WO2012171204A1 - 一种基站的故障检测方法及装置 - Google Patents

一种基站的故障检测方法及装置 Download PDF

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Publication number
WO2012171204A1
WO2012171204A1 PCT/CN2011/075817 CN2011075817W WO2012171204A1 WO 2012171204 A1 WO2012171204 A1 WO 2012171204A1 CN 2011075817 W CN2011075817 W CN 2011075817W WO 2012171204 A1 WO2012171204 A1 WO 2012171204A1
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Prior art keywords
base station
information code
detecting device
fault
information
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PCT/CN2011/075817
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English (en)
French (fr)
Inventor
尚春庆
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华为技术有限公司
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Publication date
Application filed by 华为技术有限公司 filed Critical 华为技术有限公司
Priority to PCT/CN2011/075817 priority Critical patent/WO2012171204A1/zh
Priority to CN2011800011890A priority patent/CN103053192A/zh
Publication of WO2012171204A1 publication Critical patent/WO2012171204A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/04Arrangements for maintaining operational condition

Definitions

  • the present invention relates to the field of communications technologies, and in particular, to a method and an apparatus for detecting a fault of a base station.
  • a commercial wireless network is often composed of hundreds of base stations.
  • the hardware installation of the base station is first completed by the technical worker, and then the system debugging engineer performs software configuration and system parameter debugging on the base station.
  • the technical worker needs to carry a notebook computer with specific test software installed, and use the test software to test the installed base station, and the detection method is complicated and cumbersome.
  • the damage caused by frequent movements to the computer hard disk during the installation process, and the training cost of training the skilled worker to use the test software correctly the hardware installation cost of the base station is increased.
  • the embodiment of the invention provides a method and a device for detecting a fault of a base station, which improves the fault detection efficiency of the base station and reduces the hardware installation cost of the base station.
  • a method for detecting a fault of a base station includes:
  • a fault detecting device for a base station comprising:
  • An acquiring unit configured to detect a base station, and obtain a detection result
  • a converting unit configured to convert the detection result into an information code
  • a sending unit configured to send the information code to the detecting device, so that the detecting device
  • the information code is provided to the user, so that the user determines the failure of the base station according to the information code.
  • the method and device for detecting a fault of a base station first detects a base station, acquires a detection result, and then converts the detection result into an information code, and sends the information code to a detecting device, so that the The detecting device provides the information code to the user, so that the user determines the fault of the base station according to the information code.
  • the self-test result can be automatically converted into an information code, and the information code is provided to the user through the detecting device, the user can quickly determine the fault of the base station according to the information code, thereby improving the fault detection efficiency of the base station;
  • the user can obtain the information code indicating the detection result by using the detecting device, and the detecting device is low in cost, simple in structure, and convenient to apply, thereby eliminating the training cost of the skilled worker, thereby reducing the hardware installation of the base station. cost. Therefore, with the technical solution of the embodiment of the present invention, the fault detection efficiency of the base station is improved, and the hardware installation cost of the base station is reduced.
  • FIG. 1 is a flowchart of a method for detecting a fault of a base station according to an embodiment of the present invention
  • FIG. 2 is a flowchart of a method for detecting a fault of a base station according to Embodiment 2 of the present invention
  • FIG. 3 is a schematic diagram of a fault detecting apparatus for a base station according to Embodiment 3 of the present invention.
  • FIG. 4 is still another schematic diagram of a fault detecting apparatus for a base station according to Embodiment 3 of the present invention.
  • FIG. 5 is still another schematic diagram of a fault detecting apparatus for a base station according to Embodiment 3 of the present invention.
  • the first embodiment of the present invention provides a method for detecting a fault of a base station, which includes the following steps:
  • Step 11 Perform detection on the base station to obtain the detection result.
  • the self-test software may be installed in the base station, and the self-test software is used to detect the common fault of the base station.
  • the conventional failure may be a transmission failure, a hardware failure, an interference failure, or the like.
  • the type of the normal fault detected by the self-test software may also be set.
  • the self-test software may be set to detect only one conventional fault, such as a transmission fault; or, the self-test software may be set to simultaneously transmit the fault.
  • Three kinds of conventional faults, hardware faults and interference faults are detected.
  • the type of the conventional fault to be detected set by the user is not excessive.
  • Step 12 Convert the detection result into an information code.
  • the information code is represented in various manners.
  • the information code may be represented as binary code, decimal code, or the like.
  • the corresponding relationship between the detection result and the information code may be compiled into a manual, so that the user can restore the obtained information code to the detection result of the base station by using the manual, and further determine the result according to the detection result. The failure of the base station, thereby performing a troubleshooting operation on the base station.
  • Step 13 Send the information code to the detecting device, so that the detecting device provides the information code to the user, so that the user determines the fault of the base station according to the information code.
  • the detection device carries a standard external interface, such as a USBQJniversal Serial BUS (Universal Serial Bus), a network port, a serial port, a wireless infrared interface, or a WIFI (wireless fidelity) interface.
  • a standard external interface such as a USBQJniversal Serial BUS (Universal Serial Bus), a network port, a serial port, a wireless infrared interface, or a WIFI (wireless fidelity) interface.
  • the base station is also provided with the above standard interface.
  • the detecting device can also set a display screen to enable the user to acquire the information code quickly and in time.
  • the detecting device may also be a smart terminal installed with specific software (such as detector software) and carrying an external interface of the above standard.
  • specific software such as detector software
  • the smart terminal utilizes the The specific software and the external interface may receive the information code transmitted by the base station according to the detection result, and provide the information code to the user.
  • the smart terminal may download the specific software from a website specified by a vendor of the detecting device.
  • the self-test result can be automatically converted into an information code, and the information code is provided to the user through the detecting device, the user can quickly determine the fault of the base station according to the information code, thereby improving the base station. Fault detection efficiency;
  • the detection device is low in cost, simple in structure, and convenient to apply, thereby eliminating the training cost of the skilled worker and further reducing The hardware installation cost of the base station. Therefore, the technical solution of the embodiment of the present invention improves the fault detection efficiency of the base station and reduces the hardware installation cost of the base station.
  • a second embodiment of the present invention provides a method for detecting a fault of a base station, which includes the following steps:
  • Step 20 Set a detection time interval of the base station and an output time interval of the information code.
  • the detection time interval of the base station may be set in advance; correspondingly, in order to enable the detecting device to receive the information code in time, the information code may also be set. Output time interval.
  • the detection time interval and the output time interval of the information code can be arbitrarily set.
  • the detection time interval is set to 1 minute, and the output time interval of the information code is set to 1 second.
  • the detection time interval of the base station is greater than the output time interval of the information code.
  • Step 21 Perform detection on the base station according to the detection time interval, and obtain a detection result.
  • the detection process for the base station can refer to step 1 1 of the foregoing method embodiment. For example, if the detection time interval is set to 1 minute, the base station is detected every 1 minute to obtain a detection result.
  • Step 22 Convert the detection result into an information code.
  • the method encodes the detection result and uses the encoded result as an information code.
  • an information code There are various encoding methods, such as a binary encoding method, a decimal encoding method, and the like.
  • the information code can be represented as binary code, decimal code, and the like.
  • the information code converted from the detection result should be as concise as possible.
  • the encoding method of "binary" is taken as an example for illustration.
  • the identifier position corresponding to the fault is 1, and the identifier position corresponding to the other non-existent fault is 0, as shown in Table 1 below:
  • the above "binary” coding can be further converted into “decimal” coding.
  • the "decimal" code converted by the above five-digit “binary” code is any integer of 0-31, wherein 0 means that no fault exists, and the values in 1-31 respectively represent the above, B, C Different combinations of five faults, D and E.
  • the base station performs a self-test, it is determined that three faults A, C, and D exist simultaneously, and the "binary" code indicating the self-test result is 01101, and the corresponding "decimal” code is 13; if, B The five faults of C, D and E exist, indicating that the "binary" code of the self-test result is 11111, the corresponding "decimal” code is 31; if the five faults A, B, C, D and E If it does not exist, then the "binary" code indicating the self-test result is 00000, and the corresponding "decimal” code is 0.
  • Step 23 Obtain debugging information of the base station.
  • the debugging information includes a positioning log, where the positioning log is specifically an operation status information or data transmission information of the base station.
  • the above debugging information helps the network operator to the base The station performs real-time monitoring to quickly determine the cause of the failure of the base station and the like.
  • Step 24 Send the information code and the debugging information to the detecting device, so that the detecting device provides the information code and the debugging information to the user, so that the user can use the information code and the The debug information determines the failure of the base station.
  • This step can be referred to step 23 in the foregoing method embodiment.
  • the format of the information code output interface may be “ ⁇ n nf ocode> information string ⁇ / i nf ocode>”.
  • the information code and the debugging information may be transmitted to the detecting device according to a preset output time interval. For example, if the output time interval of the information code is set to 1 second, the information code and the debug information may be transmitted to the detecting device every 1 second.
  • the user may determine the fault of the base station based only on the information code. However, if after determining the fault of the base station by using the information code, if you want to further find the cause of the fault or perform statistics on the fault, you can further analyze the debug information to obtain a more accurate base station. The cause of the failure.
  • the base station is powered on, performs a self-test, and obtains a self-test result, and then automatically converts the detection result into an information code; and then provides the information code to the user by using the detecting device; After the information code is obtained, the information code is first restored to the detection result according to the manual, and then the fault of the base station is determined.
  • the "decimal" encoding converted by the "binary” encoding is taken as an example.
  • the self-test result can be automatically converted into an information code, and the information code is provided to the user through the detecting device, the user can quickly determine the fault of the base station according to the information code, thereby improving the base station. Fault detection efficiency;
  • the detection device is low in cost, simple in structure, and convenient to apply, thereby eliminating the training cost of the skilled worker and further reducing The hardware installation cost of the base station. Therefore, with the technical solution of the embodiment of the present invention, the fault detection efficiency of the base station is improved, and the hardware installation cost of the base station is reduced.
  • the third embodiment of the present invention provides a fault detection apparatus for a base station, including: an acquiring unit 31, configured to perform detection on a base station, and obtain a detection result; and a converting unit 32, configured to convert the detection result
  • the sending unit 33 is configured to send the information code to the detecting device, so that the detecting device provides the information code to the user, so that the user determines the base station according to the signal and the code. malfunction.
  • the converting unit 32 may include: an encoding mode determining module, configured to determine an encoding manner of the detection result; and an information code determining module, configured to encode the detection result according to the encoding manner, The encoded result is taken as the information code.
  • the apparatus further includes: a first setting unit 41, configured to set a detection time interval;
  • the acquiring unit 31 is specifically configured to detect the base station according to the set detection time interval, and obtain the detection result.
  • the device further includes: a second setting unit 51, configured to set an output of the information code Time interval; At this time, the sending unit 33 is specifically configured to send the information code to the detecting device according to the set output time interval.
  • the first setting unit 41 and the second setting unit 51 may be two independent setting units, or may be designed as the same setting unit, specifically for setting the detection time interval and setting the output of the information code. time interval.
  • the obtaining unit 31 is further configured to acquire debugging information; the sending unit 33 further uses And sending the debugging information to the detecting device, so that the detecting device provides the debugging information to a user, so that the user is configured to perform debugging according to determining a fault of the base station according to the information code.
  • the information further determines the cause of the failure of the base station.
  • the self-test result can be automatically converted into an information code, and the information code is provided to the user through the detecting device, the user can quickly determine the fault of the base station according to the information code, thereby improving the base station. Fault detection efficiency;
  • the detection device is low in cost, simple in structure, and convenient to apply, thereby eliminating the training cost of the skilled worker and further reducing The hardware installation cost of the base station. Therefore, with the apparatus of the embodiment of the invention, the fault detection efficiency of the base station is improved, and the hardware installation cost of the base station is reduced.
  • the technical solution of the embodiment of the present invention improves the fault detection efficiency of the base station and reduces the hardware installation cost of the base station.

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Mobile Radio Communication Systems (AREA)

Abstract

本发明实施例公开了一种基站的故障检测方法及装置,涉及通信技术领域,为提高基站的故障检测效率并降低基站的硬件安装成本而发明。所述方法包括:对基站进行检测,获取检测结果;将所述检测结果转换成信息码;将所述信息码发送至检测设备,以使所述检测设备将所述信息码提供给用户,便于所述用户根据所述信息码确定所述基站的故障。本发明实施例主要用于各种基站的故障检测技术中。

Description

一种基站的故障检测方法及装置 技术领域
本发明涉及通信技术领域, 尤其涉及一种基站的故障检测方法及装 置。
背景技术
一个商用无线网络往往由成千上百的基站组成。在这样大规模的网络 建设过程中, 首先由技术工人完成基站的硬件安装, 进而由系统调试工程 师对基站进行软件配置和系统参数调试。
为了确保基站的硬件安装正确,技术工人工作时需要携带安装有特定 测试软件的笔记本电脑, 并利用所述测试软件对安装后的基站进行测试, 此检测方法复杂、 繁瑣。 另外, 由于笔记本电脑的昂贵价格, 安装过程中 频繁移动给电脑硬盘带来的损坏,以及培训技术工人正确使用测试软件的 培训费用等问题, 使基站的硬件安装成本增加。
发明内容
本发明实施例提供一种基站的故障检测方法及装置,提高了基站的故 障检测效率, 并降低了基站的硬件安装成本。
本发明实施例采用如下技术方案:
一种基站的故障检测方法, 包括:
对基站进行检测, 获取检测结果;
将所述检测结果转换成信息码;
将所述信息码发送至检测设备,以使所述检测设备将所述信息码提供 给用户, 便于所述用户根据所述信息码确定所述基站的故障。
一种基站的故障检测装置, 包括:
获取单元, 用于对基站进行检测, 获取检测结果;
转换单元, 用于将所述检测结果转换成信息码;
发送单元, 用于将所述信息码发送至检测设备, 以使所述检测设备将 所述信息码提供给用户,便于所述用户根据所述信息码确定所述基站的故 障。
本发明实施例提供的基站的故障检测方法及装置,首先对基站进行检 测, 获取检测结果, 然后将所述检测结果转换成信息码, 并将所述信息码 发送至检测设备, 以使所述检测设备将所述信息码提供给用户,便于所述 用户根据所述信息码确定所述基站的故障。由于能够自动将自检结果转换 成信息码, 并将所述信息码通过检测设备提供给用户, 因而用户可根据该 信息码快速地确定该基站的故障,从而提高了基站的故障检测效率;另外, 由于用户可通过所述检测设备就能获取表示检测结果的信息码,而所述检 测设备成本低廉、 构造简单、 便于应用, 故省去了技术工人的培训费用, 进而降低了基站的硬件安装成本。 因此, 利用本发明实施例的技术方案, 提高了基站的故障检测效率, 并降低了基站的硬件安装成本。
附图说明
为了更清楚地说明本发明实施例的技术方案, 下面将对实施例描述中 所需要使用的附图作一简单地介绍, 显而易见地, 下面描述中的附图仅仅 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为本发明实施例一基站的故障检测方法的流程图;
图 2为本发明实施例二基站的故障检测方法的流程图;
图 3为本发明实施例三基站的故障检测装置的示意图;
图 4为本发明实施例三基站的故障检测装置的又一示意图;
图 5为本发明实施例三基站的故障检测装置的又一示意图。
具体实施方式
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,所描述的实施例仅仅是本发明一部分实施例, 而不是全部的实施例。 基于本发明中的实施例, 本领域普通技术人员在没 有做出创造性劳动前提下所获得的所有其他实施例,都属于本发明保护的 范围。 如图 1所示, 本发明实施例一提供了一种基站的故障检测方法, 包括 如下步骤:
步骤 11、 对基站进行检测, 获取检测结果。
其中, 可以在基站中安装自检软件, 利用该自检软件对所述基站的常 规故障进行检测。 此处, 所述常规故障可以为传输故障、 硬件故障以及干 扰故障等。
另外, 还可以设置该自检软件所检测的常规故障的类型, 例如, 可以 设置该自检软件仅对一种常规故障进行检测, 比如传输故障; 或者, 可以 设置该自检软件同时对传输故障、硬件故障以及干扰故障这三种常规故障 进行检测。 一般地, 为使所述用户快速获取所述基站的硬件安装故障, 并 简化所述用户对所述基站的排障操作,所述用户设置的待检测的常规故障 的类型不宜过多。
步骤 12、 将所述检测结果转换成信息码。
在本实施例中, 所述信息码的表示方式有很多种, 例如,所述信息码 可以表示为二进制编码、 十进制编码等。 另外, 还可以将所述检测结果与 信息码的对应关系编制成手册,便于所述用户通过所述手册将获取的信息 码还原成所述基站的检测结果,进而根据所述检测结果确定所述基站的故 障, 从而对所述基站进行排障操作。
步骤 13、 将所述信息码发送至检测设备, 以使所述检测设备将所述 信息码提供给用户, 便于所述用户根据所述信息码确定所述基站的故障。
其中, 所述检测设备携带有标准的外部接口, 例如, USBQJniversal Serial BUS,通用串行总线)、网口 、串口、无线红外接口或 WIFI( wireless fidelity, 无线保真)接口等。 相应的, 为便于所述基站向所述检测设备 发送信息码, 所述基站也设置有上述标准接口。 并且, 所述检测设备还可 以设置显示屏以使所述用户快速而及时地获取所述信息码。
具体应用中,所述检测设备也可以为安装有特定软件(如检测器软件 ) 并携带有上述标准的外部接口的智能终端。 具体的, 该智能终端利用所述 特定软件和外部接口可以接收由基站发送的根据检测结果转换的信息码, 并将所述信息码提供给用户。 另外, 所述智能终端可以从上述检测设备的 厂商指定的网址下载所述特定软件。
从上述描述可知, 由于能够自动将自检结果转换成信息码, 并将所述 信息码通过检测设备提供给用户,因而用户可根据该信息码快速地确定该 基站的故障, 从而提高了基站的故障检测效率; 另外, 由于用户可通过所 述检测设备就能获取表示检测结果的信息码, 而所述检测设备成本低廉、 构造简单、 便于应用, 故省去了技术工人的培训费用, 进而降低了基站的 硬件安装成本。 因此, 利用本发明实施例的技术方案, 提高了基站的故障 检测效率, 并降低了基站的硬件安装成本。
如图 2所示, 本发明实施例二提供了一种基站的故障检测方法, 包括 如下步骤:
步骤 20、 设置基站的检测时间间隔和信息码的输出时间间隔。
在本实施例中, 为了保证表示基站检测结果的信息码的实时性, 可以 预先设置基站的检测时间间隔; 相应的, 为了使检测设备可以及时地接收 到所述信息码, 也可以设置信息码的输出时间间隔。
其中, 所述检测时间间隔和信息码的输出时间间隔都可以任意设置, 例如, 所述检测时间间隔设置为 1分钟, 所述信息码的输出时间间隔设置 为 1秒。 具体应用中, 为了将所有由检测结果转换而来的信息码没有遗漏 地发送至检测设备,所述基站的检测时间间隔大于所述信息码的输出时间 间隔。
步骤 21、 根据所述检测时间间隔对基站进行检测, 获取检测结果。 在此步骤中, 对基站的检测过程可参照前述方法实施例的步骤 1 1。 例如, 若将所述检测时间间隔设置为 1分钟, 那么对所述基站每隔 1分钟 进行检测, 获取检测结果。
步骤 22、 将所述检测结果转换成信息码。
在此过程中, 首先确定所述检测结果的编码方式, 然后按照所述编码 方式将所述检测结果进行编码, 并将编码结果作为信息码。 其中, 所述编 码方式有多种, 例如二进制编码方式, 十进制编码方式等。 相应的, 所述 信息码可以表示为二进制编码, 十进制编码等。 为了便于所述用户快速获 取所述基站的故障, 由所述检测结果转换而来的信息码应该尽量简明。
以 "二进制" 这种编码方式为例进行说明。 假设有五种常规故障, 分 别为 A、 B、 C、 D和 E。 为这五种常规故障 A、 B、 C、 D和 E分别设置相应 的标识位, 具体为 bitO、 bitl、 bit2、 bit3和 bit4。 并且, 当上述 A、 B、 C、 D和 E中任一故障存在时, 将所述故障对应的标识位置 1, 将其他不存 在的故障对应的标识位置 0, 如下表 1所示:
表 1
Figure imgf000006_0001
为了使所述信息码更加简明, 便于所述用户快速确定所述基站的故 障, 还可以进一步地将上述 "二进制" 编码转换为 "十进制" 编码。 具体 的, 由上述五位 "二进制" 编码转换而来的 "十进制" 编码为 0-31 中的 任一整数, 其中, 0表示没有故障存在, 1-31 中的数值分别表示上述 、 B、 C、 D和 E五种故障的不同组合。
例如, 若所述基站进行自检之后, 确定 A、 C和 D这三种故障同时存 在, 此时表示自检结果的 "二进制" 编码为 01101, 对应的 "十进制" 编 码为 13; 若 、 B、 C、 D和 E这五种故障都存在, 此时表示自检结果的 "二 进制" 编码为 11111, 对应的 "十进制" 编码为 31; 若 A、 B、 C、 D和 E 这五种故障都不存在, 那么表示自检结果的 "二进制" 编码为 00000, 对 应的 "十进制" 编码为 0。
步骤 23、 获取基站的调试信息。
其中, 所述调试信息包括定位日志, 该定位日志具体为基站的运行状 态信息或数据传输信息等。上述调试信息有助于所述网络运营商对所述基 站进行实时监控, 从而快速确定所述基站的故障原因等。
步骤 24、 将所述信息码和所述调试信息发送至检测设备, 以使所述 检测设备将所述信息码和所述调试信息提供给用户,便于所述用户根据所 述信息码和所述调试信息确定所述基站的故障。
此步骤可参照前述方法实施例中的步骤 23。
其中, 所述信息码输出接口的格式可以为 " < i nf ocode>信息字符串 </ i nf ocode>"。
另外,所述信息码和所述调试信息都可以按照预设的输出时间间隔传 输至所述检测设备。 例如, 若将所述信息码的输出时间间隔设置为 1秒, 那么所述信息码和所述调试信息都可每隔 1秒发送至所述检测设备。
在本实施例中, 所述用户可以仅根据信息码就确定基站的故障所在。 但是, 如果在利用所述信息码确定所述基站的故障之后, 还想进一步地查 找故障原因或者对所述故障进行统计,可以进一步地结合所述调试信息进 行分析, 从而获取更为准确的基站故障发生原因。
下面简单描述一下所述用户使用上述检测设备对基站进行检测并确 定基站故障的过程。 首先所述基站上电、 进行自检, 并获取自检结果, 进 而自动将所述检测结果转换为信息码;然后通过所述检测设备将所述信息 码提供给所述用户; 当所述用户获取所述信息码之后, 首先根据所述手册 将上述信息码还原为检测结果, 进而确定所述基站的故障。 具体的, 还以 前述由 "二进制" 编码转换而来的 "十进制" 编码为例, 当所述用户获取 所述信息码为 0 , 那么得知所述基站安装成功, 即不存在上述 A、 B、 C、 D 和 E中的任一故障, 并通知网络运营商, 所述基站的硬件安装成功; 若所 述用户获取所述信息码为 1 - 31 中的任一整数, 那么根据所述手册确定所 述基站的故障, 并进一步地根据所述手册进行排障操作。 例如, 若所述用 户获取信息码为 1 3 , 然后查找所述手册, 根据所述信息码和检查结果的 对应关系确定所述基站存在 A、 C和 D这三种故障, 再根据所述手册对上 述 、 C和 D这三种故障进行排障操作。 从上述描述可知, 由于能够自动将自检结果转换成信息码, 并将所述 信息码通过检测设备提供给用户,因而用户可根据该信息码快速地确定该 基站的故障, 从而提高了基站的故障检测效率; 另外, 由于用户可通过所 述检测设备就能获取表示检测结果的信息码, 而所述检测设备成本低廉、 构造简单、 便于应用, 故省去了技术工人的培训费用, 进而降低了基站的 硬件安装成本。 因此, 利用本发明实施例的技术方案, 提高了基站的故障 检测效率, 并降低了基站的硬件安装成本。
如图 3所示,本发明实施例三提供了一种基站的故障检测装置,包括: 获取单元 31 , 用于对基站进行检测, 获取检测结果; 转换单元 32 , 用于 将所述检测结果转换成信息码; 发送单元 33 , 用于将所述信息码发送至 检测设备, 以使所述检测设备将所述信息码提供给用户, 便于所述用户根 据所述信, 码确定所述基站的故障。
在本实施例中, 所述转换单元 32可包括: 编码方式确定模块, 用于 确定所述检测结果的编码方式; 信息码确定模块, 用于按照所述编码方式 将所述检测结果进行编码, 并将编码结果作为信息码。
其中, 在图 3的基础上, 如图 4所示, 为了保证表示基站检测结果的 信息码的实时性, 所述装置还包括: 第一设置单元 41 , 用于设置检测时 间间隔; 此时, 所述获取单元 31具体用于根据设置的检测时间间隔对基 站进行检测, 获取检测结果。
进一步的, 在图 4的基础上, 如图 5所示, 为了使检测设备可以及时 接收到所述信息码, 所述装置还包括: 第二设置单元 51 , 用于设置所述 信息码的输出时间间隔; 此时, 所述发送单元 33具体用于根据设置的输 出时间间隔将所述信息码发送至检测设备。
其中,所述第一设置单元 41和所述第二设置单元 51可以为两个独立 的设置单元, 也可以设计为同一个设置单元, 具体用于设置检测时间间隔 和设置所述信息码的输出时间间隔。
另外, 所述获取单元 31还用于获取调试信息; 所述发送单元 33还用 于将所述调试信息发送至所述检测设备,以使所述检测设备将所述调试信 息提供给用户, 便于所述用户在根据信息码确定所述基站的故障的基础 上, 根据所述调试信息进一步确定所述基站的故障原因。
本发明实施例所述的基站的故障检测装置的工作原理可以参照前述 方法实施例的描述。
从上述描述可知, 由于能够自动将自检结果转换成信息码, 并将所述 信息码通过检测设备提供给用户,因而用户可根据该信息码快速地确定该 基站的故障, 从而提高了基站的故障检测效率; 另外, 由于用户可通过所 述检测设备就能获取表示检测结果的信息码, 而所述检测设备成本低廉、 构造简单、 便于应用, 故省去了技术工人的培训费用, 进而降低了基站的 硬件安装成本。 因此, 利用本发明实施例的装置, 提高了基站的故障检测 效率, 并降低了基站的硬件安装成本。
综上所述, 利用本发明实施例的技术方案, 提高了基站的故障检测效 率, 并降低了基站的硬件安装成本。
以上所述,仅为本发明的具体实施方式,但本发明的保护范围并不局限于 此, 任何熟悉本技术领域的技术人员在本发明揭露的技术范围内, 可轻易 想到变化或替换, 都应涵盖在本发明的保护范围之内。 因此, 本发明的保 护范围应以所述权利要求的保护范围为准。

Claims

权 利 要 求 书
1、 一种基站的故障检测方法, 其特征在于, 包括:
对基站进行检测, 获取检测结果;
将所述检测结果转换成信息码;
将所述信息码发送至检测设备, 以使所述检测设备将所述信息码提供给用 户, 便于所述用户根据所述信息码确定所述基站的故障。
2、 根据权利要求 1所述的方法, 其特征在于, 所述将所述检测结果转 换成信息码包括:
确定所述检测结果的编码方式;
按照所述编码方式将所述检测结果进行编码, 并将编码结果作为信息 码。
3、 根据权利要求 1或 2所述的方法, 其特征在于, 所述对基站进行检 测之前, 还包括:
设置检测时间间隔;
所述对基站进行检测包括:
根据设置的检测时间间隔对基站进行检测。
4、 根据权利要求 1或 2所述的方法, 其特征在于, 所述将所述信息码 发送至检测设备之前, 还包括:
设置所述信息码的输出时间间隔;
所述将所述信息码发送至检测设备包括:
根据设置的输出时间间隔将所述信息码发送至检测设备。
5、 根据权利要求 1或 2所述的方法, 其特征在于, 所述将所述信息码 发送至检测设备之前, 还包括:
获取调试信息;
所述将所述信息码发送至检测设备之后, 还包括:
将所述调试信息发送至所述检测设备, 以使所述检测设备将所述调试 信息提供给用户, 便于所述用户在根据信息码确定所述基站的故障的基础 上, 根据所述调试信息进一步确定所述基站的故障原因。
6、 一种基站的故障检测装置, 其特征在于, 包括:
获取单元, 用于对基站进行检测, 获取检测结果;
转换单元, 用于将所述检测结果转换成信息码;
发送单元, 用于将所述信息码发送至检测设备, 以使所述检测设备将 所述信息码提供给用户, 便于所述用户根据所述信息码确定所述基站的故 障。
7、 根据权利要求 6所述的装置, 其特征在于, 所述转换单元包括: 编码方式确定模块, 用于确定所述检测结果的编码方式;
信息码确定模块, 用于按照所述编码方式将所述检测结果进行编码, 并将编码结果作为信息码。
8、 根据权利要求 6或 7所述的装置, 其特征在于, 还包括: 第一设置单元, 用于设置检测时间间隔;
所述获取单元具体用于根据设置的检测时间间隔对基站进行检测, 获 取检测结果。
9、 根据权利要求 6或 7所述的装置, 其特征在于, 还包括: 第二设置单元, 用于设置所述信息码的输出时间间隔;
所述发送单元具体用于根据设置的输出时间间隔将所述信息码发送至检测 设备。
10、 根据权利要求 6或 7所述的装置, 其特征在于, 所述获取单元还 用于获取调试信息; 所述发送单元还用于将所述调试信息发送至所述检测 设备, 以使所述检测设备将所述调试信息提供给用户, 便于所述用户在根 据信息码确定所述基站的故障的基础上, 根据所述调试信息进一步确定所 述基站的故障原因。
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