The present application relates to the field of wireless communication systems or networks, more specifically to a discontinuous reception, DRX, on a sidelink, SL. Embodiments of the present invention concern the resource allocation in case of a DRX on a SL.
For data transmission a physical resource grid may be used. The physical resource grid may comprise a set of resource elements to which various physical channels and physical signals are mapped. For example, the physical channels may include the physical downlink channel, PDSCH, the physical uplink shared channel, PUSCH, and the physical sidelink shared channel, PSSCH, carrying user specific data, also referred to as downlink, uplink or sidelink payload data, the physical broadcast channel, PBCH, and the physical sidelink broadcast channel, PSBCH, carrying for example a master information block, MIB, and one or more of a system information block, SIB, one or more sidelink information blocks (SLIBs) if supported, the physical downlink control channel, PDCCH, the physical uplink control channel, PUCCH, and the physical sidelink control channels, PSSCH, carrying for example the downlink control information, DCI, the uplink control information, UCI, or the sidelink control information, SCI. The sidelink interface may also support a 2-stage SCI, which refers to a first control region containing some parts of the SCI, and, optionally, a second control region, which contains a second part of control information.
For the uplink, the physical channels may further include the physical random access channel, PRACH or RACH, used by UEs for accessing the network once a UE synchronized and obtained the MIB and SIB. The physical signals may comprise reference signals or symbols, RS, synchronization signals and the like. The resource grid may comprise a frame or radio frame having a certain duration in the time domain and having a given bandwidth in the frequency domain. The frame may have a certain number of subframes of a predefined length, e.g., 1 ms. Each subframe may include one or more slots of 12 or 14 OFDM symbols depending on the cyclic prefix, CP, length. A frame may also consist of a smaller number of OFDM symbols, e.g., when utilizing shortened transmission time intervals, sTTI, or a mini-slot/non-slot-based frame structure comprising just a few OFDM symbols.
The wireless communication system may be any single-tone or multicarrier system using frequency-division multiplexing, like the orthogonal frequency-division multiplexing, OFDM, system, the orthogonal frequency-division multiple access, OFDMA, system, or any other IFFT-based signal with or without CP, e.g., DFT-s-OFDM. Other waveforms, like non-orthogonal waveforms for multiple access, e.g., filter-bank multicarrier, FBMC, generalized frequency division multiplexing, GFDM, or universal filtered multi carrier, UFMC, may be used. The wireless communication system may operate, e.g., in accordance with the LTE-Advanced pro standard, or the 5G or NR, New Radio, standard, or the NR-U, New Radio
Unlicensed, standard.
The wireless network or communication system depicted in
In mobile communication networks, for example in a network like that described above with reference to
When considering two UEs directly communicating with each other over the sidelink, both UEs may be served by the same base station so that the base station may provide sidelink resource allocation configuration or assistance for the UEs. For example, both UEs may be within the coverage area of a base station, like one of the base stations depicted in
When considering two UEs directly communicating with each other over the sidelink, e.g., using the PC5/PC3 interface, one of the UEs may also be connected with a BS, and may relay information from the BS to the other UE via the sidelink interface and vice-versa. The relaying may be performed in the same frequency band, in-band-relay, or another frequency band, out-of-band relay, may be used. In the first case, communication on the Uu and on the sidelink may be decoupled using different time slots as in time division duplex, TDD, systems.
Although
In a wireless communication system or network, like the one described above with reference to
In NR or 5G, in addition to the UE-to-Network relay, also a UE-to-UE relay is supported. In such a scenario, the destination 202 is another UE. Fig. Y illustrates a scenario where the relay is a UE-to-UE relay 206. The remote UE 200 is to connect to the other UE 202, and the relay UE 206 provides functionality to support connectivity to the destination UE 208, for the remote UE 200. The remote UE 200 and the relay UE may communicate using the PC5 interface, and the relay UE and the other UE 202 may communicate using also the PC5 interface.
Although
In the above-described scenarios of vehicular user devices, UEs, a plurality of such user devices may form a user device group, also referred to simply as group, and the communication within the group or among the group members may be performed via the sidelink interfaces between the user devices, like the PC5 interface. For example, the above-described scenarios using vehicular user devices may be employed in the field of the transport industry in which a plurality of vehicles being equipped with vehicular user devices may be grouped together, for example, by a remote driving application. Other use cases in which a plurality of user devices may be grouped together for a sidelink communication among each other include, for example, factory automation and electrical power distribution. In the case of factory automation, a plurality of mobile or stationary machines within a factory may be equipped with user devices and grouped together for a sidelink communication, for example for controlling the operation of the machine, like a motion control of a robot. In the case of electrical power distribution, entities within the power distribution grid may be equipped with respective user devices which, within a certain area of the system may be grouped together so as to communicate via a sidelink communication with each other so as to allow for monitoring the system and for dealing with power distribution grid failures and outages.
Naturally, in the above-mentioned use cases sidelink communication is not limited to a communication within a group. Rather, the sidelink communication may be among any of UEs, like any pair of UEs.
In a wireless communication system as described above with reference to
An embodiment may have a user device, UE, for a wireless communication system, the wireless communication system including a plurality of user devices, UEs, wherein the UE is to communicate with one or more further UEs using a sidelink, SL, wherein the UE is to operate in a Discontinuous Reception, DRX, mode, and wherein, when being out-of-coverage, the UE is to obtain one or more resources available for a transmission from an assistance information message, AIM, received from one or more of the further UEs during an ON duration of one or more DRX cycles, and/or from an assistance information message, AIM, received from one or more of the further UEs during a listening duration, and/or by carrying out sensing in a set of sidelink resources or in a sidelink resource pool of the wireless communication system during an ON duration of one or more DRX cycles, and/or by carrying out sensing in a set of sidelink resources or in a sidelink resource pool of the wireless communication system during a listening duration.
Another embodiment may have a user device, UE, for a wireless communication system, the wireless communication system including a plurality of user devices, UEs, wherein the UE is to communicate with one or more further UEs using a sidelink, SL, wherein the UE is to carry out sensing in a SL resource pool and to determine resources available for a transmission, or obtains the resources from a base station of the wireless communication system directly or indirectly, e.g., via a relay, and wherein the UE is to transmit the determined resources available for a transmission, e.g., using an assistance information message, AIM.
Another embodiment may have a wireless communication system, comprising a plurality of inventive user devices, UEs, and configured for a sidelink communication using, for example resources from a set of sidelink resources of the wireless communication system.
According to another embodiment, a method for operating a user device, UE, of a wireless communication system including a plurality of user devices, UEs, may have the steps of: operating the UE to communicate with one or more further UEs using a sidelink, SL, operating the UE in a Discontinuous Reception, DRX, mode, and when being out-of-coverage, obtaining, by the UE, one or more resources available for a transmission from an assistance information message, AIM, received from one or more of the further UEs during an ON duration of one or more DRX cycles, and/or from an assistance information message, AIM, received from one or more of the further UEs during a listening duration, and/or by carrying out sensing in a set of sidelink resources or in a sidelink resource pool of the wireless communication system during an ON duration of one or more DRX cycles, and/or by carrying out sensing in a set of sidelink resources or in a sidelink resource pool of the wireless communication system during a listening duration.
According to another embodiment, a method for operating a user device, UE, of a wireless communication system including a plurality of user devices, UEs, may have the steps of: operating the UE to communicate with one or more further UEs using a sidelink, SL, carrying out sensing, by the UE, in a SL resource pool and to determine resources available for a transmission, or obtains the resources from a base station of the wireless communication system directly or indirectly, e.g., via a relay, and transmitting, by the UE, the determined resources available for a transmission, e.g., using an assistance information message, AIM.
Another embodiment may have a non-transitory digital storage medium having a computer program stored thereon to perform any of the inventive methods when said computer program is run by a computer.
Embodiments of the present invention will be detailed subsequently referring to the appended drawings, in which:
Embodiments of the present invention are now described in more detail with reference to the accompanying drawings in which the same or similar elements have the same reference signs assigned.
In the wireless communication system or network, like the one described above with reference to
However, the sidelink communication or the sidelink PC5 operation is not limited to the operation of vehicular UEs, but other UEs with a limited or finite power supply, like regular user devices including a battery that needs to be recharged regularly, may communicate over the sidelink. Such UEs may include so-called vulnerable road users, VUEs, like a pedestrian UE, P-UE, or first responder devices for public safety use cases, or IoT devices, like general IoT UEs or industrial IoT UEs. For these types of UEs, since they are not connected to a constant power supply but rely on their battery, power saving is important.
To reduce the power consumption at a UE in NR, the discontinuous reception, DRX, is employed on the Uu interface. DRX is a mechanism where the UE goes into a sleep mode for a certain period of time, during which it does not transmit or receive any data. The UE wakes for another period of time, where it may transmit and receive data. One the key aspects of DRX is the synchronization between the UE and the network in terms of its wake-up and sleep cycles, also referred to as the DRX cycles. In a worst-case scenario, the network tries to send data to the UE being in the sleep mode so that, when the UE wakes up, there is no data to be received. In the NR-Uu interface this situation is prevented by maintaining a well-defined agreement between the UE and the network or system in terms of the sleep and wake-up cycles. In other words, by configuring a UE with DRX by the gNB, the DRX is synchronized with the gNB. A DRX cycle includes both the ON time and the OFF time within a fixed time interval, and for the NR Uu interface a short DRX cycle and a long DRX cycle is defined, where a short DRX cycle may span a few symbols within a time slot, and a long DRX cycle may span an entire time slot or multiple time slots. An inactivity timer may specify the number of consecutive control messages for which the UE may be active after successfully decoding of a control message that indicates a new transmission, with the following configuration:
To reduce the power consumption also at a UE in NR communicating over the sidelink, the DRX mode may also be implemented on the sidelink. A UE communicating over the sidelink may be in-coverage or out-of-coverage, as explained above with reference to
The present invention provides approaches for obtaining reliably resources for a transmission over a sidelink by a UE operating in the DRX mode and being out-of-coverage. Embodiments of the present invention may be implemented in a wireless communication system as depicted in
User Device Obtaining Resources Via Assistance Information Message Or Sensing
The present invention provides (see for example claim 1) a user device, UE, for a wireless communication system, the wireless communication system including a plurality of user devices, UEs,
In accordance with embodiment (see for example claim 2), the UE is to obtain the one or more resources available for a transmission from the AIM and from the sensing results.
In accordance with embodiment (see for example claim 3), the UE is to obtain the one or more resources available for a transmission from the AIM and from the sensing results, the UE is to
In accordance with embodiment (see for example claim 4), the UE is to obtain the one or more resources available for a transmission from the sensing results and not from the AIM when one or more of the following are true
In accordance with embodiment (see for example claim 5), the UE is to obtain the one or more resources available for a transmission from the AIM and not from the sensing results when one or more of the following are true
In accordance with embodiment (see for example claim 6), the UE is to obtain the one or more resources available for a transmission from a combination of the AIM and from the sensing results, and the UE is to
In accordance with embodiment (see for example claim 7), when the UE receives multiple AIMs, the UE is to
In accordance with embodiment (see for example claim 8), the AIM includes resources for the UE to use for a transmission of the UE's own control, like the PSCCH, and/or the UE's own data, like the PSSCH, and/or the UE's feedback, like the PSFCH.
In accordance with embodiment (see for example claim 9), the resources available for a transmission included in the AIM depend on a type of the UE.
In accordance with embodiment (see for example claim 10), when the UE obtains resources available for a transmission from an AIM, the UE is not to carry out any type of sensing and rely on one or more of the further UEs in the UE's vicinity to carry out sensing and select resources available for a transmission by the UE.
In accordance with embodiment (see for example claim 11), the DRX configuration or the DRX pre-configuration informs the UE to not carry out sensing for the determination of resources for a transmission, but to use resources indicated in one or more AIMs to be received from one or more of the further UEs in the UE's vicinity instead.
In accordance with embodiment (see for example claim 12), the UE is to receive the AIM as a control packet, e.g., via a PC5 RRC signaling, or as a MAC CE signaling, or as a data packet from the one or more of the further UEs, or as an information block, e.g., a sidelink information block, SLIB.
In accordance with embodiment (see for example claim 13), the UE is to receive an updated DRX configuration including the AIM.
In accordance with embodiment (see for example claim 14), the updated DRX configuration informs the UE to not carry out sensing for the determination of resources available for a transmission, but to use resources indicated in one or more AlMs to be received from one or more of the further UEs in the UE's vicinity instead.
In accordance with embodiment (see for example claim 15), the AIM includes an explicit parameter indicating that the UE is not to carry out sensing for the transmissions in any resources, or that the UE is not to carry out sensing for the transmissions in one or more resources or resource sets.
In accordance with embodiment (see for example claim 16), the UE is to receive the AIM for one of more data packets to be transmitted, and to use the resources indicated in the AIM for the transmission of the data packet for which the AIM was received.
In accordance with embodiment (see for example claim 17), a control message, like a SCI or a MAC CE, accompanying the AIM indicates that the UE is not to carry out sensing for the transmissions of the one of more data packets in any resources, or that the UE is not to carry out sensing for the transmissions in one or more resources or resource sets.
In accordance with embodiment (see for example claim 18), the UE receives AIMs from different one of the further UEs, the UE is to select resources for a transmission by one or more criteria, like a hierarchy of the AIM sources, and/or a priority associated with the AIMs, and/or resources found in some or all of the AIMs.
In accordance with embodiment (see for example claim 19), the UE is to request the one or more AIMs.
In accordance with embodiment (see for example claim 20), the UE is to request the one or more AIMs, e.g., when the UE
In accordance with embodiment (see for example claim 21), the UE needs assistance in the resource allocation procedure in one or more of the following cases:
In accordance with embodiment (see for example claim 22), the UE obtains resources available for a transmission by carrying out sensing during an ON duration of one or more DRX cycles.
In accordance with embodiment (see for example claim 23), the UE is to switch from currently used DRX cycles, like long DRX cycles, to new DRX cycles, like short DRX cycles, the new DRX cycles having successive ON durations that are spaced by a time period, e.g., the OFF duration, that is shorter than a time period by which the ON durations of the currently used DRX cycles are spaced.
In accordance with embodiment (see for example claim 24), the UE is to switch to the new DRX cycles in case, during a certain sensing window, insufficient sensing results are obtained, like a number of sensing results being below a threshold, or a confidence value associated with the sensing results being below a threshold.
In accordance with embodiment (see for example claim 25), the DRX configuration of the currently used DRX cycle includes the threshold to decide the insufficiency of the resources obtained from sensing, falling below which the UE is to switch to the new DRX cycles, wherein the DRX configurations of the new DRX cycles are also included.
In accordance with embodiment (see for example claim 26), the UE is to switch back from the new DRX cycles to the currently used DRX cycles in case, during a certain sensing window, the sensing results indicate a sufficient number of available resources.
In accordance with embodiment (see for example claim 27), the UE is to carry out sensing during a plurality of ON durations only when an interval between successive ON durations is below a certain threshold, like during short DRX cycles.
In accordance with embodiment (see for example claim 28), responsive to a regular DRX cycle configuration, the UE is expected to carry out sensing whenever it is in the ON duration.
In accordance with embodiment (see for example claim 29), the listening duration comprises one or more of:
In accordance with embodiment (see for example claim 30), when the UE obtains resources available for a transmission by carrying out sensing during the listening duration, the UE is to carry out only sensing or receiving of AIMs during the listening duration and is not to transmit or decode any control and/or data during the listening duration.
In accordance with embodiment (see for example claim 31), the UE is to carry out sensing during the listening duration and during at least a part of the ON duration, e.g., responsive to a regular DRX cycle configuration indicating the listening duration.
User Device Providing Assistance Information Message
The present invention provides (see for example claim 32) a user device, UE, for a wireless communication system, the wireless communication system including a plurality of user devices, UEs,
In accordance with embodiment (see for example claim 33),
General
In accordance with embodiment (see for example claim 34), when being out-of-coverage, the UE
In accordance with embodiment (see for example claim 35), the UE comprise one or more of a power-limited UE, or a hand-held UE, like a UE used by a pedestrian, and referred to as a Vulnerable Road User, VRU, or a Pedestrian UE, P-UE, or an on-body or hand-held UE used by public safety personnel and first responders, and referred to as Public safety UE, PS-UE, or an IoT UE, e.g., a sensor, an actuator or a UE provided in a campus network to carry out repetitive tasks and needing input from a gateway node at periodic intervals, or a mobile terminal, or a stationary terminal, or a cellular IoT-UE, or a vehicular UE, or a vehicular group leader (GL) UE, or an IoT or narrowband IoT, NB-loT, device, or a ground based vehicle, or an aerial vehicle, or a drone, or a moving base station, or road side unit (RSU), or a building, or any other item or device provided with network connectivity enabling the item/device to communicate using the wireless communication network, e.g., a sensor or actuator, or any other item or device provided with network connectivity enabling the item/device to communicate using a sidelink the wireless communication network, e.g., a sensor or actuator, or any sidelink capable network entity.
System
The present invention provides (see for example claim 36) a wireless communication system, comprising a plurality of the inventive user devices, UEs, and configured for a sidelink communication using, for example resources from a set of sidelink resources of the wireless communication system.
In accordance with embodiment (see for example claim 37), the wireless communication system comprises one or more base stations, wherein the base station comprises one or more of a macro cell base station, or a small cell base station, or a central unit of a base station, or a distributed unit of a base station, or a road side unit (RSU), or a UE, or a group leader (GL), or a relay or a remote radio head, or an AMF, or an SMF, or a core network entity, or mobile edge computing (MEC) entity, or a network slice as in the NR or 5G core context, or any transmission/reception point, TRP, enabling an item or a device to communicate using the wireless communication network, the item or device being provided with network connectivity to communicate using the wireless communication network.
Methods
The present invention provides (see for example claim 38) a method for operating a user device, UE, of a wireless communication system including a plurality of user devices, UEs, the method comprising:
operating the UE to communicate with one or more further UEs using a sidelink, SL,
operating the UE in a Discontinuous Reception, DRX, mode, and
when being out-of-coverage, obtaining, by the UE, one or more resources available for a transmission
The present invention provides (see for example claim 39) a method for operating a user device, UE, of a wireless communication system including a plurality of user devices, UEs, the method comprising:
Computer Program Product
Embodiments of the present invention provide a computer program product comprising instructions which, when the program is executed by a computer, causes the computer to carry out one or more methods in accordance with the present invention.
Embodiments of the present invention provide approaches for allowing for a reliable determination of resources to be used for a transmission over the sidelink at a UE operating in the DRX mode. The inventive approach is applicable to each UE communicating over the sidelink and operating in the DRX mode that, when being out-of-coverage, needs to obtain reliable resources for a communication, like a transmission, over the sidelink.
Embodiments concern the following types of UEs communicating over a sidelink PC5:
A UE communicating over the sidelink and operating in the DRX mode, for example, a UE as described above, needs to select reliable resources for a transmission of data when being out-of-coverage, for example, when operating in Mode 2. In accordance with embodiments of the present invention, the UE is given one or more resources available for a transmission, or carries out sensing for one or more resources available for a transmission, in a way that is coupled with the DRX cycle so as to allow the UEs to obtain reliable resources in a power efficient way and that avoids the UE to remain ON all the time for obtaining the reliable resources that the SL transmission of data needs. In this description, the one or more resources available for a transmission are also referred to as candidate resources or as a set of candidate resources.
In accordance with embodiments, the resource allocation for an out-of-coverage UE communicating over the sidelink may employ so-called assistance information. An out-of-coverage UE, like a UE operating in Mode 2, which is not assisted by the gNB, may receive assistance information from another UE within its vicinity. The assistance information may be sent from the other UE either via a control message, for example, using PC5 RRC signaling or a MAC CE, or it may be transmitted as a data packet. The assistance information may be sent using an assistance information message, AIM. The AIM may include a set of resources for the UE, that may be used by the given UE for the transmission of one or more of
For example, when considering the above-mentioned P-UEs, such a P-UE needs resources for transmitting its location to make other vehicular UEs, V-UEs, aware of its presence. On the other hand, for the above-mentioned PS-UEs or IoT-UEs, the AIM may contain resources for a data transmission based on the UE type. For example, the PS-UEs and the loT-UEs may have predefined message types and sizes, and the UE sensing the AIMs is aware of this and, accordingly, senses suitable resources for the PS-UE or the IoT-UE that allow for a reliable transmission of such messages.
The AIM may be transmitted by the one or more other UEs during the ON duration or a listening duration of an implemented DRX cycle. Thus, in case of active DRX cycles, the UE may receive the resource allocation information in the AIM from the one or more other UEs providing the AIM. For example, the P-UEs may receive the AIM at the beginning of an ON duration and use the resource allocation information included in the received AIM to broadcast its location information during the remaining part of the ON duration or any subsequent ON duration, as indicated by the AIM, so that it may be received by V-UEs being in proximity to the PS-UE. Following the transmission, the PS-UE may return to the OFF duration. In other words, in accordance with embodiments of the present invention employing the AIM, rather than carrying out sensing by its own, a UE, during an ON duration of one or more DRX cycles may receive the AIM and, thereby, the resources for a transmission over the sidelink.
During the OFF duration, the UE is not active and does not receive or transmit. Only during the ON duration the UE is active, and in accordance with embodiments of the present invention, during the ON duration the UE receives {circle around (1)} the AIM, derives the resource information for a transmission from the AIM and sends {circle around (2)} data using the resources the UE obtained from the AIM. It is noted that the DRX cycle may be a short DRX cycle or a long DRX cycle. In a short DRX cycle, the interval or OFF duration between subsequent ON durations is shorter than in a long DRX cycle. For example, the ON durations in the short DRX cycle and in the long DRX cycle may span the same time, for example two or more consecutive sub-frames or symbols, however, the OFF duration between subsequent ON durations is shorter in the short DRX cycle, for example, only three sub-frames when compared to the long DRX cycle in which the OFF duration between subsequent ON durations is, for example, seven sub-frames. In accordance with other embodiments, the DRX cycle may have a duration of one or more time slots, each spanning twelve or fourteen orthogonal frequency multiplexing, OFDM, symbols, and a long DRX cycle may include an ON duration, for example, at the beginning of the time slot and spanning one or more of the symbols, while a short DRX cycle may include within the time slot multiple ON durations.
In accordance with further embodiments employing the assistance information for the resource allocation in a SL UE operating in the DRX mode, the ON duration of a DRX cycle may be extended by a so-called listening duration. In accordance with embodiments, the listening duration is either provided at the beginning of the regular ON duration and/or the end of the regular ON duration. During the additional listening duration the UE is to receive the AIM.
AIM during the first listening duration LD1 so that it may employ the resources obtained from the AIM for a transmission {circle around (2)} during the actual ON duration of the DRX cycle.
It is noted that
In accordance with further embodiments, the one listening duration preceding and/or following the ON duration may be offset from the ON duration by a certain time, as is illustrated in
In accordance with yet further embodiments, more than one listening duration preceding and/or following the ON duration may be provided, as is illustrated in
It is noted that also any combination of the above-described listening durations may be implemented.
The listening duration is used by the UE to receive one or more AIMs. The UE is not expected to not transmit any packets or to decode any received packets. As described above, the listening duration may be before or after any ON duration, as illustrated in
In accordance with other embodiments, the listening duration may be an ON duration of the DRX cycle during which the UE is to listen only for the one or more AIMs. This is also referred to as a standalone listening duration or as a light DRX cycle. The standalone listening duration may be referred to as a DRX lite mode, where the ON duration as defined for the normal DRX operation is used by the UE only for listening for the one or more AIMs so as to obtain resources for a future transmission, but not for transmitting any data and/or receiving any further data.
In accordance with embodiments, the listening duration may be periodic across time, and the listening duration may be restricted to only the beginning of a time slot where the one or more AIMs are transmitted, as is shown in
In accordance with embodiments, the UE may receive the assistance information or AIM as a control packet, e.g., via a PC5 RRC signaling, or as a MAC CE signaling, or a data packet from the one or more of the further UEs, or an information block, e.g., by means of the above mentioned sidelink information block, SLIB.
In accordance with embodiments the UE may receive the assistance information in the form of a configuration, and the UE may use the configuration for the transmission of a plurality of packets, like for all packets within a predefined time period during which the configuration is valid. For example, the configuration may be valid for all data packets after 100ms, or may be valid for all data packets after the UE has entered a specific geographical area. In accordance with other embodiments, the assistance information may be received for one or more packets to be transmitted, and is to be used by the UE only for the transmission of these one or more packets.
In accordance with further embodiments, a UE may receive a plurality of AlMs from one or more of the other UEs, and in case the AIMs include different resources, i.e., in case of conflicting AIMs, the UE may select the resources to be used for a transmission by one or more of the following criteria:
In accordance with embodiments, the UE operating in the DRX mode according to a current DRX configuration, may receive during an ON duration a new or updated DRX configuration to be used. In accordance with embodiments, the updated DRX configuration may include the AIM. The updated DRX configuration may also inform the UE to not carry out sensing for all or only a particular transmission. This restriction can also be time-bound, e.g., where the UE does not carry out sensing for a defined period of time, after which the UE is expected to carry out sensing. For example, the new or updated DRX configuration may include details of the AIM indicating resources to be used by the UE for all transmissions or only for a particular transmission.
In accordance with embodiments, the UE may receive a DRX configuration or is pre-configured with a DRX configuration that explicitly requests the UE to not carry out sensing for the determination of resources for a transmission, but to use the resources indicated in the AIMs that the UE receives from other UEs in the vicinity of the UE. This restriction can also be time-bound, e.g., where the UE does not carry out sensing for a defined period of time, after which the UE is expected to carry out sensing.
In accordance with embodiments, employing the AIM may avoid the UE from carrying out any type of sensing at all, e.g., the UE is not to carry out sensing in any resources, which reduces the burden on the UE and thus improve its power status in terms of battery lifetime. In accordance with other embodiments, the AIM or a control message, like a SCI or a MAC CE, accompanying the AIM indicates that the UE is not to carry out sensing for the transmissions in one or more resources or resource sets, like
The frequency entities may be indicated in any one of the following manners:
The time entities may be indicated in any one of the following manners:
In accordance with embodiments, the UE may request the one or more AIMs. For example, the UE may request the one or more AIMs to avoid to perform sensing and thus save power, e.g., when the power status of the UE is below a pre-defined threshold. The UE may transmit its power status to the network or to another UE, which may provide the AIM or inform the UE to perform sensing, for example because the power level is above the pre-defined threshold. In accordance with another embodiment, the UE operating in the DRX mode may transmit the DRX configuration, e.g., identified by a certain bit-sequence, to the network or to another UE, which may provide the AIM. In accordance with yet further embodiments, the UE may request the one or more AIMs when the UE needs assistance in the resource allocation procedure, for example in case
In accordance with further embodiments of the present invention, an out-of-coverage UE using DRX, like a Mode 2 UE, carries out sensing during the ON duration of the DRX cycle, for example, in a set of sidelink resources, also referred to as a sidelink resource pool, provided by the wireless communication system for the sidelink communication, so as to identify candidate resources that the UE may use for the transmission of data. For example, the UE may carry out sensing during the ON duration of the DRX cycle illustrated in
To obtain reasonable or reliable sensing results, the UE needs to carry out sensing over a certain period of time, but only during the ON durations. Carrying out sensing during ON durations having a certain time duration from each other, like in a long DRX cycle, may not be sufficient to identify optimum or reliable resources for the transmission by the UE.
For example, the sensing, in accordance with predefined rule, may be carried out for a certain duration or within a certain sensing window, e.g., during a time period between 100 ms to 1100 ms. During the sensing window, the number of ON durations, when long DRX cycles are used, is lower than the number of ON durations, when short DRX cycles are used. Thus, the number of sensing results may be considered not sufficient for reliably determining whether the resources are available or not. In other words, the confidence in the sensing results may be below a certain threshold. Thus, a DRX mode which, by default, employs a long DRX cycle, may not obtain reliable sensing results. Therefore, in accordance with embodiments the UE, for obtaining resources via sensing, may switch from a long DRX cycle to a short DRX cycle so that more ON durations are available during the sensing window. This allows the UE to obtain reliable or adequate resources for the transmission. A DRX configuration of the currently used DRX cycle may include the threshold to decide the insufficiency of the resources obtained from sensing.
In accordance with further embodiments, in order to obtain tangible sensing results, the UE might to switch to a shorter DRX cycle with frequent ON durations, when the resource pool in which the sensing is performed is congested. In this case, if the UE does not successfully obtain enough resources using the long DRX cycle, it is expected to switch to the short DRX cycle with the more frequent ON durations in order to obtain sensing results. On the other hand, when the resource pool is not congested, the UE is not expected to switch to short DRX cycles as it may use the sensing results obtained during the long DRX cycles to determine resources for a transmission. This may be used only if the UE has indeed obtained enough resources for a transmission using the sensing procedure and while in the long DRX cycle. For example, the UE may determine that is has obtained enough resources if it may build a candidate resource set that has at least 80% of all the available resources. If it does not, it may increase the RSRP threshold by a pre-defined value, e.g., 3 db, and sense again. In this case, the UE may be able to obtain the needed resources.
The UE may switch to the short DRX cycles for a short period of time so more frequent ON durations are available, and, once the UE finished the sensing procedure and obtained the needed resources, it may switch back to the long DRX cycle to save power. For example, the UE may switch back from the short DRX cycles to the long DRX cycles in case, during the sensing window, the sensing results indicate a sufficient number of available resources.
In accordance with yet further embodiments of the present invention, for example for avoiding the above mentioned problems associated with the use of a long DRX cycle, rather than switching to the short DRX cycle, a modified DRX cycle may be employed in accordance with which the above-mentioned additional duration, referred to as listening duration, LD, is used. In accordance with such embodiments, rather than switching from a long DRX cycle to a short DRX cycle, for providing the UE with sufficient time for carrying out the sensing in the sidelink resource pool for obtaining reasonable sensing results, the ON duration of the DRX cycle, for example, the ON duration of the long DRX cycle, may be extended by one or more listening durations as described in detail above with reference to
In accordance with the above-described embodiments obtaining the resources for a sidelink transmission by sensing, the UE is expected to sense and identify resources for the transmission by sensing in the absence of any explicit indication for the UE to not carry out sensing. In case the UE receives a normal DRX configuration, it is expected to carry out sensing whenever it is in the ON duration, and in case the UE receives a DRX configuration including a definition of the listening duration, the UE may carry out sensing in the listening duration or in the listening duration and the ON duration, however, the UE is not to transmit any data in a listening duration.
In accordance with embodiments, the UE may obtain the set of candidate resources for a transmission from the AIM and from the sensing results. For example, the UE may
In accordance with other embodiments, the UE may to obtain the set of candidate resources for the transmission from the sensing results and not from the AIM when the RSRP threshold used by the UE to carry out sensing is linked to a higher priority than the priority of the AIM, and/or when the validity of the AIM has expired when the UE has obtained the sensing results.
In accordance with yet other embodiments, the UE may to obtain the set of candidate resources for the transmission from the AIM and not from the sensing results when the priority of the AIM is higher than priority linked to the RSRP threshold used by the UE to carry out sensing, and/or when the sensing results are outdated when the AIM is received.
In accordance with further embodiments, the UE may to obtain the set of candidate resources for the transmission from a combination of the AIM and from the sensing results, and the UE may
In accordance with other embodiments, when the UE receives multiple AIMs, the UE may
Further embodiments of the present invention provide a SL UE that communicates with one or more further UEs using the sidelink, SL and that obtains the resources from a SL RP. For example, the UE may determine the set of resources by sensing, e.g., in case the UE is out-of-coverage, or the UE may determine the set of resources from resources provided to the UE by a base station of the wireless communication system directly, e.g., in case the UE is in Mode 1 or in-coverage, or indirectly via a relay, e.g., in case the UE is in Mode 2 or in- or out-of-coverage. The UE transmits the determined resources available for a transmission to one or more further UEs, e.g., using the assistance information message, AIM.
In accordance with embodiments, the UE and one or more of the further UEs form a UE group, and the UE is to assist one or more of the other group members by providing the one or more AIMs such that one or more of the other group members
General
Embodiments of the present invention have been described in detail above, and the respective embodiments and aspects may be implemented individually or two or more of the embodiments or aspects may be implemented in combination.
In accordance with embodiments, the wireless communication system may include a terrestrial network, or a non-terrestrial network, or networks or segments of networks using as a receiver an airborne vehicle or a spaceborne vehicle, or a combination thereof.
In accordance with embodiments, the user device, UE, described herein may be one or more of a power-limited UE, or a hand-held UE, like a UE used by a pedestrian, and referred to as a Vulnerable Road User, VRU, or a Pedestrian UE, P-UE, or an on-body or hand-held UE used by public safety personnel and first responders, and referred to as Public safety UE, PS-UE, or an IoT UE, e.g., a sensor, an actuator or a UE provided in a campus network to carry out repetitive tasks and needing input from a gateway node at periodic intervals, or a mobile terminal, or a stationary terminal, or a cellular IoT-UE, or a vehicular UE, or a vehicular group leader, GL, UE, or an IoT, or a narrowband IoT, NB-loT, device, or a WiFi non Access Point STAtion, non-AP STA, e.g., 802.11ax or 802.11be, or a ground based vehicle, or an aerial vehicle, or a drone, or a moving base station, or a road side unit, or a building, or any other item or device provided with network connectivity enabling the item/device to communicate using the wireless communication network, e.g., a sensor or actuator, or any other item or device provided with network connectivity enabling the item/device to communicate using a sidelink the wireless communication network, e.g., a sensor or actuator, or any sidelink capable network entity.
The base station, BS, described herein may be implemented as mobile or immobile base station and may be one or more of a macro cell base station, or a small cell base station, or a central unit of a base station, or a distributed unit of a base station, or a road side unit, or a UE, or a group leader, GL, or a relay, or a remote radio head, or an AMF, or an SMF, or a core network entity, or mobile edge computing entity, or a network slice as in the NR or 5G core context, or a WiFi AP STA, e.g., 802.11ax or 802.11be, or any transmission/reception point, TRP, enabling an item or a device to communicate using the wireless communication network, the item or device being provided with network connectivity to communicate using the wireless communication network.
Embodiments of the inventive approach are described for sidelink communications in the context of cellular communication systems, safety communication systems, campus networks. The present invention is not limited to this, rather, in accordance with further embodiments, the inventive approach may be employed in any kind of communication network, e.g., an ad-hoc communication network.
Although some aspects of the described concept have been described in the context of an apparatus, it is clear that these aspects also represent a description of the corresponding method, where a block or a device corresponds to a method step or a feature of a method step. Analogously, aspects described in the context of a method step also represent a description of a corresponding block or item or feature of a corresponding apparatus.
Various elements and features of the present invention may be implemented in hardware using analog and/or digital circuits, in software, through the execution of instructions by one or more general purpose or special-purpose processors, or as a combination of hardware and software. For example, embodiments of the present invention may be implemented in the environment of a computer system or another processing system.
The terms “computer program medium” and “computer readable medium” are used to generally refer to tangible storage media such as removable storage units or a hard disk installed in a hard disk drive. These computer program products are means for providing software to the computer system 500. The computer programs, also referred to as computer control logic, are stored in main memory 506 and/or secondary memory 508. Computer programs may also be received via the communications interface 510. The computer program, when executed, enables the computer system 500 to implement the present invention. In particular, the computer program, when executed, enables processor 502 to implement the processes of the present invention, such as any of the methods described herein. Accordingly, such a computer program may represent a controller of the computer system 500. Where the disclosure is implemented using software, the software may be stored in a computer program product and loaded into computer system 500 using a removable storage drive, an interface, like communications interface 510.
The implementation in hardware or in software may be performed using a digital storage medium, for example cloud storage, a floppy disk, a DVD, a Blue-Ray, a CD, a ROM, a PROM, an EPROM, an EEPROM or a FLASH memory, having electronically readable control signals stored thereon, which cooperate or are capable of cooperating with a programmable computer system such that the respective method is performed. Therefore, the digital storage medium may be computer readable.
Some embodiments according to the invention comprise a data carrier having electronically readable control signals, which are capable of cooperating with a programmable computer system, such that one of the methods described herein is performed.
Generally, embodiments of the present invention may be implemented as a computer program product with a program code, the program code being operative for performing one of the methods when the computer program product runs on a computer. The program code may for example be stored on a machine readable carrier.
Other embodiments comprise the computer program for performing one of the methods described herein, stored on a machine readable carrier. In other words, an embodiment of the inventive method is, therefore, a computer program having a program code for performing one of the methods described herein, when the computer program runs on a computer.
A further embodiment of the inventive methods is, therefore, a data carrier, or a digital storage medium, or a computer-readable medium comprising, recorded thereon, the computer program for performing one of the methods described herein. A further embodiment of the inventive method is, therefore, a data stream or a sequence of signals representing the computer program for performing one of the methods described herein. The data stream or the sequence of signals may for example be configured to be transferred via a data communication connection, for example via the Internet. A further embodiment comprises a processing means, for example a computer, or a programmable logic device, configured to or adapted to perform one of the methods described herein. A further embodiment comprises a computer having installed thereon the computer program for performing one of the methods described herein.
In some embodiments, a programmable logic device, for example a field programmable gate array, may be used to perform some or all of the functionalities of the methods described herein. In some embodiments, a field programmable gate array may cooperate with a microprocessor in order to perform one of the methods described herein. Generally, the methods are performed by any hardware apparatus.
While this invention has been described in terms of several advantageous embodiments, there are alterations, permutations, and equivalents, which fall within the scope of this invention. It should also be noted that there are many alternative ways of implementing the methods and compositions of the present invention. It is therefore intended that the following appended claims be interpreted as including all such alterations, permutations, and equivalents as fall within the true spirit and scope of the present invention.
| Number | Date | Country | Kind |
|---|---|---|---|
| 20164707.0 | Mar 2020 | EP | regional |
This application is a continuation of copending International Application No. PCT/EP2021/056929, filed Mar. 18, 2021, which is incorporated herein by reference in its entirety, and additionally claims priority from European Application No. 20164707.0, filed Mar. 20, 2020, which is also incorporated herein by reference in its entirety.
| Number | Date | Country | |
|---|---|---|---|
| Parent | PCT/EP2021/056929 | Mar 2021 | US |
| Child | 17947806 | US |