EP4691098A1 - Resource blocks determination for transmissions - Google Patents

Resource blocks determination for transmissions

Info

Publication number
EP4691098A1
EP4691098A1 EP23931574.0A EP23931574A EP4691098A1 EP 4691098 A1 EP4691098 A1 EP 4691098A1 EP 23931574 A EP23931574 A EP 23931574A EP 4691098 A1 EP4691098 A1 EP 4691098A1
Authority
EP
European Patent Office
Prior art keywords
rbs
transmission
subband
terminal device
outside
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
EP23931574.0A
Other languages
German (de)
French (fr)
Inventor
Guillermo POCOVI
Claudio Rosa
Erika PORTELA LOPES DE ALMEIDA
Nhat-Quang NHAN
Youngsoo Yuk
Jingyuan Sun
Klaus Hugl
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Nokia Technologies Oy
Original Assignee
Nokia Technologies Oy
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Nokia Technologies Oy filed Critical Nokia Technologies Oy
Publication of EP4691098A1 publication Critical patent/EP4691098A1/en
Pending legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/23Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0091Signalling for the administration of the divided path, e.g. signalling of configuration information
    • H04L5/0094Indication of how sub-channels of the path are allocated

Definitions

  • duplexing evolution including subband non-overlapping full duplex (SBFD) has been studied in a third generation partnership project (3GPP) release 18 (Rel-18) study item (SI) .
  • 3GPP 5G NR supports two duplexing modes.
  • One duplexing mode is frequency division dual (FDD) for paired bands and another duplexing mode is time division dual (TDD) for unpaired bands.
  • FDD frequency division dual
  • TDD time division dual
  • Allocation of a limited time duration for the uplink in TDD would result in reduced coverage, increased latency, and reduced capacity.
  • example embodiments of the present disclosure provide a terminal device, a network device, methods, apparatuses and a computer readable storage medium for resource blocks determination for transmissions.
  • the solution provided by the example embodiments of the present disclosure can allow to indicate to a terminal device whether or not to allocate downlink (DL) RB (s) within the uplink (UL) subband and guardband (s) , without additional overhead, or allow to indicate to a terminal device whether or not to allocate UL RBs within the DL subband and guardband (s) , without additional overhead.
  • DL downlink
  • UL uplink
  • guardband s
  • a terminal device may comprise at least one processor; and at least one memory storing instructions that, when executed by the at least one processor, cause the terminal device at least to: receive, from a network device, scheduling information for a downlink (DL) transmission or an uplink (UL) transmission on a plurality of resource blocks (RBs) in a time unit during which at least one DL subband and at least one UL subband are configured; compare at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and transmit the UL transmission or receive the DL transmission based on the comparison.
  • DL downlink
  • UL uplink
  • the network device may comprise at least one processor; and at least one memory storing instructions that, when executed by the at least one processor, cause the network device at least to: transmit, to a terminal device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; compare at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and transmit the DL transmission or receive the UL transmission based on the comparison.
  • a method may comprise: receiving, at a terminal device and from a network device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; comparing, at the terminal device, at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and transmitting, at the terminal device, the UL transmission or receive the DL transmission based on the comparison.
  • a method may comprise: transmitting, at a network device and to a terminal device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DLsubband and at least one UL subband are configured; comparing, at the network device, at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and transmitting, at the network device, the DL transmission or receive the UL transmission based on the comparison.
  • an apparatus may comprise: means for receiving, at a terminal device and from a network device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; means for comparing at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and means for transmitting the UL transmission or receive the DL transmission based on the comparison.
  • an apparatus of a network device may comprise: means for transmitting, at a network device and to a terminal device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; means for comparing, at the network device, at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and means for transmitting, at the network device, the DL transmission or receive the UL transmission based on the comparison.
  • a non-transitory computer readable medium comprising program instructions for causing an apparatus to perform at least the method according to the third or fourth aspect.
  • a computer program comprising instructions, which, when executed by an apparatus, cause the apparatus at least to: receive, from a network device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; compare at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and transmit the UL transmission or receive the DL transmission based on the comparison.
  • a computer program comprising instructions, which, when executed by an apparatus, cause the apparatus at least to: transmit, to a terminal device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; compare at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and transmit the DL transmission or receive the UL transmission based on the comparison.
  • the terminal device may comprise a receiving circuitry configured to receive, from a network device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; a comparing circuitry configured to compare at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and a transmitting/receiving circuitry configured to transmit the UL transmission or receive the DL transmission based on the comparison.
  • the network device may comprise a transmitting circuitry configured to compare at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; a comparing circuitry configured to compare at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; a transmitting/receiving circuitry configured to transmit, to the terminal device, transmit the DL transmission or receive the UL transmission based on the comparison.
  • FIGS. 1B-1D illustrate example illustrations of frequency-time resource partitioning and time-time resource partitioning related to some example embodiments of the present disclosure
  • FIG. 1E illustrates an example illustration of SBFD and non-SBFD slots related to some example embodiments of the present disclosure
  • FIG. 1F illustrates an example illustration of unaligned boundaries between resource block groups (RBGs) and subbands in accordance with some example embodiments of the present disclosure
  • FIG. 1G illustrates an example illustration of rate matching in SBFD slots in accordance with some example embodiments of the present disclosure
  • FIG. 2 illustrates an example signaling process for determining resource blocks for transmissions in accordance with some example embodiments of the present disclosure
  • FIG. 3 illustrates an example illustration of determining resource blocks based on comparison of positions of RBGs with positions of subbands in accordance with some example embodiments of the present disclosure
  • FIG. 4 illustrates an example flowchart of a process of determining resource blocks in accordance with some example embodiments of the present disclosure
  • FIG. 5 illustrates another example flowchart of a process of determining resource blocks in accordance with some example embodiments of the present disclosure
  • FIG. 7 illustrates an example flowchart of a method implemented at a terminal device in accordance with some example embodiments of the present disclosure
  • FIG. 8 illustrates an example flowchart of a method implemented at a network device in accordance with some example embodiments of the present disclosure
  • references in the present disclosure to “one embodiment, ” “an embodiment, ” “an example embodiment, ” and the like indicate that the embodiment described may include a particular feature, structure, or characteristic, but it is not necessary that every embodiment includes the particular feature, structure, or characteristic. Moreover, such phrases are not necessarily referring to the same embodiment. Further, when a particular feature, structure, or characteristic is described in connection with an embodiment, it is submitted that it is within the knowledge of one skilled in the art to affect such feature, structure, or characteristic in connection with other embodiments whether or not explicitly described.
  • first and second etc. may be used herein to describe various elements, these elements should not be limited by these terms. These terms are only used to distinguish one element from another. For example, a first element could be termed a second element, and similarly, a second element could be termed a first element, without departing from the scope of example embodiments.
  • the term “and/or” includes any and all combinations of one or more of the listed terms.
  • circuitry may refer to one or more or all of the following:
  • circuitry also covers an implementation of merely a hardware circuit or processor (or multiple processors) or portion of a hardware circuit or processor and its (or their) accompanying software and/or firmware.
  • circuitry also covers, for example and if applicable to the particular claim element, a baseband integrated circuit or processor integrated circuit for a mobile device or a similar integrated circuit in server, a cellular network device, or other computing or network device.
  • the term “communication network” refers to a network following any suitable communication standards, such as long term evolution (LTE) , LTE-advanced (LTE-A) , wideband code division multiple access (WCDMA) , high-speed packet access (HSPA) , narrow band Internet of things (NB-IoT) and so on.
  • LTE long term evolution
  • LTE-A LTE-advanced
  • WCDMA wideband code division multiple access
  • HSPA high-speed packet access
  • NB-IoT narrow band Internet of things
  • the communications between a terminal device and a network device in the communication network may be performed according to any suitable generation communication protocols, including, but not limited to, the third generation (3G) , the fourth generation (4G) , 4.5G, the fifth generation (5G) communication protocols, and/or beyond.
  • Embodiments of the present disclosure may be applied in various communication systems. Given the rapid development in communications, there will of course also be future type communication technologies and systems with which the present disclosure may be
  • the term “network device” refers to a node in a communication network via which a terminal device accesses the network and receives services therefrom.
  • the network device may refer to a base station (BS) or an access point (AP) , for example, a node B (NodeB or NB) , an evolved NodeB (eNodeB or eNB) , a NR NB (also referred to as a gNB) , a remote radio unit (RRU) , a radio header (RH) , a remote radio head (RRH) , a relay, a low power node such as a femto, a pico, and so forth, depending on the applied terminology and technology.
  • BS base station
  • AP access point
  • NodeB or NB node B
  • eNodeB or eNB evolved NodeB
  • NR NB also referred to as a gNB
  • RRU remote radio unit
  • RH radio header
  • terminal device refers to any end device that may be capable of wireless communication.
  • a terminal device may also be referred to as a communication device, user equipment (UE) , a subscriber station (SS) , a portable subscriber station, a mobile station (MS) , or an access terminal (AT) .
  • UE user equipment
  • SS subscriber station
  • MS mobile station
  • AT access terminal
  • the terminal device may include, but not limited to, a mobile phone, a cellular phone, a smart phone, voice over IP (VoIP) phones, wireless local loop phones, a tablet, a wearable terminal device, a personal digital assistant (PDA) , portable computers, desktop computer, image capture terminal devices such as digital cameras, gaming terminal devices, music storage and playback appliances, vehicle-mounted wireless terminal devices, wireless endpoints, mobile stations, laptop-embedded equipment (LEE) , laptop-mounted equipment (LME) , USB dongles, smart devices, wireless customer-premises equipment (CPE) , an Internet of things (loT) device, a watch or other wearable, a head-mounted display (HMD) , a vehicle, a drone, a medical device and applications (e.g., remote surgery) , an industrial device and applications (e.g., a robot and/or other wireless devices operating in an industrial and/or an automated processing chain contexts) , a consumer electronics device, a device operating on commercial,
  • the term “resource” , “transmission resource” , “resource block” , “physical resource block” (PRB) , “uplink (UL) resource” or “downlink (DL) resource” may refer to any resource for performing a communication, for example, a communication between a terminal device and a network device, such as a resource in time domain, a resource in frequency domain, a resource in space domain, a resource in code domain, a resource in a combination of more than one domain or any other resource enabling a communication, and the like.
  • a resource in time domain (such as, a subframe) will be used as an example of a transmission resource for describing some example embodiments of the present disclosure. It is noted that example embodiments of the present disclosure are equally applicable to other resources in other domains.
  • 3GPP supports two duplexing modes, which are FDD mode and TDD mode. Allocation of a limited time duration for the uplink in TDD would result in reduced coverage, increased latency, and reduced capacity. Therefore, 3GPP has agreed to initiate a Rel-18 study item (RP-213591) on the evolution of duplexing operation in NR.
  • One of the objectives of the study item is to allow simultaneous DL and UL transmission on different physical RBs or subbands within an unpaired wideband NR cell.
  • this duplexing scheme is referred to subband non-overlapping full duplex (SBFD) .
  • SBFD subband non-overlapping full duplex
  • this duplexing scheme is also referred to as cross division duplexing (xDD) scheme or flexible division duplexing (FDU) .
  • SBFD slots during which the non-overlapping DL subbands and UL subband (s) both exist.
  • non-SBFD slots during which the entire band is used for either DL or UL, for example, legacy or full DL slots, or legacy or full UL slots.
  • a guardband is expected to be placed between DL and UL RBs. This provides better isolation between UL and DL transmissions and is expected to be essential for reducing the impact of the self-interference.
  • a reason may be that a gNB’s own DL transmissions and the gNB’s own UL reception. It also reduces the impact of the cross-link interference (CLI) between UE to UE links, and gNB to gNB links.
  • CLI cross-link interference
  • the UE In addition to indicating the UE the frequency locations of DL subband (s) , there is a need that the UE has knowledge of the location of the UL subband (s) as well as the location of the guardband (s) . In principle, two out of the three among DL subband, UL subband, guardband, can be signaled to the UE, while the remaining one can be implicitly derived by the UE.
  • the 5G NR supports two frequency-domain resource allocation (RA) types applicable to both PDSCH and PUSCH resource allocation in frequency domain namely Resource Allocation (RA) Type 0 and Resource Allocation (RA) Type 1.
  • RA type 0 as described in technical specification (TS) 38.214, Sec 5.1.2.1 and 6.1.2.1 is a bitmap based resource allocation
  • RA type 1 as described in technical specification (TS) 38.214, Sec 5.1.2.2 and 6.1.2.2 is consecutive RBs are allocated to the UE by indicating the start RB and number of RBs.
  • the resource blocks are allocated with a resolution of one resource block group (RBG) .
  • RBG resource block group
  • the coarse scheduling granularity may result in unaligned boundaries between the RBGs and the DL, guardband or UL subband (s) which makes it difficult for the resource allocation decisions at the gNB.
  • This problem is under study in 3GPP as noted in the following agreement in table 4.
  • RBG for PDSCH RA type 1 for a downlink RBGs allocation, if the DL subband allocation granularity and RBGs are aligned, DL PDSCH allocations can be scheduled without any problem. However, if the borders of the RBGs are not aligned with the UL subband, RBs in the UL subband could not be used for UL transmissions (as they collide with the guardband) . If the RBG is placed outside DL subband, there is a waste of RBs in both UL and DL direction. Furthermore, this problem still exists even if there is no guardband known to the UE (i.e. UL and DL subbands are contiguous at least from UE’s perspective) .
  • RA Type 1 Another issue is being discussed in RAN1 regarding the RA Type 1, in which a contiguous frequency allocation is given by a start RB and a number of RBs.
  • RA type 1 non-contiguous allocation in RA type 1 is not allowed, and different options have been discussed in RAN1 meetings for RA type 1 if SBFD operation is configured with two DL subbands in the borders of the BWP, and one UL subband in the center of the BWP (DUD) .
  • rate matching is being proposed for the RA type 1.
  • Another option is to assume a “mirror image” allocation in the DL subbands, in which the frequency resource allocation in one subband is mirrored into the other.
  • the gNB indicates the frequency domain resource allocation (FDRA) by a resource indicator value (RIV) [6, TS 38.214] , which indicates a starting RB and a number of allocated RBs.
  • FDRA frequency domain resource allocation
  • RIV resource indicator value
  • S the size of the allocation is indicated by N.
  • the UE For the DL transmission, if some RBs indexes overlap with the forbidden subbands (UL and guard bands) , the UE combines the initial DL allocation with the knowledge of the location of the guardbands, UL subband and DL subbands to derive the available resources and the final allocation.
  • the forbidden subbands UL and guard bands
  • a rate matching can be performed to exclude the invalid RBs of the corresponding allocation.
  • there is a need that allowing DL transmissions outside the DL subband in the absence of UL traffic. If there is no UL transmission at all in a slot, there is no big reason to keep the RBs in the guardband unused, as there is no self-interference problem nor gNB-gNB CLI problem if some sort of coordination is assumed between cells or sectors.
  • Example embodiments of the present disclosure provide a solution for determining resource blocks for transmissions.
  • a terminal device receives, from a network device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured.
  • the terminal device further compares at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband.
  • the terminal device further transmits the UL transmission or receives the DL transmission based on the comparison. It is understood that the above procedure steps may work together, in a flow of operations as described in the next section, partly together or independently of each other.
  • the example embodiments for determining resource blocks for transmissions as provided in the present disclosure can allow to indicate to a terminal device whether or not to allocate downlink (DL) RB (s) within the uplink (UL) subband and guardband (s) , without additional overhead, or allow to indicate to a terminal device whether or not to allocate UL within the DL subband and guardband (s) , without additional overhead.
  • DL downlink
  • UL uplink
  • guardband s
  • FIG. 1A illustrates an example network environment 100A in which example embodiments of the present disclosure may be implemented.
  • the network environment 100A which may be a part of a communication network, includes a terminal device 102 and a network device 104.
  • the terminal device 102 may also be referred as a user equipment 102 or a UE 102.
  • the network device 104 may also be referred as a gNB 104.
  • the terminal device 102 and the network device 104 can communicate (106) with each other.
  • the terminal device 102 may receive resource allocation type 0 or resource allocation type 1 from the network device 104.
  • the resource blocks are allocated with a resolution of one resource block group (RBG) .
  • a RBG may comprise eight RBs.
  • contiguous frequency allocation is given by a start RB and a number of RBs.
  • an initial RB may be the lowest RB in the DL subband and number of RBs may be eight.
  • FIGS. 1B-1D illustrate example illustrations of frequency-time resource partitioning and time-time resource partitioning related to some example embodiments of the present disclosure.
  • FIG. 1B shows an illustration 100B of FDD.
  • FDD Frequency Division Duplex
  • DL band 108 and UL band 110 In frequency domain, the DL band 108 and UL band 110 are split by a guard band.
  • FIG. 1C shows an illustration 100C of TDD.
  • the time domain resource is split between downlink 112 and uplink 114. It can be seen that the uplink 112 has a shorter length than the downlink 114. Allocation of a limited time duration for the uplink in TDD would result in reduced coverage, increased latency, and reduced capacity.
  • FIG. 1D shows an illustration 100D of FDU.
  • FDU it is allowed that simultaneous DL and UL transmission on different PRBs or subbands within an unpaired wideband NR cell.
  • DL 116, DL 118 and UL 120 are allowed to simultaneously duplexing.
  • FIG. 1E illustrates an example illustration 100E of SBFD and non-SBFD slots related to some example embodiments of the present disclosure.
  • legend 122 represents a DL resource.
  • Legend 124 represents a guard resource.
  • Legend 128 represents a UL resource.
  • non-SBFD slots 130 the entire band is used for DL.
  • non-SBFD slots 132 the entire band is used for UL.
  • SBFD slots or non-SBFD slots may comprise a same or different number of slots.
  • FIG. 1F illustrates an example illustration 100F of unaligned boundaries between RBGs and subbands in accordance with some example embodiments of the present disclosure for Type 0 resource allocation.
  • a guardband has a size of 5 RBs while the RBG has a size of 8 RBs. If the guardband and RBGs are aligned as shown in block 136, DL PDSCH allocations can be scheduled without any problem, while 3 RBs in the UL subband could not be used for UL transmissions (as this RBG collides with the guardband as shown in block 138) . If the RBG is placed as illustrated with block 140, there is a waste of RBs in both UL and DL direction.
  • FIG. 1G illustrates an example illustration 100G of rate matching in SBFD slots in accordance with some example embodiments of the present disclosure for Type 1 resource allocation.
  • the start RB is indicated by S and S is equal to 4 and the size of the allocation of RBs is indicated by N, where N is 14.
  • RBs indexes from 7 to 15 are overlapping with the forbidden subbands (UL 144 and guard bands U1 and U2) .
  • the first RB of the forbidden subband (index 7) is indicated as U1, and the last RB (index 15) as U2.
  • a UE may combine the initial DL allocation with the knowledge of the location of the guardbands, UL subband 144 and DL subbands 142 to derive the available resources and the final allocation.
  • a rate matching may be needed for this case.
  • the UE may consider or not consider RBs outside the DL subband as part of the PDSCH allocation.
  • FIG. 2 illustrates an example signaling process 200 for determining resource blocks for transmissions in accordance with some example embodiments of the present disclosure.
  • the network device 104 transmits (204) scheduling information (206) to the terminal device 102.
  • the scheduling information (206) is for a DL transmission or a UL transmission on a plurality of RBs in a time unit.
  • the time unit may comprise a slot or symbol.
  • at least one DL subband and at least one UL subband are configured. For example, in a manner of RA type 0 or RA type 1.
  • the terminal device 102 receives (202) the scheduling information (206) from the network device 104.
  • the terminal device 102 compares (208) at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband. For example, for a RA type 0 manner, if at least one of the indicated RBGs do not have any overlap with the DL subband, the terminal device 102 may receive on the indicated RBGs resources without any ratematching operation to exclude one or more RBs outside the DL subband. As another example, for a case where all the indicated RBGs are at least partially overlapping with the DL subband, the terminal device 102 may exclude the RBs that do not overlap with the DL subband.
  • the logic for the comparison (208) may be that if all the allocated RBGs of the PDSCH are placed fully or partially in the DL subband, it is implicitly assumed that the network device 104 wants to ‘respect’ the guardband, thus any actual RB not placed in the DL subband is not considered to be part of the DL allocation. While if at least one RBG is not even partially placed in the DL subband, the terminal device 102 can assume that the network device 104 wants to use the all indicated RBGs for the PDSCH allocation of the symbol for the terminal and all RBs are considered part of the allocation.
  • the logic for the comparison (208) is similar, and for brevity, it will not be described herein.
  • the network device 104 compares (222) at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband. For example, for a RA type 0 manner, if at least one of the indicated RBGs do not have any overlap with the DL subband, the network device 104 may transmit on the indicated RBGs resources without any ratematching operation to exclude one or more RBs outside the DL subband. As another example, for a case where all the indicated RBGs are at least partially overlapping with the DL subband, the network device 104 may exclude the RBs that do not overlap with the DL subband.
  • the comparison (222) logics for both PDSCH and PUSCH transmission are similar as described with the comparison block 208. For example, if all the allocated RBGs of the PDSCH are placed fully or partially in the DL subband, then any actual RB not placed in the DL subband is not considered to be part of the DL allocation. If at least one RBG is not even partially placed in the DL subband, all RBs are considered part of the allocation. For a PUSCH transmission, the logic for the comparison (222) is similar, and for brevity, it will not be described herein.
  • the terminal device 102 transmits (210) the UL transmission (214) to the network device 104 based on the comparison (208) .
  • the network device 104 receives (212) the UL transmission (214) from the terminal device 102.
  • the network device 104 transmits (218) the DL transmission (220) from the terminal device 102.
  • the terminal device 102 receives (216) the DL transmission (220) from the network device 104 based on the comparison (208) .
  • FIG. 2 it can allow to indicate to a terminal device whether or not to allocate DL RBs within the UL subband and guardband (s) , without additional overhead, or allow to indicate to a terminal device whether or not to allocate UL RBs within the DL subband and guardband (s) , without additional overhead.
  • FIG. 3 illustrates an example illustration 300 of determining resource blocks based on comparison of positions of RBGs with positions of subbands in accordance with some example embodiments of the present disclosure.
  • FIG. 3 will be described with reference to FIG. 1A.
  • the scenario in FIG. 3 describes that the terminal device 102 has knowledge of the position of the UL subband, DL subband, and potential guard subband (s) in both time and frequency domain, and the terminal device 102 receives scheduling information for a DL transmission where the RBs are indicated in RA type 0 manner.
  • the terminal device 102 may determine whether or not apply rate matching of one or more radio resources based on the following logic which is an implicit rule.
  • the terminal device 102 may receive on the indicated RBGs resources without any ratematching operation to exclude one or more RBs outside the DL subband.
  • This case is shown in block 304 (case 1) .
  • RBG 2 and RBG 3 do not overlap with the DL subband. In this case, reception is allowed on the indicated RBs, without ratematching operation.
  • the terminal device 102 may exclude the RBs that do not overlap with the DL subband. For example, in block 302 (case 0) , all RBGs 0-2 fully or partially overlapping with the DL subband, RBs that overlap with the guardband are considered not part of the allocation, and ratematching operation is needed.
  • the network device 104 may indicate a threshold, for example as a number of RBs or a percentage of an RBG. If the scheduled RBs or percentage of an RBG outside the DL subband exceeds the threshold, the terminal device 102 may receive on the indicated resources without any ratematching operation. Similarly, for cases where the number of RBs or percentage of an RBG is not exceeded a ratio threshold, the terminal device 102 may exclude the RBs that do not overlap with the DL subband.
  • a threshold for example as a number of RBs or a percentage of an RBG.
  • this concept can be applied to UL transmissions, when SBFD operation is configured in flexible symbols and FDRA Type 0 is used.
  • the implicit rule can also be applied.
  • the terminal device may determine whether or not to transmit outside the UL subband.
  • the terminal device 102 may transmit on the indicated RBGs resources.
  • the network device 104 may indicate a threshold in terms of a number of RBs or a percentage of an RBG. If the number or percentage of scheduled RBs or percentage of an RBG outside the UL subband exceeds the threshold, the terminal device 102 may transmit on the indicated resources. That is, the symbol or slot is treated as a UL-only symbol/slot.
  • the terminal device 102 may not consider as valid the RBs that do not overlap with the UL subband.
  • FIG. 4 illustrates an example flowchart of a process 400 of determining resource blocks in accordance with some example embodiments of the present disclosure. It is understood that for simplicity, the example embodiments of the present disclosure will described with the DL PDSCH case thereafter, while the procedure also applies to UL scheduling by reverting the logic.
  • the terminal device 102 may receive information about the SBFD symbol or slot configuration such that it may know the split in frequency of UL and DL RBs as well as potential guardbands between UL and DL subbands.
  • the terminal device 102 may be indicated to receive a PDSCH on one or more RBGs.
  • the position of the RBGs is, for example, provided as a bitmap in the DCI scheduling the PDSCH.
  • the terminal device may compare the position of the RBGs with respect to the position of the DL and UL subbands. Based on the comparison, the process goes to block 408 or block 410.
  • the terminal device 102 may exclude any potential resource block of the DL PDSCH reception which is overlapping with either the UL subband or the guardband (s) .
  • the terminal device 102 may receive the PDSCH on the indicated RBGs, and without any ratematching or exclusion operation.
  • FIG. 5 illustrates another example flowchart of a process 500 of determining resource blocks in accordance with some example embodiments of the present disclosure. Similar, it is understood that for simplicity, the example embodiments of the present disclosure will described with the DL PDSCH case thereafter, while the procedure also applies to UL scheduling by reverting the logic.
  • the terminal device 102 may receive information about the SBFD symbol or slot configuration such that it may know the split in frequency of UL and DL RBs as well as potential guardbands between UL and DL subbands.
  • the terminal device 102 may be is indicated to receive a PDSCH on one or more RBGs.
  • the position of the RBGs is, for example, provided as a bitmap in the DCI scheduling the PDSCH.
  • a threshold indicative of a fixed number of RBs or a percentage of RBs in an RBG or a percentage of RBs in the total allocated RBs may be configured by the network device 104.
  • a threshold indicative of a fixed number of RBs or a percentage of RBs in an RBG or a percentage of RBs in the total allocated RBs may be configured by the network device 104.
  • the terminal device 102 receives the PDSCH based on the indicated resource allocation including the portion of PDSCH resource allocation on the UL subband.
  • the terminal device 102 receives the PDSCH based on the indicated resource allocation including including the portion of PDSCH resource allocation on the UL subband and the guardband.
  • the terminal device 102 may discard the portion of PDSCH on the UL subband. In some example embodiments, if the number of RBs or the percentage of RBs (with respect to an RBG or the total allocated RBs) scheduled for PDSCH in the UL subband and the guardband is less than the threshold, the terminal device 102 may discard the portion of PDSCH on the UL subband and the guardband. In some example embodiments, this alternative may require that the network device 104 signals the threshold to the terminal device 102.
  • a forbidden subband may be used to indicate both the UL subband and the guardband.
  • a forbidden subband may be used to indicate both the DL subband and the guardband. This is to simplify the description.
  • the terminal device 102 may assume transmission for all scheduled RBGs including RBs overlapping with the forbidden subband, and no rate matching may be performed. Otherwise, if at least one RBG is overlapping with both the DL and the forbidden subband, for each RBG which is overlapping with both the DL and the forbidden subband, if the percentage of the RBs in the RBG overlapping with the forbidden subband is higher than the threshold, the terminal device 102 may assume transmission in the forbidden subband, and no rate matching may be performed. Otherwise, the terminal device 102 may assume no transmission in the forbidden subband, and rate matching may be performed.
  • the terminal device 102 may be allocated X RBs, and Y RBs overlap with the forbidden subband. If Y/X > threshold, the terminal device 102 may not apply rate matching on RBs overlapping with the forbidden subband. If Y/X ⁇ threshold, the terminal device 102 may apply rate matching on RBs overlapping with the forbidden subband.
  • the terminal device 102 may be allocated X RBs, and Y RBs overlap with the DL subband. If Y/X ⁇ 1-threshold, the terminal device 102 may not apply rate matching on RBs overlapping with the forbidden subband. If Y/X > 1-threshold, the terminal device 102 may apply rate matching on RBs overlapping with the forbidden subband.
  • the terminal device 102 may be allocated X RBs, and Y RBs overlap with the forbidden subband. If Y > threshold, the terminal device 102 may not apply rate matching on RBs overlapping with the forbidden subband. If Y ⁇ threshold, the terminal device 102 may apply rate matching on RBs overlapping with the forbidden subband.
  • the terminal device 102 may be allocated X RBs, and Y RBs overlap with the DL subband. If Y ⁇ 1-threshold, the terminal device 102 may not apply rate matching on RBs overlapping with the forbidden subband. If Y> 1-threshold, the terminal device 102 may apply rate matching on RBs overlapping with the forbidden subband.
  • the terminal device 102 may be allocated X RBGs, and Y RBGs at least partially overlap with the forbidden subband. If Y/X > threshold, the terminal device 102 may not apply rate matching on RBs overlapping with the forbidden subband. If Y/X ⁇ threshold, the terminal device 102 may apply rate matching on RBs overlapping with the forbidden subband.
  • the terminal device 102 may be allocated X RBGs, and Y RBGs overlap the DL subband. If Y/X ⁇ 1-threshold, the terminal device 102 may not apply rate matching on RBs overlapping with the forbidden subband. If Y/X> 1-threshold, the terminal device 102 may apply rate matching on RBs overlapping with the forbidden subband.
  • FIG. 6 illustrates yet another example signaling process 600 for determining resource blocks for transmissions in accordance with some example embodiments of the present disclosure.
  • the UE 602 in FIG. 6 is an example of the terminal device 102 in FIG. 1A, which can communicate with a network device.
  • the gNB 604 in FIG. 6 is an example of the network device 104 in FIG. 1A, which can communicate with a terminal device.
  • the gNB 604 may transmit (608) configuration (610) of a threshold in terms of number of RBs to the UE 602.
  • the gNB 604 may transmit (608) configuration (610) of a threshold in terms of percentage of RBGs to the UE 602.
  • the gNB 604 may transmit (608) configuration (610) of a threshold in terms of a percentage of an RBG to the UE 602.
  • the UE 602 may receive (606) the configuration (610) of the threshold from the gNB 604.
  • the gNB 604 may transmit (614) a physical downlink control channel (PDCCH) (616) transmission with allocation not exceeding the threshold.
  • the UE 602 may receive (612) the PDCCH (616) transmission.
  • the gNB 604 may transmit (620) PDSCH (622) transmission to the UE 602.
  • the UE 602 may receive (618) the PDSCH (622) transmission.
  • the UE 602 may discard (624) the portion of PDSCH (622) within the forbidden subbands.
  • the gNB 604 may transmit (628) a physical downlink control channel (PDCCH) (630) transmission with allocation exceeding the threshold.
  • the UE 602 may receive (626) the PDCCH (630) transmission.
  • the gNB 604 may transmit (634) PDSCH (636) transmission to the UE 602.
  • the UE 602 may receive (632) the PDSCH (636) transmission.
  • the UE 602 may receive (638) the portion of the PDSCH (636) within the UL subband.
  • FIGS. 3 to 6 it can allow to indicate to the UE whether or not to allocate DL within the UL subband and guardband (s) , without additional overhead. It also provides a way of reusing existing signalling to indicate the UE that the allocation can be done in non-contiguous way, resulting in more RBs being allocated with the same signalling when compared to the rate-matching approach.
  • FIG. 7 illustrates an example flowchart of a method 700 implemented at a terminal device in accordance with some example embodiments of the present disclosure. Reference will be made in combination with FIG. 1A.
  • the terminal device 102 receives scheduling information for a DL transmission on a plurality of RBs in a time unit during which at least one DL subband are configured.
  • the terminal device 102 receives scheduling information for a UL transmission on a plurality of RBs in a time unit during which at least one UL subband are configured. In some example embodiments, both items are included.
  • the terminal device 102 compares at least one position of the plurality of RBs with a position of the at least one DL subband.
  • the terminal device 102 compares at least one position of the plurality of RBs with a position of the at least one UL subband. In some example embodiments, both items are included.
  • the terminal device 102 transmits the UL transmission based on the comparison.
  • the terminal device 102 receives the DL transmission based on the comparison. In some example embodiments, both items are included.
  • the terminal device 102 may receive the DL transmission on the plurality of RBs based on determining that a RBG among the at least one RBG is outside the at least one DL subband.
  • the terminal device 102 may determine that the RBG is outside the at least one DL subband in case that the RBG fully overlaps with at least one of the at least one UL subband, a guardband, or a set of forbidden resources for the DL transmission.
  • the terminal device 102 may exclude at least one RB outside the at least one DL subband from a set of RBs for receiving the DL transmission, in case that the at least one RBG at least partially overlaps with the at least one DL subband.
  • the terminal device 102 may transmit the UL transmission on the plurality of RBs in case that a RBG among the at least one RBG is outside the at least one UL subband.
  • the terminal device 102 may determine that the RBG is outside the at least one UL subband by determining that the RBG fully overlaps with at least one of the at least one DL subband or a guardband, or a set of forbidden resources for the UL transmission.
  • the terminal device 102 may exclude at least one RB outside the at least one UL subband from a set of RBs for transmitting the UL transmission in case that the at least one RBG at least partially overlaps with the at least one UL subband.
  • the terminal device 102 may transmit the UL transmission on the set of RBs.
  • the terminal device 102 may exclude the RBs outside the at least one DL subband from a set of RBs for receiving the DL transmission in case that a number of RBs outside the at least one DL subband among the plurality of RBs is below a threshold number.
  • the terminal device 102 may receive the DL transmission on the set of RBs.
  • the terminal device 102 may receive the DL transmission on the plurality of RBs in case that a number of RBs outside the at least one DL subband among the plurality of RBs is above a threshold number.
  • the terminal device 102 may exclude the RBs outside the at least one DL subband from a set of RBs for receiving the DL transmission in case that that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio.
  • the terminal device 102 may receive the DL transmission on the set of RBs.
  • the terminal device 102 may receive the DL transmission on the plurality of RBs in case that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in the RBG is above a threshold ratio.
  • the terminal device 102 may exclude RBs outside the at least one DL subband from a set of RBs for receiving the DL transmission in case that a ratio of RBGs outside the at least one DL subband to the plurality of RBGs is below a threshold ratio.
  • the terminal device 102 may receive the DL transmission on the set of RBs
  • the terminal device 102 may receive the DL transmission on the plurality of RBs in case that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio.
  • the terminal device 102 may exclude the RBs outside the at least one UL subband from a set of RBs for transmitting the UL transmission in case that a number of RBs outside the at least one UL subband among the plurality of RBs is below a threshold number.
  • the terminal device 102 may transmit the UL transmission on the set of RBs.
  • the terminal device 102 may transmit the UL transmission on the plurality of RBs in case that the number of RBs outside the at least one UL subband among the plurality of RBs is above the threshold number.
  • the terminal device 102 may exclude the RBs outside the at least one UL subband from a set of RBs for transmitting the UL transmission in case that a ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio.
  • the terminal device 102 may transmit the UL transmission on the set of RBs.
  • the terminal device 102 may transmitting the UL transmission on the plurality of RBs in case that the ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in the RBG is above the threshold ratio.
  • the terminal device 102 may exclude RBs outside the at least one UL subband from a set of RBs for transmitting the UL transmission in case that that a ratio of RBGs outside the at least one UL subband to the plurality of RBGs is below a threshold ratio.
  • the terminal device 102 may transmit the UL transmission on the set of RBs.
  • the terminal device 102 may transmit the UL transmission on the plurality of RBs in case that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio.
  • the terminal device 102 may receive at least one of the number threshold or the ratio threshold from the network device 104. In some example embodiments, the terminal device 102 may be configured or preconfigured with at least one of the number threshold or the ratio threshold. In some example embodiments, the time unit may comprise a slot or a symbol.
  • FIG. 8 illustrates an example flowchart of a method 800 implemented at a network device in accordance with some example embodiments of the present disclosure. Reference will be made in combination with FIG. 1A.
  • the network device 104 transmits scheduling information for a DL transmission on a plurality of RBs in a time unit during which at least one DL subband are configured.
  • the network device 104 transmits scheduling information for a UL transmission on a plurality of RBs in a time unit during which at least one UL subband are configured. In some example embodiments, both items are included.
  • the network device 104 compares at least one position of the plurality of RBs with a position of the at least one DL subband.
  • the network device 104 compares at least one position of the plurality of RBs with a position of the at least one UL subband. In some example embodiments, both items are included.
  • the network device 104 receives the UL transmission based on the comparison.
  • the network device 104 transmits the DL transmission based on the comparison. In some example embodiments, both items are included.
  • the network device 104 may transmit the DL transmission on the plurality of RBs based on determining that a RBG among the at least one RBG is outside the at least one DL subband. In some example embodiments, when the scheduling information is for the DL transmission and RA type 0, the network device 104 may determine that the RBG is outside the at least one DL subband in case that the RBG fully overlaps with at least one of the at least one UL subband, a guardband, or a set of forbidden resources for the DL transmission.
  • the network device 104 may exclude at least one RB outside the at least one DL subband from a set of RBs for transmitting the DL transmission, in case that the at least one RBG at least partially overlaps with the at least one DL subband.
  • the network device 104 may receive the UL transmission in case that a RBG among the at least one RBG is outside the at least one UL subband. In some example embodiments, when the scheduling information is for the UL transmission and RA type 0, the network device 104 may determine that the RBG is outside the at least one UL subband by determining that the RBG fully overlaps with at least one of the at least one DL subband or a guardband, or a set of forbidden resources for the UL transmission.
  • the network device 104 may exclude at least one RB outside the at least one UL subband from a set of RBs for receiving the UL transmission in case that the at least one RBG at least partially overlaps with the at least one UL subband.
  • the network device 104 may receive the UL transmission on the set of RBs.
  • the network device 104 may exclude the RBs outside the at least one DL subband from a set of RBs for transmitting the DL transmission in case that a number of RBs outside the at least one DL subband among the plurality of RBs is below a threshold number.
  • the network device 104 may transmit the DL transmission on the set of RBs.
  • the network device 104 may transmit the DL transmission on the plurality of RBs in case that a number of RBs outside the at least one DL subband among the plurality of RBs is above a threshold number.
  • the network device 104 may exclude the RBs outside the at least one DL subband from a set of RBs for transmitting the DL transmission in case that that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio.
  • the network device 104 may transmit the DL transmission on the set of RBs.
  • the network device 104 may transmit the DL transmission on the plurality of RBs in case that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in the RBG is above a threshold ratio.
  • the network device 104 may exclude RBs outside the at least one DL subband from a set of RBs for transmitting the DL transmission in case that a ratio of RBGs outside the at least one DL subband to the plurality of RBGs is below a threshold ratio.
  • the network device 104 may transmit the DL transmission on the set of RBs
  • the network device 104 may transmit the DL transmission on the plurality of RBs in case that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio.
  • the network device 104 may exclude the RBs outside the at least one UL subband from a set of RBs for receiving the UL transmission in case that a number of RBs outside the at least one UL subband among the plurality of RBs is below a threshold number.
  • the network device 104 may receive the UL transmission on the set of RBs.
  • the network device 104 may receive the UL transmission on the plurality of RBs in case that the number of RBs outside the at least one UL subband among the plurality of RBs is above the threshold number.
  • the network device 104 may exclude the RBs outside the at least one UL subband from a set of RBs for receiving the UL transmission in case that a ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio.
  • the network device 104 may receive the UL transmission on the set of RBs.
  • the network device 104 may receive the UL transmission on the plurality of RBs in case that the ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in the RBG is above the threshold ratio.
  • the network device 104 may exclude RBs outside the at least one UL subband from a set of RBs for receiving the UL transmission in case that that a ratio of RBGs outside the at least one UL subband to the plurality of RBGs is below a threshold ratio.
  • the network device 104 may receive the UL transmission on the set of RBs.
  • the network device 104 may receive the UL transmission on the plurality of RBs in case that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio.
  • the network device 104 may be configured or preconfigured with at least one of the number threshold or the ratio threshold.
  • the time unit may comprise a slot or a symbol.
  • the methods 700 and/or 800 can allow to indicate to a terminal device whether or not to allocate DL RBs within the UL subband and guardband (s) , without additional overhead, or allow to indicate to a terminal device whether or not to allocate UL RBs within the DL subband and guardband (s) , without additional overhead.
  • an apparatus capable of performing the method 700 may comprise means for performing the respective steps of the method 700.
  • the means may be implemented in any suitable form.
  • the means may be implemented in a circuitry or software module.
  • the apparatus may comprise means for receiving, from a network device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; means for comparing at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and means for transmitting the UL transmission or receive the DL transmission based on the comparison.
  • the scheduling information is for the DL transmission and is indicative of at least one RBG comprising the plurality of RBs
  • the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a RBG among the at least one RBG is outside the at least one DL subband, receiving the DL transmission on the plurality of RBs.
  • the means for determine that the RBG is outside the at least one DL subband may comprise means for determining that the RBG fully overlaps with at least one of the at least one UL subband, a guardband, or a set of forbidden resources for the DL transmission.
  • the scheduling information is for the DL transmission and is indicative of at least one RBG comprising the plurality of RBs, and the means for transmitting the UL transmission or receive the DL transmission means for based on determining that the at least one RBG at least partially overlaps with the at least one DL subband, excluding at least one RB outside the at least one DL subband from a set of RBs for receiving the DL transmission; and means for receiving the DL transmission on the set of RBs.
  • the scheduling information is for the UL transmission and is indicative of at least one RBG comprising the plurality of RBs
  • the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a RBG among the at least one RBG is outside the at least one UL subband, transmitting the UL transmission on the plurality of RBs.
  • the means for determining that the RBG is outside the at least one UL subband may comprise means for determining that the RBG fully overlaps with at least one of the at least one DL subband or a guardband, or a set of forbidden resources for the UL transmission.
  • the scheduling information is for the UL transmission and is indicative of at least one RBG comprising the plurality of RBs
  • the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that the at least one RBG at least partially overlaps with the at least one UL subband, excluding at least one RB outside the at least one UL subband from a set of RBs for transmitting the UL transmission; and means for transmitting the UL transmission on the set of RBs.
  • the scheduling information is for the DL transmission
  • the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a number of RBs outside the at least one DL subband among the plurality of RBs is below a threshold number, excluding the RBs outside the at least one DL subband from a set of RBs for receiving the DL transmission; and means for receiving the DL transmission on the set of RBs.
  • the scheduling information is for the DL transmission
  • the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a number of RBs outside the at least one DL subband among the plurality of RBs is above a threshold number, receiving the DL transmission on the plurality of RBs.
  • the scheduling information is for the DL transmission
  • the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio, excluding the RBs outside the at least one DL subband from a set of RBs for receiving the DL transmission; and means for receiving the DL transmission on the set of RBs.
  • the scheduling information is for the DL transmission
  • the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in the RBG is above a threshold ratio, receiving the DL transmission on the plurality of RBs.
  • the scheduling information is for the DL transmission and is indicative of a plurality of RBGs comprising the plurality of RBs
  • the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a ratio of RBGs outside the at least one DL subband to the plurality of RBGs is below a threshold ratio, excluding RBs outside the at least one DL subband from a set of RBs for receiving the DL transmission; and means for receiving the DL transmission on the set of RBs.
  • the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio, receiving the DL transmission on the plurality of RBs.
  • the scheduling information is for the UL transmission
  • the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a number of RBs outside the at least one UL subband among the plurality of RBs is below a threshold number, excluding the RBs outside the at least one UL subband from a set of RBs for transmitting the UL transmission; and means for transmitting the UL transmission on the set of RBs.
  • the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that the number of RBs outside the at least one UL subband among the plurality of RBs is above the threshold number, transmitting the UL transmission on the plurality of RBs.
  • the scheduling information is for the UL transmission
  • the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio, excluding the RBs outside the at least one UL subband from a set of RBs for transmitting the UL transmission; and means for transmitting the UL transmission on the set of RBs.
  • the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that the ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in the RBG is above the threshold ratio, transmitting the UL transmission on the plurality of RBs.
  • the scheduling information is for the UL transmission and is indicative of a plurality of RBGs comprising the plurality of RBs
  • the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a ratio of RBGs outside the at least one UL subband to the plurality of RBGs is below a threshold ratio, excluding RBs outside the at least one UL subband from a set of RBs for transmitting the UL transmission; and means for transmitting the UL transmission on the set of RBs.
  • the apparatus may comprise means for based on determining that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio, transmitting the UL transmission on the plurality of RBs.
  • the apparatus may comprise means for receiving, from the network device, at least one of the number threshold or the ratio threshold.
  • the time unit may comprise a slot or a symbol.
  • the apparatus may further comprise means for performing other steps in some example embodiments of the method 700.
  • the means comprises at least one processor and at least one memory including computer program code, the at least one memory and computer program code configured to, with the at least one processor, cause the performance of the apparatus.
  • an apparatus capable of performing the method 800 may comprise means for performing the respective steps of the method 800.
  • the means may be implemented in any suitable form.
  • the means may be implemented in a circuitry or software module.
  • the apparatus may comprise means for transmitting, to a terminal device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; means for comparing at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and means for transmitting the DL transmission or receive the UL transmission based on the comparison.
  • the scheduling information is for the DL transmission and is indicative of at least one RBG comprising the plurality of RBs
  • the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a RBG among the at least one RBG is outside the at least one DL subband, transmitting the DL transmission on the plurality of RBs.
  • the means for determine that the RBG is outside the at least one DL subband may comprise means for determining that the RBG fully overlaps with at least one of the at least one UL subband, a guardband, or a set of forbidden resources for the DL transmission.
  • the scheduling information is for the DL transmission and is indicative of at least one RBG comprising the plurality of RBs
  • the means for receiving the UL transmission or transmitting the DL transmission means for based on determining that the at least one RBG at least partially overlaps with the at least one DL subband, excluding at least one RB outside the at least one DL subband from a set of RBs for transmitting the DL transmission; and means for transmitting the DL transmission on the set of RBs.
  • the scheduling information is for the UL transmission and is indicative of at least one RBG comprising the plurality of RBs
  • the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a RBG among the at least one RBG is outside the at least one UL subband, receiving the UL transmission on the plurality of RBs.
  • the means for determining that the RBG is outside the at least one UL subband may comprise means for determining that the RBG fully overlaps with at least one of the at least one DL subband or a guardband, or a set of forbidden resources for the UL transmission.
  • the scheduling information is for the UL transmission and is indicative of at least one RBG comprising the plurality of RBs
  • the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that the at least one RBG at least partially overlaps with the at least one UL subband, excluding at least one RB outside the at least one UL subband from a set of RBs for receiving the UL transmission; and means for receiving the UL transmission on the set of RBs.
  • the scheduling information is for the DL transmission
  • the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a number of RBs outside the at least one DL subband among the plurality of RBs is below a threshold number, excluding the RBs outside the at least one DL subband from a set of RBs for transmitting the DL transmission; and means for transmitting the DL transmission on the set of RBs.
  • the scheduling information is for the DL transmission
  • the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a number of RBs outside the at least one DL subband among the plurality of RBs is above a threshold number, transmitting the DL transmission on the plurality of RBs.
  • the scheduling information is for the DL transmission
  • the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio, excluding the RBs outside the at least one DL subband from a set of RBs for transmitting the DL transmission; and means for transmitting the DL transmission on the set of RBs.
  • the scheduling information is for the DL transmission
  • the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in the RBG is above a threshold ratio, transmitting the DL transmission on the plurality of RBs.
  • the scheduling information is for the DL transmission and is indicative of a plurality of RBGs comprising the plurality of RBs
  • the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a ratio of RBGs outside the at least one DL subband to the plurality of RBGs is below a threshold ratio, excluding RBs outside the at least one DL subband from a set of RBs for transmitting the DL transmission; and means for transmitting the DL transmission on the set of RBs.
  • the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio, transmitting the DL transmission on the plurality of RBs.
  • the scheduling information is for the UL transmission
  • the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a number of RBs outside the at least one UL subband among the plurality of RBs is below a threshold number, excluding the RBs outside the at least one UL subband from a set of RBs for receiving the UL transmission; and means for receiving the UL transmission on the set of RBs.
  • the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that the number of RBs outside the at least one UL subband among the plurality of RBs is above the threshold number, receiving the UL transmission on the plurality of RBs.
  • the scheduling information is for the UL transmission
  • the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio, excluding the RBs outside the at least one UL subband from a set of RBs for receiving the UL transmission; and means for receiving the UL transmission on the set of RBs.
  • the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that the ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in the RBG is above the threshold ratio, receiving the UL transmission on the plurality of RBs.
  • the scheduling information is for the UL transmission and is indicative of a plurality of RBGs comprising the plurality of RBs
  • the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a ratio of RBGs outside the at least one UL subband to the plurality of RBGs is below a threshold ratio, excluding RBs outside the at least one UL subband from a set of RBs for receiving the UL transmission; and means for receiving the UL transmission on the set of RBs.
  • the apparatus may comprise means for based on determining that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio, receiving the UL transmission on the plurality of RBs.
  • the apparatus may comprise means for receiving, from the network device, at least one of the number threshold or the ratio threshold.
  • the time unit may comprise a slot or a symbol.
  • the apparatus may further comprise means for performing other steps in some example embodiments of the method 800.
  • the means comprises at least one processor and at least one memory including computer program code, the at least one memory and computer program code configured to, with the at least one processor, cause the performance of the apparatus.
  • FIG. 9 illustrates an example simplified block diagram of a device that is suitable for implementing embodiments of the present disclosure.
  • the device 900 may be provided to implement the communication device, for example the terminal device 102 as shown in FIG. 1A.
  • the device 900 includes one or more processors 910, one or more memories 920 may couple to the processor 910, and one or more communication modules 940 may couple to the processor 910.
  • the communication module 940 is for bidirectional communications.
  • the communication module 940 has at least one antenna to facilitate communication.
  • the communication interface may represent any interface that is necessary for communication with other network elements, for example the communication interface may be wireless or wireline to other network elements, or software based interface for communication.
  • the processor 910 may be of any type suitable to the local technical network and may include one or more of the following: general purpose computers, special purpose computers, microprocessors, digital signal processors (DSPs) and processors based on multicore processor architecture, as non-limiting examples.
  • the device 900 may have multiple processors, such as an application specific integrated circuit chip that is slaved in time to a clock which synchronizes the main processor.
  • the memory 920 may include one or more non-volatile memories and one or more volatile memories.
  • the non-volatile memories include, but are not limited to, a read only memory (ROM) 924, an electrically programmable read only memory (EPROM) , a flash memory, a hard disk, a compact disc (CD) , a digital video disk (DVD) , and other magnetic storage and/or optical storage.
  • the volatile memories include, but are not limited to, a random access memory (RAM) 922 and other volatile memories that will not last in the power-down duration.
  • a computer program 930 includes computer executable instructions that are executed by the associated processor 910.
  • the program 930 may be stored in the ROM 924.
  • the processor 910 may perform any suitable actions and processing by loading the program 930 into the RAM 922.
  • the embodiments of the present disclosure may be implemented by means of the program so that the device 900 may perform any process of the disclosure as discussed with reference to FIG. 2 to FIG. 8.
  • the embodiments of the present disclosure may also be implemented by hardware or by a combination of software and hardware.
  • the program 930 may be tangibly contained in a computer readable medium which may be included in the device 900 (such as in the memory 920) or other storage devices that are accessible by the device 900.
  • the device 900 may load the program 930 from the computer readable medium to the RAM 922 for execution.
  • the computer readable medium may include any types of tangible non-volatile storage, such as ROM, EPROM, a flash memory, a hard disk, CD, DVD, and the like.
  • FIG. 10 shows an example of the computer readable medium 1000 in form of CD or DVD.
  • the computer readable medium has the program 930 stored thereon.
  • various embodiments of the present disclosure may be implemented in hardware or special purpose circuits, software, logic or any combination thereof. Some aspects may be implemented in hardware, while other aspects may be implemented in firmware or software which may be executed by a controller, microprocessor or other computing device. While various aspects of embodiments of the present disclosure are illustrated and described as block diagrams, flowcharts, or using some other pictorial representations, it is to be understood that the block, apparatus, system, technique or method described herein may be implemented in, as non-limiting examples, hardware, software, firmware, special purpose circuits or logic, general purpose hardware or controller or other computing devices, or some combination thereof.
  • Program code for carrying out methods of the present disclosure may be written in any combination of one or more programming languages. These program codes may be provided to a processor or controller of a general purpose computer, special purpose computer, or other programmable data processing apparatus, such that the program codes, when executed by the processor or controller, cause the functions/operations specified in the flowcharts and/or block diagrams to be implemented.
  • the program code may execute entirely on a machine, partly on the machine, as a stand-alone software package, partly on the machine and partly on a remote machine or entirely on the remote machine or server.
  • the computer program codes or related data may be carried by any suitable carrier to enable the device, apparatus or processor to perform various processes and operations as described above.
  • Examples of the carrier include a signal, computer readable medium, and the like.
  • the computer readable medium may be a computer readable signal medium or a computer readable storage medium.
  • a computer readable medium may include but not limited to an electronic, magnetic, optical, electromagnetic, infrared, or semiconductor system, apparatus, or device, or any suitable combination of the foregoing. More specific examples of the computer readable storage medium would include an electrical connection having one or more wires, a portable computer diskette, a hard disk, a random access memory (RAM) , a read-only memory (ROM) , an erasable programmable read-only memory (EPROM or Flash memory) , an optical fiber, a portable compact disc read-only memory (CD-ROM) , an optical storage device, a magnetic storage device, or any suitable combination of the foregoing.
  • non-transitory is a limitation of the medium itself (i.e., tangible, not a signal) as opposed to a limitation on data storage persistency (e.g., RAM vs. ROM) .

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Abstract

Embodiments of the present disclosure relate to resource blocks determination. In an aspect, a terminal device receives, from a network device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured. The terminal device further compares at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband. The terminal device further transmits the UL transmission or receives the DL transmission based on the comparison. The embodiments of the present disclosure can allow to indicate to a terminal device whether or not to allocate DL/UL RBs within the UL/DL subbands and guardbands, without additional overhead.

Description

    RESOURCE BLOCKS DETERMINATION FOR TRANSMISSIONS FIELD
  • Various example embodiments generally relate to the field of communication, and in particular, to a terminal device, a network device, methods, apparatuses and a computer readable storage medium for resource blocks determination for transmissions.
  • BACKGROUND
  • With the development of communication technology, duplexing evolution including subband non-overlapping full duplex (SBFD) has been studied in a third generation partnership project (3GPP) release 18 (Rel-18) study item (SI) . Currently, 3GPP 5G NR supports two duplexing modes. One duplexing mode is frequency division dual (FDD) for paired bands and another duplexing mode is time division dual (TDD) for unpaired bands. In TDD, the time domain resource is split between downlink and uplink. Allocation of a limited time duration for the uplink in TDD would result in reduced coverage, increased latency, and reduced capacity.
  • SUMMARY
  • In general, example embodiments of the present disclosure provide a terminal device, a network device, methods, apparatuses and a computer readable storage medium for resource blocks determination for transmissions. For example, the solution provided by the example embodiments of the present disclosure can allow to indicate to a terminal device whether or not to allocate downlink (DL) RB (s) within the uplink (UL) subband and guardband (s) , without additional overhead, or allow to indicate to a terminal device whether or not to allocate UL RBs within the DL subband and guardband (s) , without additional overhead.
  • In a first aspect, there is provided a terminal device. The terminal device may comprise at least one processor; and at least one memory storing instructions that, when executed by the at least one processor, cause the terminal device at least to: receive, from a network device, scheduling information for a downlink (DL) transmission or an uplink (UL) transmission on a plurality of resource blocks (RBs) in a time unit during which at least one DL subband and at least one UL subband are configured; compare at least one position of  the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and transmit the UL transmission or receive the DL transmission based on the comparison.
  • In a second aspect, there is provided a network device. The network device may comprise at least one processor; and at least one memory storing instructions that, when executed by the at least one processor, cause the network device at least to: transmit, to a terminal device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; compare at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and transmit the DL transmission or receive the UL transmission based on the comparison.
  • In a third aspect, there is provided a method. The method may comprise: receiving, at a terminal device and from a network device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; comparing, at the terminal device, at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and transmitting, at the terminal device, the UL transmission or receive the DL transmission based on the comparison.
  • In a fourth aspect, there is provided a method. The method may comprise: transmitting, at a network device and to a terminal device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DLsubband and at least one UL subband are configured; comparing, at the network device, at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and transmitting, at the network device, the DL transmission or receive the UL transmission based on the comparison.
  • In a fifth aspect, there is provided an apparatus. The apparatus may comprise: means for receiving, at a terminal device and from a network device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; means for comparing at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and means for transmitting the UL transmission or receive the DL transmission based on the comparison.
  • In a sixth aspect, there is provided an apparatus of a network device. The apparatus may comprise: means for transmitting, at a network device and to a terminal device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; means for comparing, at the network device, at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and means for transmitting, at the network device, the DL transmission or receive the UL transmission based on the comparison.
  • In a seventh aspect, there is provided a non-transitory computer readable medium comprising program instructions for causing an apparatus to perform at least the method according to the third or fourth aspect.
  • In an eighth aspect, there is provided a computer program comprising instructions, which, when executed by an apparatus, cause the apparatus at least to: receive, from a network device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; compare at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and transmit the UL transmission or receive the DL transmission based on the comparison.
  • In a ninth aspect, there is provided a computer program comprising instructions, which, when executed by an apparatus, cause the apparatus at least to: transmit, to a terminal device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; compare at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and transmit the DL transmission or receive the UL transmission based on the comparison.
  • In a tenth aspect, there is provided a terminal device. The terminal device may comprise a receiving circuitry configured to receive, from a network device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; a comparing circuitry configured to compare at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and a  transmitting/receiving circuitry configured to transmit the UL transmission or receive the DL transmission based on the comparison.
  • In an eleventh aspect, there is provided a network device. The network device may comprise a transmitting circuitry configured to compare at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; a comparing circuitry configured to compare at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; a transmitting/receiving circuitry configured to transmit, to the terminal device, transmit the DL transmission or receive the UL transmission based on the comparison.
  • It is to be understood that the summary section is not intended to identify key or essential features of embodiments of the present disclosure, nor is it intended to be used to limit the scope of the present disclosure. Other features of the present disclosure will become easily comprehensible through the following description.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • Some example embodiments will now be described with reference to the accompanying drawings, in which:
  • FIG. 1A illustrates an example network environment in which example embodiments of the present disclosure may be implemented;
  • FIGS. 1B-1D illustrate example illustrations of frequency-time resource partitioning and time-time resource partitioning related to some example embodiments of the present disclosure;
  • FIG. 1E illustrates an example illustration of SBFD and non-SBFD slots related to some example embodiments of the present disclosure;
  • FIG. 1F illustrates an example illustration of unaligned boundaries between resource block groups (RBGs) and subbands in accordance with some example embodiments of the present disclosure;
  • FIG. 1G illustrates an example illustration of rate matching in SBFD slots in accordance with some example embodiments of the present disclosure;
  • FIG. 2 illustrates an example signaling process for determining resource blocks for transmissions in accordance with some example embodiments of the present disclosure;
  • FIG. 3 illustrates an example illustration of determining resource blocks based on comparison of positions of RBGs with positions of subbands in accordance with some example embodiments of the present disclosure;
  • FIG. 4 illustrates an example flowchart of a process of determining resource blocks in accordance with some example embodiments of the present disclosure;
  • FIG. 5 illustrates another example flowchart of a process of determining resource blocks in accordance with some example embodiments of the present disclosure;
  • FIG. 6 illustrates yet another example signaling process for determining resource blocks for transmissions in accordance with some example embodiments of the present
  • disclosure;
  • FIG. 7 illustrates an example flowchart of a method implemented at a terminal device in accordance with some example embodiments of the present disclosure;
  • FIG. 8 illustrates an example flowchart of a method implemented at a network device in accordance with some example embodiments of the present disclosure;
  • FIG. 9 illustrates an example simplified block diagram of a device that is suitable for implementing embodiments of the present disclosure; and
  • FIG. 10 illustrates an example block diagram of an example computer readable medium in accordance with some example embodiments of the present disclosure.
  • Throughout the drawings, the same or similar reference numerals represent the same or similar element.
  • DETAILED DESCRIPTION
  • Principle of the present disclosure will now be described with reference to some example embodiments. It is to be understood that these embodiments are described only for the purpose of illustration and help those skilled in the art to understand and implement the present disclosure, without suggesting any limitation as to the scope of the disclosure. The disclosure described herein may be implemented in various manners other than the ones described below.
  • In the following description and claims, unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skills in the art to which the present disclosure belongs.
  • References in the present disclosure to “one embodiment, ” “an embodiment, ” “an example embodiment, ” and the like indicate that the embodiment described may include a particular feature, structure, or characteristic, but it is not necessary that every embodiment includes the particular feature, structure, or characteristic. Moreover, such phrases are not necessarily referring to the same embodiment. Further, when a particular feature, structure, or characteristic is described in connection with an embodiment, it is submitted that it is within the knowledge of one skilled in the art to affect such feature, structure, or characteristic in connection with other embodiments whether or not explicitly described.
  • It may be understood that although the terms “first” and “second” etc. may be used herein to describe various elements, these elements should not be limited by these terms. These terms are only used to distinguish one element from another. For example, a first element could be termed a second element, and similarly, a second element could be termed a first element, without departing from the scope of example embodiments. As used herein, the term “and/or” includes any and all combinations of one or more of the listed terms.
  • The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of example embodiments. As used herein, the singular forms “a” , “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms “comprises” , “comprising” , “has” , “having” , “includes” and/or “including” , when used herein, specify the presence of stated features, elements, and/or components etc., but do not preclude the presence or addition of one or more other features, elements, components and/or combinations thereof. As used herein, “at least one of the following: <a list of two or more elements>” and “at least one of <a list of two or more elements>” and similar wording, where the list of two or more elements are joined by “and” or “or” , mean at least any one of the elements, or at least any two or more of the elements, or at least all the elements.
  • As used in this application, the term “circuitry” may refer to one or more or all of the following:
  • (a) hardware-only circuit implementations (such as implementations in only analog and/or digital circuitry) and
  • (b) combinations of hardware circuits and software, such as (as applicable) :
  • (i) a combination of analog and/or digital hardware circuit (s) with software/firmware and
  • (ii) any portions of hardware processor (s) with software (including digital signal processor (s) ) , software, and memory (ies) that work together to cause an apparatus, such as a mobile phone or server, to perform various functions) and
  • (c) hardware circuit (s) and or processor (s) , such as a microprocessor (s) or a portion of a microprocessor (s) that requires software (e.g., firmware) for operation, but the software may not be present when it is not needed for operation.
  • This definition of circuitry applies to all uses of this term in this application, including in any claims. As a further example, as used in this application, the term circuitry also covers an implementation of merely a hardware circuit or processor (or multiple processors) or portion of a hardware circuit or processor and its (or their) accompanying software and/or firmware. The term circuitry also covers, for example and if applicable to the particular claim element, a baseband integrated circuit or processor integrated circuit for a mobile device or a similar integrated circuit in server, a cellular network device, or other computing or network device.
  • As used herein, the term “communication network” refers to a network following any suitable communication standards, such as long term evolution (LTE) , LTE-advanced (LTE-A) , wideband code division multiple access (WCDMA) , high-speed packet access (HSPA) , narrow band Internet of things (NB-IoT) and so on. Furthermore, the communications between a terminal device and a network device in the communication network may be performed according to any suitable generation communication protocols, including, but not limited to, the third generation (3G) , the fourth generation (4G) , 4.5G, the fifth generation (5G) communication protocols, and/or beyond. Embodiments of the present disclosure may be applied in various communication systems. Given the rapid development in communications, there will of course also be future type communication technologies and systems with which the present disclosure may be embodied. It should not be seen as limiting the scope of the present disclosure to only the aforementioned system.
  • As used herein, the term “network device” refers to a node in a communication network via which a terminal device accesses the network and receives services therefrom. The network device may refer to a base station (BS) or an access point (AP) , for example, a node B (NodeB or NB) , an evolved NodeB (eNodeB or eNB) , a NR NB (also referred to as  a gNB) , a remote radio unit (RRU) , a radio header (RH) , a remote radio head (RRH) , a relay, a low power node such as a femto, a pico, and so forth, depending on the applied terminology and technology.
  • The term “terminal device” refers to any end device that may be capable of wireless communication. By way of example rather than limitation, a terminal device may also be referred to as a communication device, user equipment (UE) , a subscriber station (SS) , a portable subscriber station, a mobile station (MS) , or an access terminal (AT) . The terminal device may include, but not limited to, a mobile phone, a cellular phone, a smart phone, voice over IP (VoIP) phones, wireless local loop phones, a tablet, a wearable terminal device, a personal digital assistant (PDA) , portable computers, desktop computer, image capture terminal devices such as digital cameras, gaming terminal devices, music storage and playback appliances, vehicle-mounted wireless terminal devices, wireless endpoints, mobile stations, laptop-embedded equipment (LEE) , laptop-mounted equipment (LME) , USB dongles, smart devices, wireless customer-premises equipment (CPE) , an Internet of things (loT) device, a watch or other wearable, a head-mounted display (HMD) , a vehicle, a drone, a medical device and applications (e.g., remote surgery) , an industrial device and applications (e.g., a robot and/or other wireless devices operating in an industrial and/or an automated processing chain contexts) , a consumer electronics device, a device operating on commercial, a relay node, an integrated access and backhaul (IAB) node, and/or industrial wireless networks, and the like. In the following description, the terms “terminal device” , “communication device” , “terminal” , “user equipment” and “UE” may be used interchangeably.
  • As used herein, the term “resource” , “transmission resource” , “resource block” , “physical resource block” (PRB) , “uplink (UL) resource” or “downlink (DL) resource” may refer to any resource for performing a communication, for example, a communication between a terminal device and a network device, such as a resource in time domain, a resource in frequency domain, a resource in space domain, a resource in code domain, a resource in a combination of more than one domain or any other resource enabling a communication, and the like. In the following, a resource in time domain (such as, a subframe) will be used as an example of a transmission resource for describing some example embodiments of the present disclosure. It is noted that example embodiments of the present disclosure are equally applicable to other resources in other domains.
  • As discussed above, 3GPP supports two duplexing modes, which are FDD mode and TDD mode. Allocation of a limited time duration for the uplink in TDD would result in reduced coverage, increased latency, and reduced capacity. Therefore, 3GPP has agreed to initiate a Rel-18 study item (RP-213591) on the evolution of duplexing operation in NR. One of the objectives of the study item is to allow simultaneous DL and UL transmission on different physical RBs or subbands within an unpaired wideband NR cell. In the present disclosure, this duplexing scheme is referred to subband non-overlapping full duplex (SBFD) . In other sources, this duplexing scheme is also referred to as cross division duplexing (xDD) scheme or flexible division duplexing (FDU) .
  • For better understanding the present disclosure, some of the relevant objectives of the study item (RP-213591) in the study item description are shown in Table 1.
  • TABLE 1
  • From table 1 and description of SBFD operation, it can be observed that there are two slot types for both DL and UL transmissions. One of the two slot types is SBFD slots, during which the non-overlapping DL subbands and UL subband (s) both exist. Another of the two slot types is non-SBFD slots, during which the entire band is used for either DL or UL, for example, legacy or full DL slots, or legacy or full UL slots.
  • In SBFD slots, a guardband is expected to be placed between DL and UL RBs. This provides better isolation between UL and DL transmissions and is expected to be essential for reducing the impact of the self-interference. A reason may be that a gNB’s own DL transmissions and the gNB’s own UL reception. It also reduces the impact of the cross-link interference (CLI) between UE to UE links, and gNB to gNB links.
  • In recent 3GPP discussions regarding DL, UL subband and guardband indication, several SBFD operation modes have been studied including whether time and frequency locations of subbands for SBFD operation are known to the SBFD-aware UE or not. However, it has been agreed in 3GPP RAN1#110 meeting that at least the operation mode with time and frequency locations of subbands for SBFD operation being known to the SBFD-aware UE is prioritized. For example, the following agreement was reached in RAN1#111 meeting as shown in table 2.
  • TABLE 2
  • In addition to indicating the UE the frequency locations of DL subband (s) , there is a need that the UE has knowledge of the location of the UL subband (s) as well as the location of the guardband (s) . In principle, two out of the three among DL subband, UL  subband, guardband, can be signaled to the UE, while the remaining one can be implicitly derived by the UE.
  • In the above agreement shown in table 2, another point of discussion is whether UL and DL transmissions are allowed outside the UL and DL subband, respectively. While the former case (UL transmissions outside UL subband) is not allowed in the above agreement (at least for symbols configured as DL in TDD-UL-DL-ConfigCommon) , it is believed that it should be possible to have DL transmissions outside the DL subband, for example, to improve DL performance in case there is momentarily not much UL traffic to serve or to facilitate operation with legacy UEs which are not aware of the presence of an UL subband in DL symbols (as per TDD-UL-DL-ConfigCommon) . For instance, an SBFD symbol could be converted into a DL-only symbol, so that the gNB can dynamically adapt the configuration to traffic conditions.
  • In RAN1#111, the following agreement shown in table 3 was reached for SBFD symbols configured in flexible symbols.
  • TABLE 3
  • As shown in table 3, for SBFD operation in symbols configured as flexible, there is no decision yet on whether UL transmissions outside the UL subband are possible (option 2) . It is also discussed whether to allow the flexible symbol to be converted to full-UL or full-DL.
  • Regarding the indication of resource blocks for PDSCH and physical uplink shared channel (PUSCH) allocations, the 5G NR supports two frequency-domain resource allocation (RA) types applicable to both PDSCH and PUSCH resource allocation in frequency domain namely Resource Allocation (RA) Type 0 and Resource Allocation (RA) Type 1. RA type 0 as described in technical specification (TS) 38.214, Sec 5.1.2.1 and 6.1.2.1 is a bitmap based resource allocation, and RA type 1 as described in technical specification (TS) 38.214, Sec 5.1.2.2 and 6.1.2.2 is consecutive RBs are allocated to the UE by indicating the start RB and number of RBs.
  • For PDSCH resource allocation (RA) type 0, the resource blocks are allocated with a resolution of one resource block group (RBG) . There are currently two RBG sizes defined for each BWP size range, as defined in TS 38.214, but can be as large as 16 RBs for BWPs larger than 145 RBs.
  • For SBFD, the coarse scheduling granularity may result in unaligned boundaries between the RBGs and the DL, guardband or UL subband (s) which makes it difficult for the resource allocation decisions at the gNB. This problem is under study in 3GPP as noted in the following agreement in table 4.
  • TABLE 4
  • Regarding RBG for PDSCH RA type 0, for a downlink RBGs allocation, if the DL subband allocation granularity and RBGs are aligned, DL PDSCH allocations can be scheduled without any problem. However, if the borders of the RBGs are not aligned with the UL subband, RBs in the UL subband could not be used for UL transmissions (as they collide with the guardband) . If the RBG is placed outside DL subband, there is a waste of  RBs in both UL and DL direction. Furthermore, this problem still exists even if there is no guardband known to the UE (i.e. UL and DL subbands are contiguous at least from UE’s perspective) .
  • Another issue is being discussed in RAN1 regarding the RA Type 1, in which a contiguous frequency allocation is given by a start RB and a number of RBs. Currently, non-contiguous allocation in RA type 1 is not allowed, and different options have been discussed in RAN1 meetings for RA type 1 if SBFD operation is configured with two DL subbands in the borders of the BWP, and one UL subband in the center of the BWP (DUD) .
  • As in the RA type 0 discussion, rate matching is being proposed for the RA type 1. Another option is to assume a “mirror image” allocation in the DL subbands, in which the frequency resource allocation in one subband is mirrored into the other. In a rate matching approach, and for RA type 1, the gNB indicates the frequency domain resource allocation (FDRA) by a resource indicator value (RIV) [6, TS 38.214] , which indicates a starting RB and a number of allocated RBs. For example, the start RB is indicated by S and the size of the allocation is indicated by N. For the DL transmission, if some RBs indexes overlap with the forbidden subbands (UL and guard bands) , the UE combines the initial DL allocation with the knowledge of the location of the guardbands, UL subband and DL subbands to derive the available resources and the final allocation.
  • Considering the UE is aware of the locations of the DL, UL and the guardband, a rate matching can be performed to exclude the invalid RBs of the corresponding allocation. However, there is a need that allowing DL transmissions outside the DL subband in the absence of UL traffic. If there is no UL transmission at all in a slot, there is no big reason to keep the RBs in the guardband unused, as there is no self-interference problem nor gNB-gNB CLI problem if some sort of coordination is assumed between cells or sectors.
  • Therefore, for a PDSCH/PUSCH scheduled with resource allocation Type 0 or Type 1, there is a need to indicate to the UE whether to consider or not consider RBs outside the DL or UL subbands as part of the PDSCH/PUSCH allocation.
  • Example embodiments of the present disclosure provide a solution for determining resource blocks for transmissions. According to embodiments of the present disclosure, a terminal device receives, from a network device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured. The terminal device further  compares at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband. The terminal device further transmits the UL transmission or receives the DL transmission based on the comparison. It is understood that the above procedure steps may work together, in a flow of operations as described in the next section, partly together or independently of each other.
  • The example embodiments for determining resource blocks for transmissions as provided in the present disclosure can allow to indicate to a terminal device whether or not to allocate downlink (DL) RB (s) within the uplink (UL) subband and guardband (s) , without additional overhead, or allow to indicate to a terminal device whether or not to allocate UL within the DL subband and guardband (s) , without additional overhead. Principles and some example embodiments of the present disclosure will be described in detail below with reference to the accompanying drawings.
  • For illustrative purposes, principle and example embodiments of the present disclosure for determining resource blocks for transmissions will be described below with reference to FIG. 1A-FIG. 10. However, it is to be noted that these embodiments are given to enable the skilled in the art to understand inventive concepts of the present disclosure and implement the solution as proposed herein, and not intended to limit scope of the present application in any way.
  • Reference is made to FIG. 1A, which illustrates an example network environment 100A in which example embodiments of the present disclosure may be implemented. The network environment 100A, which may be a part of a communication network, includes a terminal device 102 and a network device 104.
  • As illustrated in FIG. 1A, the terminal device 102 may also be referred as a user equipment 102 or a UE 102. The network device 104 may also be referred as a gNB 104. The terminal device 102 and the network device 104 can communicate (106) with each other. The terminal device 102 may receive resource allocation type 0 or resource allocation type 1 from the network device 104. For type 0, the resource blocks are allocated with a resolution of one resource block group (RBG) . For example, a RBG may comprise eight RBs. For type 1, contiguous frequency allocation is given by a start RB and a number of RBs. For example, for a PDSCH resource allocation, an initial RB may be the lowest RB in the DL subband and number of RBs may be eight.
  • Reference is made to FIGS. 1B-1D, which illustrate example illustrations of frequency-time resource partitioning and time-time resource partitioning related to some example embodiments of the present disclosure. FIG. 1B shows an illustration 100B of FDD. In FDD, there are paired bands such as DL band 108 and UL band 110. In frequency domain, the DL band 108 and UL band 110 are split by a guard band.
  • FIG. 1C shows an illustration 100C of TDD. In TDD, the time domain resource is split between downlink 112 and uplink 114. It can be seen that the uplink 112 has a shorter length than the downlink 114. Allocation of a limited time duration for the uplink in TDD would result in reduced coverage, increased latency, and reduced capacity.
  • FIG. 1D shows an illustration 100D of FDU. In FDU, it is allowed that simultaneous DL and UL transmission on different PRBs or subbands within an unpaired wideband NR cell. For example, DL 116, DL 118 and UL 120 are allowed to simultaneously duplexing.
  • Reference is made to FIG. 1E, which illustrates an example illustration 100E of SBFD and non-SBFD slots related to some example embodiments of the present disclosure. As illustrated in FIG. 1E, legend 122 represents a DL resource. Legend 124 represents a guard resource. Legend 128 represents a UL resource. In SBFD slots 128, the non-overlapping DL subbands and UL subband (s) both exist. In non-SBFD slots 130, the entire band is used for DL. In non-SBFD slots 132, the entire band is used for UL. SBFD slots or non-SBFD slots may comprise a same or different number of slots.
  • Reference is made to FIG. 1F, which illustrates an example illustration 100F of unaligned boundaries between RBGs and subbands in accordance with some example embodiments of the present disclosure for Type 0 resource allocation. As illustrated in Figure 1F. For example, a guardband has a size of 5 RBs while the RBG has a size of 8 RBs. If the guardband and RBGs are aligned as shown in block 136, DL PDSCH allocations can be scheduled without any problem, while 3 RBs in the UL subband could not be used for UL transmissions (as this RBG collides with the guardband as shown in block 138) . If the RBG is placed as illustrated with block 140, there is a waste of RBs in both UL and DL direction.
  • FIG. 1G illustrates an example illustration 100G of rate matching in SBFD slots in accordance with some example embodiments of the present disclosure for Type 1 resource allocation. As shown in FIG. 1G, the start RB is indicated by S and S is equal to 4 and the  size of the allocation of RBs is indicated by N, where N is 14. RBs indexes from 7 to 15 are overlapping with the forbidden subbands (UL 144 and guard bands U1 and U2) . The first RB of the forbidden subband (index 7) is indicated as U1, and the last RB (index 15) as U2. A UE may combine the initial DL allocation with the knowledge of the location of the guardbands, UL subband 144 and DL subbands 142 to derive the available resources and the final allocation. In this example, the final allocation consists of N+ (U2-U1+1) = 5 RBs. Thus, for example, a rate matching may be needed for this case. As another example which will be described hereafter, the UE may consider or not consider RBs outside the DL subband as part of the PDSCH allocation.
  • Reference is made to FIG. 2, which illustrates an example signaling process 200 for determining resource blocks for transmissions in accordance with some example embodiments of the present disclosure. As shown, the network device 104 transmits (204) scheduling information (206) to the terminal device 102. The scheduling information (206) is for a DL transmission or a UL transmission on a plurality of RBs in a time unit. The time unit may comprise a slot or symbol. During the time unit, at least one DL subband and at least one UL subband are configured. For example, in a manner of RA type 0 or RA type 1.
  • The terminal device 102 receives (202) the scheduling information (206) from the network device 104. The terminal device 102 compares (208) at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband. For example, for a RA type 0 manner, if at least one of the indicated RBGs do not have any overlap with the DL subband, the terminal device 102 may receive on the indicated RBGs resources without any ratematching operation to exclude one or more RBs outside the DL subband. As another example, for a case where all the indicated RBGs are at least partially overlapping with the DL subband, the terminal device 102 may exclude the RBs that do not overlap with the DL subband.
  • For a PDSCH transmission, the logic for the comparison (208) may be that if all the allocated RBGs of the PDSCH are placed fully or partially in the DL subband, it is implicitly assumed that the network device 104 wants to ‘respect’ the guardband, thus any actual RB not placed in the DL subband is not considered to be part of the DL allocation. While if at least one RBG is not even partially placed in the DL subband, the terminal device 102 can assume that the network device 104 wants to use the all indicated RBGs for the PDSCH allocation of the symbol for the terminal and all RBs are considered part of the  allocation. For a PUSCH transmission, the logic for the comparison (208) is similar, and for brevity, it will not be described herein.
  • The network device 104 compares (222) at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband. For example, for a RA type 0 manner, if at least one of the indicated RBGs do not have any overlap with the DL subband, the network device 104 may transmit on the indicated RBGs resources without any ratematching operation to exclude one or more RBs outside the DL subband. As another example, for a case where all the indicated RBGs are at least partially overlapping with the DL subband, the network device 104 may exclude the RBs that do not overlap with the DL subband.
  • The comparison (222) logics for both PDSCH and PUSCH transmission are similar as described with the comparison block 208. For example, if all the allocated RBGs of the PDSCH are placed fully or partially in the DL subband, then any actual RB not placed in the DL subband is not considered to be part of the DL allocation. If at least one RBG is not even partially placed in the DL subband, all RBs are considered part of the allocation. For a PUSCH transmission, the logic for the comparison (222) is similar, and for brevity, it will not be described herein.
  • For the scheduling information (206) is for a UL transmission, the terminal device 102 transmits (210) the UL transmission (214) to the network device 104 based on the comparison (208) . The network device 104 receives (212) the UL transmission (214) from the terminal device 102.
  • For the scheduling information (206) is for a DL transmission, the network device 104 transmits (218) the DL transmission (220) from the terminal device 102. The terminal device 102 receives (216) the DL transmission (220) from the network device 104 based on the comparison (208) .
  • By implementing FIG. 2, it can allow to indicate to a terminal device whether or not to allocate DL RBs within the UL subband and guardband (s) , without additional overhead, or allow to indicate to a terminal device whether or not to allocate UL RBs within the DL subband and guardband (s) , without additional overhead.
  • Reference is made to FIG. 3, which illustrates an example illustration 300 of determining resource blocks based on comparison of positions of RBGs with positions of  subbands in accordance with some example embodiments of the present disclosure. FIG. 3 will be described with reference to FIG. 1A.
  • The scenario in FIG. 3 describes that the terminal device 102 has knowledge of the position of the UL subband, DL subband, and potential guard subband (s) in both time and frequency domain, and the terminal device 102 receives scheduling information for a DL transmission where the RBs are indicated in RA type 0 manner. For example, For a PDSCH reception scheduled in SBFD slots in symbols configured as DL or flexible in TDD-UL-DL-ConfigCommon or TDD-UL-DL-ConfigDedicated, the terminal device 102 may determine whether or not apply rate matching of one or more radio resources based on the following logic which is an implicit rule.
  • In some example embodiments, if at least one of the indicated RBGs do not have any overlap with the DL subband, the terminal device 102 may receive on the indicated RBGs resources without any ratematching operation to exclude one or more RBs outside the DL subband. This case is shown in block 304 (case 1) . As shown, RBG 2 and RBG 3 do not overlap with the DL subband. In this case, reception is allowed on the indicated RBs, without ratematching operation.
  • In some example embodiments, if all the indicated RBGs are at least partially overlapping with the DL subband, the terminal device 102 may exclude the RBs that do not overlap with the DL subband. For example, in block 302 (case 0) , all RBGs 0-2 fully or partially overlapping with the DL subband, RBs that overlap with the guardband are considered not part of the allocation, and ratematching operation is needed.
  • In some example embodiments, the network device 104 may indicate a threshold, for example as a number of RBs or a percentage of an RBG. If the scheduled RBs or percentage of an RBG outside the DL subband exceeds the threshold, the terminal device 102 may receive on the indicated resources without any ratematching operation. Similarly, for cases where the number of RBs or percentage of an RBG is not exceeded a ratio threshold, the terminal device 102 may exclude the RBs that do not overlap with the DL subband.
  • In a similar manner, this concept can be applied to UL transmissions, when SBFD operation is configured in flexible symbols and FDRA Type 0 is used. For a PUSCH transmission scheduled in SBFD slots or symbols, the implicit rule can also be applied. In  the PUSCH transmission scenario, the terminal device may determine whether or not to transmit outside the UL subband.
  • As an example, if at least one of the indicated RBGs (frequency resources) do not have any overlap with the UL subband, the terminal device 102 may transmit on the indicated RBGs resources. In some example embodiments, the network device 104 may indicate a threshold in terms of a number of RBs or a percentage of an RBG. If the number or percentage of scheduled RBs or percentage of an RBG outside the UL subband exceeds the threshold, the terminal device 102 may transmit on the indicated resources. That is, the symbol or slot is treated as a UL-only symbol/slot.
  • Otherwise, in the cases where all the indicated RBGs have at least partial or full overlap with the UL subband, or the threshold in terms of number or percentage of RBGs/REs is not exceeded, the terminal device 102 may not consider as valid the RBs that do not overlap with the UL subband.
  • Reference is made to FIG. 4, which illustrates an example flowchart of a process 400 of determining resource blocks in accordance with some example embodiments of the present disclosure. It is understood that for simplicity, the example embodiments of the present disclosure will described with the DL PDSCH case thereafter, while the procedure also applies to UL scheduling by reverting the logic.
  • At 402, the terminal device 102 may receive information about the SBFD symbol or slot configuration such that it may know the split in frequency of UL and DL RBs as well as potential guardbands between UL and DL subbands. At 404, the terminal device 102 may be indicated to receive a PDSCH on one or more RBGs. The position of the RBGs is, for example, provided as a bitmap in the DCI scheduling the PDSCH.
  • At 406, the terminal device may compare the position of the RBGs with respect to the position of the DL and UL subbands. Based on the comparison, the process goes to block 408 or block 410. At 408, if all the RBGs of the PDSCH at least partially or fully overlap with the DL subband, then the terminal device 102 may exclude any potential resource block of the DL PDSCH reception which is overlapping with either the UL subband or the guardband (s) . At 410, if at least one RBG has no overlap with the DL subband, the terminal device 102 may receive the PDSCH on the indicated RBGs, and without any ratematching or exclusion operation.
  • Reference is made to FIG. 5, which illustrates another example flowchart of a process 500 of determining resource blocks in accordance with some example embodiments of the present disclosure. Similar, it is understood that for simplicity, the example embodiments of the present disclosure will described with the DL PDSCH case thereafter, while the procedure also applies to UL scheduling by reverting the logic.
  • At 502, the terminal device 102 may receive information about the SBFD symbol or slot configuration such that it may know the split in frequency of UL and DL RBs as well as potential guardbands between UL and DL subbands.
  • At 504, the terminal device 102 may be is indicated to receive a PDSCH on one or more RBGs. The position of the RBGs is, for example, provided as a bitmap in the DCI scheduling the PDSCH. A threshold indicative of a fixed number of RBs or a percentage of RBs in an RBG or a percentage of RBs in the total allocated RBs may be configured by the network device 104.
  • At 506, a threshold indicative of a fixed number of RBs or a percentage of RBs in an RBG or a percentage of RBs in the total allocated RBs may be configured by the network device 104.
  • At 508, if the number of RBs or the percentage of RBs (with respect to an RBG or the total allocated RBs) scheduled for PDSCH in the UL subband is greater than or equal to the threshold, the terminal device 102 receives the PDSCH based on the indicated resource allocation including the portion of PDSCH resource allocation on the UL subband.
  • In some example embodiments, if the number of RBs or the percentage of RBs (with respect to an RBG or the total allocated RBs) scheduled for PDSCH in the UL subband and the guardband is greater than or equal to the threshold, the terminal device 102 receives the PDSCH based on the indicated resource allocation including including the portion of PDSCH resource allocation on the UL subband and the guardband.
  • At 510, if the number of RBs or the percentage of RBs (with respect to an RBG or the total allocated RBs) scheduled for PDSCH in the UL subband is less than the threshold, the terminal device 102 may discard the portion of PDSCH on the UL subband. In some example embodiments, if the number of RBs or the percentage of RBs (with respect to an RBG or the total allocated RBs) scheduled for PDSCH in the UL subband and the guardband is less than the threshold, the terminal device 102 may discard the portion of PDSCH on the UL subband and the guardband. In some example embodiments, this  alternative may require that the network device 104 signals the threshold to the terminal device 102.
  • In some example embodiments, for a DL transmission, a forbidden subband may be used to indicate both the UL subband and the guardband. For a UL transmission, a forbidden subband may be used to indicate both the DL subband and the guardband. This is to simplify the description.
  • Continuing with scenario of DL transmission, in some example embodiments, if at least one RBG is fully overlapping with the forbidden subband, the terminal device 102 may assume transmission for all scheduled RBGs including RBs overlapping with the forbidden subband, and no rate matching may be performed. Otherwise, if at least one RBG is overlapping with both the DL and the forbidden subband, for each RBG which is overlapping with both the DL and the forbidden subband, if the percentage of the RBs in the RBG overlapping with the forbidden subband is higher than the threshold, the terminal device 102 may assume transmission in the forbidden subband, and no rate matching may be performed. Otherwise, the terminal device 102 may assume no transmission in the forbidden subband, and rate matching may be performed.
  • In some example embodiments, the terminal device 102 may be allocated X RBs, and Y RBs overlap with the forbidden subband. If Y/X > threshold, the terminal device 102 may not apply rate matching on RBs overlapping with the forbidden subband. If Y/X <threshold, the terminal device 102 may apply rate matching on RBs overlapping with the forbidden subband.
  • In some example embodiments, the terminal device 102 may be allocated X RBs, and Y RBs overlap with the DL subband. If Y/X <1-threshold, the terminal device 102 may not apply rate matching on RBs overlapping with the forbidden subband. If Y/X > 1-threshold, the terminal device 102 may apply rate matching on RBs overlapping with the forbidden subband.
  • In some example embodiments, the terminal device 102 may be allocated X RBs, and Y RBs overlap with the forbidden subband. If Y > threshold, the terminal device 102 may not apply rate matching on RBs overlapping with the forbidden subband. If Y<threshold, the terminal device 102 may apply rate matching on RBs overlapping with the forbidden subband.
  • In some example embodiments, the terminal device 102 may be allocated X RBs, and Y RBs overlap with the DL subband. If Y < 1-threshold, the terminal device 102 may not apply rate matching on RBs overlapping with the forbidden subband. If Y> 1-threshold, the terminal device 102 may apply rate matching on RBs overlapping with the forbidden subband.
  • In some example embodiments, the terminal device 102 may be allocated X RBGs, and Y RBGs at least partially overlap with the forbidden subband. If Y/X > threshold, the terminal device 102 may not apply rate matching on RBs overlapping with the forbidden subband. If Y/X< threshold, the terminal device 102 may apply rate matching on RBs overlapping with the forbidden subband.
  • In some example embodiments, the terminal device 102 may be allocated X RBGs, and Y RBGs overlap the DL subband. If Y/X < 1-threshold, the terminal device 102 may not apply rate matching on RBs overlapping with the forbidden subband. If Y/X> 1-threshold, the terminal device 102 may apply rate matching on RBs overlapping with the forbidden subband.
  • Reference is made to FIG. 6, which illustrates yet another example signaling process 600 for determining resource blocks for transmissions in accordance with some example embodiments of the present disclosure. The UE 602 in FIG. 6 is an example of the terminal device 102 in FIG. 1A, which can communicate with a network device. The gNB 604 in FIG. 6 is an example of the network device 104 in FIG. 1A, which can communicate with a terminal device.
  • In some example embodiments, the gNB 604 may transmit (608) configuration (610) of a threshold in terms of number of RBs to the UE 602. The gNB 604 may transmit (608) configuration (610) of a threshold in terms of percentage of RBGs to the UE 602. In some example embodiments, the gNB 604 may transmit (608) configuration (610) of a threshold in terms of a percentage of an RBG to the UE 602. The UE 602 may receive (606) the configuration (610) of the threshold from the gNB 604.
  • In some example embodiments, the gNB 604 may transmit (614) a physical downlink control channel (PDCCH) (616) transmission with allocation not exceeding the threshold. The UE 602 may receive (612) the PDCCH (616) transmission. The gNB 604 may transmit (620) PDSCH (622) transmission to the UE 602. The UE 602 may receive  (618) the PDSCH (622) transmission. The UE 602 may discard (624) the portion of PDSCH (622) within the forbidden subbands.
  • In some example embodiments, the gNB 604 may transmit (628) a physical downlink control channel (PDCCH) (630) transmission with allocation exceeding the threshold. The UE 602 may receive (626) the PDCCH (630) transmission. The gNB 604 may transmit (634) PDSCH (636) transmission to the UE 602. The UE 602 may receive (632) the PDSCH (636) transmission. The UE 602 may receive (638) the portion of the PDSCH (636) within the UL subband.
  • By implementing FIGS. 3 to 6, it can allow to indicate to the UE whether or not to allocate DL within the UL subband and guardband (s) , without additional overhead. It also provides a way of reusing existing signalling to indicate the UE that the allocation can be done in non-contiguous way, resulting in more RBs being allocated with the same signalling when compared to the rate-matching approach.
  • It is to be understood that the solution for resource blocks determination as provided in the present disclosure can also apply by the network device 104. For a PUSCH transmission, the process for the comparison and resource blocks determination is similar. For simplicity, it will not be described in detail, but without limiting the scope of the present disclosure.
  • Reference is made to FIG. 7, which illustrates an example flowchart of a method 700 implemented at a terminal device in accordance with some example embodiments of the present disclosure. Reference will be made in combination with FIG. 1A.
  • At 702, the terminal device 102 receives scheduling information for a DL transmission on a plurality of RBs in a time unit during which at least one DL subband are configured. The terminal device 102 receives scheduling information for a UL transmission on a plurality of RBs in a time unit during which at least one UL subband are configured. In some example embodiments, both items are included.
  • At 704, the terminal device 102 compares at least one position of the plurality of RBs with a position of the at least one DL subband. The terminal device 102 compares at least one position of the plurality of RBs with a position of the at least one UL subband. In some example embodiments, both items are included.
  • At 706, the terminal device 102 transmits the UL transmission based on the comparison. The terminal device 102 receives the DL transmission based on the comparison. In some example embodiments, both items are included.
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 0, the terminal device 102 may receive the DL transmission on the plurality of RBs based on determining that a RBG among the at least one RBG is outside the at least one DL subband.
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 0, the terminal device 102 may determine that the RBG is outside the at least one DL subband in case that the RBG fully overlaps with at least one of the at least one UL subband, a guardband, or a set of forbidden resources for the DL transmission.
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 0, the terminal device 102 may exclude at least one RB outside the at least one DL subband from a set of RBs for receiving the DL transmission, in case that the at least one RBG at least partially overlaps with the at least one DL subband.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 0, the terminal device 102 may transmit the UL transmission on the plurality of RBs in case that a RBG among the at least one RBG is outside the at least one UL subband.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 0, the terminal device 102 may determine that the RBG is outside the at least one UL subband by determining that the RBG fully overlaps with at least one of the at least one DL subband or a guardband, or a set of forbidden resources for the UL transmission.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 0, the terminal device 102 may exclude at least one RB outside the at least one UL subband from a set of RBs for transmitting the UL transmission in case that the at least one RBG at least partially overlaps with the at least one UL subband. The terminal device 102 may transmit the UL transmission on the set of RBs.
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 1, the terminal device 102 may exclude the RBs outside the at least one DL subband from a set of RBs for receiving the DL transmission in case that a  number of RBs outside the at least one DL subband among the plurality of RBs is below a threshold number. The terminal device 102 may receive the DL transmission on the set of RBs.
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 1, the terminal device 102 may receive the DL transmission on the plurality of RBs in case that a number of RBs outside the at least one DL subband among the plurality of RBs is above a threshold number.
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 1, the terminal device 102 may exclude the RBs outside the at least one DL subband from a set of RBs for receiving the DL transmission in case that that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio. The terminal device 102 may receive the DL transmission on the set of RBs.
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 1, the terminal device 102 may receive the DL transmission on the plurality of RBs in case that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in the RBG is above a threshold ratio.
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 0, the terminal device 102 may exclude RBs outside the at least one DL subband from a set of RBs for receiving the DL transmission in case that a ratio of RBGs outside the at least one DL subband to the plurality of RBGs is below a threshold ratio. The terminal device 102 may receive the DL transmission on the set of RBs
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 0, the terminal device 102 may receive the DL transmission on the plurality of RBs in case that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 1, the terminal device 102 may exclude the RBs outside the at least one UL subband from a set of RBs for transmitting the UL transmission in case that a number of RBs outside the at least one UL subband among the plurality of RBs is below a threshold number. The terminal device 102 may transmit the UL transmission on the set of RBs.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 1, the terminal device 102 may transmit the UL transmission on the plurality of RBs in case that the number of RBs outside the at least one UL subband among the plurality of RBs is above the threshold number.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 1, the terminal device 102 may exclude the RBs outside the at least one UL subband from a set of RBs for transmitting the UL transmission in case that a ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio. The terminal device 102 may transmit the UL transmission on the set of RBs.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 1, the terminal device 102 may transmitting the UL transmission on the plurality of RBs in case that the ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in the RBG is above the threshold ratio.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 0, the terminal device 102 may exclude RBs outside the at least one UL subband from a set of RBs for transmitting the UL transmission in case that that a ratio of RBGs outside the at least one UL subband to the plurality of RBGs is below a threshold ratio. The terminal device 102 may transmit the UL transmission on the set of RBs.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 0, the terminal device 102 may transmit the UL transmission on the plurality of RBs in case that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio.
  • In some example embodiments, the terminal device 102 may receive at least one of the number threshold or the ratio threshold from the network device 104. In some example embodiments, the terminal device 102 may be configured or preconfigured with at least one of the number threshold or the ratio threshold. In some example embodiments, the time unit may comprise a slot or a symbol.
  • Reference is made to FIG. 8, which illustrates an example flowchart of a method 800 implemented at a network device in accordance with some example embodiments of the present disclosure. Reference will be made in combination with FIG. 1A.
  • At 802, the network device 104 transmits scheduling information for a DL transmission on a plurality of RBs in a time unit during which at least one DL subband are configured. The network device 104 transmits scheduling information for a UL transmission on a plurality of RBs in a time unit during which at least one UL subband are configured. In some example embodiments, both items are included.
  • At 804, the network device 104 compares at least one position of the plurality of RBs with a position of the at least one DL subband. The network device 104 compares at least one position of the plurality of RBs with a position of the at least one UL subband. In some example embodiments, both items are included.
  • At 806, the network device 104 receives the UL transmission based on the comparison. The network device 104 transmits the DL transmission based on the comparison. In some example embodiments, both items are included.
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 0, the network device 104 may transmit the DL transmission on the plurality of RBs based on determining that a RBG among the at least one RBG is outside the at least one DL subband. In some example embodiments, when the scheduling information is for the DL transmission and RA type 0, the network device 104 may determine that the RBG is outside the at least one DL subband in case that the RBG fully overlaps with at least one of the at least one UL subband, a guardband, or a set of forbidden resources for the DL transmission.
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 0, the network device 104 may exclude at least one RB outside the at least one DL subband from a set of RBs for transmitting the DL transmission, in case that the at least one RBG at least partially overlaps with the at least one DL subband.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 0, the network device 104 may receive the UL transmission in case that a RBG among the at least one RBG is outside the at least one UL subband. In some example embodiments, when the scheduling information is for the UL transmission and RA type 0, the network device 104 may determine that the RBG is outside the at least one UL subband by determining that the RBG fully overlaps with at least one of the at least one DL subband or a guardband, or a set of forbidden resources for the UL transmission.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 0, the network device 104 may exclude at least one RB outside the at least one UL subband from a set of RBs for receiving the UL transmission in case that the at least one RBG at least partially overlaps with the at least one UL subband. The network device 104 may receive the UL transmission on the set of RBs.
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 1, the network device 104 may exclude the RBs outside the at least one DL subband from a set of RBs for transmitting the DL transmission in case that a number of RBs outside the at least one DL subband among the plurality of RBs is below a threshold number. The network device 104 may transmit the DL transmission on the set of RBs.
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 1, the network device 104 may transmit the DL transmission on the plurality of RBs in case that a number of RBs outside the at least one DL subband among the plurality of RBs is above a threshold number.
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 1, the network device 104 may exclude the RBs outside the at least one DL subband from a set of RBs for transmitting the DL transmission in case that that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio. The network device 104 may transmit the DL transmission on the set of RBs.
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 1, the network device 104 may transmit the DL transmission on the plurality of RBs in case that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in the RBG is above a threshold ratio.
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 0, the network device 104 may exclude RBs outside the at least one DL subband from a set of RBs for transmitting the DL transmission in case that a ratio of RBGs outside the at least one DL subband to the plurality of RBGs is below a threshold ratio. The network device 104 may transmit the DL transmission on the set of RBs
  • In some example embodiments, when the scheduling information is for the DL transmission and RA type 0, the network device 104 may transmit the DL transmission on  the plurality of RBs in case that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 1, the network device 104 may exclude the RBs outside the at least one UL subband from a set of RBs for receiving the UL transmission in case that a number of RBs outside the at least one UL subband among the plurality of RBs is below a threshold number. The network device 104 may receive the UL transmission on the set of RBs.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 1, the network device 104 may receive the UL transmission on the plurality of RBs in case that the number of RBs outside the at least one UL subband among the plurality of RBs is above the threshold number.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 1, the network device 104 may exclude the RBs outside the at least one UL subband from a set of RBs for receiving the UL transmission in case that a ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio. The network device 104 may receive the UL transmission on the set of RBs.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 1, the network device 104 may receive the UL transmission on the plurality of RBs in case that the ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in the RBG is above the threshold ratio.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 0, the network device 104 may exclude RBs outside the at least one UL subband from a set of RBs for receiving the UL transmission in case that that a ratio of RBGs outside the at least one UL subband to the plurality of RBGs is below a threshold ratio. The network device 104 may receive the UL transmission on the set of RBs.
  • In some example embodiments, when the scheduling information is for the UL transmission and RA type 0, the network device 104 may receive the UL transmission on the plurality of RBs in case that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio.
  • In some example embodiments, the network device 104 may be configured or preconfigured with at least one of the number threshold or the ratio threshold. In some example embodiments, the time unit may comprise a slot or a symbol.
  • By implementing the methods 700 and/or 800, it can allow to indicate to a terminal device whether or not to allocate DL RBs within the UL subband and guardband (s) , without additional overhead, or allow to indicate to a terminal device whether or not to allocate UL RBs within the DL subband and guardband (s) , without additional overhead.
  • In some example embodiments, an apparatus capable of performing the method 700 may comprise means for performing the respective steps of the method 700. The means may be implemented in any suitable form. For example, the means may be implemented in a circuitry or software module.
  • In some example embodiments, the apparatus may comprise means for receiving, from a network device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; means for comparing at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and means for transmitting the UL transmission or receive the DL transmission based on the comparison.
  • In some example embodiments, the scheduling information is for the DL transmission and is indicative of at least one RBG comprising the plurality of RBs, and the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a RBG among the at least one RBG is outside the at least one DL subband, receiving the DL transmission on the plurality of RBs.
  • In some example embodiments, the means for determine that the RBG is outside the at least one DL subband may comprise means for determining that the RBG fully overlaps with at least one of the at least one UL subband, a guardband, or a set of forbidden resources for the DL transmission.
  • In some example embodiments, the scheduling information is for the DL transmission and is indicative of at least one RBG comprising the plurality of RBs, and the means for transmitting the UL transmission or receive the DL transmission means for based on determining that the at least one RBG at least partially overlaps with the at least one DL subband, excluding at least one RB outside the at least one DL subband from a set of RBs  for receiving the DL transmission; and means for receiving the DL transmission on the set of RBs.
  • In some example embodiments, the scheduling information is for the UL transmission and is indicative of at least one RBG comprising the plurality of RBs, and the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a RBG among the at least one RBG is outside the at least one UL subband, transmitting the UL transmission on the plurality of RBs.
  • In some example embodiments, the means for determining that the RBG is outside the at least one UL subband may comprise means for determining that the RBG fully overlaps with at least one of the at least one DL subband or a guardband, or a set of forbidden resources for the UL transmission.
  • In some example embodiments, the scheduling information is for the UL transmission and is indicative of at least one RBG comprising the plurality of RBs, and the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that the at least one RBG at least partially overlaps with the at least one UL subband, excluding at least one RB outside the at least one UL subband from a set of RBs for transmitting the UL transmission; and means for transmitting the UL transmission on the set of RBs.
  • In some example embodiments, the scheduling information is for the DL transmission, and the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a number of RBs outside the at least one DL subband among the plurality of RBs is below a threshold number, excluding the RBs outside the at least one DL subband from a set of RBs for receiving the DL transmission; and means for receiving the DL transmission on the set of RBs.
  • In some example embodiments, the scheduling information is for the DL transmission, and the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a number of RBs outside the at least one DL subband among the plurality of RBs is above a threshold number, receiving the DL transmission on the plurality of RBs.
  • In some example embodiments, the scheduling information is for the DL transmission, and the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a ratio of RBs outside the  at least one DL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio, excluding the RBs outside the at least one DL subband from a set of RBs for receiving the DL transmission; and means for receiving the DL transmission on the set of RBs.
  • In some example embodiments, the scheduling information is for the DL transmission, and the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in the RBG is above a threshold ratio, receiving the DL transmission on the plurality of RBs.
  • In some example embodiments, the scheduling information is for the DL transmission and is indicative of a plurality of RBGs comprising the plurality of RBs, and the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a ratio of RBGs outside the at least one DL subband to the plurality of RBGs is below a threshold ratio, excluding RBs outside the at least one DL subband from a set of RBs for receiving the DL transmission; and means for receiving the DL transmission on the set of RBs.
  • In some example embodiments, the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio, receiving the DL transmission on the plurality of RBs.
  • In some example embodiments, the scheduling information is for the UL transmission, and the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a number of RBs outside the at least one UL subband among the plurality of RBs is below a threshold number, excluding the RBs outside the at least one UL subband from a set of RBs for transmitting the UL transmission; and means for transmitting the UL transmission on the set of RBs.
  • In some example embodiments, the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that the number of RBs outside the at least one UL subband among the plurality of RBs is above the threshold number, transmitting the UL transmission on the plurality of RBs.
  • In some example embodiments, the scheduling information is for the UL transmission, and the means for transmitting the UL transmission or receive the DL  transmission may comprise means for based on determining that a ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio, excluding the RBs outside the at least one UL subband from a set of RBs for transmitting the UL transmission; and means for transmitting the UL transmission on the set of RBs.
  • In some example embodiments, the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that the ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in the RBG is above the threshold ratio, transmitting the UL transmission on the plurality of RBs.
  • In some example embodiments, the scheduling information is for the UL transmission and is indicative of a plurality of RBGs comprising the plurality of RBs, and the means for transmitting the UL transmission or receive the DL transmission may comprise means for based on determining that a ratio of RBGs outside the at least one UL subband to the plurality of RBGs is below a threshold ratio, excluding RBs outside the at least one UL subband from a set of RBs for transmitting the UL transmission; and means for transmitting the UL transmission on the set of RBs.
  • In some example embodiments, the apparatus may comprise means for based on determining that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio, transmitting the UL transmission on the plurality of RBs.
  • In some example embodiments, the apparatus may comprise means for receiving, from the network device, at least one of the number threshold or the ratio threshold. In some example embodiments, the time unit may comprise a slot or a symbol.
  • In some example embodiments, the apparatus may further comprise means for performing other steps in some example embodiments of the method 700. In some example embodiments, the means comprises at least one processor and at least one memory including computer program code, the at least one memory and computer program code configured to, with the at least one processor, cause the performance of the apparatus.
  • In some example embodiments, an apparatus capable of performing the method 800 may comprise means for performing the respective steps of the method 800. The means may be implemented in any suitable form. For example, the means may be implemented in a circuitry or software module.
  • In some example embodiments, the apparatus may comprise means for transmitting, to a terminal device, scheduling information for a DL transmission or a UL transmission on a plurality of RBs in a time unit during which at least one DL subband and at least one UL subband are configured; means for comparing at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and means for transmitting the DL transmission or receive the UL transmission based on the comparison.
  • In some example embodiments, the scheduling information is for the DL transmission and is indicative of at least one RBG comprising the plurality of RBs, and the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a RBG among the at least one RBG is outside the at least one DL subband, transmitting the DL transmission on the plurality of RBs.
  • In some example embodiments, the means for determine that the RBG is outside the at least one DL subband may comprise means for determining that the RBG fully overlaps with at least one of the at least one UL subband, a guardband, or a set of forbidden resources for the DL transmission.
  • In some example embodiments, the scheduling information is for the DL transmission and is indicative of at least one RBG comprising the plurality of RBs, and the means for receiving the UL transmission or transmitting the DL transmission means for based on determining that the at least one RBG at least partially overlaps with the at least one DL subband, excluding at least one RB outside the at least one DL subband from a set of RBs for transmitting the DL transmission; and means for transmitting the DL transmission on the set of RBs.
  • In some example embodiments, the scheduling information is for the UL transmission and is indicative of at least one RBG comprising the plurality of RBs, and the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a RBG among the at least one RBG is outside the at least one UL subband, receiving the UL transmission on the plurality of RBs.
  • In some example embodiments, the means for determining that the RBG is outside the at least one UL subband may comprise means for determining that the RBG fully overlaps with at least one of the at least one DL subband or a guardband, or a set of forbidden resources for the UL transmission.
  • In some example embodiments, the scheduling information is for the UL transmission and is indicative of at least one RBG comprising the plurality of RBs, and the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that the at least one RBG at least partially overlaps with the at least one UL subband, excluding at least one RB outside the at least one UL subband from a set of RBs for receiving the UL transmission; and means for receiving the UL transmission on the set of RBs.
  • In some example embodiments, the scheduling information is for the DL transmission, and the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a number of RBs outside the at least one DL subband among the plurality of RBs is below a threshold number, excluding the RBs outside the at least one DL subband from a set of RBs for transmitting the DL transmission; and means for transmitting the DL transmission on the set of RBs.
  • In some example embodiments, the scheduling information is for the DL transmission, and the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a number of RBs outside the at least one DL subband among the plurality of RBs is above a threshold number, transmitting the DL transmission on the plurality of RBs.
  • In some example embodiments, the scheduling information is for the DL transmission, and the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio, excluding the RBs outside the at least one DL subband from a set of RBs for transmitting the DL transmission; and means for transmitting the DL transmission on the set of RBs.
  • In some example embodiments, the scheduling information is for the DL transmission, and the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in the RBG is above a threshold ratio, transmitting the DL transmission on the plurality of RBs.
  • In some example embodiments, the scheduling information is for the DL transmission and is indicative of a plurality of RBGs comprising the plurality of RBs, and  the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a ratio of RBGs outside the at least one DL subband to the plurality of RBGs is below a threshold ratio, excluding RBs outside the at least one DL subband from a set of RBs for transmitting the DL transmission; and means for transmitting the DL transmission on the set of RBs.
  • In some example embodiments, the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio, transmitting the DL transmission on the plurality of RBs.
  • In some example embodiments, the scheduling information is for the UL transmission, and the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a number of RBs outside the at least one UL subband among the plurality of RBs is below a threshold number, excluding the RBs outside the at least one UL subband from a set of RBs for receiving the UL transmission; and means for receiving the UL transmission on the set of RBs.
  • In some example embodiments, the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that the number of RBs outside the at least one UL subband among the plurality of RBs is above the threshold number, receiving the UL transmission on the plurality of RBs.
  • In some example embodiments, the scheduling information is for the UL transmission, and the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio, excluding the RBs outside the at least one UL subband from a set of RBs for receiving the UL transmission; and means for receiving the UL transmission on the set of RBs.
  • In some example embodiments, the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that the ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in the RBG is above the threshold ratio, receiving the UL transmission on the plurality of RBs.
  • In some example embodiments, the scheduling information is for the UL transmission and is indicative of a plurality of RBGs comprising the plurality of RBs, and  the means for receiving the UL transmission or transmitting the DL transmission may comprise means for based on determining that a ratio of RBGs outside the at least one UL subband to the plurality of RBGs is below a threshold ratio, excluding RBs outside the at least one UL subband from a set of RBs for receiving the UL transmission; and means for receiving the UL transmission on the set of RBs.
  • In some example embodiments, the apparatus may comprise means for based on determining that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio, receiving the UL transmission on the plurality of RBs.
  • In some example embodiments, the apparatus may comprise means for receiving, from the network device, at least one of the number threshold or the ratio threshold. In some example embodiments, the time unit may comprise a slot or a symbol.
  • In some example embodiments, the apparatus may further comprise means for performing other steps in some example embodiments of the method 800. In some example embodiments, the means comprises at least one processor and at least one memory including computer program code, the at least one memory and computer program code configured to, with the at least one processor, cause the performance of the apparatus.
  • Reference is made to FIG. 9, which illustrates an example simplified block diagram of a device that is suitable for implementing embodiments of the present disclosure. The device 900 may be provided to implement the communication device, for example the terminal device 102 as shown in FIG. 1A. As shown, the device 900 includes one or more processors 910, one or more memories 920 may couple to the processor 910, and one or more communication modules 940 may couple to the processor 910.
  • The communication module 940 is for bidirectional communications. The communication module 940 has at least one antenna to facilitate communication. The communication interface may represent any interface that is necessary for communication with other network elements, for example the communication interface may be wireless or wireline to other network elements, or software based interface for communication.
  • The processor 910 may be of any type suitable to the local technical network and may include one or more of the following: general purpose computers, special purpose computers, microprocessors, digital signal processors (DSPs) and processors based on multicore processor architecture, as non-limiting examples. The device 900 may have  multiple processors, such as an application specific integrated circuit chip that is slaved in time to a clock which synchronizes the main processor.
  • The memory 920 may include one or more non-volatile memories and one or more volatile memories. Examples of the non-volatile memories include, but are not limited to, a read only memory (ROM) 924, an electrically programmable read only memory (EPROM) , a flash memory, a hard disk, a compact disc (CD) , a digital video disk (DVD) , and other magnetic storage and/or optical storage. Examples of the volatile memories include, but are not limited to, a random access memory (RAM) 922 and other volatile memories that will not last in the power-down duration.
  • A computer program 930 includes computer executable instructions that are executed by the associated processor 910. The program 930 may be stored in the ROM 924. The processor 910 may perform any suitable actions and processing by loading the program 930 into the RAM 922.
  • The embodiments of the present disclosure may be implemented by means of the program so that the device 900 may perform any process of the disclosure as discussed with reference to FIG. 2 to FIG. 8. The embodiments of the present disclosure may also be implemented by hardware or by a combination of software and hardware.
  • In some example embodiments, the program 930 may be tangibly contained in a computer readable medium which may be included in the device 900 (such as in the memory 920) or other storage devices that are accessible by the device 900. The device 900 may load the program 930 from the computer readable medium to the RAM 922 for execution. The computer readable medium may include any types of tangible non-volatile storage, such as ROM, EPROM, a flash memory, a hard disk, CD, DVD, and the like. FIG. 10 shows an example of the computer readable medium 1000 in form of CD or DVD. The computer readable medium has the program 930 stored thereon.
  • Generally, various embodiments of the present disclosure may be implemented in hardware or special purpose circuits, software, logic or any combination thereof. Some aspects may be implemented in hardware, while other aspects may be implemented in firmware or software which may be executed by a controller, microprocessor or other computing device. While various aspects of embodiments of the present disclosure are illustrated and described as block diagrams, flowcharts, or using some other pictorial representations, it is to be understood that the block, apparatus, system, technique or  method described herein may be implemented in, as non-limiting examples, hardware, software, firmware, special purpose circuits or logic, general purpose hardware or controller or other computing devices, or some combination thereof.
  • The present disclosure also provides at least one computer program product tangibly stored on a non-transitory computer readable storage medium. The computer program product includes computer-executable instructions, such as those included in program modules, being executed in a device on a target real or virtual processor, to carry out the methods 700 or 800 as described above with reference to FIG. 7 or FIG. 8. Generally, program modules include routines, programs, libraries, objects, classes, components, data structures, or the like that perform particular tasks or implement particular abstract data types. The functionality of the program modules may be combined or split between program modules as desired in various embodiments. Machine-executable instructions for program modules may be executed within a local or distributed device. In a distributed device, program modules may be located in both local and remote storage media.
  • Program code for carrying out methods of the present disclosure may be written in any combination of one or more programming languages. These program codes may be provided to a processor or controller of a general purpose computer, special purpose computer, or other programmable data processing apparatus, such that the program codes, when executed by the processor or controller, cause the functions/operations specified in the flowcharts and/or block diagrams to be implemented. The program code may execute entirely on a machine, partly on the machine, as a stand-alone software package, partly on the machine and partly on a remote machine or entirely on the remote machine or server.
  • In the context of the present disclosure, the computer program codes or related data may be carried by any suitable carrier to enable the device, apparatus or processor to perform various processes and operations as described above. Examples of the carrier include a signal, computer readable medium, and the like.
  • The computer readable medium may be a computer readable signal medium or a computer readable storage medium. A computer readable medium may include but not limited to an electronic, magnetic, optical, electromagnetic, infrared, or semiconductor system, apparatus, or device, or any suitable combination of the foregoing. More specific examples of the computer readable storage medium would include an electrical connection  having one or more wires, a portable computer diskette, a hard disk, a random access memory (RAM) , a read-only memory (ROM) , an erasable programmable read-only memory (EPROM or Flash memory) , an optical fiber, a portable compact disc read-only memory (CD-ROM) , an optical storage device, a magnetic storage device, or any suitable combination of the foregoing. The term “non-transitory, ” as used herein, is a limitation of the medium itself (i.e., tangible, not a signal) as opposed to a limitation on data storage persistency (e.g., RAM vs. ROM) .
  • Further, while operations are depicted in a particular order, this should not be understood as requiring that such operations be performed in the particular order shown or in sequential order, or that all illustrated operations be performed, to achieve desirable results. In certain circumstances, multitasking and parallel processing may be advantageous. Likewise, while several specific implementation details are contained in the above discussions, these should not be construed as limitations on the scope of the present disclosure, but rather as descriptions of features that may be specific to particular embodiments. Certain features that are described in the context of separate embodiments may also be implemented in combination in a single embodiment. Conversely, various features that are described in the context of a single embodiment may also be implemented in multiple embodiments separately or in any suitable sub-combination.
  • Although the present disclosure has been described in languages specific to structural features and/or methodological acts, it is to be understood that the present disclosure defined in the appended claims is not necessarily limited to the specific features or acts described above. Rather, the specific features and acts described above are disclosed as example forms of implementing the claims.

Claims (45)

  1. A terminal device comprising:
    at least one processor; and
    at least one memory storing instructions that, when executed by the at least one processor, cause the terminal device at least to:
    receive, from a network device, scheduling information for a downlink (DL) transmission or an uplink (UL) transmission on a plurality of resource blocks (RBs) in a time unit during which at least one DL subband and at least one UL subband are configured;
    compare at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and
    transmit the UL transmission or receive the DL transmission based on the comparison.
  2. The terminal device of claim 1, wherein the scheduling information is for the DL transmission and is indicative of at least one RB group (RBG) comprising the plurality of RBs, and wherein the terminal device is caused to receive the DL transmission
    based on determining that a RBG among the at least one RBG is outside the at least one DL subband, receiving the DL transmission on the plurality of RBs.
  3. The terminal device of claim 2, wherein the terminal device is caused to determine that the RBG is outside the at least one DL subband by
    determining that the RBG fully overlaps with at least one of the at least one UL subband, a guardband, or a set of forbidden resources for the DL transmission.
  4. The terminal device of claim 1, wherein the scheduling information is for the DL transmission and is indicative of at least one RB group (RBG) comprising the plurality of RBs, and wherein the terminal device is caused to receive the DL transmission
    based on determining that the at least one RBG at least partially overlaps with the at least one DL subband, excluding at least one RB outside the at least one DL subband from a set of RBs for receiving the DL transmission; and
    receiving the DL transmission on the set of RBs.
  5. The terminal device of claim 1, wherein the scheduling information is for the UL transmission and is indicative of at least one RB group (RBG) comprising the plurality of RBs, and wherein the terminal device is caused to transmit the UL transmission
    based on determining that a RBG among the at least one RBG is outside the at least one UL subband, transmitting the UL transmission on the plurality of RBs.
  6. The terminal device of claim 5, wherein the terminal device is caused to determine that the RBG is outside the at least one UL subband by
    determining that the RBG fully overlaps with at least one of the at least one DL subband or a guardband, or a set of forbidden resources for the UL transmission.
  7. The terminal device of claim 1, wherein the scheduling information is for the UL transmission and is indicative of at least one RB group (RBG) comprising the plurality of RBs, and wherein the terminal device is caused to transmit the UL transmission
    based on determining that the at least one RBG at least partially overlaps with the at least one UL subband, excluding at least one RB outside the at least one UL subband from a set of RBs for transmitting the UL transmission; and
    transmitting the UL transmission on the set of RBs.
  8. The terminal device of claim 1, wherein the scheduling information is for the DL transmission, and wherein the terminal device is caused to receive the DL transmission
    based on determining that a number of RBs outside the at least one DL subband among the plurality of RBs is below a threshold number, excluding the RBs outside the at least one DL subband from a set of RBs for receiving the DL transmission; and
    receiving the DL transmission on the set of RBs.
  9. The terminal device of claim 1, wherein the scheduling information is for the DL transmission, wherein the terminal device is further caused to receive the DL transmission
    based on determining that a number of RBs outside the at least one DL subband among the plurality of RBs is above a threshold number; and
    receiving the DL transmission on the plurality of RBs.
  10. The terminal device of claim 1, wherein the scheduling information is for the DL transmission, and wherein the terminal device is caused to receive the DL transmission
    based on determining that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio, excluding the RBs outside the at least one DL subband from a set of RBs for receiving the DL transmission; and
    receiving the DL transmission on the set of RBs.
  11. The terminal device of claim 1, wherein the scheduling information is for the DL transmission, wherein the terminal device is further caused to receive the DL transmission
    based on determining that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in the RBG is above a threshold ratio; and
    receiving the DL transmission on the plurality of RBs.
  12. The terminal device of claim 1, wherein the scheduling information is for the DL transmission and is indicative of a plurality of RBGs comprising the plurality of RBs, and wherein the terminal device is caused to receive the DL transmission
    based on determining that a ratio of RBGs outside the at least one DL subband to the plurality of RBGs is below a threshold ratio, excluding RBs outside the at least one DL subband from a set of RBs for receiving the DL transmission; and
    receiving the DL transmission on the set of RBs.
  13. The terminal device of claim 12, wherein the terminal device is further caused to receive the DL transmission
    based on determining that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio; and
    receiving the DL transmission on the plurality of RBs.
  14. The terminal device of claim 1, wherein the scheduling information is for the UL transmission, and wherein the terminal device is caused to transmit the UL transmission
    based on determining that a number of RBs outside the at least one UL subband among the plurality of RBs is below a threshold number, excluding the RBs outside the at least one UL subband from a set of RBs for transmitting the UL transmission; and
    transmitting the UL transmission on the set of RBs.
  15. The terminal device of claim 14, wherein the terminal device is further caused to transmit the UL transmission
    based on determining that the number of RBs outside the at least one UL subband among the plurality of RBs is above the threshold number; and
    transmitting the UL transmission on the plurality of RBs.
  16. The terminal device of claim 1, wherein the scheduling information is for the UL transmission, and wherein the terminal device is caused to transmit the UL transmission
    based on determining that a ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio, excluding the RBs outside the at least one UL subband from a set of RBs for transmitting the UL transmission; and
    transmitting the UL transmission on the set of RBs.
  17. The terminal device of claim 16, wherein the terminal device is further caused to transmit the UL transmission
    based on determining that the ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in the RBG is above the threshold ratio; and
    transmitting the UL transmission on the plurality of RBs.
  18. The terminal device of claim 1, wherein the scheduling information is for the UL transmission and is indicative of a plurality of RBGs comprising the plurality of RBs, and wherein the terminal device is caused to transmit the UL transmission
    based on determining that a ratio of RBGs outside the at least one UL subband to the plurality of RBGs is below a threshold ratio, excluding RBs outside the at least one UL subband from a set of RBs for transmitting the UL transmission; and
    transmitting the UL transmission on the set of RBs.
  19. The terminal device of claim 18, wherein the terminal device is further caused to transmit the UL transmission
    based on determining that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio; and
    transmitting the UL transmission on the plurality of RBs.
  20. The terminal device of any of claims 8-19, wherein the terminal device is further caused to:
    receive, from the network device, at least one of the number threshold or the ratio threshold.
  21. The terminal device of any of claims 1-20, wherein the time unit comprises a slot or a symbol.
  22. A network device comprising:
    at least one processor; and
    at least one memory storing instructions that, when executed by the at least one processor, cause the network device at least to:
    transmit, to a terminal device, scheduling information for a downlink (DL) transmission or an uplink (UL) transmission on a plurality of resource blocks (RBs) in a time unit during which at least one DL subband and at least one UL subband are configured;
    compare at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and
    transmit the DL transmission or receive the UL transmission based on the comparison.
  23. The network device of claim 22, wherein the scheduling information is for the DL transmission and is indicative of at least one RB group (RBG) comprising the plurality of RBs, and wherein the network device is caused to transmit the DL transmission
    based on determining that a RBG among the at least one RBG is outside the at least one DL subband, transmitting the DL transmission on the plurality of RBs.
  24. The network device of claim 23, wherein the network device is caused to determine that the RBG is outside the at least one DL subband by
    determining that the RBG fully overlaps with at least one of the at least one UL subband, a guardband, or a set of forbidden resources for the DL transmission.
  25. The network device of claim 22, wherein the scheduling information is for the DL transmission and is indicative of at least one RB group (RBG) comprising the plurality of RBs, and wherein the network device is caused to transmit the DL transmission
    based on determining that the at least one RBG at least partially overlaps with the at least one DL subband, excluding at least one RB outside the at least one DL subband from a set of RBs for transmitting the DL transmission; and
    transmit the DL transmission on the set of RBs.
  26. The network device of claim 22, wherein the scheduling information is for the UL transmission and is indicative of at least one RB group (RBG) comprising the plurality of RBs, and wherein the network device is caused to receive the UL transmission
    based on determining that a RBG among the at least one RBG is outside the at least one UL subband, receiving the UL transmission on the plurality of RBs.
  27. The network device of claim 26, wherein the network device is caused to determine that the RBG is outside the at least one UL subband by
    determining that the RBG fully overlaps with at least one of the at least one DL subband or a guardband, or a set of forbidden resources for the UL transmission.
  28. The network device of claim 22, wherein the scheduling information is for the UL transmission and is indicative of at least one RB group (RBG) comprising the plurality of RBs, and wherein the network device is caused to receive the UL transmission
    based on determining that the at least one RBG at least partially overlaps with the at least one UL subband, excluding at least one RB outside the at least one UL subband from a set of RBs for receiving the UL transmission; and receiving the UL transmission on the set of RBs.
  29. The network device of claim 22, wherein the scheduling information is for the DL transmission, and wherein the network device is caused to transmit the DL transmission
    based on determining that a number of RBs outside the at least one DL subband among the plurality of RBs is below a threshold number, excluding the RBs outside the at least one DL subband from a set of RBs for transmitting the DL transmission; and
    transmitting the DL transmission on the set of RBs.
  30. The network device of claim 22, wherein the scheduling information is for the DL transmission, wherein the network device is further caused to transmit the DL transmission
    based on determining that a number of RBs outside the at least one DL subband among the plurality of RBs is above a threshold number; and
    transmitting the DL transmission on the plurality of RBs.
  31. The network device of claim 22, wherein the scheduling information is for the DL transmission, and wherein the network device is caused to transmit the DL transmission
    based on determining that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio, excluding the RBs outside the at least one DL subband from a set of RBs for transmitting the DL transmission; and
    transmitting the DL transmission on the set of RBs.
  32. The network device of claim 22, wherein the scheduling information is for the DL transmission, wherein the network device is further caused to transmit the DL transmission
    based on determining that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in the RBG is above a threshold ratio; and transmitting the DL transmission on the plurality of RBs.
  33. The network device of claim 22, wherein the scheduling information is for the DL transmission, and is indicative of a plurality of RBGs comprising the plurality of RBs, and wherein the network device is caused to transmit the DL transmission
    based on determining that a ratio of RBs outside the at least one DL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio, excluding the RBs outside the at least one DL subband from a set of RBs for transmitting the DL transmission; and
    transmitting the DL transmission on the set of RBs.
  34. The network device of claim 33, wherein the network device is further caused to transmit the DL transmission
    based on determining that the ratio of RBs outside the at least one DL subband to the plurality of RBs is above the threshold ratio; and
    transmitting the DL transmission on the plurality of RBs.
  35. The network device of claim 22, wherein the scheduling information is for the UL transmission, and wherein the network device is caused to receive the UL transmission
    based on determining that a number of RBs outside the at least one UL subband among the plurality of RBs is below a threshold number, excluding the RBs outside the at least one UL subband from a set of RBs for receiving the UL transmission; and
    receiving the UL transmission on the set of RBs.
  36. The network device of claim 35, wherein the network device is further caused to receive the UL transmission
    based on determining that the number of RBs outside the at least one UL subband among the plurality of RBs is above the threshold number; and
    receiving the UL transmission on the plurality of RBs.
  37. The network device of claim 22, wherein the scheduling information is for the UL transmission, and wherein the network device is caused to receive the UL transmission
    based on determining that a ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in a RBG is below a threshold ratio, excluding the RBs outside the at least one UL subband from a set of RBs for receiving the UL transmission; and
    receiving the UL transmission on the set of RBs.
  38. The network device of claim 37, wherein the network device is further caused to receive the UL transmission
    based on determining that the ratio of RBs outside the at least one UL subband to the plurality of RBs or to RBs in the RBG is above the threshold ratio; and receiving the UL transmission on the plurality of RBs.
  39. The network device of claim 22, wherein the scheduling information is for the UL transmission and is indicative of a plurality of RBGs comprising the plurality of RBs, and wherein the network device is caused to receive the UL transmission
    based on determining that a ratio of RBGs outside the at least one UL subband to the plurality of RBGs is below a threshold ratio, excluding RBs outside the at least one UL subband from a set of RBs for receiving the UL transmission; and
    receiving the UL transmission on the set of RBs.
  40. The network device of claim 39, wherein the network device is further caused to receive the UL transmission
    based on determining that the ratio of RBGs outside the at least one DL subband to the plurality of RBGs is above the threshold ratio; and
    receiving the UL transmission on the plurality of RBs.
  41. The network device of any of claims 29-41, wherein the network device is further caused to:
    transmit, to the terminal device, at least one of the number threshold or the ratio threshold.
  42. The network device of any of claims 22-41, wherein the time unit comprises a slot or a symbol.
  43. A method comprising:
    receiving, at a terminal device and from a network device, scheduling information for a downlink (DL) transmission or an uplink (UL) transmission on a plurality of resource blocks (RBs) in a time unit during which at least one DL subband and at least one UL subband are configured;
    comparing, at the terminal device, at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and
    transmitting the UL transmission or receive the DL transmission based on the comparison.
  44. A method comprising:
    transmitting, at a network device and to a terminal device, scheduling information for a downlink (DL) transmission or an uplink (UL) transmission on a plurality of resource blocks (RBs) in a time unit during which at least one DL subband and at least one UL subband are configured;
    comparing, at the network device, at least one position of the plurality of RBs with a position of the at least one DL subband or a position of the at least one UL subband; and
    transmitting the DL transmission or receiving the UL transmission based on the comparison.
  45. A non-transitory computer readable medium comprising program instructions that, when executed by an apparatus, cause the apparatus to perform at least the methods of 43 or 44.
EP23931574.0A 2023-04-07 2023-04-07 Resource blocks determination for transmissions Pending EP4691098A1 (en)

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WO2018129547A1 (en) * 2017-01-09 2018-07-12 Motorola Mobility Llc Method and apparatus for scheduling information for a downlink data channel
JP7271097B2 (en) * 2018-07-17 2023-05-11 シャープ株式会社 BASE STATION DEVICE, TERMINAL DEVICE, AND COMMUNICATION METHOD
WO2020167014A1 (en) * 2019-02-15 2020-08-20 엘지전자 주식회사 Method, user equipment, device and storage medium for performing uplink transmission and method and base station for performing uplink reception

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