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CN109474943B - A radio frequency optimization method and device - Google Patents

A radio frequency optimization method and device Download PDF

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CN109474943B
CN109474943B CN201811584537.1A CN201811584537A CN109474943B CN 109474943 B CN109474943 B CN 109474943B CN 201811584537 A CN201811584537 A CN 201811584537A CN 109474943 B CN109474943 B CN 109474943B
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CN109474943A (en
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南作用
任柏松
崔世君
李福昌
邹照明
邢建兵
蒋少东
杨嘉忱
李龙江
王通
李秀军
田宝峰
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China United Network Communications Group Co Ltd
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    • H04ELECTRIC COMMUNICATION TECHNIQUE
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Abstract

本发明实施例提供一种射频优化方法和装置,涉及网络优化领域,能够对移动网络中的射频工参更好的优化。该方法包括:获取待优化地区的总关键绩效指标数据和历史射频优化数据;根据待优化地区的总关键绩效指标数据和至少一个地区的总关键绩效指标选取待优化地区的最终优化目标;获取待优化地区的射频可调参数及其可调范围;根据最终优化目标、射频可调参数和射频可调参数的可调范围,依据预设方法对射频参数进行调整以获取射频参数调整值;将射频参数调整值发送给待优化地区的网管平台以对待优化地区的射频参数进行调整;当确定总关键绩效指标数据出现预设增益值时,重新获取待优化地区的总关键绩效指标数据和历史射频优化数据。

Figure 201811584537

Embodiments of the present invention provide a radio frequency optimization method and device, which relate to the field of network optimization and can better optimize radio frequency parameters in a mobile network. The method includes: obtaining total key performance indicator data and historical radio frequency optimization data of the area to be optimized; selecting the final optimization target of the area to be optimized according to the total key performance indicator data of the area to be optimized and the total key performance index of at least one area; obtaining the final optimization target of the area to be optimized; The RF adjustable parameters and their adjustable ranges in the optimization area; according to the final optimization target, the RF adjustable parameters and the adjustable range of the RF adjustable parameters, the RF parameters are adjusted according to the preset method to obtain the RF parameter adjustment values; The parameter adjustment value is sent to the network management platform in the area to be optimized to adjust the RF parameters in the area to be optimized; when it is determined that the total KPI data has a preset gain value, the total KPI data and historical RF optimization of the area to be optimized are re-acquired data.

Figure 201811584537

Description

Radio frequency optimization method and device
Technical Field
The present invention relates to the field of network optimization, and in particular, to a radio frequency optimization method and apparatus.
Background
For an LTE network, realizing self-optimization of network radio frequency working parameters is a dream and an effort direction of wireless network optimization personnel. However, the radio frequency parameters are usually optimized in the LTE network as follows: (1) the problems are found: network optimization personnel analyze the problems of the network by analyzing complaints, KPIs and the relations of the complaints and the KPIs, and the method is uncertain and has a crude algorithm; (2) the solution is as follows: after network optimization personnel obtain network problems, solutions are generally provided based on manual experience, mostly qualitative schemes, and the solutions are carried out on site according to tower worker experience or conventional setting; (3) and (3) scheme evaluation: scheme evaluation is not carried out before implementation, and the scheme evaluation is usually completed randomly according to the field situation; (4) setting parameters: often, a small number of stations are set in a manual input mode; (5) and (3) iteratively improving the whole network: at present, the method is usually carried out once, and an iterative lifting process is not carried out. It can be seen that the radio frequency parameter optimization mode of the current LTE network is slow in efficiency and not accurate enough for optimization. Therefore, the existing radio frequency optimization schemes are low in efficiency and the optimization results are not good enough in general.
Disclosure of Invention
The embodiment of the invention provides a radio frequency optimization method which is used for better optimizing radio frequency parameters of a mobile network.
In order to achieve the above purpose, the embodiment of the invention adopts the following technical scheme:
in a first aspect, a radio frequency optimization method is provided, including:
acquiring total key performance index data and historical radio frequency optimization data of an area to be optimized; the historical radio frequency optimization data comprises total key performance index data and optimization targets of at least one region; the total key performance indicator data comprises key performance indicators of at least one measuring point;
selecting a final optimization target of the area to be optimized from the optimization targets of at least one area according to the total key performance index data of the area to be optimized and the total key performance index of at least one area;
acquiring radio frequency adjustable parameters and adjustable ranges of the radio frequency adjustable parameters in an area to be optimized;
adjusting the radio frequency parameters according to a preset method according to the final optimization target, the radio frequency adjustable parameters and the adjustable range of the radio frequency adjustable parameters to obtain radio frequency parameter adjustment values;
sending the radio frequency parameter adjustment value to a network management platform of the area to be optimized so that the network management platform adjusts the radio frequency parameter of the area to be optimized according to the radio frequency parameter adjustment value;
and when the total key performance index data of the area to be optimized before and after the radio frequency parameters of the area to be optimized are determined to have the preset gain value, the total key performance index data and the historical radio frequency optimization data of the area to be optimized are obtained again.
In a second aspect, there is provided a radio frequency optimization apparatus, including: the system comprises an acquisition module, an optimization target selection module, an adjustment module, a sending module and a judgment module;
the acquisition module is used for acquiring total key performance index data and historical radio frequency optimization data of an area to be optimized; the historical radio frequency optimization data comprises total key performance index data and optimization targets of at least one region; the total key performance indicator data comprises key performance indicators of at least one measuring point;
the optimization target selection module is used for selecting a final optimization target of the area to be optimized from the optimization targets of the at least one area acquired by the acquisition module according to the total key performance index data of the area to be optimized acquired by the acquisition module and the total key performance index of the at least one area acquired by the acquisition module;
the acquisition module is also used for acquiring the radio frequency adjustable parameters and the adjustable range of the area to be optimized;
the adjusting module is used for adjusting the radio frequency parameters according to a preset method according to the final optimization target selected by the optimization target selecting module, the radio frequency adjustable parameters acquired by the acquiring module and the adjustable range of the radio frequency adjustable parameters acquired by the acquiring module so as to acquire radio frequency parameter adjusting values;
the sending module is used for sending the radio frequency parameter adjustment value obtained by the adjusting module to a network management platform of the area to be optimized so that the network management platform adjusts the radio frequency parameter of the area to be optimized according to the radio frequency parameter adjustment value;
when the judging module determines that the total key performance index data of the area to be optimized, which is acquired by the acquiring module before and after the radio frequency parameter adjustment, has a preset gain value, the acquiring module is used for acquiring the total key performance index data and the historical radio frequency optimization data of the area to be optimized again.
In a third aspect, a radio frequency optimization device is provided, which includes a memory, a processor, a bus and a communication interface; the memory is used for storing computer execution instructions, and the processor is connected with the memory through a bus; when the radio frequency optimization device is operating, the processor executes computer-executable instructions stored by the memory to cause the device to perform the radio frequency optimization method as provided by the first aspect. .
In a fourth aspect, a computer storage medium is provided, comprising computer executable instructions, which when executed on a computer, cause the computer to perform the radio frequency optimization method as provided in the first aspect.
The embodiment of the invention provides a radio frequency optimization method and a radio frequency optimization device, wherein the method comprises the following steps: acquiring total key performance index data and historical radio frequency optimization data of an area to be optimized; the historical radio frequency optimization data comprises total key performance index data and optimization targets of at least one region; the total key performance indicator data comprises key performance indicators of at least one measuring point; selecting a final optimization target of the area to be optimized from the optimization targets of at least one area according to the total key performance index data of the area to be optimized and the total key performance index of at least one area; acquiring radio frequency adjustable parameters and adjustable ranges of the radio frequency adjustable parameters in an area to be optimized; adjusting the radio frequency parameters according to a preset method according to the final optimization target, the radio frequency adjustable parameters and the adjustable range of the radio frequency adjustable parameters to obtain radio frequency parameter adjustment values; sending the radio frequency parameter adjustment value to a network management platform of the area to be optimized so that the network management platform adjusts the radio frequency parameter of the area to be optimized according to the radio frequency parameter adjustment value; and when the total key performance index data of the area to be optimized before and after the radio frequency parameters of the area to be optimized are determined to have the preset gain value, the total key performance index data and the historical radio frequency optimization data of the area to be optimized are obtained again. The technical scheme provided by the embodiment of the invention comprises the steps of firstly determining an optimization target of a region to be optimized by combining a large number of radio frequency optimization cases which are successfully optimized in practice with total key performance index data of the region to be optimized, adjusting the radio frequency adjustable parameters by using the existing preset method according to the current radio frequency adjustable parameters and the range of the current radio frequency adjustable parameters of the region to be optimized after the optimization target is determined, then judging whether the total key performance index data of the region to be optimized after the radio frequency adjustable parameters are adjusted has expected gain, and if so, optimizing the next cycle; it can be seen that, the technical scheme provided by the embodiment of the invention can more comprehensively determine the optimization target of the area to be optimized by combining a large number of existing optimization schemes, and because the whole process does not need to be closely combined with manual experience, the influence of different experiences on the optimization result is avoided, so that the optimization result is more objective and accurate, and further, because the optimization scheme can be self-circulated, the self-optimization effect of the radio frequency parameters of the mobile network is realized, and a large amount of manpower and material resources are saved.
Drawings
In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings used in the description of the embodiments or the prior art will be briefly described below, it is obvious that the drawings in the following description are only some embodiments of the present invention, and for those skilled in the art, other drawings can be obtained according to the drawings without creative efforts.
Fig. 1 is a schematic flow chart of a radio frequency optimization method according to an embodiment of the present invention;
fig. 2 is a schematic flow chart of another radio frequency optimization method according to an embodiment of the present invention;
fig. 3 is a schematic structural diagram of a radio frequency optimization apparatus according to an embodiment of the present invention;
fig. 4 is a schematic structural diagram of another radio frequency optimization apparatus according to an embodiment of the present invention.
Detailed Description
The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the drawings in the embodiments of the present invention, and it is obvious that the described embodiments are only a part of the embodiments of the present invention, and not all of the embodiments. All other embodiments, which can be derived by a person skilled in the art from the embodiments given herein without making any creative effort, shall fall within the protection scope of the present invention.
It should be noted that, in the embodiments of the present invention, words such as "exemplary" or "for example" are used to indicate examples, illustrations or explanations. Any embodiment or design described as "exemplary" or "e.g.," an embodiment of the present invention is not necessarily to be construed as preferred or advantageous over other embodiments or designs. Rather, use of the word "exemplary" or "such as" is intended to present concepts related in a concrete fashion.
It should be noted that, in the embodiments of the present invention, "of", "corresponding" and "corresponding" may be sometimes used in combination, and it should be noted that, when the difference is not emphasized, the intended meaning is consistent. For the convenience of clearly describing the technical solutions of the embodiments of the present invention, in the embodiments of the present invention, the words "first", "second", and the like are used for distinguishing the same items or similar items with basically the same functions and actions, and those skilled in the art can understand that the words "first", "second", and the like are not limited in number or execution order.
In the prior art, a radio frequency optimization scheme of a mobile network usually needs a large amount of manual work, the optimization effect is related to the working experience of optimization personnel, so the radio frequency optimization effect is not ideal, and each optimization process is time-consuming and labor-consuming.
In view of the above problem, referring to fig. 1, an embodiment of the present invention provides a radio frequency optimization method, including:
101. and acquiring total key performance index data and historical radio frequency optimization data of the area to be optimized.
Specifically, the historical radio frequency optimization data includes total Key Performance Indicator data (KPI) and an optimization target of at least one region; the total key performance indicator data comprises key performance indicators of at least one measuring point; the historical radio frequency data evaluated in the implementation process of the technical scheme provided by the embodiment of the invention generally comprises the total key performance index data of all regions which can be collected.
For example, in practice, the total key performance indicator data of a certain area is generally available from MR (Measurement Report), and for some areas without network data, the data is obtained by means of drive test, dialing and the like.
102. And selecting a final optimization target of the area to be optimized from the optimization targets of the at least one area according to the total key performance index data of the area to be optimized and the total key performance index of the at least one area.
Illustratively, referring to fig. 2, the step 102 specifically includes:
1021. and grading the total key performance index data of the area to be optimized and at least one area according to a preset grading rule, and calculating the proportion of each grade of key performance index data.
Specifically, the proportion of each piece of key performance indicator data is the proportion of the number of the measuring points corresponding to each piece of key performance indicator data to the number of the measuring points corresponding to the total key performance indicator data to which the measuring points belong.
Illustratively, because in practice, the total key performance indicator data includes total reference signal received power, RSRP, data and total reference signal to noise ratio, RS Sinr, data; the total RSRP data comprises the RSRP of at least one station; the total RS Sinr data comprises RS Sinr of at least one measuring point; the preset binning rules can therefore be ranked with reference to tables 1 and 2 below:
RSRP ratio of occupation of Relevance weighting
Greater than-60 dBm (first gear) 1
-60dBm to-80 dBm (second gear) 2
-80dBm to-90 dBm (third gear) 2
-90dBm to-100 dBm (fourth gear) 3
-100dBm to-110 dBm (fifth gear) 1
Less than-60 dBm (sixth gear) 1
TABLE 1
RS Sinr Ratio of dot distribution Relevance weighting
Greater than 30dB (first gear) 1
30dB to 20dB (second gear) 1
20dB to 10dB (third gear) 2
10dB to 5dB (fourth gear) 2
5dB to 0dB (fifth gear) 2
0dB to-3 dB (sixth gear) 1
TABLE 2
The percentage represents the percentage of the key performance indicator data of each gear, and the relevance weighting represents a relevance weighting value corresponding to the key performance indicator data of each gear, and the value is determined according to the actual situation, which is only an example and is not limited specifically.
1022. And selecting a first target optimization region from at least one region, wherein the difference between the first-grade key performance indicator data ratio and the first-grade key performance indicator data ratio of the region to be optimized is less than or equal to a preset value.
Specifically, the first-file key performance indicator data is any file of key performance indicator data after the total key performance indicator data to which the first-file key performance indicator data belongs is classified.
Illustratively, the preset value is 5%.
1023. And calculating the total relevance score of the area to be optimized according to the ratio of the key performance index data of each file of the area to be optimized and a preset relevance weighting formula.
1024. And calculating the total relevance score of the first target optimization region according to each piece of key performance index data of the first target optimization region and a preset relevance weighting formula.
Illustratively, the preset correlation weighting formula is:
M=qRSRP*MRSRP+qRS Sinr*MRS Sinr
wherein M is the total relevance score, qRSRPCorrelation weight, M, for total RSRP dataRSRPRSRP relevance score, q, for total RSRP dataRS SinrCorrelation weight, M, for total RS Sinr data for total RSRP data regionRS SinrAs a total of total RSRP data regionsRelevance scores for RS Sinr data;
Figure GDA0003194338810000061
where n is the number of steps of the total RSRP data, MRSRPRelevance score, p, for total RSRP dataRiThe ratio of the number of measuring points corresponding to the ith-grade RSRP data after the total RSRP data is graded to the number of measuring points corresponding to the total RSRP data, qRiA correlation weighted value of the ith-grade RSRP data is obtained;
Figure GDA0003194338810000062
where M is the number of total RS Sinr data bins, MRS SinrRelevance score, p, for total RS Sinr dataSiThe ratio of the number of the measuring points corresponding to the ith grade RS Sinr data after grading the total RS Sinr data to the number of the measuring points corresponding to the total RS Sinr data, qSiAnd the weighted value is the correlation value of the ith RS Sinr data.
It should be noted that, in practice, the preset correlation weighting formula is not only MRSRPAnd MRS SinrAccording to the two parameters, according to an optimization target preset by optimization management personnel, other parameters can also exist, such as a correlation score corresponding to a measuring point with the difference between the RSRP value of the corresponding first strong cell and the RSRP value of the corresponding second strong cell exceeding 5dB, and the like.
1025. And determining a second target optimization region according to the first target optimization region with the minimum difference with the total relevance score of the region to be optimized.
1026. And determining the optimization target of the second target optimization area as the final optimization target of the area to be optimized.
Illustratively, the final optimization goal may include:
the ratio of the number of the measuring points of which the RSRP is more than or equal to-100 dBm to the total number of the measuring points is a first preset value, and the corresponding correlation weighted value is qRSRP100
The number of the measuring points of which RS Sinr is more than or equal to 0dBm accounts for the total measurementThe ratio of the number of the points is a second preset value, and the corresponding correlation weighted value is qRS Sinr0
The ratio of the number of the measuring points with the RS Sinr being more than or equal to 10dBm to the total number of the measuring points is a third preset value, and the corresponding correlation weighted value is qRS Sinr10
The ratio of the number of the measuring points with the RS Sinr being more than or equal to 15dBm to the total number of the measuring points is a fourth preset value, and the corresponding correlation weighted value is qRS Sinr15
The ratio of the number of the measuring points with the difference of more than 5dB between the corresponding RSRP value of the first strong cell and the corresponding RSRP value of the second strong cell to the total number of the measuring points is a fifth preset value, and the corresponding correlation weighted value is qC1-2
The ratio of the number of the measuring points with the difference of more than 5dB between the corresponding RSRP value of the first strong cell and the corresponding RSRP value of the fourth strong cell to the total number of the measuring points is a sixth preset value, and the corresponding correlation weighted value is qC1-4
Optionally, in order to ensure that the final optimization target selected by the area to be optimized is more accurate and more practical, referring to fig. 2, the step 102 further includes:
107. and sending the final optimization target to an optimization terminal.
The holder of the optimization terminal can adjust, even increase or decrease the optimization targets according to the actual network strategy.
108. And receiving a first optimization target adjustment instruction sent by the optimization terminal, and updating the final optimization target according to the first optimization target adjustment instruction so as to re-determine the final optimization target of the area to be optimized.
Step 108 is followed by step 103.
103. And acquiring the radio frequency adjustable parameters and the adjustable range of the area to be optimized.
Exemplary radio frequency adjustable parameters include: the transmitting power of the cell, the electronic downward inclination angle of the sector antenna and the electronic azimuth angle of the sector antenna;
the adjustable range of the transmission power of the cell comprises: a downward variable power float value, an upward variable power float value, a change step length;
the adjustable range of the electronic downtilt angle of the sector antenna comprises: the variation range and the variation step length are changed on the basis of the inclination angle;
the adjustable range of the electronic azimuth angle of the sector antenna comprises: blocking the direction, adjusting the range of the direction and changing the step length.
104. And adjusting the radio frequency parameters according to a preset method according to the final optimization target, the radio frequency adjustable parameters and the adjustable range of the radio frequency adjustable parameters to obtain radio frequency parameter adjustment values.
Optionally, in order to ensure that the radio frequency parameters calculated by the machine meet the actual conditions, and also to ensure that the adjustment process is combined with the specific conditions of the actual area to be optimized in addition to the historical data, referring to fig. 2, after step 104, the method further includes:
109. and sending the radio frequency parameter adjustment value to the optimization terminal.
The holder of the optimization terminal checks partial measurement point work parameters according to the pessimistic optimistic degree of the whole electromagnetic propagation prediction result and the condition of the measured data point obtained in the step 101, and determines whether the radio frequency parameter adjustment value obtained in the step 104 is not appropriate according to the check result; illustratively, the checking type specifically includes:
(1) if the actual measurement in a certain area is weak in coverage, the adjustment value of the radio frequency parameter does not set the direction for strengthening the coverage, and the adjustment is needed at the moment; (2) if the actual measurement blind area in a certain area, the radio frequency parameter adjustment value does not set the direction for strengthening the coverage, and the adjustment is needed at the moment; (3) if a certain area is pilot frequency pollution, the adjustment value of the radio frequency parameter does not reduce the pilot frequency pollution, and the adjustment is needed at the moment; (4) if a certain area is the handoff coverage, the RF parameter adjustment value does not reduce the handoff coverage, and should be adjusted.
110. And receiving a second optimization target adjustment instruction of the optimization terminal, and updating the final optimization target according to the second optimization target adjustment instruction so as to re-determine the final optimization target of the area to be optimized.
After 110, 103 is performed.
105. And sending the radio frequency parameter adjustment value to a network management platform of the area to be optimized so that the network management platform adjusts the radio frequency parameter of the area to be optimized according to the radio frequency parameter adjustment value.
106. And when the total key performance index data of the area to be optimized before and after the radio frequency parameters of the area to be optimized are determined to have the preset gain value, the total key performance index data and the historical radio frequency optimization data of the area to be optimized are obtained again.
To achieve network self-optimization, step 106 is followed by step 101.
Optionally, each optimization in practice may not necessarily achieve the optimization goal, so as shown in fig. 2, the method further includes:
111. when determining that the total key performance index data of the area to be optimized before and after the radio frequency parameter adjustment does not have a preset gain value, sending an adjustment failure instruction to an optimization terminal;
112. and receiving a third optimization target adjustment instruction of the optimization terminal, and updating the final optimization target according to the third optimization target adjustment instruction so as to re-determine the final optimization target of the area to be optimized.
After 112, 103 is performed.
Optionally, in order to ensure that the optimization manager specifies which regions are optimized several times and the optimization time, referring to fig. 2, the step 106 further includes:
113. and sending the adjustment completion prompt information to the optimization terminal.
Optionally, in order to expand the historical radio frequency optimization data in real time, as shown in fig. 2, the step 113 further includes:
114. and storing the final optimization target of the area to be optimized and the total key performance index data of the area to be optimized after radio frequency parameters are adjusted in historical radio frequency optimization data.
The radio frequency optimization method provided by the embodiment of the invention comprises the following steps: acquiring total key performance index data and historical radio frequency optimization data of an area to be optimized; the historical radio frequency optimization data comprises total key performance index data and optimization targets of at least one region; the total key performance indicator data comprises key performance indicators of at least one measuring point; selecting a final optimization target of the area to be optimized from the optimization targets of at least one area according to the total key performance index data of the area to be optimized and the total key performance index of at least one area; acquiring radio frequency adjustable parameters and adjustable ranges of the radio frequency adjustable parameters in an area to be optimized; adjusting the radio frequency parameters according to a preset method according to the final optimization target, the radio frequency adjustable parameters and the adjustable range of the radio frequency adjustable parameters to obtain radio frequency parameter adjustment values; sending the radio frequency parameter adjustment value to a network management platform of the area to be optimized so that the network management platform adjusts the radio frequency parameter of the area to be optimized according to the radio frequency parameter adjustment value; and when the total key performance index data of the area to be optimized before and after the radio frequency parameters of the area to be optimized are determined to have the preset gain value, the total key performance index data and the historical radio frequency optimization data of the area to be optimized are obtained again. The technical scheme provided by the embodiment of the invention comprises the steps of firstly determining an optimization target of a region to be optimized by combining a large number of radio frequency optimization cases which are successfully optimized in practice with total key performance index data of the region to be optimized, adjusting the radio frequency adjustable parameters by using the existing preset method according to the current radio frequency adjustable parameters and the range of the current radio frequency adjustable parameters of the region to be optimized after the optimization target is determined, then judging whether the total key performance index data of the region to be optimized after the radio frequency adjustable parameters are adjusted has expected gain, and if so, optimizing the next cycle; it can be seen that, the technical scheme provided by the embodiment of the invention can more comprehensively determine the optimization target of the area to be optimized by combining a large number of existing optimization schemes, and because the whole process does not need to be closely combined with manual experience, the influence of different experiences on the optimization result is avoided, so that the optimization result is more objective and accurate, and further, because the optimization scheme can be self-circulated, the self-optimization effect of the radio frequency parameters of the mobile network is realized, and a large amount of manpower and material resources are saved.
Referring to fig. 3, in order to better implement the radio frequency optimization method provided in the foregoing embodiment, an embodiment of the present invention further provides a radio frequency optimization apparatus 01, including: the system comprises an acquisition module 31, an optimization target selection module 32, an adjustment module 33, a sending module 34 and a judgment module 35;
the acquiring module 31 is configured to acquire total key performance indicator data and historical radio frequency optimization data of an area to be optimized; the historical radio frequency optimization data comprises total key performance index data and optimization targets of at least one region; the total key performance indicator data comprises key performance indicators of at least one measuring point;
an optimization target selecting module 32, configured to select a final optimization target of the area to be optimized from the optimization targets of the at least one area acquired by the acquiring module 31 according to the total key performance indicator data of the area to be optimized acquired by the acquiring module 31 and the total key performance indicator of the at least one area acquired by the acquiring module 31;
the obtaining module 31 is further configured to obtain a radio frequency adjustable parameter of the area to be optimized and an adjustable range thereof;
the adjusting module 33 is configured to adjust the radio frequency parameter according to a preset method according to the final optimization target selected by the optimization target selecting module 32, the radio frequency adjustable parameter acquired by the acquiring module 31, and the adjustable range of the radio frequency adjustable parameter acquired by the acquiring module 31, so as to acquire a radio frequency parameter adjustment value;
a sending module 34, configured to send the radio frequency parameter adjustment value obtained by the adjusting module 33 to a network management platform of the area to be optimized, so that the network management platform adjusts the radio frequency parameter of the area to be optimized according to the radio frequency parameter adjustment value;
when the judging module 35 determines that the total key performance indicator data of the area to be optimized, which is obtained by the obtaining module 31 before and after the radio frequency parameter adjustment, has a preset gain value, the obtaining module 31 is configured to obtain the total key performance indicator data and the historical radio frequency optimization data of the area to be optimized again.
Optionally, the optimization target selecting module 32 specifically includes: a proportion calculation unit 321, a processing unit 322, and a correlation calculation unit 323;
the proportion calculating unit 321 is configured to grade the total key performance indicator data of the area to be optimized and the at least one area acquired by the acquiring module 31 according to a preset grading rule, and calculate the proportion of each grade of key performance indicator data; the proportion of each file of key performance index data is the proportion of the number of the measuring points corresponding to each file of key performance index data to the number of the measuring points corresponding to the total key performance index data of the measuring points;
the processing unit 322 is configured to select, according to the calculation result of the proportion calculating unit 321, a first target optimization region where a difference between a proportion of the first-grade key performance indicator data and a proportion of the first-grade key performance indicator data of the region to be optimized is less than or equal to a preset value from at least one region acquired by the acquiring module 31; the first-grade key performance index data is any one grade of key performance index data after grading of total key performance index data to which the first-grade key performance index data belongs;
the relevance calculating unit 323 is used for calculating the total relevance score of the first target optimization region according to the proportion of each grade of key performance index data of the region to be optimized, which is calculated by the proportion calculating unit 321, and a preset relevance weighting formula;
the relevance calculating unit 323 is further configured to calculate a total relevance score of the first target optimization region according to a preset relevance weighting formula according to the proportion of each grade of key performance indicator data of the first target optimization region calculated by the proportion calculating unit 321;
the processing unit 322 is further configured to determine a second target optimization region from the first target optimization region with the smallest difference between the total relevance scores of the regions to be optimized, which are calculated by the relevance calculating unit 323, and determine an optimization target of the second target optimization region as a final optimization target of the regions to be optimized.
Optionally, the radio frequency optimization apparatus further includes an updating module 36;
the sending module 34 is further configured to send the final optimization target selected by the optimization target selecting module 32 to the optimization terminal 02 after the optimization target selecting module 32 selects the final optimization target of the area to be optimized;
the updating module 36 is configured to receive the first optimization target adjustment instruction sent by the optimization terminal 02, and update the final optimization target selected by the optimization target selecting module 32 according to the first optimization target adjustment instruction, so as to re-determine the final optimization target of the area to be optimized.
Optionally, the sending module 34 is further configured to send the radio frequency parameter adjustment value to the optimization terminal 02 before sending the radio frequency parameter adjustment value to the network management platform of the area to be optimized;
the updating module 36 is configured to receive a second optimization target adjustment instruction of the optimization terminal 02, and update the final optimization target selected by the optimization target selecting module 32 according to the second optimization target adjustment instruction, so as to re-determine the final optimization target of the area to be optimized.
Optionally, when the determining module 35 determines that the total key performance indicator data of the area to be optimized, which is acquired by the acquiring module 31 before and after the radio frequency parameter adjustment, does not have a preset gain value, an adjustment failure instruction is sent to the optimizing terminal 02;
the updating module 36 is further configured to receive a third optimization target adjustment instruction of the optimization terminal 02, and update the final optimization target selected by the optimization target selecting module 32 according to the third optimization target adjustment instruction, so as to re-determine the final optimization target of the area to be optimized.
The radio frequency optimization device provided by the embodiment of the invention comprises: the acquisition module is used for acquiring total key performance index data and historical radio frequency optimization data of an area to be optimized; the historical radio frequency optimization data comprises total key performance index data and optimization targets of at least one region; the total key performance indicator data comprises key performance indicators of at least one measuring point; the optimization target selection module is used for selecting a final optimization target of the area to be optimized from the optimization targets of the at least one area acquired by the acquisition module according to the total key performance index data of the area to be optimized acquired by the acquisition module and the total key performance index of the at least one area acquired by the acquisition module; the acquisition module is also used for acquiring the radio frequency adjustable parameters and the adjustable range of the area to be optimized; the adjusting module is used for adjusting the radio frequency parameters according to a preset method according to the final optimization target selected by the optimization target selecting module, the radio frequency adjustable parameters acquired by the acquiring module and the adjustable range of the radio frequency adjustable parameters acquired by the acquiring module so as to acquire radio frequency parameter adjusting values; the sending module is used for sending the radio frequency parameter adjustment value obtained by the adjusting module to a network management platform of the area to be optimized so that the network management platform adjusts the radio frequency parameter of the area to be optimized according to the radio frequency parameter adjustment value; when the judging module determines that the total key performance index data of the area to be optimized before and after the radio frequency parameters of the area to be optimized are adjusted to have the preset gain value, the obtaining module is used for obtaining the total key performance index data and the historical radio frequency optimization data of the area to be optimized again. Therefore, the technical scheme provided by the embodiment of the invention can firstly determine the optimization target of the area to be optimized by combining a large number of radio frequency optimization cases which are successfully optimized in practice with the total key performance index data of the area to be optimized, adjust the radio frequency adjustable parameter by using the existing preset method according to the current radio frequency adjustable parameter and the range of the current radio frequency adjustable parameter of the area to be optimized after determining the optimization target, then judge whether the total key performance index data of the area to be optimized has expected gain after adjusting the radio frequency adjustable parameter, and if so, optimize the next cycle; it can be seen that, the technical scheme provided by the embodiment of the invention can more comprehensively determine the optimization target of the area to be optimized by combining a large number of existing optimization schemes, and because the whole process does not need to be closely combined with manual experience, the influence of different experiences on the optimization result is avoided, so that the optimization result is more objective and accurate, and further, because the optimization scheme can be self-circulated, the self-optimization effect of the radio frequency parameters of the mobile network is realized, and a large amount of manpower and material resources are saved.
Referring to fig. 4, an embodiment of the present invention further provides another radio frequency optimization apparatus, which includes a memory 41, a processor 42, a bus 43, and a communication interface 44; the memory 41 is used for storing computer execution instructions, and the processor 42 is connected with the memory 41 through a bus 43; when the radio frequency optimizing device is running, the processor 42 executes the computer-executable instructions stored in the memory 41 to cause the radio frequency optimizing device to perform the radio frequency optimizing method provided in the above-mentioned embodiment.
In particular implementations, processor 42(42-1 and 42-2) may include one or more CPUs, such as CPU0 and CPU1 shown in FIG. 4, for example, as one embodiment. And as an example, the radio frequency optimization device may include a plurality of processors 42, such as processor 42-1 and processor 42-2 shown in fig. 4. Each of the processors 42 may be a Single-core processor (Single-CPU) or a Multi-core processor (Multi-CPU). Processor 42 may refer herein to one or more devices, circuits, and/or processing cores that process data (e.g., computer program instructions).
The Memory 41 may be a Read-Only Memory 41 (ROM) or other types of static storage devices that can store static information and instructions, a Random Access Memory (RAM) or other types of dynamic storage devices that can store information and instructions, an Electrically Erasable Programmable Read-Only Memory (EEPROM), a Compact Disc Read-Only Memory (CD-ROM) or other optical Disc storage, optical Disc storage (including Compact Disc, laser Disc, optical Disc, digital versatile Disc, blu-ray Disc, etc.), a magnetic Disc storage medium or other magnetic storage device, or any other medium that can be used to carry or store desired program code in the form of instructions or data structures and that can be accessed by a computer, but is not limited to such. The memory 41 may be self-contained and coupled to the processor 42 via a communication bus 43. The memory 41 may also be integrated with the processor 42.
In a specific implementation, the memory 41 is used for storing data in the present application and computer-executable instructions corresponding to software programs for executing the present application. The processor 42 may optimize various functions of the device by running or executing software programs stored in the memory 41 and invoking data stored in the memory 41.
The communication interface 44 is any device such as a transceiver for communicating with other devices or communication Networks, such as a control system, a Radio Access Network (RAN), a Wireless Local Area Network (WLAN), and the like. The communication interface 44 may include a receiving unit implementing a receiving function and a transmitting unit implementing a transmitting function.
The bus 43 may be an Industry Standard Architecture (ISA) bus, a Peripheral Component Interconnect (PCI) bus, an Extended ISA (EISA) bus, or the like. The bus 43 may be divided into an address bus, a data bus, a control bus, etc. For ease of illustration, only one thick line is shown in FIG. 4, but this does not indicate only one bus or one type of bus.
The embodiment of the present invention further provides a computer storage medium, where the computer storage medium includes computer execution instructions, and when the computer execution instructions run on a computer, the computer is enabled to execute the radio frequency optimization method provided in the foregoing embodiment.
The embodiment of the present invention further provides a computer program, where the computer program may be directly loaded into a memory and contains a software code, and the computer program is loaded and executed by a computer, so as to implement the radio frequency optimization method provided in the foregoing embodiment.
Those skilled in the art will recognize that, in one or more of the examples described above, the functions described in this invention may be implemented in hardware, software, firmware, or any combination thereof. When implemented in software, the functions may be stored on or transmitted over as one or more instructions or code on a computer-readable medium. Computer-readable media includes both computer storage media and communication media including any medium that facilitates transfer of a computer program from one place to another. A storage media may be any available media that can be accessed by a general purpose or special purpose computer.
Through the above description of the embodiments, it is clear to those skilled in the art that, for convenience and simplicity of description, the foregoing division of the functional modules is merely used as an example, and in practical applications, the above function distribution may be completed by different functional modules according to needs, that is, the internal structure of the device may be divided into different functional modules to complete all or part of the above described functions.
In the several embodiments provided in the present application, it should be understood that the disclosed apparatus and method may be implemented in other ways. For example, the above-described apparatus embodiments are merely illustrative, and for example, the division of the modules or units is only one logical function division, and there may be other division ways in actual implementation. For example, various elements or components may be combined or may be integrated into another device, or some features may be omitted, or not implemented. In addition, the shown or discussed mutual coupling or direct coupling or communication connection may be an indirect coupling or communication connection through some interfaces, devices or units, and may be in an electrical, mechanical or other form. Units described as separate parts may or may not be physically separate, and parts displayed as units may be one physical unit or a plurality of physical units, may be located in one place, or may be distributed to a plurality of different places. Some or all of the units can be selected according to actual needs to achieve the purpose of the solution of the embodiment.
In addition, functional units in the embodiments of the present invention may be integrated into one processing unit, or each unit may exist alone physically, or two or more units are integrated into one unit. The integrated unit can be realized in a form of hardware, and can also be realized in a form of a software functional unit. The integrated unit, if implemented in the form of a software functional unit and sold or used as a stand-alone product, may be stored in a readable storage medium. Based on such understanding, the technical solutions of the embodiments of the present application may be essentially or partially contributed to by the prior art, or all or part of the technical solutions may be embodied in the form of a software product, where the software product is stored in a storage medium and includes several instructions to enable a device (which may be a single chip, a chip, or the like) or a processor (processor) to execute all or part of the steps of the method according to the embodiments of the present invention. And the aforementioned storage medium includes: various media capable of storing program codes, such as a U disk, a removable hard disk, a ROM, a RAM, a magnetic disk, or an optical disk.
The above description is only for the specific embodiment of the present invention, but the scope of the present invention is not limited thereto, and any changes or substitutions that can be easily conceived by those skilled in the art within the technical scope of the present invention are included in the scope of the present invention. Therefore, the protection scope of the present invention shall be subject to the protection scope of the claims.

Claims (13)

1.一种射频优化方法,其特征在于,包括:1. a radio frequency optimization method, is characterized in that, comprises: 获取待优化地区的总关键绩效指标数据和历史射频优化数据;所述历史射频优化数据包括至少一个地区的总关键绩效指标数据和优化目标;所述总关键绩效指标数据包括至少一个测点的关键绩效指标;Obtain the total key performance indicator data and historical radio frequency optimization data of the area to be optimized; the historical radio frequency optimization data includes the total key performance indicator data and optimization goals of at least one area; the total key performance indicator data includes at least one measurement point. performance indicators; 根据所述待优化地区的总关键绩效指标数据和所述至少一个地区的总关键绩效指标从所述至少一个地区的优化目标中选取所述待优化地区的最终优化目标;According to the total key performance indicator data of the area to be optimized and the total key performance index of the at least one area, the final optimization target of the area to be optimized is selected from the optimization goals of the at least one area; 获取所述待优化地区的射频可调参数及其可调范围;Acquire the radio frequency adjustable parameters of the area to be optimized and the adjustable range thereof; 根据所述最终优化目标、所述射频可调参数和所述射频可调参数的可调范围,依据预设方法对所述射频参数进行调整,以获取射频参数调整值;According to the final optimization target, the adjustable radio frequency parameter and the adjustable range of the adjustable radio frequency parameter, adjust the radio frequency parameter according to a preset method to obtain an adjustment value of the radio frequency parameter; 将所述射频参数调整值发送给所述待优化地区的网管平台,以使所述网管平台根据所述射频参数调整值对所述待优化地区的射频参数进行调整;sending the radio frequency parameter adjustment value to the network management platform in the area to be optimized, so that the network management platform adjusts the radio frequency parameter in the area to be optimized according to the radio frequency parameter adjustment value; 当确定所述待优化地区在其射频参数调整前后的总关键绩效指标数据存在预设增益值时,重新获取待优化地区的总关键绩效指标数据和历史射频优化数据。When it is determined that the total key performance indicator data of the area to be optimized before and after the adjustment of its radio frequency parameters has a preset gain value, the total key performance index data and historical radio frequency optimization data of the area to be optimized are re-acquired. 2.根据权利要求1所述的射频优化方法,其特征在于,所述根据所述待优化地区的总关键绩效指标数据和所述至少一个地区的总关键绩效指标从所述至少一个地区的优化目标中选取所述待优化地区的最终优化目标包括:2. The radio frequency optimization method according to claim 1, characterized in that, according to the total key performance indicator data of the to-be-optimized area and the total key performance index of the at least one area from the optimization of the at least one area The final optimization objective of selecting the area to be optimized in the objective includes: 依据预设分档规则将所述待优化地区和所述至少一个地区的总关键绩效指标数据进行分档,并计算每一档关键绩效指标数据的占比;所述每一档关键绩效指标数据的占比为所述每一档关键绩效指标数据对应测点的数量占自身所属的总关键绩效指标数据对应测点的数量的占比;According to preset binning rules, the total key performance indicator data of the region to be optimized and the at least one region are binned, and the proportion of the key performance indicator data of each bin is calculated; the key performance indicator data of each bin is the proportion of the number of measurement points corresponding to each level of KPI data to the number of measurement points corresponding to the total KPI data to which it belongs; 从所述至少一个地区中选取第一档关键绩效指标数据占比与所述待优化地区的第一档关键绩效指标数据占比之差小于等于预设值的第一目标优化地区;所述第一档关键绩效指标数据为所述第一档关键绩效指标数据所属的总关键绩效指标数据分档后的任一档关键绩效指标数据;From the at least one region, select a first target optimization region where the difference between the proportion of the first-level KPI data and the first-level KPI data proportion of the region to be optimized is less than or equal to a preset value; The first level of KPI data is any level of KPI data after the total KPI data to which the first level of KPI data belongs; 根据所述待优化地区的每一档关键绩效指标数据的占比依据预设相关性加权公式计算所述待优化地区的总相关性分值;根据所述第一目标优化地区的每一档关键绩效指标数据依据预设相关性加权公式计算所述第一目标优化地区的总相关性分值;Calculate the total relevance score of the area to be optimized according to the proportion of each level of KPI data in the area to be optimized according to the preset relevance weighting formula; optimize the area according to the first target. The performance indicator data calculates the total relevance score of the first target optimization area according to a preset relevance weighting formula; 将与所述待优化地区的总相关性分值相差最小的第一目标优化地区确定第二目标优化地区;将第二目标优化地区的优化目标确定为所述待优化地区的最终优化目标。The first target optimization area with the smallest difference from the total correlation score of the area to be optimized is determined as the second target optimization area; the optimization target of the second target optimization area is determined as the final optimization target of the area to be optimized. 3.根据权利要求1所述的射频优化方法,其特征在于,所述根据所述待优化地区的总关键绩效指标数据和所述至少一个地区的总关键绩效指标从所述至少一个地区的优化目标中选取所述待优化地区的最终优化目标之后还包括:3. The radio frequency optimization method according to claim 1, wherein, according to the total key performance indicator data of the to-be-optimized area and the total key performance index of the at least one area from the optimization of the at least one area After selecting the final optimization target of the to-be-optimized area in the target, it also includes: 将所述最终优化目标发送给优化终端;sending the final optimization target to the optimization terminal; 接收所述优化终端发送的第一优化目标调整指令,并根据所述第一优化目标调整指令对所述最终优化目标进行更新,以重新确定所述待优化地区的最终优化目标。The first optimization target adjustment instruction sent by the optimization terminal is received, and the final optimization target is updated according to the first optimization target adjustment instruction, so as to re-determine the final optimization target of the area to be optimized. 4.根据权利要求1所述的射频优化方法,其特征在于,所述将所述射频参数调整值发送给所述待优化地区的网管平台之前还包括:4. The radio frequency optimization method according to claim 1, wherein before the sending the radio frequency parameter adjustment value to the network management platform in the area to be optimized further comprises: 将所述射频参数调整值发送给优化终端;sending the radio frequency parameter adjustment value to the optimization terminal; 接收所述优化终端的第二优化目标调整指令,并根据所述第二优化目标调整指令对所述最终优化目标进行更新,以重新确定所述待优化地区的最终优化目标。The second optimization target adjustment instruction of the optimization terminal is received, and the final optimization target is updated according to the second optimization target adjustment instruction, so as to re-determine the final optimization target of the area to be optimized. 5.根据权利要求1所述的射频优化方法,其特征在于,还包括:5. radio frequency optimization method according to claim 1, is characterized in that, also comprises: 当确定所述待优化地区在其射频参数调整前后的总关键绩效指标数据不存在预设增益值时,发送调整失败指令给优化终端;When it is determined that the total KPI data of the area to be optimized before and after the adjustment of its radio frequency parameters does not have a preset gain value, sending an adjustment failure instruction to the optimization terminal; 接收优化终端的第三优化目标调整指令,并根据所述第三优化目标调整指令对所述最终优化目标进行更新,以重新确定所述待优化地区的最终优化目标。The third optimization target adjustment instruction of the optimization terminal is received, and the final optimization target is updated according to the third optimization target adjustment instruction, so as to re-determine the final optimization target of the area to be optimized. 6.根据权利要求2所述的方法,其特征在于,所述总关键绩效指标数据包括总参考信号接收功率RSRP数据和总参考信号信噪比RS Sinr数据;所述历史射频优化数据包括至少一个地区的总RSRP数据、总RS Sinr数据和优化目标;所述总RSRP数据包括至少一个测点的RSRP;所述总RS Sinr数据包括至少一个测点的RS Sinr;6. The method according to claim 2, wherein the total key performance indicator data comprises total reference signal received power RSRP data and total reference signal signal-to-noise ratio RS Sinr data; the historical radio frequency optimization data comprises at least one The total RSRP data, the total RS Sinr data and the optimization target of the region; the total RSRP data includes the RSRP of at least one measuring point; the total RS Sinr data includes the RS Sinr of at least one measuring point; 所述预设相关性加权公式为:The preset correlation weighting formula is: M=qRSRP*MRSRP+qRSSinr*MRSSinrM=q RSRP *M RSRP +q RSSinr *M RSSinr ; 其中,M为总相关性分值,qRSRP为所述总RSRP数据的相关性加权值,MRSRP为所述总RSRP数据的RSRP相关性分值,qRSSinr为所述总RSRP数据所述地区的总RS Sinr数据的相关性加权值,MRSSinr为所述总RSRP数据所述地区的总RS Sinr数据的相关性分值;Wherein, M is the total correlation score, q RSRP is the correlation weighted value of the total RSRP data, M RSRP is the RSRP correlation score of the total RSRP data, and q RSSinr is the area described in the total RSRP data The correlation weighted value of the total RS Sinr data, M RSSinr is the correlation score of the total RS Sinr data of the described area of the described total RSRP data;
Figure FDA0003194338800000031
Figure FDA0003194338800000031
其中,n为所述总RSRP数据的档数,MRSRP为所述总RSRP数据的相关性分值,pRi为所述总RSRP数据分档后的第i档RSRP数据对应测点的数量占所述总RSRP数据对应测点的数量的占比,qRi为所述第i档RSRP数据的相关性加权值;Wherein, n is the number of bins of the total RSRP data, M RSRP is the correlation score of the total RSRP data, and p Ri is the number of measurement points corresponding to the i-th RSRP data after binning the total RSRP data. The proportion of the number of the corresponding measurement points of the total RSRP data, q Ri is the correlation weighted value of the i-th RSRP data;
Figure FDA0003194338800000032
Figure FDA0003194338800000032
其中,m为所述总RS Sinr数据的档数,MRSSinr为所述总RS Sinr数据的相关性分值,pSi为所述总RS Sinr数据分档后的第i档RS Sinr数据对应测点的数量占所述总RS Sinr数据对应测点的数量的占比,qSi为所述第i档RS Sinr数据的相关性加权值。Wherein, m is the number of bins of the total RS Sinr data, M RSSinr is the correlation score of the total RS Sinr data, and p Si is the corresponding measurement of the i-th RS Sinr data after the binning of the total RS Sinr data. The ratio of the number of points to the number of measurement points corresponding to the total RS Sinr data, and q Si is the correlation weighted value of the i-th RS Sinr data.
7.一种射频优化装置,其特征在于,包括:获取模块、优化目标选取模块、调整模块、发送模块和判断模块;7. A radio frequency optimization device, comprising: an acquisition module, an optimization target selection module, an adjustment module, a transmission module and a judgment module; 所述获取模块,用于获取待优化地区的总关键绩效指标数据和历史射频优化数据;所述历史射频优化数据包括至少一个地区的总关键绩效指标数据和优化目标;所述总关键绩效指标数据包括至少一个测点的关键绩效指标;The acquisition module is used to acquire the total key performance indicator data and historical radio frequency optimization data of the region to be optimized; the historical radio frequency optimization data includes the total key performance indicator data and optimization goals of at least one region; the total key performance indicator data Key performance indicators including at least one measurement point; 所述优化目标选取模块,用于根据所述获取模块获取的所述待优化地区的总关键绩效指标数据和所述获取模块获取的所述至少一个地区的总关键绩效指标,从所述获取模块获取的所述至少一个地区的优化目标中选取所述待优化地区的最终优化目标;The optimization target selection module is configured to, according to the total key performance indicator data of the region to be optimized obtained by the obtaining module and the total key performance index of the at least one region obtained by the obtaining module, from the obtaining module Selecting the final optimization target of the to-be-optimized area from the obtained optimization objectives of the at least one area; 所述获取模块还用于获取所述待优化地区的射频可调参数及其可调范围;The acquisition module is further configured to acquire the radio frequency adjustable parameters of the area to be optimized and the adjustable range thereof; 所述调整模块,用于根据所述优化目标选取模块选取的所述最终优化目标、所述获取模块获取的所述射频可调参数和所述获取模块获取的所述射频可调参数的可调范围,依据预设方法对所述射频参数进行调整,以获取射频参数调整值;The adjustment module is configured to adjust the final optimization target selected by the optimization target selection module, the radio frequency adjustable parameter obtained by the acquisition module, and the adjustable radio frequency parameter obtained by the acquisition module. range, and adjusting the radio frequency parameters according to a preset method to obtain an adjustment value of the radio frequency parameters; 所述发送模块,用于将所述调整模块获取的所述射频参数调整值发送给所述待优化地区的网管平台,以使所述网管平台根据所述射频参数调整值对所述待优化地区的射频参数进行调整;The sending module is configured to send the adjustment value of the radio frequency parameter obtained by the adjustment module to the network management platform in the area to be optimized, so that the network management platform can perform the adjustment on the area to be optimized according to the adjustment value of the radio frequency parameter. to adjust the RF parameters; 当所述判断模块确定所述获取模块获取的所述待优化地区在其射频参数调整前后的总关键绩效指标数据存在预设增益值时,所述获取模块用于重新获取待优化地区的总关键绩效指标数据和历史射频优化数据。When the judging module determines that the total KPI data of the area to be optimized obtained by the obtaining module before and after the adjustment of the radio frequency parameters has a preset gain value, the obtaining module is configured to re-acquire the total key performance index data of the area to be optimized Performance metrics data and historical RF optimization data. 8.根据权利要求7所述的射频优化装置,其特征在于,所述优化目标选取模块具体包括:占比计算单元、处理单元和相关性计算单元;8. The radio frequency optimization device according to claim 7, wherein the optimization target selection module specifically comprises: a proportion calculation unit, a processing unit and a correlation calculation unit; 所述占比计算单元,用于依据预设分档规则将所述获取模块获取的所述待优化地区和所述至少一个地区的总关键绩效指标数据进行分档,并计算每一档关键绩效指标数据的占比;所述每一档关键绩效指标数据的占比为所述每一档关键绩效指标数据对应测点的数量占自身所属的总关键绩效指标数据对应测点的数量的占比;The proportion calculation unit is used to classify the total key performance indicator data of the region to be optimized and the at least one region obtained by the acquisition module according to a preset classification rule, and calculate the key performance of each file. The proportion of the index data; the proportion of the KPI data of each file is the proportion of the number of measurement points corresponding to the KPI data of each file to the number of measurement points corresponding to the total KPI data to which it belongs ; 所述处理单元,用于根据所述占比计算单元的计算结果从所述获取模块获取的所述至少一个地区中选取第一档关键绩效指标数据占比与所述待优化地区的第一档关键绩效指标数据占比之差小于等于预设值的第一目标优化地区;所述第一档关键绩效指标数据为所述第一档关键绩效指标数据所属的总关键绩效指标数据分档后的任一档关键绩效指标数据;The processing unit is configured to select, according to the calculation result of the proportion calculation unit, from the at least one region acquired by the acquisition module, the ratio of the first level of KPI data and the first level of the region to be optimized. The first target optimization area where the difference between the proportions of key performance indicator data is less than or equal to the preset value; the first level of key performance indicator data is the total key performance indicator data to which the first level of key performance indicator data belongs after the binning. Any key performance indicator data; 所述相关性计算单元,用于根据所述占比计算单元计算的所述待优化地区的每一档关键绩效指标数据的占比依据预设相关性加权公式计算所述待优化地区的总相关性分值;The correlation calculation unit is configured to calculate the total correlation of the to-be-optimized area according to the proportion of each key performance indicator data of the to-be-optimized area calculated by the proportion-to-be-optimized area according to a preset correlation weighting formula. Sex score; 所述相关性计算单元还用于根据所述占比计算单元计算的所述第一目标优化地区的每一档关键绩效指标数据的占比依据预设相关性加权公式计算所述第一目标优化地区的总相关性分值;The correlation calculation unit is further configured to calculate the first target optimization according to the proportion of each key performance indicator data in the first target optimization area calculated by the proportion calculation unit according to a preset correlation weighting formula. The total relevance score for the region; 所述处理单元还用于将所述相关性计算单元计算的与所述待优化地区的总相关性分值相差最小的第一目标优化地区确定第二目标优化地区,并将第二目标优化地区的优化目标确定为所述待优化地区的最终优化目标。The processing unit is further configured to determine the second target optimization area from the first target optimization area with the smallest difference from the total correlation score of the area to be optimized calculated by the correlation calculation unit, and assign the second target optimization area to the second target optimization area. The optimization objective of is determined as the final optimization objective of the area to be optimized. 9.根据权利要求7所述的射频优化装置,其特征在于,还包括更新模块;9. The radio frequency optimization device according to claim 7, further comprising an update module; 所述发送模块还用于在所述优化目标选取模块选取到所述待优化地区的最终优化目标之后,将所述优化目标选取模块选取的所述最终优化目标发送给优化终端;The sending module is further configured to send the final optimization target selected by the optimization target selection module to the optimization terminal after the optimization target selection module selects the final optimization target of the area to be optimized; 所述更新模块,用于接收所述优化终端发送的第一优化目标调整指令,并根据所述第一优化目标调整指令对所述优化目标选取模块选取的所述最终优化目标进行更新,以重新确定所述待优化地区的最终优化目标。The updating module is configured to receive the first optimization target adjustment instruction sent by the optimization terminal, and update the final optimization target selected by the optimization target selection module according to the first optimization target adjustment instruction to renew the optimization target. Determine the final optimization target of the area to be optimized. 10.根据权利要求9所述的射频优化装置,其特征在于,10. The radio frequency optimization device according to claim 9, wherein, 所述发送模块还用于在将所述射频参数调整值发送给所述待优化地区的网管平台之前,将所述射频参数调整值发送给所述优化终端;The sending module is further configured to send the adjustment value of the radio frequency parameter to the optimization terminal before sending the adjustment value of the radio frequency parameter to the network management platform in the area to be optimized; 所述更新模块,用于接收所述优化终端的第二优化目标调整指令,并根据所述第二优化目标调整指令对所述优化目标选取模块选取的所述最终优化目标进行更新,以重新确定所述待优化地区的最终优化目标。The updating module is configured to receive the second optimization target adjustment instruction of the optimization terminal, and update the final optimization target selected by the optimization target selection module according to the second optimization target adjustment instruction to re-determine The final optimization target of the area to be optimized. 11.根据权利要求9所述的射频优化装置,其特征在于,11. The radio frequency optimization device according to claim 9, wherein, 当所述判断模块确定所述获取模块获取的所述待优化地区在其射频参数调整前后的总关键绩效指标数据不存在预设增益值时,发送调整失败指令给所述优化终端;When the judging module determines that the total KPI data of the area to be optimized obtained by the obtaining module before and after the radio frequency parameter adjustment does not have a preset gain value, send an adjustment failure instruction to the optimization terminal; 所述更新模块还用于接收优化终端的第三优化目标调整指令,并根据所述第三优化目标调整指令对所述优化目标选取模块选取的所述最终优化目标进行更新,以重新确定所述待优化地区的最终优化目标。The update module is further configured to receive a third optimization target adjustment instruction from the optimization terminal, and update the final optimization target selected by the optimization target selection module according to the third optimization target adjustment instruction, so as to re-determine the The final optimization target of the area to be optimized. 12.一种射频优化装置,其特征在于,包括存储器、处理器、总线和通信接口;所述存储器用于存储计算机执行指令,所述处理器与所述存储器通过所述总线连接;当所述射频优化装置运行时,所述处理器执行所述存储器存储的所述计算机执行指令,以使所述装置执行如权利要求1-6任一项所述的射频优化方法。12. A radio frequency optimization device, comprising a memory, a processor, a bus and a communication interface; the memory is used to store computer execution instructions, and the processor and the memory are connected through the bus; when the When the radio frequency optimization apparatus is running, the processor executes the computer-executable instructions stored in the memory, so that the apparatus executes the radio frequency optimization method according to any one of claims 1-6. 13.一种计算机可读存储介质,其特征在于,所述计算机存储介质包括计算机执行指令,当所述计算机执行指令在计算机上运行时,使得所述计算机执行如权利要求1-6任一项所述的射频优化方法。13. A computer-readable storage medium, characterized in that the computer storage medium comprises computer-executable instructions, which, when the computer-executable instructions are run on a computer, cause the computer to perform any one of claims 1-6 The radio frequency optimization method.
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Families Citing this family (2)

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Publication number Priority date Publication date Assignee Title
CN110022405B (en) * 2019-03-29 2021-08-03 惠州Tcl移动通信有限公司 Radio frequency parameter adjusting method, device and storage medium
CN114697998A (en) * 2020-12-28 2022-07-01 中国移动通信有限公司研究院 Negotiation method, apparatus, device and readable storage medium

Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101964985A (en) * 2010-09-29 2011-02-02 中国科学院声学研究所 Coverage and capacity self-optimization device of self-organization network in LTE/LTE-A and method thereof
CN102316469A (en) * 2010-06-30 2012-01-11 华为技术有限公司 Method and system for configuring antenna parameters
CN103699941A (en) * 2013-12-10 2014-04-02 国家电网公司 Method for making annual dispatching operation plan for power system
CN103903455A (en) * 2014-04-14 2014-07-02 东南大学 Urban road traffic signal control optimization system
CN104918270A (en) * 2014-03-11 2015-09-16 中国移动通信集团广东有限公司 Wireless network parameter obtaining method, apparatus and terminal
CN105407486A (en) * 2015-12-02 2016-03-16 中国联合网络通信集团有限公司 Network expansion method and device
CN105722112A (en) * 2014-08-11 2016-06-29 广州逸信电子科技有限公司 Communication network test and optimization system based on mobile terminal
CN107872805A (en) * 2016-09-23 2018-04-03 中兴通讯股份有限公司 Parameter acquiring method and device, network side equipment
KR20180115144A (en) * 2017-04-12 2018-10-22 (주) 아크라인소프트 Artificial intelligence-based key performance indicator simulation system and method

Family Cites Families (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9247436B2 (en) * 2012-07-27 2016-01-26 Nokia Solutions And Networks Oy Insight based orchestration of network optimization in communication networks
US9781685B2 (en) * 2013-11-21 2017-10-03 At&T Intellectual Property I, L.P. Self-adaptive coverage of wireless networks
US20160014617A1 (en) * 2014-07-08 2016-01-14 P. I. Works TR Bilisim Hizm. San. ve Tic A.S. Wireless Communication Network Performance and Robustness Tuning and Optimization Using Deviations in Multiple Key Performance Indicators
US20160165472A1 (en) * 2014-12-09 2016-06-09 Futurewei Technologies, Inc. Analytics assisted self-organizing-network (SON) for coverage capacity optimization (CCO)
US9924386B2 (en) * 2015-06-22 2018-03-20 Orchestra Technology, Inc. Method and system for wireless network optimization and remote control of mobile handset operation
US9929908B2 (en) * 2015-07-10 2018-03-27 Netscout Systems Texas, Llc Method and system for optimizing a communication network feature prior to implementing a new service
US10412632B2 (en) * 2016-08-12 2019-09-10 Qualcomm Incorporated Adaptive numerology for URLLC

Patent Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102316469A (en) * 2010-06-30 2012-01-11 华为技术有限公司 Method and system for configuring antenna parameters
CN101964985A (en) * 2010-09-29 2011-02-02 中国科学院声学研究所 Coverage and capacity self-optimization device of self-organization network in LTE/LTE-A and method thereof
CN103699941A (en) * 2013-12-10 2014-04-02 国家电网公司 Method for making annual dispatching operation plan for power system
CN104918270A (en) * 2014-03-11 2015-09-16 中国移动通信集团广东有限公司 Wireless network parameter obtaining method, apparatus and terminal
CN103903455A (en) * 2014-04-14 2014-07-02 东南大学 Urban road traffic signal control optimization system
CN105722112A (en) * 2014-08-11 2016-06-29 广州逸信电子科技有限公司 Communication network test and optimization system based on mobile terminal
CN105407486A (en) * 2015-12-02 2016-03-16 中国联合网络通信集团有限公司 Network expansion method and device
CN107872805A (en) * 2016-09-23 2018-04-03 中兴通讯股份有限公司 Parameter acquiring method and device, network side equipment
KR20180115144A (en) * 2017-04-12 2018-10-22 (주) 아크라인소프트 Artificial intelligence-based key performance indicator simulation system and method

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
中国联通大中型应急通信车方案研究;邹勇; 栾帅; 马鸿泰; 杨嘉忱;《电信网技术》;20120715;全文 *
从网络仿真看LTE网络分层结构部署;刘彦婷; 南作用;《邮电设计技术》;20151020;全文 *

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