WO2012136159A2 - 检测方法、检测装置和检测系统 - Google Patents

检测方法、检测装置和检测系统 Download PDF

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Publication number
WO2012136159A2
WO2012136159A2 PCT/CN2012/076293 CN2012076293W WO2012136159A2 WO 2012136159 A2 WO2012136159 A2 WO 2012136159A2 CN 2012076293 W CN2012076293 W CN 2012076293W WO 2012136159 A2 WO2012136159 A2 WO 2012136159A2
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Prior art keywords
query
port
radio frequency
radio
unit
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PCT/CN2012/076293
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English (en)
French (fr)
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WO2012136159A3 (zh
Inventor
王继松
万里龙
陈永占
何俊
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华为技术有限公司
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Publication of WO2012136159A2 publication Critical patent/WO2012136159A2/zh
Publication of WO2012136159A3 publication Critical patent/WO2012136159A3/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements

Definitions

  • Detection method, detection device and detection system The present application claims to be submitted to the Chinese Patent Office on March 31, 2011, and the application number is 201110080727. 1. The priority of the Chinese patent application whose invention name is "detection method, detection device and detection system” The entire contents of which are incorporated herein by reference.
  • TECHNICAL FIELD The present invention relates to the field of communications, and in particular, to a detection method, a detection apparatus, and a detection system in the field of communication.
  • the cell can be switched according to the inter-cell, that is, the cell traffic is separately counted by the handover cell, and the sector parameters of the same station antenna device are reversed in combination with the engineering parameters.
  • the inter-cell handover system combined with the engineering parameters, it is analyzed that there is no overlapping coverage area but the neighboring area label with the handover is the reverse neighboring area, and the adjacent area with the overlapping coverage area is the positive neighboring area. If the serving cell A and the sector of the same site cell B are reversed, then the following rules exist between A and B: All reverse neighboring areas of A are positive neighboring areas of B; all reverse neighboring areas of B are The forward neighboring area of A, thereby determining whether the sector of the same station antenna device is reversed.
  • A includes A1 and A2 sectors
  • B includes B1 and B2 sectors
  • C includes C1 and C2 sectors
  • A1 and B2 are switched
  • Al and B2 have no overlapping coverage areas
  • A2 and B2 have overlapping coverage areas
  • A2 and C1 have been switched.
  • A2 and C1 have no overlapping coverage areas.
  • Al and C1 have overlapping coverage areas.
  • the distribution law of the carrier frequency with a large difference in the main diversity level in the cell can be generally analyzed according to the primary diversity level data structure and the data configuration, thereby judging the reverse connection of the primary diversity.
  • the embodiment of the invention provides a detection method, a detection device and a detection system, which can conveniently and quickly detect the connection of the radio frequency port of the antenna device before the main device is powered on.
  • the embodiment of the present invention provides a detection method, where the detection method includes: sending a radio frequency port query command to a detecting unit; receiving radio frequency port information sent by the detecting unit according to the radio port query command; Compare with the preset information of the radio port to be detected to determine whether the connection of the radio port is correct.
  • the embodiment of the present invention provides a detection method, which includes: receiving a radio port query command sent by the query unit; detecting the antenna device and acquiring radio port information according to the radio port query command; The query unit sends the radio port information, so that the query unit compares the radio port information with the preset information of the radio port to be detected to determine whether the radio port is correctly connected.
  • an embodiment of the present invention provides a detecting apparatus, where the detecting apparatus includes: a sending module, a receiving module, and a determining module, where the sending module is configured to send a radio frequency port query command to the detecting unit; the receiving module is configured to receive The detecting unit is configured to query the radio port information sent by the command according to the radio port. The determining module is configured to compare the radio port information with the preset information of the radio port to be detected to determine whether the connection of the radio port is correct.
  • the embodiment of the present invention provides a detecting device, where the detecting device includes: a receiving module, an obtaining module, and a sending module, where the receiving module is configured to receive a radio frequency port query command sent by the query unit; The device is configured to detect the radio frequency port and obtain the radio port information according to the radio port query command.
  • the sending module is configured to send the radio port information to the query unit, so that the query unit passes the radio port information and the radio port to be detected. The preset information is compared to determine whether the RF port is properly connected.
  • an embodiment of the present invention provides a detection system, where the detection system includes: a query unit, a detection unit, and a transmission unit, where the query unit is configured to send a radio frequency port query command to the detection unit, and pass the detection The radio port information fed back by the unit is compared with the preset information of the radio port to be detected to determine whether the radio port is correctly connected.
  • the detecting unit is configured to query the radio port according to the radio port query command sent by the query unit. The command is used to query the antenna device, and after obtaining the radio port information, send the radio port information to the query unit.
  • the transmission unit is used for data transmission between the query unit and the detecting unit.
  • the detecting method, the detecting device, and the detecting system of the embodiment of the present invention determine the connection of the radio frequency port by comparing the radio port information with the preset information of the radio port to be detected. Correct, so that the RF end of the antenna device can be conveniently and quickly before the main device is powered on. The port connection is detected, thereby shortening the construction time and reducing the maintenance cost.
  • the drawings to be used in the embodiments of the present invention will be briefly described below. Obviously, the drawings described below are only some of the present invention. For the embodiments, those skilled in the art can obtain other drawings according to the drawings without any creative work.
  • FIG. 1 is a schematic flow chart of a detecting method according to an embodiment of the present invention.
  • FIG. 2 is a schematic flow chart of a detecting method according to another embodiment of the present invention.
  • FIG. 3 is a schematic flow chart of a detecting method according to still another embodiment of the present invention.
  • FIG. 4 is a schematic block diagram of a detecting device in accordance with an embodiment of the present invention.
  • Figure 5 is a schematic block diagram of a detecting device in accordance with another embodiment of the present invention.
  • Figure 6 is a schematic block diagram of a detecting device in accordance with still another embodiment of the present invention.
  • FIG. 1 shows a schematic flow chart of a detection method 100 in accordance with an embodiment of the present invention. As shown in FIG. 1, the detection method 100 includes:
  • S120 Receive radio port information sent by the detecting unit according to the radio port query command.
  • S130 Compare the radio port information with preset information of the radio port to be detected to determine whether the radio port is correctly connected.
  • the query unit located on the ground The radio port query command may be sent to the detecting unit, where the radio port query command is used to instruct the detecting unit to detect the designated radio port of the antenna device.
  • the detecting unit detects the radio frequency port according to the radio port query command, and sends the radio port information to the query unit after obtaining the radio port information, and the query unit performs the radio port information and the preset information of the radio port to be detected. Compare to determine if the connection to the RF port is correct. Therefore, the detection method of the embodiment of the present invention obtains the radio port information, and compares the radio port information with the preset information of the radio port to be detected to determine whether the connection of the radio port is correct, so that the main device can be powered on before the main device is powered on. It is convenient and quick to detect the RF port connection of the antenna device, thereby shortening the construction time and reducing the maintenance cost.
  • the sending and receiving of the information between the detecting unit and the querying unit may be performed by using a signal transmission manner, that is, the query unit sending the radio frequency port query command to the detecting unit may include: the query unit sending the radio frequency port query signal to the detecting unit,
  • the radio port query signal carries the radio port query command.
  • the query unit receives the radio port information sent by the detecting unit according to the radio port query command, and the query unit may: the query unit receives the query result signal sent by the detecting unit according to the radio port query command.
  • the query result signal carries the radio port information. Specifically, the query unit converts the radio frequency port query command into a radio frequency port query signal, and sends the radio frequency port query signal to the detecting unit.
  • the detecting unit After receiving the radio frequency port query signal, the detecting unit performs the radio frequency carried by the radio port query signal.
  • the port query command detects the radio port of the antenna device and obtains the radio port information.
  • the detecting unit converts the radio port information into a query result signal and sends the information to the query unit.
  • the query unit passes the radio frequency port carried in the query result signal.
  • the information is compared with preset information of the radio port to be detected to determine whether the connection of the radio port is correct.
  • the detecting unit and the querying unit may modulate the information to be sent into 00K (0n-0ff Keying, ie, binary opening and closing keying), and then transmit the signal, and receive the signal after 00K modulation.
  • the data transmission between the detecting unit and the query unit may be in a wireless manner, for example, using a WIFI method or a wired method.
  • data transmission is performed between the detecting unit and the query unit through a wireless transmission channel.
  • the RF unit or AISG is passed between the detecting unit and the query unit.
  • the radio frequency port information may include an azimuth of the antenna device where the radio frequency port is located or a radio frequency port identifier of the radio frequency port.
  • the radio frequency port information includes an azimuth of the antenna device and a radio frequency port identifier of the radio port.
  • the preset information of the radio frequency port may include a preset sector letter of the radio frequency port. Information and/or RF port identification information.
  • the sector information corresponding to the radio frequency port may be determined, and the sector information is compared with the preset sector information of the radio frequency port, and the query unit may determine Whether the detected RF port is incorrectly connected. For example, by comparing the radio port identifier of the radio port with the preset radio port identifier information of the radio port, it can be determined whether the main diversity of the radio port is reversed. For example, a certain radio frequency port should correspond to the second sector.
  • the detecting unit detects that the azimuth angle of the antenna device is 60°, and the angle corresponds to the first sector, thereby querying
  • the unit automatically determines the sector reversal of the co-located antenna device.
  • the query unit can automatically determine whether the main diversity is reversed by comparing and analyzing the radio port identifier detected by the detecting unit.
  • FIG. 2 shows a schematic flow chart of a detection method 200 in accordance with another embodiment of the present invention. As shown in FIG.
  • the detection method 200 is different from the detection method 100 in that the detection method 200 includes S210, and the inquiry unit feeds the detection unit, and S110 to S240 in the detection method 200 and S110 in the detection method 100 to S130 is similar and will not be described here. Therefore, according to the detecting method 200 of the embodiment of the present invention, the query unit can control whether the detecting unit is powered on, so that the detecting unit is powered on when the radio frequency port needs to be detected.
  • the data transmission between the detecting unit and the query unit may be in a wireless manner, a wired manner may also be adopted, but the detecting method according to the embodiment of the present invention may also include both wired and wireless transmissions.
  • FIG. 3 shows a schematic flow chart of a detection method 300 in accordance with yet another embodiment of the present invention.
  • the detecting method 300 includes: In S310, the detecting unit receives a radio frequency port query command sent by the query unit.
  • the detecting unit receives the radio frequency port query command sent by the query unit by using a wireless mode, a radio frequency feeder, or an AISG cable.
  • the detecting unit receives the radio frequency port query signal sent by the query unit, and the radio frequency port query signal carries the radio frequency port query command.
  • the detecting unit receives the radio frequency port query signal after the radio frequency port query command is modulated by 00K.
  • the detecting unit detects the antenna device and acquires radio frequency port information according to the radio port query command.
  • the radio frequency port information includes an azimuth of the antenna device and/or a radio port identifier of the radio port.
  • the detecting unit sends the radio frequency port information to the query unit, so that the query unit determines whether the radio frequency port is correctly connected by comparing the radio frequency port information with preset information of the radio frequency port to be detected.
  • the detecting unit sends the radio frequency port information to the query unit by using a wireless mode, a radio frequency feeder, or an AISG cable.
  • the detecting unit sends a query result signal to the query unit, where the query result signal carries the radio frequency port information.
  • the detecting unit sends a query result signal that the radio frequency port information is modulated by 00K to the query unit.
  • FIG. 4 shows a schematic block diagram of a detection device 500 in accordance with an embodiment of the present invention. As shown in FIG.
  • the detecting apparatus 500 includes: a sending module 510, a receiving module 520, and a determining module 530, where the sending module 510 is configured to send a radio frequency port query command to the detecting unit; the receiving module 520 is configured to receive the detecting unit.
  • the radio port information is sent according to the RF port query command.
  • the determining module 530 is configured to compare the radio port information with the preset information of the radio port to be detected to determine whether the radio port is correctly connected.
  • the detecting device of the embodiment of the present invention obtains the radio port information, and compares the radio port information with the preset information of the radio port to be detected to determine whether the connection of the radio port is correct, so that before the main device is powered on, It is convenient and quick to detect the RF port connection of the antenna device, thereby shortening the construction time and reducing the maintenance cost.
  • the detecting apparatus 500 may further include: a feeding module 540, configured to feed the detecting unit.
  • the sending and receiving of information between the detecting unit and the querying unit may be performed by using a signal transmission manner.
  • the sending module 510 is further configured to send a radio frequency port query signal to the detecting unit, where the radio frequency port query signal carries the The RF port query command is used by the receiving module 520 to receive the query result signal sent by the detecting unit according to the radio port query command, where the query result signal carries the radio port information.
  • the data transmission between the detecting unit and the query unit may be wired and/or wireless, and thus, the sending module 510 may be wireless, and/or a radio frequency feeder, and/or an AISG cable.
  • the radio frequency port query command is sent to the detecting unit; the receiving module 520 can receive the radio frequency port information sent by the detecting unit by using a wireless mode, and/or a radio frequency feeder, and/or an AISG cable.
  • detection device 500 corresponds to detection units in methods 100-300, and the above and other operations and/or functions of respective modules in detection device 500 are respectively implemented to implement method 100 of FIGS. 1 and 2, respectively. And the corresponding flow in 200, for brevity, will not be described here.
  • FIG. 6 shows a schematic block diagram of a detection device 600 in accordance with yet another embodiment of the present invention. As shown in FIG.
  • the detecting apparatus 600 includes: a receiving module 610, an obtaining module 620, and a sending module 630, where the receiving module 610 is configured to receive a radio frequency port query command sent by the query unit; The port query command is used to detect the antenna device and obtain the radio port information.
  • the sending module 630 is configured to send the radio port information to the query unit, so that the query unit can preset the radio port information and the radio port to be detected. The information is compared to determine if the RF port is properly connected.
  • the receiving module 610 is further configured to receive the radio frequency port query signal sent by the query unit, where the radio frequency port query signal carries the radio frequency port query command; the sending module 630 is further configured to send the query result signal to the query unit, The query result signal carries the radio port information.
  • the receiving module 610 receives the radio frequency port query command sent by the query unit by using a wireless mode, and/or a radio frequency feeder, and/or an AISG cable; the sending module 630 passes the wireless mode, and/or the The RF feeder, and/or the AISG cable, sends the RF port information to the query unit.
  • the detection device 600 corresponds to the query unit in the methods 100 to 300, and the above and other operations and/or functions of the respective modules in the detection device 600 are respectively implemented in order to implement the method 300 in FIG. The process, for the sake of brevity, will not be described here.
  • the detecting device of the embodiment of the present invention obtains the radio port information, and compares the radio port information with the preset information of the radio port to be detected to determine whether the connection of the radio port is correct, so that before the main device is powered on, It is convenient and quick to detect the RF port connection of the antenna device, thereby shortening the construction time and reducing the maintenance cost.
  • FIG. 7 shows a schematic block diagram of a detection system 700 in accordance with an embodiment of the present invention.
  • the detection system 700 includes: a query unit 710, a detection unit 720, and a transmission unit 730.
  • the query unit 710 is configured to send a radio frequency port query command to the detecting unit 720, and compare the radio frequency port information fed back by the detecting unit 720 with the preset information of the radio port to be detected to determine whether the radio frequency port is correctly connected.
  • the query unit 710 can be a portable handheld device for use by a construction worker on site, and the query unit 710 can feed the detection unit 720.
  • the detecting unit 720 is configured to query the antenna device according to the radio port query command after receiving the radio port query command sent by the query unit 710, and send the radio port to the query unit 710 after acquiring the radio port information. information.
  • the detecting unit 720 can be disposed inside the antenna device, or can be disposed outside the antenna device, for example, between the antenna device and the RF feeder.
  • the detection unit 720 can also include an azimuth sensor 721 or a radio frequency port identification reader 722.
  • the detection unit 720 can include an azimuth sensor 721 and a radio frequency port identification reader 722.
  • the transmission unit 730 is used for data transmission between the inquiry unit 710 and the detection unit 720.
  • the transmission unit 730 can include a wireless transmission module, configured to perform data transmission between the query unit 710 and the detection unit 720 by using a wireless manner.
  • the transmission unit 730 includes a radio frequency feeder and/or an AISG cable, and is used for data transmission between the inquiry unit 710 and the detection unit 720 by wire.
  • the data is transmitted between the query unit 710 and the detecting unit 720 by wire and/or wireless.
  • the query unit 710 and the detecting unit 720 may correspond to the detecting device 500 and the detecting device 600 of FIGS. 4 to 6, respectively, and detect the above and other operations and/or functions of the respective modules in the system 700.
  • the corresponding processes in the methods 100 to 300 in FIG. 1 to FIG. 3 are respectively omitted.
  • the detection system of the embodiment of the invention obtains the radio port information, and compares the radio port information with the preset information of the radio port to be detected to determine whether the connection of the radio port is correct, so that before the main device is powered on, It is convenient and quick to detect the RF port connection of the antenna device, thereby shortening the construction time and reducing the maintenance cost.
  • Those skilled in the art will appreciate that the various method steps and elements described in connection with the embodiments disclosed herein can be implemented in electronic hardware, computer software, or a combination of both, in order to clearly illustrate hardware and software. Interchangeability, the steps and composition of the various embodiments have been generally described in terms of function in the above description. Whether these functions are performed in hardware or software depends on the specific application and design constraints of the solution.

Description

检测方法、 检测装置和检测系统 本申请要求于 2011年 3月 31 日提交中国专利局、 申请号为 201110080727. 1、发明 名称为 "检测方法、 检测装置和检测系统"的中国专利申请的优先权, 其全部内容通过引用 结合在本申请中。 技术领域 本发明涉及通信领域, 尤其涉及通信领域中的检测方法、 检测装置和检测系统。 发明背景 在移动通信站点的天线设备的安装过程中, 经常会出现由于工程施工方的疏忽, 造 成同站天线设备的射频端口错接, 例如同站天线设备的扇区间反接或者主分集间反接 等。 目前, 可以根据小区间切换话统, 即通过切换小区分别统计小区话务量, 并结合工 程参数对同站天线设备的扇区是否反接进行判断。 具体地, 可以根据小区间切换话统, 并结合工程参数分析出不存在重叠覆盖区但是有切换的邻区标志为反向邻区,存在重叠 覆盖区的邻区为正向邻区。 如果服务小区 A和同站点小区 B的扇区反接, 那么 A和 B之 间存在如下规律: A的所有反向邻区都是 B的正向邻区; B的所有反向邻区都是 A的正 向邻区, 由此可以确定同站天线设备的扇区是否反接。
例如, 假设 A包括 A1和 A2扇区, B包括 B1和 B2扇区, C包括 C1和 C2扇区, A1 和 B2发生了切换, Al、 B2没有重叠覆盖区, A2、 B2有重叠覆盖区; A2和 C1发生了切 换, A2、 C1没有重叠覆盖区, Al、 C1有重叠覆盖区, 那么根据上述规律可以确定 A1和 A2扇区反接。
对于天线设备的主分集反接的情况, 一般可以根据主分集电平话统及数据配置, 分 析主分集电平相差大的载频在小区下的分布规律, 由此对主分集反接情况进行判断。
但是, 上述对射频端口错接的检测必须在整个系统上电后才能完成, 无法在安装天 线设备时进行检测, 并解决同站天线设备的扇区反接或主分集反接等射频端口错接问 题。 并且在系统上电后进行射频端口错接检测, 一方面检测时间较长, 另一方面, 一旦 检测出射频端口错接, 需要多方沟通才能解决, 对人力、 物力都是很大的浪费, 造成后 续的维护成本增加, 工期延长。 发明内容
本发明实施例提供一种检测方法、 检测装置和检测系统, 能够在主设备上电前方便 且快捷地检测天线设备的射频端口连接情况。
一方面, 本发明实施例提供了一种检测方法, 该检测方法包括: 向检测单元发送射 频端口查询命令; 接收该检测单元根据该射频端口查询命令发送的射频端口信息; 通过 将该射频端口信息与待检测射频端口的预设信息进行比较,确定该射频端口的连接是否 正确。
另一方面, 本发明实施例提供了一种检测方法, 该检测方法包括: 接收查询单元发 送的射频端口查询命令; 根据该射频端口查询命令, 对天线设备进行检测并获取射频端 口信息; 向该查询单元发送该射频端口信息, 以使得该查询单元通过将该射频端口信息 与待检测射频端口的预设信息进行比较, 确定该射频端口是否正确连接。
再一方面, 本发明实施例提供了一种检测装置, 该检测装置包括: 发送模块、 接收 模块和确定模块, 其中该发送模块用于向检测单元发送射频端口查询命令; 该接收模块 用于接收该检测单元根据该射频端口查询命令发送的射频端口信息; 该确定模块用于通 过将该射频端口信息与待检测射频端口的预设信息进行比较,确定该射频端口的连接是 否正确。
再一方面, 本发明实施例提供了一种检测装置, 该检测装置包括: 接收模块、 获取 模块和发送模块, 其中该接收模块用于接收查询单元发送的射频端口查询命令; 该获取 模块用于根据该射频端口查询命令, 对天线设备进行检测并获取射频端口信息; 该发送 模块用于向该查询单元发送该射频端口信息, 以使得该查询单元通过将该射频端口信息 与待检测射频端口的预设信息进行比较, 确定该射频端口是否正确连接。
再一方面, 本发明实施例提供了一种检测系统, 该检测系统包括: 查询单元、 检测 单元和传输单元, 其中该查询单元用于向该检测单元发送射频端口查询命令, 并通过将 该检测单元反馈的射频端口信息与待检测射频端口的预设信息进行比较,确定该射频端 口是否正确连接; 该检测单元用于在接收到该查询单元发送的射频端口查询命令之后, 根据该射频端口查询命令对天线设备进行查询, 并在获取射频端口信息后, 向该查询单 元发送该射频端口信息; 该传输单元用于该查询单元与该检测单元之间的数据传输。
基于上述技术方案, 本发明实施例的检测方法、 检测装置和检测系统, 通过获取射 频端口信息, 并通过将射频端口信息与待检测射频端口的预设信息进行比较, 确定该射 频端口的连接是否正确, 从而能够在主设备上电前, 方便且快捷地对天线设备的射频端 口连接情况进行检测, 由此能够縮短施工时间, 减小维护成本。 附图简要说明 为了更清楚地说明本发明实施例的技术方案, 下面将对本发明实施例中所需要使用 的附图作简单地介绍, 显而易见地, 下面所描述的附图仅仅是本发明的一些实施例, 对 于本领域普通技术人员来讲, 在不付出创造性劳动的前提下, 还可以根据这些附图获得 其他的附图。
图 1是根据本发明实施例的检测方法的示意性流程图。
图 2是根据本发明另一实施例的检测方法的示意性流程图。
图 3是根据本发明再一实施例的检测方法的示意性流程图。
图 4是根据本发明实施例的检测装置的示意性框图。
图 5是根据本发明另一实施例的检测装置的示意性框图。
图 6是根据本发明再一实施例的检测装置的示意性框图。
图 7是根据本发明实施例的检测系统的示意性框图。 实施本发明的方式 下面将结合本发明实施例中的附图, 对本发明实施例中的技术方案进行清楚、 完整 地描述, 显然, 所描述的实施例是本发明的一部分实施例, 而不是全部实施例。 基于本 发明中的实施例,本领域普通技术人员在没有做出创造性劳动的前提下所获得的所有其 他实施例, 都应属于本发明保护的范围。 图 1示出了根据本发明实施例的检测方法 100的示意性流程图。 如图 1所示, 该检测 方法 100包括:
S110, 向检测单元发送射频端口查询命令;
S120, 接收该检测单元根据该射频端口查询命令发送的射频端口信息; S130, 通过将该射频端口信息与待检测射频端口的预设信息进行比较, 确定该射频 端口的连接是否正确。 根据本发明实施例的检测方法, 在移动通信站点的天线设备的安装、 调试、 使用或 维护过程中, 为了对同站天线设备的射频端口连接情况进行检测, 位于地面的查询单元 可以向检测单元发送射频端口查询命令, 该射频端口查询命令用于命令检测单元对天线 设备的指定射频端口进行检测。该检测单元根据该射频端口查询命令对射频端口进行检 测, 并在获取射频端口信息后将该射频端口信息发送给查询单元, 查询单元通过将该射 频端口信息与待检测射频端口的预设信息进行比较, 确定该射频端口的连接是否正确。 因此, 本发明实施例的检测方法通过获取射频端口信息, 并通过将射频端口信息与 待检测射频端口的预设信息进行比较, 确定该射频端口的连接是否正确, 从而能够在主 设备上电前, 方便且快捷地对天线设备的射频端口连接情况进行检测, 由此能够縮短施 工时间, 减小维护成本。 在本发明实施例中, 检测单元与查询单元之间信息的收发可以采用信号传输的方 式, 即查询单元向检测单元发送射频端口查询命令可以包括: 查询单元向该检测单元发 送射频端口查询信号, 该射频端口查询信号承载该射频端口查询命令; 查询单元接收该 检测单元根据该射频端口查询命令发送的射频端口信息可以包括: 查询单元接收该检测 单元根据该射频端口查询命令发送的查询结果信号, 该查询结果信号承载该射频端口信 息。 具体而言, 查询单元将射频端口查询命令转换成射频端口查询信号, 并向检测单元 下发该射频端口查询信号; 检测单元收到该射频端口查询信号后, 执行该射频端口查询 信号承载的射频端口查询命令,对天线设备的射频端口进行检测,并获得射频端口信息; 检测单元将该射频端口信息转换成查询结果信号后发送给查询单元; 查询单元通过将该 查询结果信号中承载的射频端口信息与待检测射频端口的预设信息进行比较,确定该射 频端口的连接是否正确。 可选地, 检测单元与查询单元可以将要发送的信息先经过 00K ( 0n-0ff Keying, 即二进制启闭键控) 调制成信号后再发送, 并接收经过 00K调制后的 信号。 在本发明实施例中, 检测单元与查询单元之间的数据传输可以采用无线的方式, 例 如采用 WIFI的方式, 也可以采用有线的方式。 可选地, 检测单元与查询单元之间通过无 线传输通道进行数据传输。 可选地, 检测单元与查询单元之间通过射频馈线或 AISG
(Antenna Interface Standards Group, 即天线接口标准化组织) 线缆进行数据传输。 在本发明实施例中,射频端口信息可以包括该射频端口所在的天线设备的方位角或 该射频端口的射频端口标识。 可选地, 该射频端口信息包括该天线设备的方位角和该射 频端口的射频端口标识。 相应地, 射频端口的预设信息可以包括射频端口的预设扇区信 息和 /或射频端口标识信息。 例如, 根据该方位角信息以及角度与扇区的对应关系, 可 以确定该射频端口所对应的扇区信息,将该扇区信息与该射频端口的预设扇区信息进行 比较, 查询单元可以确定被检测的射频端口是否错接。 例如, 通过将该射频端口的射频 端口标识与该射频端口的预设射频端口标识信息进行比较, 可以确定射频端口的主分集 是否反接。 例如, 某一射频端口应该与第二扇区对应, 但是根据本发明实施例的检测方法, 检 测单元检测出该天线设备的方位角为 60° , 那么该角度对应第一扇区, 由此查询单元自 动确定同站天线设备的扇区反接。 类似地, 根据主集和分集与端口的对应关系, 通过检 测单元检测出的射频端口标识, 查询单元通过比较分析, 也可以自动地确定主分集是否 反接。 图 2示出了根据本发明另一实施例的检测方法 200的示意性流程图。 如图 2所示, 该 检测方法 200与检测方法 100的区别在于, 该检测方法 200包括 S210, 查询单元向检测单 元馈电, 该检测方法 200中的 S220至 S240与检测方法 100中的 S110至 S130相类似, 在此不 再赘述。 因而, 根据本发明实施例的检测方法 200, 查询单元可以控制检测单元是否上 电, 以在需要对射频端口进行检测时才使检测单元上电。 在本发明实施例中, 虽然检测单元与查询单元之间的数据传输可以采用无线的方 式, 也可以采用有线的方式, 但是根据本发明实施例的检测方法也可以同时包括有线和 无线两种传输数据的方式, 以确保检测单元与查询单元之间的数据传输。 在此情况下, 查询单元可以通过无线方式发送射频端口查询命令, 并通过有线方式接收射频端口信 息; 当然, 查询单元也可以通过有线方式发送射频端口查询命令, 并通过无线方式接收 射频端口信息; 并且在采用有线方式时, 可以选择射频馈线和 /或 AISG线缆。 这些修改 或替换都落在本发明的范围内。 图 3示出了根据本发明再一实施例的检测方法 300的示意性流程图。 如图 3所示, 该 检测方法 300包括: 在 S310中, 检测单元接收查询单元发送的射频端口查询命令。 可选地, 检测单元通 过无线方式、射频馈线或 AISG线缆接收该查询单元发送的该射频端口查询命令。可选地, 检测单元接收该查询单元发送的射频端口查询信号, 该射频端口查询信号承载该射频端 口查询命令。 具体地, 检测单元接收将射频端口查询命令通过 00K调制后的射频端口查 询信号。 在 S320中, 检测单元根据该射频端口查询命令, 对天线设备进行检测并获取射频端 口信息。 可选地, 该射频端口信息包括该天线设备的方位角和 /或该射频端口的射频端 口标识。 在 S330中, 检测单元向该查询单元发送该射频端口信息, 以使得该查询单元通过将 该射频端口信息与待检测射频端口的预设信息进行比较, 确定该射频端口是否正确连 接。 可选地, 检测单元通过无线方式、 射频馈线或 AISG线缆向该查询单元发送该射频端 口信息。 可选地, 检测单元向该查询单元发送查询结果信号, 该查询结果信号承载该射 频端口信息。 具体地, 检测单元向查询单元发送将射频端口信息通过 00K调制后的查询 结果信号。 本发明实施例的检测方法, 通过获取射频端口信息, 并通过将射频端口信息与待检 测射频端口的预设信息进行比较, 确定该射频端口的连接是否正确, 从而能够在主设备 上电前, 方便且快捷地对天线设备的射频端口连接情况进行检测, 由此能够縮短施工时 间, 减小维护成本。 下面将描述根据本发明实施例的检测装置和检测系统。 图 4示出了根据本发明实施例的检测装置 500的示意性框图。 如图 4所示, 该检测装 置 500包括: 发送模块 510、 接收模块 520和确定模块 530, 其中该发送模块 510用于向检 测单元发送射频端口查询命令; 该接收模块 520用于接收该检测单元根据该射频端口查 询命令发送的射频端口信息; 该确定模块 530用于通过将该射频端口信息与待检测射频 端口的预设信息进行比较, 确定该射频端口的连接是否正确。 本发明实施例的检测装置, 通过获取射频端口信息, 并通过将射频端口信息与待检 测射频端口的预设信息进行比较, 确定该射频端口的连接是否正确, 从而能够在主设备 上电前, 方便且快捷地对天线设备的射频端口连接情况进行检测, 由此能够縮短施工时 间, 减小维护成本。 可选地, 如图 5所示, 根据本发明实施例的检测装置 500还可以包括: 馈电模块 540, 用于向检测单元馈电。 在本发明实施例中, 检测单元与查询单元之间信息的收发可以采用信号传输的方 式, 因而, 该发送模块 510还用于向该检测单元发送射频端口查询信号, 该射频端口查 询信号承载该射频端口查询命令; 该接收模块 520还用于接收该检测单元根据该射频端 口查询命令发送的查询结果信号, 该查询结果信号承载该射频端口信息。 在本发明实施例中, 检测单元与查询单元之间的数据传输可以采用有线和 /或无线 的方式, 因而, 发送模块 510可以通过无线方式、 和 /或射频馈线、 和 /或 AISG线缆, 向 该检测单元发送该射频端口查询命令;接收模块 520可以通过无线方式、和 /或射频馈线、 和 /或 AISG线缆接收该检测单元发送的该射频端口信息。 在本发明实施例中, 检测装置 500对应于方法 100至 300中的检测单元, 并且检测装 置 500中的各个模块的上述和其它操作和 /或功能分别为了实现图 1和图 2中的方法 100和 200中的相应流程, 为了简洁, 在此不再赘述。 图 6示出了根据本发明再一实施例的检测装置 600的示意性框图。 如图 6所示, 该检 测装置 600包括: 接收模块 610、 获取模块 620和发送模块 630, 其中该接收模块 610用于 接收查询单元发送的射频端口查询命令; 该获取模块 620用于根据该射频端口查询命令, 对天线设备进行检测并获取射频端口信息; 该发送模块 630用于向该查询单元发送该射 频端口信息, 以使得该查询单元通过将该射频端口信息与待检测射频端口的预设信息进 行比较, 确定该射频端口是否正确连接。 可选地, 该接收模块 610还用于接收该查询单元发送的射频端口查询信号, 该射频 端口查询信号承载该射频端口查询命令; 该发送模块 630还用于向该查询单元发送查询 结果信号, 该查询结果信号承载该射频端口信息。 可选地, 该接收模块 610通过无线方式、 和 /或射频馈线、 和 /或 AISG线缆, 接收该 查询单元发送的该射频端口查询命令; 该发送模块 630通过该无线方式、 和 /或该射频馈 线、 和 /或该 AISG线缆, 向该查询单元发送该射频端口信息。 在本发明实施例中, 检测装置 600对应于方法 100至 300中的查询单元, 并且检测装 置 600中的各个模块的上述和其它操作和 /或功能分别为了实现图 3中的方法 300中的相 应流程, 为了简洁, 在此不再赘述。 本发明实施例的检测装置, 通过获取射频端口信息, 并通过将射频端口信息与待检 测射频端口的预设信息进行比较, 确定该射频端口的连接是否正确, 从而能够在主设备 上电前, 方便且快捷地对天线设备的射频端口连接情况进行检测, 由此能够縮短施工时 间, 减小维护成本。 图 7示出了根据本发明实施例的检测系统 700的示意性框图。 如图 7所述, 该检测系 统 700包括: 查询单元 710、 检测单元 720和传输单元 730。 该查询单元 710用于向该检测单元 720发送射频端口查询命令, 并通过将该检测单元 720反馈的射频端口信息与待检测射频端口的预设信息进行比较, 确定该射频端口是否 正确连接。 该查询单元 710可以是供工程施工人员现场使用的便携式手持设备, 该查询 单元 710可以给检测单元 720馈电。 该检测单元 720用于在接收到该查询单元 710发送的射频端口查询命令之后,根据该 射频端口查询命令对天线设备进行查询, 并在获取射频端口信息后, 向该查询单元 710 发送该射频端口信息。 该检测单元 720可以设置在天线设备的内部, 也可以设置在天线 设备的外部, 例如设置在天线设备与射频馈线之间。 该检测单元 720还可以包括方位角 传感器 721或射频端口标识读取器 722, 可选地, 该检测单元 720可以包括方位角传感器 721和射频端口标识读取器 722。 该传输单元 730用于该查询单元 710与该检测单元 720之间的数据传输。 该传输单元 730可以包括无线传输模块, 用于查询单元 710与检测单元 720之间通过无线方式进行数 据传输。 可选地, 该传输单元 730包括射频馈线和 /或 AISG线缆, 用于查询单元 710与检 测单元 720之间通过有线方式进行数据传输。 可选地, 查询单元 710与检测单元 720之间 通过有线和 /或无线方式进行数据传输。 在本发明实施例中, 查询单元 710和检测单元 720可以分别对应于图 4至图 6中的检测 装置 500和检测装置 600, 并且检测系统 700中的各个模块的上述和其它操作和 /或功能分 别为了实现图 1至图 3中的方法 100至 300中的相应流程, 为了简洁, 在此不再赘述。 本发明实施例的检测系统, 通过获取射频端口信息, 并通过将射频端口信息与待检 测射频端口的预设信息进行比较, 确定该射频端口的连接是否正确, 从而能够在主设备 上电前, 方便且快捷地对天线设备的射频端口连接情况进行检测, 由此能够縮短施工时 间, 减小维护成本。 本领域普通技术人员可以意识到, 结合本文中所公开的实施例中描述的各方法步骤 和单元, 能够以电子硬件、 计算机软件或者二者的结合来实现, 为了清楚地说明硬件和 软件的可互换性, 在上述说明中已经按照功能一般性地描述了各实施例的步骤及组成。 这些功能究竟以硬件还是软件方式来执行, 取决于技术方案的特定应用和设计约束条 件。 本领域普通技术人员可以对每个特定的应用来使用不同方法来实现所描述的功能, 但是这种实现不应认为超出本发明的范围。 结合本文中所公开的实施例描述的方法或步骤可以用硬件、 处理器执行的软件程 序, 或者二者的结合来实施。 软件程序可以置于随机存储器 (RAM) 、 内存、 只读存储 器 (ROM) 、 电可编程 R0M、 电可擦除可编程 R0M、 寄存器、 硬盘、 可移动磁盘、 CD_R0M、 或技术领域内所公知的任意其它形式的存储介质中。 尽管通过参考附图并结合优选实施例的方式对本发明进行了详细描述,但本发明并 不限于此。 在不脱离本发明的精神和实质的前提下, 本领域普通技术人员可以对本发明 的实施例进行各种等效的修改或替换, 而这些修改或替换都应在本发明的涵盖范围内。

Claims

权利要求
1、 一种检测方法, 其特征在于, 包括:
向检测单元发送射频端口查询命令;
接收所述检测单元根据所述射频端口查询命令发送的射频端口信息;
通过将所述射频端口信息与待检测射频端口的预设信息进行比较,确定所述射频端 口的连接是否正确。
2、 根据权利要求 1所述的检测方法, 其特征在于, 在向检测单元发送射频端口查询 命令之前, 所述检测方法还包括:
向所述检测单元馈电。
3、 根据权利要求 1所述的检测方法, 其特征在于, 所述向检测单元发送射频端口查 询命令, 包括: 向所述检测单元发送射频端口查询信号, 所述射频端口查询信号承载所 述射频端口查询命令;
所述接收所述检测单元根据所述射频端口查询命令发送的射频端口信息, 包括: 接 收所述检测单元根据所述射频端口查询命令发送的查询结果信号,所述查询结果信号承 载所述射频端口信息。
4、 根据权利要求 1所述的检测方法, 其特征在于, 所述向检测单元发送射频端口查 询命令, 包括: 通过无线方式、 射频馈线或 AISG线缆向所述检测单元发送所述射频端口 查询命令;
所述接收所述检测单元根据所述射频端口查询命令发送的射频端口信息, 包括: 通 过所述无线方式、所述射频馈线或所述 AISG线缆接收所述检测单元发送的所述射频端口 信息。
5、 根据权利要求 1所述的检测方法, 其特征在于, 所述射频端口信息包括所述射频 端口所在的天线设备的方位角和 /或所述射频端口的射频端口标识。
6、 一种检测方法, 其特征在于, 包括:
接收查询单元发送的射频端口查询命令;
根据所述射频端口查询命令, 对天线设备进行检测并获取射频端口信息; 向所述查询单元发送所述射频端口信息, 以使得所述查询单元通过将所述射频端口 信息与待检测射频端口的预设信息进行比较, 确定所述射频端口是否正确连接。
7、 根据权利要求 6所述的检测方法, 其特征在于, 所述接收查询单元发送的射频端 口查询命令, 包括: 接收所述查询单元发送的射频端口查询信号, 所述射频端口查询信 号承载所述射频端口查询命令;
所述向所述查询单元发送所述射频端口信息, 包括: 向所述查询单元发送查询结果 信号, 所述查询结果信号承载所述射频端口信息。
8、 根据权利要求 6所述的检测方法, 其特征在于, 所述接收查询单元发送的射频端 口查询命令, 包括: 通过无线方式、 射频馈线或 AISG线缆接收所述查询单元发送的所述 射频端口查询命令;
所述向所述查询单元发送所述射频端口信息, 包括: 通过所述无线方式、 所述射频 馈线或所述 AISG线缆向所述查询单元发送所述射频端口信息。
9、 一种检测装置, 其特征在于, 包括:
发送模块, 用于向检测单元发送射频端口查询命令;
接收模块, 用于接收所述检测单元根据所述射频端口查询命令发送的射频端口信 息;
确定模块, 用于通过将所述射频端口信息与待检测射频端口的预设信息进行比较, 确定所述射频端口的连接是否正确。
10、 根据权利要求 9所述的检测装置, 其特征在于, 所述检测装置还包括: 馈电模块, 用于向所述检测单元馈电。
11、 根据权利要求 9所述的检测装置, 其特征在于, 所述发送模块还用于向所述检 测单元发送射频端口查询信号, 所述射频端口查询信号承载所述射频端口查询命令; 所述接收模块还用于接收所述检测单元根据所述射频端口查询命令发送的查询结 果信号, 所述查询结果信号承载所述射频端口信息。
12、 一种检测装置, 其特征在于, 包括:
接收模块, 用于接收查询单元发送的射频端口查询命令;
获取模块, 用于根据所述射频端口查询命令, 对天线设备进行检测并获取射频端口 信息;
发送模块, 用于向所述查询单元发送所述射频端口信息, 以使得所述查询单元通过 将所述射频端口信息与待检测射频端口的预设信息进行比较,确定所述射频端口是否正 确连接。
13、 根据权利要求 12所述的检测装置, 其特征在于, 所述接收模块还用于接收所述 查询单元发送的射频端口查询信号, 所述射频端口查询信号承载所述射频端口查询命 令;
所述发送模块还用于向所述查询单元发送查询结果信号,所述查询结果信号承载所 述射频端口信息。
14、 一种检测系统, 其特征在于, 包括: 查询单元、 检测单元和传输单元, 其中, 所述查询单元用于向所述检测单元发送射频端口查询命令, 并通过将所述检测单元 反馈的射频端口信息与待检测射频端口的预设信息进行比较,确定所述射频端口是否正 确连接;
所述检测单元用于在接收到所述查询单元发送的射频端口查询命令之后,根据所述 射频端口查询命令对天线设备进行查询, 并在获取射频端口信息后, 向所述查询单元发 送所述射频端口信息;
所述传输单元用于所述查询单元与所述检测单元之间的数据传输。
15、 根据权利要求 14所述的检测系统, 其特征在于, 所述传输单元包括无线传输模 块、 射频馈线或 AISG线缆。
16、 根据权利要求 14所述的检测系统, 其特征在于, 所述检测单元包括方位角传感 器和 /或射频端口标识读取器。
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