Reallocation and reservation of resources for high-priority communications and QoS feedback.

The proposed resource reallocation and QoS feedback mechanisms address the inefficiencies in conventional networks by prioritizing high-priority transmissions and providing real-time network status feedback, ensuring reliable communication for critical applications.

JP7846430B2Active Publication Date: 2026-04-15KONINKLIJKE PHILIPS NV
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2025-03-11
Publication Date
2026-04-15

AI Technical Summary

Technical Problem

Conventional wireless communication networks struggle to efficiently handle high-priority communications and provide adequate QoS feedback, particularly in scenarios with limited resources or network congestion, impacting the performance of critical applications like V2X services.

Method used

Implementing mechanisms for resource reallocation and reservation, including sidelink pause/resume/shift priority and proactive resource reservation, as well as QoS feedback systems that monitor and report RAN status to applications, ensuring high-priority transmissions meet latency and reliability requirements.

Benefits of technology

Enhances the performance of high-priority communications by ensuring resources are allocated efficiently and QoS is maintained, even in congested conditions, thereby supporting critical applications like V2X services effectively.

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Abstract

To provide a method for reallocating and reserving resources for quality of service, QoS, feedback, and for handling some events for high priority communications in a wireless communication network in the field of wireless communication.SOLUTION: The present invention relates to an implementation of such an approach for an entity of a wireless communication network or a system that performs sidelink communications, such as a V2X Mode 3 UE, or a Mode 4 UE. Specifically, an improved technique for resource reallocation and reservation is presented for high-priority communication, for QoS feedback, and for handling some events in a wireless communication network.SELECTED DRAWING: Figure 6
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Description

[Technical Field]

[0001] This application relates to the field of wireless communications, and more particularly to methods for reallocating and reserving resources in wireless communication networks for high-priority communications, quality of service (QoS), feedback, and handling certain events. Embodiments relate to implementations of such methods for entities of wireless communication networks or systems performing sidelink communications such as V2X Mode 3 UE or Mode 4 UE. [Background technology]

[0002] Figure 1 is a schematic diagram of an example of a terrestrial wireless network 100, which includes a core network 102 and a radio access network 104. The radio access network 104 may include multiple base stations gNB1 to gNB5, each serving a specific area around a base station schematically represented by cells 1061 to 1065. Base stations are provided to serve users within a cell. The terms base station, BS, refer to gNB in ​​5G networks, eNB in ​​UMTS / LTE / LTE-A / LTE-A Pro, or simply BS in other mobile communication standards. Users can be fixed devices or mobile devices. The wireless communication system may also be accessed by mobile or fixed IoT devices that connect to base stations or users. Mobile devices or IoT devices may include physical devices, ground vehicles such as robots or cars, aerial vehicles such as manned or unmanned aerial vehicles (UAVs), the latter also called drones, buildings, and other items or devices, which have network connectivity that enables them to collect and exchange data across existing network infrastructure, as well as electronics, software, sensors, actuators, etc., embedded within them. Figure 1 shows an illustrative diagram of only five cells, but a wireless communication system may include more such cells. Figure 1 shows two user UE1 and UE2, also called user equipment, located within cell 1062 and serviced by base station gNB2. Another user UE3 is shown within cell 1064, serviced by base station gNB4. Arrows 1081, 1082, and 1083 schematically represent the uplink / downlink connections for transmitting data from users UE1, UE2, and UE3 to base stations gNB2 and gNB4, or from base stations gNB2 and gNB4 to users UE1, UE2, and UE3. Furthermore, Figure 1 shows two IoT devices 1101 and 1102 within cell 1064, which may be fixed or mobile devices. IoT device 1101 accesses the wireless communication system via base station gNB4 to receive and transmit data, as schematically represented by arrow 1121. IoT device 1102 accesses the wireless communication system via user UE3, as schematically represented by arrow 1122. Each base station gNB1 to gNB5 may be connected to the core network 102 via their respective backhaul links 1141 to 1145, schematically represented by arrows pointing to “core” in Figure 1, for example, via the S1 interface. The core network 102 may be connected to one or more external networks. Furthermore, some or all of each base station gNB1 to gNB5 may be connected to each other via their respective backhaul links 1161 to 1165, schematically represented by arrows pointing to “gNBs” in Figure 1, for example, via the S1 or X2 interface, or the XN interface in NR.

[0003] A physical resource grid may be used for data transmission. A physical resource grid may comprise a set of resource elements to which various physical channels and physical signals are mapped. For example, physical channels may include physical downlink and uplink shared channels (PDSCH, PUSCH) that carry user-specific data, also known as downlink and uplink payload data; physical broadcast channels (PBCH) that carry, for example, master information blocks (MIBs) and system information blocks (SIBs); and physical downlink and uplink control channels (PDCCH, PUCCH) that carry, for example, downlink control information (DCI). At the uplink, physical channels may further include physical random access channels (PRACH or RACH) used by the UE to access the network once the UE has synchronized and retrieved the MIBs and SIBs. Physical signals may include reference signals or symbols (RS), synchronization signals, etc. A resource grid may comprise frames or radio frames having a duration in the time domain and a given bandwidth in the frequency domain. A frame may have a number of subframes of a predefined length. Each subframe may contain two slots of six or seven OFDM symbols, depending on the length of the cyclic prefix (CP). Frames may also consist of fewer OFDM symbols, for example, when using a shortened transmit time interval (sTTI) or a mini-slot / non-slot-based frame structure with very few OFDM symbols.

[0004] Wireless communication systems can be any single-tone or multi-carrier systems that use frequency division multiplexing, such as orthogonal frequency division multiplexing (OFDM) systems, or orthogonal frequency division multiplexing (OFDMA) systems, or any other IFFT-based signals with or without CP, such as DFT-s-OFDM. Other waveforms may be used, such as non-orthogonal waveforms for multiplexing, such as filtered bank multicarrier (FBMC), generalized frequency division multiplexing (GFDM), or universal filtered multicarrier (UFMC). Wireless communication systems may operate according to standards such as LTE Advanced Pro, or 5G or NR, new radio, etc.

[0005] The wireless network or communication system shown in Figure 1 may be a heterogeneous network having separate overlay networks, for example, a network of macrocells where each macrocell includes macro base stations such as base stations gNB1 to gNB5, and a network of small cell base stations such as femto or pico base stations (not shown in Figure 1).

[0006] In addition to the terrestrial wireless networks described above, there are also non-terrestrial wireless communication networks, including spaceborne transceivers such as satellites, and / or airborne transceivers such as unmanned aerial vehicle systems. Non-terrestrial wireless communication networks or systems are used in a similar manner to the terrestrial systems described above, with reference to Figure 1, for example, LTE Advanced Protocol It can operate according to the standard, or 5G or NR, new wireless, or other standards.

[0007] The wireless communication networks described above can be used by applications to provide services to UEs within the RAN with a certain quality of service (QoS). QoS can be monitored within the wireless communication network. For example, in LTE, QoS can be determined per Advanced Packet System, EPS, and bearer, as detailed in reference [1], while in NR, QoS can be determined per flow, as detailed in reference [2]. Reference [2] refers to Allocation / Retention Priority (ARP), which determines whether pre-allocated resources should be reallocated in LTE and NR based on higher priority services. ARP has a range of 1 to 15 levels and can be represented by preemption capability, which defines whether a service data flow can obtain resources already allocated to another service data flow with a lower priority level, and by preemption vulnerability information, which defines whether a service data flow can lose resources allocated to it in order to approve a service data flow with a higher priority level. Preemption capability and preemption can consist of a "yes" or "no" flag, depending on the priority of the service, as described in reference [3]. ARP may be considered when creating a new EPS bearer in a fully loaded wireless network, i.e., a network that currently has insufficient resources. Emergency VoIP calls are a typical example where an existing bearer is removed in an event where an emergency call must be made.

[0008] In the context of LTE, the network entities that handle monitoring and reporting to application servers in the EPS are the Service Capability Exposure Function (SCEF) and the Mobility Management Entity (MME). The 3GPP architecture for service capability exposure in the EPS is described in detail in reference [4], with reference to Figure 4.2-2. The procedure for monitoring event configuration and deletion in the MME / SGSN is also described in detail in reference [4], with reference to Figure 4.2.

[0009] In the context of NR, the network entities that handle application server monitoring and reporting to application servers in 5GS are Access and Mobility Management (AMF) and Network Exposure Function (NEF). Event exposure using NEF is described in detail in reference [5] with reference to Figure 4.15.3.2.3-1, and a list of event-based monitoring capabilities and corresponding network functions (NFs) that detect events is shown in Table 4.15.3.1-1 of reference [5].

[0010] In mobile communication networks, such as LTE or 5G / NR networks, as described above with reference to Figure 1, there may be UEs that communicate directly with each other over one or more sidelink (SL) channels, for example, using the PC5 interface. UEs that communicate directly with each other over sidelinks may include vehicles communicating directly with other vehicles (V2V communication), and vehicles communicating with other entities in the wireless communication network, such as roadside entities like traffic lights, traffic signs, or pedestrians (V2X communication). Other UEs may not be associated with a vehicle and may comprise any of the devices described above. Such devices may also communicate directly with each other using SL channels (D2D communication).

[0011] Considering two UEs communicating directly with each other on a sidelink, both UEs may be serviced by the same base station, that is, both UEs may be serviced by the base station shown in Figure 1. One of the stations may be within the base station's coverage area. This is called the “in-coverage” scenario. In another example, both UEs communicating on a sidelink may not be served by the base station, which is called the “out-of-coverage” scenario. Note that “out-of-coverage” does not mean that the two UEs are not in one of the cells shown in Figure 1, but rather that these UEs are not connected to the base station, for example, they are not in an RRC connection state. Another scenario is called the “partial coverage” scenario, in which one of two UEs communicating with each other on a sidelink is served by the base station, but the other UE is not.

[0012] Figure 2 is a schematic diagram of a situation where two UEs communicating directly with each other are both within the coverage of a base station. The base station gNB has a coverage area schematically represented by circle 200, which essentially corresponds to the cells schematically represented in Figure 1. The UEs communicating directly with each other include a first vehicle 202 and a second vehicle 204, both of which are within the coverage area 200 of the base station gNB. Both vehicles 202 and 204 are connected to the base station gNB and, in addition, are directly connected to each other on the PC5 interface. V2V traffic scheduling and / or interference management are assisted by the gNB via control signaling on the Uu interface, which is the radio interface between the base station and the UEs. The gNB allocates resources that will be used for V2V communication on the sidelink. This configuration is also called a Mode 3 configuration.

[0013] Figure 3 is a schematic diagram of a situation where UEs are not within the base station's coverage, i.e., each UE communicating directly with one another is not connected to a base station, but is physically within the cell of the wireless communication network. The three vehicles 206, 208, and 210 are shown communicating directly with each other on a sidelink, for example, using the PC5 interface. V2V traffic scheduling and / or interference management are based on algorithms implemented between the vehicles. This configuration is also called a Mode 4 configuration. As mentioned above, the out-of-coverage scenario in Figure 3 does not mean that each Mode 4 UE is outside the base station's coverage 200, but rather that each Mode 4 UE is not serviced by a base station or is not connected to a base station in the coverage area. Thus, within the coverage area 200 shown in Figure 2, there may be situations where Mode 4 UEs 206, 208, and 210 are also present, in addition to Mode 3 UEs 202 and 204.

[0014] When vertical applications, such as V2X applications, run on cellular networks like 3GPP EPS or 5GS, network conditions, such as congestion information, can help the application adjust itself to network capabilities. Network conditions may include the current network status and / or predictions of the network status. Considering V2X as an exemplary application, the importance of network status feedback can be illustrated in various scenarios and use cases.

[0015] The benefits and necessity of network feedback to applications are recognized in 3GPP standardization for V2X applications. - "In a V2X scenario, for a given CoR (Category of Requirements), the LoA (Level of Automation) may be adjusted within a range between 1 and 5, and this adjustment in LoA may be a result of specific network conditions (e.g., congestion). The V2X application may monitor network conditions and adapt the LoA for a given CoR corresponding to the V2X scenario. This change in LoA should also be communicated to the V2X UE by the V2X application server." [3GPP TR 23.795 clause 5.2] - "[AR-6.3.2-a] The V2X Application Enabler Server is a V2X application enabler server. The server shall enable monitoring of network conditions and QoS for a single V2X UE, or collectively, for a group of V2X UEs (supporting V2X services and located in proximity) that have ongoing sessions. [3GPP TR 23.795 clause 6.3.2] - "[AR-6.3.2-b] A 3GPP network system (EPS / 5GS) shall be able to report changes in QoS for V2X UE to the V2X application enabler server." [3GPP TR 23.795 clause 6.3.2]

[0016] In conventional 5G core networks, 5GC, a notification is sent to the application if the GFBR (Guaranteed Flow Bitrate) bitrate falls below the guaranteed rate. However, the following applies: - This notice is limited to GFBR traffic and does not apply to other flow types. - This notification does not exist in the case of any other degradation of QoS factors, such as delay or PDB. - There is no notification to inform the application about this rate or any other QoS factor, such as an improvement in the RAN bit rate.

[0017] Therefore, traditional notification systems cannot handle the network monitoring required by vertical applications such as V2X. In addition to notification mechanisms, traditional systems' core networks, such as EPC and 5GC, have mechanisms for exposing certain network events or capabilities to applications. However, such network exposure capability functionality is necessary for the reliable and efficient performance of vertical applications such as V2X. Thus, traditional methods that address handling high-priority transmissions and QoS are insufficient in many situations, such as in vehicle scenarios, where the system needs to deal with limited resources or a number of events.

[0018] It should be noted that the information in the above sections is intended solely to enhance understanding of the background of the present invention and therefore may include information that does not constitute prior art already known to those skilled in the art. [Prior art documents]

Non-Patent Literature

[0019]

Non-Patent Literature 1

Non-Patent Literature 2

Summary of the Invention

Problems to be Solved by the Invention

[0020] Starting from the prior art described above, the object underlying the present invention is to provide an improved method for resource reallocation and reservation for high-priority communication, for QoS feedback, and for handling several events in a wireless communication network.

Means for Solving the Problems

[0021] This object is achieved by the subject matter as defined in the independent claims, and advantageous further developments are defined in the dependent claims.

[0022] Next, embodiments of the present invention will be described in more detail with reference to the accompanying drawings.

Brief Description of the Drawings

[0023] [Figure 1] It is a schematic diagram of an example of a wireless communication system. [Figure 2] It is a schematic diagram of a situation where UEs communicating directly with each other are within the coverage of a base station. [Figure 3] It is a diagram showing a scenario where UEs communicating directly with each other are not within the coverage of a base station, that is, not connected to a base station. [Figure 4]This is a schematic diagram of a wireless communication system for communicating information between a transmitter and one or more receivers, according to an embodiment of the present invention. [Figure 5] This is a schematic diagram of a wireless communication system that can operate according to the teachings of the present invention described herein. [Figure 6] This figure shows a transmission pause to release resources that will be used for a higher-priority service, according to an embodiment of the present invention. [Figure 7] This figure shows the SPS-config information element, IE, as modified according to an embodiment of the present invention. [Figure 8] This figure schematically illustrates one embodiment of a second aspect of the present invention. [Figure 9] This is a signaling chart representing one embodiment for monitoring RAN status. [Figure 10] This is a signaling chart for adapting vehicle UE QoS feedback according to one embodiment of the present invention. [Figure 11] This figure shows one embodiment of a HandoverRequest IE extended by embodiments of the present invention. [Figure 12] This figure shows one embodiment for MobilityControlInfo IE extended by embodiments of the present invention. [Figure 13] This figure shows one embodiment of modifying a conventional monitoring procedure to obtain RAN status. [Figure 14] This is a signaling chart of one embodiment for RPSI processing in 5GS using NWDAF. [Figure 15(a)] This figure illustrates a fourth embodiment in which a critical failure message is created and a push notification message is sent to an application, and the network detects a critical situation or failure. [Figure 15(b)]This figure illustrates a fourth embodiment in which a critical failure message is created and a push notification message is sent to the application, and the application server detects a critical situation or failure. [Figure 15(c)] This figure illustrates a fourth embodiment in which a critical failure message is created and a push notification message is sent to the application, and the UE detects a critical situation or failure. [Figure 16] This figure shows an example of a computer system on which a unit or module described in accordance with the method of the present invention, and the steps of the method, can be performed. [Modes for carrying out the invention]

[0024] Next, embodiments of the present invention will be described in more detail with reference to the accompanying drawings, in which the same or similar elements are assigned the same reference numerals.

[0025] 3GPP defines several use cases for NR V2X, such as vehicle platooning, enhanced sensors, advanced driving, and remote driving. To realize such use cases, new technologies used in 5G NR may be incorporated along with the reuse of existing LTE V2X mechanisms. Since 5G NR networks conform to multiple numerologies and subcarrier spacings (SCSs), NR V2X networks may utilize multiple resource pools with different SCSs. The selection of the relevant resource pool with a given SCS may depend on the application service requesting resources for transmission. Depending on the services provided, it is up to the application to determine the expected QoS level from the network. For example, in LTE, V2X broadcast services... There are eight different levels of priority and reliability that can be assigned to different application services. For example, where an application requires high priority, a resource pool numerology with a higher SCS might be primarily selected to meet latency requirements. The base station BS can ensure that it meets the priority and reliability requirements in Mode 3 operation. NR currently supports the following numerologies:

[0026] [Table 1]

[0027] The initial Vehicle-to-Everything (V2X) specification is included in 3GPP Standard Release 14. Resource scheduling and allocation are modified to conform to V2X requirements compared to the original Device-to-Device (D2D) communication standard. Cellular V2X operates in the two configurations described above, Mode 3 and Mode 4, in terms of resource allocation. A V2X UE operating in Mode 3 obtains scheduling information for sidelink, SL, and transmission from a base station such as a BS, eNB, or gNB, while a Mode 4 UE autonomously performs resource selection. A vehicle can also transmit messages in one of two ways: either in Semi-Persistent Scheduled (SPS), or transmission, at regular intervals over a certain duration, or in One-Shot (OS), or transmission, only once in a single instance. For each of these transmissions, there is a ProSe per packet priority (PPPP) indicator and a ProSe per packet reliability (PPPR) indicator attached to each broadcasted packet, indicating the level of priority and reliability required for the packet by a given application.

[0028] Enhanced V2X addresses achieving certain quality of service (QoS) for a given application service. For example, when a resource pool is heavily loaded with traffic such as V2X traffic, meaning there is high occupancy within the pool, the BS may not be able to provide the expected QoS requirements for a given application in the case of Mode 3 SL transmission. In the case of Mode 4 SL transmission, the UE may autonomously allocate resources without any guarantee of QoS requirements.

[0029] The problem with conventional implementations is that some critical applications, particularly those sending high-priority messages and requiring high reliability, may fail to function as expected in such scenarios, thereby impacting the performance of the desired service. Furthermore, the RAN may communicate arbitrary information back to the application indicating that the required QoS cannot be met.

[0030] This is addressed by various embodiments of the present invention, which will be described in more detail below. Each embodiment will be described separately, but it should be noted that two or more or all of these embodiments may be combined.

[0031] First mode: Sidelink pause / resume / shift priority Embodiments of the first aspect of the present invention may be implemented in a wireless communication system, such as those shown in Figures 1, 2, and 3, which includes a base station and a user such as a mobile terminal or IoT device. Figure 4 shows a transmitter 300 and one or more receivers 3021-302 n This is a schematic diagram of a wireless communication system for communicating information between a transmitter 300 and a receiver 302. The transmitter 300 and receiver 302 can communicate via a wireless communication link or channels 304a, 304b, 304c, such as a radio link. The transmitter 300 has one or more antennas coupled together. T, or may include an antenna array having multiple antenna elements, a signal processor 300a, and a transceiver 300b. The receiver 302 has one or more antennas coupled together R , or an antenna array having multiple antennas, and signal processors 302a1, 302a n And, transceiver 302b1, 302b n This includes.

[0032] According to one embodiment, for example, as also shown in Figure 2, the transmitter 300 may be a base station and the receiver may be an UE. The base station 300 and UE 302 may communicate with each other via first wireless communication links 304a and 304b, such as radio links, using the Uu interface, while UE 302 may communicate with each other via a second wireless communication link 304c, such as radio links, using the PC5 interface.

[0033] According to one embodiment, for example, as also shown in Figure 3, the transmitter 300 may be a first UE and the receiver may be a further UE. The first UE 300 and the further UE 302 may communicate via their respective wireless communication links 304a to 304c, such as a radio link, using the PC5 interface.

[0034] The transmitter 300 and one or more receivers 302 may operate in accordance with the teachings of the present invention as described herein.

[0035] Sidelink Pause / Resume / Shift Priority The present invention relates to an apparatus for a wireless communication system, wherein the wireless communication system provides a set of resources, each of which will be allocated for a transmission, and the transmission includes one or more first transmissions having a first priority level and one or more second transmissions having a second priority level, wherein the first priority level is higher than the second priority level. The device is configured to receive a signal if there are not enough resources from the set of resources for the next first transmission. The present invention provides a device that causes a signal to cause the device to stop an ongoing second transmission in order to free up resources to transmit or receive a first transmission.

[0036] According to the embodiment, Stopping an ongoing second transmission includes pausing the second transmission for a predetermined time or pause interval. The signal includes a message indicating a pause interval over which a second transmission will be paused, and the interval is selected to be suitable for the transmission or reception of the first transmission.

[0037] According to the embodiment, the message further illustrates a configuration that will be used when resuming a second transmission after the first transmission has been completed, and the message further illustrates a configuration that will be used when resuming a second transmission, and the configuration is The same configuration used for the first second transmission, or One of several other configurations known in the device, or This is a new configuration.

[0038] According to the embodiment, Each transmission includes at least one or more third transmissions having a third priority level, wherein the first and second priority levels are higher than the third priority level. A wireless communication system provides multiple sets of resources, the multiple sets of resources including a first set of resources which will be allocated for a first transmission and a second transmission, and a second set of resources which will be allocated for a third transmission.

[0039] According to the embodiment, the resource includes multiple subcarriers, and the subcarrier spacing (SCS) of the first set of resources is higher than the SCS of the second set of resources.

[0040] According to the embodiment, The transmission has associated low latency and / or high reliability requirements, as well as / or given quota requirements, to ensure that the application service meets the required quality of service (QoS). Stopping an ongoing second transmission on the resources that will be released includes reallocating resources for the second transmission in a second set of resources, provided that certain low-latency and high-reliability requirements as well as quota requirements for the second transmission can be met.

[0041] According to the embodiment, the second transmission is buffered in the device's buffer, and the device, If the communication range to the second transmission target exceeds the maximum communication range, If the first transmission exceeds the timer, The buffer is configured to flush the buffered second transmission.

[0042] According to the embodiment, A first transmission comprises a message having a first priority associated therewith, and a second transmission comprises a message having a second priority associated therewith. The first message comprises one or more of the following: an emergency message and safety-related message, such as an accident warning message, a road obstacle warning, or an emergency vehicle approach message.

[0043] According to the embodiment, A wireless communication system includes multiple base stations, a gNB, and multiple user devices, UEs, and the device includes a UE. A UE is connected to one or more other UEs via a side link. The UE is configured for sidelink communication with one or more other UEs. Resources from a set of resources are scheduled by the gNB for sidelink communication with one or more other UEs.

[0044] According to the embodiment, A wireless communication system includes multiple user devices, UEs, and the device is equipped with UEs. A UE is connected to one or more other UEs via a side link. A UE is configured for sidelink communication with one or more other UEs, and the UE is configured to autonomously schedule resources from a set of resources for sidelink communication.

[0045] According to one embodiment, the signal includes sidelink control information, an SCI, and a message, and the SCI message causes one or more other UEs that occupy the resources described in the SCI message to pause or shift a second transmission, which will be used for a first transmission.

[0046] According to the embodiment, the priority of a message is statically mapped to the corresponding service.

[0047] According to one embodiment, the set of resources comprises multiple resources that are continuous or discontinuous across the frequency domain and adjacent or non-adjacent across the time domain.

[0048] According to one embodiment, a set of resources defines a resource pool.

[0049] The present invention relates to a transmitter for a wireless communication system, wherein the wireless communication system provides a predefined set of resources, each of which will be allocated for a transmission, and the transmission comprises one or more first transmissions having a first priority level and one or more second transmissions having a second priority level, wherein the first priority level is higher than the second priority level. If there are not enough resources from the set of resources for the next first transmission, the transmitter will... - Signaling the receiver to stop the second transmission in order to release the resources used by the ongoing second transmission, and - Reallocating released resources for the first transmission. It was configured to perform the following actions.

[0050] According to the embodiment, the transmitter is The percentage of resources used from a set of resources has reached a predefined threshold, or the percentage of unused resources from a set of resources has fallen below a predefined threshold, or There must be enough unused resources in the set of resources for allocation to the first transmission. It is configured to determine.

[0051] Accordingly, according to an embodiment of the first aspect, a transmitter may perform resource allocation in an extremely congested resource pool due to its ability to interrupt lower-priority transmissions for which resources have already been allocated. For example, if a UE is out of coverage and operating in mode 4 (see Figure 3), the UE may send a sidelink control information (SCI) message for a higher-priority transmission, such as an urgent or safety-related message, and other UEs occupying the resources listed in the SCI for the higher-priority transmission may suspend or shift their lower-priority transmissions, thereby giving priority to the higher-priority transmission. According to the embodiment, the MAC layer may be responsible for priority handling of packets arriving at the physical layer, and if a lower-priority message has already been allocated permission in a congested resource pool and has already started transmitting on the SL, the solution of the present invention allows for the reallocation of resources to the higher-priority message. According to the embodiment, a network entity such as a BS or UE may suspend or shift a lower-priority transmission so that resources can be reallocated for higher-priority transmissions. Furthermore, BS may, in accordance with QoS criteria, reallocate resources for a second transmission within the alternative resource pool to, for example, a lower SCS resource pool for lower-priority transmissions, if the above transmission requirements can be met.

[0052] For Mode 3 UE, embodiments may support signaling for SPS pauses or shifts. Since resources can only be reserved for transmission in a semi-persistent scheduling (SPS) manner, according to embodiments, new parameters in the SPS configuration may be used to represent pause or shift intervals, or reduced frequency intervals (SPS intervals).

[0053] In the case of a Mode 4 UE, the embodiment causes a UE that occupies resources for a lower-priority transmission to pause or shift the transmission until a higher-priority transmission is completed. The priority of transmitted packets may be mapped to the corresponding V2X service and may be assumed to be static and secure. For example, in the case of a Mode 4 UE, the mapping may be hardcoded to prevent V2X applications from interrupting and manipulating priorities for their own gain.

[0054] Second aspect: Embodiments of a second aspect of the present invention may be implemented in a wireless communication system, such as those shown in Figures 1, 2, and 3, and as described above with reference to Figure 4, including a base station and a user such as a mobile terminal or IoT device. The transmitter 300 and one or more receivers 302 may operate in accordance with the teachings of the present invention described herein.

[0055] Occupancy threshold The present invention relates to a transmitter for a wireless communication system, wherein the wireless communication system provides a set of resources, each of which will be allocated for a transmission, and the transmission comprises one or more first transmissions having a first priority level and one or more second transmissions having a second priority level, wherein the first priority level is higher than the second priority level. If the occupancy rate of a set of resources reaches a predefined threshold, the transmitter will... - Reserve a certain amount of unoccupied resources from a set of resources for the first transmission, and - Allocating reserved resources for the first transmission. A transmitter is provided that is configured to perform the following actions.

[0056] According to one embodiment, the transmitter is configured to reserve a certain amount of unoccupied resources when it reaches a certain occupancy rate or traffic load threshold.

[0057] According to the embodiment, when the occupancy rate or traffic load threshold is reached, the transmitter, - To begin allocating reserved resources for the first transmission only, and - Stop allocating resources for a second transmission. It was configured to perform the following actions.

[0058] According to the embodiment, Each transmission includes at least a third transmission having a third priority level, where the first and second priority levels are higher than the third priority level. A wireless communication system provides multiple sets of resources, the multiple sets of resources including a first set of resources which will be allocated for a first transmission and a second transmission, and a second set of resources which will be allocated for a third transmission.

[0059] According to the embodiment, The transmission has associated low latency and / or high reliability requirements and / or quota requirements to ensure that the application service meets the required quality of service (QoS). In response to a cessation of allocating resources for a second transmission, the transmitter is configured to allocate resources for a second transmission in a second set of resources, provided that certain low-latency and / or high-reliability requirements and / or quota requirements for the second transmission can be met.

[0060] According to the embodiment, the resource includes multiple subcarriers, and the subcarrier spacing (SCS) of the first set of resources is higher than the SCS of the second set of resources.

[0061] According to one embodiment, the transmitter is configured to select an amount of resources that will be reserved for a first transmission based on the real-time load of a set of resources or based on the expected load.

[0062] According to the embodiment, The wireless communication system includes multiple base stations, gNBs, and multiple user devices, UEs, with the transmitter equipped with a gNB. A UE is connected to one or more other UEs via a side link. The UE is configured for sidelink communication with one or more other UEs. Resources from a set of resources are scheduled by the gNB for sidelink communication with one or more other UEs.

[0063] According to the embodiment, The wireless communication system includes multiple user devices, UEs, and the transmitter comprises one of the UEs. A UE is connected to one or more other UEs via a side link. A UE is configured for sidelink communication with one or more other UEs, and the UE is configured to autonomously schedule resources from a set of resources for sidelink communication.

[0064] According to one embodiment, the set of resources comprises multiple resources that are continuous or discontinuous across the frequency domain and adjacent or non-adjacent across the time domain.

[0065] According to one embodiment, a set of resources defines a resource pool.

[0066] Accordingly, embodiments of the second embodiment revolve around pre-emptively reserving resources within the resource pool for high-priority transmissions, provided that a certain occupancy rate or traffic load threshold is reached. This is another embodiment, for example, to ensure that high-priority SL transmissions occur without delay. A small, fixed set of resources to be reserved for high-priority transmissions may be based on the real-time or expected load of the resource pool. The reservation may, according to the embodiment, only be activated after the occupancy rate of the resource pool has reached this predefined threshold.

[0067] Third aspect: A third embodiment of the present invention may be implemented in a wireless communication system, as shown in Figures 1, 2, and 3, which includes a base station and a user such as a mobile terminal or IoT device. Figure 5 shows the core network to which the application server 312 can connect. This is a schematic diagram of a wireless communication system 308 having a workpiece 310. An application server runs an application to provide a service to a receiver with a certain quality of service (QoS). Furthermore, the system includes a radio access network, RAN, 314 coupled to the core network 310, and the RAN 314 includes a plurality of transmitters and receivers. The wireless communication system 308 may operate in accordance with the teachings of the present invention described herein.

[0068] QOS Feedback The present invention is a wireless communication system, A wireless access network, a RAN, which includes a plurality of transmitters and receivers, A core network, CN, coupled to a RAN, wherein an application server is connectable to the core network, CN, and the application server is configured to run an application, and the application is configured to provide a service to a receiver within the RAN, The wireless communication system is configured to acquire the status of at least a portion of the RAN, and to inform an application and / or a receiver performing a service provided by the application of the RAN status and / or any change in the RAN status, so that the performance of the service depends on the RAN status and the application can modify its requirements accordingly.

[0069] According to the present invention, - Performance includes Quality of Service (QoS), and the application requires the network and / or wireless communication system to serve the receiver with a certain QoS. - The wireless communication system is configured to use RAN status to determine whether a certain QoS can or cannot be performed by the RAN, and to signal to the application and / or receiver whether a certain QoS can or cannot be performed.

[0070] According to the present invention, a wireless communication system is - In response to a request from an application, or - In response to an event within the RAN, or - At a certain interval, where the interval is set, for example, by an application. It will be configured to retrieve the RAN status.

[0071] According to the present invention, an event within the RAN, - Failure or malfunction of one or more RAN entities, - Decreased or improved wireless coverage within the RAN. - Handover of UE from one cell within the RAN to another cell within the RAN. - One or more UEs connecting to or disconnecting from the RAN, for example, a wireless link failure. It comprises one or more of the following.

[0072] According to the present invention, the core network is - Requesting status reports from RAN, and / or subscribing to events from RAN, - Push status reports or events to the application. - Signaling and / or reporting status reports or events to applications, and / or application functions (AF), and / or network functions (NF). It was configured to perform the following actions.

[0073] According to the present invention, RAN is - To collect data related to the status of RAN from one or more RAN entities. - Processing data and / or detecting status events in order to create a status report, and - Signaling status reports and / or events to the core network. It was configured to perform the following actions.

[0074] According to the present invention, the RAN comprises one or more base stations and gNBs for serving each UE, and the gNBs are configured to collect and process data relating to the status of the cells served by the gNBs, and to signal and / or report status reports and / or events to the core network.

[0075] According to the present invention, a gNB is configured to collect and process data relating to the status of one or more cells served by other gNBs.

[0076] According to the present invention, The core network includes a Network Data Analytics Entity or Function (NWDAF), RAN, - Collect data related to the status of RAN from one or more RAN entities, and - Signaling data to the core network It is configured to do the following: NWDAF - Processing data from RAN in order to create status reports, and / or detect events, and / or predict future statuses, and / or predict possible or likely future events, and - Signaling and / or reporting status reports and / or predictions to the application and / or receiver. It was configured to perform the following actions.

[0077] According to the present invention, the RAN comprises one or more base stations, gNBs, for serving each UE, and the gNBs are configured to collect data relating to the status of the cells served by the gNBs, and to signal the data to the NWDAF through network functions (NFs) such as an access and mobility function (AMF) and / or a session management function (SMF).

[0078] According to the present invention, a gNB is configured to collect and process data relating to the status of one or more cells served by other gNBs.

[0079] According to the present invention, RAN is - To collect data related to the status of RAN from one or more RAN entities. - To create status reports and / or to detect events, data To process, and - Signaling and / or reporting status reports and / or events to the application and / or receivers performing services provided by the application. It was configured to perform the following actions.

[0080] According to the present invention, the RAN comprises one or more base stations, gNBs, for service to each UE, wherein the gNBs are configured to collect and process data relating to the status of the cells served by the gNBs, and to signal and / or report status reports and / or events to applications and / or receivers performing services provided by the applications.

[0081] According to the present invention, a gNB is configured to collect and process data relating to the status of one or more cells served by other gNBs.

[0082] According to the present invention, the status report is - Signal traffic load within the RAN, - Resources within RAN, - Congestion within the RAN, - Interference of all UEs in one or more cells within the RAN, - Achievable QoS requirements within the RAN Includes one or more of the following.

[0083] According to the present invention, a wireless communication system is configured to report whether a certain QoS can or cannot be achieved in response to an application request from a core network for reporting on QoS or another RAN measurement that causes a change in achievable QoS.

[0084] According to the present invention, an event includes changes within the RAN and / or network, such as congestion within the RAN, overload within the RAN, and a decrease or improvement in the supportable QoS.

[0085] According to the present invention, a wireless communication system is configured to signal whether a certain QoS can or cannot be performed in response to an application subscribing to notifications from the core network about a QoS change or another RAN event that causes a change in the achievable QoS.

[0086] According to the present invention, The RAN is configured to provide a set of resources, including multiple resources to be allocated for each transmission, wherein a transmission includes one or more first transmissions having a first priority level and one or more second transmissions having a second priority level, where the first priority level is higher than the second priority level. If a wireless communication system determines that a set of resources will be completely occupied by a first transmission, the wireless communication system is configured to inform the application and / or receiver that it will not be able to meet a certain QoS.

[0087] According to the present invention, the wireless communication system of the present invention is Equipped with application servers connected to the core network, In response to signaling from a wireless communication system, the application and / or receiver are configured to adapt to changes in the achievable QoS.

[0088] Accordingly, according to an embodiment of the third aspect, the communication system provides a route, mechanism, or procedure from the RAN side to notify the application that a certain service can / cannot be performed with a desired QoS. For example, if the resource pool is completely occupied by high-priority transmissions, the BS may inform the application or application server that it cannot meet the required priority and reliability (QoS), for example, in the case of a fully autonomous vehicle, so that the application can modify its behavior accordingly. Relevant network entities (in the case of LTE) or network functions (in the case of 5G) related to the application layer may subscribe to monitor various changes in QoS-related events or RAN events. These events may then be signaled back to the application function.

[0089] Fourth aspect: Embodiments of a fourth aspect of the present invention may be implemented in a wireless communication system as shown in Figures 1, 2, 3, and 5. The wireless communication system 308 may operate in accordance with the teachings of the present invention described herein.

[0090] Push notifications The present invention is a wireless communication system, An application server, configured to run an application, and configured to provide a service to a receiver in the RAN, The application server is connected to the core network, A wireless access network (RAN) coupled to a core network, comprising a RAN including a plurality of transmitters and receivers, The present invention provides a wireless communication system in which the core network is configured to send push notifications to applications, such as application servers or application clients, indicating that an event has occurred.

[0091] According to the embodiment, the core network is - Monitoring the status or condition of wireless communication systems, and - In a wireless communication system, determining whether or not a certain event has occurred. It was configured to perform the following actions.

[0092] According to one embodiment, the application server is configured to receive push notifications without explicit subscription to the corresponding events.

[0093] According to the embodiment, a push notification is - For example, in the event of a natural disaster that causes a part of the system to completely shut down, a critical or significant situation or failure in the RAN or any other part of the system, - For example, in the case of V2X, when an application server detects a dangerous situation on the road, such as a serious accident or fire, and requests the network to send a push notification to all other application servers active in the relevant area, such as V2X application servers, the serious situation detected by another application server, or - Critical situations detected by a UE, such as a major accident or fire, e.g., a V2X UE. This notifies the application server of critical events or warnings.

[0094] Accordingly, according to an embodiment of the fourth aspect, the application server may receive one or more push notifications without explicit subscription to any corresponding event, for example, in order to provide a route and / or mechanism and / or procedure for push notifications originating from various sources, such as the RAN, another application server, the core network, etc. Of course, the scenarios mentioned herein are merely examples, and the sources of push notifications mentioned are not exhaustive.

[0095] system The present invention is a wireless communication network, The present invention comprises at least one apparatus and The present invention provides at least one transmitter and It provides a wireless communication network equipped with these features.

[0096] According to one embodiment, the set of resources comprises multiple resources that are continuous or discontinuous across the frequency domain and adjacent or non-adjacent across the time domain.

[0097] According to one embodiment, a set of resources defines a resource pool.

[0098] According to the embodiment, the receiver and transmitter are - Mobile device, or - Fixed terminal, or - Cellular IoT-UE, or - IoT devices, or - Ground vehicles, or - Air vehicles, or - Drone, or - Mobile base station, or - Roadside unit, or - building, or - Any other item or device that has network connectivity, enabling that item / device to communicate using a wireless communication network, for example, a sensor or actuator, and - Macrocell base station, or - Small cell base station, or - Roadside unit, or - UE, or - Remote wireless head, or - AMF, or - SMF, or - Core network entity, or - Network slices, such as in the case of NR or 5G core contexts, - Any transmission / reception point (TRP) that enables an item or device to communicate using a wireless communication network, and which has network connectivity for the item or device to communicate using a wireless communication network. It comprises one or more of the following.

[0099] The present invention relates to a wireless communication network comprising at least one of the UEs of the present invention and at least one of the base stations of the present invention. provide.

[0100] According to the embodiment, the receiver and transmitter comprises one or more of the arbitrary transmit / receive points (TRPs) that enable a network slice, or item or device, to communicate using a wireless communication network, such as a mobile terminal or fixed terminal or cellular IoT-UE or IoT device or ground vehicle or aerial vehicle or drone or mobile base station or roadside unit or building or macrocell base station or small cell base station or roadside unit or UE or remote radio head or AMF or SMF or core network entity or NR or 5G core context, wherein the item or device has network connectivity for communicating using a wireless communication network.

[0101] method 1. Appearance The present invention relates to a method for a wireless communication system, wherein the wireless communication system provides a set of resources, each of which will be allocated for a transmission, and the transmission comprises one or more first transmissions having a first priority level and one or more second transmissions having a second priority level, wherein the first priority level is higher than the second priority level. The method includes the step of receiving a signal if there are not enough resources from the set of resources for the next first transmission. The present invention provides a method in which a signal causes an ongoing second transmission to stop in order to free up resources to send or receive a first transmission.

[0102] The present invention relates to a method for transmitting for a wireless communication system, wherein the wireless communication system provides a predefined set of resources, each of which will be allocated for a transmission, and the transmission comprises one or more first transmissions having a first priority level and one or more second transmissions having a second priority level, wherein the first priority level is higher than the second priority level. If there are not enough resources from the set of resources for the next first transmission, the method is: - A step of signaling the receiver to stop the second transmission in order to release the resources used by the second transmission that is in progress, - The steps of reallocating the released resources for the first transmission and This provides a method that includes [something].

[0103] 2. Appearance The present invention relates to a method for transmitting for a wireless communication system, wherein the wireless communication system provides a set of resources, each of which will be allocated for a transmission, and the transmission comprises one or more first transmissions having a first priority level and one or more second transmissions having a second priority level, wherein the first priority level is higher than the second priority level. If the occupancy rate of a set of resources reaches a predefined threshold, the method is as follows: - The first step is to reserve a certain amount of unoccupied resources from a set of resources for the first transmission, - The step of allocating the reserved resources for the first transmission. This provides a method that includes [something].

[0104] 3. Appearance The present invention is a method for operating a wireless communication system, wherein the wireless communication system is A wireless access network, a RAN, wherein the RAN includes a plurality of transmitters and receivers, A core network, CN, coupled to a RAN, wherein an application server is connectable to the core network, CN, and the application server is configured to run an application, and the application is configured to provide a service to a receiver within the RAN, The method provides a method that includes the steps of obtaining the status of at least a portion of the RAN, and informing an application and / or a receiver performing a service provided by the application of the RAN status and / or any change in the RAN status, so that the performance of the service depends on the RAN status and the application can modify its requirements accordingly.

[0105] 4. Appearance This invention provides a method for operating a wireless communication system according to the present invention.

[0106] Computer program products The present invention provides a computer program product that, when executed by a computer, includes instructions that cause the computer to perform one or more methods according to the present invention.

[0107] Next, preferred embodiments will be described in more detail. Hereinafter, we will refer to resource pools. However, the present invention is not limited to resource pools; rather, the methods of the present invention are equally applicable to any set of resources. A pool or set of resources may include multiple resources that are continuous or discontinuous across the frequency domain and adjacent or non-adjacent across the time domain. Therefore, when we refer to resource pools in this specification, this should also be understood as a reference to a set of resources.

[0108] First aspect Next, embodiments of the first aspect of the present invention will be described with reference to Figures 4 and 6, of which Figure 6 shows a transmission pause to free up or release resources that will be used for a higher-priority service. In the following description, it is assumed that the transmitter 300 in Figure 4 is a base station, the receiver 302 is a UE, and the UEs may or may not communicate directly with each other over the sidelink 304c. In the latter case, the UEs may be V2X mode 3 UEs (see Figure 2).

[0109] Figure 6 schematically shows a resource pool 360 containing multiple resources 362, the resource pool 360 is shown at different points in time, namely at time t0, at a later time t1, for example 5 ms after time t0, and at time t2 following t1, for example 5 ms after time t1. It is assumed that the resource pool 360 includes columns 1-3 and rows 1-6, and that resources in row 1 and row 4 of the resource pool 360 are available for communication from base station 300 to UE 3021. At time t0, base station 300 performs the initial allocation of resources for transmission to UE 3021 for the next 10 ms. It is assumed that resources need to be allocated for two messages, and that those messages are substantially of the same priority, and at least neither of them requires a higher priority transmission. For example, the first transmission has two allocated resources, a resource in column 3, row 1 and a resource in column 2, row 4, as indicated by the crosshatch block, and the second transmission has three allocated resources, namely a resource in column 1, row 4, a resource in column 2, row 1 and a resource in column 3, row 4, as indicated by the diagonal block. Therefore, in the illustrated example, only one resource in column 1, row 1 remains unallocated.

[0110] At time t1, base station 300 receives a request to send a high-priority message that needs to be signaled to UE3021 with low latency. Three resources are required for the high-priority transmission, but at this time, all resources except one are occupied for transmission to UE3021, so it is assumed that there are not enough resources available in the pool for the high-priority transmission. Therefore, according to the present invention, the base station determines, for example, which of the messages currently being transmitted has the lowest priority, for example, the first message. The base station releases the resources associated with the second transmission (see the resources crossed out with an X in Figure 6), thereby freeing up the resources in column 1, row 4, column 2, row 1, and column 3, row 4 of resource pool 360. At the next possible time, such as time t2, resource allocation is performed so that the released resources are fully or at least partially allocated to the high-priority transmission, as indicated by the black box. The resources newly allocated at time t2 may be used for downlink transmission of a high-priority message from base station 300 to UE3021, or for uplink transmission of a high-priority message from UE3021 to base station 300. UE3021 receives a signal from base station 300 indicating that there are not enough resources in the pool for the high-priority transmission, and therefore the transmission of the second transmission needs to be stopped or paused so that resources already allocated for the first transmission are released. UE3021 may either discard the first transmission, or, once the high-priority transmission is complete, resume the transmission at a later time, triggered by a pre-configured timer, a time value signaled via an RRC message, or relayed via a sidelink by another UE.

[0111] According to another embodiment, if the UE also communicates via a sidelink interface, such as the PC5 interface 304c in Figure 4, the resources described above with reference to Figure 4 may be resources used for sidelink communication, such that higher-priority messages can be translated between UEs 3021 and 302n via the PC5 interface 304c using the resources acquired by releasing the resources initially allocated to lower-priority transmissions on the sidelink in the manner described above.

[0112] In the embodiments described above, it was assumed that high-priority messages are downlink messages directed to the UE, so that the base station can receive signaling, for example, from an application running on an application server coupled to the core network of a wireless communication system. On the other hand, in the case of a service or application running on the UE that requires high-priority uplink messages to be sent to the base station, the signaling can also be received from the UE. The device may also be a UE communicating with another UE via a sidelink interface, and either of those UEs may receive instructions or signaling from the associated service or application that a high-priority message will be sent over the sidelink, requiring the release of resources for a lower-priority transmission that has already been scheduled or is in progress.

[0113] According to the embodiment, stopping a lower-priority transmission may include pausing the transmission for a predetermined time or interval, and resuming the transmission after an interval selected to ensure that the higher-priority transmission is securely fitted. The first transmission may be resumed using the same configuration as before, or using a new configuration which may be selected from a list of existing configurations, or a new configuration provided for resuming the lower-priority transmission.

[0114] Depending on the embodiment, multiple resource pools may be provided, for example, higher priority resource pools having higher subcarrier spacing, SCS. For example, in the context of LTE (PPPR), there can be eight levels of reliability, and in NR, there are 5QI or VQI indicators. Messages associated with the three highest priority levels may be associated with resources in a 60kHz-SCS-resource pool, sometimes called a high-priority / low-latency resource pool, which is selected from a set of available resource pools for transmission. If the resource pools, i.e., the high-priority / low-priority resource pools, are completely congested, the base station is not in a position to allocate any resources for new transmissions, either on the sidelink between two UEs or on the link between the base station and one of the UEs. On the other hand, for low latency and / or high reliability and / or quota requirements for high-priority messages, the base station may not refuse any transmission of the highest priority due to the safety-critical nature of the message, such as an emergency call. In other words, high-priority messages may have certain latency, reliability, and quota requirements, or any combination of these requirements, such as data rate requirements. In this case, according to the method of the present invention, as described above, at time t0, when resources were available and the duration of the permission has not yet expired, a base station, BS, that has already issued permission for a lower-priority transmission to a UE, such as an SPS transmission, may draw resources allocated for a lower-priority transmission to favor a higher-priority transmission. If multiple resource pools of different priority levels are provided, and the requirements for a lower-priority transmission are still met when using resources from a lower-priority pool, the BS may attempt to reallocate the resources for the lower transmission to another resource pool of a lower SCS. If no further pools are available, or reallocation to a lower-priority pool does not meet the transmission requirements, the transmission of the lower-priority message may be suspended until the transmission of the high-priority message is completed.Reallocations that occur when using a new, lower-priority resource pool, or when resuming the sending of lower-priority messages, can be performed by sending a corrected or updated SPS configuration to the UE based on the resource pool load.

[0115] For example, if the base station knows the amount of resources required for the duration of a higher-priority message transmission, it may determine an interval during which the UE will stop or pause transmitting lower-priority messages. This is because the base station may notify UEs transmitting lower-priority messages based on buffer status report requests from UEs transmitting higher-priority messages. This allows higher-priority messages to be transmitted within highly congested dedicated / shared resource pools. Following the interval, the UE may then resume transmitting lower-priority messages using the resources initially allocated by the base station, or lower-priority SPS transmissions may be shifted in time, for example, using an offset, to allow for the transmission of higher-priority messages. Note that higher-priority messages can be either one-shot transmissions or SPS transmissions.

[0116] According to one embodiment, in sidelink transmission mode, SPS transmission may be used, and the base station requests a UE transmitting a lower-priority message to pause or shift the transmission to favor a higher-priority transmission to or from the UE. In this scenario, the base station may use a modified SPS configuration with new parameters that describe the pause / shift interval, as shown in Figure 7 illustrating one embodiment for the SPS-config information element, IE. According to an embodiment of the present invention, the SPS-config IE, as described in reference [8], is extended by elements "ToPauseList", "ToResumeList", and "ToShiftList", as shown in 400, 402, and 404 in Figure 7. "ToPauseList" indicates the SPS-configuration for sidelinks that must be paused, and "ToResumeList" indicates the SPS-configuration for sidelinks that must be paused. This indicates which of the available SPS configurations will be used when resuming a low-priority transmission. "ToShiftList" indicates the duration during which the low-priority transmission will be paused. If "ToResumeList" is not specified, the initial configuration used for the low-priority transmission will be used when resuming transmission.

[0117] Therefore, the new parameters mentioned above, which refer to pausing, resuming, and shifting, make it possible to adapt higher-priority transmissions so that they are sent by the UE to the BS or another UE, or so that they are received by the UE from the BS or another UE. The BS configures UEs with lower-priority transmissions so that they resume transmission when higher-priority messages are sent, for example using RRC connection reconfiguration signaling, such as RRC reconfiguration messages.

[0118] In other embodiments, the device may be a UE connected to another UE via a sidelink configuration, with each UE being out of coverage and operating in Mode 4, as described with reference to Figure 3. Thus, the base station has no control over resource allocation, but even in such a scenario, an extremely congested Mode 4 resource pool needs to be handled in such a way that lower-priority transmits can make way for higher-priority transmits. The UE may scan and detect the resource pool for available resources and select an available resource based on the lowest probability of collision. If the resource pool does not have enough resources for a high-priority transmit, for example, is completely occupied, and the UE broadcasts an SCI indicating that there is a high-priority message, the SCI will also describe the resource that the high-priority message will use for transmission, based on the UE's decision after scanning and detecting the resource pool and selecting the resource with the lowest probability of collision. The method of the present invention would apply, for example, if, despite the processes described above, the resource with the lowest probability of collision does not solve the problem of a congested resource pool. To increase the reliability of receiving high-priority messages and reduce the risk of collisions, UEs occupying selected resources are signaled to interrupt or pause their transmissions on the resources indicated in the SCI for a duration also indicated in the SCI, in order to enable high-priority transmissions. This ensures that high-priority transmissions occur uninterrupted and, upon completion, allow UEs sending lower-priority messages to resume transmissions, for example, using the resources that were initially used.

[0119] In any of the above scenarios, lower-priority messages whose transmission may be paused may be stored in the buffer of the device or entity performing the transmission, such as a UE. However, there may be situations where it is no longer desirable or possible to send lower-priority messages after the completion of sending higher-priority messages, in which case the lower-priority messages will be flushed from the buffer. For example, in the case of moving entities, such as vehicles, if the communication between vehicles exceeds the maximum communication range, lower-priority messages will be flushed. For example, if a vehicle UE sending a lower-priority message has traveled a certain distance, such as 1 km, from the receiving vehicle UE, any low-priority information about things in the immediate vicinity of the sending vehicle is no longer important to the receiving vehicle, which is now at a greater distance. Alternatively, if a higher-priority message exceeds its timer, the buffer of the vehicle UE sending the lower-priority message may also be flushed.

[0120] Second aspect According to a second aspect of the present invention, another method for addressing the problem of enabling high-priority transmissions is to provide resources in a resource pool that are then provided only for high-priority transmissions. This involves reserving a small set of resources. Figure 8 schematically illustrates one embodiment of a second aspect of the present invention, showing a pool of resources 360 available for communication between a base station BS and one or more UEs in a radio access network, at time t1, for communication between each network entity in the radio access network, such as between a base station BS and one or more UEs. At this time, it is assumed that only 50% of the resources are used or scheduled so that any incoming high-priority message to be sent from BS to UE, from UE to BS, or between multiple UEs will be allocated sufficient resources for transmission.

[0121] At a later time, such as time t2 shown in Figure 8, traffic within the cell covered by the base station BS may increase, and it is determined that 90% of the resources in pool 360 will be used at this time. In such a scenario, i.e., once the 90% threshold is reached, the allocation of resources to low-priority messages is stopped, and the remaining unused resources are allocated only to high-priority messages. When the threshold drops again, the system may return to the situation shown at time t1, i.e., any available resources may be allocated to any message. In a situation like that shown at time t2, if multiple resource pools of different SCSs are available, low-priority messages, which will not be allocated resources to the first resource pool 360 due to its occupancy level, may have resources allocated from further resource pools of lower SCSs if the requirements for transmission to be performed can be met using resources from lower SCS resource pools.

[0122] Therefore, according to the second embodiment, at times when occupancy or traffic increases and the number of available resources decreases, a smaller set of resources reserved at that time balances the trade-offs between the amount of data to be transmitted and the resources available for transmission.

[0123] It should be noted that the above embodiments can also be used in direct communication between two UEs via a sidelink, where the UE is either in Mode 3 or Mode 4.

[0124] Appearance 3 As described above, conventional approaches to handling QoS are insufficient in many situations, such as in vehicle scenarios. When vertical applications, such as V2X applications, run on cellular, 3GPP EPS, or 5GS networks as described above, it is desirable to obtain information about network conditions, such as congestion, in order to enable the application to adjust itself to the current network conditions or capabilities. Network conditions or capabilities may include the network status or capabilities at the current time and / or predictions for the future. For example, when considering V2X, the need for network-to-application feedback is recognized by the present invention. Examples of features that may be required for reliable and efficient performance of vertical applications such as V2X include one or more of the following: - A mechanism for applications to monitor (or obtain feedback on) RAN status, such as congestion, overload, etc. - In addition to the conventional system where monitoring information can be acquired by the application server, a mechanism for sharing all or part of the information with the UE. - Sidelinks, e.g., PC5, and a QoS framework for monitoring the status of sidelinks. - Monitoring reports or notifications to the application upon event detection, which the application server may respond to when it receives such feedback / notifications.

[0125] According to a third aspect of the present invention, a mechanism is provided which acquires the status of at least a portion of the RAN and informs an application and / or a receiver running a service provided by the application of the RAN status and / or any change in the RAN status, such that the performance of the service, such as QoS, depends on the RAN status. This allows the application in the UE and / or the application server to modify its expectations / requirements accordingly. Thus, the application in the UE can modify itself accordingly, as it provides feedback to the UE that the network is unable to manage the requested requirements. For example, information about congestion and overload is acquired, in other words, the RAN status regarding available resources is monitored. Based on this information, for example, the quality of service that can be provided over the RAN can be monitored using a PC5 interface, or more generally, the status of the links between communicating entities, for example, the status of a side link regarding the resources available for transmission, can be monitored. For example, in the event of a certain event, the application server or UE running the application can react in response to the corresponding feedback. For some applications / services, the delay caused by this process can be critical. For example, in a platooning service in a V2X application, when the network can provide high QoS to the service, the server may reduce the distance between platoon members to reduce energy consumption. If QoS suddenly drops, the distance between platoon members may need to be increased immediately for safety reasons. Another example is autonomous driving. If network coverage drops, the application needs to react immediately, for example, by reducing the level of automation and switching control to manual mode. For example, the status can be retrieved when the current cell status changes, before / during a handover from a cell, macrocell, small cell, or between macrocells / small cells.

[0126] Conventional methods can monitor events related to the link between the UE and the network, such as the location of the UE, UE reachability, loss of connectivity, communication failure, or the number of UEs present in a particular geographic area, but the status or condition of the RAN is not actually monitored; for example, congestion or overload is not monitored by the core network. Consequently, resources within the RAN, or the achievable QoS, are also not monitored. This deficiency is addressed according to a third aspect of the present invention.

[0127] Figure 9 illustrates one embodiment for monitoring RAN status and schematically shows each network entity within the EPS system (see also reference [6]), including an application server 312, which is coupled to a core network 310 that is coupled to a radio access network, RAN, 314. The core network includes a service capability publishing function, SCEF 310a, a home subscriber server, HSS, 310b, and a mobility management entity, MME / serving GPRS support node, SGSN, 310c. In step 1, the application server 312 can run one or more applications and issue monitoring requests over the cellular networks 310, 314, which are handled by SCEF 310a, as shown in step 2. SCEF handling may include communication with HSS 310b for external group ID resolution, as shown in steps 2a and 2b. In response to receiving a monitoring request, SCEF sends a monitoring request in step 3, which is handled by MME310c as shown in step 4. In step 5, a monitoring response is provided to be returned to SCEF310a. Up to this point, the process corresponds to the conventional process described in reference [6].

[0128] According to an embodiment of a third aspect of the present invention, the conventional procedure is extended by steps 4a, 4b, and 4c, and the monitoring process does not stop in MME310c but is extended to RAN314. In step 4a, the MME310c signals to the RAN314 that it needs information from the RAN314, for example, information about one or more of the signal traffic load, resources, congestion, and interference of some or all of the UEs in one or more cells of the RAN314. In step 4b, the RAN314 collects data, for example, to create a RAN status report. In step 4c, the RAN status report based on the request in step 4a is provided to the core network 310 or pushed directly to the relevant network entity, such as the SCEF310a, which provides an interface to the application on the server 312. The status report may also be provided to UEs that use the services provided by the application. Based on the status information, the application, for example, an application server, and / or an application client, and / or a UE, may decide, for example, whether the desired QoS is still achievable, for example, whether autonomous operation is still possible, or whether, due to the degradation of QoS, an adaptation of the services provided by the application, for example, a return to manual control in the case of autonomous operation, will be implemented.

[0129] The following describes a third aspect of the present invention for obtaining RAN status, with reference to handover, HO, and procedures. However, the method of the present invention is not limited to obtaining RAN status reports in such events, but rather any other events or signaling from the application may trigger such reports. Figure 10 is a signaling chart for adapting vehicle UE QoS feedback according to one embodiment of the present invention. More specifically, Figure 10 shows an embodiment that modifies a conventional HO procedure in an EPS system, for example, when predictive HO to multiple target cells is enabled, in which case the source eNB notifies the UE whether the next cell / group of cells can / cannot meet the QoS requirements. Naturally, the method of the present invention can be applied to any scenario in which QoS changes within the same cell.

[0130] Steps C through G are performed as follows: Step A, in which the source gNB, together with the target gNB, evaluates the possible delivery area limitations of the UE, and Step B, in which the UE reports its measurements.

[0131] Step C: In addition to the usual authorization request for HO, the source eNB requests a Resource Pool Status Information (RPSI) report from the target eNB.

[0132] According to other embodiments, the report is not limited to the concept of resource pools in LTE, but also to other similar concepts in NR.

[0133] Resource Pool Status Information (RPSI) may include, but is not limited to, the following information: - Occupancy threshold information for one or more resource pools - Traffic load on all uplink / downlink resources - Interference-related information - For example, if QoS can be satisfied, QoS-related information including, but not limited to, the following: Quality parameters, such as resource type, priority level, packet delay budget, packet error rate, guaranteed bitrate (GBR) averaging window, and maximum data burst volume, which are included in the 5QI / QCI parameters. 〇ARP Reflective QoS GBR / MBR Notification control Maximum packet loss rate

[0134] Figure 11 shows one embodiment of the HandoverRequest IE extended by the embodiments of the present invention, with elements indicated by 406 and 408.

[0135] Step D1: The RPSI report is provided by the target eNB / gNB, and the RPSI report may include all of the information or a subset of the information described above.

[0136] Step D2: RPSI reports can be similarly pushed to other network entities.

[0137] Step E: The source eNB / gNB collects and processes information so that the UE can easily adapt accordingly (see Step 4b in Figure 9). The contents of the RPSI can be mapped to determine whether the specific QoS required by the UE can be satisfied.

[0138] Step F: The source eNB / gNB signals to the UE using a V2X-RPSI-feedback IE, which may be included in the MobilityControlInfo IE in RRC connection reconfiguration signaling, for example. Depending on the level of abstraction, there are several options for how to signal this feedback to the UE, as shown in the example signaling.

[0139] Figure 12 shows one embodiment for the MobilityControlInfo IE extended by an embodiment of the present invention, indicated by the V2X-RPSI-feedback IE 410. The V2X-RPSI-feedback IE 410 may include any other parameters indicating the QoS level, e.g., high, medium, low, or a range of values, and the possible levels of QoS that the target eNB / gNB can satisfy.

[0140] Step G: The application, for example, a V2X application, adapts accordingly based on the RPSI report, causing, for example, braking, acceleration, etc., in the case of a V2X application or service.

[0141] Following steps A through G, further steps 7 through 9 are performed to complete HO.

[0142] When considering 5GS, the following table lists the events supported by the conventional system.

[0143] [Table 2]

[0144] As this table shows, the status or condition of resources within the RAN, such as RAN congestion and RAN overload, cannot be monitored by application functions (AF).

[0145] According to a further embodiment of the third aspect, the AF is enabled to monitor RAN events, such as RAN congestion and / or overflow. Figure 13 shows the monitoring of the RAN status by the application server (AS) 312 in 5GC. Figure 13 shows one embodiment that modifies the conventional monitoring procedure to obtain the RAN status.

[0146] The 5GS system in Figure 13 includes an application server 312 connected to a core network 310 which is connected to a radio access network 314. The core network 310 includes a network publishing function, NEF, 310a; a unified data management (UDM), 310b; and a core access and mobility management function, AMF, 310c. Conventionally, an application running on the application server, such as a V2X application, subscribes to the core network in step 1 to obtain information about several events within the network. In step 2, the NEF 310a issues a subscribe request to the UDM 310b, which then issues a subscribe request to the AMF 310c, as shown in step 3a.

[0147] According to the method of the present invention, the request sent as step 3a is also a subscription to obtain information about RAN events, and outside of the conventional method, in step 3a', AMF310c issues a further request to subscribe to a specific RAN event, such as resource congestion or overflow. In response to the subscription in step 3a', RAN314 provides the respective event subscription response or acknowledgment back to AMF310c in step 3b', so that additional feedback subscription responses or acknowledgments about the situation in RAN314 are provided to the application via the core network 310 in steps 3b, 4, and 5. According to the embodiment, RAN314 may signal RAN events to the application server 312 via AMF and NEF, as shown in steps 8, 9, and 10. For example, reports such as RPSI event reports for events described in the example in Figure 10 and / or Table 1 (Table 2) may be provided, and RAN may operate as described above with reference to Figure 9 (steps 4b-4c) and Figure 10.

[0148] In addition, as with conventional methods, the application may receive event notifications from the UDM with or without an NEF in between, via communication in steps 6a and 7a, or only in 6a, which directly points to the AS. For a trusted AS, an NEF between the AS and the UDM is not required.

[0149] The list of events in the table above is not exhaustive, and further events may be generated and / or collected and / or detected in any other network functions (NFs), such as session management functions (SMFs) and / or access and mobility functions (AMFs). If the present invention provides a procedure similar to that in Figure 13, where the AMF is then replaced by the relevant or responsible NF, for example, the SMF.

[0150] Accordingly, the above embodiment of the third aspect enables the application and / or application function, AF, to monitor the communication system for several RAN events related to resources, such as RAN congestion and / or overflow, and to determine events that cause changes in QoS within the same group or in different groups or cells based on RAN congestion, overload, etc., i.e., based on the status of resources within the RAN.

[0151] According to a further embodiment of the third aspect, a network data analysis function may be used to evaluate information from the RAN so as to determine and / or predict each event. The NWDAF is responsible for providing network data analysis. The NWDAF may provide, for example, slice congestion event notifications and NWDAF operator-specific analysis, as described in reference [9]. The NWDAF may be employed as shown in Figure 14. Figure 14 shows a signaling chart for RPSI processing in 5GS using the NWDAF. In practice, Figure 14 shows how the steps for HO may be performed in the context of 5GS. Steps A-G correspond to those described above with reference to Figure 10, except that step E is performed in core 310 by the NWDAF.

[0152] Accordingly, according to an embodiment of the third aspect, considering Figure 10 or Figure 13, the AF, or another part of the system, may have information about the behavior of the UE, for example, its movement trajectory, the network may collect additional information about its own status and the RAN status, and provide the results and / or reports of event monitoring to the BS, which then passes this to the UE, its resident applications, and / or application servers and / or application clients.

[0153] Considering Figure 14, outside of Figures 10 or 13, base stations provide information to the network, in which case the information is used by the NWDAF. The NWDAF also receives information from the RAN and the network. The NWDAF may perform analysis and provide the results and / or reports of event monitoring to the BS, which then passes them to the UE, its resident applications, and / or application servers and / or application clients. For example, the NWDAF may perform analysis across data provided by the network and the RAN, with or without any information on UE behavior provided by the applications. In either case, the analysis results provided by the NWDAF may be some kind of prediction.

[0154] Appearance 4: While the third aspect described above required the application to subscribe to receive notifications about QoS changes and / or RAN events, there may be situations where it is necessary to inform the application or application function about changing conditions across the entire network.

[0155] According to a fourth aspect of the present invention, the communication system provides notifications, such as push notifications, to application servers and / or UEs. In other words, the event notifications shown in Figures 9 and 13 can be automatically triggered to inform about critical events or to provide warnings. In other words, according to a fourth aspect of the present invention, a procedure or mechanism is provided to provide the core network with the possibility of generating push notifications that may originate from various sources, such as RAN 314, network 310, and applications. Examples of scenarios in which push notifications may be implemented include, but are not limited to, one or more of the following scenarios described with reference to Figure 15.

[0156] Figure 15(a) illustrates one embodiment of addressing a critical or significant situation / failure in the RAN, or any other part of the network, in the event of a natural disaster that causes a portion of the network to go completely down. Figure 15(a) shows a cellular network including a CN and a RAN, to which three application servers AS1-AS3 are coupled. The cellular network detects an event that needs to be alerted to all other application servers active in a given geographic area, such as AS1-AS3, and sends a push notification (1) to application servers AS1, AS2, and AS3 that are active in the same geographic area. Figure 15(b) illustrates one embodiment of addressing a significant situation detected by another application server. Like Figure 15(a), Figure 15(b) also shows a cellular network including a CN and a RAN, to which three application servers AS1-AS3 are coupled. For example, application server AS1 detects a dangerous situation on a road, such as a major accident or fire, and requests (1) the network to send a push notification (2) to all other V2X application servers active in the area concerned. Therefore, application server AS1 detects an event that needs to be alerted to all other application servers in its area and / or neighbors, and application server AS1 sends a trigger (1) for push notification to the network. The network then sends a push notification (2) to application servers AS2 and AS3 that are active within the same geographic area as AS1. ) is sent. Push notifications (2) may also be sent to the application server AS1 in some cases. Figure 15(c) shows one embodiment of addressing a critical situation detected by a V2X UE. As in Figure 15(a), Figure 15(c) also shows a cellular network including a CN and RAN, to which three application servers AS1-AS3 are coupled. In addition, a UE is shown connected to application server AS1 via the cellular network. The UE detects events that need to be alerted to all other application servers AS1-AS3 in its area and / or neighbors. The UE communicates with application server AS1 as shown by (1). In addition, in response to the detection of an event, the UE sends a trigger (1') to the network for a push notification. The network sends a push notification (2) to application servers AS1-AS3 that are active within the same geographic area.

[0157] Some of the embodiments described above refer to a configuration where both vehicles are in connected mode, also known as a Mode 3 configuration, or a configuration where the vehicles are in idle mode, also known as a Mode 4 configuration. However, the present invention is not limited to V2V or V2X communication, but rather is applicable to any device-to-device communication, for example, sidelink communication on a PC5 interface, for example, to a non-vehicle mobile user or stationary user. Furthermore, in such scenarios, resource scheduling according to the embodiments described above is advantageous because it allows for more efficient scheduling of resources for sidelink communication, avoiding resource conflicts and the like.

[0158] Some embodiments of the present invention have been described above with reference to a communication system in which the transmitter is a base station serving user equipment and the receiver is user equipment served by the base station. However, the present invention is not limited to such embodiments and can also be implemented in a communication system in which the transmitter is a user equipment station and the receiver is a base station serving user equipment. According to other embodiments, both the receiver and the transmitter may be UEs that communicate directly with each other, for example, via a sidelink interface.

[0159] According to the embodiment, the wireless communication system may include a terrestrial network, a non-terrestrial network, or a network or a segment of a network, using an airborne vehicle or a spaceborne vehicle, or a combination thereof, as a receiver.

[0160] According to the embodiment, the receiver may comprise one or more of any other items or devices having network connectivity that enable the item / device to communicate using the wireless communication system, such as a mobile or fixed terminal, an IoT device, a ground vehicle, an aerial vehicle, a drone, a building, or a sensor or actuator. According to the embodiment, the transmitter may comprise one or more of any transceiver points (TRPs) that enable a macrocell base station or a small cell base station, or a space vehicle such as a satellite or space, or an aerial vehicle such as an unmanned aerial vehicle (UAS), such as a tethered UAS, a lighter than air (LTA), a heavier than air (HTA), and a high altitude UAS platform (HAP), or an item or device having network connectivity to communicate using the wireless communication system.

[0161] While some aspects of the concepts described have been explained within the context of the apparatus, it is clear that these aspects also represent descriptions of the corresponding methods, in which case the block... A device corresponds to a method step or a feature of a method step. Similarly, an embodiment described in the context of a method step also represents a description of a corresponding block, item, or feature of the corresponding device.

[0162] Various elements and features of the present invention can be implemented in hardware using analog and / or digital circuits, through the execution of instructions by one or more general-purpose or dedicated processors, in software, or as a combination of hardware and software. For example, embodiments of the present invention can be implemented in the environment of a computer system or another processing system. Figure 16 shows an example of a computer system 350. The steps of a unit or module, and the method performed by these units, can be performed on one or more computer systems 350. The computer system 350 includes one or more processors 352, such as dedicated or general-purpose digital signal processors. The processors 352 are connected to a communication infrastructure 354, such as a bus or network. The computer system 350 includes main memory 356, for example, random access memory (RAM), and secondary memory 358, for example, a hard disk drive and / or a removable storage drive. The secondary memory 358 can enable computer programs or other instructions to be loaded into the computer system 350. The computer system 350 may further include a communication interface 360 ​​to enable the transfer of software and data between the computer system 350 and external devices. The communication may be in the form of electronic signals, electromagnetic signals, optical signals, or other signals that can be handled by the communication interface. The communication may use wires or cables, optical fibers, telephone lines, cellular phone links, RF links, and other communication channels 362.

[0163] The terms “computer program medium” and “computer-readable medium” are generally used to refer to tangible storage media, such as removable storage units or hard disks installed within hard disk drives. These computer program products are means for providing software to the computer system 350. The computer program, also called computer control logic, is stored in main memory 356 and / or secondary memory 358. The computer program may also be received via the communication interface 360. When executed, the computer program enables the computer system 350 to implement the present invention. Specifically, when executed, the computer program enables the processor 352 to implement the processes of the present invention, such as any of the methods described herein. Thus, such a computer program may represent a controller of the computer system 350. If the present disclosure is implemented using software, the software is stored within the computer program product and can be loaded into the computer system 350 using interfaces such as removable storage drives or the communication interface 360.

[0164] The hardware or software implementation may be carried out using a digital storage medium, such as cloud storage, floppy disks, DVDs, Blu-rays, CDs, ROMs, PROMs, EPROMs, EEPROMs, or flash memory, which stores electronically readable control signals thereon and cooperate (or can cooperate) with a programmable computer system so that each method is executed. Thus, the digital storage medium may be computer-readable.

[0165] Some embodiments of the present invention include a data carrier having an electronically readable control signal, which can cooperate with a programmable computer system so that one of the methods described herein is performed.

[0166] Generally, embodiments of the present invention may be implemented as a computer program product having program code, the program code being operable to perform one of the methods when the computer program product is executed on a computer. The program code may be stored, for example, on a machine-readable carrier.

[0167] Other embodiments include a computer program stored on a machine-readable carrier for performing one of the methods described herein. In other words, one embodiment of the method of the present invention is a computer program having program code for performing one of the methods described herein when the computer program is executed on a computer.

[0168] Therefore, a further embodiment of the method of the present invention is a data carrier (or digital storage medium, or computer-readable medium) having a computer program recorded thereon for performing one of the methods described herein. Therefore, a further embodiment of the method of the present invention is a data stream or sequence of signals representing a computer program for performing one of the methods described herein. The data stream or sequence of signals may be configured to be transmitted, for example, over a data communication connection, for example, over the Internet. A further embodiment comprises processing means, for example, a computer or a programmable logic device, configured or adapted to perform one of the methods described herein. A further embodiment comprises a computer having a computer program for performing one of the methods described herein installed thereon.

[0169] In some embodiments, a programmable logic device (e.g., a field-programmable gate array) may be used to perform some or all of the functions of the methods described herein. In some embodiments, a field-programmable gate array may cooperate with a microprocessor to perform one of the methods described herein. Generally, the methods are preferably performed by any hardware device.

[0170] The embodiments described above are merely illustrative of the principles of the present invention. It will be understood that variations and modifications of the arrangements and details described herein will be obvious to those skilled in the art. Therefore, it is intended that the invention is limited only by the claims that follow, and not by the specific details presented in the description and explanation of the embodiments herein.

[0171] List of acronyms and symbols V2X: Vehicle-to-Everything 3GPP: Third Generation Partnership Project D2D: Device-to-device BS: Base station eNB: Advanced Node B (3G base station) UE: User Equipment SPS: Semi-Persistent Scheduling OS: One Shot PPPP:ProSe Packet-by-Package Priority PPPR: ProSe packet-by-packet reliability QoS: Quality of Service SCS: Subcarrier Spacing SCI: Side Link Control Information BSR: Buffer Status Report NF: Network Function NEF: Network publishing function NR:New Radio NWDAF: Network Data Analysis Function OTT: Over the Top SIPTO: Selected IP Traffic Offload UDM: Integrated Data Management UDR: Integrated Data Repository UE: User device (user terminal) AF: Application Function RAN: Wireless Access Network

[0172] References [1] Netmanias, “LTE QoS: SDF and EPS Bearer QoS”, https: / / www.netmanias.com / en / ?m=view&id=techdocs&no=10434 , Sept. 2011, Last Accessed 25 / 07 / 2018. [2] 3GPP TS 23.501 V15.1.0, System Architecture for the 5G System; Stage 2, Mar. 2018. [3] Netmanias, “LTE QoS (Part 2) - LTE QoS Parameters (QCI, ARP, GBR, MBR and AMBR)”, https: / / www.netmanias.com / en / post / blog / 5933 / lte-qos / lte-qos-part-2-lte-qos-parameters-qci-arp-gbr-mbr-and-ambr, Oct. 2013, Last Accessed 25 / 07 / 2018. [4] 3GPP TS 23.682 V15.5.0, Architecture enhancements to facilitate communications with packet data networks and applications (Release 15), June 2018. [5] 3GPP TS 23.502 V15.2.0, Procedures for the 5G System; Stage 2, (Release 15), Jun. 2018. [6] 3GPP TS 38.300 V15.1.0, NR and NG-RAN Overall Description; Stage 2 (Release 15), Mar. 2018. [7] 3GPP TS 38.211 V15.1.0, Physical channels and modulation (Release 15), Dec. 2017. [8] 3GPP TS 36.331 V15.0.1, Radio Resource Control (RRC); Protocol specification (Release 15), Jan. 2018. [9] 3GPP TS 29.520 V15.0.0, 5G System; Network Data Analytics Services; Stage 3 (Release 15), Jan. 2018. [Explanation of Symbols]

[0173] 100 Terrestrial Wireless Networks 102 Core Network 104 Wireless Access Network Cells 1061-1065 gNB1~gNB5 base station UE1, UE2, UE3 users 1081, 1082, 1083, 1121, 1122 arrows 1101, 1102 IoT devices 1141-1145, 1161-1165 backhaul links 200 yen, coverage area, coverage 202 First Vehicle, Vehicle, Mode 3 UE 204 Second Vehicle, Vehicle, Mode 3 UE 206, 208, 210 Vehicle, Mode 4 UE 300 transmitters, base stations, and the first UE 300a, 302a1, 302a n Signal processor 300b, 302b1, 302b n Transceiver 302 Receiver, UE, Further UE 3021, 302n UE 3021 to 302 n Receiver 304a, 304b Wireless communication link or channel, First wireless communication link, Wireless communication link 304c Wireless communication link or channel, Second wireless communication link, Wireless communication link, Sidelink, PC5 interface ANT T , ANT R Antenna 308 Wireless communication system 310 Core network, Cellular network, Core 310a Service capability exposure function, SCEF, Network exposure function, NEF 310b Home subscriber server, HSS, Unified data management, UDM 310c Mobility management entity, MME / Serving GPRS support node, SGSN, Core access and mobility management function, AMF 312 Application server, Server, Application server (AS) 314 Radio access network, RAN, Cellular network 350 Computer system 352 Processor 354 Communication infrastructure 356 Main memory 358 Secondary memory 360 Resource pool, Pool, First resource pool, Communication interface 362 Resource, Communication channel 410 V2X - RPSI - feedback IE

Claims

1. A transmitter for a wireless communication system, wherein the wireless communication system provides a set of resources, each of which will be allocated for a transmission, and the transmission includes one or more first transmissions having a first priority level and one or more second transmissions having a second priority level, wherein the first priority level is higher than the second priority level. If the occupancy rate of the aforementioned set of resources reaches a predetermined threshold, the transmitter will - Reserve a certain amount of unoccupied resources from the set of resources for the first transmission, and - Allocating reserved resources for the first transmission. A transmitter configured to perform the following actions.

2. The transmitter according to claim 1, wherein the transmitter is configured to reserve a certain amount of unoccupied resources when it reaches a certain occupancy rate or traffic load threshold.

3. When the aforementioned occupancy rate or traffic load threshold is reached, the transmitter will - To begin allocating reserved resources for the first transmission only, and - Stop allocating resources for a second transmission. The transmitter according to claim 2, configured to perform the following:

4. Each of the aforementioned transmissions includes at least a third transmission having a third priority level, wherein the first priority level and the second priority level are higher than the third priority level. The transmitter according to any one of claims 1 to 3, wherein the wireless communication system provides a plurality of sets of resources, the plurality of sets of resources comprising a first set of resources including resources to be allocated for the first transmission and the second transmission, and a second set of resources including resources to be allocated for the third transmission.

5. The transmission has associated low latency and / or high reliability requirements and / or quota requirements to ensure that the application service meets the required quality of service (QoS). The transmitter according to claim 4, wherein, in response to a cessation of allocating resources for the second transmission, the transmitter is configured to allocate resources for the second transmission in the second set of resources, provided that certain low latency and / or high reliability requirements and / or quota requirements for the second transmission can be met.

6. The transmitter according to claim 4 or 5, wherein the resource includes a plurality of subcarriers, and the subcarrier spacing, SCS of the resource in the first set of resources is higher than the SCS of the resource in the second set of resources.

7. The transmitter according to any one of claims 1 to 6, wherein the transmitter is configured to select an amount of resources to be reserved for the first transmission based on the real-time load of the set of resources or based on the expected load.

8. The wireless communication system includes a plurality of base stations, a gNB, and a plurality of user devices, UEs, and the transmitter is equipped with a gNB. The aforementioned UE is connected to one or more other UEs via a side link. The UE is configured for sidelink communication with one or more other UEs, The transmitter according to any one of claims 1 to 7, wherein the resources from the set of resources for the sidelink communication with one or more other UEs are scheduled by the gNB.

9. The wireless communication system includes a plurality of user devices, UEs, and the transmitter comprises one of the UEs. The aforementioned UE is connected to one or more other UEs via a side link. The transmitter according to any one of claims 1 to 7, wherein the UE is configured for sidelink communication with one or more other UEs, and the UE is configured to autonomously schedule the resources from the set of resources for the sidelink communication.

10. The transmitter according to any one of claims 1 to 9, comprising a plurality of resources, the set of resources being continuous or discontinuous over the frequency domain and adjacent or non-adjacent over the time domain.

11. The apparatus according to claim 10, wherein the set of resources defines a resource pool.

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