WO2022174457A1 - 非连续接收的确定方法、装置、通信设备及存储介质 - Google Patents

非连续接收的确定方法、装置、通信设备及存储介质 Download PDF

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WO2022174457A1
WO2022174457A1 PCT/CN2021/077301 CN2021077301W WO2022174457A1 WO 2022174457 A1 WO2022174457 A1 WO 2022174457A1 CN 2021077301 W CN2021077301 W CN 2021077301W WO 2022174457 A1 WO2022174457 A1 WO 2022174457A1
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period value
value
scs
specified
specified period
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English (en)
French (fr)
Inventor
江小威
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Beijing Xiaomi Mobile Software Co Ltd
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Beijing Xiaomi Mobile Software Co Ltd
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Priority to CN202180000559.2A priority Critical patent/CN115244993B/zh
Priority to EP21926174.0A priority patent/EP4297492A4/en
Priority to PCT/CN2021/077301 priority patent/WO2022174457A1/zh
Priority to US18/277,918 priority patent/US20240237132A9/en
Publication of WO2022174457A1 publication Critical patent/WO2022174457A1/zh
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. Transmission Power Control [TPC] or power classes
    • H04W52/02Power saving arrangements
    • H04W52/0209Power saving arrangements in terminal devices
    • H04W52/0212Power saving arrangements in terminal devices managed by the network, e.g. network or access point is leader and terminal is follower
    • H04W52/0216Power saving arrangements in terminal devices managed by the network, e.g. network or access point is leader and terminal is follower using a pre-established activity schedule, e.g. traffic indication frame
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/20Manipulation of established connections
    • H04W76/28Discontinuous transmission [DTX]; Discontinuous reception [DRX]
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02DCLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
    • Y02D30/00Reducing energy consumption in communication networks
    • Y02D30/70Reducing energy consumption in communication networks in wireless communication networks

Definitions

  • the present disclosure relates to the field of wireless communication technologies, and in particular, to a method, apparatus, communication device, and storage medium for determining discontinuous reception.
  • a typical video stream generates video frames in a periodic manner, and the typical video frame rate is 30 frames or 60 frames per second, that is, the video frame interval is 33.33 or 16.66 milliseconds (millisecond, ms for short).
  • Augmented Reality (AR) or Virtual Reality (VR) services can provide users with video streaming services, and have higher latency requirements (eg, 5-10ms) than traditional video streaming services. .
  • the network side in order to reduce the power consumption of user equipment (User Equipment, UE for short), the network side will introduce a discontinuous reception (Discontinuous Reception, DRX) mechanism for uplink and downlink video services.
  • DRX discontinuous Reception
  • the DRX cycles that can be configured on the network side include: 10ms, 20ms, 32ms, 40ms, 60ms, 64ms, 70ms, 80ms, 128ms, 160ms, 256ms, and 320ms.
  • the period of the existing DRX configuration cannot match the frame interval of the video service (ie, 33.33ms and 16.66ms), so that when the configured DRX period cannot match the arrival time interval of the service, additional data transmission delay will occur. .
  • the DRX determination method, device, communication device and storage medium proposed by the present disclosure are used to solve the problem of additional data transmission delay in the related art when the configured DRX cycle cannot match the service arrival time interval.
  • the method for determining DRX proposed by an embodiment of the present disclosure, applied to a network device includes: sending DRX configuration information to a UE, where a specified period value included in the configuration information is different from any default value of the DRX.
  • the configuration period value is different.
  • the method for determining DRX proposed by an embodiment of the present disclosure, applied to a UE includes: receiving DRX configuration information sent by a network device, wherein a specified period value included in the configuration information is different from any default value of the DRX.
  • the configurable period value is different; based on the specified period, the control channel is monitored.
  • the apparatus for determining DRX proposed by another embodiment of the present disclosure which is applied to network equipment, includes: a sending module, configured to send DRX configuration information to a UE, wherein the specified period value included in the configuration information is related to the DRX configuration information. Any of the default configurable period values are different.
  • the apparatus for determining DRX proposed by an embodiment of another aspect of the present disclosure, applied to a UE includes: a receiving module, configured to receive DRX configuration information sent by a network device, wherein the specified period value included in the configuration information is the same as the Any default configurable period value of the DRX is different; the monitoring module is configured to monitor the control channel based on the specified period.
  • a communication device includes: a transceiver; a memory; and a processor, respectively connected to the transceiver and the memory, and configured to control the memory by executing computer-executable instructions on the memory.
  • the transceiver transmits and receives wireless signals, and can implement the aforementioned DRX determination method.
  • a computer storage medium provided by an embodiment of the present disclosure stores computer-executable instructions thereon; after the computer-executable instructions are executed by a processor, the aforementioned method for determining DRX can be implemented.
  • Yet another embodiment of the present disclosure provides a computer program product, including a computer program, when the computer program is executed by a processor in a communication device, the computer program implements the method for determining the DRX according to the embodiment of the above-mentioned aspect.
  • the network device determines that the arrival time interval of any service data is different from each default configurable period value of DRX
  • the The UE indicates a specified period value matching the arrival time interval of the service data, so as to perform data transmission with the UE based on the specified period value, thereby reducing the service data transmission delay as much as possible and improving the quality and performance of the service service.
  • FIG. 1 is a schematic flowchart of a method for determining DRX according to an embodiment of the present disclosure
  • FIG. 2 is a schematic flowchart of another method for determining DRX provided by an embodiment of the present disclosure
  • FIG. 3 is a schematic flowchart of still another method for determining DRX provided by an embodiment of the present disclosure
  • FIG. 4 is a schematic flowchart of another method for determining DRX provided by an embodiment of the present disclosure
  • FIG. 5 is a schematic flowchart of another method for determining DRX provided by an embodiment of the present disclosure
  • FIG. 6 is a schematic flowchart of another method for determining DRX provided by an embodiment of the present disclosure
  • FIG. 7 is a schematic flowchart of still another method for determining DRX provided by an embodiment of the present disclosure.
  • FIG. 8 is a schematic flowchart of another method for determining DRX provided by an embodiment of the present disclosure.
  • FIG. 9 is a schematic flowchart of another method for determining DRX provided by an embodiment of the present disclosure.
  • FIG. 10 is a schematic flowchart of another method for determining DRX provided by an embodiment of the present disclosure.
  • FIG. 11 is a schematic flowchart of still another method for determining DRX provided by an embodiment of the present disclosure
  • FIG. 12 is a schematic structural diagram of an apparatus for determining DRX according to an embodiment of the present disclosure
  • FIG. 13 is a schematic structural diagram of another apparatus for determining DRX provided by an embodiment of the present disclosure.
  • FIG. 14 is a block diagram of a user equipment provided by an embodiment of the present disclosure.
  • FIG. 15 is a schematic structural diagram of a base station according to an embodiment of the present disclosure.
  • first, second, third, etc. may be used in embodiments of the present disclosure to describe various pieces of information, such information should not be limited to these terms. These terms are only used to distinguish the same type of information from each other.
  • the first information may also be referred to as the second information, and similarly, the second information may also be referred to as the first information.
  • the words "if” and “if” as used herein can be interpreted as "at the time of” or "when” or "in response to determining.”
  • the embodiments of the present disclosure propose a method for determining DRX in order to solve the problem of additional data transmission delay when the configured DRX cycle cannot match the service arrival time interval in the related art.
  • the network device when the network device determines that the arrival time interval of any service data is different from each default configurable period value of DRX, the network device can indicate to the UE that the arrival time interval of the service data matches the arrival time interval of the service data.
  • the period value is specified to perform data transmission with the UE based on the specified period value, thereby minimizing the delay of service data transmission and improving the quality and performance of the service service.
  • FIG. 1 is a schematic flowchart of a method for determining DRX according to an embodiment of the present disclosure, which is applied to a network device, such as a base station.
  • the method for determining the DRX includes the following steps:
  • Step 101 Send DRX configuration information to the UE, wherein the specified period value included in the configuration information is different from any default configurable period value of DRX.
  • the specified period value may be determined by the network device according to the protocol, or may also be determined according to the current service requirement.
  • the above configuration information may be an RRC message, or may also be a PDCCH control signaling, which is not limited in the present disclosure.
  • the specified period value may be a value of any of the following types of periods: a long period, a short period, a scheduling period, a retransmission period, a return period, and a deactivation period.
  • the default configurable cycle values are different.
  • the default configurable period values may include: 10ms, 20ms, 32ms, 40ms, 60ms, 64ms, 70ms, 80ms, 128ms, 160ms, 256ms, 320ms.
  • the default configurable cycle values can include: 2ms, 3ms, 4ms, 5ms, 6ms, 7ms, 8ms, 10ms, 14ms, 16ms, 20ms, 30ms, 32ms, 35ms, 40ms, 64ms, 80ms, 128ms, 160ms, 256ms, 320ms, 512ms, 640ms.
  • the network device may determine the specified period value according to the arrival time interval of any service data.
  • AR or VR services can provide users with video streaming services.
  • the typical video frame rate is 30 frames or 60 frames per second, that is, the video frame arrival time interval is 33.33ms or 16.66ms, which is different from the default configurable period value of DRX (10ms, 20ms, etc.). Therefore, in the present disclosure, the network device can determine the current specified period value of DRX according to the arrival time interval of the video service, and send the specified period value to the UE, so that uplink and downlink data can be transmitted with the UE based on the specified period value.
  • the specified period value may include different contents as required, for example, may include a first period value, where the first period value may be a millisecond value, the number of sub-milliseconds, or the number of OFDM symbols.
  • the sub-millisecond is a new time measurement unit proposed by the present disclosure, which more accurately represents the specified period value, so that the specified period value is as close as possible to the arrival time interval of the service data. It should be noted that the sub-millisecond may be a time measurement unit smaller than the millisecond, and the specific time length corresponding to the sub-millisecond may be determined according to actual needs, which is not limited in this embodiment of the present disclosure.
  • the specified period value may also include a combination of the first period value and the second period value, where the first period value may be a millisecond value or the number of symbols, and the second period value may also be a millisecond value, the number of symbols or The number of sub-milliseconds, etc., is not limited in the present disclosure.
  • the specified period value may also include a combination of the first period value, the second period value and the third period value, where the first period value may be a millisecond value, the second period value may also be a millisecond value, and the third period value may be a millisecond value.
  • the period value may be the number of symbols or the number of sub-milliseconds, etc., which is not limited in the present disclosure.
  • multiple subcarrier spacings may be configured in a wireless communication system.
  • SCS subcarrier Spacing
  • CP cyclic prefix
  • each element and each corresponding relationship in Table 1 exist independently; these elements and corresponding relationships are exemplarily listed in the same table, but do not represent all the elements in the table, Correspondence must exist according to the coexistence shown in Table 1.
  • the value of each element and each corresponding relationship are independent of any other element value or corresponding relationship in Table 1. Therefore, those skilled in the art can understand that the value of each element and each corresponding relationship in Table 1 are each an independent embodiment.
  • the network device may determine the specified period value under each SCS according to the resource allocation information corresponding to different SCSs, that is, determine the symbols contained in the specified period value under each SCS Quantity, millisecond value, and/or number of sub-milliseconds.
  • the network device may also determine the specified period value under each SCS based on the specified period value under the specified SCS. Specifically, the network device can determine the specified period value under the specified SCS according to the resource allocation information corresponding to the specified SCS, and then according to the relationship between the resource allocation information corresponding to the specified SCS and the resource allocation information corresponding to other SCSs, and the specified SCS The specified period value of , determines the specified period value under other SCSs.
  • FIG. 2 is a schematic flowchart of another method for determining DRX provided by an embodiment of the present disclosure, which is applied to a network device, such as a base station.
  • the method for determining the DRX includes the following steps:
  • Step 201 in response to the arrival time interval of any business data being different from any default configurable period value, determine any default configurable period value that is less than the arrival time interval of any business data as within the specified period value. Contains the millisecond value m corresponding to the first period value.
  • both the first period value and the second period value may be millisecond values.
  • any default configurable period value can be selected from the multiple default configurable period values.
  • the configurable period value is used as the first period value; alternatively, a default configurable period value with the smallest difference between the arrival time interval of any service data can be selected as the first period value.
  • the arrival time interval of any service data is 16.66ms, corresponding to the DRX long cycle
  • the default configurable cycle value less than 16.66ms is 10ms, it can be The first period value is determined to be 10ms.
  • the arrival time interval of any service data is 33.33ms, corresponding to the DRX long cycle
  • the default configurable cycle values less than 33.33ms are 10ms, 20ms and 32ms. Therefore, it can be determined that the first period value can be 10ms, 20ms or 32ms, or, since the difference between 32ms and 33.33ms is the smallest, it can be determined that the first period value can be 32ms.
  • Step 202 Determine the first difference between the arrival time interval of any service data and m as the millisecond value corresponding to the second period value included in the specified period value.
  • the arrival time interval of any service data can be compared with m.
  • the first difference between the values is determined as the millisecond value corresponding to the second period value.
  • the arrival time interval of service data is 16.66ms.
  • the first cycle value included in the specified cycle value is 10ms.
  • the first difference value is 6.66ms, which can be determined under each SCS.
  • the second period value contained in the specified period value of 6.66ms.
  • the arrival time interval of service data is 33.33ms.
  • the first cycle value included in the specified cycle value is 32ms.
  • the first difference value is 1.33ms, and each SCS can be determined.
  • the second period value included in the specified period value is 1.33ms.
  • Step 203 Send DRX configuration information to the UE, wherein the specified period value included in the configuration information is different from any default configurable period value of DRX.
  • step 203 may be implemented in any of the various embodiments of the present disclosure, which is not limited in the embodiment of the present disclosure, and will not be described again.
  • the network device when the network device determines that the arrival time interval of any service data is different from each default configurable period value of DRX, the network device can indicate to the UE that the arrival time interval of the service data matches the arrival time interval of the service data.
  • the period value is specified to perform data transmission with the UE based on the specified period value, thereby minimizing the delay of service data transmission and improving the quality and performance of the service service.
  • FIG. 3 is a schematic flowchart of still another DRX determination method provided by an embodiment of the present disclosure, which is applied to a network device.
  • the method for determining the DRX includes the following steps:
  • Step 301 in response to the arrival time interval of any business data being different from any default configurable period value, the time length corresponding to any default configurable period value that is less than the arrival time interval of any business data, determine the specified period The millisecond value m corresponding to the first period value contained in the value.
  • Step 302 Determine the first difference between the arrival time interval of any service data and m.
  • steps 301 to 302 may be implemented in any of the various embodiments of the present disclosure, which are not limited in the embodiments of the present disclosure, and will not be described again.
  • Step 303 Determine the quotient of the first difference value and the specified reference coefficient as the number of sub-milliseconds corresponding to the second period value included in the specified period value.
  • the specified reference coefficient can be 1/a. It should be noted that, the specific value of a may be determined according to specific needs, which is not limited in this embodiment of the present disclosure. For example, a can be 32, that is, the specified reference coefficient is 1/32.
  • the specified period value when the specified period value is a combination of the first period value and the second period value, the first period value may be a millisecond value, and the second period value may be a number of sub-milliseconds. Therefore, the quotient of the first difference between the arrival time interval of any service data and m and the specified reference coefficient can be determined as the number of sub-milliseconds corresponding to the second period value.
  • the arrival time interval of service data is 16.66ms
  • the specified reference coefficient is 1/32.
  • the first cycle value included in the specified cycle value under each SCS is 10ms.
  • the arrival time interval of service data is 33.33ms
  • the specified reference coefficient is 1/32.
  • the first cycle value included in the specified cycle value under each SCS is 32ms.
  • the rounded value of the quotient of the first difference and the specified reference coefficient can be determined as the second period included in the specified period value.
  • the rounding in this embodiment may be rounding down, rounding up, or rounding up, and so on.
  • Step 304 Send DRX configuration information to the UE, wherein the specified period value included in the configuration information is different from any default configurable period value of DRX.
  • step 304 may be implemented in any of the various embodiments of the present disclosure, which is not limited in the embodiment of the present disclosure, and will not be described again.
  • the network device when the network device determines that the arrival time interval of any service data is different from each default configurable period value of DRX, the network device can indicate to the UE that the arrival time interval of the service data matches the arrival time interval of the service data.
  • the period value is specified to perform data transmission with the UE based on the specified period value, thereby minimizing the delay of service data transmission and improving the quality and performance of the service service.
  • FIG. 4 is a schematic flowchart of another DRX determination method provided by an embodiment of the present disclosure, which is applied to a network device.
  • the method for determining the DRX includes the following steps:
  • Step 401 in response to the arrival time interval of any business data being different from any default configurable period value, determine the time length corresponding to any default configurable period value that is less than the arrival time interval of any business data as every The millisecond value m corresponding to the first period value contained in the specified period value under each SCS.
  • the time domain resource allocation information of each SCS may include: the duration of each slot and the duration of each symbol.
  • the specified period value when the specified period value is a combination of the first period value and the second period value, the first period value may be a millisecond value, and the second period value may be the number of symbols.
  • any one of the multiple default configurable resource periods can be selected.
  • the default configurable resource period, or, a default configurable resource period with the smallest difference between the arrival time interval of any service data may also be selected.
  • the arrival time interval of any service data is 16.66ms
  • the specified period value corresponding to the SPS for a 15kHZ SCS since the default configurable period value less than 16.66ms is 10ms, it can be determined that the first The period value is 10ms.
  • the default configurable period values less than 33.33ms are 10ms, 20ms and 32ms. Therefore, you can It is determined that the first period value may be 10ms, 20ms or 32ms, or, since the difference between 32ms and 33.33ms is the smallest, it may be determined that the first period value may be 32ms.
  • Step 402 Determine the first difference between the arrival time interval of any service data and m.
  • Step 403 Determine the number of symbols corresponding to the second period value included in the specified period value under each SCS according to the first difference value and the duration of each symbol.
  • the number of symbols corresponding to the second period value included in the specified period value under each SCS may be determined by rounding the quotient of the first difference value and the duration of each symbol under each SCS.
  • rounding in this embodiment may be rounding down, rounding up, or rounding to the nearest integer, and so on.
  • the arrival time interval of service data is 16.66ms
  • the first period value included in the specified period value is 10ms for the SCS of 15kHZ.
  • the first difference is 6.66ms.
  • the quotient of the first difference and the duration of each symbol (0.0714ms) corresponding to the SCS of 15kHZ is 93.277, and 93.277 is rounded up to the value 93. Therefore, the symbol corresponding to the second period value in the specified period value corresponding to the SCS of 15kHZ is 93.277.
  • the number is 93.
  • the arrival time interval of the service data is 16.66ms
  • the first period value included in the specified resource corresponding to the SCS of 30kHZ is 10ms.
  • the first difference is 6.66ms.
  • the quotient of the first difference and the duration of each symbol (0.0357ms) corresponding to the SCS of 30kHZ is 186.555, and 186.555 is rounded up to the value 187. Therefore, the symbol corresponding to the second period value in the specified period value corresponding to the SCS of 30kHZ is 186.555.
  • the number is 187.
  • the second period value in the specified period value under each SCS can be configured as shown in Table 2 below:
  • each element and each corresponding relationship in Table 2 exist independently; these elements and corresponding relationships are exemplarily listed in the same table, but do not represent all the elements in the table, Correspondence must exist according to the coexistence shown in Table 2.
  • the value of each element and each corresponding relationship are independent of any other element value or corresponding relationship in Table 2. Therefore, those skilled in the art can understand that the value of each element and each corresponding relationship in Table 2 are each an independent embodiment.
  • the quotient of the first difference and the symbol duration under each SCS can also be rounded down, or rounded up, and determined as the first value in the specified period values under each SCS.
  • Two Period Values The above-mentioned second period values are not limited in the present disclosure.
  • any SCS can also be determined as the designated SCS, so that the designated After the specified period value under the specified SCS, the specified period value under each SCS can be determined based on the specified period value under the specified SCS.
  • the value obtained by rounding the quotient of the first difference and the duration of each symbol under the specified SCS can be multiplied by the number of time slots per frame under each SCS and the number of time slots per frame under the specified SCS.
  • the ratio is determined as the number of symbols corresponding to the second period value contained in the specified period value under each SCS.
  • any method of calculating the specified period value of the present disclosure can be used to calculate the extended CP.
  • the specified period value under CP is the specified period value under CP.
  • the first cycle value is 10ms and the second cycle value is 93 in the specified cycle value under the SCS of 15kHZ.
  • the specified period value under each SCS can be determined.
  • the SCS at 15kHZ is In the case of specifying SCS, according to the relationship between the number of time slots per frame between different SCSs, it can be determined that the value of the second period value in the specified period value under each SCS can be configured as shown in Table 3 below:
  • each element and each corresponding relationship in Table 3 exist independently; these elements and corresponding relationships are exemplarily listed in the same table, but do not represent all the elements in the table, Correspondence must exist according to the coexistence shown in Table 3.
  • the value of each element and each corresponding relationship are independent of any other element value or corresponding relationship in Table 3. Therefore, those skilled in the art can understand that the value of each element and each corresponding relationship in Table 3 are each an independent embodiment.
  • the maximum integer multiple of the first specified value contained in the quotient of the first difference and the time length of each symbol can also be determined as the symbol corresponding to the second period contained in the specified period value under each SCS. quantity.
  • the first specified value may be a value agreed in a protocol or a value configured by a network, for example, may be 2, 5, or 10, etc., which is not limited in the present disclosure.
  • the first specified value is 5, and the arrival time interval of service data is 16.66ms.
  • the first period value included in the specified period value is 10ms.
  • the first difference is 6.66ms.
  • the quotient of the first difference value and the duration of each symbol (0.0714ms) corresponding to the SCS of 15kHZ is 93.277, and 90 (maximum multiple of 5) can be determined as the symbol corresponding to the value of the second period included in the value of the specified period under the SCS of 15kHZ quantity.
  • the arrival time interval of the service data is 16.66ms
  • the first period value included in the specified resource corresponding to the SCS of 30kHZ is 10ms.
  • the first difference is 6.66ms.
  • the quotient of the first difference and the duration of each symbol (0.0357ms) corresponding to the SCS of 30kHZ is 186.555, and 185 (maximum multiple of 5) can be determined as the symbol corresponding to the value of the second period included in the value of the specified period under the SCS of 15kHZ quantity.
  • Step 404 Send DRX configuration information to the UE, wherein the specified period value included in the configuration information is different from any default configurable period value of DRX.
  • the DRX configuration information may further include cell information and/or bandwidth part (Bandwidth Part, BWP for short) information corresponding to the number of symbols in the specified period value.
  • the cell information may include at least one of the following: a cell group identity, a cell identity, and a cell type.
  • the BWP information may include at least one of the following: BWP identification, BWP type.
  • the DRX configuration information may also include cell information and/or BWP information, so that the UE can According to the cell information and/or BWP information in the DRX configuration information, the current per-symbol duration is determined to accurately determine the number of symbols included in the specified period value.
  • step 404 may be implemented in any of the various embodiments of the present disclosure, which is not limited in the embodiment of the present disclosure, and will not be described again.
  • the network device when the network device determines that the arrival time interval of any service data is different from each default configurable period value of DRX, the network device can indicate to the UE that the arrival time interval of the service data matches the arrival time interval of the service data.
  • the period value is specified to perform data transmission with the UE based on the specified period value, thereby minimizing the delay of service data transmission and improving the quality and performance of the service service.
  • FIG. 5 is a schematic flowchart of another DRX determination method provided by an embodiment of the present disclosure, which is applied to a network device.
  • the DRX determination method includes the following steps:
  • Step 501 in response to the arrival time interval of any service data being different from any default configurable period value, determine each SCS according to the quotient S of the arrival time interval of any service data and the duration of each time slot corresponding to the designated SCS.
  • the millisecond value m corresponding to the first period value contained within the specified period value below.
  • the time domain resource allocation information of each SCS may include: the duration of each slot and the duration of each symbol.
  • the millisecond value m corresponding to the first period value may be determined according to the size of the quotient S or the relationship with each default configurable period value.
  • the integer part in S is determined as the millisecond value m corresponding to the first period value included in the specified period value under each SCS.
  • the arrival time interval of any service data is 16.66ms
  • the SCS of 15kHZ is the designated SCS, that is, the duration of each time slot corresponding to the designated SCS is 1ms
  • the quotient S is 16.66. Therefore, 16 can be determined as the millisecond value m corresponding to the first period value contained in the specified period value under each SCS.
  • the maximum multiple value of the second specified value included in S may also be determined as the millisecond value m corresponding to the first cycle value included in the specified cycle value under each SCS.
  • the second specified value may be a value agreed in a protocol or a value configured by a network, for example, may be 2, 5, or 10, etc., which is not limited in the present disclosure.
  • the second specified value is 5.
  • the SCS of 15kHZ is the specified SCS, that is, the duration of each time slot corresponding to the specified SCS is 1ms, and the quotient S is 16.66. Therefore, 15 (maximum multiple of 5) can be determined as the millisecond value m corresponding to the first period value contained in the specified period value under each SCS.
  • the default configurable period value smaller than S may also be determined as the millisecond value m corresponding to the first period value included in the specified period value under each SCS.
  • any default configurable period value may be selected from the multiple default configurable period values as the first period value.
  • the millisecond value m corresponding to a period value; or, a default configurable period value with the smallest difference from S may be selected as the millisecond value m corresponding to the first period value.
  • the arrival time interval of any service data is 16.66ms
  • the SCS of 15kHZ is the designated SCS, that is, the duration of each time slot corresponding to the designated SCS is 1ms, and the quotient S is 16.66. Since the default configurable period value smaller than S(16.66) is 10ms, it can be determined that the millisecond value m corresponding to the first period value is 10ms.
  • the arrival time interval of any service data is 33.33ms
  • the SCS of 15kHZ is the designated SCS, that is, the duration of each time slot corresponding to the designated SCS is 1ms
  • the quotient S is 33.33. Since the default configurable period values smaller than S(33.33) are 10ms, 20ms and 32ms, and the difference between 32ms and 33.33 is the smallest, it can be determined that the millisecond value m corresponding to the first period value can be 32ms.
  • Step 502 Determine the second difference between the arrival time interval of any service data and m.
  • Step 503 Determine the number of symbols corresponding to the second period value included in the specified period value under each SCS according to the second difference value and the duration of each symbol.
  • Step 504 Send DRX configuration information to the UE, wherein the specified period value included in the configuration information is different from any default configurable period value of DRX.
  • step 504 may be implemented in any of the various embodiments of the present disclosure, which is not limited in the embodiment of the present disclosure, and will not be described again.
  • the network device when the network device determines that the arrival time interval of any service data is different from each default configurable period value of DRX, the network device can indicate to the UE that the arrival time interval of the service data matches the arrival time interval of the service data.
  • the period value is specified to perform data transmission with the UE based on the specified period value, thereby minimizing the delay of service data transmission and improving the quality and performance of the service service.
  • FIG. 6 is a schematic flowchart of another method for determining DRX provided by an embodiment of the present disclosure, which is applied to a network device.
  • the DRX determination method includes the following steps:
  • Step 601 in response to the arrival time interval of any service data being different from any default configurable period value, any default configurable period value that is less than the arrival time interval of any service data is determined to be specified under each SCS.
  • the millisecond value m corresponding to the first period value contained in the period value.
  • Step 602 Determine the first difference between the arrival time interval of any service data and m.
  • Step 603 the value after the rounding of the quotient of the first difference value and the duration of each time slot corresponding to the specified SCS is determined as the millisecond value k corresponding to the second period value contained in the specified period value under each SCS, wherein k is a positive integer.
  • the specified period value may be a combination of the first period value, the second period value and the third period value, and the first period value and the second period value may be millisecond values, and the third period value may be is the number of symbols.
  • the value obtained by rounding down the quotient of the first difference value and the duration of each time slot corresponding to the specified SCS can be determined as the millisecond value k corresponding to the second period value contained in the specified period value under each SCS. .
  • the specified SCS is 15kHZ SCS (the duration of each time slot is 1ms), and the millisecond value m corresponding to the first period value contained in the specified period value is 10, then the first period value is 10.
  • the difference is 6.66ms.
  • the quotient of the first difference value of 6.66ms and the duration of each time slot of 1ms is 6.66, so it can be determined that the millisecond value corresponding to the second period value included in the specified period value under each SCS is 6.
  • the specified SCS is the SCS of 15kHZ (the duration of each time slot is 1ms), and the millisecond value m corresponding to the first period value contained in the specified period value is 32, then the first period value is 32.
  • a difference is 1.33ms.
  • the quotient of the first difference value of 1.33 ms and the duration of each time slot of 1 ms is 1.33, so it can be determined that the millisecond value corresponding to the second period value included in the specified period value under each SCS is 1.
  • Step 604 Determine a third difference between the first difference and k.
  • Step 605 Determine the number of symbols corresponding to the third period value included in the specified period value under each SCS according to the third difference value and the duration of each symbol.
  • a value obtained by rounding the third difference value and the quotient of the duration of each symbol corresponding to each SCS may be determined as the number of symbols corresponding to the third period value included in the specified period value under each SCS.
  • the number of symbols corresponding to the third period value included in the specified period value under each SCS may be determined by rounding down, rounding up, or rounding to the nearest integer.
  • the arrival time interval of service data is 16.66ms, corresponding to the SCS of 15kHZ, the first cycle value included in the cycle value is 10ms, and the second cycle value is 6ms.
  • the third difference is 0.66ms.
  • the quotient of the third difference and the duration of each symbol (0.0714ms) corresponding to the SCS of 15kHZ is 9.243, and 9.243 is rounded up to the value 10. Therefore, the symbol corresponding to the third period value in the specified period value corresponding to the SCS of 15kHZ is 9.243.
  • the number is 10.
  • the arrival time interval of service data is 16.66ms
  • the first cycle value and the second cycle value included in the specified cycle value are 10ms and 6ms.
  • the third difference is 0.66ms.
  • the quotient of the third difference and the duration of each symbol (0.0357ms) corresponding to the SCS of 30kHZ is 18.49, and 18.49 is rounded up to the value 19. Therefore, the symbol corresponding to the third period value in the specified period value corresponding to the SCS of 30kHZ is 18.49.
  • the number is 19.
  • the third difference is The rounded value of the quotient of the duration of each symbol under each SCS can determine the configurable value of the third period value in the specified period value under each SCS, as shown in Table 4 below:
  • each element and each corresponding relationship in Table 4 exist independently; these elements and corresponding relationships are exemplarily listed in the same table, but do not represent all elements in the table, Correspondence must exist according to the coexistence shown in Table 4.
  • the value of each element and each corresponding relationship are independent of any other element value or corresponding relationship in Table 4. Therefore, those skilled in the art can understand that the value of each element and each corresponding relationship in Table 4 are each an independent embodiment.
  • the quotient of the third difference and the duration of each symbol under each SCS can also be rounded down, or rounded up, and determined as the specified period value under each SCS.
  • the number of symbols corresponding to each third period value is not limited in the present disclosure.
  • any SCS can also be determined as the designated SCS, so that after the designated SCS is determined After the specified period value under the specified SCS, the specified period value under each SCS can be determined based on the specified period value under the specified SCS.
  • the value obtained by rounding the quotient of the third difference value and the duration of each symbol corresponding to the specified SCS can be multiplied by the number of time slots per frame under each SCS and the number of time slots per frame under the specified SCS.
  • the ratio is determined as the number of symbols corresponding to the third period value contained in the specified period value under each SCS.
  • any method of calculating the specified period value of the present disclosure can be used to calculate the extended CP.
  • the specified period value under CP is the specified period value under CP.
  • the SCS of 15kHZ (the number of time slots per frame is 10) is the designated SCS
  • the first cycle value in the designated cycle value under the SCS of 15kHZ is the specified SCS.
  • the second period value is 6ms
  • the third period value is 10 symbols (9.243 rounded up)
  • the first period in the specified period value under the SCS of 30kHZ (the number of time slots per frame is 20) can be determined.
  • the value is 10ms
  • the second period is 6ms
  • the SCS at 15kHZ is In the case of specifying SCS, according to the relationship between the number of time slots per frame between different SCSs, it can be determined that the value of the third period value in the specified period value under each SCS can be configured as shown in Table 5 below:
  • each element and each corresponding relationship in Table 5 exist independently; these elements and corresponding relationships are exemplarily listed in the same table, but do not represent all the elements in the table, Correspondence must exist according to the coexistence shown in Table 5.
  • the value of each element and each corresponding relationship are independent of any other element value or corresponding relationship in Table 5. Therefore, those skilled in the art can understand that the value of each element and each corresponding relationship in Table 5 are each an independent embodiment.
  • Step 606 Send DRX configuration information to the UE, wherein the specified period value included in the configuration information is different from any default configurable period value of DRX.
  • step 606 may be implemented in any of the various embodiments of the present disclosure, which is not limited in the embodiment of the present disclosure, and will not be described again.
  • the network device when the network device determines that the arrival time interval of any service data is different from each default configurable period value of DRX, the network device can indicate to the UE that the arrival time interval of the service data matches the arrival time interval of the service data.
  • the period value is specified to perform data transmission with the UE based on the specified period value, thereby minimizing the delay of service data transmission and improving the quality and performance of the service service.
  • FIG. 7 is a schematic flowchart of still another DRX determination method provided by an embodiment of the present disclosure, which is applied to a network device.
  • the DRX determination method includes the following steps:
  • Step 701 in response to the arrival time interval of any service data being different from any default configurable period value, determine the quotient S of the arrival time interval of any service data and the time slot duration corresponding to each SCS.
  • Step 702 Determine the product of the integer part in S and the number of symbols per slot corresponding to each SCS as the number of symbols corresponding to the first period value included in the specified period value under each SCS.
  • the time domain resource allocation information of each SCS may include: the duration of each slot, the number of symbols per slot, and the duration of each symbol.
  • the arrival time interval of service data is 16.66ms
  • the duration of each slot corresponding to the SCS of 15kHz is 1ms
  • the arrival time interval of service data is 16.66ms
  • the duration of each time slot corresponding to the SCS of 30kHZ is 0.5ms
  • the integer part of the quotient S between the arrival time interval of service data and the time length of each slot corresponding to each SCS and the symbol per slot corresponding to each SCS can be as shown in Table 6 below:
  • each element and each corresponding relationship in Table 6 exist independently; these elements and corresponding relationships are exemplarily listed in the same table, but do not represent all the elements in the table, Correspondence must exist according to the coexistence shown in Table 6.
  • the value of each element and each corresponding relationship are independent of any other element value or corresponding relationship in Table 6. Therefore, those skilled in the art can understand that the value of each element and each corresponding relationship in Table 6 are each an independent embodiment.
  • Step 703 Determine the number of symbols corresponding to the second period value included in the specified period value under each SCS according to the fractional part in S and the duration of each symbol corresponding to each SCS.
  • the fractional part of the quotient S and the quotient of the symbol duration under each SCS can be rounded to determine the number of symbols corresponding to the second period value contained in the specified period value under each SCS. .
  • the value obtained by rounding up the quotient of the fractional part in S and the symbol duration under each SCS is determined as the specified period value under each SCS.
  • the values that can be configured for the second period value can be shown in Table 7 below:
  • each element and each corresponding relationship in Table 7 exist independently; these elements and corresponding relationships are exemplarily listed in the same table, but do not represent all elements in the table, Correspondence must exist according to the coexistence shown in Table 7.
  • the value of each element and each corresponding relationship are independent of any other element value or corresponding relationship in Table 7. Therefore, those skilled in the art can understand that the value of each element and each corresponding relationship in Table 7 are each an independent embodiment.
  • the quotient of the fractional part in S and the symbol duration under each SCS can also be rounded down, or the rounded value can be determined as the second period in the specified period value under each SCS.
  • the value of the number of symbols corresponding to the value is not limited in the present disclosure.
  • any SCS can also be determined as the designated SCS, so that after the designated SCS is determined After the number of symbols corresponding to the second period value in the specified period value under the specified period, the number of symbols corresponding to the second period value in the specified period value under the specified SCS can be determined based on the number of symbols corresponding to the second period value in the specified period value under the specified SCS. The number of symbols corresponding to the two-period value.
  • the fractional part of the quotient S and the quotient of the symbol duration under the specified SCS can also be rounded, and multiplied by the number of timeslots per frame under each SCS and the timeslots per frame under the specified SCS The ratio of the number, which is determined as the number of symbols corresponding to the second period value contained in the specified period value under each SCS.
  • any method of calculating the specified period value of the present disclosure can be used to calculate the extended CP.
  • the specified period value under CP is the specified period value under CP.
  • each SCS can be determined according to the relationship between the number of time slots per frame between different SCSs.
  • Table 8 The values that can be configured for the second period value in the next specified period value
  • each element and each corresponding relationship in Table 8 exist independently; these elements and corresponding relationships are exemplarily listed in the same table, but do not represent all elements in the table, Correspondence must exist according to the coexistence shown in Table 8.
  • the value of each element and each corresponding relationship are independent of any other element value or corresponding relationship in Table 8. Therefore, those skilled in the art can understand that the value of each element and each corresponding relationship in Table 8 are each an independent embodiment.
  • the first period value in the designated period values under the designated SCS may be based on The corresponding number of symbols determines the number of symbols corresponding to the first cycle value in the specified cycle values under each SCS.
  • the present disclosure it is possible to first determine the number of first symbols corresponding to the first period value and the number of second symbols corresponding to the second period value contained in the specified period value under the specified SCS; and then multiply the number of first symbols by each
  • the ratio of the number of time slots per frame under the SCS to the number of time slots per frame under the specified SCS is determined as the number of symbols corresponding to the first period value contained in the specified period value under each SCS; multiply the number of second symbols by The ratio of the number of time slots per frame under each SCS to the number of time slots per frame under each SCS is determined as the number of symbols corresponding to the second period value included in the specified period value under each SCS.
  • any method of calculating the specified period value of the present disclosure can be used to calculate the extended CP.
  • the specified period value under CP is the specified period value under CP.
  • each SCS can be determined according to the relationship between the number of time slots per frame between different SCSs.
  • Table 9 The values that can be configured for the first period value in the next specified period value can be shown in Table 9 below:
  • each element and each corresponding relationship in Table 9 exist independently; these elements and corresponding relationships are exemplarily listed in the same table, but do not represent all elements in the table, Correspondence must exist according to the coexistence shown in Table 9.
  • the value of each element and each corresponding relationship are independent of any other element value or corresponding relationship in Table 9. Therefore, those skilled in the art can understand that the value of each element and each corresponding relationship in Table 9 are each an independent embodiment.
  • Step 704 Send DRX configuration information to the UE, wherein the specified period value included in the configuration information is different from any default configurable period value of DRX.
  • step 704 may be implemented in any of the various embodiments of the present disclosure, which is not limited in the embodiment of the present disclosure, and will not be described again.
  • the network device when the network device determines that the arrival time interval of any service data is different from each default configurable period value of DRX, the network device can indicate to the UE that the arrival time interval of the service data matches the arrival time interval of the service data.
  • the period value is specified to perform data transmission with the UE based on the specified period value, thereby minimizing the delay of service data transmission and improving the quality and performance of the service service.
  • FIG. 8 is a schematic flowchart of another DRX determination method provided by an embodiment of the present disclosure, which is applied to a network device.
  • the DRX determination method includes the following steps:
  • Step 801 in response to the arrival time interval of any business data being different from any default configurable period value, determine the time length corresponding to any default configurable period value that is less than the arrival time interval of any business data as every The millisecond value m corresponding to the first period value contained in the specified period value under each SCS.
  • Step 802 Determine the first difference between the arrival time interval of any service data and m.
  • Step 803 Determine the millisecond value f corresponding to the second period value included in the specified period value from the integer part of the first difference value.
  • the specified period value may be a combination of the first period value, the second period value and the third period value, and the first period value and the second period value may be millisecond values, and the third period value may be is the number of sub-milliseconds. Therefore, the integer part in the first difference value can be determined as the millisecond value f corresponding to the second period value contained in the specified period value.
  • the millisecond value m corresponding to the first cycle value included in the specified cycle value is 10
  • the first difference value is 6.66ms, so that the specified cycle under each SCS can be determined.
  • the millisecond value f corresponding to the second period value contained in the value is 6.
  • the millisecond value m corresponding to the first cycle value included in the specified cycle value is 32, and the first difference value is 1.33ms, so it can be determined that each SCS The millisecond value f corresponding to the second period value included in the specified period value is 1.
  • Step 804 determining a fourth difference between the first difference and the millisecond value f.
  • Step 805 Determine the quotient of the fourth difference and the specified reference coefficient as the number of sub-milliseconds corresponding to the third period value included in the specified period value under each SCS.
  • the specified reference coefficient can be 1/a. It should be noted that, the specific value of a may be determined according to specific needs, which is not limited in this embodiment of the present disclosure. For example, a can be 32, that is, the specified reference coefficient is 1/32.
  • the specified period value is a combination of the first period value, the second period value and the third period value, and the first period value and the second period value are millisecond values, and the third period value is a sub-period.
  • the quotient of the fourth difference between the first difference and the millisecond value f and the specified reference coefficient may be determined as the number of sub-milliseconds corresponding to the third period value.
  • the arrival time interval of service data is 16.66ms
  • the specified reference coefficient is 1/32.
  • the first cycle value included in the specified cycle value under each SCS is 10ms.
  • the rounded value of the quotient of the fourth difference and the specified reference coefficient may be determined as the third period included in the specified period value.
  • the rounding in this embodiment may be rounding down, rounding up, or rounding up, and so on.
  • Step 806 Send DRX configuration information to the UE, wherein the specified period value included in the configuration information is different from any default configurable period value of DRX.
  • step 806 may be implemented in any of the various embodiments of the present disclosure, which is not limited in the embodiment of the present disclosure, and will not be described again.
  • the network device when the network device determines that the arrival time interval of any service data is different from each default configurable period value of DRX, the network device can indicate to the UE that the arrival time interval of the service data matches the arrival time interval of the service data.
  • the period value is specified to perform data transmission with the UE based on the specified period value, thereby minimizing the delay of service data transmission and improving the quality and performance of the service service.
  • FIG. 9 is a schematic flowchart of another DRX determination method provided by an embodiment of the present disclosure, which is applied to a network device.
  • the DRX determination method includes the following steps:
  • Step 901 in response to the arrival time interval of any service data being different from any default configurable period value, the value after rounding the quotient of the arrival time interval of any service data and the duration of each symbol under each SCS, Determines the number of symbols included in the specified period value for each SCS.
  • the time domain resource allocation information of each SCS may include: the duration of each symbol.
  • the value obtained by rounding down the quotient of the arrival time interval of service data and the duration of each symbol corresponding to each SCS is determined as the value of each SCS.
  • the values that can be configured for the specified period value under each SCS are shown in Table 10 below:
  • each element and each corresponding relationship in Table 10 exist independently; these elements and corresponding relationships are exemplarily listed in the same table, but do not represent all elements, Correspondence must exist according to the coexistence shown in Table 10.
  • the value of each element and each corresponding relationship are independent of any other element value or corresponding relationship in Table 10. Therefore, those skilled in the art can understand that the value of each element and each corresponding relationship in the table 10 are each an independent embodiment.
  • the quotient of the arrival time interval of the service data and the duration of each symbol corresponding to each SCS can also be rounded up, or the value after rounding to the nearest integer can be determined as the symbol contained in the lower period value of each SCS.
  • the number is not limited in this disclosure.
  • any SCS can also be determined as the designated SCS, so that after the designated SCS is determined After the number of symbols contained in the specified period value under the specified SCS, the number of symbols contained in the specified period value under each SCS can be determined based on the number of symbols contained in the specified period value under the specified SCS.
  • the value obtained by rounding the quotient of the arrival time interval of any service data and the symbol duration under the specified SCS can be multiplied by the number of time slots per frame under each SCS and the number of time slots per frame under the specified SCS.
  • any method of calculating the specified period value of the present disclosure can be used to calculate the extended CP.
  • the specified period value under CP is the specified period value under CP.
  • each SCS can be determined according to the relationship between the number of time slots per frame between different SCSs
  • the number of symbols contained within the specified period value can be as shown in Table 11 below:
  • each element and each corresponding relationship in Table 11 exist independently; these elements and corresponding relationships are exemplarily listed in the same table, but do not represent all elements, Correspondence must exist according to the coexistence shown in Table 11.
  • the value of each element and each corresponding relationship are independent of any other element value or corresponding relationship in Table 11. Therefore, those skilled in the art can understand that the value of each element and each corresponding relationship in Table 11 are each an independent embodiment.
  • Step 902 Send DRX configuration information to the UE, wherein the specified period value included in the configuration information is different from any default configurable period value of DRX.
  • step 902 may be implemented in any of the various embodiments of the present disclosure, which is not limited in the embodiment of the present disclosure, and will not be described again.
  • the network device when the network device determines that the arrival time interval of any service data is different from each default configurable period value of DRX, the network device can indicate to the UE that the arrival time interval of the service data matches the arrival time interval of the service data.
  • the period value is specified to perform data transmission with the UE based on the specified period value, thereby minimizing the delay of service data transmission and improving the quality and performance of the service service.
  • FIG. 10 is a schematic flowchart of another DRX determination method provided by an embodiment of the present disclosure, which is applied to a network device.
  • the method for determining the DRX includes the following steps:
  • Step 1001 in response to the arrival time interval of any service data being different from any default configurable period value, determine the quotient of the arrival time interval of any service data and the specified reference coefficient as the sub-element included in the specified period value. number of milliseconds.
  • the specified reference coefficient can be 1/a. It should be noted that, the specific value of a may be determined according to specific needs, which is not limited in this embodiment of the present disclosure. For example, a can be 32, that is, the specified reference coefficient is 1/32.
  • the specified period value can be represented by a number of sub-milliseconds. Therefore, the quotient of the arrival time interval of any service data and the specified reference coefficient can be determined as the number of sub-milliseconds included in the specified period value.
  • the arrival time interval of service data is 16.66ms
  • the specified reference coefficient is 1/32
  • it can be determined that the number of sub-milliseconds contained in the specified period value under each SCS is 16.66/(1/32) 533.
  • the value obtained by rounding the quotient of the arrival time interval of any service data and the specified reference coefficient can be determined as the specified period.
  • the rounding in this embodiment may be rounding down, rounding up, or rounding up, and so on.
  • Step 1002 Send DRX configuration information to the UE, wherein the specified period value included in the configuration information is different from any default configurable period value of DRX.
  • step 1002 may be implemented by any one of the embodiments of the present disclosure, which is not limited in the embodiments of the present disclosure, and will not be described again.
  • the network device when the network device determines that the arrival time interval of any service data is different from each default configurable period value of DRX, the network device can indicate to the UE that the arrival time interval of the service data matches the arrival time interval of the service data.
  • the period value is specified to perform data transmission with the UE based on the specified period value, thereby minimizing the delay of service data transmission and improving the quality and performance of the service service.
  • FIG. 11 is a schematic flowchart of still another DRX determination method provided by an embodiment of the present disclosure, which is applied to a UE.
  • the method for determining the DRX includes the following steps:
  • Step 1101 Receive DRX configuration information sent by the network device, wherein the specified period value included in the configuration information is different from any default configurable period value of DRX.
  • the specified period value may be a value of any of the following types of periods: a long period, a short period, a scheduling period, a retransmission period, a return period, and a deactivation period.
  • the specified period value may be determined by the network device according to the protocol, or may also be determined according to the current service requirement.
  • the above configuration information may be an RRC message, or may also be a PDCCH control signaling, which is not limited in the present disclosure.
  • the network device may determine the specified period value according to the arrival time interval of any service data.
  • AR or VR services can provide users with video streaming services.
  • the typical video frame rate is 30 frames or 60 frames per second, that is, the video frame arrival time interval is 33.33ms or 16.66ms, which is different from the default configurable period value of DRX (10ms, 20ms, etc.). Therefore, in the present disclosure, the network device can determine the current specified period value of DRX according to the arrival time interval of the video service, and send the specified period value to the UE, so that the UE can perform uplink and downlink data communication with the network equipment based on the specified period value. transmission.
  • the specified period value may include different contents as required, for example, may include a first period value, where the first period value may be the number of sub-milliseconds or the number of OFDM symbols.
  • the specified period value may include the number of sub-milliseconds 533 at 15 kHz.
  • the specified period value may also include a combination of the first period value and the second period value, where the first period value may be a millisecond value or the number of symbols, and the second period value may also be a millisecond value, the number of symbols or The number of sub-milliseconds, etc., is not limited in the present disclosure.
  • the specified resource period can include the first period value (10ms) and the second period value (10 symbols) at 15kHz, where 10ms is DRX
  • the specified period value may also include a combination of the first period value, the second period value and the third period value, where the first period value may be a millisecond value, the second period value may also be a millisecond value, and the third period value may be a millisecond value.
  • the period value may be the number of symbols or the number of sub-milliseconds, etc., which is not limited in the present disclosure.
  • the specified resource period may include the first period value (10ms), the second period value (6ms) and the third period value (10 symbols) at 15kHz ), where 10ms is the default configurable period value of DRX.
  • the UE may also determine cell information and/or BWP information corresponding to the number of symbols.
  • the cell information may include at least one of the following: a cell group identifier, a cell identifier, and a cell type.
  • the BWP information may include at least one of the following: BWP identification, BWP type.
  • the DRX configuration information received by the UE may include cell information and/or BWP information corresponding to the number of symbols. Therefore, when receiving the DRX configuration information sent by the network device, the UE may perform parsing processing on the DRX configuration information to determine cell information and/or BWP information corresponding to the number of symbols.
  • the network device can also agree on the cell information and/or BWP information corresponding to the number of symbols through the protocol, so that the UE can determine the number of symbols included in the specified period value sent by the network device according to a pre-agreed agreement with the network device. Corresponding cell information and/or BWP information.
  • the activated cell or BWP may be switched, and the duration of each symbol corresponding to different cells (or BWPs) may be different. Therefore, in the When the currently activated cell is different from the cell in the configuration information (or the currently activated BWP is different from the BWP in the configuration information), the UE can update the number of symbols in the specified period value according to the currently activated cell or BWP to ensure the specified period The accuracy of the value determination. That is, in a possible implementation manner of the embodiment of the present application, the number of symbols corresponding to the current BWP or cell may be determined in the following manner:
  • the number of symbols contained in the specified period value can be compared with the duration of each symbol in the SCS of the currently activated BWP.
  • the quotient of the ratio of the duration of each symbol in the SCS of the BWP in the configuration information is determined as the number of symbols corresponding to the currently activated BWP.
  • the combination mode of the specified period value can be determined according to the number of symbols contained in the specified period value, and then the symbols corresponding to the combination mode of the specified period value disclosed in the above-mentioned embodiment are changed.
  • the combination mode of the specified cycle value can be determined according to the number of symbols contained in the specified cycle value, and then the symbols corresponding to the combination mode of the specified cycle value disclosed in the above-mentioned embodiments are changed.
  • the method for determining the number, and the SCS of the currently activated cell re-determine the number of symbols corresponding to the currently activated cell.
  • the number of symbols included in the specified period value can be compared with the duration of each symbol in the SCS of the currently activated cell.
  • the quotient of the ratio of the duration of each symbol in the SCS of the cell in the configuration information is determined as the number of symbols corresponding to the currently activated cell.
  • the currently activated BWP is different from the BWP in the configuration information (or the currently activated cell is different from the cell in the configuration information), or the currently activated BWP changes (or the currently activated cell changes ), the timer corresponding to the specified period value can be stopped or restarted, so as to restart the timer after the number of symbols included in the specified period value is re-determined. That is, in a possible implementation manner of the embodiment of the present application, the above method may further include:
  • the timer corresponding to the specified period value is stopped or restarted.
  • Step 1102 monitor the control channel based on the specified period.
  • the UE After the UE determines the specified period value corresponding to the DRX according to the DRX configuration information sent by the network device, it can monitor the control channel according to the configured specified period value to receive downlink data sent by the network device.
  • the DRX configuration information received by the UE is sent by the network device according to the arrival time interval of the service data when it determines that the arrival time interval of any service data is different from each default configurable period value. , so that the indicated specified period value matches the arrival time interval of the service data as much as possible, so as to reduce the transmission delay of the service data.
  • the UE performs data transmission with the network device based on the obtained specified period value matching the arrival time interval of the service data, thereby minimizing the delay of service data transmission and improving the quality of service services. and performance.
  • the present disclosure also proposes an apparatus for determining DRX.
  • FIG. 12 is a schematic structural diagram of an apparatus for determining DRX according to an embodiment of the present disclosure, which is applied to a network device.
  • the apparatus 1200 for determining the DRX includes:
  • the sending module 1201 is configured to send DRX configuration information to the UE, wherein the specified period value included in the configuration information is different from any default configurable period value of DRX.
  • the apparatus for determining DRX provided by the embodiments of the present disclosure may be configured in any network device to execute the foregoing method for determining DRX.
  • the device for determining DRX provided by the embodiment of the present disclosure can indicate to the UE a specified period matching the arrival time interval of the service data when it is determined that the arrival time interval of any service data is different from each default configurable period value of DRX value, to perform data transmission with the UE based on the specified period value, thereby minimizing the delay of service data transmission and improving the quality and performance of service services.
  • the specified period value is a value of any of the following types of periods: long period, short period, scheduling period, retransmission period, return period, and deactivation period.
  • the above-mentioned DRX determining apparatus 1200 further includes:
  • a first determining module configured to determine the specified period value under each SCS according to the time domain resource allocation information corresponding to each subcarrier interval SCS;
  • a second determining module configured to determine the specified period value under each SCS based on the specified period value under the specified SCS.
  • first determining module or second determining module is also used for:
  • the above-mentioned specified period value is any combination of the following: a first period value, a first period value plus a second period value, a first period value plus a second period value plus The third period value.
  • the above-mentioned DRX determining apparatus 1200 further includes:
  • the third determining module is configured to determine the specified period value according to the arrival time interval of any service data in response to the arrival time interval of any service data being different from any default configurable period value.
  • the above-mentioned third determination module is also used for:
  • the first difference between the arrival time interval of any service data and m is determined as the millisecond value corresponding to the second period value included in the specified period value.
  • the above-mentioned third determination module is also used for:
  • the quotient of the first difference value and the specified reference coefficient is determined as the number of sub-milliseconds corresponding to the second period value contained in the specified period value.
  • the time domain resource allocation information of each SCS above includes: the duration of each time slot and the duration of each symbol; correspondingly, the above-mentioned third determining module is also used for:
  • the number of symbols corresponding to the second period value included in the specified period value under each SCS is determined.
  • the above-mentioned third determination module is also used for:
  • the value after the rounding of the quotient of the first difference value and the duration of each symbol under each SCS is determined as the number of symbols corresponding to the second period value contained in the specified period value under each SCS;
  • the value obtained by rounding the quotient of the first difference and the duration of each symbol under the specified SCS, multiplied by the ratio of the number of time slots per frame under each SCS to the number of time slots per frame under the specified SCS, is determined as each The number of symbols corresponding to the second period value contained in the specified period value under SCS;
  • the maximum integer multiple of the first specified value included in the quotient of the first difference and the duration of each symbol is determined as the number of symbols corresponding to the second period included in the specified period value under each SCS.
  • the above-mentioned time-domain resource allocation information of each SCS includes: the duration of each slot and the duration of each symbol; correspondingly, the above-mentioned third determining module is also used for:
  • quotient S between the arrival time interval of any service data and the duration of each time slot corresponding to the specified SCS, determine the millisecond value m corresponding to the first period value contained in the specified period value under each SCS, where m is positive integer;
  • the number of symbols corresponding to the second period value included in the specified period value under each SCS is determined.
  • the above-mentioned third determination module is also used for:
  • the default configurable period value smaller than S is determined as the millisecond value m corresponding to the first period value included in the specified period value under each SCS.
  • the time domain resource allocation information of each SCS above includes: the duration of each time slot and the duration of each symbol; correspondingly, the above-mentioned third determining module is also used for:
  • the value obtained by rounding the quotient of the first difference value and the duration of each slot corresponding to the specified SCS is determined as the millisecond value k corresponding to the second period value contained in the specified period value under each SCS, where k is a positive integer ;
  • the number of symbols corresponding to the third period value included in the specified period value under each SCS is determined.
  • the above-mentioned third determination module is also used for:
  • the value obtained by rounding the third difference value and the quotient of the duration of each symbol under each of the SCSs is determined as the number of symbols corresponding to the third period value contained in the specified period value under each of the SCSs ;
  • a value obtained by rounding the quotient of the third difference value and the duration of each symbol under the specified SCS by the number of timeslots per frame under each of the SCSs and the timeslots per frame under the specified SCS The ratio of the number is determined as the number of symbols corresponding to the third period value included in the specified period value under each SCS.
  • the above-mentioned time-domain resource allocation information of each of the SCSs includes: the duration of each slot, the number of symbols per slot, and the duration of each symbol;
  • the product between the integer part in the S and the number of symbols per time slot corresponding to each of the SCSs is determined as the number of symbols corresponding to the first period value contained in the specified period value under each of the SCSs;
  • the number of symbols corresponding to the second period value included in the specified period value under each of the SCSs is determined according to the fractional part in the S and the duration of each symbol corresponding to each of the SCSs.
  • the above-mentioned third determination module is also used for:
  • the value obtained by rounding the fractional part in the S and the quotient of the symbol duration under each of the SCSs is determined as the number of symbols corresponding to the second period value contained in the specified period value under each of the SCSs ;
  • the value obtained by rounding the quotient of the fractional part in the S and the symbol duration under the specified SCS, multiplied by the number of timeslots per frame under each of the SCSs and the timeslots per frame under the specified SCS The ratio of the number is determined as the number of symbols corresponding to the second period value included in the specified period value under each SCS.
  • the time-domain resource allocation information of each SCS above includes: the duration of each symbol; correspondingly, the above-mentioned third determining module is also used for:
  • the above-mentioned third determination module is also used for:
  • the duration corresponding to any default configurable period value that is less than the arrival time interval of any service data is determined as the millisecond value m corresponding to the first period value contained in the specified period value under each SCS, wherein , m is a positive integer;
  • the quotient of the fourth difference value and the specified reference coefficient is determined as the number of sub-milliseconds corresponding to the third period value included in the specified period value under each SCS.
  • the time-domain resource allocation information of each of the above-mentioned SCSs includes: the duration of each symbol; correspondingly, the above-mentioned third determining module is further used for:
  • the value after the rounding of the quotient of the arrival time interval of the arbitrary service data and the duration of each symbol under each of the SCSs is determined as the number of symbols included in the specified period value under each of the SCSs;
  • the ratio of the number of frame time slots is determined as the number of symbols contained in the specified period value under each of the SCSs.
  • the above DRX configuration information further includes cell information and/or bandwidth part BWP information corresponding to the number of symbols in the specified period value.
  • the above cell information includes at least one of the following: a cell group identifier, a cell identifier, and a cell type.
  • the above-mentioned BWP information includes at least one of the following: a BWP identifier and a BWP type.
  • the above-mentioned third determination module is also used for:
  • the quotient of the arrival time interval of any service data and the specified reference coefficient is determined as the number of sub-milliseconds included in the specified period value.
  • the device for determining DRX provided by the embodiment of the present disclosure can indicate to the UE a specified period matching the arrival time interval of the service data when it is determined that the arrival time interval of any service data is different from each default configurable period value of DRX value, to perform data transmission with the UE based on the specified period value, thereby minimizing the delay of service data transmission and improving the quality and performance of service services.
  • the present disclosure also proposes an apparatus for determining DRX.
  • FIG. 13 is a schematic structural diagram of another apparatus for determining DRX provided by an embodiment of the present disclosure, which is applied to a UE.
  • the apparatus 1300 for determining the DRX includes:
  • a receiving module 1301, configured to receive DRX configuration information sent by the network device, wherein the specified period value included in the configuration information is different from any default configurable period value of DRX;
  • the monitoring module 1302 is configured to monitor the control channel based on a specified period.
  • the apparatus for determining DRX provided by the embodiments of the present disclosure may be configured in any UE to execute the foregoing method for determining DRX.
  • the apparatus for determining DRX provided by the embodiments of the present disclosure performs data transmission with the network device based on the acquired specified period value matching the arrival time interval of the service data, thereby minimizing the transmission delay of service data and improving the quality of service services. and performance.
  • the above-mentioned specified period value is any combination of the following: a first period value, a first period value plus a second period value, a first period value plus a second period value plus a third period value .
  • the specified period value includes a first period value plus a second period value
  • the first period value is a default configurable period value
  • the above configuration information includes the number of symbols, millisecond value and/or sub-millisecond value included in the specified period value of DRX under each SCS.
  • the above-mentioned specified period value includes the number of symbols; correspondingly, the above-mentioned DRX determining apparatus 1300 further includes:
  • the fourth determining module is configured to determine the cell information and/or bandwidth part BWP information corresponding to the number of symbols.
  • the above cell information includes at least one of the following: a cell group identifier, a cell identifier, and a cell type.
  • the above-mentioned BWP information includes at least one of the following: a BWP identifier and a BWP type.
  • the above-mentioned DRX determining apparatus 1300 further includes:
  • a first calculation module configured to respond to the difference between the currently activated BWP and the BWP in the configuration information, according to the ratio of the SCS of the currently activated BWP to the SCS of the BWP in the configuration information, and the specified period value The number of symbols contained in it, calculate the number of symbols corresponding to the currently activated BWP;
  • the second calculation module is used to calculate the number of symbols corresponding to the currently activated BWP according to the SCS of the currently activated BWP and the number of symbols contained in the specified period value;
  • the third calculation module is used to calculate the number of symbols corresponding to the currently activated cell according to the SCS of the currently activated cell and the number of symbols contained in the specified period value;
  • a fourth calculation module configured to respond to the difference between the currently activated cell and the cell in the configuration information, according to the ratio of the SCS of the currently activated cell to the SCS of the cell in the configuration information, and the specified period value Calculate the number of symbols corresponding to the currently activated cell.
  • the above-mentioned DRX determining apparatus 1300 further includes:
  • a first processing module configured to stop or restart the timer corresponding to the specified period value in response to the difference between the currently activated BWP and the BWP in the configuration information
  • a second processing module configured to stop or restart the timer corresponding to the specified period value in response to the difference between the currently activated BWP and the historically activated BWP;
  • a third processing module configured to stop or restart the timer corresponding to the specified period value in response to the difference between the currently activated cell and the historically activated cell;
  • the fourth processing module is configured to stop or restart the timer corresponding to the specified period value in response to the currently activated cell being different from the cell in the configuration information.
  • the specified period value is a value of any of the following types of periods: long period, short period, scheduling period, retransmission period, return period and deactivation period.
  • the apparatus for determining DRX provided by the embodiments of the present disclosure performs data transmission with the network device based on the acquired specified period value matching the arrival time interval of the service data, thereby minimizing the transmission delay of service data and improving the quality of service services. and performance.
  • the present disclosure also proposes a communication device.
  • the communication device includes a processor, a transceiver, a memory, and an executable program stored in the memory and capable of being run by the processor, wherein the processor executes the DRX provided by any of the foregoing technical solutions when running the executable program method of determination.
  • the communication device may be the aforementioned UE or network device.
  • the processor may include various types of storage media, which are non-transitory computer storage media that can continue to memorize and store information on the communication device after the power is turned off.
  • the communication device includes a UE or a network device.
  • the processor may be connected to the memory through a bus or the like, for reading the executable program stored on the memory, for example, at least one of FIG. 1 to FIG. 10 .
  • the present disclosure also proposes a computer storage medium.
  • the computer storage medium provided by the embodiments of the present disclosure stores an executable program; after the executable program is executed by the processor, the DRX determination method provided by any of the foregoing technical solutions can be implemented, for example, at least as shown in FIG. 1 to FIG. 11 . one of them.
  • FIG. 14 is a block diagram of a UE 1400 provided by an embodiment of the present disclosure.
  • UE 1400 may be a mobile phone, computer, digital broadcast user equipment, messaging device, game console, tablet device, medical device, fitness device, personal digital assistant, and the like.
  • the UE 1400 may include at least one of the following components: a processing component 1402, a memory 1404, a power supply component 1406, a multimedia component 1408, an audio component 1410, an input/output (I/O) interface 1412, a sensor component 1414, and a communication component 1416.
  • a processing component 1402 a memory 1404, a power supply component 1406, a multimedia component 1408, an audio component 1410, an input/output (I/O) interface 1412, a sensor component 1414, and a communication component 1416.
  • the processing component 1402 generally controls the overall operations of the UE 1400, such as operations associated with display, phone calls, data communications, camera operations, and recording operations.
  • the processing component 1402 can include at least one processor 1420 to execute instructions to perform all or part of the steps of the above-described methods.
  • processing component 1402 can include at least one module that facilitates interaction between processing component 1402 and other components.
  • processing component 1402 may include a multimedia module to facilitate interaction between multimedia component 1408 and processing component 1402.
  • Memory 1404 is configured to store various types of data to support operations at UE 1400 . Examples of such data include instructions for any application or method operating on the UE 1400, contact data, phonebook data, messages, pictures, videos, etc.
  • Memory 1404 may be implemented by any type of volatile or non-volatile storage device or combination thereof, such as static random access memory (SRAM), electrically erasable programmable read only memory (EEPROM), erasable Programmable Read Only Memory (EPROM), Programmable Read Only Memory (PROM), Read Only Memory (ROM), Magnetic Memory, Flash Memory, Magnetic or Optical Disk.
  • SRAM static random access memory
  • EEPROM electrically erasable programmable read only memory
  • EPROM erasable Programmable Read Only Memory
  • PROM Programmable Read Only Memory
  • ROM Read Only Memory
  • Magnetic Memory Flash Memory
  • Magnetic or Optical Disk Magnetic Memory
  • Power component 1406 provides power to various components of UE 1400.
  • Power components 1406 may include a power management system, at least one power source, and other components associated with generating, managing, and distributing power to UE 1400 .
  • Multimedia component 1408 includes screens that provide an output interface between the UE 1400 and the user.
  • the screen may include a liquid crystal display (LCD) and a touch panel (TP). If the screen includes a touch panel, the screen may be implemented as a touch screen to receive input signals from a user.
  • the touch panel includes at least one touch sensor to sense touch, swipe, and gestures on the touch panel. The touch sensor may not only sense the boundaries of a touch or swipe action, but also detect wake-up time and pressure associated with the touch or swipe action.
  • the multimedia component 1408 includes a front-facing camera and/or a rear-facing camera. When the UE 1400 is in an operation mode, such as a shooting mode or a video mode, the front camera and/or the rear camera may receive external multimedia data. Each of the front and rear cameras can be a fixed optical lens system or have focal length and optical zoom capability.
  • Audio component 1410 is configured to output and/or input audio signals.
  • the audio component 1410 includes a microphone (MIC) that is configured to receive external audio signals when the UE 1400 is in operating modes, such as call mode, recording mode, and voice recognition mode.
  • the received audio signal may be further stored in memory 1404 or transmitted via communication component 1416 .
  • audio component 1410 also includes a speaker for outputting audio signals.
  • the I/O interface 1412 provides an interface between the processing component 1402 and a peripheral interface module, which may be a keyboard, a click wheel, a button, or the like. These buttons may include, but are not limited to: home button, volume buttons, start button, and lock button.
  • Sensor component 1414 includes at least one sensor for providing various aspects of status assessment for UE 1400 .
  • the sensor component 1414 can detect the on/off state of the device 1400, the relative positioning of components, such as the display and keypad of the UE 1400, the sensor component 1414 can also detect the position change of the UE 1400 or a component of the UE 1400, the user and the UE 1400. Presence or absence of UE1400 contact, UE1400 orientation or acceleration/deceleration and UE1400 temperature changes.
  • Sensor assembly 1414 may include a proximity sensor configured to detect the presence of nearby objects in the absence of any physical contact.
  • Sensor assembly 1414 may also include a light sensor, such as a CMOS or CCD image sensor, for use in imaging applications.
  • the sensor assembly 1414 may also include an acceleration sensor, a gyroscope sensor, a magnetic sensor, a pressure sensor, or a temperature sensor.
  • Communication component 1416 is configured to facilitate wired or wireless communications between UE 1400 and other devices.
  • the UE 1400 may access a wireless network based on a communication standard, such as WiFi, 2G or 3G, or a combination thereof.
  • the communication component 1416 receives broadcast signals or broadcast related information from an external broadcast management system via a broadcast channel.
  • the communication component 1416 also includes a near field communication (NFC) module to facilitate short-range communication.
  • NFC near field communication
  • the NFC module may be implemented based on radio frequency identification (RFID) technology, infrared data association (IrDA) technology, ultra-wideband (UWB) technology, Bluetooth (BT) technology and other technologies.
  • RFID radio frequency identification
  • IrDA infrared data association
  • UWB ultra-wideband
  • Bluetooth Bluetooth
  • the UE 1400 may be implemented by at least one Application Specific Integrated Circuit (ASIC), Digital Signal Processor (DSP), Digital Signal Processing Device (DSPD), Programmable Logic Device (PLD), Field Programmable Gate Array ( FPGA), controller, microcontroller, microprocessor or other electronic components implemented for performing the above method.
  • ASIC Application Specific Integrated Circuit
  • DSP Digital Signal Processor
  • DSPD Digital Signal Processing Device
  • PLD Programmable Logic Device
  • FPGA Field Programmable Gate Array
  • controller microcontroller, microprocessor or other electronic components implemented for performing the above method.
  • non-transitory computer-readable storage medium including instructions, such as a memory 1404 including instructions, which are executable by the processor 1420 of the UE 1400 to perform the above method.
  • the non-transitory computer-readable storage medium may be ROM, random access memory (RAM), CD-ROM, magnetic tape, floppy disk, optical data storage device, and the like.
  • FIG. 15 it is a schematic structural diagram of a base station according to an embodiment of the present disclosure.
  • the base station 1500 may be provided as a network device.
  • base station 1500 includes a processing component 1522, which further includes at least one processor, and a memory resource, represented by memory 1532, for storing instructions executable by processing component 1522, such as an application program.
  • An application program stored in memory 1532 may include one or more modules, each corresponding to a set of instructions.
  • the processing component 1522 is configured to execute instructions to execute any of the aforementioned methods applied to the base station, eg, the methods shown in FIGS. 9 and 10 .
  • the base station 1500 may also include a power supply assembly 1526 configured to perform power management of the base station 1500, a wired or wireless network interface 1550 configured to connect the base station 1500 to a network, and an input output (I/O) interface 1558.
  • Base station 1500 may operate based on an operating system stored in memory 1532, such as Windows ServerTM, Mac OS XTM, UnixTM, LinuxTM, FreeBSDTM or the like.

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Abstract

本公开提出一种非连续接收的确定方法、装置、通信设备及存储介质,属于无线通信技术领域。其中,该方法包括: 向用户设备发送DRX配置信息,其中,配置信息中包含的指定周期值,与DRX的任一默认的可配置周期值不同。由此,通过基于连续时段内接收的信号状态信息,确定是否启动终止数据重传的机制。由此,通过这种DRX的确定方法,网络设备在确定任一业务数据的到达时间间隔与DRX的各个默认的可配置周期值不同时,向UE指示与业务数据的到达时间间隔匹配的指定周期值,以基于指定周期值与UE进行数据传输,从而尽量减少业务数据传输延时,提高了业务服务的质量和性能。

Description

非连续接收的确定方法、装置、通信设备及存储介质 技术领域
本公开涉及无线通信技术领域,尤其涉及一种非连续接收的确定方法、装置、通信设备及存储介质。
背景技术
典型视频流以周期性的方式生成视频帧,而典型视频帧率为30帧或60帧每秒,也即视频帧间隔为33.33或16.66毫秒(millisecond,简称ms)。增强现实(Augmented Reality,简称AR)或虚拟现实(Virtual Reality,简称VR)业务可以给用户提供视频流服务,并且相比于传统的视频流业务有更高的延迟需求(如,5-10ms)。
相关技术中,在5G系统中,为了减少用户设备(User Equipment,简称UE)耗电,网络侧对于上下行的视频业务会引入非连续接收(Discontinuous Reception,简称DRX)机制。对于DRX,网络侧可以配置的DRX周期包括:10ms、20ms、32ms、40ms、60ms、64ms、70ms、80ms、128ms、160ms、256ms、320ms。但是现有的DRX配置的周期并不能匹配视频业务的帧间隔(即,33.33ms和16.66ms),从而导致配置的DRX周期不能匹配业务的到达时间间隔时,就会产生额外的数据传输延时。
发明内容
本公开提出的DRX的确定方法、装置、通信设备及存储介质,用于解决相关技术中,配置的DRX周期不能匹配业务的到达时间间隔时,就会产生额外的数据传输延时的问题。
本公开一方面实施例提出的DRX的确定方法,应用于网络设备,包括:向UE发送DRX配置信息,其中,所述配置信息中包含的指定周期值,与所述DRX的任一默认的可配置周期值不同。
本公开另一方面实施例提出的DRX的确定方法,应用于UE,包括:接收网络设备发送的DRX配置信息,其中,所述配置信息中包含的指定周期值,与所述DRX的任一默认的可配置周期值不同;基于所述指定周期,对控制信道进行监听。
本公开再一方面实施例提出的DRX的确定装置,应用于网络设备,包括:发送模块,用于向UE发送DRX配置信息,其中,所述配置信息中包含的指定周期值,与所述DRX的任一默认的可配置周期值不同。
本公开又一方面实施例提出的DRX的确定装置,应用于UE,包括:接收模块,用于接收网络设备发送的DRX配置信息,其中,所述配置信息中包含的指定周期值,与所述DRX的任一默认的可配置周期值不同;监听模块,用于基于所述指定周期,对控制信道进行监听。
本公开又一方面实施例提出的通信设备,其包括:收发器;存储器;处理器,分别与所述收发器及所述存储器连接,配置为通过执行所述存储器上的计算机可执行指令,控制所述收发器的无线信号收发,并能够实现如前所述的DRX的确定方法。
本公开另一方面实施例提出的计算机存储介质,其上存储有计算机可执行指令;所述计算机可执行指令被处理器执行后,能够实现如前所述的DRX的确定方法。
本公开再一方面实施例提出了一种计算机程序产品,包括计算机程序,所述计算机程序在被通信设备中的处理器执行时实现上述一方面实施例所述的DRX的的确定方法。
本公开实施例提供的DRX的确定方法、装置、通信设备及计算机可读存储介质,网络设备通过在确定任一业务数据的到达时间间隔与DRX的各个默认的可配置周期值不同时,可以向UE指示与业务数据的到达时间间隔匹配的指定周期值,以基于指定周期值与UE进行数据传输,从而尽量减少业务数据传输延时,提高了业务服务的质量和性能。
本公开附加的方面和优点将在下面的描述中部分给出,部分将从下面的描述中变得明显,或通过本公开的实践了解到。
附图说明
本公开上述的和/或附加的方面和优点从下面结合附图对实施例的描述中将变得明显和容易理解,其中:
图1为本公开实施例所提供的一种DRX的确定方法的流程示意图;
图2为本公开实施例所提供的另一种DRX的确定方法的流程示意图;
图3为本公开实施例所提供的再一种DRX的确定方法的流程示意图;
图4为本公开实施例所提供的又一种DRX的确定方法的流程示意图;
图5为本公开实施例所提供的又一种DRX的确定方法的流程示意图;
图6为本公开实施例所提供的另一种DRX的确定方法的流程示意图;
图7为本公开实施例所提供的再一种DRX的确定方法的流程示意图;
图8为本公开实施例所提供的又一种DRX的确定方法的流程示意图;
图9为本公开实施例所提供的又一种DRX的确定方法的流程示意图;
图10为本公开实施例所提供的另一种DRX的确定方法的流程示意图;
图11为本公开实施例所提供的再一种DRX的确定方法的流程示意图;
图12为本公开实施例所提供的一种DRX的确定装置的结构示意图;
图13为本公开实施例所提供的另一种DRX的确定装置的结构示意图;
图14为本公开实施例所提供的一种用户设备的框图;
图15为本公开实施例所提供的一种基站的结构示意图。
具体实施方式
这里将详细地对示例性实施例进行说明,其示例表示在附图中。下面的描述涉及附图时,除非另有表示,不同附图中的相同数字表示相同或相似的要素。以下示例性实施例中所描述的实施方式并不代表与本公开实施例相一致的所有实施方式。相反,它们仅是与如所附权利要求书中所详述的、本公开实施例的一些方面相一致的装置和方法的例子。
在本公开实施例使用的术语是仅仅出于描述特定实施例的目的,而非旨在限制本公开实施例。在本公开实施例和所附权利要求书中所使用的单数形式的“一种”和“该”也旨在包括多数形式,除非上下文清楚地表示其他含义。还应当理解,本文中使用的术语“和/或”是指并包含一个或多个相关联的列出项目的任何或所有可能组合。
应当理解,尽管在本公开实施例可能采用术语第一、第二、第三等来描述各种信息,但这些信息不应限于这些术语。这些术语仅用来将同一类型的信息彼此区分开。例如,在不脱离本公开实施例范围的情况下,第一信息也可以被称为第二信息,类似地,第二信息也可以被称为第一信息。取决于语境,如在此所使用的词语“如果”及“若”可以被解释成为“在……时”或“当……时”或“响应于确定”。
下面详细描述本公开的实施例,所述实施例的示例在附图中示出,其中自始至终相同或类似的标号表示相同或类似的要素。下面通过参考附图描述的实施例是示例性的,旨在用于解释本公开,而不能理解为对本公开的限制。
本公开实施例针对相关技术中,配置的DRX周期不能匹配业务的到达时间间隔时,就会产生额外的数据传输延时的问题,提出一种DRX的确定方法。
本公开实施例提供的DRX的确定方法,网络设备通过在确定任一业务数据的到达时间间隔与DRX的各个默认的可配置周期值不同时,可以向UE指示与业务数据的到达时间间隔匹配的指定周期值,以基于指定周期值与UE进行数据传输,从而尽量减少业务数据传输延时,提高了业务服务的质量和性能。
下面参考附图对本公开提供的DRX的确定方法、装置、通信设备及存储介质进行详细描述。
图1为本公开实施例所提供的一种DRX的确定方法的流程示意图,应用于网络设备,如基站。
如图1所示,该DRX的确定方法,包括以下步骤:
步骤101,向UE发送DRX配置信息,其中,配置信息中包含的指定周期值,与DRX的任一默认 的可配置周期值不同。
可选的,指定周期值可以为网络设备根据协议规定确定的,或者,还可以是根据当前的业务需求确定的。
另外,上述配置信息,可以为RRC消息,或者,还可以为PDCCH控制信令,本公开对此不做限定。
其中,指定周期值可以为以下任一类型周期的取值:长周期、短周期、调度周期、重传周期、回传周期及去激活周期。
可以理解的是,对于不同的DRX周期类型,其默认的可配置周期值不同。比如,对于DRX长周期,默认的可配置周期值可以包括:10ms、20ms、32ms、40ms、60ms、64ms、70ms、80ms、128ms、160ms、256ms、320ms。对于DRX短周期,默认的可配置周期值可以包括:2ms、3ms、4ms、5ms、6ms、7ms、8ms、10ms、14ms、16ms、20ms、30ms、32ms、35ms、40ms、64ms、80ms、128ms、160ms、256ms、320ms、512ms、640ms。
可选的,本公开中,网络设备可以在确定任一业务数据的到达时间间隔与各个默认的可配置周期值不同时,根据任一业务数据的到达时间间隔,确定指定周期值。
例如,AR或VR业务可以给用户提供视频流服务。典型视频帧率为30帧或60帧每秒,也即视频帧到达时间间隔为33.33ms或16.66ms,而该到达时间间隔与DRX默认的可配置周期值(10ms、20ms等等)不同。因此,本公开中网络设备,可以根据视频业务的到达时间间隔确定DRX当前的指定周期值,并将该指定周期值发送给UE,从而可以基于该指定周期值与UE进行上下行数据的传输。
可选的,指定周期值可以根据需要包括不同的内容,比如可以包括第一周期值,其中,第一周期值,可以为毫秒值、子毫秒数量或者OFDM符号数量。
其中,子毫秒,是本公开所提出的一种新的时间计量单位,以更加准确的表示指定周期值,使得指定周期值尽量接近业务数据的到达时间间隔。需要说明的是,子毫秒可以是小于毫秒的一种时间计量单位,子毫秒对应的具体时间长度可以根据实际需要确定,本公开实施例对此不做限定。
可选的,指定周期值还可以包括第一周期值加第二周期值的组合,其中,第一周期值可以为毫秒值,或者符号数量,第二周期值也可以为毫秒值、符号数量或者子毫秒数量等等,本公开对此不做限定。
可选的,指定周期值还可以包括第一周期值加第二周期值加第三周期值的组合,其中,第一周期值可以为毫秒值,第二周期值也可以为毫秒值,第三周期值可以为符号数量或者子毫秒数量等等,本公开对此不做限定。
为了支持更广泛的应用场景,在无线通信系统中可能配置了多种子载波间隔(SubCarrier Spacing,简称SCS)。如下表1所示,不同的SCS和循环前缀(Cyclic prefix,简称CP)对应不同的资源分配信息:
表1
Figure PCTCN2021077301-appb-000001
可以理解的是,表1中的每一个元素、每一条对应关系,都是独立存在的;这些元素、对应关系被示例性的列在同一张表格中,但是并不代表表格中的所有元素、对应关系必须根据表格1中所示的同时存在。其中每一个元素的值和每一对应关系,是不依赖于表1中任何其他元素值或对应关系。因此本领域内技术人员可以理解,该表1中的每一个元素的取值、每一条对应关系,各种都是一个独立的实施例。
作为一种可能的实现方式,网络设备在确定指定周期值时,可以根据不同SCS对应的资源分配信 息,确定每个SCS下的指定周期值,即确定每个SCS下指定周期值内包含的符号数量、毫秒值和/或子毫秒数量。
作为另一种可能的实现方式,网络设备再确定指定周期值时,还可以基于指定SCS下的指定周期值,确定每个SCS下的指定周期值。具体的,网络设备可以根据指定SCS对应的资源分配信息,确定出指定SCS下的指定周期值,进而根据指定SCS对应的资源分配信息与其他各SCS对应的资源分配信息的关系,以及指定SCS下的指定周期值,确定出其他各SCS下的指定周期值。
本公开实施例的DRX的确定方法,通过为DRX设置指定周期值,以基于与要进行的业务数据的到达时间间隔尽量匹配的周期值与UE进行数据传输,从而尽量减少业务数据传输延时,提高业务服务的质量和性能。
下面结合图2,对本公开实施例提供的另一种DRX的确定方法进行进一步说明。
图2为本公开实施例所提供的另一种DRX的确定方法的流程示意图,应用于网络设备,比如基站。
如图2所示,该DRX的确定方法,包括以下步骤:
步骤201,响应于任一业务数据的到达时间间隔与任一默认的可配置周期值不同,将小于任一业务数据的到达时间间隔的任一默认的可配置周期值,确定为指定周期值内包含的第一周期值对应的毫秒值m。
其中,m为正整数。
作为一种可能的实现方式,在指定周期值为第一周期值加第二周期值的组合时,第一周期值与第二周期值均可以为毫秒值。
可选的,在确定第一周期值时,若有多个默认的可配置周期值均小于任一业务数据的到达时间间隔,则可以从多个默认的可配置周期值中选取任意一个默认的可配置周期值,作为第一周期值;或者,还可以选取与任一业务数据的到达时间间隔差值最小的一个默认的可配置周期值,作为第一周期值。
例如,任一业务数据的到达时间间隔为16.66ms,则对应DRX长周期而言,在确定每个SPS下的指定周期值时,由于小于16.66ms的默认可配置周期值为10ms,因此,可以确定第一周期值为10ms。
或者,任一业务数据的到达时间间隔为33.33ms,则对应DRX长周期而言,在确定每个SPS下的指定周期值时,小于33.33ms的默认可配置周期值有10ms、20ms及32ms,因此,可以确定第一周期值可以为10ms、20ms或32ms,或者,由于32ms与33.33ms的差值最小,则可以确定第一周期值可以为32ms。
步骤202,将任一业务数据的到达时间间隔与m间的第一差值,确定为指定周期值内包含的第二周期值对应的毫秒值。
可选的,在指定周期值为第一周期值加第二周期值的组合,且第一周期值与第二周期值均可以为毫秒值时,可以将任一业务数据的到达时间间隔与m间的第一差值,确定为第二周期值对应的毫秒值。
例如,业务数据的到达时间间隔为16.66ms,对应DRX长周期而言,指定周期值内包含的第一周期值为10ms,此时,第一差值为6.66ms,即可以确定每个SCS下的指定周期值内包含的第二周期值为6.66ms。
又如,业务数据的到达时间间隔为33.33ms,对应DRX长周期而言,指定周期值内包含的第一周期值为32ms,此时,第一差值为1.33ms,即可以确定每个SCS指定周期值内包含的第二周期值为1.33ms。
步骤203,向UE发送DRX配置信息,其中,配置信息中包含的指定周期值,与DRX的任一默认的可配置周期值不同。
在本公开的实施例中,步骤203可以分别采用本公开的各实施例中的任一种方式实现,本公开实施例并不对此作出限定,也不再赘述。
本公开实施例提供的DRX的确定方法,网络设备通过在确定任一业务数据的到达时间间隔与DRX的各个默认的可配置周期值不同时,可以向UE指示与业务数据的到达时间间隔匹配的指定周期值,以基于指定周期值与UE进行数据传输,从而尽量减少业务数据传输延时,提高了业务服务的质量和性能。
下面结合图3,对本公开实施例提供的再一种DRX的确定方法进行进一步说明。
图3为本公开实施例所提供的再一种DRX的确定方法的流程示意图,应用于网络设备。
如图3所示,该DRX的确定方法,包括以下步骤:
步骤301,响应于任一业务数据的到达时间间隔与任一默认的可配置周期值不同,将小于任一业务数据的到达时间间隔的任一默认的可配置周期值对应的时长,确定指定周期值内包含的第一周期值对应的毫秒值m。
步骤302,确定任一业务数据的到达时间间隔与m间的第一差值。
在本公开的实施例中,步骤301-302可以分别采用本公开的各实施例中的任一种方式实现,本公开实施例并不对此作出限定,也不再赘述。
步骤303,将第一差值与指定的参考系数的商,确定为指定周期值内包含的第二周期值对应的子毫秒数量。
其中,指定的参考系数,可以为1/a。需要说明的是,a的具体取值可以根据具体需要确定,本公开实施例对此不作限定。比如,a可以为32,即指定的参考系数为1/32。
作为一种可能的实现方式,在指定周期值为第一周期值加第二周期值的组合时,第一周期值可以为毫秒值,第二周期值可以为子毫秒数量。因此,可以将任一业务数据的到达时间间隔与m间的第一差值与指定的参考系数的商,确定为第二周期值对应的子毫秒数量。
例如,业务数据的到达时间间隔为16.66ms,指定的参考系数为1/32,对于DRX长周期而而言,每个SCS下的指定周期值内包含的第一周期值为10ms,此时,第一差值为6.66ms,从而可以确定每个SCS下的指定周期值内包含的第二周期值对应的子毫秒数量为6.66/(1/32)=213。
又如,业务数据的到达时间间隔为33.33ms,指定的参考系数为1/32,对于DRX长周期而而言,每个SCS下的指定周期值内包含的第一周期值为32ms,此时,第一差值为1.33ms,从而可以确定每个SCS下的指定周期值内包含的第二周期值对应的子毫秒数量为1.33/(1/32)=43。
可选的,在第一差值与指定的参考系数的商不是整数时,可以将第一差值与指定的参考系数的商取整后的值,确定为指定周期值内包含的第二周期值对应的子毫秒数量。其中,本实施例中的取整可以为向下取整,向上取整,或者四舍五入取整,等等。
步骤304,向UE发送DRX配置信息,其中,配置信息中包含的指定周期值,与DRX的任一默认的可配置周期值不同。
在本公开的实施例中,步骤304可以分别采用本公开的各实施例中的任一种方式实现,本公开实施例并不对此作出限定,也不再赘述。
本公开实施例提供的DRX的确定方法,网络设备通过在确定任一业务数据的到达时间间隔与DRX的各个默认的可配置周期值不同时,可以向UE指示与业务数据的到达时间间隔匹配的指定周期值,以基于指定周期值与UE进行数据传输,从而尽量减少业务数据传输延时,提高了业务服务的质量和性能。
下面结合图4,对本公开实施例提供的又一种DRX的确定方法进行进一步说明。
图4为本公开实施例所提供的又一种DRX的确定方法的流程示意图,应用于网络设备。
如图4所示,该DRX的确定方法,包括以下步骤:
步骤401,响应于任一业务数据的到达时间间隔与任一默认的可配置周期值不同,将小于任一业务数据的到达时间间隔的任一默认的可配置周期值对应的时长,确定为每个SCS下指定周期值内包含的第一周期值对应的毫秒值m。
其中,m为正整数。
其中,每个SCS的时域资源分配信息中可以包括:每时隙时长及每符号时长。
作为一种可能的实现方式,在指定周期值为第一周期值加第二周期值的组合时,第一周期值可以为毫秒值,第二周期值可以为符号数量。
可选的,在确定第一周期值时,若有多个默认的可配置的资源周期均小于任一业务数据的到达时间间隔,则可以从多个默认的可配置的资源周期中选取任意一个默认的可配置的资源周期,或者,还可以选取与任一业务数据的到达时间间隔差值最小的一个默认的可配置的资源周期。
例如,任一业务数据的到达时间间隔为16.66ms,则对应15kHZ的SCS而言在确定SPS对应的指定周期值时,由于小于16.66ms的默认可配置周期值为10ms,因此,可以确定第一周期值为10ms。
或者,任一业务数据的到达时间间隔为33.33ms,则对应15kHZ的SCS而言在确定SPS对应的指定周期值时,小于33.33ms的默认可配置周期值有10ms、20ms及32ms,因此,可以确定第一周期值可以为10ms、20ms或32ms,或者,由于32ms与33.33ms的差值最小,则可以确定第一周期值可以为32ms。
步骤402,确定任一业务数据的到达时间间隔与m间的第一差值。
步骤403,根据第一差值及每符号时长,确定每个SCS下指定周期值内包含的第二周期值对应的符号数量。
可选的,可以通过将第一差值与每个SCS下的每符号时长的商取整后的值,确定为每个SCS下指定周期值内包含的第二周期值对应的符号数量。
其中,本实施例中的取整可以为向下取整,向上取整,或者四舍五入取整等等。
例如,业务数据的到达时间间隔为16.66ms,对应15kHZ的SCS而言指定周期值内包含的第一周期值为10ms。此时,第一差值为6.66ms。第一差值与15kHZ的SCS对应的每符号时长(0.0714ms)的商为93.277,93.277四舍五入取整为后的值93,因此,15kHZ的SCS对应的指定周期值中第二周期值对应的符号数量为93。
又如,业务数据的到达时间间隔为16.66ms,对应30kHZ的SCS而言指定的资源内包含的第一周期值为10ms。此时,第一差值为6.66ms。第一差值与30kHZ的SCS对应的每符号时长(0.0357ms)的商为186.555,186.555四舍五入取整为后的值187,因此,30kHZ的SCS对应的指定周期值中第二周期值对应的符号数量为187。
对于数据的到达时间间隔为16.66ms(第一周期值为10ms)及33.33ms(第一周期值为32ms)的业务,将第一差值与每个SCS下的每符号时长的商四舍五入取整后的值,可以确定每个SCS下指定周期值中的第二周期值可以配置的数值可以如下表2所示:
表2
Figure PCTCN2021077301-appb-000002
可以理解的是,表2中的每一个元素、每一条对应关系,都是独立存在的;这些元素、对应关系被示例性的列在同一张表格中,但是并不代表表格中的所有元素、对应关系必须根据表2中所示的同时存在。其中每一个元素的值和每一对应关系,是不依赖于表2中任何其他元素值或对应关系。因此本领域内技术人员可以理解,该表2中的每一个元素的取值、每一条对应关系,各种都是一个独立的实施例。
需要说明的是,还可以将第一差值与每个SCS下的符号时长的商向下取整后的值、或者向上取整后的值,确定为每个SCS下指定周期值中的第二周期值上述各个第二周期值,本公开对此不做限定。
可选的,由表1可知,各个SCS对应的每符号时长、每时隙时长等具有一定的倍数关系,本公开中,还可以将任一SCS确定为指定的SCS,从而在确定了该指定的SCS下的指定周期值后,即可以基 于该指定的SCS下的指定周期值,确定每个SCS下指定周期值。
即本公开中,还可以将第一差值与指定SCS下的每符号时长的商取整后的值,乘以每个SCS下的每帧时隙数与指定SCS下的每帧时隙数的比值,确定为每个SCS下指定周期值内包含的第二周期值对应的符号数量。
例如,业务数据的到达时间间隔为16.66ms的业务,通过上述分析可知,对于15kHZ的SCS(每帧时隙数为10)而言,第二周期值对应的符号数量为93。若15kHZ的SCS为指定SCS,则30kHZ的SCS(每帧时隙数为20)下指定周期值内包含的第二周期对应的符号数量为:93×(20/10)=186。
另外,对于扩展CP而言,由于其与常规CP相比,在每时隙时长相同的情况下,每时隙符号数不同,因此,可以采用本公开任意一种计算指定周期值的方式计算扩展CP下的指定周期值。
举例来说,若15kHZ的SCS为指定SCS,那么在确定了数据的到达时间间隔为16.66ms的业务,在15kHZ的SCS下指定周期值中第一周期值为10ms,第二周期值为93个符号的情况下,可以确定30kHZ的SCS下的指定周期值内第一周期值为10ms,第二周期值为93×2=186,其中,2为30kHZ的SCS的每帧时隙数与30kHZ的SCS的每帧时隙数的比值。依次类推,即可确定每个SCS下的指定周期值。
对于数据的到达时间间隔为16.66ms(第一周期值为10ms,第二周期值为6ms)及33.33ms(第一周期值为32ms,第二周期值为1ms)的业务,在15kHZ的SCS为指定SCS的情况下,根据不同的SCS间的每帧时隙数间的关系,可以确定每个SCS下指定周期值中的第二周期值可以配置的数值可以如下表3所示:
表3
Figure PCTCN2021077301-appb-000003
可以理解的是,表3中的每一个元素、每一条对应关系,都是独立存在的;这些元素、对应关系被示例性的列在同一张表格中,但是并不代表表格中的所有元素、对应关系必须根据表3中所示的同时存在。其中每一个元素的值和每一对应关系,是不依赖于表3中任何其他元素值或对应关系。因此本领域内技术人员可以理解,该表3中的每一个元素的取值、每一条对应关系,各种都是一个独立的实施例。
可选的,还可以将第一差值与所述每符号时长间的商中包含的第一指定值的最大整数倍,确定为每个SCS下指定周期值内包含的第二周期对应的符号数量。
其中,第一指定值可以为协议约定的值,或者网络配置的值,比如可以为2、5或10等等,本公开对此不做限定。
例如,第一指定值为5,业务数据的到达时间间隔为16.66ms,对应15kHZ的SCS而言,指定周期值内包含的第一周期值为10ms。此时,第一差值为6.66ms。第一差值与15kHZ的SCS对应的每符号时长(0.0714ms)的商为93.277,可以将90(5的最大倍数)确定为15kHZ的SCS下指定周期内值包含的第二周期值对应的符号数量。
又如,业务数据的到达时间间隔为16.66ms,对应30kHZ的SCS而言指定的资源内包含的第一周期值为10ms。此时,第一差值为6.66ms。第一差值与30kHZ的SCS对应的每符号时长(0.0357ms)的商为186.555,可以将185(5的最大倍数)确定为15kHZ的SCS下指定周期内值包含的第二周期值 对应的符号数量。
需要说明的是,在计算每个SCS下的指定周期值时,可根据需要,采用本公开任一实施例中的方式进行,本公开对此不做限定。
步骤404,向UE发送DRX配置信息,其中,配置信息中包含的指定周期值,与DRX的任一默认的可配置周期值不同。
其中,DRX配置信息中,还可以包括与指定周期值中的符号数量对应的小区信息和/或带宽部分(Bandwidth Part,简称BWP)信息。小区信息可以包括以下至少一项:小区组标识、小区标识及小区类型。BWP信息可以包括以下至少一项:BWP标识、BWP类型。
在本公开实施例中,由于不同小区或BWP可以对对应不同的符号时长,因此在指定周期值中包括符号数量时,DRX配置信息中还可以包括小区信息和/或BWP信息,以使UE可以根据DRX配置信息中的小区信息和/或BWP信息,确定当前的每符号时长,以准确确定指定周期值中包括的符号数量。
在本公开的实施例中,步骤404可以分别采用本公开的各实施例中的任一种方式实现,本公开实施例并不对此作出限定,也不再赘述。
本公开实施例提供的DRX的确定方法,网络设备通过在确定任一业务数据的到达时间间隔与DRX的各个默认的可配置周期值不同时,可以向UE指示与业务数据的到达时间间隔匹配的指定周期值,以基于指定周期值与UE进行数据传输,从而尽量减少业务数据传输延时,提高了业务服务的质量和性能。
下面结合图5,对本公开实施例提供的又一种DRX的确定方法进行进一步说明。
图5为本公开实施例所提供的又一种DRX的确定方法的流程示意图,应用于网络设备。
如图5所示,该DRX的确定方法,包括以下步骤:
步骤501,响应于任一业务数据的到达时间间隔与任一默认的可配置周期值不同,根据任一业务数据的到达时间间隔与指定SCS对应的每时隙时长的商S,确定每个SCS下指定周期值内包含的第一周期值对应的毫秒值m。
其中,m为正整数。
其中,每个SCS的时域资源分配信息中可以包括:每时隙时长及每符号时长。
可选的,可以根据商S的大小、或者与各个默认的可配置周期值的关系,确定第一周期值对应的毫秒值m。
例如,将S中的整数部分,确定为每个SCS下指定周期值内包含的第一周期值对应的毫秒值m。
例如,任一业务数据的到达时间间隔为16.66ms,15kHZ的SCS为指定SCS,即指定SCS对应的每时隙时长为1ms,则商S为16.66。从而可以将16确定为每个SCS下指定周期值内包含的第一周期值对应的毫秒值m。
或者,还可以将S中包含的第二指定值的最大倍数值,确定为每个SCS下指定周期值内包含的第一周期值对应的毫秒值m。
其中,第二指定值可以为协议约定的值,或者网络配置的值,比如可以为2、5或10等等,本公开对此不做限定。
例如,第二指定值为5,对于业务数据的到达时间间隔为16.66ms的业务而言,15kHZ的SCS为指定SCS,即指定SCS对应的每时隙时长为1ms,则商S为16.66。从而可以将15(5的最大倍数)确定为每个SCS下指定周期值内包含的第一周期值对应的毫秒值m。
或者,还可以将小于S的默认的可配置周期值,确定为每个SCS下指定周期值内包含的第一周期值对应的毫秒值m。
可选的,在确定第一周期值时,若有多个默认的可配置周期值均小于S,则可以从多个默认的可配置周期值中选取任意一个默认的可配置周期值,作为第一周期值对应的毫秒值m;或者,还可以选取与S差值最小的一个默认的可配置周期值,作为第一周期值对应的毫秒值m。
例如,任一业务数据的到达时间间隔为16.66ms,15kHZ的SCS为指定SCS,即指定SCS对应的 每时隙时长为1ms,则商S为16.66。由于小于S(16.66)的默认可配置周期值为10ms,因此,可以确定第一周期值对应的毫秒值m为10ms。
或者,任一业务数据的到达时间间隔为33.33ms,15kHZ的SCS为指定SCS,即指定SCS对应的每时隙时长为1ms,则商S为33.33。由于小于S(33.33)的默认可配置周期值有10ms、20ms及32ms,而32ms与33.33的差值最小,则可以确定第一周期值对应的毫秒值m可以为32ms。
步骤502,确定任一业务数据的到达时间间隔与m间的第二差值。
步骤503,根据第二差值及每符号时长,确定每个SCS下指定周期值内包含的第二周期值对应的符号数量。
本实施例中,根据第二差值及每个SCS对应的每符号时长,确定每个SCS下指定周期值内包含的第二周期值对应的符号数量的具体方式,可以参照其它任一实施例的详细描述,此处不再赘述。
步骤504,向UE发送DRX配置信息,其中,配置信息中包含的指定周期值,与DRX的任一默认的可配置周期值不同。
在本公开的实施例中,步骤504可以分别采用本公开的各实施例中的任一种方式实现,本公开实施例并不对此作出限定,也不再赘述。
本公开实施例提供的DRX的确定方法,网络设备通过在确定任一业务数据的到达时间间隔与DRX的各个默认的可配置周期值不同时,可以向UE指示与业务数据的到达时间间隔匹配的指定周期值,以基于指定周期值与UE进行数据传输,从而尽量减少业务数据传输延时,提高了业务服务的质量和性能。
下面结合图6,对本公开实施例提供的另一种DRX的确定方法进行进一步说明。
图6为本公开实施例所提供的另一种DRX的确定方法的流程示意图,应用于网络设备。
如图6所示,该DRX的确定方法,包括以下步骤:
步骤601,响应于任一业务数据的到达时间间隔与任一默认的可配置周期值不同,将小于任一业务数据的到达时间间隔的任一默认可配置周期值,确定为每个SCS下指定周期值内包含的第一周期值对应的毫秒值m。
本实施例中,确定每个SCS下指定周期值内包含的第一周期值的具体过程,可参照其它任一实施例的详细描述,此处不再赘述。
其中,m为正整数。
步骤602,确定任一业务数据的到达时间间隔与m间的第一差值。
步骤603,将第一差值与指定SCS对应的每时隙时长的商取整后的值,确定为每个SCS下指定周期值内包含的第二周期值对应的毫秒值k,其中,k为正整数。
其中,k为正整数。
作为一种可能的实现方式,指定周期值可以为第一周期值加第二周期值加第三周期值的组合,并且第一周期值与第二周期值可以为毫秒值,第三周期值可以为符号数量。
可选的,可以将第一差值与指定SCS对应的每时隙时长的商向下取整后的值,确定为每个SCS下指定周期值内包含的第二周期值对应的毫秒值k。
例如,业务数据的到达时间间隔为16.66ms的业务,指定SCS为15kHZ的SCS(每时隙时长为1ms),指定周期值内包含的第一周期值对应的毫秒值m为10,则第一差值为6.66ms。第一差值6.66ms与每时隙时长1ms的商为6.66,从而可以确定每个SCS下指定周期值内包含的第二周期值对应的毫秒值为6。
同样的,业务数据的到达时间间隔为33.33ms的业务,指定SCS为15kHZ的SCS(每时隙时长为1ms),指定周期值内包含的第一周期值对应的毫秒值m为32,则第一差值为为1.33ms。第一差值1.33ms与每时隙时长1ms的商为1.33,从而可以确定每个SCS下指定周期值内包含的第二周期值对应的毫秒值为1。
步骤604,确定第一差值与k间的第三差值。
步骤605,根据第三差值与每符号时长,确定每个SCS下指定周期值内包含的第三周期值对应的符号数量。
可选的,可以将第三差值与每个SCS对应的每符号时长的商取整后的值,确定为每个SCS下指定周期值内包含的第三周期值对应的符号数量。
其中,可以通过向下取整,向上取整,或者四舍五入取整等方式,确定每个SCS下指定周期值内包含的第三周期值对应的符号数量。
例如,业务数据的到达时间间隔为16.66ms,对应15kHZ的SCS而言,指周期值内包含的第一周期值为10ms、第二周期值为6ms。此时,第三差值为0.66ms。第三差值与15kHZ的SCS对应的每符号时长(0.0714ms)的商为9.243,9.243向上取整为后的值10,因此,15kHZ的SCS对应的指定周期值中第三周期值对应的符号数量为10。
又如,业务数据的到达时间间隔为16.66ms,对应30kHZ的SCS而言,指定周期值内包含的第一周期值为10ms、第二周期值为6ms。此时,第三差值为0.66ms。第三差值与30kHZ的SCS对应的每符号时长(0.0357ms)的商为18.49,18.49向上取整为后的值19,因此,30kHZ的SCS对应的指定周期值中第三周期值对应的符号数量为19。
对于数据的到达时间间隔为16.66ms(第一周期值为10ms、第二周期值为6ms)及33.33ms(第一周期值为32ms、第二周期值为1ms)的业务,将第三差值与每个SCS下的每符号时长的商取整后的值,可以确定每个SCS下指定周期值中的第三周期值可以配置的数值可以如下表4所示:
表4
Figure PCTCN2021077301-appb-000004
可以理解的是,表4中的每一个元素、每一条对应关系,都是独立存在的;这些元素、对应关系被示例性的列在同一张表格中,但是并不代表表格中的所有元素、对应关系必须根据表4中所示的同时存在。其中每一个元素的值和每一对应关系,是不依赖于表4中任何其他元素值或对应关系。因此本领域内技术人员可以理解,该表4中的每一个元素的取值、每一条对应关系,各种都是一个独立的实施例。
需要说明的是,还可以将第三差值与每个SCS下的每符号时长的商向下取整后的值、或者向上取整后的值,确定为每个SCS下指定周期值中的各个第三周期值对应的符号数,本公开对此不做限定。
可选的,由表1可知,各个SCS对应的每符号时长、每时隙时长等具有一定的倍数关系,本公开中,还可以将任一SCS确定为指定SCS,从而在确定了该指定SCS下的指定周期值后,即可以基于该指定SCS下的指定周期值,确定每个SCS下指定周期值。
即本公开中,还可以将第三差值与指定SCS对应的每符号时长的商取整后的值,乘以每个SCS下的每帧时隙数量与指定SCS下的每帧时隙数量的比值,确定为每个SCS下指定周期值内包含的第三周期值对应的符号数量。
另外,对于扩展CP而言,由于其与常规CP相比,在每时隙时长相同的情况下,每时隙符号数不同,因此,可以采用本公开任意一种计算指定周期值的方式计算扩展CP下的指定周期值。
举例来说,若15kHZ的SCS(每帧时隙数为10)为指定SCS,那么在确定了数据的到达时间间隔为16.66ms的业务,在15kHZ的SCS下指定周期值中第一周期值为10ms,第二周期值为6ms,第三周 期值为10个符号(9.243向上取整)的情况下,可以确定30kHZ的SCS(每帧时隙数为20)下的指定周期值中第一周期值为10ms,第二周期值为6ms,第三周期值为10×2=20,其中,2为30kHZ的SCS的每帧时隙数与15kHZ的SCS的每帧时隙数的比值。依次类推,即可确定每个SCS下的指定周期值。
对于数据的到达时间间隔为16.66ms(第一周期值为10ms,第二周期值为6ms)及33.33ms(第一周期值为32ms,第二周期值为1ms)的业务,在15kHZ的SCS为指定SCS的情况下,根据不同的SCS间的每帧时隙数间的关系,可以确定每个SCS下指定周期值中的第三周期值可以配置的数值可以如下表5所示:
表5
Figure PCTCN2021077301-appb-000005
可以理解的是,表5中的每一个元素、每一条对应关系,都是独立存在的;这些元素、对应关系被示例性的列在同一张表格中,但是并不代表表格中的所有元素、对应关系必须根据表5中所示的同时存在。其中每一个元素的值和每一对应关系,是不依赖于表5中任何其他元素值或对应关系。因此本领域内技术人员可以理解,该表5中的每一个元素的取值、每一条对应关系,各种都是一个独立的实施例。
需要说明的是,在计算每个SCS下指定周期值时,可根据需要,采用本公开任一实施例中的方式进行,本公开对此不做限定。
步骤606,向UE发送DRX配置信息,其中,配置信息中包含的指定周期值,与DRX的任一默认的可配置周期值不同。
在本公开的实施例中,步骤606可以分别采用本公开的各实施例中的任一种方式实现,本公开实施例并不对此作出限定,也不再赘述。
本公开实施例提供的DRX的确定方法,网络设备通过在确定任一业务数据的到达时间间隔与DRX的各个默认的可配置周期值不同时,可以向UE指示与业务数据的到达时间间隔匹配的指定周期值,以基于指定周期值与UE进行数据传输,从而尽量减少业务数据传输延时,提高了业务服务的质量和性能。
下面结合图7,对本公开实施例提供的再一种DRX的确定方法进行进一步说明。
图7为本公开实施例所提供的再一种DRX的确定方法的流程示意图,应用于网络设备。
如图7所示,该DRX的确定方法,包括以下步骤:
步骤701,响应于任一业务数据的到达时间间隔与任一默认的可配置周期值不同,确定任一业务数据的到达时间间隔与每个SCS对应的每时隙时长间的商S。
步骤702,将S中的整数部分与每个SCS对应的每时隙符号数间的乘积,确定为每个SCS下指定周期值内包含的第一周期值对应的符号数量。
其中,每个SCS的时域资源分配信息中可以包括:每时隙时长、每时隙符号数及每符号时长。
举例来说,若业务数据的到达时间间隔为16.66ms,15kHZ的SCS对应的每时隙时长为1ms、每时隙符号数为14。则对15kHZ的SCS而言,商S=16.66,从而可以确定15kHZ的SCS下指定周期值内包含的第一周期值对应的符号数量为16×14。
又如,若业务数据的到达时间间隔为16.66ms,30kHZ的SCS对应的每时隙时长为0.5ms、每时隙符号数为14。则对30kHZ的SCS而言,商S=33.32,从而可以确定30kHZ的SCS下指定周期值内包含的第一周期值对应的符号数量为33×14。
对于数据的到达时间间隔为16.66ms及33.33ms的业务,将业务数据的到达时间间隔与每个SCS对应的每时隙时长间的商S中的整数部分与每个SCS对应的每时隙符号数的乘积,确定为每个SCS下指定周期值中的第一周期值对应的符号数量时,每个SCS下第一周期值可以配置的数值可以如下表6所示:
表6
Figure PCTCN2021077301-appb-000006
可以理解的是,表6中的每一个元素、每一条对应关系,都是独立存在的;这些元素、对应关系被示例性的列在同一张表格中,但是并不代表表格中的所有元素、对应关系必须根据表6中所示的同时存在。其中每一个元素的值和每一对应关系,是不依赖于表6中任何其他元素值或对应关系。因此本领域内技术人员可以理解,该表6中的每一个元素的取值、每一条对应关系,各种都是一个独立的实施例。
步骤703,根据S中的小数部分与每个SCS对应的每符号时长,确定每个SCS下指定周期值内包含的第二周期值对应的符号数量。
可选的,可以将所述商S中的小数部分与每个SCS下的符号时长的商取整后的值,确定为每个SCS下指定周期值内包含的第二周期值对应的符号数量。
例如,对于数据的到达时间间隔为16.66ms及33.33ms的业务,将S中的小数部分与每个SCS下的符号时长的商向上取整后的值,确定为每个SCS下指定周期值中的第二周期值对应的符号数量时,第二周期值可以配置的数值可以如下表7所示:
表7
Figure PCTCN2021077301-appb-000007
可以理解的是,表7中的每一个元素、每一条对应关系,都是独立存在的;这些元素、对应关系被示例性的列在同一张表格中,但是并不代表表格中的所有元素、对应关系必须根据表7中所示的同时存在。其中每一个元素的值和每一对应关系,是不依赖于表7中任何其他元素值或对应关系。因此本领域内技术人员可以理解,该表7中的每一个元素的取值、每一条对应关系,各种都是一个独立的实施例。
需要说明的是,还可以将S中的小数部分与每个SCS下的符号时长的商向下取整、或者四舍五入取 整后的值,确定为每个SCS下指定周期值中的第二周期值对应的符号数量的值,本公开对此不做限定。
可选的,由表1可知,各个SCS对应的每符号时长、每时隙时长等具有一定的倍数关系,本公开中,还可以将任一SCS确定为指定SCS,从而在确定了该指定SCS下的指定周期值中的第二周期值对应的符号数量后,即可以基于该指定SCS下的指定周期值中的第二周期值对应的符号数量,确定每个SCS下指定周期值中的第二周期值对应的符号数量。
即本公开中,还可以将商S中的小数部分与指定SCS下的符号时长的商取整后的值,乘以每个SCS下的每帧时隙数量与指定SCS下的每帧时隙数量的比值,确定为每个SCS下指定周期值内包含的第二周期值对应的符号数量。
另外,对于扩展CP而言,由于其与常规CP相比,在每时隙时长相同的情况下,每时隙符号数不同,因此,可以采用本公开任意一种计算指定周期值的方式计算扩展CP下的指定周期值。
举例来说,对于数据的到达时间间隔为16.66ms及33.33ms的业务,在15kHZ的SCS为指定SCS的情况下,根据不同的SCS间的每帧时隙数间的关系,可以确定每个SCS下指定周期值中的第二周期值可以配置的数值可以如下表8所示:
表8
Figure PCTCN2021077301-appb-000008
可以理解的是,表8中的每一个元素、每一条对应关系,都是独立存在的;这些元素、对应关系被示例性的列在同一张表格中,但是并不代表表格中的所有元素、对应关系必须根据表8中所示的同时存在。其中每一个元素的值和每一对应关系,是不依赖于表8中任何其他元素值或对应关系。因此本领域内技术人员可以理解,该表8中的每一个元素的取值、每一条对应关系,各种都是一个独立的实施例。
需要说明的是,在计算每个SCS下指定周期值时,可根据需要,采用本公开任一实施例中的方式进行,本公开对此不做限定。
可选的,本公开中,还可以在确定了该指定SCS下的指定周期值中的第一周期值对应的符号数量后,即可以基于该指定SCS下的指定周期值中的第一周期值对应的符号数量,确定每个SCS下指定周期值中的第一周期值对应的符号数量。
即本公开中,可以首先确定指定SCS下指定周期值内包含的第一周期值对应的第一符号数量及第二周期值对应的第二符号数量;然后将第一符号数量,乘以每个SCS下的每帧时隙数量与指定SCS下的每帧时隙数量的比值,确定为每个SCS下指定周期值内包含的第一周期值对应的符号数量;将第二符号数量,乘以每个SCS下的每帧时隙数量与指定SCS下的每帧时隙数量的比值,确定为每个SCS下指定周期值内包含的第二周期值对应的符号数量。
另外,对于扩展CP而言,由于其与常规CP相比,在每时隙时长相同的情况下,每时隙符号数不同,因此,可以采用本公开任意一种计算指定周期值的方式计算扩展CP下的指定周期值。
举例来说,对于数据的到达时间间隔为16.66ms及33.33ms的业务,在15kHZ的SCS为指定SCS的情况下,根据不同的SCS间的每帧时隙数间的关系,可以确定每个SCS下指定周期值中的第一周期值可以配置的数值可以如下表9所示:
表9
Figure PCTCN2021077301-appb-000009
可以理解的是,表9中的每一个元素、每一条对应关系,都是独立存在的;这些元素、对应关系被示例性的列在同一张表格中,但是并不代表表格中的所有元素、对应关系必须根据表9中所示的同时存在。其中每一个元素的值和每一对应关系,是不依赖于表9中任何其他元素值或对应关系。因此本领域内技术人员可以理解,该表9中的每一个元素的取值、每一条对应关系,各种都是一个独立的实施例。
步骤704,向UE发送DRX配置信息,其中,配置信息中包含的指定周期值,与DRX的任一默认的可配置周期值不同。
在本公开的实施例中,步骤704可以分别采用本公开的各实施例中的任一种方式实现,本公开实施例并不对此作出限定,也不再赘述。
本公开实施例提供的DRX的确定方法,网络设备通过在确定任一业务数据的到达时间间隔与DRX的各个默认的可配置周期值不同时,可以向UE指示与业务数据的到达时间间隔匹配的指定周期值,以基于指定周期值与UE进行数据传输,从而尽量减少业务数据传输延时,提高了业务服务的质量和性能。
下面结合图8,对本公开实施例提供的又一种DRX的确定方法进行进一步说明。
图8为本公开实施例所提供的又一种DRX的确定方法的流程示意图,应用于网络设备。
如图8所示,该DRX的确定方法,包括以下步骤:
步骤801,响应于任一业务数据的到达时间间隔与任一默认的可配置周期值不同,将小于任一业务数据的到达时间间隔的任一默认的可配置周期值对应的时长,确定为每个SCS下指定周期值内包含的第一周期值对应的毫秒值m。
本实施例中,确定每个SCS下指定周期值内包含的第一周期值的具体过程,可参照其它任一实施例的详细描述,此处不再赘述。
其中,m为正整数。
步骤802,确定任一业务数据的到达时间间隔与m间的第一差值。
步骤803,将第一差值中的整数部分,确定指定周期值内包含的第二周期值对应的毫秒值f。
作为一种可能的实现方式,指定周期值可以为第一周期值加第二周期值加第三周期值的组合,并且第一周期值与第二周期值可以为毫秒值,第三周期值可以为子毫秒数量。因此,可以将第一差值中的整数部分确定为指定周期值内包含的第二周期值对应的毫秒值f。
例如,业务数据的到达时间间隔为16.66ms的业务,指定周期值内包含的第一周期值对应的毫秒值m为10,则第一差值为6.66ms,从而可以确定每个SCS下指定周期值内包含的第二周期值对应的毫秒值f为6。
同样的,业务数据的到达时间间隔为33.33ms的业务,指定周期值内包含的第一周期值对应的毫秒值m为32,则第一差值为为1.33ms,从而可以确定每个SCS下指定周期值内包含的第二周期值对应的毫秒值f为1。
步骤804,确定第一差值与毫秒值f间的第四差值。
步骤805,将第四差值与指定的参考系数的商,确定为每个SCS下指定周期值内包含的第三周期值对应的子毫秒数量。
其中,指定的参考系数,可以为1/a。需要说明的是,a的具体取值可以根据具体需要确定,本公开实施例对此不作限定。比如,a可以为32,即指定的参考系数为1/32。
作为一种可能的实现方式,在指定周期值为第一周期值加第二周期值加第三周期值的组合,且第一周期值与第二周期值为毫秒值,第三周期值为子毫秒数量时,可以将第一差值与毫秒值f间的第四差值与指定的参考系数的商,确定为第三周期值对应的子毫秒数量。
例如,业务数据的到达时间间隔为16.66ms,指定的参考系数为1/32,对于DRX长周期而而言,每个SCS下的指定周期值内包含的第一周期值为10ms,此时,第一差值为6.66ms,即第二周期值为6,第四差值为0.66,从而可以确定每个SCS下的指定周期值内包含的第三周期值对应的子毫秒数量为0.66/(1/32)=21。
又如,业务数据的到达时间间隔为33.33ms,指定的参考系数为1/32,对于DRX长周期而而言,每个SCS下的指定周期值内包含的第一周期值为32ms,此时,第一差值为1.33ms,即第二周期值为1,第四差值为0.33,从而可以确定每个SCS下的指定周期值内包含的第三周期值对应的子毫秒数量为0.33/(1/32)=11。
可选的,在第四差值与指定的参考系数的商不是整数时,可以将第四差值与指定的参考系数的商取整后的值,确定为指定周期值内包含的第三周期值对应的子毫秒数量。其中,本实施例中的取整可以为向下取整,向上取整,或者四舍五入取整,等等。
步骤806,向UE发送DRX配置信息,其中,配置信息中包含的指定周期值,与DRX的任一默认的可配置周期值不同。
在本公开的实施例中,步骤806可以分别采用本公开的各实施例中的任一种方式实现,本公开实施例并不对此作出限定,也不再赘述。
本公开实施例提供的DRX的确定方法,网络设备通过在确定任一业务数据的到达时间间隔与DRX的各个默认的可配置周期值不同时,可以向UE指示与业务数据的到达时间间隔匹配的指定周期值,以基于指定周期值与UE进行数据传输,从而尽量减少业务数据传输延时,提高了业务服务的质量和性能。
下面结合图9,对本公开实施例提供的又一种DRX的确定方法进行进一步说明。
图9为本公开实施例所提供的又一种DRX的确定方法的流程示意图,应用于网络设备。
如图9所示,该DRX的确定方法,包括以下步骤:
步骤901,响应于任一业务数据的到达时间间隔与任一默认的可配置周期值不同,将任一业务数据的到达时间间隔与每个SCS下的每符号时长的商取整后的值,确定为每个SCS下指定周期值内包含的符号数量。
其中,每个SCS的时域资源分配信息中可以包括:每符号时长。
举例来说,对于数据的到达时间间隔为16.66ms及33.33ms的业务,将业务数据的到达时间间隔与每个SCS对应的每符号时长的商向下取整后的值,确定为每个SCS下指定周期值内包的符号数量时,每个SCS下指定周期值可以配置的数值可以如下表10所示:
表10
Figure PCTCN2021077301-appb-000010
可以理解的是,表10中的每一个元素、每一条对应关系,都是独立存在的;这些元素、对应关系被示例性的列在同一张表格中,但是并不代表表格中的所有元素、对应关系必须根据表10中所示的同时存在。其中每一个元素的值和每一对应关系,是不依赖于表10中任何其他元素值或对应关系。因此本领域内技术人员可以理解,该表10中的每一个元素的取值、每一条对应关系,各种都是一个独立的实施例。
需要说明的是,还可以将将业务数据的到达时间间隔与每个SCS对应的每符号时长的商向上取整、或者四舍五入取整后的值,确定为每个SCS下周期值内包含的符号数量,本公开对此不做限定。
可选的,由表1可知,各个SCS对应的每符号时长、每时隙时长等具有一定的倍数关系,本公开中,还可以将任一SCS确定为指定SCS,从而在确定了该指定SCS下的指定周期值内包含的符号数量后,即可以基于该指定SCS下的指定周期值内包含的符号数量,确定每个SCS下指定周期值内包含的符号数量。
即本公开中,还可以将任一业务数据的到达时间间隔与指定SCS下的符号时长的商取整后的值,乘以每个SCS下的每帧时隙数量与指定SCS下的每帧时隙数量的比值,确定为每个SCS下指定周期值内包含的符号数量。
另外,对于扩展CP而言,由于其与常规CP相比,在每时隙时长相同的情况下,每时隙符号数不同,因此,可以采用本公开任意一种计算指定周期值的方式计算扩展CP下的指定周期值。
举例来说,对于数据的到达时间间隔为16.66ms及33.33ms的业务,在15kHZ的SCS为指定SCS的情况下,根据不同的SCS间的每帧时隙数间的关系,可以确定每个SCS下指定周期值内包含的符号数量可以如下表11所示:
表11
Figure PCTCN2021077301-appb-000011
可以理解的是,表11中的每一个元素、每一条对应关系,都是独立存在的;这些元素、对应关系被示例性的列在同一张表格中,但是并不代表表格中的所有元素、对应关系必须根据表11中所示的同时存在。其中每一个元素的值和每一对应关系,是不依赖于表11中任何其他元素值或对应关系。因此本领域内技术人员可以理解,该表11中的每一个元素的取值、每一条对应关系,各种都是一个独立的实 施例。
步骤902,向UE发送DRX配置信息,其中,配置信息中包含的指定周期值,与DRX的任一默认的可配置周期值不同。
在本公开的实施例中,步骤902可以分别采用本公开的各实施例中的任一种方式实现,本公开实施例并不对此作出限定,也不再赘述。
本公开实施例提供的DRX的确定方法,网络设备通过在确定任一业务数据的到达时间间隔与DRX的各个默认的可配置周期值不同时,可以向UE指示与业务数据的到达时间间隔匹配的指定周期值,以基于指定周期值与UE进行数据传输,从而尽量减少业务数据传输延时,提高了业务服务的质量和性能。
下面结合图10,对本公开实施例提供的另一种DRX的确定方法进行进一步说明。
图10为本公开实施例所提供的另一种DRX的确定方法的流程示意图,应用于网络设备。
如图10所示,该DRX的确定方法,包括以下步骤:
步骤1001,响应于任一业务数据的到达时间间隔与任一默认的可配置周期值不同,将任一业务数据的到达时间间隔与指定的参考系数的商,确定为指定周期值中包含的子毫秒数量。
其中,指定的参考系数,可以为1/a。需要说明的是,a的具体取值可以根据具体需要确定,本公开实施例对此不作限定。比如,a可以为32,即指定的参考系数为1/32。
作为一种可能的实现方式,可以通过子毫秒数量表示指定周期值。因此,可以将任一业务数据的到达时间间隔与指定的参考系数的商,确定为指定周期值中包含的子毫秒数量。
例如,业务数据的到达时间间隔为16.66ms,指定的参考系数为1/32,则可以确定每个SCS下的指定周期值内包含的子毫秒数量为16.66/(1/32)=533。
又如,业务数据的到达时间间隔为33.33ms,指定的参考系数为1/32,则可以确定每个SCS下的指定周期值内包含的子毫秒数量为33.33/(1/32)=1067。
可选的,在任一业务数据的到达时间间隔与指定的参考系数的商不是整数时,可以将任一业务数据的到达时间间隔与指定的参考系数的商取整后的值,确定为指定周期值内包含的子毫秒数量。其中,本实施例中的取整可以为向下取整,向上取整,或者四舍五入取整,等等。
步骤1002,向UE发送DRX配置信息,其中,配置信息中包含的指定周期值,与DRX的任一默认的可配置周期值不同。
在本公开的实施例中,步骤1002可以分别采用本公开的各实施例中的任一种方式实现,本公开实施例并不对此作出限定,也不再赘述。
本公开实施例提供的DRX的确定方法,网络设备通过在确定任一业务数据的到达时间间隔与DRX的各个默认的可配置周期值不同时,可以向UE指示与业务数据的到达时间间隔匹配的指定周期值,以基于指定周期值与UE进行数据传输,从而尽量减少业务数据传输延时,提高了业务服务的质量和性能。
下面结合图11,对本公开实施例提供的再一种DRX的确定方法进行进一步说明。
图11为本公开实施例所提供的再一种DRX的确定方法的流程示意图,应用于UE。
如图11所示,该DRX的确定方法,包括以下步骤:
步骤1101,接收网络设备发送的DRX配置信息,其中,配置信息中包含的指定周期值,与DRX的任一默认的可配置周期值不同。
其中,指定周期值可以为以下任一类型周期的取值:长周期、短周期、调度周期、重传周期、回传周期及去激活周期。
可选的,指定周期值可以为网络设备根据协议规定确定的,或者,还可以是根据当前的业务需求确定的。
另外,上述配置信息,可以为RRC消息,或者,还可以为PDCCH控制信令,本公开对此不做限 定。
可选的,本公开中,网络设备可以在确定任一业务数据的到达时间间隔与各个默认的可配置周期值不同时,根据任一业务数据的到达时间间隔,确定指定周期值。
例如,AR或VR业务可以给用户提供视频流服务。典型视频帧率为30帧或60帧每秒,也即视频帧到达时间间隔为33.33ms或16.66ms,而该到达时间间隔与DRX默认的可配置周期值(10ms、20ms等等)不同。因此,本公开中网络设备,可以根据视频业务的到达时间间隔确定DRX当前的指定周期值,并将该指定周期值发送给UE,从而UE可以基于该指定周期值与网络设备进行上下行数据的传输。
可选的,指定周期值可以根据需要包括不同的内容,比如可以包括第一周期值,其中,第一周期值,可以为子毫秒数量,还可以为OFDM符号数量。
举例来说,对于数据的到达时间间隔为16.66ms的业务,指定周期值中可以包括在15kHZ下的子毫秒数量533。
可选的,指定周期值还可以包括第一周期值加第二周期值的组合,其中,第一周期值可以为毫秒值,或者符号数量,第二周期值也可以为毫秒值、符号数量或者子毫秒数量等等,本公开对此不做限定。
举例来说,对于数据的到达时间间隔为16.66ms的业务,指定的资源周期中可以包括在15kHZ下的第一周期值(10ms)及第二周期值(10个符号),其中,10ms为DRX的默认的可配置周期值。
可选的,指定周期值还可以包括第一周期值加第二周期值加第三周期值的组合,其中,第一周期值可以为毫秒值,第二周期值也可以为毫秒值,第三周期值可以为符号数量或者子毫秒数量等等,本公开对此不做限定。
举例来说,对于数据的到达时间间隔为16.66ms的业务,指定的资源周期中可以包括在15kHZ下的第一周期值(10ms)、第二周期值(6ms)及第三周期值(10符号),其中,10ms为DRX的默认的可配置周期值。
本实施例中,指定周期值的确定方式可以参照本公开其他各个实施例的详细描述,此处不再赘述。
作为一种可能的实现方式,在指定周期值内包含符号数量时,UE还可以确定符号数量对应的小区信息和/或BWP信息。
其中,小区信息可以包括以下至少一项:小区组标识、小区标识及小区类型。BWP信息可以包括以下至少一项:BWP标识、BWP类型。
可选的,UE接收的DRX配置信息中可以包括所述符号数量对应的小区信息和/或BWP信息。从而,UE可以在接收到网络设备发送的DRX配置信息时,对DRX配置信息进行解析处理,以确定符号数量对应的小区信息和/或BWP信息。
可选的,网络设备还可以通过协议约定符号数量对应的小区信息和/或BWP信息,从而UE可以根据与网络设备之间预先约定的协议,确定网络设备发送的指定周期值中包含的符号数量对应的小区信息和/或BWP信息。
作为一种可能的实现方式,由于网络设备与UE进行数据传输的过程中,激活的小区或BWP可能会发生切换,且不同小区(或BWP)对应的每符号时长可能使不同的,因此,在当前激活的小区与配置信息中的小区(或当前激活的BWP与配置信息中的BWP不同)时,UE可以根据当前激活的小区或BWP对指定周期值中的符号数量进行更新,以保证指定周期值确定的准确性。即在本申请实施例一种可能的实现方式中,可以通过以下方式确定当前BWP或小区对应的符号数量:
方式一
响应于当前激活的BWP与所述配置信息中的BWP不同,根据当前激活的BWP的SCS与所述配置信息中BWP的SCS的比值、及指定周期值内包含的符号数量,计算当前激活的BWP对应的符号数量。
可选的,在配置信息中包含BWP信息,且当前当前激活的BWP与配置信息中的BWP不同时,可以将指定周期值内包含的符号数量,与当前激活的BWP的SCS中的每符号时长与配置信息中BWP的SCS中的每符号时长的比值的商,确定为当前激活的BWP对应的符号数量。
方式二
根据当前激活的BWP的SCS、及所述指定周期值内包含的符号数量,计算当前激活的BWP对应的符号数量。
可选的,在配置信息中未包含BWP信息时,可以根据指定周期值内包含的符号数量确定指定周期值的组合方式,进而根据上述实施例中公开的改指定周期值的组合方式对应的符号数量的确定方式,以及当前激活的BWP的SCS,重新确定当前激活的BWP对应的符号数量。
方式三
根据当前激活的小区的SCS、及指定周期值内包含的符号数量,计算当前激活的小区对应的符号数量。
可选的,在配置信息中未包含小区信息时,可以根据指定周期值内包含的符号数量确定指定周期值的组合方式,进而根据上述实施例中公开的改指定周期值的组合方式对应的符号数量的确定方式,以及当前激活的小区的SCS,重新确定当前激活的小区对应的符号数量。
方式四
响应于当前激活的小区与配置信息中的小区不同,根据当前激活的小区的SCS与配置信息中小区的SCS的比值、及指定周期值内包含的符号数量,计算当前激活的小区对应的符号数量。
可选的,在配置信息中包含小区信息,且当前当前激活的小区与配置信息中的小区不同时,可以将指定周期值内包含的符号数量,与当前激活的小区的SCS中的每符号时长与配置信息中小区的SCS中的每符号时长的比值的商,确定为当前激活的小区对应的符号数量。
作为一种可能的实现方式,在当前激活的BWP与配置信息中的BWP不同(或当前激活的小区与配置信息中的小区不同),或者当前激活的BWP发生变化(或当前激活的小区发生变化)时,可以停止或重启指定周期值对应的定时器,以在重新确定指定周期值中包含的符号数量后,重新启动定时器。即在本申请实施例一种可能的实现方式中,上述方法,还可以包括:
响应于当前激活的BWP与配置信息中的BWP不同,停止或重启指定周期值对应的定时器;
或者,
响应于当前激活的BWP与历史激活的BWP不同,停止或重启指定周期值对应的定时器;
或者,
响应于当前激活的小区与历史激活的小区不同,停止或重启指定周期值对应的定时器;
或者,
响应于当前激活的小区与配置信息中的小区不同,停止或重启指定周期值对应的定时器。
步骤1102,基于指定周期,对控制信道进行监听。
UE根据网络设备发送的DRX的配置信息,确定了DRX对应的指定周期值之后,即可根据配置的指定周期值监听控制信道,以接收网络设备发送的下行数据。
可以理解的是,本公开中,UE接收的DRX的配置信息,是网络设备在确定任一业务数据的到达时间间隔与各个默认的可配置周期值不同时,根据业务数据的到达时间间隔发送的,从而使得指示的指定周期值与业务数据的到达时间间隔尽量匹配,以降低业务数据的传输延时。
本公开实施例的DRX的确定方法,UE通过基于获取的与业务数据的到达时间间隔匹配的指定周期值与网络设备进行数据传输,从而尽量减少了业务数据传输延时,提高了业务服务的质量和性能。
为了实现上述实施例,本公开还提出一种DRX的确定装置。
图12为本公开实施例提供的一种DRX的确定装置的结构示意图,应用于网络设备。
如图12所示,该DRX的确定装置1200,包括:
发送模块1201,用于向UE发送DRX配置信息,其中,配置信息中包含的指定周期值,与DRX的任一默认的可配置周期值不同。
在实际使用时,本公开实施例提供的DRX的确定装置,可以被配置在任意网络设备中,以执行前述DRX的确定方法。
本公开实施例提供的DRX的确定装置,通过在确定任一业务数据的到达时间间隔与DRX的各个 默认的可配置周期值不同时,可以向UE指示与业务数据的到达时间间隔匹配的指定周期值,以基于指定周期值与UE进行数据传输,从而尽量减少业务数据传输延时,提高了业务服务的质量和性能。
在本公开一种可能的实现形式中,上述指定周期值为以下任一类型周期的取值:长周期、短周期、调度周期、重传周期、回传周期及去激活周期。
进一步的,在本公开另一种可能的实现形式中,上述DRX的确定装置1200,还包括:
第一确定模块,用于根据每个子载波间隔SCS对应的时域资源分配信息,确定每个所述SCS下的所述指定周期值;
或者
第二确定模块,用于基于指定SCS下的所述指定周期值,确定每个SCS下的所述指定周期值。
进一步的,在本公开再一种可能的实现形式中,上述第一确定模块或第二确定模块,还用于:
确定每个SCS下指定周期值内包含的符号数量、毫秒值和/或子毫秒数量。
进一步的,在本公开又一种可能的实现形式中,上述指定周期值为以下任一组合:第一周期值、第一周期值加第二周期值、第一周期值加第二周期值加第三周期值。
进一步的,在本公开又一种可能的实现形式中,上述DRX的确定装置1200,还包括:
第三确定模块,用于响应于任一业务数据的到达时间间隔与任一默认的可配置周期值不同,根据任一业务数据的到达时间间隔,确定指定周期值。
进一步的,在本公开另一种可能的实现形式中,上述第三确定模块,还用于:
将小于任一业务数据的到达时间间隔的任一默认的可配置周期值,确定为指定周期值内包含的第一周期值对应的毫秒值m,其中,m为正整数;
将任一业务数据的到达时间间隔与m间的第一差值,确定为指定周期值内包含的第二周期值对应的毫秒值。
进一步的,在本公开再一种可能的实现形式中,上述第三确定模块,还用于:
将小于任一业务数据的到达时间间隔的任一默认的可配置周期值对应的时长,确定指定周期值内包含的第一周期值对应的毫秒值m,其中,m为正整数;
确定任一业务数据的到达时间间隔与m间的第一差值;
将第一差值与指定的参考系数的商,确定为指定周期值内包含的第二周期值对应的子毫秒数量。
进一步的,在本公开又一种可能的实现形式中,上述每个SCS的时域资源分配信息中包括:每时隙时长及每符号时长;相应的,上述第三确定模块,还用于:
将小于任一业务数据的到达时间间隔的任一默认的可配置周期值对应的时长,确定为每个SCS下指定周期值内包含的第一周期值对应的毫秒值m,其中,m为正整数;
确定任一业务数据的到达时间间隔与m间的第一差值;
根据第一差值及每符号时长,确定每个SCS下指定周期值内包含的第二周期值对应的符号数量。
进一步的,在本公开又一种可能的实现形式中,上述第三确定模块,还用于:
将第一差值与每个SCS下的每符号时长的商取整后的值,确定为每个SCS下指定周期值内包含的第二周期值对应的符号数量;
或者,
将第一差值与指定SCS下的每符号时长的商取整后的值,乘以每个SCS下的每帧时隙数与指定SCS下的每帧时隙数的比值,确定为每个SCS下指定周期值内包含的第二周期值对应的符号数量;
或者,
将第一差值与每符号时长间的商中包含的第一指定值的最大整数倍,确定为每个SCS下指定周期值内包含的第二周期对应的符号数量。
进一步的,在本公开另一种可能的实现形式中,上述每个SCS的时域资源分配信息中包括:每时隙时长及每符号时长;相应的,上述第三确定模块,还用于:
根据任一业务数据的到达时间间隔与指定SCS对应的每时隙时长的商S,确定每个SCS下所述指定周期值内包含的第一周期值对应的毫秒值m,其中,m为正整数;
确定任一业务数据的到达时间间隔与m间的第二差值;
根据第二差值及每符号时长,确定每个SCS下指定周期值内包含的第二周期值对应的符号数量。
进一步的,在本公开再一种可能的实现形式中,上述第三确定模块,还用于:
将S中的整数部分,确定为每个SCS下指定周期值内包含的第一周期值对应的毫秒值m;
或者,
将S中包含的第二指定值的最大倍数值,确定为每个SCS下指定周期值内包含的第一周期值对应的毫秒值m;
或者,
将小于S的默认的可配置周期值,确定为每个SCS下指定周期值内包含的第一周期值对应的毫秒值m。
进一步的,在本公开又一种可能的实现形式中,上述每个SCS的时域资源分配信息中包括:每时隙时长及每符号时长;相应的,上述第三确定模块,还用于:
将小于任一业务数据的到达时间间隔的任一默认可配置周期值,确定为每个SCS下指定周期值内包含的第一周期值对应的毫秒值m,其中,m为正整数;
确定任一业务数据的到达时间间隔与m间的第一差值;
将第一差值与指定SCS对应的每时隙时长的商取整后的值,确定为每个SCS下指定周期值内包含的第二周期值对应的毫秒值k,其中,k为正整数;
确定第一差值与k间的第三差值;
根据第三差值与每符号时长,确定每个SCS下指定周期值内包含的第三周期值对应的符号数量。
进一步的,在本公开又一种可能的实现形式中,上述第三确定模块,还用于:
将所述第三差值与每个所述SCS下的每符号时长的商取整后的值,确定为每个所述SCS下所述指定周期值内包含的第三周期值对应的符号数量;
或者,
将所述第三差值与所述指定SCS下的每符号时长的商取整后的值,乘以每个所述SCS下的每帧时隙数量与所述指定SCS下的每帧时隙数量的比值,确定为每个所述SCS下所述指定周期值内包含的第三周期值对应的符号数量。
进一步的,在本公开另一种可能的实现形式中,上述每个所述SCS的时域资源分配信息中包括:每时隙时长、每时隙符号数及每符号时长;相应的,上述第三确定模块,还用于:
确定所述任一业务数据的到达时间间隔与每个所述SCS对应的每时隙时长间的商S;
将所述S中的整数部分与每个所述SCS对应的每时隙符号数间的乘积,确定为每个所述SCS下所述指定周期值内包含的第一周期值对应的符号数量;
根据所述S中的小数部分与每个所述SCS对应的每符号时长,确定每个所述SCS下所述指定周期值内包含的第二周期值对应的符号数量。
进一步的,在本公开再一种可能的实现形式中,上述第三确定模块,还用于:
将所述S中的小数部分与每个所述SCS下的符号时长的商取整后的值,确定为每个所述SCS下所述指定周期值内包含的第二周期值对应的符号数量;
或者,
将所述S中的小数部分与所述指定SCS下的符号时长的商取整后的值,乘以每个所述SCS下的每帧时隙数量与所述指定SCS下的每帧时隙数量的比值,确定为每个所述SCS下所述指定周期值内包含的第二周期值对应的符号数量。
进一步的,在本公开又一种可能的实现形式中,上述每个SCS的时域资源分配信息中包括:每符号时长;相应的,上述第三确定模块,还用于:
确定指定SCS下所述指定周期值内包含的第一周期值对应的第一符号数量及第二周期值对应的第二符号数量;
将所述第一符号数量,乘以每个SCS下的每帧时隙数量与所述指定SCS下的每帧时隙数量的比值, 确定为每个SCS下所述指定周期值内包含的第一周期值对应的符号数量;
将所述第二符号数量,乘以每个SCS下的每帧时隙数量与所述指定SCS下的每帧时隙数量的比值,确定为每个SCS下所述指定周期值内包含的第二周期值对应的符号数量。
进一步的,在本公开又一种可能的实现形式中,上述第三确定模块,还用于:
将小于所述任一业务数据的到达时间间隔的任一默认的可配置周期值对应的时长,确定为每个SCS下所述指定周期值内包含的第一周期值对应的毫秒值m,其中,m为正整数;
确定所述任一业务数据的到达时间间隔与所述m间的第一差值;
将所述第一差值中的整数部分,确定所述指定周期值内包含的第二周期值对应的毫秒值f;
确定所述第一差值与所述毫秒值f间的第四差值;
将所述第四差值与指定的参考系数的商,确定为每个SCS下所述指定周期值内包含的第三周期值对应的子毫秒数量。
进一步的,在本公开另一种可能的实现形式中,上述每个所述SCS的时域资源分配信息中包括:每符号时长;相应的,上述第三确定模块,还用于:
将所述任一业务数据的到达时间间隔与每个所述SCS下的每符号时长的商取整后的值,确定为每个所述SCS下所述指定周期值内包含的符号数量;
或者,
将所述任一业务数据的到达时间间隔与所述指定SCS下的符号时长的商取整后的值,乘以每个所述SCS下的每帧时隙数量与所述指定SCS下的每帧时隙数量的比值,确定为每个所述SCS下所述指定周期值内包含的符号数量。
进一步的,在本公开再一种可能的实现形式中,上述DRX配置信息中,还包括与所述指定周期值中的符号数量对应的小区信息和/或带宽部分BWP信息。
进一步的,在本公开又一种可能的实现形式中,上述小区信息包括以下至少一项:小区组标识、小区标识及小区类型。
进一步的,在本公开又一种可能的实现形式中,上述BWP信息包括以下至少一项:BWP标识、BWP类型。
进一步的,在本公开另一种可能的实现形式中,上述第三确定模块,还用于:
将所述任一业务数据的到达时间间隔与指定的参考系数的商,确定为所述指定周期值中包含的子毫秒数量。
需要说明的是,前述对图1-图10所示的DRX的确定方法实施例的解释说明也适用于该实施例的DRX的确定装置1200,此处不再赘述。
本公开实施例提供的DRX的确定装置,通过在确定任一业务数据的到达时间间隔与DRX的各个默认的可配置周期值不同时,可以向UE指示与业务数据的到达时间间隔匹配的指定周期值,以基于指定周期值与UE进行数据传输,从而尽量减少业务数据传输延时,提高了业务服务的质量和性能。
为了实现上述实施例,本公开还提出一种DRX的确定装置。
图13为本公开实施例提供的另一种DRX的确定装置的结构示意图,应用于UE。
如图13所示,该DRX的确定装置1300,包括:
接收模块1301,用于接收网络设备发送的DRX配置信息,其中,配置信息中包含的指定周期值,与DRX的任一默认的可配置周期值不同;
监听模块1302,用于基于指定周期,对控制信道进行监听。
在实际使用时,本公开实施例提供的DRX的确定装置,可以被配置在任意UE中,以执行前述DRX的确定方法。
本公开实施例提供的DRX的确定装置,通过基于获取的与业务数据的到达时间间隔匹配的指定周期值与网络设备进行数据传输,从而尽量减少了业务数据传输延时,提高了业务服务的质量和性能。
在本公开一种可能的实现形式中,上述指定周期值为以下任一组合:第一周期值、第一周期值加第 二周期值、第一周期值加第二周期值加第三周期值。
进一步的,在本公开另一种可能的实现形式中,上述指定周期值包括第一周期值加第二周期值,上述第一周期值为默认的可配置周期值。
进一步的,在本公开再一种可能的实现形式中,上述配置信息中包含DRX在每个SCS下的指定周期值内包含的符号数量、毫秒值和/或子毫秒值。
进一步的,在本公开又一种可能的实现形式中,上述指定周期值内包含符号数量;相应的,上述DRX的确定装置1300,还包括:
第四确定模块,用于确定所述符号数量对应的小区信息和/或带宽部分BWP信息。
进一步的,在本公开又一种可能的实现形式中,上述小区信息包括以下至少一项:小区组标识、小区标识及小区类型。
进一步的,在本公开另一种可能的实现形式中,上述BWP信息包括以下至少一项:BWP标识、BWP类型。
进一步的,在本公开再一种可能的实现形式中,上述DRX的确定装置1300,还包括:
第一计算模块,用于响应于当前激活的BWP与所述配置信息中的BWP不同,根据所述当前激活的BWP的SCS与所述配置信息中BWP的SCS的比值、及所述指定周期值内包含的符号数量,计算当前激活的BWP对应的符号数量;
或者,
第二计算模块,用于根据当前激活的BWP的SCS、及所述指定周期值内包含的符号数量,计算当前激活的BWP对应的符号数量;
或者,
第三计算模块,用于根据当前激活的小区的SCS、及所述指定周期值内包含的符号数量,计算当前激活的小区对应的符号数量;
或者,
第四计算模块,用于响应于当前激活的小区与所述配置信息中的小区不同,根据所述当前激活的小区的SCS与所述配置信息中小区的SCS的比值、及所述指定周期值内包含的符号数量,计算当前激活的小区对应的符号数量。
进一步的,在本公开又一种可能的实现形式中,上述DRX的确定装置1300,还包括:
第一处理模块,用于响应于当前激活的BWP与所述配置信息中的BWP不同,停止或重启所述指定周期值对应的定时器;
或者,
第二处理模块,用于响应于当前激活的BWP与历史激活的BWP不同,停止或重启所述指定周期值对应的定时器;
或者,
第三处理模块,用于响应于当前激活的小区与历史激活的小区不同,停止或重启所述指定周期值对应的定时器;
或者,
第四处理模块,用于响应于当前激活的小区与所述配置信息中的小区不同,停止或重启所述指定周期值对应的定时器。
进一步的,在本公开另一种可能的实现形式中,上述指定周期值为以下任一类型周期的取值:长周期、短周期、调度周期、重传周期、回传周期及去激活周期。
需要说明的是,前述对图11所示的DRX的确定方法实施例的解释说明也适用于该实施例的DRX的确定装置1300,此处不再赘述。
本公开实施例提供的DRX的确定装置,通过基于获取的与业务数据的到达时间间隔匹配的指定周期值与网络设备进行数据传输,从而尽量减少了业务数据传输延时,提高了业务服务的质量和性能。
为了实现上述实施例,本公开还提出一种通信设备。
本公开实施例提供的通信设备,包括处理器、收发器、存储器及存储在存储器上并能够有处理器运行的可执行程序,其中,处理器运行可执行程序时执行前述任意技术方案提供的DRX的确定方法。
该通信设备可为前述的UE或网络设备。
其中,处理器可包括各种类型的存储介质,该存储介质为非临时性计算机存储介质,在通信设备掉电之后能够继续记忆存储其上的信息。这里,所述通信设备包括UE或网络设备。
所述处理器可以通过总线等与存储器连接,用于读取存储器上存储的可执行程序,例如,如图1至图10的至少其中之一。
为了实现上述实施例,本公开还提出一种计算机存储介质。
本公开实施例提供的计算机存储介质,存储有可执行程序;所述可执行程序被处理器执行后,能够实现前述任意技术方案提供的DRX的确定方法,例如,如图1至图11的至少其中之一。
图14是本公开实施例所提供的一种UE1400的框图。例如,UE1400可以是移动电话,计算机,数字广播用户设备,消息收发设备,游戏控制台,平板设备,医疗设备,健身设备,个人数字助理等。
参照图14,UE1400可以包括以下至少一个组件:处理组件1402,存储器1404,电源组件1406,多媒体组件1408,音频组件1410,输入/输出(I/O)的接口1412,传感器组件1414,以及通信组件1416。
处理组件1402通常控制UE1400的整体操作,诸如与显示,电话呼叫,数据通信,相机操作和记录操作相关联的操作。处理组件1402可以包括至少一个处理器1420来执行指令,以完成上述的方法的全部或部分步骤。此外,处理组件1402可以包括至少一个模块,便于处理组件1402和其他组件之间的交互。例如,处理组件1402可以包括多媒体模块,以方便多媒体组件1408和处理组件1402之间的交互。
存储器1404被配置为存储各种类型的数据以支持在UE1400的操作。这些数据的示例包括用于在UE1400上操作的任何应用程序或方法的指令,联系人数据,电话簿数据,消息,图片,视频等。存储器1404可以由任何类型的易失性或非易失性存储设备或者它们的组合实现,如静态随机存取存储器(SRAM),电可擦除可编程只读存储器(EEPROM),可擦除可编程只读存储器(EPROM),可编程只读存储器(PROM),只读存储器(ROM),磁存储器,快闪存储器,磁盘或光盘。
电源组件1406为UE1400的各种组件提供电力。电源组件1406可以包括电源管理系统,至少一个电源,及其他与为UE1400生成、管理和分配电力相关联的组件。
多媒体组件1408包括在所述UE1400和用户之间的提供一个输出接口的屏幕。在一些实施例中,屏幕可以包括液晶显示器(LCD)和触摸面板(TP)。如果屏幕包括触摸面板,屏幕可以被实现为触摸屏,以接收来自用户的输入信号。触摸面板包括至少一个触摸传感器以感测触摸、滑动和触摸面板上的手势。所述触摸传感器可以不仅感测触摸或滑动动作的边界,而且还检测与所述触摸或滑动操作相关的唤醒时间和压力。在一些实施例中,多媒体组件1408包括一个前置摄像头和/或后置摄像头。当UE1400处于操作模式,如拍摄模式或视频模式时,前置摄像头和/或后置摄像头可以接收外部的多媒体数据。每个前置摄像头和后置摄像头可以是一个固定的光学透镜系统或具有焦距和光学变焦能力。
音频组件1410被配置为输出和/或输入音频信号。例如,音频组件1410包括一个麦克风(MIC),当UE1400处于操作模式,如呼叫模式、记录模式和语音识别模式时,麦克风被配置为接收外部音频信号。所接收的音频信号可以被进一步存储在存储器1404或经由通信组件1416发送。在一些实施例中,音频组件1410还包括一个扬声器,用于输出音频信号。
I/O接口1412为处理组件1402和外围接口模块之间提供接口,上述外围接口模块可以是键盘,点击轮,按钮等。这些按钮可包括但不限于:主页按钮、音量按钮、启动按钮和锁定按钮。
传感器组件1414包括至少一个传感器,用于为UE1400提供各个方面的状态评估。例如,传感器组件1414可以检测到设备1400的打开/关闭状态,组件的相对定位,例如所述组件为UE1400的显示器和小键盘,传感器组件1414还可以检测UE1400或UE1400一个组件的位置改变,用户与UE1400 接触的存在或不存在,UE1400方位或加速/减速和UE1400的温度变化。传感器组件1414可以包括接近传感器,被配置用来在没有任何的物理接触时检测附近物体的存在。传感器组件1414还可以包括光传感器,如CMOS或CCD图像传感器,用于在成像应用中使用。在一些实施例中,该传感器组件1414还可以包括加速度传感器,陀螺仪传感器,磁传感器,压力传感器或温度传感器。
通信组件1416被配置为便于UE1400和其他设备之间有线或无线方式的通信。UE1400可以接入基于通信标准的无线网络,如WiFi,2G或3G,或它们的组合。在一个示例性实施例中,通信组件1416经由广播信道接收来自外部广播管理系统的广播信号或广播相关信息。在一个示例性实施例中,所述通信组件1416还包括近场通信(NFC)模块,以促进短程通信。例如,在NFC模块可基于射频识别(RFID)技术,红外数据协会(IrDA)技术,超宽带(UWB)技术,蓝牙(BT)技术和其他技术来实现。
在示例性实施例中,UE1400可以被至少一个应用专用集成电路(ASIC)、数字信号处理器(DSP)、数字信号处理设备(DSPD)、可编程逻辑器件(PLD)、现场可编程门阵列(FPGA)、控制器、微控制器、微处理器或其他电子元件实现,用于执行上述方法。
在示例性实施例中,还提供了一种包括指令的非临时性计算机可读存储介质,例如包括指令的存储器1404,上述指令可由UE1400的处理器1420执行以完成上述方法。例如,所述非临时性计算机可读存储介质可以是ROM、随机存取存储器(RAM)、CD-ROM、磁带、软盘和光数据存储设备等。
如图15所示,为本公开实施例所提供的一种基站的结构示意图。例如,基站1500可以被提供为一网络设备。参照图15,基站1500包括处理组件1522,其进一步包括至少一个处理器,以及由存储器1532所代表的存储器资源,用于存储可由处理组件1522的执行的指令,例如应用程序。存储器1532中存储的应用程序可以包括一个或一个以上的每一个对应于一组指令的模块。此外,处理组件1522被配置为执行指令,以执行上述方法前述应用在所述基站的任意方法,例如,如图9、图10所示方法。
基站1500还可以包括一个电源组件1526被配置为执行基站1500的电源管理,一个有线或无线网络接口1550被配置为将基站1500连接到网络,和一个输入输出(I/O)接口1558。基站1500可以操作基于存储在存储器1532的操作系统,例如Windows Server TM,Mac OS XTM,UnixTM,LinuxTM,FreeBSDTM或类似。
本领域技术人员在考虑说明书及实践这里公开的发明后,将容易想到本发明的其它实施方案。本公开旨在涵盖本发明的任何变型、用途或者适应性变化,这些变型、用途或者适应性变化遵循本发明的一般性原理并包括本公开未公开的本技术领域中的公知常识或惯用技术手段。说明书和实施例仅被视为示例性的,本公开的真正范围和精神由下面的权利要求指出。
应当理解的是,本公开并不局限于上面已经描述并在附图中示出的精确结构,并且可以在不脱离其范围进行各种修改和改变。本公开的范围仅由所附的权利要求来限制。

Claims (37)

  1. 一种非连续接收的确定方法,其特征在于,应用于网络设备,所述方法包括:
    向用户设备发送非连续接收DRX配置信息,其中,所述配置信息中包含的指定周期值,与所述DRX的任一默认的可配置周期值不同。
  2. 如权利要求1所述的方法,其特征在于,所述指定周期值为以下任一类型周期的取值:长周期、短周期、调度周期、重传周期、回传周期及去激活周期。
  3. 如权利要求1所述的方法,其特征在于,还包括:
    根据每个子载波间隔SCS对应的时域资源分配信息,确定每个所述SCS下的所述指定周期值;
    或者,
    基于指定SCS下的所述指定周期值,确定每个SCS下的所述指定周期值。
  4. 如权利要求3所述的方法,其特征在于,所述确定每个所述SCS下所述指定周期值,包括:
    确定每个所述SCS下所述指定周期值内包含的符号数量、毫秒值和/或子毫秒数量。
  5. 如权利要求1所述的方法,其特征在于,所述指定周期值为以下任一组合:第一周期值、第一周期值加第二周期值、第一周期值加第二周期值加第三周期值。
  6. 如权利要求1-5任一所述的方法,其特征在于,还包括:
    响应于任一业务数据的到达时间间隔与任一所述默认的可配置周期值不同,根据所述任一业务数据的到达时间间隔,确定所述指定周期值。
  7. 如权利要求6所述的方法,其特征在于,所述确定所述指定周期值,包括:
    将小于所述任一业务数据的到达时间间隔的任一默认的可配置周期值,确定为所述指定周期值内包含的第一周期值对应的毫秒值m,其中,m为正整数;
    将所述任一业务数据的到达时间间隔与所述m间的第一差值,确定为所述指定周期值内包含的第二周期值对应的毫秒值。
  8. 如权利要求6所述的方法,其特征在于,所述确定所述指定周期值,包括:
    将小于所述任一业务数据的到达时间间隔的任一默认的可配置周期值对应的时长,确定所述指定周期值内包含的第一周期值对应的毫秒值m,其中,m为正整数;
    确定所述任一业务数据的到达时间间隔与所述m间的第一差值;
    将所述第一差值与指定的参考系数的商,确定为所述指定周期值内包含的第二周期值对应的子毫秒数量。
  9. 如权利要求6所述的方法,其特征在于,每个所述SCS的时域资源分配信息中包括:每时隙时长及每符号时长,所述确定所述指定周期值,包括:
    将小于所述任一业务数据的到达时间间隔的任一默认的可配置周期值对应的时长,确定为每个所述SCS下所述指定周期值内包含的第一周期值对应的毫秒值m,其中,m为正整数;
    确定所述任一业务数据的到达时间间隔与所述m间的第一差值;
    根据所述第一差值及所述每符号时长,确定每个所述SCS下所述指定周期值内包含的第二周期值对应的符号数量。
  10. 如权利要求9任一所述的方法,其特征在于,所述根据所述第一差值及所述每符号时长,确定每个所述SCS下所述指定周期值内包含的第二周期值对应的符号数量,包括:
    将所述第一差值与每个所述SCS下的每符号时长的商取整后的值,确定为每个所述SCS下所述指定周期值内包含的第二周期值对应的符号数量;
    或者,
    将所述第一差值与所述指定SCS下的每符号时长的商取整后的值,乘以每个所述SCS下的每帧时隙数与所述指定SCS下的每帧时隙数的比值,确定为每个所述SCS下所述指定周期值内包含的第二周期值对应的符号数量;
    或者,
    将所述第一差值与所述每符号时长间的商中包含的第一指定值的最大整数倍,确定为每个所述SCS下所述指定周期值内包含的第二周期对应的符号数量。
  11. 如权利要求6所述的方法,其特征在于,每个所述SCS的时域资源分配信息中包括:每时隙时长及每符号时长,所述确定所述指定周期值,包括:
    根据所述任一业务数据的到达时间间隔与指定SCS对应的每时隙时长的商S,确定每个所述SCS下所述指定周期值内包含的第一周期值对应的毫秒值m,其中,m为正整数;
    确定所述任一业务数据的到达时间间隔与所述m间的第二差值;
    根据所述第二差值及所述每符号时长,确定每个所述SCS下所述指定周期值内包含的第二周期值对应的符号数量。
  12. 如权利要求11所述的方法,其特征在于,所述根据所述任一业务数据的到达时间间隔与指定的SCS对应的每时隙时长的商S,确定每个所述SCS下所述指定周期值内包含的第一周期值对应的毫秒值m,包括:
    将所述S中的整数部分,确定为每个所述SCS下所述指定周期值内包含的第一周期值对应的毫秒值m;
    或者,
    将所述S中包含的第二指定值的最大倍数值,确定为每个所述SCS下所述指定周期值内包含的第一周期值对应的毫秒值m;
    或者,
    将小于所述S的默认的可配置周期值,确定为每个所述SCS下所述指定周期值内包含的第一周期值对应的毫秒值m。
  13. 如权利要求6所述的方法,其特征在于,每个所述SCS的时域资源分配信息中包括:每时隙时长及每符号时长,所述确定所述指定周期值,包括:
    将小于所述任一业务数据的到达时间间隔的任一默认可配置周期值,确定为每个SCS下所述指定周期值内包含的第一周期值对应的毫秒值m,其中,m为正整数;
    确定所述任一业务数据的到达时间间隔与所述m间的第一差值;
    将所述第一差值与指定SCS对应的每时隙时长的商取整后的值,确定为每个所述SCS下所述指定周期值内包含的第二周期值对应的毫秒值k,其中,k为正整数;
    确定所述第一差值与所述k间的第三差值;
    根据所述第三差值与所述每符号时长,确定每个所述SCS下所述指定周期值内包含的第三周期值对应的符号数量。
  14. 如权利要求13所述的方法,其特征在于,所述根据所述第三差值与所述每符号时长,确定每个所述SCS下所述指定周期值内包含的第三周期值对应的符号数量,包括:
    将所述第三差值与每个所述SCS下的每符号时长的商取整后的值,确定为每个所述SCS下所述指定周期值内包含的第三周期值对应的符号数量;
    或者,
    将所述第三差值与所述指定SCS下的每符号时长的商取整后的值,乘以每个所述SCS下的每帧时隙数量与所述指定SCS下的每帧时隙数量的比值,确定为每个所述SCS下所述指定周期值内包含的第三周期值对应的符号数量。
  15. 如权利要求6所述的方法,其特征在于,每个所述SCS的时域资源分配信息中包括:每时隙时长、每时隙符号数及每符号时长,所述确定所述指定周期值,包括:
    确定所述任一业务数据的到达时间间隔与每个所述SCS对应的每时隙时长间的商S;
    将所述S中的整数部分与每个所述SCS对应的每时隙符号数间的乘积,确定为每个所述SCS下所述指定周期值内包含的第一周期值对应的符号数量;
    根据所述S中的小数部分与每个所述SCS对应的每符号时长,确定每个所述SCS下所述指定周期值内包含的第二周期值对应的符号数量。
  16. 如权利要求15所述的方法,其特征在于,所述根据所述S中的小数部分与每个所述SCS对应的每符号时长,确定每个所述SCS下所述指定周期值内包含的第二周期值对应的符号数量,包括:
    将所述S中的小数部分与每个所述SCS下的符号时长的商取整后的值,确定为每个所述SCS下所述指定周期值内包含的第二周期值对应的符号数量;
    或者,
    将所述S中的小数部分与所述指定SCS下的符号时长的商取整后的值,乘以每个所述SCS下的每帧时隙数量与所述指定SCS下的每帧时隙数量的比值,确定为每个所述SCS下所述指定周期值内包含的第二周期值对应的符号数量。
  17. 如权利要求6所述的方法,其特征在于,每个SCS的时域资源分配信息中包括:每符号时长,所述确定所述指定周期值,包括:
    确定指定SCS下所述指定周期值内包含的第一周期值对应的第一符号数量及第二周期值对应的第二符号数量;
    将所述第一符号数量,乘以每个SCS下的每帧时隙数量与所述指定SCS下的每帧时隙数量的比值,确定为每个SCS下所述指定周期值内包含的第一周期值对应的符号数量;
    将所述第二符号数量,乘以每个SCS下的每帧时隙数量与所述指定SCS下的每帧时隙数量的比值,确定为每个SCS下所述指定周期值内包含的第二周期值对应的符号数量。
  18. 如权利要求6所述的方法,其特征在于所述确定所述指定周期值,包括:
    将小于所述任一业务数据的到达时间间隔的任一默认的可配置周期值对应的时长,确定为每个SCS下所述指定周期值内包含的第一周期值对应的毫秒值m,其中,m为正整数;
    确定所述任一业务数据的到达时间间隔与所述m间的第一差值;
    将所述第一差值中的整数部分,确定所述指定周期值内包含的第二周期值对应的毫秒值f;
    确定所述第一差值与所述毫秒值f间的第四差值;
    将所述第四差值与指定的参考系数的商,确定为每个SCS下所述指定周期值内包含的第三周期值对应的子毫秒数量。
  19. 如权利要求6所述的方法,其特征在于,每个所述SCS的时域资源分配信息中包括:每符号时长,所述确定所述指定周期值,包括:
    将所述任一业务数据的到达时间间隔与每个所述SCS下的每符号时长的商取整后的值,确定为每 个所述SCS下所述指定周期值内包含的符号数量;
    或者,
    将所述任一业务数据的到达时间间隔与所述指定SCS下的符号时长的商取整后的值,乘以每个所述SCS下的每帧时隙数量与所述指定SCS下的每帧时隙数量的比值,确定为每个所述SCS下所述指定周期值内包含的符号数量。
  20. 如权利要求9-19任一所述的方法,其特征在于,所述DRX配置信息中,还包括与所述指定周期值中的符号数量对应的小区信息和/或带宽部分BWP信息。
  21. 如权利要求20所述的方法,其特征在于,所述小区信息包括以下至少一项:小区组标识、小区标识及小区类型。
  22. 如权利要求20所述的方法,其特征在于,所述BWP信息包括以下至少一项:BWP标识、BWP类型。
  23. 如权利要求6所述的方法,其特征在于,所述确定所述指定周期值,包括:
    将所述任一业务数据的到达时间间隔与指定的参考系数的商,确定为所述指定周期值中包含的子毫秒数量。
  24. 一种非连续接收的确定方法,其特征在于,应用于用户设备,所述方法包括:
    接收网络设备发送的非连续接收DRX配置信息,其中,所述配置信息中包含的指定周期值,与所述DRX的任一默认的可配置周期值不同;
    基于所述指定周期,对控制信道进行监听。
  25. 如权利要求24所述的方法,其特征在于,所述指定周期值为以下任一组合:第一周期值、第一周期值加第二周期值、第一周期值加第二周期值加第三周期值。
  26. 如权利要求25所述的方法,其特征在于,所述指定周期值包括第一周期值加第二周期值,所述第一周期值为默认的可配置周期值。
  27. 如权利要求24所述的方法,其特征在于,所述配置信息中包含DRX在每个SCS下的指定周期值内包含的符号数量、毫秒值和/或子毫秒值。
  28. 如权利要求24所述的方法,其特征在于,所述指定周期值内包含符号数量,所述方法还包括:
    确定所述符号数量对应的小区信息和/或带宽部分BWP信息。
  29. 如权利要求28所述的方法,其特征在于,所述小区信息包括以下至少一项:小区组标识、小区标识及小区类型。
  30. 如权利要求28所述的方法,其特征在于,所述BWP信息包括以下至少一项:BWP标识、BWP类型。
  31. 如权利要求27-30任一所述的方法,其特征在于,还包括:
    响应于当前激活的BWP与所述配置信息中的BWP不同,根据所述当前激活的BWP的SCS与所述配置信息中BWP的SCS的比值、及所述指定周期值内包含的符号数量,计算当前激活的BWP对应 的符号数量;
    或者,
    根据当前激活的BWP的SCS、及所述指定周期值内包含的符号数量,计算当前激活的BWP对应的符号数量;
    或者,
    根据当前激活的小区的SCS、及所述指定周期值内包含的符号数量,计算当前激活的小区对应的符号数量;
    或者,
    响应于当前激活的小区与所述配置信息中的小区不同,根据所述当前激活的小区的SCS与所述配置信息中小区的SCS的比值、及所述指定周期值内包含的符号数量,计算当前激活的小区对应的符号数量。
  32. 如权利要求31所述的方法,其特征在于,还包括:
    响应于当前激活的BWP与所述配置信息中的BWP不同,停止或重启所述指定周期值对应的定时器;
    或者,
    响应于当前激活的BWP与历史激活的BWP不同,停止或重启所述指定周期值对应的定时器;
    或者,
    响应于当前激活的小区与历史激活的小区不同,停止或重启所述指定周期值对应的定时器;
    或者,
    响应于当前激活的小区与所述配置信息中的小区不同,停止或重启所述指定周期值对应的定时器。
  33. 如权利要求24-30任一所述的方法,其特征在于,所述指定周期值为以下任一类型周期的取值:长周期、短周期、调度周期、重传周期、回传周期及去激活周期。
  34. 一种非连续接收的确定装置,其特征在于,应用于网络设备,所述方法包括:
    发送模块,用于向用户设备发送非连续接收DRX配置信息,其中,所述配置信息中包含的指定周期值,与所述DRX的任一默认的可配置周期值不同。
  35. 一种非连续接收的确定装置,其特征在于,应用于用户设备,所述方法包括:
    接收模块,用于接收网络设备发送的非连续接收DRX配置信息,其中,所述配置信息中包含的指定周期值,与所述DRX的任一默认的可配置周期值不同;
    监听模块,用于基于所述指定周期,对控制信道进行监听。
  36. 一种通信设备,其特征在于,包括:收发器;存储器;处理器,分别与所述收发器及所述存储器连接,配置为通过执行所述存储器上的计算机可执行指令,控制所述收发器的无线信号收发,并能够实现如权利要求1至23、或24至33任一项所述的DRX的确定方法。
  37. 一种计算机存储介质,其特征在于,所述计算机存储介质存储有计算机可执行指令;所述计算机可执行指令被处理器执行后,能够实现如权利要求1至23、或24至33任一项所述的DRX的确定方法。
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