing. WTRU1 and WTRU2 may determine (eg, after sensing the medium for their respective predicted time periods) that the GF resources are in use and / or may refrain from using the GF resources.The range from which a WTRU (e.g., each WTRU) derives (e.g., extracts) its sensing period may be known a priori (e.g., communicated via a parameter by RRC or DCI). The range may be obtained (e.g., implicitly obtained) by the WTRU (e.g., each WTRU) as a function of the bandwidth of the GF resource. For example, the range may be the bandwidth of the GF resource represented by the number of RBs associated with the GF resource. Figure 5 shows an example where the range includes (0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 11). The range may be implicitly obtained from the bandwidth of the GF resource, which is 11 RBs.

[0090] Two or more WTRUs may attempt to use GF resources (e.g., the same GF resources). WTRU3 may not attempt to use the GF resources (e.g., may not perform resource sensing). WTRU2 and WTRU1 may sense the medium. For example, WTRU2 may be the first WTRU to determine that the medium is available and / or may transmit (attempt to transmit) its reserved TBs on the remainder of the resources (e.g., after processing). WTRU1 (e.g., after sensing the medium for a period of time (e.g., a predicted period)) may determine that the GF resources are in use and / or may refrain from using the GF resources. If neither WTRU3 nor WTRU2 attempt to use the GF resources (e.g., do not perform resource sensing), WTRU1 may determine that the GF resources are not in use and / or may transmit its reserved TBs (e.g., after the expiration of its sensing period).

[0091] A two-dimensional time-frequency GF resource may be detected. The WTRU may perform resource detection on a variable number of OFDM symbols (e.g., the first OFDM symbol) and / or a variable number of topmost resource blocks (e.g., pseudo-randomly derived from an a priori known time interval) of the GF resource. For example, the time interval may be (0, 1, 2) and / or the RB interval may be (0, 1, 2, 3, 4). The WTRU may derive (e.g., draw) a pseudo-random number from a time interval, which may be the time duration of the detection interval. The WTRU may also derive (e.g., draw) a pseudo-random number from the RB interval, which may be the frequency bandwidth of the detection interval. If the WTRU determines that the resource is in use during the sensing interval (e.g., using energy detection), the WTRU may transmit its reserved TB, for example, in the remaining portion of the GF resource after processing. The set of resource sensing regions may be known a priori by one or more WTRU(s) (e.g., all WTRUs), and / or the WTRU may pseudo-randomly select the region in which to perform resource sensing. A resource sensing region may comprise a rectangular time and frequency interval, such as (t, f), where t may be in units of OFDM symbols and / or f may be in units of RBs.

[0092] The resource sensing region in FIG. 3 may include one or more of the following: t may be pseudo-randomly derived (e.g., drawn) by the WTRU from an a priori distribution; t may be different for two or more WTRUs. For example, a WTRU attempting to use a GF resource may have a t that may be different from another WTRU; f may be fixed for one or more (e.g., all) WTRUs attempting to use a GF resource (e.g., f may be equal to the bandwidth of the GF resource, e.g., all RBs of the GF resource).

[0093] The resource sensing region in FIG. 4 may include one or more of the following: f may be pseudo-randomly derived (e.g., drawn) by the WTRU from an a priori distribution and / or f may be one or more RBs; f may be different for two or more WTRUs; for example, a WTRU attempting to use a GF resource may have an f that may be different from f for another WTRU; t may be fixed (e.g., t may be equal to one or more OFDM symbols) for a WTRU attempting to use a GF resource (e.g., all WTRUs).

[0094] The sensing regions may be, for example, 2D time-frequency regions, and the sensing regions for a WTRU may differ in the time and / or frequency domain from another WTRU. The set of sensing regions may be known a priori by one or more WTRU(s) (e.g., a set of sensing regions (e.g., (t i ,f i ) All WTRUs are identified a priori by the gNB and / or are known to one or more (e.g., all) WTRUs). The WTRU may select a sensing area from the set. The set of sensing areas may be designed and / or nested. A minimum sensing area may be a subset of one or more other sensing areas (e.g., all other sensing areas). A second-smallest minimum sensing area may be a subset of one or more other sensing areas (e.g., the minimum sensing area plus all other sensing areas), and so on. The structure (e.g., nested structure) of the sensing areas may enable determination (e.g., explicit estimation) of whether a resource is in use. A fixed payload size carrying sensing areas in the format of a bitmap may be used to indicate sensing areas within a GF resource. A two-dimensional bitmap may indicate one or more frequency-time regions / partitions within the GF resource.

[0095] Resource sensing may be performed in the time domain and / or RB domain according to a sensing interval, which may be, for example, pseudo-randomly derived (e.g., drawn) from an a priori known distribution. One or more WTRUs may be prioritized to use a minimum sensing interval (e.g., do not perform resource sensing). For example, a WTRU configured for a low-latency application may be configured by RRC to not perform sensing (e.g., the WTRU's sensing interval is zero), and / or the WTRU may attempt to use GF resources without sensing. A WTRU (e.g., a WTRU performing a latency-tolerant application, such as mMTC) may be configured to perform resource sensing. A WTRU with a particular application (e.g., a low-latency application) may, for example, obtain a higher priority compared to other WTRUs. The a priori range from which the WTRU derives (e.g., draws) a number (e.g., pseudo-randomly derives a number) may start from a non-zero number, for example, to prioritize high-priority WTRUs. Prioritization may be performed based on one or more criteria. In an embodiment, the prioritization may be based on the application performed by the WTRU (eg, low latency application, mMTC application).

[0096] For resource sensing, the number of resource elements (REs) from the GF resources that the WTRU uses for TB transmission may be variable and / or may not be known in advance (e.g., due to a sensing interval). The sensing interval may be a pseudo-randomly derived number. One or more of the following may apply (e.g., to address the lack of knowledge):

[0097] The WTRU may, for example, create a TB as if no resource sensing had been performed. If the WTRU determines (e.g., after performing resource sensing) that the GF resources are not in use, the WTRU may rate-match the created TB and / or transmit the rate-matched TB.

[0098] If the sensing interval results in several symbols (e.g., a sensing interval that leads to several medium sensing intervals), the WTRU may create a reserved TB with different rate-matching assumptions. Different rate-matching assumptions for the TB may be based on the results. For example, the transmission range may be (0, 2, 4), and the WTRU may pseudo-randomly derive (e.g., draw) 0, 2, or 4. Before using the GF resources, the WTRU may, for example, rate-match its reserved TB to the possible sensing interval results. One or more of the following may apply: The WTRU may create a TB that is rate-matched as if no sensing had occurred (e.g., corresponding to a derived result of 0 for the sensing interval). The WTRU may create a TB that is rate-matched with the remaining REs such that the sensing interval is 2. The WTRU may create a TB that is rate-matched with the remaining REs such that the sensing interval is 4. When the WTRU reaches the GF resource and / or pseudo-randomly derives (eg, draws) from the range (0, 2, 4), the WTRU may have a TB rate-matched to the outcome ready.

[0099] For example, the gNB may determine (e.g., uniquely determine) a rate-matching value because the gNB may not know which portions of the GF resources are unused (e.g., which portions are not used by the WTRU for resource sensing). The gNB may obtain (e.g., implicitly obtain or determine) the size of the resource sensing region (e.g., the number of OFDM symbols relative to the total bandwidth of the GF resources, the number of RBs relative to the number of OFDM symbols (e.g., a fixed number), and / or the number of OFDM symbols and the number of RBs). The gNB may obtain (e.g., subsequently obtain or determine) the portion of the resources used for transmission of the WTRU's TB and / or obtain (e.g., subsequently obtain or determine) the associated rate-matching ratio.

[0100] The WTRU may be configured with one or more of the offset values ​​by RRC signaling, and the (e.g., each) offset value may be used by the WTRU to calculate the amount of RE for a corresponding detection range. The WTRU may, for example, take into account the UL waveform (e.g., OFDM vs. DFT-s-OFDM) and / or different UCI multiplexing mechanisms to determine the offset value.

[0101] The WTRU may be configured to perform resource detection, for example, on the first few symbols of a slot, e.g., the first OFDM symbol or the first two OFDM symbols. If the WTRU is configured to perform resource detection on the first few symbols of a slot, the WTRU may determine (e.g., implicitly determine) the first OFDM symbol in the slot available for UL GF transmission (e.g., the remaining portion of the GF resource—PUSCH by the WTRU). For example, if the WTRU is performing resource detection during the first M OFDM symbols, the WTRU may determine that the GF PUSCH may be transmitted in the next K OFDM symbols (M+1, M+2, ..., M+K). k may be a parameter related to the number of OFDM symbols, for example, that may depend on the capability of the WTRU, e.g., for a WTRU with high capability K=1 (e.g., which may indicate that the WTRU can transmit the UL GF PUSCH in the significantly next OFDM symbol after performing resource detection). The WTRU may follow the slot format configuration indicated in the slot format indicator (SFI) for the remaining symbols of the slot.

[0102] UCI multiplexing may be performed during GF transmission. The WTRU may utilize grant-based resources and / or multiplex UCI, including, for example, channel state information (CSI), channel quality indicator (CQI), rank indicator (RI), and / or HARQ ACK / NACK information according to the TB. The WTRU behavior may change during GF transmission, for example, when the WTRU is attempting to multiplex UCI information on the PUSCH.

[0103] An adaptive coding rate may be performed for UCI multiplexing. Processing performed by the WTRU during UCI multiplexing (e.g., required to be performed by the WTRU) may be agnostic to whether the UL transmission is grant-based or grant-free. The processing used for UCI multiplexing may be used during GF UL transmissions. For GF transmissions, GF resources may be subject to interference and / or collisions. To address higher interference during GF UL transmissions, for example, the redundancy version (RV) may be adjusted and / or the TB may be rate-matched so that the multiplexed UCI can be coded with a lower rate coding. In a GF UL transmission with K repetitions (e.g., UCI is multiplexed with the TB), UCI information may be multiplexed using a lower rate code (e.g., compared to a previous transmission in the series of K transmissions). A lower rate code may be associated with a higher amount of redundancy. In a GF transmission with K repetitions, UCI may be coded with a lower rate code, for example, in the second repetition compared to the first repetition. For example, the UCI may be coded with a lower rate code in the third iteration compared to the second iteration, etc. To ensure that the gNB knows the coding rate used by the WTRU, for example, a predefined set of rate matching / coding rate parameters may be specified, and the WTRU may use the predefined set of rate matching / coding rate parameters in sequence during the TB (re)transmissions with K iterations. For example, the WTRU may follow a coding rate sequence, which may be configured by WTRU-specific RRC signaling as being {½, ⅓, ¼}. The WTRU may use a different beta-offset value for (re)transmissions (e.g., each (re)transmission), for example, to calculate the amount of RE for (e.g., each) respective UCI to be multiplexed during the GF UL (re)transmission. For example, the WTRU may use

[0104]

number

[0105] The beta offset for the first transmission may be smaller than the beta offset for the second transmission, and so on.

[0106] The WTRU may wait for HARQ feedback for its GF UL transmission (e.g., during a waiting time). If PUCCH resources are allocated to the WTRU while the WTRU is waiting for HARQ feedback for its GF UL transmission, the WTRU may retransmit UCI (e.g., regardless of whether the previous GF UL transmission was successful). If a collision with multiplexed UCI occurs during the GF transmission of the TB, the WTRU may receive a HARQ-NACK or may not receive HARQ feedback. The multiplexed UCI may not be received by the gNB and / or may be retransmitted (e.g., in an upcoming PUCCH opportunity if multiplexed with grant-based PUSCH resources, if any, and / or retransmitted in another GF transmission).

[0107] Prioritization based on UCI multiplexing may be performed. If the WTRU's transmission of UCI (e.g., HARQ ACK) has higher priority than the GF transmission (e.g., for a given slot), the WTRU may drop the GF transmission (e.g., CSI or CQI) on the PUSCH and / or transmit a HARQ-ACK (e.g., only a HARQ-ACK) on the PUCCH. The WTRU may start (e.g., start immediately) the GF transmission on grant-free resources on the PUSCH in a subsequent slot. If the WTRU's transmission of UCI (e.g., periodic / semi-persistent CSI reporting) has lower priority than the GF data transmission (e.g., for a given slot), the WTRU may drop the periodic / semi-persistent CSI reporting and may continue with the GF transmission of data on the PUSCH and / or may multiplex the periodic / semi-persistent CSI reporting with the data and transmit on the GF resources on the PUSCH. If the WTRU drops UCI, the WTRU may continue transmitting periodic / semi-persistent CSI reports on the next allocated PUCCH resource. The gNB may determine (e.g., blindly determine) the WTRU's behavior, for example, by detecting (e.g., simultaneously detecting) the PUCCH and / or GF PUSCH resources. If the gNB detects PUSCH (e.g., while predicting UCI transmission by the WTRU on PUCCH), the gNB may determine that the WTRU is multiplexing UCI with data and / or transmitting UCI and data on GF resources on PUSCH.

[0108] The priority of UCI transmission may be configured by RRC. For example, the WTRU may determine that if a predefined parameter (e.g., simultaneousCSIAndData) provided by higher layers is set to TRUE, the WTRU will (e.g., should) multiplex data with HARQ-ACK on GF resources and / or will not drop HARQ-ACK. The WTRU may determine that if a predefined parameter (e.g., simultaneousCSIAndData) provided by higher layers is not set to TRUE, the WTRU will (e.g., should) drop periodic / semi-persistent CSI report(s) and / or will not multiplex CSI report(s) with data on GF resources.

[0109] UCI multiplexing may be conditional on HARQ feedback. For an initial transmission, if the WTRU multiplexes UCI with data, transmits on GF UL resources, and / or receives a NACK from the gNB, the WTRU may not have good coverage and / or neither the UCI nor the TB may be successfully detected at the gNB. The WTRU may decide (e.g., autonomously decide) to drop UCI and / or data for a GF retransmission / repetition, e.g., according to the priority of the UCI content. If the WTRU drops UCI, e.g., the code rate for a GF TB retransmission may be reduced, which may provide a higher chance of successful TB detection at the gNB. If the WTRU drops data, e.g., the UCI transmission by the WTRU may be on the PUCCH, which may provide a higher chance of detection at the gNB.

[0110] If for an initial transmission, the WTRU multiplexes UCI with data, transmits on GF UL resources, and / or receives an ACK from the gNB, the WTRU may have good coverage and UCI and / or TB may have been detected (e.g., successfully detected) at the gNB. The WTRU may, for example, decide (e.g., autonomously decide) to multiplex UCI with data for a GF retransmission / repetition (e.g., regardless of the priority of the UCI content). The WTRU may not drop UCI and / or may multiplex UCI with data (e.g., always multiplex) in subsequent GF retransmissions / repetitions.

[0111] While features and elements have been described above in particular combinations, those skilled in the art will recognize that each feature or element may be used alone or in any combination with the other features and elements. In addition, the methods described herein may be implemented in a computer program, software, or firmware embodied in a computer-readable medium for execution by a computer or processor. Examples of computer-readable media include electronic signals (transmitted over wired or wireless connections) and computer-readable storage media. Examples of computer-readable storage media include, but are not limited to, read-only memory (ROM), random-access memory (RAM), registers, cache memory, semiconductor memory devices, magnetic media such as internal hard disks and removable disks, magneto-optical media, and optical media such as CD-ROM disks and digital versatile disks (DVDs). A processor in conjunction with software may be used to implement a radio frequency transceiver for use in a WTRU, UE, terminal, base station, RNC, or any host computer. [Industrial Applicability]

[0112] The present invention can be used in communications.

Claims

1. 1. A method for transmitting uplink control information (UCI) implemented by a wireless transmit / receive unit (WTRU), comprising: receiving a radio resource control message (RRC message), the RRC message including information indicating physical uplink shared channel resources (PUSCH resources) for the WTRU; determining to transmit a first UCI during a time period that overlaps with a transmission opportunity associated with the PUSCH resource; transmitting the first UCI, wherein, based on a parameter being configured in the RRC message, the first UCI is multiplexed on the PUSCH resource associated with the transmission opportunity, and based on the parameter not being configured in the RRC message, the first UCI is transmitted on one or more physical uplink control channel resources (PUCCH resources); A method for providing the above.

2. The method of claim 1 , wherein the first UCI includes hybrid automatic repeat request (HARQ) acknowledgement (ACK) information.

3. transmitting a transport block (TB) that was to be transmitted on the PUSCH resource using a PUSCH resource associated with a subsequent transmission opportunity associated with the PUSCH resource configured in the received RRC message based on the parameter not being configured in the RRC message. The method of claim 1 further comprising:

4. 4. The method of claim 3, wherein transmitting the TB using a PUSCH associated with the subsequent transmission opportunity comprises transmitting the TB a number of times based on a configured value.

5. The method of claim 3 , wherein the first UCI is transmitted on the PUCCH resource before transmitting the TB using a PUSCH resource.

6. The method of claim 3 , wherein the first UCI is transmitted in a first slot and the TB is transmitted in at least a second slot.

7. The method of claim 6 , wherein the second slot is the slot immediately following the first slot.

8. The method of claim 4 , wherein the RRC message further includes the configured value.

9. 1. A wireless transmit / receive unit (WTRU) for transmitting uplink control information (UCI), comprising: receiving a radio resource control message (RRC message), the RRC message including information indicating physical uplink shared channel resources (PUSCH resources) for the WTRU; determining to transmit a first UCI during a time period that overlaps with a transmission opportunity associated with the PUSCH resource; transmitting the first UCI, and based on a parameter being configured in the RRC message, the first UCI is multiplexed on the PUSCH resource associated with the transmission opportunity, and based on the parameter not being configured in the RRC message, the first UCI is transmitted on one or more physical uplink control channel resources (PUCCH resources); A WTRU configured as follows:

10. The WTRU of claim 9 , wherein the first UCI includes hybrid automatic repeat request (HARQ) acknowledgement (ACK) information.

11. 10. The WTRU of claim 9, further configured to: transmit a transport block (TB) that was to be transmitted on a PUSCH resource using a PUSCH resource associated with a subsequent transmission opportunity associated with a PUSCH resource configured in the received RRC message based on the parameter not being configured in the RRC message.

12. The WTRU of claim 11, wherein the WTRU configured to transmit the TB using a PUSCH associated with the subsequent transmission opportunity includes the WTRU configured to transmit the TB multiple times based on a configured value.

13. The WTRU of claim 11, wherein the first UCI is transmitted on the PUCCH resource before transmitting the TB using a PUSCH resource.

14. The WTRU of claim 11, wherein the first UCI is transmitted in a first slot and the TB is transmitted in at least a second slot.

15. The WTRU of claim 14, wherein the second slot is the slot immediately following the first slot.

16. The WTRU of claim 12 , wherein the RRC message further includes the configured value.

17. 1. A method for receiving uplink control information (UCI) implemented by a base station, comprising: transmitting a radio resource control message (RRC message), the RRC message including information indicating a physical uplink shared channel resource (PUSCH resource) for a wireless transmit / receive unit (WTRU) and parameters associated with the PUSCH resource; receiving a first UCI, wherein the first UCI is multiplexed on the PUSCH resource associated with a first transmission opportunity for the WTRU based on the parameter being set in the RRC message, and the first UCI is received on one or more physical uplink control channel resources (PUCCH resources) based on the parameter not being set in the RRC message; A method for providing the above.

18. 18. The method of claim 17, wherein the first UCI includes hybrid automatic repeat request (HARQ) acknowledgement (ACK) information.

Citation Information

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