WO2018184445A1 - 寻呼消息发送、接收方法、装置、相关设备及存储介质 - Google Patents

寻呼消息发送、接收方法、装置、相关设备及存储介质 Download PDF

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Publication number
WO2018184445A1
WO2018184445A1 PCT/CN2018/078761 CN2018078761W WO2018184445A1 WO 2018184445 A1 WO2018184445 A1 WO 2018184445A1 CN 2018078761 W CN2018078761 W CN 2018078761W WO 2018184445 A1 WO2018184445 A1 WO 2018184445A1
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Prior art keywords
paging
paging message
transmission period
terminal
receiving node
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PCT/CN2018/078761
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English (en)
French (fr)
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李大鹏
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中兴通讯股份有限公司
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Publication of WO2018184445A1 publication Critical patent/WO2018184445A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W68/00User notification, e.g. alerting and paging, for incoming communication, change of service or the like
    • H04W68/02Arrangements for increasing efficiency of notification or paging channel
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W16/00Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
    • H04W16/24Cell structures
    • H04W16/28Cell structures using beam steering
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W84/00Network topologies
    • H04W84/02Hierarchically pre-organised networks, e.g. paging networks, cellular networks, WLAN [Wireless Local Area Network] or WLL [Wireless Local Loop]

Definitions

  • the present disclosure relates to the field of communications technologies, and in particular, to a paging message sending and receiving method, apparatus, related device, and storage medium.
  • Paging is an important feature in mobile communication systems. Paging searches for terminals in the context of a tracking area (TA, Trace Area).
  • TA tracking area
  • a terminal in an idle state can monitor a system-to-terminal paging according to a discontinuous transmission period (which can be understood as a DRX cycle).
  • the terminal In a non-continuous transmission period, the terminal has a paging frame (PF) and a paging occasion (PO). Both the base station and the network side can calculate the location of the PF and the PO in the system according to the configuration of the discontinuous transmission period and the number information of the UE.
  • the terminal can obtain the paging position by the following calculation formula.
  • T is the discontinuous transmission period of the terminal.
  • N is min(T, NB), where NB refers to the number of POs in one PF, and UE_ID is the user equipment number.
  • the ultra-wide bandwidth high frequency band (ie, millimeter wave communication) has become an important direction for the development of mobile communication in the future, attracting the attention of academic and industrial circles around the world.
  • the advantages of millimeter waves have become more and more attractive when the increasingly congested spectrum resources and physical networks are heavily accessed.
  • standards organizations such as IEEE and 3GPP, corresponding standardization work has begun.
  • high-band communication will become an important innovation point of 5G New Radio Access Technology (New RAT) by virtue of its significant advantages of large bandwidth.
  • New RAT 5G New Radio Access Technology
  • high-band communication also faces the challenge of link attenuation, specifically including large loss of propagation path, greater absorption of air absorption (especially oxygen), and heavy rain attenuation. Faced with these challenges, high-band communication systems can take advantage of the high frequency band and short antenna integration, and achieve high antenna gain and signal transmission loss through multi-antenna array and beamforming schemes to ensure link margin. And improve communication robustness.
  • the beam scanning method or system becomes an important transmission method of the 5G New RAT. How to implement the paging function in the beam scanning system has become a problem that the technician needs to consider.
  • a method for sending a paging message comprising:
  • the paging message transmission period is obtained according to the discontinuous transmission period and the user equipment number; the paging burst message is sent to the terminal in the first synchronization burst set after the simultaneous synchronization burst set or the paging message transmission period.
  • a paging message receiving method includes:
  • a paging message sending device includes:
  • the first processing module is configured to acquire at least one of the following three corresponding relationships: a correspondence between a frequency and a paging interval, a correspondence between a transmission receiving node identifier and a paging interval, a paging identifier of the transmitting and receiving node, and a homing Corresponding relationship of the call interval; the first sending module is configured to: after receiving the paging message, obtain a paging message transmission period according to the at least one corresponding relationship, and send a paging message to the terminal during the paging message sending period; Or, including:
  • the third processing module is configured to obtain a paging message sending period according to the discontinuous transmission period and the user equipment number; and the second sending module is configured to: after the synchronization burst set or the paging message sending period of the paging message sending period A synchronization burst concentrates the paging message to the terminal.
  • a paging message receiving apparatus includes:
  • the second processing module is configured to obtain at least one of the following three corresponding relationships: a correspondence between a frequency and a paging interval, a correspondence between a transmission receiving node identifier and a paging interval, a paging identifier of the transmitting and receiving node, and a homing Corresponding relationship of the paging interval; obtaining a paging message transmission period according to the at least one correspondence relationship; the first receiving module is configured to wake up the terminal and read the paging message during the paging message sending period; or,
  • the fourth processing module is configured to obtain a paging message sending period according to the discontinuous transmission period and the user equipment number; and the second receiving module is configured to: when the terminal is found to be within the coverage of the transmitting and receiving node that supports beam scanning, The paging burst message is received in the first synchronization burst that occurs at the same time as the synchronization burst set or the paging message transmission period.
  • a base station comprising: a processor and a memory, the memory storing computer executable instructions, the computer executable instructions being implemented by the processor to implement the following method:
  • the computer executable instructions are implemented by the processor to implement the following method:
  • the paging message transmission period is obtained according to the discontinuous transmission period and the user equipment number; the paging message is sent to the terminal in the first synchronization burst set after the simultaneous synchronization burst set or the paging message transmission period.
  • a terminal comprising: a processor and a memory, the memory storing computer executable instructions, the computer executable instructions being implemented by the processor to implement the following method:
  • the at least one correspondence relationship obtains a paging message transmission period; the terminal is woken up and reads the paging message during the paging message transmission period;
  • the computer executable instructions are implemented by the processor to implement the following method:
  • Embodiments of the present disclosure also provide a computer readable storage medium storing computer executable instructions that are implemented when the computer executable instructions are executed.
  • the foregoing solution solves the paging problem in the beam scanning system.
  • the terminal can implement the paging function in the beam scanning system, and can improve the accuracy of the terminal obtaining the paging message and improve the user experience.
  • FIG. 1 is a schematic diagram of a tracking area in the related art of the present disclosure
  • FIG. 2 is a flowchart of a paging message sending method according to a first embodiment of the present disclosure
  • FIG. 3 is a flowchart of a method for receiving a paging message according to a second embodiment of the present disclosure
  • FIG. 4 is a flowchart of a method for sending a paging message according to a third embodiment of the present disclosure
  • FIG. 5 is a flowchart of a method for receiving a paging message according to a fourth embodiment of the present disclosure
  • FIG. 6 is a schematic diagram of a PO location in the second application example of the present disclosure.
  • FIG. 1 is a schematic diagram of a TA in the related art, and there are three cells in the TA range. They are cell 1 (cell 1), cell 2 (cell 2), and cell 3 (cell 3).
  • the cell 2 has a first transmission receiving node (TRP) 101 supporting the beam scanning system
  • the cell 3 has a second transmission receiving node 102 supporting the beam scanning system.
  • the terminal can move to any location in the TA when in the idle state.
  • the terminal Since the beam scanning is supported, the first transmission receiving node 101 and the second transmission receiving node 102 need to scan and propagate on multiple beams, so that if the terminal is under the coverage of the first transmission receiving node 101 or the second transmission receiving node 102, It is not sure which beam can receive the information on it, so it takes a long time to locate the best receive beam.
  • the terminal receives the paging message from the power saving state, and first needs to perform downlink synchronization to find a SS burst set, which in turn requires the terminal to locate the optimal receiving beam for a long time.
  • the paging information and the synchronization period can be multiplexed together.
  • the terminal can receive the paging message as long as the optimal receiving beam is located once. But this poses a problem, the terminal does not know what parameters to use to calculate the paging moment (PF and / or PO). This is because the synchronization period of the TRP can be 5 milliseconds to 100 milliseconds, that is, the paging period using this technique is 5 milliseconds to 100 milliseconds. According to the related art, the paging cycle may be a paging moment in any one of the subframes in the discontinuous period. Therefore, when the terminal enters the coverage of the first transmission reception point 101 or the second transmission reception point 102 that supports beam scanning, the paging position is addressed according to the related art, and the paging message may be missed.
  • a flowchart of a method for sending a paging message according to a first embodiment of the present disclosure includes:
  • Step 201 Acquire at least one of the following three corresponding relationships: a correspondence between a frequency and a paging interval, a correspondence between a transmission receiving node identifier and a paging interval, and a correspondence between a paging identifier of a transmitting and receiving node and a paging interval. relationship;
  • Step 202 After receiving the paging message sent by the core network element, obtain a paging message transmission period according to the at least one corresponding relationship, and send a paging message to the terminal during the paging message sending period.
  • the network side provides at least one corresponding relationship: a correspondence between a frequency and a paging interval, a correspondence between a TRP identifier and a paging interval, a correspondence between a TRP paging identifier and a paging interval, and the corresponding relationship is pre-configured, and then Configured to the terminal.
  • the paging message sending period includes: a paging subframe or a plurality of consecutive wireless subframes; and the acquiring a paging message sending period according to the at least one corresponding relationship, including: according to the at least one The correspondence relationship obtains a paging interval, and a paging message transmission period is obtained according to the obtained paging interval.
  • the frequency is a frequency at which a transmitting and receiving node in a beam scanning manner is located;
  • the paging interval is an interval of two paging moments in a discontinuous reception period, and the paging interval is a period of a beam scanning synchronization burst set, such as 5 ms, 10 ms, 20 ms, 40 ms, 80 ms, 100 ms. It should be noted that the paging interval value herein is an exemplary description, and other values may be used in specific applications.
  • the corresponding relationship between the frequency and the paging interval refers to the frequency of the TRP in the beam scanning mode and the corresponding paging cycle in the TA range.
  • the paging cycle used for the frequency can be inferred. If all TRPs in the TA range use the same paging cycle on all frequencies, then only one paging cycle needs to be configured. If the frequency of all TRPs in the TA range uses different paging cycles, then a corresponding paging cycle needs to be configured for each frequency.
  • the TRP identifier may be TRP site information. Different TRP sites can be distinguished according to the site information. If the paging periods of all TRPs in the TA range are different, then each TRP needs to be assigned a corresponding paging cycle. If the paging periods of the TRPs in the TA range are consistent, only one paging cycle can be configured.
  • the TRP paging identifier is an indication information indicating a paging period of the TRP broadcast, and the information may be broadcast in the TRP, for example, by using a synchronization information block or a Radio Resource Control (RRC) message. If the paging periods of all TRPs in each TA range are different, then each TRP needs to be assigned a corresponding paging cycle. If the paging periods of the TRPs in the TA range are consistent, only one paging cycle can be configured.
  • RRC Radio Resource Control
  • step 201 can be configured to the terminal in at least one of the following manners:
  • NAS non-access
  • the method for calculating the PF and the PO on the network side is as follows:
  • Calculation of PF After receiving the paging message, calculate PF according to the following formula:
  • PF (discontinuous reception time divided by (div) paging interval) multiplied by ⁇ (terminal identification modulo (mod) paging number).
  • the discontinuous reception time and the number of pagings are obtained through pre-configuration.
  • the paging message sending method is a flowchart of a paging message receiving method according to the second embodiment of the present disclosure; the paging message receiving method includes the following steps:
  • Step 301 Acquire at least one of the following three corresponding relationships: a correspondence between a frequency and a paging interval, a correspondence between a transmission receiving node identifier and a paging interval, and a correspondence between a paging identifier of a transmitting and receiving node and a paging interval. relationship;
  • Step 302 Obtain a paging message sending period according to the at least one corresponding relationship.
  • Step 303 The terminal wakes up and reads the paging message during the paging message sending period.
  • the frequency is a frequency at which a transmitting and receiving node in a beam scanning manner is located; and the paging interval is an interval between two possible paging moments in a discontinuous receiving period,
  • the paging interval is a period of a beam scanning synchronization burst set;
  • the transmission receiving node identifier is a transmission receiving node site information acquired when the terminal resides at the transmission receiving node;
  • the transmission receiving node paging identifier is a transmission receiving node broadcast. Indicates the indication of the paging cycle.
  • the paging message sending period in step 302 includes: a paging subframe or a plurality of consecutive wireless subframes; in step 302, the paging message sending period is obtained according to at least one corresponding relationship, including Obtaining a paging interval according to at least one correspondence, and obtaining a paging message transmission period according to the obtained paging interval.
  • the obtaining a paging message sending period according to the obtained paging interval includes:
  • the terminal identifier is modulo the number of pagings to obtain a second result value
  • the discontinuous reception time and the number of pagings are obtained through pre-configuration.
  • the processing on the terminal side includes:
  • Obtaining the corresponding relationship is at least one of the following: a correspondence between a frequency and a paging interval; a correspondence between a TRP identifier and a paging interval; and a correspondence between a TRP paging identifier and a paging interval.
  • the purpose is to obtain a paging interval according to the frequency, because the terminal moves in a dormant state, in which case the terminal does not know what network coverage is entered, and does not know the paging interval.
  • the paging interval can be obtained according to the frequency.
  • the paging message transmission period is obtained in step 302, and the following formula is adopted:
  • PF (discontinuous reception time div paging interval)* (terminal identification mod paging number)
  • the terminal is woken up at the PF time and reads the paging message.
  • the paging message sending method includes:
  • Step 401 Obtain a paging message sending period according to the discontinuous transmission period and the user equipment number.
  • Step 402 Send a paging message to the terminal in the first synchronization burst set after the synchronization burst set or the paging message transmission period of the paging message transmission period.
  • the method further includes:
  • the synchronization burst set before the paging message transmission period transmits a paging message to the terminal.
  • the processing on the network side includes:
  • the TRP sends a paging message to the terminal in the first synchronization burst of the PO or PO.
  • the TRP may send a paging message in both the synchronization burst set before and after the PO.
  • the synchronization burst set is broadcast according to the following period: (5ms, 10ms, 20ms, 40ms, 80ms, 100ms).
  • the synchronous burst set at the same time as the PO has exactly the synchronous burst set transmission at the position of the radio frame of the PO.
  • the first synchronization burst set after the PO means that there is no synchronization burst set in the radio frame position of the PO, and the next position where the PO appears may be considered.
  • the paging message transmission period is based on the synchronization burst. The set period and the position of the PO are determined.
  • the paging message sending method according to the third embodiment, and correspondingly to FIG. 5, is a flowchart of a paging message receiving method according to the fourth embodiment of the present disclosure.
  • the paging message receiving method is provided. ,include:
  • Step 501 Obtain a paging message sending period according to the discontinuous transmission period and the user equipment number.
  • Step 502 When the coverage of the transmission receiving node that supports the beam scanning is found, the terminal receives the first synchronization burst in the synchronization burst set or the paging message transmission period. Paging message.
  • the method further includes:
  • the terminal receives the paging message in the synchronization burst set before the paging message transmission period.
  • the processing on the terminal side includes:
  • the PO calculates the subframe number in the PF by the formula floor (UE_ID/N) mod Ns.
  • the terminal finds that it is within the coverage of the TRP that supports beam scanning, it receives the paging message in the synchronization burst set of the PO at the same time or the first synchronization burst that occurs after the PO.
  • the terminal may receive the paging message in the first synchronization burst after the occurrence of the PF and the first PF after the PF occurs.
  • the paging message sending method of the first embodiment of the present disclosure and the paging message receiving method of the second embodiment need to modify the related art method for obtaining the PF.
  • the paging message sending method of the third embodiment of the present disclosure and the paging message receiving method of the fourth embodiment multiplex the calculation of the PF of the related technology, but still allow the UE to accurately accept the paging message.
  • the paging method supporting beam scanning is further described in detail.
  • FIG. 1 there are three cells in the TA range. They are cell 1 (cell 1), cell 2 (cell 2), and cell 3 (cell 3).
  • the cell 2 has a first transmission receiving node 101 supporting the beam scanning system
  • the cell 3 has a second transmission receiving node 102 supporting the beam scanning system.
  • the first transmission receiving node 101 supports two frequencies F1 and F2, respectively
  • the second transmission receiving node 102 also supports two frequencies F1 and F2.
  • the synchronous burst set period of F1 and F2 is different, F1 uses a period of 10ms, and F2 uses a period of 20ms.
  • the method includes the following steps:
  • Step 1 Correspondence between the configuration frequency and the paging interval on the network side, as shown in Table 1;
  • Step 2 When the core network sends a paging message to the base station, each cell of the base station obtains a paging message transmission period according to the discontinuous transmission period and the user equipment number, and sends a paging message during the transmission period;
  • the terminal wakes up and finds that it is in the cell coverage, instead of supporting the beam scanning TRP, the paging message is obtained according to the related art.
  • the paging message is obtained according to the formula provided in step 2.
  • the application example overcomes the problem that the terminal does not receive paging when there is a TRP with beam scanning function in the system.
  • the synchronization period of the TRP can be from 5 milliseconds to 100 milliseconds, that is, the paging cycle using this technique has an opportunity of 5 milliseconds to 100 milliseconds.
  • the paging cycle may be a paging moment in any one of the subframes in the discontinuous period. Therefore, when the terminal enters the TRP coverage that supports beam scanning, the paging location is addressed according to the related art, and the paging message may be missed.
  • the method of the application example can improve the accuracy of the terminal obtaining the paging message.
  • a paging message sending method includes:
  • the calculation process can use the PO calculation method in the prior art. For example, use the down rounding function, floor(UE_ID/N) mod Ns to calculate.
  • the paging message is sent at the same time as the PF time or in the next synchronous burst set period.
  • the TRP should send a paging message in the first synchronization burst set period after the PF time.
  • the TRP should send a paging message in the PF simultaneous synchronization burst set period.
  • the TRP may send a paging message at two synchronization burst set periods before and after the PF time.
  • the TRP should send the paging message in the two periods of the PF simultaneous and the previous synchronization burst set period.
  • a paging message receiving method includes:
  • the PO calculates the subframe number in the PF by the formula floor (UE_ID/N) mod Ns.
  • the terminal should receive the paging message in the first synchronization burst set period after the PF time;
  • the terminal should receive the paging message in the synchronous burst set period of the PF at the same time;
  • the terminal receives the paging message in the previous and subsequent synchronization burst set periods at the PF time.
  • the terminal receives the paging message in the two periods of the PO simultaneous and the previous synchronization burst set period.
  • a paging message sending apparatus including:
  • the first processing module is configured to acquire at least one of the following three corresponding relationships: a correspondence between a frequency and a paging interval, a correspondence between a transmission receiving node identifier and a paging interval, a paging identifier of the transmitting and receiving node, and a homing Correspondence of call intervals;
  • the first sending module is configured to: after receiving the paging message sent by the core network element, obtain a paging message sending period according to the at least one corresponding relationship, and send a paging message to the terminal during the paging message sending period.
  • a paging message receiving apparatus including:
  • the second processing module is configured to obtain at least one of the following three corresponding relationships: a correspondence between a frequency and a paging interval, a correspondence between a transmission receiving node identifier and a paging interval, a paging identifier of the transmitting and receiving node, and a homing Corresponding relationship of call intervals; obtaining a paging message transmission period according to the at least one correspondence relationship;
  • the first receiving module is configured to wake up the terminal and read the paging message during the paging message sending period.
  • a paging message sending apparatus including:
  • a third processing module configured to obtain a paging message sending period according to the discontinuous transmission period and the user equipment number
  • the second sending module is configured to send the paging message to the terminal in the first synchronization burst set after the simultaneous synchronization burst set or the paging message transmission period.
  • a paging message receiving apparatus including:
  • a fourth processing module configured to obtain a paging message sending period according to the discontinuous transmission period and the user equipment number
  • a second receiving module configured to: when the terminal is found to be within the coverage of the transmitting and receiving node that supports beam scanning, the first synchronization occurs after the simultaneous synchronization burst or paging message transmission period of the paging message transmission period The burst receives the paging message in a centralized manner.
  • a base station including: a processor and a memory, where the memory stores computer executable instructions, and the computer executable instructions are The processor implements the following methods when it executes:
  • the computer executable instructions are implemented by the processor to implement the following method:
  • the paging message is sent to the terminal in the first synchronization burst set after the simultaneous synchronization burst set or the paging message transmission period.
  • a terminal including: a processor and a memory, where the memory stores computer executable instructions, the computer executable instructions are The processor implements the following methods when it executes:
  • the at least one correspondence relationship obtains a paging message transmission period; the terminal is woken up and reads the paging message during the paging message transmission period;
  • the computer executable instructions are implemented by the processor to implement the following method:
  • the terminal When it is found that the coverage is within the coverage of the transmission receiving node supporting the beam scanning, the terminal receives the paging message in the first synchronization burst that occurs after the synchronization burst set or the paging message transmission period at the time of the paging message transmission period. .
  • the terminal can implement the paging function in the beam scanning system based on the technical solution provided by the embodiment of the present disclosure, and can improve the accuracy of obtaining the paging message by the terminal and improve the user experience.
  • the embodiment of the present application further provides a computer readable storage medium storing computer executable instructions, which are implemented when the computer executable instructions are executed.
  • the computer readable storage medium described above includes instructions for causing a computer device (which may be a personal computer, a server, or a network device, etc.) or a processor to perform some of the steps of the methods described in various embodiments of the present disclosure.
  • the computer readable storage medium includes: a USB flash drive, a removable hard disk, a read only memory (ROM), a random access memory (RAM), a magnetic disk, or an optical disk, and the like, which can store program codes. medium.
  • the terminal corresponds to at least one of a correspondence between a frequency and a paging interval, a correspondence between a transmission receiving node identifier and a paging interval, and a correspondence between a paging identifier of a transmitting and receiving node and a paging interval.
  • the relationship obtains a paging message transmission period; the terminal wakes up and reads the paging message during the paging message transmission period, or the terminal obtains the paging message transmission period according to the discontinuous transmission period and the user equipment number; when the discovery is in the support beam
  • the paging burst message is received in the first synchronization burst that occurs after the simultaneous synchronization burst set or the paging message transmission period, so that the terminal can implement the beam. Scanning the paging function in the system, and improving the accuracy of the terminal to obtain paging messages, improving the user experience.

Abstract

本公开提供一种寻呼消息发送、接收方法、装置、相关设备及存储介质,所述寻呼消息发送方法包括:获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;接收到寻呼消息后,根据所述至少一种对应关系获得寻呼消息发送时期,并在该寻呼消息发送时期发送寻呼消息给终端。通过本发明实施例,终端可以实现波束扫描系统中的寻呼功能,并且能提高终端获得寻呼消息的准确性,提升了用户体验。

Description

寻呼消息发送、接收方法、装置、相关设备及存储介质
相关申请的交叉引用
本申请基于申请号为201710224523.8、申请日为2017年04月07日的中国专利申请提出,并要求该中国专利申请的优先权,该中国专利申请的全部内容在此引入本申请作为参考。
技术领域
本公开涉及通信技术领域,具体而言,涉及一种寻呼消息发送、接收方法、装置、相关设备及存储介质。
背景技术
移动通信的发展日新月异,渗透到人们工作、社交、生活的各个方面,给人们的生活方式、工作方式以及社会政治、经济等各方面都带来了巨大的影响。人类社会进入了信息化时代,各个方面业务应用需求呈现爆发式增长,在未来的移动网络,不仅仅提供人与人之间的通信,还要为物联网海量设备提供服务。比如虚拟现实、高清视频等有超高速率服务需求的业务,速率可以达到现在的10~100倍;比如车联网等有低延时服务需求的业务,端到端时延可以缩短5倍;物联网可以接入现在的1000倍数量的业务,而电池寿命也可以延长到现在的10倍等。
寻呼是移动通讯系统中一个重要的功能。寻呼是在一个跟踪区(TA,Trace Area)的范围内对终端进行寻找。相关技术中,为了达到节电目的,处于空闲态的终端可以根据非连续传输周期(可以理解为DRX cycle)去监控系统对终端的寻呼。在一个非连续传输周期内,终端有一个寻呼帧(Paging Frame,PF)和一个寻呼时刻(paging occasion,PO)。基站和网络侧都可以根据非连续传输周期的配置和UE的编号信息来计算PF和PO在系统中的位置。当有寻呼到来的时候,终端可以通过如下的计算公式获得寻呼 位置。SFN(系统帧号)mod T=(T div N)*(UE_ID mod N),具体可以参考TS 36.304协议。其中,T为终端的非连续传输周期。N为min(T,NB),其中NB是指一个PF中PO的数量,UE_ID为用户设备编号。
超宽带宽的高频段(即毫米波通信),成为未来移动通信发展的重要方向,吸引了全球的学术界和产业界的目光。特别是,在当下日益拥塞的频谱资源和物理网大量接入时,毫米波的优势变得越来越有吸引力,在很多标准组织,例如IEEE、3GPP都开始展开相应的标准化工作。例如,在3GPP标准组,高频段通信凭借着其大带宽的显著优势将会成为5G新无线接入技术(New Radio Access Technology,New RAT)的重要创新点。
然而,高频段通信也面临着链路衰减的挑战,具体而言,包括传播路径损失大、空气吸收(尤其是氧气)吸收更大、雨衰影响较重等。面对这些挑战,高频段通信系统可以利用高频段波长较短和易于天线集成等特点,通过多天线阵列和波束赋形方案来获取高天线增益和对抗信号传输损耗,进而以确保链路余量和提升通信鲁棒性。
因此波束扫描方式或系统成为5G New RAT一种重要的传输方式。而如何在波束扫描系统中实现寻呼功能,成为技术人员需要考虑的问题。
发明内容
有鉴于此,本公开实施例提供了以下方案。
一种寻呼消息发送方法,包括:
获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;接收到寻呼消息后,根据所述至少一种对应关系获得寻呼消息发送时期,并在该寻呼消息发送时期发送寻呼消息给终端;或者,
根据非连续传输周期及用户设备编号获得寻呼消息发送时期;寻呼消息发送时期同时的同步突发集或者寻呼消息发送时期之后第一个同步突发集中将寻呼消息发送给终端。
一种寻呼消息接收方法,包括:
获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;根据所述至少一种对应关系获得寻呼消息发送时期;终端在所述寻呼消息发送时期被唤醒并读取寻呼消息;或者,
根据非连续传输周期及用户设备编号获得寻呼消息发送时期;当发现处于支持波束扫描的传输接收节点的覆盖范围内时,则终端在寻呼消息发送时期同时的同步突发集或寻呼消息发送时期之后出现的第一个同步突发集中接收寻呼消息。
一种寻呼消息发送装置,包括:
第一处理模块,配置为获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;第一发送模块,配置为接收到寻呼消息后,根据所述至少一种对应关系获得寻呼消息发送时期,并在该寻呼消息发送时期发送寻呼消息给终端;或者,包括:
第三处理模块,配置为根据非连续传输周期及用户设备编号获得寻呼消息发送时期;第二发送模块,配置为在寻呼消息发送时期同时的同步突发集或者寻呼消息发送时期之后第一个同步突发集中将寻呼消息发送给终端。
一种寻呼消息接收装置,包括:
第二处理模块,配置为获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;根据所述至少一种对应关系获得寻呼消息发送时期;第一接收模块,配置为在所述寻呼消息发送时期唤醒终端并读取寻呼消息;或者,包括:
第四处理模块,配置为根据非连续传输周期及用户设备编号获得寻呼消息发送时期;第二接收模块,配置为当发现终端处于支持波束扫描的传输接收节点的覆盖范围内时,则在寻呼消息发送时期同时的同步突发集或 寻呼消息发送时期之后出现的第一个同步突发集中接收寻呼消息。
一种基站,包括:处理器和存储器,所述存储器存储有计算机可执行指令,所述计算机可执行指令被所述处理器执行时实现如下方法:
获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;接收到寻呼消息后,根据所述至少一种对应关系获得寻呼消息发送时期,并在该寻呼消息发送时期发送寻呼消息给终端;
或者,所述计算机可执行指令被所述处理器执行时实现如下方法:
根据非连续传输周期及用户设备编号获得寻呼消息发送时期;在寻呼消息发送时期同时的同步突发集或者寻呼消息发送时期之后第一个同步突发集中将寻呼消息发送给终端。
一种终端,包括:处理器和存储器,所述存储器存储有计算机可执行指令,所述计算机可执行指令被所述处理器执行时实现如下方法:
获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;根据所述至少一种对应关系获得寻呼消息发送时期;终端在所述寻呼消息发送时期被唤醒并读取寻呼消息;
或者,所述计算机可执行指令被所述处理器执行时实现如下方法:
根据非连续传输周期及用户设备编号获得寻呼消息发送时期;当发现处于支持波束扫描的传输接收节点的覆盖范围内时,则终端在寻呼消息发送时期同时的同步突发集或寻呼消息发送时期之后出现的第一个同步突发集中接收寻呼消息。
本公开实施例还提供一种计算机可读存储介质,存储有计算机可执行指令,所述计算机可执行指令被执行时实现上述方法。
上述方案解决了波束扫描系统中的寻呼问题,通过本公开实施例,终端可以实现波束扫描系统中的寻呼功能,并且能提高终端获得寻呼消息的准确性,提升了用户体验。
附图说明
图1为本公开相关技术中跟踪区示意图;
图2为本公开第一实施例的寻呼消息发送方法流程图;
图3为本公开第二实施例的寻呼消息接收方法流程图;
图4为本公开第三实施例的寻呼消息发送方法流程图;
图5为本公开第四实施例的寻呼消息接收方法流程图;
图6为本公开应用实例二中PO位置示意图。
具体实施方式
为使本公开的目的、技术方案和优点更加清楚明白,下文中将结合附图对本公开的实施例进行详细说明。需要说明的是,在不冲突的情况下,本申请中的实施例及实施例中的特征可以相互任意组合。
如何在波束扫描系统中实现寻呼功能在相关技术中并没有描述。
如图1所示为相关技术中TA示意图,该TA范围内有三个小区。分别是小区1(cell 1),小区2(cell 2)和小区3(cell 3)。其中小区2中有一个支持波束扫描系统的第一传输接收节点(Transmission Reception Point,TRP)101,小区3中有一个支持波束扫描系统的第二传输接收节点102。终端在空闲态时可以移动到该TA中的任何位置。由于支持波束扫描,第一传输接收节点101及第二传输接收节点102需要在多个波束上扫描传播,这样,终端如果处于第一传输接收节点101或第二传输接收节点102的覆盖范围下,并不确定能够在哪一个波束上接收到信息,因此需要较长时间去定位最佳接收波束。根据相关技术,终端从节电状态下接收寻呼消息,首先要进行下行同步,寻找同步突发集(SS burst set),这同样终端又需要较长时间去定位最佳接收波束。为了解决终端多次定位最佳接收波束的问题,有技术表明可以将寻呼信息和同步周期复用在一起。也就是说终端只要定位一次最佳接收波束就可以接收寻呼消息了。但是这样带来一个问题,终端不知道该用什么样的参数来计算寻呼时刻(PF和/或PO)。这是因为TRP的同步周期是可以是5毫秒到100毫秒,也就是采用这种技术的寻呼 周期为5毫秒到100毫秒才有一次机会。而根据相关技术,寻呼周期可以是非连续周期中可能任何一个子帧中的寻呼时刻。因此当终端进入支持波束扫描的第一传输接收点101或第二传输接收点102覆盖范围内,按照相关技术来寻址寻呼位置,有可能会错过寻呼消息。
参照图2所示,为本公开第一实施例的寻呼消息发送方法流程图,所述寻呼消息发送方法,包括:
步骤201,获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;
步骤202,接收到核心网元发来的寻呼消息后,根据所述至少一种对应关系获得寻呼消息发送时期,并在该寻呼消息发送时期发送寻呼消息给终端。
网络侧提供如下至少一种对应关系:频率和寻呼间隔的对应关系,TRP标识和寻呼间隔的对应关系,TRP寻呼标识和寻呼间隔的对应关系;所述对应关系预先配置好,然后配置给终端。
在本实施例中,所述寻呼消息发送时期,包括:寻呼子帧或者连续多个无线子帧;所述根据至少一种对应关系获取寻呼消息发送时期,包括:根据所述至少一种对应关系获得寻呼间隔,根据获得的寻呼间隔获得寻呼消息发送时期。
所述频率为采用波束扫描方式的传输接收节点所在的频率;
所述寻呼间隔为在非连续接收周期内两个寻呼时刻的间隔,所述寻呼间隔为波束扫描同步突发集的周期,比如5ms,10ms,20ms,40ms,80ms,100ms。需要说明的是,此处的寻呼间隔数值为示例性说明,具体应用中还可能为其他的值。
所述频率和寻呼间隔的对应关系是指在TA范围内采用波束扫描方式的TRP所在频率和对应的寻呼周期。通过该对应关系,在获得频率的情况下,可以推断出该频率所使用的寻呼周期。如果TA范围内所有TRP在所有频率上都采用相同的寻呼周期,则只需要配置一个寻呼周期。如果TA范围内所 有TRP的频率采用不同的寻呼周期,则需要为每个频率配置一个对应的寻呼周期。
所述TRP标识可以为TRP站点信息。根据所述站点信息可以区分不同的TRP站点。如果TA范围内所有TRP的寻呼周期都不一样,则需要为每个TRP配对应的寻呼周期。如果TA范围内TRP的寻呼周期一致,则可以只配置一个寻呼周期。
所述TRP寻呼标识为TRP广播的标识寻呼周期的指示信息,该信息可以在TRP中进行广播,例如可以通过同步信息块或无线资源控制(Radio Resource Control,RRC)消息携带。如果每个TA范围内所有TRP的寻呼周期都不一样,则需要为每个TRP配对应的寻呼周期。如果TA范围内TRP的寻呼周期一致,则可以只配置一个寻呼周期。
在本实施例中,步骤201中所述对应关系可以通过以下至少一种方式配置给终端:
1、通过TA内基站的系统广播消息发送给终端;
2、通过TA内TRP的系统广播消息发送给终端;
3、通过基站或TRP的专用消息发送给终端;
4:通过非接入(NAS)层消息发送给终端,例如TA update消息;
5:通过同步信息块发送给终端;
6:通过预配置给终端。
在本实施例中,网络侧计算PF及PO的方法如下:
PF的计算:接收到寻呼消息后,根据如下公式来计算PF:
PF=(非连续接收时间除以(div)寻呼间隔)乘以×(终端标识模(mod)寻呼数量)。
其中非连续接收时间及寻呼数量通过预先配置获得。
PO在所述情况下不再计算和使用。
基于第一实施例的寻呼消息发送方法,相应地,参照图3所示,为本公开第二实施例的寻呼消息接收方法流程图;所述寻呼消息接收方法,包括 以下步骤:
步骤301,获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;
步骤302,根据所述至少一种对应关系获得寻呼消息发送时期;
步骤303,终端在所述寻呼消息发送时期被唤醒并读取寻呼消息。
在本实施例中,步骤301中,所述频率为采用波束扫描方式的传输接收节点所在的频率;所述寻呼间隔为在非连续接收周期内两个可能的寻呼时刻的间隔,所述寻呼间隔为波束扫描同步突发集的周期;所述传输接收节点标识为终端驻留在传输接收节点时获取到的传输接收节点站点信息;所述传输接收节点寻呼标识为传输接收节点广播的标识寻呼周期的指示信息。
在本实施例中,步骤302中所述寻呼消息发送时期,包括:寻呼子帧或者连续多个无线子帧;步骤302中所述根据至少一种对应关系获得寻呼消息发送时期,包括:根据至少一种对应关系获得寻呼间隔,根据获得的寻呼间隔获得寻呼消息发送时期。
在本实施例中,所述根据获得的寻呼间隔获得寻呼消息发送时期,包括:
将非连续接收时间除以寻呼间隔获得第一结果值;
将终端标识对寻呼数量取模获得第二结果值;
将第一结果值与第二结果值相乘获得寻呼消息发送时期;
其中非连续接收时间及寻呼数量通过预先配置获得。
具体来说,在本实施例中,终端侧的处理包括:
获取所述对应关系,是网络配置的如下至少之一:频率和寻呼间隔的对应关系;TRP标识和寻呼间隔的对应关系;TRP寻呼标识和寻呼间隔的对应关系。
获得上述对应关系的至少一种,目的是根据频率获得寻呼间隔,因为终端处于休眠状态会移动,在这种情况下,终端不知道进入到什么样的网 络覆盖,不知道寻呼间隔,而通过本实施例的方法,就可以根据频率获得寻呼间隔。
在本实施例中,步骤302中获得寻呼消息发送时期,通过如下公式:
PF=(非连续接收时间div寻呼间隔)*(终端标识mod寻呼数量)
终端在PF时刻被唤醒并读取寻呼消息。
参照图4所示,为本公开第三实施例的寻呼消息发送方法流程图,在本实施例中,所述寻呼消息发送方法,包括:
步骤401,根据非连续传输周期及用户设备编号获得寻呼消息发送时期;
步骤402,在寻呼消息发送时期同时的同步突发集或者寻呼消息发送时期之后第一个同步突发集中将寻呼消息发送给终端。
在本实施例中,所述方法还包括:
在寻呼消息发送时期之前的同步突发集发送寻呼消息给终端。
具体来说,网络侧的处理包括:
1、获得寻呼消息发送时期即PO,先计算PF=(T div N)*(UE_ID mod N),据PF计算出PO,PO是PF无线帧中的一个子帧。计算过程可以使用现有技术中的PO计算方法。例如使用向下取整函数,floor(UE_ID/N)mod Ns来计算
2、TRP在PO同时的或者PO之后第一个同步突发集中将寻呼消息发送给终端。
可选地,TRP可以在PO之前和之后的同步突发集中都发送寻呼消息。
所述同步突发集按照如下周期广播:(5ms,10ms,20ms,40ms,80ms,100ms)。
与PO同时的同步突发集为PO的无线帧的位置上正好有同步突发集发送。PO之后的第一个同步突发集是指PO的无线帧位置上没有同步突发集,则可以考虑在PO出现的下一次位置,如图6所示,寻呼消息发送时期根据同步突发集的周期和PO的位置确定。
基于第三实施例的寻呼消息发送方法,相应地,参照图5所示,为本公 开第四实施例的寻呼消息接收方法流程图,在本实施例中,所述寻呼消息接收方法,包括:
步骤501,根据非连续传输周期及用户设备编号获得寻呼消息发送时期;
步骤502,当发现处于支持波束扫描的传输接收节点的覆盖范围内时,则终端在寻呼消息发送时期同时的同步突发集或寻呼消息发送时期之后出现的第一个同步突发集中接收寻呼消息。
在本实施例中,所述方法还包括:
终端在寻呼消息发送时期之前的同步突发集接收寻呼消息。
具体来说,终端侧的处理包括:
1、获得寻呼消息发送时期PF,PF=(T div N)*(UE_ID mod N);
PO以公式floor(UE_ID/N)mod Ns计算出PF中的子帧号。
需要说明的是,此处的公式与相关技术相同,即本公开实施例根据相关技术获得寻呼消息发送时期。
2、终端发现处于支持波束扫描的TRP的覆盖范围内时,则在PO同时的同步突发集或PO之后出现的第一个同步突发集中接收寻呼消息。
可选地,终端可以在PF出现的前一个和PF出现后的第一个同步突发集中接收寻呼消息。
可见,本公开第一实施例的寻呼消息发送方法及第二实施例的寻呼消息接收方法需要修改相关技术的获得PF的方法。而本公开第三实施例的寻呼消息发送方法及第四实施例的寻呼消息接收方法复用相关技术的PF的计算,但是仍可以让UE准确接受到寻呼消息。
下面通过具体应用中的实例对本公开技术方案进行示例性说明。
实例一
在本应用实施例中,对支持波束扫描的寻呼方法作进一步详细的说明。请参照图1所示,TA范围内有三个小区。分别是小区1(cell 1),小区2(cell2)和小区3(cell 3)。其中小区2中有一个支持波束扫描系统的第一传输 接收节点101,小区3中有一个支持波束扫描系统的第二传输接收节点102。第一传输接收节点101分别支持两个频率F1和F2,第二传输接收节点102也支持两个频率F1和F2。F1和F2的同步突发集周期不一样,F1采用周期10ms,F2采用周期20ms。
所述方法包括以下步骤:
步骤1:网络侧配置频率和寻呼间隔对应关系,如表1所示;
F1 10ms
F2 20ms
表1
并将所述对应关系通过如下方式之一发送给终端:
1:通过TA内小区的RRC的系统广播消息;
2:通过TA内TRP的RRC系统广播消息;
3:通过RRC的专用消息;
4:通过NAS消息(例如TA update消息);
5:通过同步信息块;
6:通过预配置。
步骤2:当核心网发送寻呼消息到基站时,基站各小区根据非连续传输周期及用户设备编号获得寻呼消息发送时期,并在该发送时期发送寻呼消息;
基站下TRP获得PF,为令PF=(非连续接收时间div寻呼间隔)*(终端标识mod寻呼数量),并在该时刻发送寻呼消息。
步骤3:终端分别在根据非连续传输周期及用户设备编号获得的寻呼消息发送时期,以及PF=(非连续接收时间div寻呼间隔)*(终端标识mod寻呼数量)获得的寻呼消息发送时期醒来,并读取寻呼消息。
如果终端醒来后发现处于小区覆盖范围,而不是支持波束扫描的TRP下,则根据相关技术获取寻呼消息。
如果醒来后发现处于支持波束扫描的TRP下,则根据步骤2中提供的公 式获取寻呼消息。
可见,本应用实例克服了当系统中有波束扫描功能的TRP时终端收不到寻呼的问题。这是因为TRP的同步周期是可以是5毫秒到100毫秒,也就是采用这种技术的寻呼周期为5毫秒到100毫秒才有一次机会。而根据相关技术,寻呼周期可以是非连续周期中可能任何一个子帧中的寻呼时刻。因此当终端进入支持波束扫描的TRP覆盖范围内,按照相关技术来寻址寻呼位置,有可能会错过寻呼消息。而采用本应用实例的方法,可以提高终端获得寻呼消息的准确性。
实例二
参照图6所示,在本实例中,寻呼消息发送方法包括:
网络侧获得寻呼消息发送时期即PF,PF=(T div N)*(UE_ID mod N),根据PF计算出PO,PO是PF无线帧中的一个子帧。计算过程可以使用现有技术中的PO计算方法。例如使用向下取整函数,floor(UE_ID/N)mod Ns来计算。
在PO到来的时刻,如果是支持波束扫描的TRP负责发送寻呼消息,则在该PF时刻的同时或下一个同步突发集周期内发送寻呼消息。
本例中,如果PO为图6中PF位置1,而同步突发集周期为40ms,则TRP应在PF时刻后第一个同步突发集周期发送寻呼消息。
如果PO为图6中PF位置2,而同步突发集周期为40ms,则TRP应在PF同时的同步突发集周期发送寻呼消息。
可选地,如果PF为图6中PO位置1,而同步突发集周期为40ms,则TRP可以在应在PF时刻前后两个同步突发集周期发送寻呼消息。
可选地,如果PO为图6中PF位置2,而同步突发集周期为40ms,则TRP应在PF同时的和前一个同步突发集周期这两个周期内发送寻呼消息。
在本实例中,寻呼消息接收方法,包括:
终端获得寻呼消息发送时期即PF,PF=(T div N)*(UE_ID mod N),
PO以公式floor(UE_ID/N)mod Ns计算出PF中的子帧号。
本实例中,如果PO为图6中PF位置1,而同步突发集周期为40ms,则终 端应在PF时刻后第一个同步突发集周期接收寻呼消息;
如果PO为图6中PF位置2,而同步突发集周期为40ms,则终端应在PF同时的同步突发集周期接收寻呼消息;
可选地,如果PO为图6中PO位置1,而同步突发集周期为40ms,则终端在PF时刻前一个和后一个同步突发集周期接收寻呼消息。
可选地,如果PO为图6中PO位置2,而同步突发集周期为40ms,则终端在PO同时和前一个同步突发集周期这两个周期内接收寻呼消息。
为实现本公开实施例的方法,在一个本公开实施例中,还提供了一种寻呼消息发送装置,包括:
第一处理模块,配置为获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;
第一发送模块,配置为接收到核心网元发来的寻呼消息后,根据所述至少一种对应关系获得寻呼消息发送时期,并在该寻呼消息发送时期发送寻呼消息给终端。
为实现本公开实施例的方法,在一个本公开实施例中,还提供了一种寻呼消息接收装置,包括:
第二处理模块,配置为获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;根据所述至少一种对应关系获得寻呼消息发送时期;
第一接收模块,配置为在所述寻呼消息发送时期唤醒终端并读取寻呼消息。
为实现本公开实施例的方法,在一个本公开实施例中,还提供了一种寻呼消息发送装置,包括:
第三处理模块,配置为根据非连续传输周期及用户设备编号获得寻呼消息发送时期;
第二发送模块,配置为在寻呼消息发送时期同时的同步突发集或者寻 呼消息发送时期之后第一个同步突发集中将寻呼消息发送给终端。
为实现本公开实施例的方法,在一个本公开实施例中,还提供了一种寻呼消息接收装置,包括:
第四处理模块,配置为根据非连续传输周期及用户设备编号获得寻呼消息发送时期;
第二接收模块,配置为当发现终端处于支持波束扫描的传输接收节点的覆盖范围内时,则在寻呼消息发送时期同时的同步突发集或寻呼消息发送时期之后出现的第一个同步突发集中接收寻呼消息。
为实现本公开实施例的方法,在一个本公开实施例中,还提供了一种基站,包括:处理器和存储器,所述存储器存储有计算机可执行指令,所述计算机可执行指令被所述处理器执行时实现如下方法:
获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;接收到核心网元发来的寻呼消息后,根据所述至少一种对应关系获得寻呼消息发送时期,并在该寻呼消息发送时期发送寻呼消息给终端;
或者,所述计算机可执行指令被所述处理器执行时实现如下方法:
根据非连续传输周期及用户设备编号获得寻呼消息发送时期;
在寻呼消息发送时期同时的同步突发集或者寻呼消息发送时期之后第一个同步突发集中将寻呼消息发送给终端。
为实现本公开实施例的方法,在一个本公开实施例中,还提供了一种终端,包括:处理器和存储器,所述存储器存储有计算机可执行指令,所述计算机可执行指令被所述处理器执行时实现如下方法:
获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;根据所述至少一种对应关系获得寻呼消息发送时期;终端在所述寻呼消息发送时期被唤醒并读取寻呼消息;
或者,所述计算机可执行指令被所述处理器执行时实现如下方法:
根据非连续传输周期及用户设备编号获得寻呼消息发送时期;
当发现处于支持波束扫描的传输接收节点的覆盖范围内时,则终端在寻呼消息发送时期同时的同步突发集或寻呼消息发送时期之后出现的第一个同步突发集中接收寻呼消息。
以上关于本公开实施例的寻呼消息发送装置的其他细节可以参照本公开实施例中对于寻呼消息发送方法的描述,而关于本公开实施的寻呼消息接收装置的其他细节可以参照本公开实施例中对于寻呼消息接收方法的描述。
综上所述,基于本公开实施例提供的技术方案,终端可以实现波束扫描系统中的寻呼功能,并且能提高终端获得寻呼消息的准确性,提升了用户的体验。
此外,本申请实施例还提供一种计算机可读存储介质,存储有计算机可执行指令,所述计算机可执行指令被执行时实现上述本公开实施例的方法。
上述计算机可读存储介质,包括若干指令用以使得一台计算机装置(可以是个人计算机,服务器,或者网络装置等)或处理器(Processor)执行本公开各个实施例所述方法的部分步骤。而所述计算机可读存储介质包括:U盘、移动硬盘、只读存储器(ReadOnly Memory,ROM)、随机存取存储器(Random Access Memory,RAM)、磁碟或者光盘等各种可以存储程序代码的介质。
上述本公开实施例序号仅仅为了描述,不代表实施例的优劣。通过以上的实施方式的描述,本领域的技术人员可以清楚地了解到上述实施例方法可借助软件加必需的通用硬件平台的方式来实现,当然也可以通过硬件,但很多情况下前者是更佳的实施方式。基于这样的理解,本公开实施例的技术方案本质上或者说对相关技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储介质(如ROM/RAM、磁碟、光盘)中,包括若干指令用以使得一台终端设备(可以是手机,计算机,服务器,或者网络设备等)执行本公开各个实施例所述的方法。
以上所述仅为本公开的优选实施例而已,并不用于限制本公开,对于 本领域的技术人员来说,本公开可以有各种更改和变化。凡在本公开的精神和原则之内,所作的任何修改、等同替换、改进等,均应包含在本公开的保护范围之内。
工业实用性
本公开实施例提供的方案,终端根据频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系和传输接收节点寻呼标识和寻呼间隔的对应关系中的至少一种对应关系获得寻呼消息发送时期;终端在所述寻呼消息发送时期被唤醒并读取寻呼消息,或者,终端根据非连续传输周期及用户设备编号获得寻呼消息发送时期;当发现处于支持波束扫描的传输接收节点的覆盖范围内时,在寻呼消息发送时期同时的同步突发集或寻呼消息发送时期之后出现的第一个同步突发集中接收寻呼消息,这样,终端可以实现波束扫描系统中的寻呼功能,并且能提高终端获得寻呼消息的准确性,提升了用户的体验。

Claims (16)

  1. 一种寻呼消息发送方法,包括:
    获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;接收到寻呼消息后,根据所述至少一种对应关系获得寻呼消息发送时期,并在该寻呼消息发送时期发送寻呼消息给终端;或者,
    根据非连续传输周期及用户设备编号获得寻呼消息发送时期;寻呼消息发送时期同时的同步突发集或者寻呼消息发送时期之后第一个同步突发集中将寻呼消息发送给终端。
  2. 如权利要求1所述的方法,其中,
    所述频率为采用波束扫描方式的传输接收节点所在的频率;所述寻呼间隔为波束扫描同步突发集的周期;所述传输接收节点标识为传输接收节点站点信息;所述传输接收节点寻呼标识为传输接收节点广播的标识寻呼周期的指示信息。
  3. 如权利要求1所述的方法,其中,
    所述寻呼消息发送时期,包括:寻呼子帧或者连续多个无线子帧;所述根据至少一种对应关系获取寻呼消息发送时期,包括:根据所述至少一种对应关系获得寻呼间隔,根据获得的寻呼间隔获得寻呼消息发送时期。
  4. 如权利要求3所述的方法,其中,所述根据获得的寻呼间隔获得寻呼消息发送时期,包括:
    将非连续接收时间除以寻呼间隔获得第一结果值;
    将终端标识对寻呼数量取模获得第二结果值;
    将第一结果值与第二结果值相乘获得寻呼消息发送时期;
    其中非连续接收时间及寻呼数量通过预先配置获得。
  5. 如权利要求1所述的方法,其中,当根据所述至少一种对应关系获得寻呼消息发送时期,所述方法还包括:将所述至少一种对应关系通过以下方法中的至少一种配置给终端:
    通过跟踪区内基站的系统广播消息发送给终端、通过跟踪区内传输接收节点的系统广播消息发送给终端、通过基站或传输接收节点的专用消息发送给终端、通过非接入层消息发送给终端、通过同步信息块发送给终端、通过预配置给终端。
  6. 如权利要求1所述的方法,其中,当根据非连续传输周期及用户设备编号获得寻呼消息发送时期,所述方法还包括:
    在寻呼消息发送时期之前的同步突发集发送寻呼消息给终端。
  7. 一种寻呼消息接收方法,包括:
    获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;根据所述至少一种对应关系获得寻呼消息发送时期;终端在所述寻呼消息发送时期被唤醒并读取寻呼消息;
    或者,
    根据非连续传输周期及用户设备编号获得寻呼消息发送时期;当发现处于支持波束扫描的传输接收节点的覆盖范围内时,则终端在寻呼消息发送时期同时的同步突发集或寻呼消息发送时期之后出现的第一个同步突发集中接收寻呼消息。
  8. 如权利要求7所述的方法,其中,
    所述频率为采用波束扫描方式的传输接收节点所在的频率;所述寻呼间隔为波束扫描同步突发集的周期;所述传输接收节点标识为终端驻留在传输接收节点时获取到的传输接收节点站点信息;所述传输接收节点寻呼标识为传输接收节点广播的标识寻呼周期的指示信息。
  9. 如权利要求8所述的方法,其中,
    所述寻呼消息发送时期,包括:寻呼子帧或者连续多个无线子帧;所 述根据至少一种对应关系获得寻呼消息发送时期,包括:根据至少一种对应关系获得寻呼间隔,根据获得的寻呼间隔获得寻呼消息发送时期。
  10. 如权利要求9所述的方法,其中,所述根据获得的寻呼间隔获得寻呼消息发送时期,包括:
    将非连续接收时间除以寻呼间隔获得第一结果值;
    将终端标识对寻呼数量取模获得第二结果值;
    将第一结果值与第二结果值相乘获得寻呼消息发送时期;
    其中非连续接收时间及寻呼数量通过预先配置获得。
  11. 如权利要求7所述的方法,其中,当根据非连续传输周期及用户设备编号获得寻呼消息发送时期,所述方法还包括:
    终端在寻呼消息发送时期之前的同步突发集接收寻呼消息。
  12. 一种寻呼消息发送装置,包括:
    第一处理模块,配置为获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;第一发送模块,配置为接收到寻呼消息后,根据所述至少一种对应关系获得寻呼消息发送时期,并在该寻呼消息发送时期发送寻呼消息给终端;
    或者,包括:
    第三处理模块,配置为根据非连续传输周期及用户设备编号获得寻呼消息发送时期;第二发送模块,配置为在寻呼消息发送时期同时的同步突发集或者寻呼消息发送时期之后第一个同步突发集中将寻呼消息发送给终端。
  13. 一种寻呼消息接收装置,包括:
    第二处理模块,配置为获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;根据所述至少一种对应关 系获得寻呼消息发送时期;第一接收模块,配置为在所述寻呼消息发送时期唤醒终端并读取寻呼消息;
    或者,包括:
    第四处理模块,配置为根据非连续传输周期及用户设备编号获得寻呼消息发送时期;第二接收模块,配置为当发现终端处于支持波束扫描的传输接收节点的覆盖范围内时,则在寻呼消息发送时期同时的同步突发集或寻呼消息发送时期之后出现的第一个同步突发集中接收寻呼消息。
  14. 一种基站,包括:处理器和存储器,所述存储器存储有计算机可执行指令,所述计算机可执行指令被所述处理器执行时实现如下方法:
    获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;接收到寻呼消息后,根据所述至少一种对应关系获得寻呼消息发送时期,并在该寻呼消息发送时期发送寻呼消息给终端;
    或者,所述计算机可执行指令被所述处理器执行时实现如下方法:
    根据非连续传输周期及用户设备编号获得寻呼消息发送时期;在寻呼消息发送时期同时的同步突发集或者寻呼消息发送时期之后第一个同步突发集中将寻呼消息发送给终端。
  15. 一种终端,包括:处理器和存储器,所述存储器存储有计算机可执行指令,所述计算机可执行指令被所述处理器执行时实现如下方法:
    获取以下三种对应关系中的至少一种对应关系:频率和寻呼间隔的对应关系、传输接收节点标识和寻呼间隔的对应关系、传输接收节点寻呼标识和寻呼间隔的对应关系;根据所述至少一种对应关系获得寻呼消息发送时期;终端在所述寻呼消息发送时期被唤醒并读取寻呼消息;
    或者,所述计算机可执行指令被所述处理器执行时实现如下方法:
    根据非连续传输周期及用户设备编号获得寻呼消息发送时期;当发现处于支持波束扫描的传输接收节点的覆盖范围内时,则终端在寻呼消息发送时期同时的同步突发集或寻呼消息发送时期之后出现的第一个同步突发集中接收寻呼消息。
  16. 一种计算机可读存储介质,存储有计算机可执行指令,所述计算机可执行指令被执行时实现权利要求1至6任一项所述方法的步骤,或者实现权利要求7至11任一项所述方法的步骤。
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