WO2019104507A1 - 网络配置方法、网络测量方法及装置 - Google Patents

网络配置方法、网络测量方法及装置 Download PDF

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Publication number
WO2019104507A1
WO2019104507A1 PCT/CN2017/113487 CN2017113487W WO2019104507A1 WO 2019104507 A1 WO2019104507 A1 WO 2019104507A1 CN 2017113487 W CN2017113487 W CN 2017113487W WO 2019104507 A1 WO2019104507 A1 WO 2019104507A1
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WIPO (PCT)
Prior art keywords
speed
cell
speed threshold
lte network
user equipment
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Application number
PCT/CN2017/113487
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English (en)
French (fr)
Inventor
洪伟
Original Assignee
北京小米移动软件有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 北京小米移动软件有限公司 filed Critical 北京小米移动软件有限公司
Priority to ES17933286T priority Critical patent/ES2940678T3/es
Priority to PCT/CN2017/113487 priority patent/WO2019104507A1/zh
Priority to CN201780003597.7A priority patent/CN110100478B/zh
Priority to EP17933286.1A priority patent/EP3706469B1/en
Priority to CN202210280354.0A priority patent/CN114531715B/zh
Publication of WO2019104507A1 publication Critical patent/WO2019104507A1/zh
Priority to US16/875,638 priority patent/US20200280900A1/en

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/24Reselection being triggered by specific parameters
    • H04W36/32Reselection being triggered by specific parameters by location or mobility data, e.g. speed data
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/0005Control or signalling for completing the hand-off
    • H04W36/0055Transmission or use of information for re-establishing the radio link
    • H04W36/0058Transmission of hand-off measurement information, e.g. measurement reports
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/0005Control or signalling for completing the hand-off
    • H04W36/0083Determination of parameters used for hand-off, e.g. generation or modification of neighbour cell lists
    • H04W36/0085Hand-off measurements
    • H04W36/0088Scheduling hand-off measurements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W74/00Wireless channel access
    • H04W74/08Non-scheduled access, e.g. ALOHA
    • H04W74/0833Random access procedures, e.g. with 4-step access
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/20Manipulation of established connections
    • H04W76/27Transitions between radio resource control [RRC] states
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W84/00Network topologies
    • H04W84/005Moving wireless networks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W92/00Interfaces specially adapted for wireless communication networks
    • H04W92/16Interfaces between hierarchically similar devices
    • H04W92/20Interfaces between hierarchically similar devices between access points
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/14Reselecting a network or an air interface
    • H04W36/142Reselecting a network or an air interface over the same radio air interface technology
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/24Reselection being triggered by specific parameters
    • H04W36/32Reselection being triggered by specific parameters by location or mobility data, e.g. speed data
    • H04W36/324Reselection being triggered by specific parameters by location or mobility data, e.g. speed data by mobility data, e.g. speed data

Definitions

  • the present invention relates to the field of communications technologies, and in particular, to a network configuration method, a network measurement method, and a device.
  • Embodiments of the present invention provide a network configuration method and apparatus.
  • the technical solution is as follows:
  • a network configuration method is provided, which is applied to a base station of a high-speed rail private network, including:
  • Radio resource control connection reconfiguration signaling carries a preset first speed threshold; the first speed threshold is used to indicate that the user equipment is at speed When the first speed threshold is lower than the first speed threshold, the cell measurement is performed on the cells of the adjacent public long term evolution LTE network.
  • the base station of the high-speed rail private network in this embodiment may configure the first speed threshold for the user equipment, so that the user equipment is lower than the first speed threshold.
  • Cell measurement is performed on cells of an adjacent public LTE network, and handover to a cell of a public LTE network may occur.
  • the handover to the cell of the public LTE network during the low-speed mobile process is implemented, and the handover to the cell of the public LTE network during the high-speed mobile process is reduced, thereby improving the success rate of the handover from the cell of the high-speed rail private network to the cell of the public LTE network.
  • the RRC connection reconfiguration signaling further carries a preset second speed threshold; the second speed threshold is used to indicate that the user equipment is at a higher speed than the second speed gate In the case of the limit, the cell measurement is not performed on the cells of the adjacent public long term evolution LTE network; wherein the second speed threshold is not lower than the first speed threshold.
  • the base station of the high-speed rail private network in this embodiment may further configure a second speed threshold for the user equipment, so that when the user equipment is higher than the second speed threshold, Cell measurement to a cell of a neighboring public LTE network is not performed, and handover to a cell of a public LTE network is unlikely.
  • the cell that does not switch to the public LTE network during high-speed mobility is realized, thereby improving the success rate of cell handover.
  • the RRC connection reconfiguration signaling further carries related information of the first cell of the adjacent public long term evolution LTE network, and is used to indicate that the user equipment is lower than the first speed threshold. And performing cell measurement on the first cell according to the related information.
  • the base station of the high-speed rail private network in this embodiment may also configure the first cell of the adjacent public LTE network for the user equipment, and the configured adjacent first cell may be configured. It is a part of the cells of all the adjacent public LTE networks, that is, the user equipment does not need to perform cell measurement on the cells of all the adjacent public LTE networks, which can save device power consumption.
  • the neighboring first cell configured by the base station of the high-speed rail private network is generally a cell with a relatively high handover success rate, so that the success rate of the handover can be improved while reducing the number of adjacent cells that can be switched.
  • the related information of the first cell is obtained in advance by:
  • the X2 communication message is used to communicate with the base station of the adjacent public LTE network, and the related information of the first cell of the adjacent public LTE network is obtained.
  • the technical solution provided by the embodiment of the present invention may include the following beneficial effects: in the embodiment, the base station of the high-speed rail private network and the base station of the public LTE network can learn the network to which the peer base station belongs in a plurality of manners, so as to configure the information.
  • the user equipment is convenient for the user equipment to perform cell measurement and cell handover.
  • a network measurement method is provided, which is applied to a user equipment, and a cell that has accessed a high-speed private network, including:
  • the cell measurement is performed on the cells of the adjacent public long term evolution LTE network.
  • the method further includes:
  • the cell measurement of the cell of the adjacent public long-term evolution LTE network is not performed; wherein the second speed threshold is not lower than The first speed threshold is described.
  • the performing cell measurement on a cell of a neighboring public long term evolution LTE network includes:
  • the first speed threshold, and/or the second speed threshold, and/or related information of a first cell of an adjacent public LTE network are obtained by: :
  • the radio resource control connection reconfiguration signaling carries a preset first speed threshold, and/or the second speed threshold And/or related information of the first cell of the adjacent public LTE network.
  • a network configuration apparatus for a base station of a high-speed rail private network, including:
  • a receiving module configured to receive a random access request sent by the user equipment
  • a sending module configured to send a radio resource control connection reconfiguration signaling to the user equipment, where the radio resource control connection reconfiguration signaling carries a preset first speed threshold; the first speed threshold is used for Instructing the user equipment to perform cell measurement on a cell of a neighboring public long term evolution LTE network when the speed is lower than the first speed threshold.
  • the RRC connection reconfiguration signaling further carries a preset second speed threshold; the second speed threshold is used to indicate that the user equipment is at a higher speed than the second speed gate In the case of the limit, the cell measurement is not performed on the cells of the adjacent public long term evolution LTE network; wherein the second speed threshold is not lower than the first speed threshold.
  • the RRC connection reconfiguration signaling further carries related information of the first cell of the adjacent public long term evolution LTE network, and is used to indicate that the user equipment is lower than the first speed threshold. And performing cell measurement on the first cell according to the related information.
  • the device further includes: a configuration module, a first X2 interface module, or a second X2 interface module;
  • a configuration module configured to configure a first cell of a neighboring public LTE network in a base station of the high-speed rail private network when the base station of the high-speed private network is initially established, or when the base station of the public LTE network is initially established
  • a configuration module configured to configure a first cell of a neighboring public LTE network in a base station of the high-speed rail private network when the base station of the high-speed private network is initially established, or when the base station of the public LTE network is initially established
  • a first X2 interface module configured to acquire, by using an X2 communication message, information about a first cell of a neighboring public LTE network when initially establishing an X2 interface connection with a base station of a neighboring public LTE network;
  • the second X2 interface module is configured to, when receiving the random access request of the user equipment for the first time, communicate with the base station of the adjacent public LTE network through the X2 communication message, and acquire the correlation of the first cell of the adjacent public LTE network. information.
  • a network measurement apparatus which is applied to a user equipment and has access to a cell of a high-speed private network, including:
  • a monitoring module for monitoring the speed of movement of the user
  • a measuring module configured to perform cell measurement on a cell of the adjacent public long term evolution LTE network when the monitored moving speed is lower than the pre-configured first speed threshold.
  • the apparatus further includes:
  • a screening module configured to perform cell measurement on a cell of an adjacent public long term evolution LTE network when the monitored moving speed is higher than a pre-configured second speed threshold; wherein the second speed threshold The value is not lower than the first speed threshold.
  • the measurement module comprises:
  • a measurement submodule configured to perform cell measurement on the first cell according to related information of a first cell of a pre-configured neighboring public LTE network.
  • the apparatus further includes:
  • a sending module configured to send a random access request to a base station of the high speed private network
  • a receiving module configured to receive radio resource control connection reconfiguration signaling fed back by a base station of the high speed private network, where the radio resource control connection reconfiguration signaling carries a preset first speed threshold, and/or the A second speed threshold, and/or information about a first cell of an adjacent public LTE network.
  • a network configuration apparatus including:
  • a memory for storing processor executable instructions
  • processor is configured to:
  • Radio resource control connection reconfiguration signaling carries a preset first speed threshold; the first speed threshold is used to indicate that the user equipment is at speed When the first speed threshold is lower than the first speed threshold, the cell measurement is performed on the cells of the adjacent public long term evolution LTE network.
  • a network measurement apparatus including:
  • a memory for storing processor executable instructions
  • processor is configured to:
  • the cell measurement is performed on the cells of the adjacent public long term evolution LTE network.
  • a computer readable storage medium having stored thereon computer instructions for performing the above network configuration when executed by a processor.
  • a computer readable storage medium having stored thereon computer instructions, wherein the instructions are implemented by the processor to implement the network measurement method.
  • FIG. 1 is a flowchart of a network configuration method according to an exemplary embodiment.
  • FIG. 2 is a flowchart of a network measurement method according to an exemplary embodiment.
  • FIG. 3 is a flowchart of a network measurement method according to a specific embodiment.
  • FIG. 4 is a flowchart of a method for random access and cell measurement according to an exemplary embodiment.
  • FIG. 5 is a block diagram of a network configuration apparatus according to a specific embodiment 1.
  • FIG. 6 is a block diagram of a network configuration apparatus according to a specific embodiment.
  • FIG. 7 is a block diagram of a network configuration apparatus according to an exemplary embodiment.
  • FIG. 8 is a block diagram of a network configuration apparatus according to a specific embodiment.
  • FIG. 9 is a block diagram of a network measurement apparatus according to a specific embodiment.
  • FIG. 10 is a block diagram of a network measurement apparatus according to an exemplary embodiment.
  • FIG. 11 is a block diagram of a network measuring apparatus according to a second embodiment.
  • FIG. 12 is a block diagram of a network measurement apparatus according to an exemplary embodiment.
  • FIG. 13 is a block diagram suitable for a user equipment, according to an exemplary embodiment.
  • FIG. 14 is a block diagram suitable for a base station, according to an exemplary embodiment.
  • the industry in order to adapt to the smooth communication during high-speed driving, the industry has designed a high-speed rail dedicated network. In the same location, it may be covered by both the high-speed rail private network and the public LTE network. This involves the user equipment switching between the high-speed rail private network and the public LTE network.
  • the success rate of user equipment (UE) switching from the high-speed rail private network to the public LTE network is relatively low. If the handover fails, the user equipment may be Communication is interrupted, affecting the normal communication of the user.
  • the base station configures a speed threshold for the user equipment, and when the moving speed of the user equipment falls below the speed threshold, the user equipment performs a cell on the cell of the adjacent public LTE network. Measurement, when the measurement result satisfies the condition of handover, the user equipment can switch from the cell of the high-speed rail private network to the cell of the public LTE network. At this time, the moving speed of the user equipment is relatively low, and the success rate of the cell switching is relatively high, so that the communication of the user equipment can be ensured smoothly.
  • the user equipment may not perform cell measurement on the cells of the adjacent public LTE network, and the user equipment may not switch to the cell of the public LTE network. At this time, the user equipment is more likely to switch between cells in the high-speed rail private network, and may have a higher handover success rate.
  • FIG. 1 is a flowchart of a network configuration method for a base station of a high-speed rail private network, according to an exemplary embodiment. As shown in FIG. 1, the method includes the following steps 101-102.
  • step 101 a random access request sent by the user equipment is received.
  • the radio resource control connection reconfiguration signaling is sent to the user equipment, where the radio resource control connection reconfiguration signaling carries a preset first speed threshold; the first speed threshold is used for Instructing the user equipment to perform cell measurement on a cell of a neighboring public long term evolution LTE network when the speed is lower than the first speed threshold.
  • This embodiment provides a new radio resource control connection reconfiguration signaling message format, and adds new information of the first speed threshold to the radio resource control connection reconfiguration signaling.
  • the function of the first speed threshold is to indicate that the user equipment performs cell measurement on a cell of a neighboring public long term evolution LTE network when the speed is lower than the first speed threshold. It is helpful for the user equipment to switch to the cell of the public long-term evolution LTE network when the mobile device moves at a low speed, and the success rate of the handover is improved; when the high-speed mobile does not occur, the handover to the cell of the public long-term evolution LTE network does not occur, More switching between cells in the high-speed rail private network improves the success rate of handover.
  • the RRC connection reconfiguration signaling further carries a preset second speed threshold; the second speed threshold is used to indicate that the user equipment is at a higher speed than the second speed gate When the limit is not, the adjacent public long-term The cell of the evolved LTE network performs cell measurement; wherein the second speed threshold is not lower than the first speed threshold.
  • This embodiment provides a new radio resource control connection reconfiguration signaling message format, and adds new information of the second speed threshold value to the radio resource control connection reconfiguration signaling.
  • the second speed threshold is used to indicate that the user equipment does not perform cell measurement on the cells of the adjacent public long term evolution LTE network when the speed is higher than the second speed threshold.
  • the first speed threshold is about 60 kilometers per hour.
  • the second speed threshold is about 80 km/h.
  • the second speed threshold is higher than the first speed threshold, the user equipment may be frequently switched between performing cell measurement and non-measurement on the cells of the adjacent public long-term evolution LTE network, and the equipment of the user equipment may be reduced. Power consumption.
  • the moving speed of the user equipment changes from high to low, the first speed threshold is referred to; when changing from low to high, the second speed threshold is referred to.
  • the second speed threshold may not be referred to, and there is no need to perform cell measurement on the cells of the adjacent public long term evolution LTE network.
  • the moving speed of the user equipment decreases below the first speed threshold, the moving speed increases, but when it does not rise to the second speed threshold, the cell measurement of the cells of the adjacent public long term evolution LTE network may be performed.
  • the RRC connection reconfiguration signaling further carries related information of the first cell of the adjacent public long term evolution LTE network, and is used to indicate that the user equipment is lower than the first speed threshold. And performing cell measurement on the first cell according to the related information.
  • the embodiment provides a format of a new radio resource control connection reconfiguration signaling message, and the related information of the first cell of the adjacent public LTE network is added in the radio resource control connection reconfiguration signaling.
  • the function of the related information of the first cell is to indicate that the user equipment performs cell measurement on the first cell according to the related information when the speed is lower than the first speed threshold.
  • the first cell may be a cell or a plurality of cells.
  • the cell indicating the adjacent public LTE network that the user equipment can measure is referred to as a first cell.
  • the first cell may be a partial cell in a cell of an adjacent public LTE network. That is to say, the user equipment can perform cell measurement on all cells of the adjacent public LTE network, and reduce device power consumption.
  • the first cell indicated by the radio resource control connection reconfiguration signaling may be a neighboring cell with a higher handover success rate, thus improving the success rate of the handover.
  • the related information of the first cell is information such as a cell identifier.
  • the related information of the first cell is obtained in advance by means of mode A1, mode A2 or mode A3.
  • Mode A1 configuring the first cell of the adjacent public LTE network in the base station of the high-speed private network when the base station of the high-speed private network is initially established, or when the base station of the public LTE network is initially established. information.
  • the technician when the base station of the high-speed rail private network is initially established, the technician configures the related information of the first cell of the adjacent public LTE network in the base station of the high-speed rail private network.
  • the technician can send a command to the base station of the high-speed rail private network through the control device, and the command is used to configure related information of the first cell of the adjacent public LTE network.
  • the technician when initially establishing a base station of the public LTE network, the technician increases the related information of the first cell covered by the base station of the public LTE network in the base station of the high-speed rail private network.
  • Mode A2 When an X2 interface connection is initially established with a base station of an adjacent public LTE network, the message is obtained through an X2 communication message. The related information of the first cell of the adjacent public LTE network is taken.
  • the base station of the high-speed rail private network is initialized, including initially establishing an X2 interface connection.
  • the base station of the high-speed rail private network transmits an X2SET REQUEST (X2 Setup Request) to the base station of the adjacent public LTE network through the X2 interface (a communication interface between the base stations).
  • the base station of the adjacent public LTE network feeds back X2SET RESPONSE (X2 Setup Response) to the base station of the high-speed rail private network, and the X2SET RESPONSE message carries information about the first cell covered by the local base station.
  • initializing the base station of the public LTE network including initially establishing an X2 interface connection.
  • the base station of the public LTE network sends an X2SET REQUEST to the base station of the adjacent high-speed rail private network through the X2 interface, where the X2SET REQUEST message carries information about the first cell covered by the local base station.
  • Mode A3 When receiving the random access request of the user equipment for the first time, the X2 communication message is used to communicate with the base station of the adjacent public LTE network, and the related information of the first cell of the adjacent public LTE network is obtained.
  • the base station of the high-speed rail private network receives the random access request of the user equipment for the first time after the establishment, that is, the local configuration information is not found, and the configuration information about the related information of the first cell of the adjacent public LTE network is not found.
  • the X2 communication message is sent to the base station of the adjacent public LTE network through the X2 interface, and the related information of the first cell of the adjacent public LTE network is obtained.
  • the above three methods may also be used in combination, that is, the related information of the first cell may be acquired at different time nodes.
  • the user equipment may perform cell measurement on the neighboring cell periodically or according to the indication of the base station of the high-speed rail private network.
  • the measurement report is sent to the base station of the high-speed rail private network.
  • the base station of the high-speed rail private network determines whether the user equipment needs to switch to the neighboring cell according to the received measurement report, and if it is determined that the handover is required, initiates a handover procedure.
  • the base station of the adjacent public LTE network determines whether the handover request is from the high-speed rail private network, and if so, preferentially handles the handover of the user equipment from the high-speed rail private network. For example, a handover request of at least two user equipments is received in a very short time (eg, about 100 milliseconds). If one user equipment belongs to a high-speed rail private network and another equipment belongs to a public LTE network, priority is given to a high-speed rail dedicated network. User equipment switching request.
  • the network configuration method on the base station side is described above.
  • the network measurement method on the user equipment side is described below.
  • FIG. 2 is a flowchart of a network measurement method, which is used in a user equipment, such as a mobile phone, etc., according to an exemplary embodiment. As shown in FIG. 2, the method includes the following steps 201-202.
  • the user equipment has access to a cell of a high speed private network.
  • step 201 the speed of movement of itself is monitored.
  • step 202 when the monitored moving speed is lower than the pre-configured first speed threshold, the cell measurement is performed on the cells of the adjacent public long term evolution LTE network.
  • the user equipment can monitor the moving speed in real time, and can also periodically monitor the moving speed.
  • the manner in which the user equipment monitors the speed of movement can be configured by the home base station.
  • the moving speed is lower than the first speed threshold
  • cell measurement is performed on cells of the adjacent public LTE network.
  • the moving speed is not lower than the first speed threshold, cell measurement may not be performed on cells of the adjacent public LTE network. Reduces the energy consumption of the device during measurement.
  • the user equipment performs cell measurement on the cells of the adjacent public LTE network at a lower moving speed, that is, the user equipment is moving at a lower level. Cell switching may occur at dynamic speed, which improves the success rate of cell handover.
  • the method further comprises: step A.
  • step A when the monitored moving speed is higher than the pre-configured second speed threshold, cell measurement is not performed on cells of the adjacent public long term evolution LTE network; wherein the second speed threshold The value is not lower than the first speed threshold.
  • the first speed threshold is about 60 kilometers per hour.
  • the second speed threshold is about 80 km/h.
  • the second speed threshold is higher than the first speed threshold, the user equipment may be frequently switched between performing cell measurement and non-measurement on the cells of the adjacent public long-term evolution LTE network, and the equipment of the user equipment may be reduced. Power consumption.
  • the moving speed of the user equipment changes from high to low, the first speed threshold is referred to; when changing from low to high, the second speed threshold is referred to.
  • the second speed threshold may not be referred to, and there is no need to perform cell measurement on the cells of the adjacent public long term evolution LTE network.
  • the moving speed of the user equipment decreases below the first speed threshold, the moving speed increases, but when it does not rise to the second speed threshold, the cell measurement of the cells of the adjacent public long term evolution LTE network may be performed.
  • the step 202 includes: step B.
  • step B cell measurement is performed on the first cell according to related information of a first cell of a pre-configured neighboring public LTE network.
  • the user equipment may perform cell measurement on all cells of the adjacent public LTE network, and may perform cell measurement only on the cells of the neighboring public LTE network according to the configuration, thereby reducing device power consumption during cell measurement.
  • the first cell of the configured adjacent public LTE network may be a neighboring cell with a higher handover success rate, and the success rate of the handover may be improved.
  • the first speed threshold, and/or the second speed threshold, and/or related information of a first cell of an adjacent public LTE network are obtained by: :
  • a random access request is sent to a base station of the high speed private network.
  • the radio resource control connection reconfiguration signaling carries a preset first speed threshold, and/or the second speed threshold And/or related information of the first cell of the adjacent public LTE network.
  • the embodiment provides a new format of radio resource control connection reconfiguration signaling, and adds a first speed threshold, a second speed threshold, and a first cell in the radio resource control connection reconfiguration signaling.
  • Related Information The user equipment can parse the new format of the radio resource control connection reconfiguration signaling to obtain the above information.
  • the user equipment can also send measurement reports to the base stations of the high speed private network.
  • the base station of the high-speed private network determines whether a cell handover is required according to the received measurement report, and if necessary, initiates a handover procedure.
  • FIG. 3 is a flowchart of a network measurement method, which is used in a user equipment, such as a mobile phone, etc., according to an exemplary embodiment. As shown in FIG. 3, the method includes the following steps 301-307.
  • the user equipment has access to a cell of a high speed private network.
  • step 301 the speed of movement of itself is monitored.
  • step 302 it is determined whether the moving speed is lower than the pre-configured first speed threshold; when the monitored moving speed is lower than the pre-configured first speed threshold, proceeding to step 304; When the moving speed is not lower than the pre-configured first speed threshold, proceed to step 303.
  • step 303 cell measurements are performed on cells of adjacent high speed private networks.
  • step 304 cell measurement is performed on the first cell according to related information of a first cell of a pre-configured neighboring public LTE network. And performing cell measurement on the cells of the adjacent high-speed private network.
  • step 305 continue to monitor its own moving speed, determine whether the moving speed is higher than the pre-configured second speed threshold; when the monitored moving speed is higher than the pre-configured second speed threshold, continue Step 306: When the monitored moving speed is not higher than the pre-configured second speed threshold, proceed to step 307.
  • step 306 cell measurements are performed on cells of adjacent high speed private networks.
  • step 307 cell measurement is performed on the first cell according to related information of a first cell of a pre-configured neighboring public LTE network. And performing cell measurement on the cells of the adjacent high-speed private network.
  • FIG. 4 is a flowchart of a method for random access and cell measurement, which is used in a base station and a user equipment, according to an exemplary embodiment. As shown in FIG. 4, the method includes the following steps 401-407.
  • step 401 the user equipment sends a random access request to the base station of the high speed private network.
  • step 402 the base station of the high-speed private network sends radio resource control connection reconfiguration signaling to the user equipment, where the radio resource control connection reconfiguration signaling carries a preset first speed threshold.
  • step 403 the user equipment monitors its own speed of movement.
  • step 404 the user equipment performs cell measurement on the cells of the adjacent public LTE network when the monitored moving speed is lower than the pre-configured first speed threshold.
  • Cell measurements can also be made to cells of adjacent high speed private networks.
  • step 405 the user equipment sends a measurement report to the base station of the high speed private network.
  • step 406 the base station of the high speed private network performs processing requiring cell handover based on the received measurement report.
  • FIG. 5 is a block diagram of a network configuration apparatus, which may be implemented as part or all of an electronic device by software, hardware, or a combination of both, according to an exemplary embodiment.
  • the network configuration apparatus includes a receiving module 501 and a sending module 502; wherein:
  • the receiving module 501 is configured to receive a random access request sent by the user equipment.
  • the sending module 502 is configured to send a radio resource control connection reconfiguration signaling to the user equipment, where the radio resource control connection reconfiguration signaling carries a preset first speed threshold; the first speed threshold is used by the sending And indicating to the user equipment that the cell measurement of the cell of the adjacent public long term evolution LTE network is performed when the speed is lower than the first speed threshold.
  • the RRC connection reconfiguration signaling further carries a preset second speed threshold; the second speed threshold is used to indicate that the user equipment is at a higher speed than the second speed gate When the limit is not, the adjacent public long-term The cell of the evolved LTE network performs cell measurement; wherein the second speed threshold is not lower than the first speed threshold.
  • the RRC connection reconfiguration signaling further carries related information of the first cell of the adjacent public long term evolution LTE network, and is used to indicate that the user equipment is lower than the first speed threshold. And performing cell measurement on the first cell according to the related information.
  • the device further includes: a configuration module 601, a first X2 interface module 602, or a second X2 interface module 603.
  • the configuration module 601 is configured to configure, in an initial setup of the base station of the high-speed private network, or in the initial establishment of the base station of the public LTE network, configure the first of the adjacent public LTE networks in the base station of the high-speed private network. Information about the community.
  • the first X2 interface module 602 is configured to acquire related information of the first cell of the adjacent public LTE network by using an X2 communication message when initially establishing an X2 interface connection with a base station of the adjacent public LTE network.
  • the second X2 interface module 603 is configured to: when receiving the random access request of the user equipment for the first time, communicate with the base station of the adjacent public LTE network by using an X2 communication message, and acquire the first cell of the adjacent public LTE network. Related Information.
  • FIG. 9 is a block diagram of a network measurement device, which may be implemented as part or all of an electronic device by software, hardware, or a combination of both, according to an exemplary embodiment.
  • the network measuring device includes a monitoring module 901 and a measuring module 902; wherein:
  • the monitoring module 901 is configured to monitor its own moving speed.
  • the measuring module 902 is configured to perform cell measurement on a cell of a neighboring public long term evolution LTE network when the monitored moving speed is lower than a pre-configured first speed threshold.
  • the apparatus further includes: a shielding module 1001.
  • the screening module 1001 is configured to perform cell measurement on a cell of an adjacent public long-term evolution LTE network when the monitored moving speed is higher than a pre-configured second speed threshold; wherein the second speed gate The limit is not lower than the first speed threshold.
  • the measurement module 902 includes a measurement sub-module 1101.
  • the measurement sub-module 1101 is configured to perform cell measurement on the first cell according to related information of a first cell of a pre-configured neighboring public LTE network.
  • the apparatus further includes: a sending module 1201 and a receiving module 1202.
  • the sending module 1201 is configured to send a random access request to a base station of the high speed private network.
  • the receiving module 1202 is configured to receive radio resource control connection reconfiguration signaling fed back by the base station of the high speed private network, where the radio resource control connection reconfiguration signaling carries a preset first speed threshold, and/or the a second speed threshold, and/or related information of a first cell of an adjacent public LTE network.
  • FIG. 13 is a block diagram of an apparatus for network configuration, according to an exemplary embodiment.
  • the device 1300 can be a mobile phone, a computer, a digital broadcast terminal, a messaging device, a game console, a tablet device, a medical device. Equipment, fitness equipment, personal digital assistants, etc.
  • Apparatus 1300 can include one or more of the following components: processing component 1302, memory 1304, power component 1306, multimedia component 1308, audio component 1310, input/output (I/O) interface 1313, sensor component 1314, and communication component 1316 .
  • Processing component 1302 typically controls the overall operation of device 1300, such as operations associated with display, telephone calls, data communications, camera operations, and recording operations.
  • Processing component 1302 can include one or more processors 1320 to execute instructions to perform all or part of the steps of the above described methods.
  • processing component 1302 can include one or more modules to facilitate interaction between component 1302 and other components.
  • processing component 1302 can include a multimedia module to facilitate interaction between multimedia component 1308 and processing component 1302.
  • Memory 1304 is configured to store various types of data to support operation at device 1300. Examples of such data include instructions for any application or method operating on device 1300, contact data, phone book data, messages, pictures, videos, and the like.
  • Memory 1304 can be implemented by any type of volatile or non-volatile storage device, or a 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, Disk 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
  • Disk Disk or Optical Disk.
  • Power component 1306 provides power to various components of device 1300.
  • Power component 1306 can include a power management system, one or more power sources, and other components associated with generating, managing, and distributing power for device 1300.
  • the multimedia component 1308 includes a screen between the device 1300 and the user that provides an output interface.
  • the screen can include a liquid crystal display (LCD) and a touch panel (TP). If the screen includes a touch panel, the screen can be implemented as a touch screen to receive input signals from the user.
  • the touch panel includes one or more touch sensors to sense touches, slides, and gestures on the touch panel. The touch sensor may sense not only the boundary of the touch or sliding action, but also the duration and pressure associated with the touch or slide operation.
  • the multimedia component 1308 includes a front camera and/or a rear camera. When the device 1300 is in an operation mode, such as a shooting mode or a video mode, the front camera and/or the rear camera can receive external multimedia data. Each front and rear camera can be a fixed optical lens system or have focal length and optical zoom capabilities.
  • the audio component 1310 is configured to output and/or input an audio signal.
  • the audio component 1310 includes a microphone (MIC) that is configured to receive an external audio signal when the device 1300 is in an operational mode, such as a call mode, a recording mode, and a voice recognition mode.
  • the received audio signal may be further stored in memory 1304 or transmitted via communication component 1316.
  • the audio component 1310 also includes a speaker for outputting an audio signal.
  • the I/O interface 1313 provides an interface between the processing component 1302 and the 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, a home button, a volume button, a start button, and a lock button.
  • Sensor assembly 1314 includes one or more sensors for providing device 1300 with a status assessment of various aspects.
  • sensor component 1314 can detect an open/closed state of device 1300, relative positioning of components, such as the display and keypad of device 1300, and sensor component 1314 can also detect device 1300 or device 1300. The position of the components changes, the presence or absence of contact by the user with the device 1300, the orientation or acceleration/deceleration of the device 1300, and the temperature change of the device 1300.
  • Sensor assembly 1314 can include a proximity sensor configured to detect the presence of nearby objects without any physical contact.
  • Sensor assembly 1314 may also include a light sensor, such as a CMOS or CCD image sensor, for use in imaging applications.
  • the sensor component 1314 can also include an acceleration sensor, a gyro sensor, a magnetic sensor, a pressure sensor, or a temperature sensor.
  • Communication component 1316 is configured to facilitate wired or wireless communication between device 1300 and other devices.
  • the device 1300 can access a wireless network based on a communication standard, such as WiFi, 2G or 3G, or a combination thereof.
  • communication component 1316 receives broadcast signals or broadcast associated information from an external broadcast management system via a broadcast channel.
  • the communication component 1316 also includes a near field communication (NFC) module to facilitate short range communication.
  • NFC near field communication
  • the NFC module can 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
  • apparatus 1300 may be implemented by one or more application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable A gate array (FPGA), controller, microcontroller, microprocessor, or other electronic component implementation for performing the above methods.
  • ASICs application specific integrated circuits
  • DSPs digital signal processors
  • DSPDs digital signal processing devices
  • PLDs programmable logic devices
  • FPGA field programmable A gate array
  • controller microcontroller, microprocessor, or other electronic component implementation for performing the above methods.
  • non-transitory computer readable storage medium comprising instructions, such as a memory 1304 comprising instructions executable by processor 1320 of apparatus 1300 to perform the above method.
  • the non-transitory computer readable storage medium may be a ROM, a random access memory (RAM), a CD-ROM, a magnetic tape, a floppy disk, and an optical data storage device.
  • a network configuration apparatus including:
  • a memory for storing processor executable instructions
  • processor is configured to:
  • the cell measurement is performed on the cells of the adjacent public long term evolution LTE network.
  • the above processor can also be configured to:
  • the cell measurement of the cell of the adjacent public long-term evolution LTE network is not performed; wherein the second speed threshold is not lower than The first speed threshold is described.
  • the above processor can also be configured to:
  • Performing cell measurement on a cell of an adjacent public long term evolution LTE network including:
  • the above processor can also be configured to:
  • the first speed threshold, and/or the second speed threshold, and/or related information of the first cell of the adjacent public LTE network are obtained by:
  • the radio resource control connection reconfiguration signaling carries a preset first speed threshold, and/or the second speed threshold And/or related information of the first cell of the adjacent public LTE network.
  • a non-transitory computer readable storage medium when instructions in the storage medium are executed by a processor of the apparatus 1200, to enable the apparatus 1200 to perform the network configuration method described above, the method comprising:
  • the cell measurement is performed on the cells of the adjacent public long term evolution LTE network.
  • the instructions in the storage medium may further include:
  • the method further includes:
  • the cell measurement of the cell of the adjacent public long-term evolution LTE network is not performed; wherein the second speed threshold is not lower than The first speed threshold is described.
  • the instructions in the storage medium may further include:
  • Performing cell measurement on a cell of an adjacent public long term evolution LTE network including:
  • the instructions in the storage medium may further include:
  • the first speed threshold, and/or the second speed threshold, and/or related information of the first cell of the adjacent public LTE network are obtained by:
  • the radio resource control connection reconfiguration signaling carries a preset first speed threshold, and/or the second speed threshold And/or related information of the first cell of the adjacent public LTE network.
  • FIG. 14 is a block diagram of an apparatus 1400 for synchronizing data, according to an exemplary embodiment.
  • device 1400 can be provided as a computer.
  • apparatus 1400 includes a processing component 1422 that further includes one or more processors, and memory resources represented by memory 1432 for storing instructions executable by processing component 1422, such as an application.
  • the application stored in the memory 1432 may include one or more modules each corresponding to a set of instructions.
  • processing component 1422 is configured to execute instructions to perform the method described above to synchronize data.
  • Apparatus 1400 can also include a power supply component 1426 configured to perform power management of apparatus 1400, a wired or wireless network interface 1450 configured to connect apparatus 1400 to the network, and an input/output (I/O) interface 1458.
  • the device 1400 can operate based on an operating system stored in the memory 1432, such as Windows ServerTM, Mac OS XTM, UnixTM, LinuxTM, FreeBSDTM or the like.
  • a network configuration apparatus including:
  • a memory for storing processor executable instructions
  • processor is configured to:
  • Radio resource control connection reconfiguration signaling carries a preset first speed threshold; the first speed threshold is used to indicate that the user equipment is at speed When the first speed threshold is lower than the first speed threshold, the cell measurement is performed on the cells of the adjacent public long term evolution LTE network.
  • the above processor can also be configured to:
  • the RRC connection reconfiguration signaling further carries a preset second speed threshold; the second speed threshold is used to indicate that the user equipment is out of phase when the speed is higher than the second speed threshold.
  • the cell of the neighboring public long term evolution LTE network performs cell measurement; wherein the second speed threshold is not lower than the first speed threshold.
  • the above processor can also be configured to:
  • the radio resource control connection reconfiguration signaling further carries related information of the first cell of the adjacent public long term evolution LTE network, and is used to indicate that the user equipment is based on the correlation when the speed is lower than the first speed threshold. Information, performing cell measurement on the first cell.
  • the above processor can also be configured to:
  • the related information of the first cell is obtained in advance by:
  • the X2 communication message is used to communicate with the base station of the adjacent public LTE network, and the related information of the first cell of the adjacent public LTE network is obtained.
  • a non-transitory computer readable storage medium when instructions in the storage medium are executed by a processor of the apparatus 1200, to enable the apparatus 1200 to perform the network configuration method described above, the method comprising:
  • Radio resource control connection reconfiguration signaling carries a preset first speed threshold; the first speed threshold is used to indicate that the user equipment is at speed When the first speed threshold is lower than the first speed threshold, the cell measurement is performed on the cells of the adjacent public long term evolution LTE network.
  • the instructions in the storage medium may further include:
  • the RRC connection reconfiguration signaling further carries a preset second speed threshold; the second speed threshold is used to indicate that the user equipment is out of phase when the speed is higher than the second speed threshold.
  • the cell of the neighboring public long term evolution LTE network performs cell measurement; wherein the second speed threshold is not lower than the first speed threshold.
  • the instructions in the storage medium may further include:
  • the radio resource control connection reconfiguration signaling further carries related information of the first cell of the adjacent public long term evolution LTE network, and is used to indicate that the user equipment is based on the correlation when the speed is lower than the first speed threshold.
  • Information for the said A cell performs cell measurement.
  • the instructions in the storage medium may further include:
  • the related information of the first cell is obtained in advance by:
  • the X2 communication message is used to communicate with the base station of the adjacent public LTE network, and the related information of the first cell of the adjacent public LTE network is obtained.

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Abstract

本公开是关于一种网络配置方法、网络测量方法及装置。该方法包括:接收用户设备发送的随机接入请求;向用户设备发送无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值;所述第一速度门限值用于指示用户设备在速度低于第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。本公开可以改进用户设备的网络配置信息和小区测量方式,以便提高小区切换的成功率。

Description

网络配置方法、网络测量方法及装置 技术领域
本发明涉及通信技术领域,尤其涉及一种网络配置方法、网络测量方法及装置。
背景技术
相关技术中,随着高铁技术的飞速发展以及高铁的快速部署开通,越来越多的用户会选择高铁出行。保证乘坐高铁的用户的正常通信,是高铁专用网络(High-speed-railway dedicated network)的发展目标。高铁专用网络的出现,涉及到用户设备在高铁专用网络与公共LTE(Long Term Evolution,长期演进)网络之间的切换问题,如何提高切换的成功率,是业内亟待解决的问题。
发明内容
本发明实施例提供一种网络配置方法及装置。所述技术方案如下:
根据本发明实施例的第一方面,提供一种网络配置方法,应用于高铁专用网络的基站,包括:
接收用户设备发送的随机接入请求;
向用户设备发送无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值;所述第一速度门限值用于指示用户设备在速度低于第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
本发明的实施例提供的技术方案可以包括以下有益效果:本实施例中高铁专用网络的基站可以为用户设备配置第一速度门限值,使得用户设备在低于第一速度门限值时才对相邻的公共LTE网络的小区进行小区测量,有可能发生到公共LTE网络的小区的切换。实现了在低速移动过程中到公共LTE网络的小区的切换,减少高速移动过程中到公共LTE网络的小区的切换,从而提高了从高铁专用网络的小区到公共LTE网络的小区的切换的成功率。
在一个实施例中,所述无线资源控制连接重配置信令还携带有预设的第二速度门限值;所述第二速度门限值用于指示用户设备在速度高于第二速度门限值时,不对相邻的公共长期演进LTE网络的小区进行小区测量;其中,所述第二速度门限值不低于所述第一速度门限值。
本发明的实施例提供的技术方案可以包括以下有益效果:本实施例中高铁专用网络的基站还可以为用户设备配置第二速度门限值,使得用户设备高于第二速度门限值时,不对相邻的公共LTE网络的小区进行小区测量,也就不可能发生到公共LTE网络的小区的切换。实现了高速移动过程中不会切换到公共LTE网络的小区,从而提高了小区切换的成功率。
在一个实施例中,所述无线资源控制连接重配置信令还携带有相邻的公共长期演进LTE网络的第一小区的相关信息,用于指示用户设备在速度低于第一速度门限值时,根据所述相关信息,对所述第一小区进行小区测量。
本发明的实施例提供的技术方案可以包括以下有益效果:本实施例中高铁专用网络的基站还可以为用户设备配置相邻的公共LTE网络的第一小区,配置的相邻的第一小区可以是所有相邻的公共LTE网络的小区中的一部分,也就是说用户设备不需要对所有相邻的公共LTE网络的小区进行小区测量,可节省设备功耗。高铁专用网络的基站配置的相邻的第一小区一般是切换成功率比较高的小区,所以在减少可切换的相邻小区数量的同时,可以提高切换的成功率。
在一个实施例中,所述第一小区的相关信息是预先通过以下方式获得的:
在所述高铁专用网络的基站的初始建立时,或者在公共LTE网络的基站的初始建立时,在所述高铁专用网络的基站中配置相邻的公共LTE网络的第一小区的相关信息;或者
在与相邻的公共LTE网络的基站初始建立X2接口连接时,通过X2通信消息获取相邻的公共LTE网络的第一小区的相关信息;或者
在首次收到用户设备的随机接入请求时,通过X2通信消息与相邻的公共LTE网络的基站进行通信,获取相邻的公共LTE网络的第一小区的相关信息。
本发明的实施例提供的技术方案可以包括以下有益效果:本实施例中高铁专用网络的基站与公共LTE网络的基站之间可以通过多种方式获知对端基站所属的网络,以便将该信息配置给用户设备,方便用户设备进行小区测量和小区切换。
根据本发明实施例的第二方面,提供一种网络测量方法,应用于用户设备,已接入高速专用网络的小区,包括:
监控自身的移动速度;
在监控到的所述移动速度低于预先配置的第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
在一个实施例中,所述方法还包括:
在监控到的所述移动速度高于预先配置的第二速度门限值时,不对相邻的公共长期演进LTE网络的小区进行小区测量;其中,所述第二速度门限值不低于所述第一速度门限值。
在一个实施例中,所述对相邻的公共长期演进LTE网络的小区进行小区测量,包括:
根据预先配置的相邻的公共LTE网络的第一小区的相关信息,对所述第一小区进行小区测量。
在一个实施例中,所述第一速度门限值、和/或所述第二速度门限值、和/或相邻的公共LTE网络的第一小区的相关信息,是通过以下方式获得的:
向高速专用网络的基站发送随机接入请求;
接收高速专用网络的基站反馈的无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值、和/或所述第二速度门限值、和/或相邻的公共LTE网络的第一小区的相关信息。
根据本发明实施例的第三方面,提供一种网络配置装置,应用于高铁专用网络的基站,包括:
接收模块,用于接收用户设备发送的随机接入请求;
发送模块,用于向用户设备发送无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值;所述第一速度门限值用于指示用户设备在速度低于第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
在一个实施例中,所述无线资源控制连接重配置信令还携带有预设的第二速度门限值;所述第二速度门限值用于指示用户设备在速度高于第二速度门限值时,不对相邻的公共长期演进LTE网络的小区进行小区测量;其中,所述第二速度门限值不低于所述第一速度门限值。
在一个实施例中,所述无线资源控制连接重配置信令还携带有相邻的公共长期演进LTE网络的第一小区的相关信息,用于指示用户设备在速度低于第一速度门限值时,根据所述相关信息,对所述第一小区进行小区测量。
在一个实施例中,所述装置还包括:配置模块、第一X2接口模块或第二X2接口模块;
配置模块,用于在所述高铁专用网络的基站的初始建立时,或者在公共LTE网络的基站的初始建立时,在所述高铁专用网络的基站中配置相邻的公共LTE网络的第一小区的相关信息;
第一X2接口模块,用于在与相邻的公共LTE网络的基站初始建立X2接口连接时,通过X2通信消息获取相邻的公共LTE网络的第一小区的相关信息;
第二X2接口模块,用于在首次收到用户设备的随机接入请求时,通过X2通信消息与相邻的公共LTE网络的基站进行通信,获取相邻的公共LTE网络的第一小区的相关信息。
根据本发明实施例的第四方面,提供一种网络测量装置,应用于用户设备,已接入高速专用网络的小区,包括:
监控模块,用于监控自身的移动速度;
测量模块,用于在监控到的所述移动速度低于预先配置的第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
在一个实施例中,所述装置还包括:
屏蔽模块,用于在监控到的所述移动速度高于预先配置的第二速度门限值时,不对相邻的公共长期演进LTE网络的小区进行小区测量;其中,所述第二速度门限值不低于所述第一速度门限值。
在一个实施例中,所述测量模块包括:
测量子模块,用于根据预先配置的相邻的公共LTE网络的第一小区的相关信息,对所述第一小区进行小区测量。
在一个实施例中,所述装置还包括:
发送模块,用于向高速专用网络的基站发送随机接入请求;
接收模块,用于接收高速专用网络的基站反馈的无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值、和/或所述第二速度门限值、和/或相邻的公共LTE网络的第一小区的相关信息。
根据本发明实施例的第五方面,提供一种网络配置装置,包括:
处理器;
用于存储处理器可执行指令的存储器;
其中,所述处理器被配置为:
接收用户设备发送的随机接入请求;
向用户设备发送无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值;所述第一速度门限值用于指示用户设备在速度低于第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
根据本发明实施例的第六方面,提供一种网络测量装置,包括:
处理器;
用于存储处理器可执行指令的存储器;
其中,所述处理器被配置为:
监控自身的移动速度;
在监控到的所述移动速度低于预先配置的第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
根据本发明实施例的第七方面,提供计算机可读存储介质,其上存储有计算机指令,该指令被处理器执行时实现上述网络配置的方法。
根据本发明实施例的第八方面,提供一种计算机可读存储介质,其上存储有计算机指令,其特征在于,该指令被处理器执行时实现上述网络测量的方法。
应当理解的是,以上的一般描述和后文的细节描述仅是示例性和解释性的,并不能限制本发明。
附图说明
此处的附图被并入说明书中并构成本说明书的一部分,示出了符合本发明的实施例,并与说明书一起用于解释本发明的原理。
图1是根据一示例性实施例示出的一种网络配置方法的流程图。
图2是根据一示例性实施例示出的一种网络测量方法的流程图。
图3是根据具体实施例一示出的一种网络测量方法的流程图。
图4是根据一示例性实施例示出的一种随机接入及小区测量方法的流程图。
图5是根据具体实施例一示出的一种网络配置装置的框图。
图6是根据具体实施例一示出的一种网络配置装置的框图。
图7是根据一示例性实施例示出的一种网络配置装置的框图。
图8是根据具体实施例一示出的一种网络配置装置的框图。
图9是根据具体实施例一示出的一种网络测量装置的框图。
图10是根据一示例性实施例示出的一种网络测量装置的框图。
图11是根据具体实施例二示出的一种网络测量装置的框图。
图12是根据一示例性实施例示出的一种网络测量装置的框图。
图13是根据一示例性实施例示出的一种适用于用户设备的框图。
图14是根据一示例性实施例示出的一种适用于基站的框图。
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发明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、本发明的一些方面相一致的装置和方法的例子。
相关技术中,为了适应在高速行驶过程中的通信流畅,业内设计出了高铁专用网络。在同一位置,可能同时被高铁专用网络和公共LTE网络覆盖。这就涉及到用户设备在高铁专用网络和公共LTE网络之间进行小区切换。但是,在高速行驶过程中,如以200-300千米/小时速度移动,用户设备(UE)从高铁专用网络切换到公共LTE网络的成功率比较低,如果切换失败,则可能导致用户设备的通信中断,影响用户的正常通信。
为解决上述问题,本实施例中由基站为用户设备配置速度门限值,在用户设备的移动速度下降到所述速度门限值以下时,用户设备对相邻的公共LTE网络的小区进行小区测量,在测量结果满足切换的条件时,用户设备可以从高铁专用网络的小区切换到公共LTE网络的小区。这时用户设备的移动速度比较低,小区切换的成功率比较高,可以保证用户设备的通信顺畅。
如果用户设备的移动速度未下降到所述速度门限值以下时,用户设备可以不对相邻的公共LTE网络的小区进行小区测量,用户设备也就不可能切换到公共LTE网络的小区。此时,用户设备更多的是在高铁专用网络中的各小区之间切换,可以有较高的切换成功率。
图1是根据一示例性实施例示出的一种网络配置方法的流程图,该网络配置方法用于高铁专用网络的基站中。如图1所示,该方法包括以下步骤101-102。
在步骤101中,接收用户设备发送的随机接入请求。
在步骤102中,向用户设备发送无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值;所述第一速度门限值用于指示用户设备在速度低于第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
本实施例提供了一种新的无线资源控制连接重配置信令消息的格式,在无线资源控制连接重配置信令中增加了第一速度门限值这一新的信息。所述第一速度门限值的作用是指示用户设备在速度低于第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。有助于使得用户设备在低速移动时有可能发生到公共长期演进LTE网络的小区的切换,提高了切换的成功率;在高速移动时尽可能不发生到公共长期演进LTE网络的小区的切换,更多的在高铁专用网络中的各小区之间进行切换,提高了切换的成功率。
在一个实施例中,所述无线资源控制连接重配置信令还携带有预设的第二速度门限值;所述第二速度门限值用于指示用户设备在速度高于第二速度门限值时,不对相邻的公共长期 演进LTE网络的小区进行小区测量;其中,所述第二速度门限值不低于所述第一速度门限值。
本实施例提供了一种新的无线资源控制连接重配置信令消息的格式,在无线资源控制连接重配置信令中增加了第二速度门限值这一新的信息。所述第二速度门限值的作用是,指示用户设备在速度高于第二速度门限值时,不对相邻的公共长期演进LTE网络的小区进行小区测量。
例如,第一速度门限值为60千米/每小时左右。第二速度门限值为80千米/每小时左右。第二速度门限值高于第一速度门限值时,可以减少用户设备频繁的在对相邻的公共长期演进LTE网络的小区进行小区测量和不测量之间切换,可以减少用户设备的设备功耗。用户设备的移动速度由高到低变化时,参考第一速度门限值;由低到高变化时,参考第二速度门限值。用户设备的移动速度在未降低到第一速度门限值时,可以不参考第二速度门限值,也就不需要对相邻的公共长期演进LTE网络的小区进行小区测量。用户设备的移动速度在降低到第一速度门限值以下后,移动速度上升,但是未上升到第二速度门限值时,可以对相邻的公共长期演进LTE网络的小区进行小区测量。
在一个实施例中,所述无线资源控制连接重配置信令还携带有相邻的公共长期演进LTE网络的第一小区的相关信息,用于指示用户设备在速度低于第一速度门限值时,根据所述相关信息,对所述第一小区进行小区测量。
本实施例提供了一种新的无线资源控制连接重配置信令消息的格式,在无线资源控制连接重配置信令中增加了相邻的公共LTE网络的第一小区的相关信息。第一小区的相关信息的作用是指示用户设备在速度低于第一速度门限值时,根据所述相关信息,对所述第一小区进行小区测量。第一小区可以是一个小区或多个小区,本实施例中指示用户设备可以测量的相邻的公共LTE网络的小区,均被称为第一小区。
第一小区可以是相邻的公共LTE网络的小区中的部分小区。也就是说,用户设备可以不用对相邻的公共LTE网络的所有小区进行小区测量,降低设备功耗。无线资源控制连接重配置信令所指示的第一小区可以是切换成功率比较高的相邻小区,因此提高了切换的成功率。
第一小区的相关信息如小区标识等信息。
在一个实施例中,所述第一小区的相关信息是预先通过以下方式获得的:方式A1、方式A2或方式A3。
方式A1:在所述高铁专用网络的基站的初始建立时,或者在公共LTE网络的基站的初始建立时,在所述高铁专用网络的基站中配置相邻的公共LTE网络的第一小区的相关信息。
本实施例中,可以在初始建立高铁专用网络的基站时,由技术人员在高铁专用网络的基站中配置相邻的公共LTE网络的第一小区的相关信息。技术人员可以通过控制设备向高铁专用网络的基站发送命令,该命令用于配置相邻的公共LTE网络的第一小区的相关信息。或者,在初始建立公共LTE网络的基站时,技术人员在高铁专用网络的基站中增加该公共LTE网络的基站所覆盖的第一小区的相关信息。
方式A2:在与相邻的公共LTE网络的基站初始建立X2接口连接时,通过X2通信消息获 取相邻的公共LTE网络的第一小区的相关信息。
本实施例中建立高铁专用网络的基站后,对高铁专用网络的基站进行初始化,包括初始建立X2接口连接。高铁专用网络的基站通过X2接口(一种基站间的通信接口),向相邻的公共LTE网络的基站发送X2SET REQUEST(X2建立请求)。相邻的公共LTE网络的基站向该高铁专用网络的基站反馈X2SET RESPONSE(X2建立响应),该X2SET RESPONSE消息携带有本地基站覆盖的第一小区的相关信息。或者,建立公共LTE网络的基站后,对公共LTE网络的基站进行初始化,包括初始建立X2接口连接。公共LTE网络的基站通过X2接口,向相邻的高铁专用网络的基站发送X2SET REQUEST,该X2SET REQUEST消息携带有本地基站覆盖的第一小区的相关信息。
方式A3:在首次收到用户设备的随机接入请求时,通过X2通信消息与相邻的公共LTE网络的基站进行通信,获取相邻的公共LTE网络的第一小区的相关信息。
本实施例中高铁专用网络的基站在建立后首次收到用户设备的随机接入请求时,也就是查询本地的配置信息未发现关于相邻的公共LTE网络的第一小区的相关信息的配置信息时,通过X2接口,向相邻的公共LTE网络的基站发送X2通信消息,获取相邻的公共LTE网络的第一小区的相关信息。
以上三种方式也可以结合使用,即在不同的时间节点均可获取第一小区的相关信息。
用户设备可以周期性的,或者根据高铁专用网络的基站的指示,对相邻小区进行小区测量。将测量报告发送给高铁专用网络的基站。高铁专用网络的基站根据收到的测量报告,确定用户设备是否需要切换到相邻小区,如果确定需要切换,则发起切换流程。
相邻的公共LTE网络的基站在收到切换请求后,判断该切换请求是否来自高铁专用网络,如果是,优先处理来自高铁专用网络的用户设备的切换。例如,在非常短的时间内(如100毫秒左右)收到至少两个用户设备的切换请求,如果一个用户设备属于高铁专用网络,另一个设备属于公共LTE网络,则优先处理属于高铁专用网络的用户设备的切换请求。
以上介绍了基站侧的网络配置方法,对应的,下面介绍用户设备侧的网络测量方法。
图2是根据一示例性实施例示出的一种网络测量方法的流程图,该网络测量方法用于用户设备中,如手机等。如图2所示,该方法包括以下步骤201-202。
所述用户设备已接入高速专用网络的小区。
在步骤201中,监控自身的移动速度。
在步骤202中,在监控到的所述移动速度低于预先配置的第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
本实施例中用户设备可以实时的监控移动速度,也可以周期性的监控移动速度。用户设备监控移动速度的方式可以由归属的基站配置。在移动速度低于第一速度门限值时,对相邻的公共LTE网络的小区进行小区测量。在移动速度不低于第一速度门限值时,可以不对相邻的公共LTE网络的小区进行小区测量。减少了测量时对设备的能量消耗。并且,用户设备在较低的移动速度下对相邻的公共LTE网络的小区进行小区测量,也就是用户设备在较低的移 动速度下有可能发生小区切换,提高了小区切换的成功率。
在一个实施例中,所述方法还包括:步骤A。
在步骤A中,在监控到的所述移动速度高于预先配置的第二速度门限值时,不对相邻的公共长期演进LTE网络的小区进行小区测量;其中,所述第二速度门限值不低于所述第一速度门限值。
例如,第一速度门限值为60千米/每小时左右。第二速度门限值为80千米/每小时左右。第二速度门限值高于第一速度门限值时,可以减少用户设备频繁的在对相邻的公共长期演进LTE网络的小区进行小区测量和不测量之间切换,可以减少用户设备的设备功耗。用户设备的移动速度由高到低变化时,参考第一速度门限值;由低到高变化时,参考第二速度门限值。用户设备的移动速度在未降低到第一速度门限值时,可以不参考第二速度门限值,也就不需要对相邻的公共长期演进LTE网络的小区进行小区测量。用户设备的移动速度在降低到第一速度门限值以下后,移动速度上升,但是未上升到第二速度门限值时,可以对相邻的公共长期演进LTE网络的小区进行小区测量。
在一个实施例中,所述步骤202包括:步骤B。
在步骤B中,根据预先配置的相邻的公共LTE网络的第一小区的相关信息,对所述第一小区进行小区测量。
本实施例中用户设备可以不用对相邻的公共LTE网络的所有小区进行小区测量,可以根据配置,只对部分相邻的公共LTE网络的小区进行小区测量,可减少小区测量时的设备功耗。配置的相邻的公共LTE网络的第一小区可以是切换成功率比较高的相邻小区,可以提高切换的成功率。
在一个实施例中,所述第一速度门限值、和/或所述第二速度门限值、和/或相邻的公共LTE网络的第一小区的相关信息,是通过以下方式获得的:
向高速专用网络的基站发送随机接入请求。
接收高速专用网络的基站反馈的无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值、和/或所述第二速度门限值、和/或相邻的公共LTE网络的第一小区的相关信息。
本实施例提供了一种新的格式的无线资源控制连接重配置信令,在无线资源控制连接重配置信令中增加了第一速度门限值、第二速度门限值和第一小区的相关信息。用户设备可解析新的格式的无线资源控制连接重配置信令,获取上述信息。
用户设备还可以向高速专用网络的基站发送测量报告。高速专用网络的基站根据收到的测量报告判断是否需要进行小区切换,如果需要,则发起切换流程。
下面通过几个实施例详细介绍上述实现过程。
图3是根据一示例性实施例示出的一种网络测量方法的流程图,该网络测量方法用于用户设备中,如手机等。如图3所示,该方法包括以下步骤301-307。
所述用户设备已接入高速专用网络的小区。
在步骤301中,监控自身的移动速度。
在步骤302中,判断移动速度是否低于预先配置的第一速度门限值;在监控到的所述移动速度低于预先配置的第一速度门限值时,继续步骤304;在监控到的所述移动速度未低于预先配置的第一速度门限值时,继续步骤303。
在步骤303中,对相邻的高速专用网络的小区进行小区测量。
在步骤304中,根据预先配置的相邻的公共LTE网络的第一小区的相关信息,对所述第一小区进行小区测量。以及,对相邻的高速专用网络的小区进行小区测量。
在步骤305中,继续监控自身的移动速度,判断移动速度是否高于预先配置的第二速度门限值;在监控到的所述移动速度高于预先配置的第二速度门限值时,继续步骤306;在监控到的所述移动速度未高于预先配置的第二速度门限值时,继续步骤307。
在步骤306中,对相邻的高速专用网络的小区进行小区测量。
在步骤307中,根据预先配置的相邻的公共LTE网络的第一小区的相关信息,对所述第一小区进行小区测量。以及,对相邻的高速专用网络的小区进行小区测量。
图4是根据一示例性实施例示出的一种随机接入及小区测量方法的流程图,该随机接入及小区测量方法用于基站和用户设备中。如图4所示,该方法包括以下步骤401-407。
在步骤401中,用户设备向高速专用网络的基站发送随机接入请求。
在步骤402中,高速专用网络的基站向用户设备发送无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值。
在步骤403中,用户设备监控自身的移动速度。
在步骤404中,用户设备在监控到的所述移动速度低于预先配置的第一速度门限值时,对相邻的公共LTE网络的小区进行小区测量。还可以对相邻的高速专用网络的小区进行小区测量。
在步骤405中,用户设备向高速专用网络的基站发送测量报告。
在步骤406中,高速专用网络的基站根据收到的测量报告进行需要小区切换的处理。
下述为本发明装置实施例,可以用于执行本发明方法实施例。
上述实施例可以根据实际需要进行自由组合。
图5是根据一示例性实施例示出的一种网络配置装置的框图,该装置可以通过软件、硬件或者两者的结合实现成为电子设备的部分或者全部。参照图5,该网络配置装置包括接收模块501和发送模块502;其中:
接收模块501,用于接收用户设备发送的随机接入请求。
发送模块502,用于向用户设备发送无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值;所述第一速度门限值用于指示用户设备在速度低于第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
在一个实施例中,所述无线资源控制连接重配置信令还携带有预设的第二速度门限值;所述第二速度门限值用于指示用户设备在速度高于第二速度门限值时,不对相邻的公共长期 演进LTE网络的小区进行小区测量;其中,所述第二速度门限值不低于所述第一速度门限值。
在一个实施例中,所述无线资源控制连接重配置信令还携带有相邻的公共长期演进LTE网络的第一小区的相关信息,用于指示用户设备在速度低于第一速度门限值时,根据所述相关信息,对所述第一小区进行小区测量。
在一个实施例中,如图6-图8所示,所述装置还包括:配置模块601、第一X2接口模块602或第二X2接口模块603。
配置模块601,用于在所述高铁专用网络的基站的初始建立时,或者在公共LTE网络的基站的初始建立时,在所述高铁专用网络的基站中配置相邻的公共LTE网络的第一小区的相关信息。
第一X2接口模块602,用于在与相邻的公共LTE网络的基站初始建立X2接口连接时,通过X2通信消息获取相邻的公共LTE网络的第一小区的相关信息。
第二X2接口模块603,用于在首次收到用户设备的随机接入请求时,通过X2通信消息与相邻的公共LTE网络的基站进行通信,获取相邻的公共LTE网络的第一小区的相关信息。
图9是根据一示例性实施例示出的一种网络测量装置的框图,该装置可以通过软件、硬件或者两者的结合实现成为电子设备的部分或者全部。参照图9,该网络测量装置包括监控模块901和测量模块902;其中:
监控模块901,用于监控自身的移动速度。
测量模块902,用于在监控到的所述移动速度低于预先配置的第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
在一个实施例中,如图10所示,所述装置还包括:屏蔽模块1001。
屏蔽模块1001,用于在监控到的所述移动速度高于预先配置的第二速度门限值时,不对相邻的公共长期演进LTE网络的小区进行小区测量;其中,所述第二速度门限值不低于所述第一速度门限值。
在一个实施例中,如图11所示,所述测量模块902包括:测量子模块1101。
测量子模块1101,用于根据预先配置的相邻的公共LTE网络的第一小区的相关信息,对所述第一小区进行小区测量。
在一个实施例中,如图12所示,所述装置还包括:发送模块1201和接收模块1202。
发送模块1201,用于向高速专用网络的基站发送随机接入请求。
接收模块1202,用于接收高速专用网络的基站反馈的无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值、和/或所述第二速度门限值、和/或相邻的公共LTE网络的第一小区的相关信息。
关于上述实施例中的装置,其中各个模块执行操作的具体方式已经在有关该方法的实施例中进行了详细描述,此处将不做详细阐述说明。
图13是根据一示例性实施例示出的一种用于网络配置的装置的框图。例如,装置1300可以是移动电话,计算机,数字广播终端,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。
装置1300可以包括以下一个或多个组件:处理组件1302,存储器1304,电源组件1306,多媒体组件1308,音频组件1310,输入/输出(I/O)的接口1313,传感器组件1314,以及通信组件1316。
处理组件1302通常控制装置1300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。处理元件1302可以包括一个或多个处理器1320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1302可以包括一个或多个模块,便于处理组件1302和其他组件之间的交互。例如,处理部件1302可以包括多媒体模块,以方便多媒体组件1308和处理组件1302之间的交互。
存储器1304被配置为存储各种类型的数据以支持在设备1300的操作。这些数据的示例包括用于在装置1300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1304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1306为装置1300的各种组件提供电力。电源组件1306可以包括电源管理系统,一个或多个电源,及其他与为装置1300生成、管理和分配电力相关联的组件。
多媒体组件1308包括在所述装置1300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。触摸面板包括一个或多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持续时间和压力。在一些实施例中,多媒体组件1308包括一个前置摄像头和/或后置摄像头。当设备1300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1310被配置为输出和/或输入音频信号。例如,音频组件1310包括一个麦克风(MIC),当装置1300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1304或经由通信组件1316发送。在一些实施例中,音频组件1310还包括一个扬声器,用于输出音频信号。
I/O接口1313为处理组件1302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1314包括一个或多个传感器,用于为装置1300提供各个方面的状态评估。例如,传感器组件1314可以检测到设备1300的打开/关闭状态,组件的相对定位,例如所述组件为装置1300的显示器和小键盘,传感器组件1314还可以检测装置1300或装置1300一 个组件的位置改变,用户与装置1300接触的存在或不存在,装置1300方位或加速/减速和装置1300的温度变化。传感器组件1314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1314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1314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1316被配置为便于装置1300和其他设备之间有线或无线方式的通信。装置1300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1316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1316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,装置1300可以被一个或多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1304,上述指令可由装置1300的处理器1320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。
在示例性实施例中,提供一种网络配置装置,包括:
处理器;
用于存储处理器可执行指令的存储器;
其中,处理器被配置为:
监控自身的移动速度;
在监控到的所述移动速度低于预先配置的第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
上述处理器还可被配置为:
在监控到的所述移动速度高于预先配置的第二速度门限值时,不对相邻的公共长期演进LTE网络的小区进行小区测量;其中,所述第二速度门限值不低于所述第一速度门限值。
上述处理器还可被配置为:
所述对相邻的公共长期演进LTE网络的小区进行小区测量,包括:
根据预先配置的相邻的公共LTE网络的第一小区的相关信息,对所述第一小区进行小区测量。
上述处理器还可被配置为:
所述第一速度门限值、和/或所述第二速度门限值、和/或相邻的公共LTE网络的第一小区的相关信息,是通过以下方式获得的:
向高速专用网络的基站发送随机接入请求;
接收高速专用网络的基站反馈的无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值、和/或所述第二速度门限值、和/或相邻的公共LTE网络的第一小区的相关信息。
一种非临时性计算机可读存储介质,当所述存储介质中的指令由装置1200的处理器执行时,使得装置1200能够执行上述的网络配置方法,所述方法包括:
监控自身的移动速度;
在监控到的所述移动速度低于预先配置的第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
所述存储介质中的指令还可以包括:
所述方法还包括:
在监控到的所述移动速度高于预先配置的第二速度门限值时,不对相邻的公共长期演进LTE网络的小区进行小区测量;其中,所述第二速度门限值不低于所述第一速度门限值。
所述存储介质中的指令还可以包括:
所述对相邻的公共长期演进LTE网络的小区进行小区测量,包括:
根据预先配置的相邻的公共LTE网络的第一小区的相关信息,对所述第一小区进行小区测量。
所述存储介质中的指令还可以包括:
所述第一速度门限值、和/或所述第二速度门限值、和/或相邻的公共LTE网络的第一小区的相关信息,是通过以下方式获得的:
向高速专用网络的基站发送随机接入请求;
接收高速专用网络的基站反馈的无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值、和/或所述第二速度门限值、和/或相邻的公共LTE网络的第一小区的相关信息。
图14是根据一示例性实施例示出的一种用于同步数据的装置1400的框图。例如,装置1400可以被提供为一计算机。参照图14,装置1400包括处理组件1422,其进一步包括一个或多个处理器,以及由存储器1432所代表的存储器资源,用于存储可由处理组件1422的执行的指令,例如应用程序。存储器1432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1422被配置为执行指令,以执行上述方法同步数据。
装置1400还可以包括一个电源组件1426被配置为执行装置1400的电源管理,一个有线或无线网络接口1450被配置为将装置1400连接到网络,和一个输入输出(I/O)接口1458。装置1400可以操作基于存储在存储器1432的操作系统,例如Windows ServerTM,Mac OS XTM,UnixTM,LinuxTM,FreeBSDTM或类似。
在示例性实施例中,提供一种网络配置装置,包括:
处理器;
用于存储处理器可执行指令的存储器;
其中,处理器被配置为:
接收用户设备发送的随机接入请求;
向用户设备发送无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值;所述第一速度门限值用于指示用户设备在速度低于第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
上述处理器还可被配置为:
所述无线资源控制连接重配置信令还携带有预设的第二速度门限值;所述第二速度门限值用于指示用户设备在速度高于第二速度门限值时,不对相邻的公共长期演进LTE网络的小区进行小区测量;其中,所述第二速度门限值不低于所述第一速度门限值。
上述处理器还可被配置为:
所述无线资源控制连接重配置信令还携带有相邻的公共长期演进LTE网络的第一小区的相关信息,用于指示用户设备在速度低于第一速度门限值时,根据所述相关信息,对所述第一小区进行小区测量。
上述处理器还可被配置为:
所述第一小区的相关信息是预先通过以下方式获得的:
在所述高铁专用网络的基站的初始建立时,或者在公共LTE网络的基站的初始建立时,在所述高铁专用网络的基站中配置相邻的公共LTE网络的第一小区的相关信息;或者
在与相邻的公共LTE网络的基站初始建立X2接口连接时,通过X2通信消息获取相邻的公共LTE网络的第一小区的相关信息;或者
在首次收到用户设备的随机接入请求时,通过X2通信消息与相邻的公共LTE网络的基站进行通信,获取相邻的公共LTE网络的第一小区的相关信息。
一种非临时性计算机可读存储介质,当所述存储介质中的指令由装置1200的处理器执行时,使得装置1200能够执行上述的网络配置方法,所述方法包括:
接收用户设备发送的随机接入请求;
向用户设备发送无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值;所述第一速度门限值用于指示用户设备在速度低于第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
所述存储介质中的指令还可以包括:
所述无线资源控制连接重配置信令还携带有预设的第二速度门限值;所述第二速度门限值用于指示用户设备在速度高于第二速度门限值时,不对相邻的公共长期演进LTE网络的小区进行小区测量;其中,所述第二速度门限值不低于所述第一速度门限值。
所述存储介质中的指令还可以包括:
所述无线资源控制连接重配置信令还携带有相邻的公共长期演进LTE网络的第一小区的相关信息,用于指示用户设备在速度低于第一速度门限值时,根据所述相关信息,对所述第 一小区进行小区测量。
所述存储介质中的指令还可以包括:
所述第一小区的相关信息是预先通过以下方式获得的:
在所述高铁专用网络的基站的初始建立时,或者在公共LTE网络的基站的初始建立时,在所述高铁专用网络的基站中配置相邻的公共LTE网络的第一小区的相关信息;或者
在与相邻的公共LTE网络的基站初始建立X2接口连接时,通过X2通信消息获取相邻的公共LTE网络的第一小区的相关信息;或者
在首次收到用户设备的随机接入请求时,通过X2通信消息与相邻的公共LTE网络的基站进行通信,获取相邻的公共LTE网络的第一小区的相关信息。
本领域技术人员在考虑说明书及实践这里的公开后,将容易想到本发明的其它实施方案。本申请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发明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,本发明的真正范围和精神由下面的权利要求指出。
应当理解的是,本发明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。本发明的范围仅由所附的权利要求来限制。

Claims (20)

  1. 一种网络配置方法,其特征在于,应用于高铁专用网络的基站,包括:
    接收用户设备发送的随机接入请求;
    向用户设备发送无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值;所述第一速度门限值用于指示用户设备在速度低于第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
  2. 如权利要求1所述的方法,其特征在于,所述无线资源控制连接重配置信令还携带有预设的第二速度门限值;所述第二速度门限值用于指示用户设备在速度高于第二速度门限值时,不对相邻的公共长期演进LTE网络的小区进行小区测量;其中,所述第二速度门限值不低于所述第一速度门限值。
  3. 根据权利要求1所述的方法,其特征在于,所述无线资源控制连接重配置信令还携带有相邻的公共长期演进LTE网络的第一小区的相关信息,用于指示用户设备在速度低于第一速度门限值时,根据所述相关信息,对所述第一小区进行小区测量。
  4. 根据权利要求3所述的方法,其特征在于,所述第一小区的相关信息是预先通过以下方式获得的:
    在所述高铁专用网络的基站的初始建立时,或者在公共LTE网络的基站的初始建立时,在所述高铁专用网络的基站中配置相邻的公共LTE网络的第一小区的相关信息;或者
    在与相邻的公共LTE网络的基站初始建立X2接口连接时,通过X2通信消息获取相邻的公共LTE网络的第一小区的相关信息;或者
    在首次收到用户设备的随机接入请求时,通过X2通信消息与相邻的公共LTE网络的基站进行通信,获取相邻的公共LTE网络的第一小区的相关信息。
  5. 一种网络测量方法,其特征在于,应用于用户设备,已接入高速专用网络的小区,包括:
    监控自身的移动速度;
    在监控到的所述移动速度低于预先配置的第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
  6. 根据权利要求5所述的方法,其特征在于,所述方法还包括:
    在监控到的所述移动速度高于预先配置的第二速度门限值时,不对相邻的公共长期演进LTE网络的小区进行小区测量;其中,所述第二速度门限值不低于所述第一速度门限值。
  7. 根据权利要求5所述的方法,其特征在于,所述对相邻的公共长期演进LTE网络的小区进行小区测量,包括:
    根据预先配置的相邻的公共LTE网络的第一小区的相关信息,对所述第一小区进行小区 测量。
  8. 根据权利要求5或6或7所述的方法,其特征在于,所述第一速度门限值、和/或所述第二速度门限值、和/或相邻的公共LTE网络的第一小区的相关信息,是通过以下方式获得的:
    向高速专用网络的基站发送随机接入请求;
    接收高速专用网络的基站反馈的无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值、和/或所述第二速度门限值、和/或相邻的公共LTE网络的第一小区的相关信息。
  9. 一种网络配置装置,其特征在于,应用于高铁专用网络的基站,包括:
    接收模块,用于接收用户设备发送的随机接入请求;
    发送模块,用于向用户设备发送无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值;所述第一速度门限值用于指示用户设备在速度低于第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
  10. 如权利要求9所述的装置,其特征在于,所述无线资源控制连接重配置信令还携带有预设的第二速度门限值;所述第二速度门限值用于指示用户设备在速度高于第二速度门限值时,不对相邻的公共长期演进LTE网络的小区进行小区测量;其中,所述第二速度门限值不低于所述第一速度门限值。
  11. 根据权利要求9所述的装置,其特征在于,所述无线资源控制连接重配置信令还携带有相邻的公共长期演进LTE网络的第一小区的相关信息,用于指示用户设备在速度低于第一速度门限值时,根据所述相关信息,对所述第一小区进行小区测量。
  12. 根据权利要求11所述的装置,其特征在于,所述装置还包括:配置模块、第一X2接口模块或第二X2接口模块;
    配置模块,用于在所述高铁专用网络的基站的初始建立时,或者在公共LTE网络的基站的初始建立时,在所述高铁专用网络的基站中配置相邻的公共LTE网络的第一小区的相关信息;
    第一X2接口模块,用于在与相邻的公共LTE网络的基站初始建立X2接口连接时,通过X2通信消息获取相邻的公共LTE网络的第一小区的相关信息;
    第二X2接口模块,用于在首次收到用户设备的随机接入请求时,通过X2通信消息与相邻的公共LTE网络的基站进行通信,获取相邻的公共LTE网络的第一小区的相关信息。
  13. 一种网络测量装置,其特征在于,应用于用户设备,已接入高速专用网络的小区,包括:
    监控模块,用于监控自身的移动速度;
    测量模块,用于在监控到的所述移动速度低于预先配置的第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
  14. 根据权利要求13所述的装置,其特征在于,所述装置还包括:
    屏蔽模块,用于在监控到的所述移动速度高于预先配置的第二速度门限值时,不对相邻的公共长期演进LTE网络的小区进行小区测量;其中,所述第二速度门限值不低于所述第一速度门限值。
  15. 根据权利要求13所述的装置,其特征在于,所述测量模块包括:
    测量子模块,用于根据预先配置的相邻的公共LTE网络的第一小区的相关信息,对所述第一小区进行小区测量。
  16. 根据权利要求13或14或15所述的装置,其特征在于,所述装置还包括:
    发送模块,用于向高速专用网络的基站发送随机接入请求;
    接收模块,用于接收高速专用网络的基站反馈的无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值、和/或所述第二速度门限值、和/或相邻的公共LTE网络的第一小区的相关信息。
  17. 一种网络配置装置,其特征在于,应用于高铁专用网络的基站,包括:
    处理器;
    用于存储处理器可执行指令的存储器;
    其中,所述处理器被配置为:
    接收用户设备发送的随机接入请求;
    向用户设备发送无线资源控制连接重配置信令,所述无线资源控制连接重配置信令携带有预设的第一速度门限值;所述第一速度门限值用于指示用户设备在速度低于第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
  18. 一种网络测量装置,其特征在于,应用于用户设备,已接入高速专用网络的小区,包括:
    处理器;
    用于存储处理器可执行指令的存储器;
    其中,所述处理器被配置为:
    监控自身的移动速度;
    在监控到的所述移动速度低于预先配置的第一速度门限值时,对相邻的公共长期演进LTE网络的小区进行小区测量。
  19. 一种计算机可读存储介质,其上存储有计算机指令,其特征在于,该指令被处理器执行时实现上述权利要求1至4的方法。
  20. 一种计算机可读存储介质,其上存储有计算机指令,其特征在于,该指令被处理器执行时实现上述权利要求5至8的方法。
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