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, uplink and sidelink shared channels, PDSCH, PUSCH, PSSCH, carrying user specific data, also referred to as downlink, uplink and sidelink payload data, the physical broadcast channel, PBCH, carrying for example a master information block, MIB, and one or more system information blocks, SIBs, one or more sidelink information blocks, SLIBs, if supported, the physical downlink, uplink and sidelink control channels, PDCCH, PUCCH, PSSCH, carrying for example the downlink control information, DCI, the uplink control information, UCI, and the sidelink control information, SCI, and physical sidelink feedback channels, PSFCH, carrying PC5 feedback responses. The sidelink interface may support a 2-stage SCI which refers to a first control region containing some parts of the SCI, also referred to as the 1st stage SCI, and optionally, a second control region which contains a second part of control information, also referred to as the 2nd stage SCI.
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 have 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 Inverse Fast Fourier Transform, IFFT, based signal with or without Cyclic Prefix, CP, e.g. Discrete Fourier Transform-spread-OFDM, 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
In a wireless communication system or network, like the one described above with reference to
It is noted that the information in the above section is only for enhancing the understanding of the background of the invention and, therefore, it may contain information that does not form conventional technology that is already known to a person of ordinary skill in the art.
An embodiment may have a user device, UE, for a wireless communication system, wherein the UE is to skip a certain number of control channel monitoring occasions, MOs, like physical downlink control channel, PDCCH, MOs, or a physical sidelink control channel, PSCCH, MOs, wherein, among the channel monitoring occasions to be skipped, the UE is to determine one or more exceptional control channel MOs which are not to be skipped, and the UE is not to skip the one or more exceptional control channel MOs, wherein the UE is configured or preconfigured, e.g., by a Radio Resource Control, RRC, signaling, with one or more rules for determining a MO as an exceptional MO, and/or wherein the one or more rules for determining a MO as an exceptional MO are fixed in a specification, and wherein the one or more rules may include one or more of the following: the MO is associated with an ongoing transmission or retransmission, the MO is associated with ongoing periodic transmissions, e.g., SPS, the MO is associated with a previous transmission of a packet for which a reply is expected, the MO includes a pre-emption signaling, e.g., when a plurality of transmissions are planned, the MO includes one or more CSI reports, e.g., for the SL, the MO uses certain resources for a high priority or emergency signaling, the MO is associated with pre-reserved transmissions, the MO contains a common search space.
According to another embodiment, a wireless communication system may have: one or more inventive user devices, UEs, and a base station for serving the one or more, UEs, wherein the base station is to support a communication of the UEs over the Uu interface and over a sidelink, SL, and wherein the BS is to configure or preconfigure a UE to skip only SL-related control channel MOs, or only Uu-related control channel MOs, or both SL-related control channel MOs and Uu-related control channel MOs.
According to another embodiment, a method for operating a user device, UE, for a wireless communication system, wherein the UE is to skip a certain number of control channel monitoring occasions, MOs, like physical downlink control channel, PDCCH, MOs, or a physical sidelink control channel, PSCCH, MOs, may have the steps of: determining which are not to be skipped one or more exceptional control channel MOs which are not to be skipped, and not skipping the one or more exceptional control channel MOs, wherein the UE is configured or preconfigured, e.g., by a Radio Resource Control, RRC, signaling, with one or more rules for determining a MO as an exceptional MO, and/or wherein the one or more rules for determining a MO as an exceptional MO are fixed in a specification, and wherein the one or more rules may include one or more of the following: the MO is associated with an ongoing transmission or retransmission, the MO is associated with ongoing periodic transmissions, e.g., SPS, the MO is associated with a previous transmission of a packet for which a reply is expected, the MO includes a pre-emption signaling, e.g., when a plurality of transmissions are planned, the MO includes one or more CSI reports, e.g., for the SL, the MO uses certain resources for a high priority or emergency signaling, the MO is associated with pre-reserved transmissions, the MO contains a common search space.
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
For stationary or vehicular use cases, like NR V2X, power saving may not be a concern since the UE may be connected to a power source, e.g., a power grid in case of a stationary or fixed UE, or an onboard battery of the vehicle in case of a vehicular UE, V-UEs. However, for other UEs with a limited or finite power supply, like regular user devices including a battery that needs to be recharged regularly, power saving is of concern. 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.
In accordance with conventional approaches, power saving when communicating in a wireless communication network, like the one described above with reference to
In accordance with other examples, the skipping may also be achieved by configuring an empty search space group, SSG, and signaling the UE, for example, by means of the skipping indication 200, to switch to the empty SSG. After a certain time, like the passing of an inactivity timer, the UE may switch back to the default or previous SSG.
The above-described conventional examples for causing a UE to skip PDCCH MOs may be implemented for any of the UEs described above. The process may also be implemented for UEs already operating in the DRX mode so that, for example, during the ON duration of the DRX cycle the UE may be signaled to skip a certain number of upcoming PDCCH MOs or PSSCH MOs during the ON duration of the DRX cycle.
While the approach described above with reference to
Further, in accordance with the conventional approaches for saving power by skipping control channel MOs, the UE applies the skipping responsive to an indication or a signaling that is received, e.g., from a base station. However, there may be situations in which the UE is to save power but may not receive any control signaling from the base station, e.g., a UE communicating over the sidelink or using an unlicensed band. Also, when considering a communication over the Uu interface, a base station may not be aware of a specific situation at a UE needing the UE, like an IoT device, to save power, like a very low battery status.
The present invention addresses the above-described drawbacks and provides enhancements and improvements for the control channel monitoring. Embodiments of the inventive approach describe different techniques for optimizing or improving the above-described conventional control channels skipping feature. Embodiments of the present invention may be implemented in a wireless communication system as depicted in
The present invention provides a user device, UE, for a wireless communication system, wherein the UE is to skip a certain number of control channel monitoring occasions, MOs, like physical downlink control channel, PDCCH, MOs, or a physical sidelink control channel, PSCCH, MOs, in accordance with a certain control channel MO skipping pattern.
In accordance with embodiments, the UE is configured or preconfigured, e.g., by a Radio Resource Control, RRC, signaling, with a plurality of different control channel MO skipping patterns and/or numbers of control channel MOs to skip, and, responsive to a certain criterion, the UE is to select which of the configured or preconfigured control channel MO skipping patterns or subset of skipping patterns the UE is to apply.
In accordance with embodiments, the certain criterion comprises one or more of the following:
In accordance with embodiments, the UE is to skip the control channel MOs responsive to a signaling, the signaling indicating the control channel MO skipping pattern the UE is to apply.
In accordance with embodiments, the signaling, e.g., a Downlink Control Information, DCI, or a Sidelink Control Information, SCI, includes the control channel MO skipping pattern the UE is to apply.
In accordance with embodiments, when the UE is configured or preconfigured, e.g., by an Radio Resource Control, RRC, signaling, with the plurality of different control channel MO skipping patterns and/or the numbers of control channel MOs to skip, the signaling, e.g., a Downlink Control Information, DCI, or a Sidelink Control Information, SCI, includes an indication which of the configured or preconfigured control channel MO skipping patterns the UE is to apply.
In accordance with embodiments, a control channel MO skipping pattern indicates one or more of the following:
The present invention provides a base station, BS, for a wireless communication system, wherein the base station is to serve one or more of the inventive user devices, UEs, and wherein the BS is to configure or preconfigure a UE with the plurality of different control channel MO skipping patterns and/or numbers of control channel MOs to skip.
The present invention provides a user device, UE, for a wireless communication system, wherein the UE is to skip a certain number of control channel monitoring occasions, MOs, like physical downlink control channel, PDCCH, MOs, or a physical sidelink control channel, PSCCH, MOs, and wherein the UE is to determine one or more exceptional control channel MOs, and the UE is not to skip the one or more exceptional control channel MOs.
In accordance with embodiments, the UE is configured or preconfigured, e.g., by a Radio Resource Control, RRC, signaling, with one or more rules for determining a MO as an exceptional MO, and/or wherein the one or more rules for determining a MO as an exceptional MO are fixed in a specification.
In accordance with embodiments, the one or more rules may include one or more of the following:
In accordance with embodiments, the UE is to skip the control channel MOs responsive to a signaling or responsive to a certain criterion.
In accordance with embodiments, the certain criterion comprises one or more of the following:
In accordance with embodiments, when skipping the k control channel MOs, the UE is
In accordance with embodiments, the UE is to determine a control channel MO to be an exceptional control channel MO, dependent on a type or format of Downlink Control Information, DCI, or dependent on a type of format of Sidelink Control Information, SCI, associated to a search space that is part of a control channel MO.
In accordance with embodiments, one or more of the following types or formats of DCIs cause a control channel MO to be determined as an exceptional control channel MO:
In accordance with embodiments, in case the UE is to perform up to K repetitions of a transmission of a Transport Block, TB, the UE is to determine an MO as an exceptional MO if the MO includes a search space associated with a DCI including the DFI so as to allow the UE, responsive to receiving an acknowledgement, ACK, to stop repeating the transmission of the TB before reaching the K repetitions.
In accordance with embodiments, the UE is to skip the exceptional MO with the DCI including the DFI only if a k repetition transmission is currently performed.
In accordance with embodiments, the UE is to determine an MO as an exceptional MO if the MO includes a search space associated with a DCI including a SFI and if one or more of the following conditions are is true:
In accordance with embodiments, in case of an ongoing communication, like a physical downlink shared channel, PDSCH, reception or a physical uplink shared channel, PUSCH, transmission or a physical sidelink shared channel, PSSCH, reception or transmission, the UE is to determine a certain MO as an exceptional MO if the UE expects to receive a Preemption Indication or a Cancelation Indication in the certain MO.
In accordance with embodiments, one or more of the following types or formats of SCIs cause a control channel MO to be determined as an exceptional control channel MO:
In accordance with embodiments, the UE is to monitor in an exceptional MO
In accordance with embodiments, the UE is to support a communication with one or more further UEs of the wireless communication network over a sidelink, SL, and wherein the UE is to skip
In accordance with embodiments, the UE is to determine autonomously, using one or more in criteria, to skip the certain number of control channel monitoring occasions, MOs.
The present invention provides a user device, UE, for a wireless communication system, wherein the UE is to determine autonomously, using one or more in criteria, to skip a certain number of control channel monitoring occasions, MOs, like physical downlink control channel, PDCCH, MOs, or a physical sidelink control channel, PSCCH.
In accordance with embodiments, the one or more criteria comprises one or more of the following:
The present invention provides a base station, BS, for a wireless communication system, wherein the base station is to serve one or more of the inventive user devices, UEs, wherein the base station is to support a communication of the UEs over the Uu interface and over a sidelink, SL, and wherein the BS is to configure or preconfigure a UE to skip
In accordance with embodiments, for causing the UE to skip the one or more upcoming control channel MOs, the UE is to receive a control message, like a DCI from a base station, indicating to skip the next k PDCCH MOs or PSCCH MOs.
In accordance with embodiments, the UE is configured with one or more default Search Space Groups, SSGs, carrying control information and with one or more empty SSGs, and wherein, for causing the UE to skip the one or more upcoming control channel MOs, the UE is to receive a signaling, e.g., from a base station, to switch to an empty SSG, and, after a certain time period, like an expiry of an inactivity timer, the UE is to switch back to a default SSG.
The present invention provides a wireless communication system, comprising a plurality of the inventive user devices.
The present invention provides a method for operating a user device, UE, for a wireless communication system, wherein the UE is to skip a certain number of control channel monitoring occasions, MOs, like physical downlink control channel, PDCCH, MOs, or a physical sidelink control channel, PSCCH, MOs, the method comprising: skipping the certain number of control channel monitoring occasions, MOs, in accordance with a certain control channel MO skipping pattern.
The present invention provides a method for operating a user device, UE, for a wireless communication system, wherein the UE is to skip a certain number of control channel monitoring occasions, MOs, like physical downlink control channel, PDCCH, MOs, or a physical sidelink control channel, PSCCH, MOs, the method comprising: determining one or more exceptional control channel MOs, and not skipping the one or more exceptional control channel MOs.
The present invention provides a method for operating a user device, UE, for a wireless communication system, the method comprising: determining, by the UE, autonomously, using one or more in criteria, to skip a certain number of control channel monitoring occasions, MOs, like physical downlink control channel, PDCCH, MOs, or a physical sidelink control channel, PSCCH.
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.
In accordance with embodiments of an aspect of the present invention, rather than simply skipping a certain number of upcoming PDCCH MOs or PSCCH MOs, the UE may apply a certain pattern for the skipping of the MOs. Thus, embodiments, provide a user device or UE that may skip control channel MOs using a certain pattern, responsive to a signaling or a command or an indication, or on its own, e.g., autonomously. For example, the UE is configured or preconfigured, e.g., by a Radio Resource Control, RRC, signaling, with a plurality of different control channel MO skipping patterns and/or with a plurality of different numbers of control channel MOs to skip.
In accordance with embodiments, responsive to a certain criterion, the UE selects autonomously or on its own which of the configured or preconfigured control channel MO skipping patterns or subset of skipping patterns the UE is to apply and/or how many MOs are to be skipped. Thus, the actual pattern to be applied is selected by the UE and is not signaled or elected by another network entity. For example, the one or more criteria may include one or more of the following:
In accordance with other embodiments, the UE selects the skipping pattern responsive to a signaling or an indication which indicates the control channel MO skipping pattern the UE is to apply. The signaling provides to the UE the information about the skipping pattern to apply, either explicitly, e.g., by including into the signaling the actual skipping pattern to be used, or implicitly, e.g., by only sending an index or the like to allow the UE to select from configured or preconfigured patterns.
In accordance with further embodiments, the above approaches of determining a skipping pattern to be applied autonomously or responsive to a signalling may both be used by the UE. Thus, in accordance with embodiments, one or more of the following options may be used:
Thus, in accordance with embodiments of the present invention, rather than simply signaling a certain number k of PDCCH MOs or PSCCH MOs that are to be skipped by a UE, a certain pattern for the skipping of the MOs may be applied. For example, rather than skipping every one of the k MOs following the determining that the MO skipping is to be applied, in accordance with embodiments, every n-th MO, like every second, every third, every fourth and so on, MO may be skipped.
In accordance with other embodiments of the present invention, the skipping pattern may indicate the actual MOs to be skipped, for example, the signaling 200 may signal to the UE to apply a skipping pattern that indicates those MOs to be skipped and those not to be skipped. For example, the skipping pattern may define one or more of the following:
With regard to
In accordance with embodiments, the skipping signaling 200 may include the actual skipping pattern to be applied by a receiving UE, while in accordance with other embodiments, the UE may be configured or preconfigured, for example by an RRC signaling, with one or more skipping patterns to be used. Responsive to the skipping signaling 200, in case only a single skipping pattern is configured or preconfigured in the UE, the UE applies the skipping pattern. In case two or more skipping patterns are configured or preconfigured in the UE, the skipping signaling 200 may include an indication which of the configured or preconfigured skipping patterns in the UE is to be applied.
In accordance with embodiments of a further aspect of the present invention, rather than using a fixed skipping pattern as described in the embodiments above, the UE may determine certain monitoring occasions, MOs, that may include control information or control messages that may be critical or essential for operating the UE in certain situations, and such control channel MOs are also referred to in the following as exceptional MOs. The exceptional MOs are not affected by the skipping, e.g., responsive to receiving the signaling 200, the UE may exclude those MOs it determined to be exceptional from the skipping.
In accordance with embodiments, the UE is configured or preconfigured, e.g., by a Radio Resource Control, RRC, signaling, with one or more rules for determining a MO as an exceptional MO, and/or the one or more rules for determining a MO as an exceptional MO are fixed in a specification. The rules may include one or more of the following:
In accordance with further embodiments, the UE may decide about applying the skipping and non-skipping of control channel MOs responsive to a signaling or, on its own using, for examples, one or more of the criteria described above for selecting autonomously or on its own a control channel MO skipping pattern.
In accordance with embodiments, the UE may not count the exceptional MOs such that when determining, for example, the k PDCCH MOs to be skipped, in total k MOs are skipped by the UE. In accordance with other embodiments, the exceptional MOs may also be taken into consideration for determining the overall number of MOs to be skipped, so that when applying this approach, the UE considers the next k MOs but does not apply the skipping to those MOs identified to be exceptional. Thus, in case the UE determines n exceptional MOs, with n=1, 2, 3, . . . , responsive to a signaling 200 indicating k MOs to be skipped, the UE actually skips only k-n MOs.
In accordance with embodiments, an exceptional MO may be determined dependent on a type or format of the control message being associated with the monitoring occasion, like a DCI or SCI being associated with a search space is part of the PDCCH MO or PSSCH MO.
In accordance with embodiments, when determining at a certain monitoring occasion one or more of the following DCI types or formats, the MO may be regarded by the UE as an exceptional MO:
In accordance with further embodiments, when determining at a certain monitoring occasion one or more of the following SCI types or formats, the MO may be regarded by the UE as an exceptional MO:
In accordance with embodiments, the MOs illustrated in
A MO may be regarded as an exceptional MO by the UE in case a DCI associated with the MO includes the DFI, which may be employed by the UE when performing up to K repetitions of the transmission of a transport block TB, also referred to as the UL K-repetition feature. While performing the up to K, K=1, 2, 3, . . . , repetitions of the TB, the UE, in parallel, monitors the PDCCH for a DCI including the DFI field. The DFI field may indicate an acknowledgement, ACK, for the current one of the up to K repetitions of the TB which, in turn, causes the UE to stop repeating the transmission earlier, i.e., before actually reaching the K repetitions. However, in case the UE receives the PDCCH skipping signal 200, it may also skip the monitoring of the control message for the DFI so that, in such a situation, despite the fact that some energy saving is achieved by not monitoring all PDCCH monitoring occasions, still all the K repetitions of the transmission of the TB are performed by the UE. However, this leads to an unnecessary consumption of energy because the repetition or retransmission of the TB is not needed as it was already successfully received at the base station as acknowledged by the DFI which, however, has not been received at the UE.
Therefore, in accordance with embodiments, a MO associated with the DCI including the DFI is considered an exceptional MO that is still monitored by the UE when it performs the above-described uplink K-repetition transmission of the TB. Upon checking the specific DCI format, the UE can tell whether the DCI leads to a situation in which the MO carrying the DCI is to be considered an exceptional MO which, despite the skipping instruction 200, is monitored by the UE. In accordance with embodiments, other DCI formats, more specifically other monitoring occasions associated with other DCI formats, may be skipped in accordance with the skipping signaling 200, thereby causing the UE to monitor only a reduced set of monitoring occasions or search spaces, namely those including the DCI format having the DFI. This ensures that, in addition to the power saving by skipping multiple PDCCH monitoring occasions, also an energy consumption is reduced because unnecessary retransmissions concerning an uplink transmission from the UE towards the base station, is avoided in case the acknowledgment of the receipt of the initial transmission or a later retransmission is received.
In accordance with other embodiments, as mentioned above, the UE may continue to monitor PDCCH monitoring occasions associated with the DCI format including the SFI field. For example, in TDD systems, the SFI field indicates whether certain slots or symbols in a slot are to be considered as downlink, DL, or uplink, UL, slot/symbol. Dependent on the signaling, certain MOs may be present or not, which may affect the counting of the skipped MOs. Also, configured grants, CGs, may be used or not used dependent on whether a certain number of slots or symbols are declared to be UL or DL slots/symbols. Thus, for properly operating the UE, it is to monitor the PDCCH monitoring occasions for DCI formats including the SFI, despite the receipt of the skipping signaling 200. For example, the monitoring of MOs associated with DCI formats including the SFI may be tied to one or more of the following conditions:
In accordance with such embodiments, the UE may only monitor a monitoring occasion associated with a DCI format including the SFI if at least one of the above-mentioned conditions is met or is true, i.e. in case the SFI has some influence or effect on any one of the mentioned procedures, namely the uplink grant, the downlink assignment, the monitoring occasions, the configured grant or the SPS.
In case a monitoring occasion associated with the DCI format including the SFI is skipped, the symbols indicated by the SFI to be downlink or uplink symbols, need to be treated as flexible until the next monitoring occasion associated with a DCI format including the SFI. Hence, these symbols may not be used, e.g., for Configured Grants. Furthermore, the gNB may want to overwrite a previous SFI due to a change in the cell environment or the channel which is not possible once the UE is indicated to skip these MOs.
In accordance with embodiments, a UE may support a preemption indication or cancelation indication indicating that certain resources are no longer available, e.g., resources for a PDSCH reception or PUSCH transmission over the Uu interface, or for or a physical sidelink shared channel, PSSCH, reception/transmission. However, in case the UE is to skip PDCCH MOs associated with a DCI including the preemption indication or cancelation indication, the actual occurrence of a preemption or cancelation can no longer be handled by the UE.
Therefore, in accordance with embodiments of the present invention, in case the UE has a PDSCH reception or a PUSCH transmission before or during the time period over which the PDCCH MOs are to be skipped in accordance with the signaling 200, the UE does not skip those PDCCH MOs in which expects to receive a preemption indication or cancelation indication, thereby maintaining the proper operation of the UE.
In accordance with further embodiments of the present invention, when considering the above-described exceptional monitoring occasions, UE monitors in an exceptional MO exceptional MO
Thus, the UE may apply either a full monitoring or a limited monitoring of the search spaces associated with the exceptional MOs or only common search spaces. The UE may be configured or preconfigured to use one of the three approaches. The UE may monitor one or more CORESETs including the search spaces carrying control messages for the UE, and when applying the full monitoring, the UE may monitor all search spaces within the one or more CORESETs that are associated with the exceptional MO. In accordance with embodiments applying the limited monitoring, the UE monitors only the search spaces within the one or more CORESETs that are associated with the exceptional MO. Thus, the limited monitoring further reduces the power consumption as, other than in the full monitoring case, not all search spaces are to be monitored, but only those associated, for example, with the DCI format on the basis of which the UE determined the search space to be an exceptional MO.
UE Autonomously Deciding about Control Channel MO Skipping
In the embodiments described so far, it is assumed that the UE received some signaling causing the UE to perform the conventional control channel MO skipping and to apply the inventive improvements. Stated differently, a UE is, conventionally, put into a control channel MO skipping mode by another network entity, like a base station. However, as mentioned above, there may be situations in which the UE is to save power but may not receive any control signaling from the base station, or the wireless communication network may not be aware of a certain situation at the UE the needs the power saving. For example, a UE communicating over the sidelink or using an unlicensed band may not receive a control signaling from the base station. Further, when considering a UE, like an IOT device for smart metering applications, communicating with the base station over the Uu interface, the base station may not be aware that IoT device has very low battery status so that power saving is needed at the IoT device.
These problems are addressed in accordance with embodiments of a yet further aspect of the present invention by allowing a UE to decide on its own or autonomously to apply control channel MO skipping. The UE may be configured or preconfigured with certain situation and/or rules in which it may apply MO skipping autonomously or independent of any signaling from the system. Thus, instead of relying on a signaling or indication from another network entity, the UE may decide on its own whether to enter into the control channel MO skipping mode for saving power.
Embodiments of the present invention provide a user device or UE that, using one or more in criteria, determines autonomously to skip a certain number of control channel monitoring occasions, MOs, like physical downlink control channel, PDCCH, MOs, or a physical sidelink control channel, PSCCH. For example, the one or more criteria may include one or more of the following:
In accordance with further embodiments, once the UE decided to apply control channel MO skipping, it may do so in accordance with conventional approaches, namely simply skipping the next k upcoming control channel MOs. In such cases, the UE may be configured or preconfigured with the number k of control channel MOs to skip. Further, in accordance with embodiments, the UE may apply any of the above described embodiments for determining which of the upcoming control channel MOs are to be skipped, e.g., in accordance with the inventive skipping pattern or by not skipping MOs determined to be exceptional.
The embodiments of the aspects of the present invention were described primarily with reference to the Uu interface for connecting a UE to the access point of a RAN, like a base station. However, the inventive approach may equally be applied to a sidelink communication. Thus, also UEs communicating only with each other over the sidelink and, e.g., are not supported with regard to the resource allocation by the base station of the network, may also employ the inventive approaches for further power savings when applying the control message skipping feature, while avoiding undesired drawbacks or malfunctions of the UEs due to missed control messages.
In accordance with embodiments, when the UEs provides for a connection to both the base station and to another UE, the skipping feature may be applied separately for the Uu related PDCCH MOs and the SL-related PDCCH MOs so that, for example, power savings are possible in one of the connections, like in the Uu connection, without affecting the other communication link, like the SL link or the other way around. For example, the UE may be configured accordingly by a base station.
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-IoT, 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 an Integrated Access and Backhaul, IAB, node, 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.
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 600. The computer programs, also referred to as computer control logic, are stored in main memory 606 and/or secondary memory 608. Computer programs may also be received via the communications interface 610. The computer program, when executed, enables the computer system 600 to implement the present invention. In particular, the computer program, when executed, enables processor 602 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 600. Where the disclosure is implemented using software, the software may be stored in a computer program product and loaded into computer system 600 using a removable storage drive, an interface, like communications interface 610.
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 |
---|---|---|---|
21166597.1 | Apr 2021 | EP | regional |
This application is a continuation of copending International Application No. PCT/EP2022/058662, filed Mar. 31, 2022, which is incorporated herein by reference in its entirety, and additionally claims priority from European Application No. 21166597.1, filed Apr. 1, 2021, which is also incorporated herein by reference in its entirety. The present application relates to the field of wireless communication systems or networks, more specifically to a control channel monitoring enhancements.
Number | Date | Country | |
---|---|---|---|
Parent | PCT/EP2022/058662 | Mar 2022 | US |
Child | 18477595 | US |