CN111818532A - Base station antenna downward inclination angle optimizing method based on user distribution - Google Patents

Base station antenna downward inclination angle optimizing method based on user distribution Download PDF

Info

Publication number
CN111818532A
CN111818532A CN202010449405.9A CN202010449405A CN111818532A CN 111818532 A CN111818532 A CN 111818532A CN 202010449405 A CN202010449405 A CN 202010449405A CN 111818532 A CN111818532 A CN 111818532A
Authority
CN
China
Prior art keywords
target cell
base station
sector
station antenna
fan
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
CN202010449405.9A
Other languages
Chinese (zh)
Other versions
CN111818532B (en
Inventor
蔡子华
黄劲安
郑锐生
曾哲君
胡梢华
陈漩
梁雅菁
张紫璇
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Zhongtong Service Zhongrui Technology Co ltd
Original Assignee
Zhongrui Communication Planning And Design Co ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Zhongrui Communication Planning And Design Co ltd filed Critical Zhongrui Communication Planning And Design Co ltd
Priority to CN202010449405.9A priority Critical patent/CN111818532B/en
Publication of CN111818532A publication Critical patent/CN111818532A/en
Application granted granted Critical
Publication of CN111818532B publication Critical patent/CN111818532B/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/02Arrangements for optimising operational condition
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W16/00Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
    • H04W16/18Network planning tools
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02DCLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
    • Y02D30/00Reducing energy consumption in communication networks
    • Y02D30/70Reducing energy consumption in communication networks in wireless communication networks

Landscapes

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

Abstract

In order to improve the accuracy of the antenna downward inclination angle and optimize the communication quality, the invention discloses a base station antenna downward inclination angle optimizing method based on user distribution, which comprises the following steps: s1: determining the coverage area of the target cell through the MR data of the target cell and the work parameter information of the target cell and the adjacent cells; s2: dividing a target cell into a plurality of fan-shaped annular intervals; s3: calculating the probability density of the MR sampling points of each sector annular interval; s4: determining the primary coverage direction of the main lobe of the base station antenna according to the probability density of the MR sampling points of each sector annular interval; s5: judging whether each sector ring-shaped interval is split or not according to the map information, and if the sector ring-shaped interval is split, executing S3; if all the fan ring sections do not need to be split, executing S6; s6: determining the final coverage direction of the main lobe of the base station antenna according to the probability density of the MR sampling points of each sector ring interval of S5; and obtaining a downward inclination angle according to the normal of the coverage direction of the main lobe of the final base station antenna.

Description

Base station antenna downward inclination angle optimizing method based on user distribution
Technical Field
The invention relates to the field of wireless communication, in particular to a base station antenna downward inclination angle optimizing method based on user distribution.
Background
In the existing wireless communication construction process, the downward inclination angle of the base station antenna needs to be optimized. The setting of the downward inclination angle of the base station antenna directly influences the coverage quality of the wireless network. Unreasonable arrangement of the downward inclination angle may cause problems such as overlapping coverage or coverage blind areas. The current technical scheme for optimizing the downward inclination angle mainly adopts methods such as network optimization test, field census or user complaint.
The net quality test has the following disadvantages: the road test index reflects the network quality in the current channel environment, the static index can only guide the downward inclination angle optimization work of universality, the actual cell user distribution cannot be combined, targeted fine optimization is carried out, and a large amount of manpower and material resources are consumed in the network optimization test process.
The field census has the following disadvantages: the problem of optimizing the antenna downward inclination angle is solved through field general survey, more manpower and material resources are consumed, the optimization result is influenced by subjective judgment of a surveyor to a great extent, and the requirement of network coverage cannot be really matched.
The customer complaints have the following disadvantages: the method has the advantages that the user complaints trigger the base station antenna downward inclination angle optimization work, the current user complaints are prone to be solved, the antenna downward inclination angle is adjusted to be deviated to the position of the complaint user, other users in the same cell are ignored, and therefore certain network quality hidden dangers are caused.
Patent application No. 2017101176692, entitled a configuration method and system for vertical downtilt values of 5G base station 3DMIMO antennas, has the following disadvantages: the above patent needs to collect the geographic position and the geographic height data of the user and perform cluster analysis, and the related calculation is complicated. The method needs the support of a user intelligent terminal height sensor for acquiring the geographical height data, is greatly limited, and may have errors due to the problems of an algorithm or the performance of the terminal. In addition, the user distribution obtained in the above patent is only a static distribution at a certain time, and cannot represent a dynamic user distribution.
Disclosure of Invention
The invention overcomes the defects of the prior art and provides a base station antenna downward inclination angle optimizing method based on user distribution. According to the method, the distribution density of the users is represented by MR (Measurement Report) sampling point data, fine optimization of the base station antenna downtilt based on the user distribution is completed, compared with the traditional methods based on network optimization test, field general survey or user complaint and the like, the optimization efficiency is higher, the coverage direction is more accurate, errors possibly caused by artificial subjective judgment are reduced, the coverage direction change caused by user flow can be dynamically captured, and accurate coverage is realized by adjusting the downtilt through a network manager.
In order to solve the technical problems, the technical scheme of the invention is as follows:
a base station antenna downward inclination angle optimizing method based on user distribution comprises the following steps:
s1: determining the coverage area of the target cell through the MR data of the target cell, the work parameter information of the target cell and the work parameter information of the adjacent cell of the target cell;
s2: dividing the projection of the downward-looking coverage space of the target cell on a horizontal plane into a plurality of fan-shaped intervals;
s3: calculating the probability density of the MR sampling points of each sector annular interval;
s4: determining the primary coverage direction of the main lobe of the base station antenna according to the probability density of the MR sampling points of each sector annular interval;
s5: judging whether each sector ring-shaped interval is split or not according to the map information, and if the sector ring-shaped interval is split, executing S3; if all the fan ring sections do not need to be split, executing S6;
s6: determining the final coverage direction of the main lobe of the base station antenna according to the probability density of the MR sampling points of each sector ring interval of S5; and obtaining a downward inclination angle according to the normal of the coverage direction of the main lobe of the final base station antenna.
The method represents the user distribution density through the MR sampling point data, finishes the fine optimization of the base station antenna downtilt based on the user distribution, has higher optimization efficiency and more accurate coverage direction compared with the traditional methods based on network optimization test, field general survey or user complaint and the like, reduces errors possibly caused by artificial subjective judgment, can dynamically capture the coverage direction change caused by the user flow, and realizes accurate coverage by adjusting the downtilt through a network manager.
In a preferred embodiment, the MR data includes a physical cell ID, a longitude and a latitude.
In a preferred embodiment, the MR data further comprises one or more of the following:
Figure BDA0002507135780000021
Figure BDA0002507135780000031
in a preferred embodiment, the parameter information includes longitude, latitude, azimuth and antenna hanging height.
In a preferred embodiment, the step S1 includes the following sub-steps:
s1.1: acquiring MR data of a target cell, work parameter information of the target cell and work parameter information of adjacent cells of the target cell;
s1.2: mapping the target cell and the adjacent cells of the target cell into discrete points on the space through the work parameter information of the target cell and the work parameter information of the adjacent cells of the target cell;
s1.3: connecting the discrete points into a triangular net;
s1.4: connecting the discrete point corresponding to the target cell with the center of a circumscribed circle of a triangle of the target cell adjacent to the triangulation network to obtain a Thiessen polygon corresponding to the target cell, and defining the Thiessen polygon corresponding to the target cell as the coverage area of the target cell;
s1.5: and dividing the coverage range of the target cell into a plurality of sector coverage areas by combining the angle bisectors of the azimuth angles of the discrete points of the target cell.
In a preferred embodiment, the step S2 includes the following sub-steps:
s2.1: defining the circumscribed circle of the Thiessen polygon corresponding to the target cell as an outer ring line, and defining DmaxThe horizontal distance between any point on the outer ring line and the base station;
s2.2: randomly selecting any point on an outer ring line corresponding to a sector coverage area of a target cell as a reference point, defining a reference line as a connecting line between the reference point and the top end of a base station antenna, and defining a sector depression angle beta as an included angle between the reference line and a normal of a horizontal plane;
s2.3: dividing the sector depression angle beta into N, thereby dividing the projection of the horizontal plane of the corresponding angle space into N fan-shaped intervals, wherein the angle of each fan-shaped interval is xiiβ -i θ, wherein i is 0,1,2, …, N-1, and N is a positive integer; the theta is an artificial preset value.
In a preferred embodiment, θ is a vertical half power lobe width of the base station antenna.
In a preferred embodiment, the step S5 includes the following sub-steps:
s5.1: obtaining physical parameters of all buildings in the target area according to the map information, and obtaining the span A of each building according to the physical parameters of the buildingsk
S5.2: through the span a of each buildingkObtaining the average span A of all buildings in the sector annular intervalN
S5.3: obtaining the span A of the fan annular interval according to the map information;
s5.4: a and A are reactedNMaking a comparison, if ANIf the temperature is less than or equal to 0.5A, the corresponding fan-shaped annular interval is not split, and S5.6 is executed; if AN>0.5A, then pairS5.5 is executed in the corresponding fan annular interval;
s5.5: the corresponding fan ring section is further divided into M fan ring sections, and the span of the M-1 fan ring section is defined as A- (M-1) × AN(ii) a Defining the span of the sector-shaped interval except the M-1 st one as ANExecuting S3;
s5.6: and traversing all the fan ring sections until all the fan ring sections do not need to be split, and executing S6.
In a preferred embodiment, the map information includes the following fields of the building:
serial number Including field names
1 Building ID
2 Building longitude
3 Building latitude
4 Number of stories in building
In a preferred embodiment, A iskThe calculation is made by the following formula:
Ak=|lonmax-lonmin|
the lonmaxIs the maximum longitude of the building; the lonminIs the minimum longitude of the building.
In one kind excellenceIn the selected scheme, A isNThe calculation is made by the following formula:
Figure BDA0002507135780000041
in the formula, n represents the number of all buildings in the fan-shaped interval; a is describedKiRepresenting the span A of the ith building within the sector annulusk
In a preferred embodiment, a is calculated by the following formula:
A=|lonQmax-lonQmin|
the lonQmaxIs the maximum longitude of the sector annulus; the lonQminIs the minimum longitude of the sector annulus.
In a preferred embodiment, the step S6 includes the following sub-steps:
s6.1: collecting probability densities of MR sampling points of all the sector-shaped intervals of S5, and defining the sector-shaped interval with the highest probability density of the MR sampling points as the final coverage direction of the main lobe of the base station antenna;
s6.2: taking the middle part of the sector-ring-shaped interval with the highest probability density of the MR sampling points as the optimal direction of the normal of the main lobe of the base station antenna to obtain the included angle gamma between the normal of the main lobe of the base station antenna and the horizontal plane, wherein the gamma is calculated by the following formula:
γ=arctan(h/a)
in the formula, h is the hanging height of the base station antenna, and the radius of the sector annular section corresponding to a;
s6.3: obtaining the downward inclination angle of the base station antenna through the included angle gamma
Figure BDA0002507135780000051
Said
Figure BDA0002507135780000052
The calculation is made by the following formula:
Figure BDA0002507135780000053
wherein, the sigma is the zero power wave width of the base station antenna.
In a preferred embodiment, said S3 includes the following contents:
the probability density of the MR sampling points in the fan-shaped interval in S3 is equal to the number of MR sampling points in the fan-shaped interval/the area of the fan-shaped interval.
In a preferred embodiment, said S4 includes the following contents:
and defining the sector interval with the highest probability density of the MR sampling points as the coverage direction of the primary main lobe of the base station antenna.
Compared with the prior art, the technical scheme of the invention has the beneficial effects that:
(1) cost reduction and efficiency improvement are realized, user data are directly obtained through a wireless management system, manual acquisition of basic data is not needed, labor cost is reduced, user flow is dynamically captured, flexible adjustment is realized, and efficiency is improved.
(2) The fitting is practical, the MR data and the web crawler technology are utilized, the current network user data and the online map data can be captured, the fitting is practical, and errors of artificial subjective judgment are reduced.
(3) And fine planning, namely establishing an antenna projection interval by subdividing the antenna angle and the building span, and determining the optimal antenna downward inclination angle by combining the MR data so that the coverage direction is more accurate.
Drawings
FIG. 1 is a flow chart of an embodiment.
FIG. 2 is a schematic diagram of a sector coverage area of an embodiment;
FIG. 3 is a schematic view illustrating the division of the fan-shaped section in the embodiment;
FIG. 4 is a schematic diagram illustrating the calculation of the down tilt angle in the embodiment.
The drawings are for illustrative purposes only and are not to be construed as limiting the patent;
for the purpose of better illustrating the embodiments, certain features of the drawings may be omitted, enlarged or reduced, and do not represent the size of an actual product;
it will be understood by those skilled in the art that certain well-known structures in the drawings and descriptions thereof may be omitted.
The technical solution of the present invention is further described below with reference to the accompanying drawings and examples.
Examples
As shown in fig. 1, a method for optimizing a downtilt of a base station antenna based on user distribution includes the following steps:
s1: determining the coverage area of the target cell through the MR data of the target cell, the work parameter information of the target cell and the work parameter information of the adjacent cell of the target cell;
s2: dividing the projection of the downward-looking coverage space of the target cell on a horizontal plane into a plurality of fan-shaped intervals;
s3: calculating the probability density of the MR sampling points of each sector annular interval;
s4: determining the primary coverage direction of the main lobe of the base station antenna according to the probability density of the MR sampling points of each sector annular interval;
s5: judging whether each sector ring-shaped interval is split or not according to the map information, and if the sector ring-shaped interval is split, executing S3; if all the fan ring sections do not need to be split, executing S6;
s6: determining the final coverage direction of the main lobe of the base station antenna according to the probability density of the MR sampling points of each sector ring interval of S5; and obtaining a downward inclination angle according to the normal of the coverage direction of the main lobe of the final base station antenna.
In the embodiment, the distribution density of users is represented by MR sampling point data, fine optimization of the downtilt of the base station antenna based on user distribution is completed, compared with the traditional methods based on network optimization test, field general survey or user complaint, the optimization efficiency is higher, the coverage direction is more accurate, errors possibly caused by artificial subjective judgment are reduced, the coverage direction change caused by user flow can be dynamically captured, and accurate coverage is realized by adjusting the downtilt through a network manager.
In an embodiment, the following extensions may also be made: the MR data contains a physical cell ID, longitude, and latitude.
In the embodiment and the above improved embodiment, the following extension can be made: the MR data further comprises one or more of the following:
Figure BDA0002507135780000061
Figure BDA0002507135780000071
in the embodiment and the above improved embodiment, the following extension can be made: the working parameter information comprises longitude, latitude, azimuth and antenna hanging height.
In the embodiment and the above improved embodiment, the following extension can be made: s1 includes the following substeps:
s1.1: acquiring MR data of a target cell, work parameter information of the target cell and work parameter information of adjacent cells of the target cell;
s1.2: mapping the target cell and the adjacent cells of the target cell into discrete points on the space through the work parameter information of the target cell and the work parameter information of the adjacent cells of the target cell;
s1.3: connecting the discrete points into a triangular net;
s1.4: connecting the discrete point corresponding to the target cell with the center of a circumscribed circle of a triangle of the target cell adjacent to the triangulation network to obtain a Thiessen polygon corresponding to the target cell, and defining the Thiessen polygon corresponding to the target cell as the coverage area of the target cell;
s1.5: the coverage area of the target cell is divided into several sector coverage areas by combining the bisectors of the azimuths of the discrete points of the target cell, as shown in fig. 2.
In the embodiment and the above improved embodiment, the following extension can be made: s2 includes the following substeps:
s2.1: defining the circumscribed circle of the Thiessen polygon corresponding to the target cell as an outer ring line, and defining DmaxThe horizontal distance between any point on the outer ring line and the base station;
s2.2: randomly selecting any point on an outer ring line corresponding to a sector coverage area of a target cell as a reference point, defining a reference line as a connecting line between the reference point and the top end of a base station antenna, and defining a sector depression angle beta as an included angle between the reference line and a normal of a horizontal plane;
s2.3: dividing the sector depression angle beta into N, thereby dividing the projection of the horizontal plane of the corresponding angle space into N fan-shaped intervals, wherein the angle of each fan-shaped interval is xiiβ -i θ, i 0,1,2, …, N-1, N being a positive integer; theta is an artificial preset value, as shown in fig. 3.
In the embodiment and the above improved embodiment, the following extension can be made: theta is the vertical half power lobe width of the base station antenna.
In the embodiment and the above improved embodiment, the following extension can be made: s5 includes the following substeps:
s5.1: obtaining physical parameters of all buildings in the target area according to the map information, and obtaining the span A of each building according to the physical parameters of the buildingsk
S5.2: through the span a of each buildingkObtaining the average span A of all buildings in the sector annular intervalN
S5.3: obtaining the span A of the fan annular interval according to the map information;
s5.4: a and A are reactedNMaking a comparison, if ANIf the temperature is less than or equal to 0.5A, the corresponding fan-shaped annular interval is not split, and S5.6 is executed; if AN>0.5A, executing S5.5 in the corresponding fan annular interval;
s5.5: the corresponding fan ring section is further divided into M fan ring sections, and the span of the M-1 fan ring section is defined as A- (M-1) × AN(ii) a Defining the span of the sector-shaped interval except the M-1 st one as ANExecuting S3;
s5.6: and traversing all the fan ring sections until all the fan ring sections do not need to be split, and executing S6.
In the embodiment and the above improved embodiment, the following extension can be made: the map information includes the following fields of the building:
serial number Including field names
1 Building ID
2 Building longitude
3 Building latitude
4 Number of stories in building
In the embodiment and the above improved embodiment, the following extension can be made: a. thekThe calculation is made by the following formula:
Ak=|lonmax-lonmin|
lonmaxis the maximum longitude of the building; lonminIs the minimum longitude of the building.
In the embodiment and the above improved embodiment, the following extension can be made: a. theNThe calculation is made by the following formula:
Figure BDA0002507135780000081
in the formula, n represents the number of all buildings in the fan-shaped interval; a. theKiRepresenting the span A of the ith building within the sector annulusk
In the embodiment and the above improved embodiment, the following extension can be made: a is calculated by the following formula:
A=|lonQmax-lonQmin|
lonQmaxis the maximum longitude of the sector annulus; lonQminIs the minimum longitude of the sector annulus.
In the embodiment and the above improved embodiment, the following extension can be made: s6 includes the following substeps:
s6.1: collecting probability densities of MR sampling points of all the sector-shaped intervals of S5, and defining the sector-shaped interval with the highest probability density of the MR sampling points as the final coverage direction of the main lobe of the base station antenna;
s6.2: as shown in fig. 4, the middle of the sector-shaped interval with the highest probability density of MR sampling points is used as the optimal direction of the normal of the main lobe of the base station antenna, and the included angle γ between the normal of the main lobe of the base station antenna and the horizontal plane is obtained, and γ is calculated by the following formula:
γ=arctan(h/a)
in the formula, h is the hanging height of the base station antenna, and a is the radius of the corresponding sector annular section;
s6.3: obtaining the downward inclination angle of the base station antenna through the included angle gamma
Figure BDA0002507135780000091
The calculation is made by the following formula:
Figure BDA0002507135780000092
where σ is the zero-power bandwidth of the base station antenna.
In the embodiment and the above improved embodiment, the following extension can be made: s3 includes the following:
the probability density of the MR sample points in the fan-shaped interval in S3 is equal to the number of MR sample points in the fan-shaped interval/the area of the fan-shaped interval.
In the embodiment and the above improved embodiment, the following extension can be made: s4 includes the following:
and defining the sector interval with the highest probability density of the MR sampling points as the coverage direction of the primary main lobe of the base station antenna.
In the detailed description of the embodiments, various technical features may be arbitrarily combined, and for the sake of brevity, all possible combinations of the technical features are not described, but should be considered as being within the scope of the present specification as long as there is no contradiction between the combinations of the technical features.
The same or similar reference numerals correspond to the same or similar parts;
the terms describing positional relationships in the drawings are for illustrative purposes only and are not to be construed as limiting the patent;
it should be understood that the above-described embodiments of the present invention are merely examples for clearly illustrating the present invention, and are not intended to limit the embodiments of the present invention. Other variations and modifications will be apparent to persons skilled in the art in light of the above description. And are neither required nor exhaustive of all embodiments. Any modification, equivalent replacement, and improvement made within the spirit and principle of the present invention should be included in the protection scope of the claims of the present invention.

Claims (10)

1. A base station antenna downward inclination angle optimizing method based on user distribution is characterized by comprising the following steps:
s1: determining the coverage area of the target cell through the MR data of the target cell, the work parameter information of the target cell and the work parameter information of the adjacent cell of the target cell;
s2: dividing the projection of the downward-looking coverage space of the target cell on a horizontal plane into a plurality of fan-shaped intervals;
s3: calculating the probability density of the MR sampling points of each sector annular interval;
s4: determining the primary coverage direction of the main lobe of the base station antenna according to the probability density of the MR sampling points of each sector annular interval;
s5: judging whether each sector ring-shaped interval is split or not according to the map information, and if the sector ring-shaped interval is split, executing S3; if all the fan ring sections do not need to be split, executing S6;
s6: determining the final coverage direction of the main lobe of the base station antenna according to the probability density of the MR sampling points of each sector ring interval of S5; and obtaining a downward inclination angle according to the normal of the coverage direction of the main lobe of the final base station antenna.
2. The method for optimizing the downtilt angle of a base station antenna according to claim 1, wherein the step S1 includes the following substeps:
s1.1: acquiring MR data of a target cell, work parameter information of the target cell and work parameter information of adjacent cells of the target cell;
s1.2: mapping the target cell and the adjacent cells of the target cell into discrete points on the space through the work parameter information of the target cell and the work parameter information of the adjacent cells of the target cell;
s1.3: connecting the discrete points into a triangular net;
s1.4: connecting the discrete point corresponding to the target cell with the center of a circumscribed circle of a triangle of the target cell adjacent to the triangulation network to obtain a Thiessen polygon corresponding to the target cell, and defining the Thiessen polygon corresponding to the target cell as the coverage area of the target cell;
s1.5: and dividing the coverage range of the target cell into a plurality of sector coverage areas by combining the angle bisectors of the azimuth angles of the discrete points of the target cell.
3. The method for optimizing the downtilt angle of a base station antenna according to claim 2, wherein the step S2 includes the following sub-steps:
s2.1: defining the circumscribed circle of the Thiessen polygon corresponding to the target cell as an outer ring line, and defining DmaxThe horizontal distance between any point on the outer ring line and the base station;
s2.2: randomly selecting any point on an outer ring line corresponding to a sector coverage area of a target cell as a reference point, defining a reference line as a connecting line between the reference point and the top end of a base station antenna, and defining a sector depression angle beta as an included angle between the reference line and a normal of a horizontal plane;
s2.3: fan with fan bodyThe area depression angle beta is divided into N, so that the projection of the horizontal plane of the corresponding angle space is divided into N fan-shaped intervals, and the angle of each fan-shaped interval is xiiβ -i θ, wherein i is 0,1,2, …, N-1, and N is a positive integer; the theta is an artificial preset value.
4. The method of claim 3, wherein θ is a vertical half power lobe width of the base station antenna.
5. The method for optimizing the downtilt angle of a base station antenna according to claim 3 or 4, wherein the step S5 includes the following sub-steps:
s5.1: obtaining physical parameters of all buildings in the target area according to the map information, and obtaining the span A of each building according to the physical parameters of the buildingsk
S5.2: through the span a of each buildingkObtaining the average span A of all buildings in the sector annular intervalN
S5.3: obtaining the span A of the fan annular interval according to the map information;
s5.4: a and A are reactedNMaking a comparison, if ANIf the temperature is less than or equal to 0.5A, the corresponding fan-shaped annular interval is not split, and S5.6 is executed; if AN>0.5A, executing S5.5 in the corresponding fan annular interval;
s5.5: the corresponding fan ring section is further divided into M fan ring sections, and the span of the M-1 fan ring section is defined as A- (M-1) × AN(ii) a Defining the span of the sector-shaped interval except the M-1 st one as ANExecuting S3;
s5.6: and traversing all the fan ring sections until all the fan ring sections do not need to be split, and executing S6.
6. The method as claimed in claim 5, wherein A is akThe calculation is made by the following formula:
Ak=|lonmax-lonmin|
the lonmaxIs the maximum longitude of the building; the lonminIs the minimum longitude of the building.
7. The method as claimed in claim 5, wherein A is aNThe calculation is made by the following formula:
Figure FDA0002507135770000031
in the formula, n represents the number of all buildings in the fan-shaped interval; a is describedKiRepresenting the span A of the ith building within the sector annulusk
8. The method as claimed in claim 5, wherein a is calculated by the following formula:
A=|lonQmax-lonQmin|
the lonQmaxIs the maximum longitude of the sector annulus; the lonQminIs the minimum longitude of the sector annulus.
9. The method for optimizing the downtilt angle of a base station antenna according to claim 5, wherein the step S6 includes the following substeps:
s6.1: collecting probability densities of MR sampling points of all the sector-shaped intervals of S5, and defining the sector-shaped interval with the highest probability density of the MR sampling points as the final coverage direction of the main lobe of the base station antenna;
s6.2: taking the middle part of the sector-ring-shaped interval with the highest probability density of the MR sampling points as the optimal direction of the normal of the main lobe of the base station antenna to obtain the included angle gamma between the normal of the main lobe of the base station antenna and the horizontal plane, wherein the gamma is calculated by the following formula:
γ=arctan(h/a)
in the formula, h is the hanging height of the base station antenna, and the radius of the sector annular section corresponding to a;
s6.3: obtaining the downward inclination angle of the base station antenna through the included angle gamma
Figure FDA0002507135770000032
Said
Figure FDA0002507135770000033
The calculation is made by the following formula:
Figure FDA0002507135770000034
wherein, the sigma is the zero power wave width of the base station antenna.
10. The method for optimizing the downtilt angle of a base station antenna according to claim 1,2, 3, 4, 6, 7, 8 or 9, wherein S3 includes the following steps:
the probability density of the MR sampling points in the fan-shaped interval in S3 is equal to the number of MR sampling points in the fan-shaped interval/the area of the fan-shaped interval.
CN202010449405.9A 2020-05-25 2020-05-25 Base station antenna downward inclination angle optimizing method based on user distribution Active CN111818532B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202010449405.9A CN111818532B (en) 2020-05-25 2020-05-25 Base station antenna downward inclination angle optimizing method based on user distribution

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202010449405.9A CN111818532B (en) 2020-05-25 2020-05-25 Base station antenna downward inclination angle optimizing method based on user distribution

Publications (2)

Publication Number Publication Date
CN111818532A true CN111818532A (en) 2020-10-23
CN111818532B CN111818532B (en) 2023-04-11

Family

ID=72848056

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202010449405.9A Active CN111818532B (en) 2020-05-25 2020-05-25 Base station antenna downward inclination angle optimizing method based on user distribution

Country Status (1)

Country Link
CN (1) CN111818532B (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN114286372A (en) * 2021-12-07 2022-04-05 中国联合网络通信集团有限公司 Antenna downward inclination angle evaluation method and device and computer readable storage medium

Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN103188693A (en) * 2011-12-30 2013-07-03 ***通信集团江苏有限公司 Antenna downward inclination angle determination method and device based on geographic information system (GIS)
CN104378765A (en) * 2013-08-14 2015-02-25 ***通信集团广东有限公司 Method, device and system for adjusting downward inclination angle of antenna
US20160165469A1 (en) * 2014-12-09 2016-06-09 Futurewei Technologies, Inc. Method and apparatus for determining cell states to adjust antenna configuration parameters
CN106851665A (en) * 2015-12-07 2017-06-13 上海无线通信研究中心 The downdip adjusting method of antenna and base station
CN108306699A (en) * 2018-02-08 2018-07-20 南京华苏科技有限公司 A kind of antenna feeder optimization method estimated based on gain
CN109803274A (en) * 2017-11-17 2019-05-24 ***通信集团公司 A kind of antenna azimuth optimization method and system
CN109803273A (en) * 2017-11-17 2019-05-24 ***通信集团山西有限公司 Antenna-feeder system method of adjustment, device, electronic equipment and storage medium
CN110505651A (en) * 2019-08-23 2019-11-26 中国联合网络通信集团有限公司 Optimization method, device, equipment and the storage medium of antenna azimuth

Patent Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN103188693A (en) * 2011-12-30 2013-07-03 ***通信集团江苏有限公司 Antenna downward inclination angle determination method and device based on geographic information system (GIS)
CN104378765A (en) * 2013-08-14 2015-02-25 ***通信集团广东有限公司 Method, device and system for adjusting downward inclination angle of antenna
US20160165469A1 (en) * 2014-12-09 2016-06-09 Futurewei Technologies, Inc. Method and apparatus for determining cell states to adjust antenna configuration parameters
CN106851665A (en) * 2015-12-07 2017-06-13 上海无线通信研究中心 The downdip adjusting method of antenna and base station
CN109803274A (en) * 2017-11-17 2019-05-24 ***通信集团公司 A kind of antenna azimuth optimization method and system
CN109803273A (en) * 2017-11-17 2019-05-24 ***通信集团山西有限公司 Antenna-feeder system method of adjustment, device, electronic equipment and storage medium
CN108306699A (en) * 2018-02-08 2018-07-20 南京华苏科技有限公司 A kind of antenna feeder optimization method estimated based on gain
CN110505651A (en) * 2019-08-23 2019-11-26 中国联合网络通信集团有限公司 Optimization method, device, equipment and the storage medium of antenna azimuth

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
何延等: "天线下倾角调整经验及电调仪使用技巧", 《通讯世界》 *
连晓灿等: "长期演进网络中基于粒子群的天线下倾角自优化方法", 《计算机应用》 *

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN114286372A (en) * 2021-12-07 2022-04-05 中国联合网络通信集团有限公司 Antenna downward inclination angle evaluation method and device and computer readable storage medium
CN114286372B (en) * 2021-12-07 2023-05-16 中国联合网络通信集团有限公司 Antenna downtilt angle evaluation method, device and computer readable storage medium

Also Published As

Publication number Publication date
CN111818532B (en) 2023-04-11

Similar Documents

Publication Publication Date Title
EP3890361B1 (en) Cell longitude and latitude prediction method and device, server, base station, and storage medium
CN109495899B (en) Antenna parameter optimization method and device, electronic equipment and storage medium
US8526961B2 (en) Method and apparatus for mapping operating parameter in coverage area of wireless network
CN106470427B (en) A kind of partitioning method and device of cell scenario
CN103428726B (en) Antenna angle optimization method and system
US11388552B2 (en) Wireless network service assessment
CN110831019A (en) Base station planning method, base station planning device, computer equipment and storage medium
CN104105106A (en) Wireless communication network intelligent-antenna-covered scene automatic classification and recognition method
US20140003365A1 (en) System for continuously improving the performance of wireless networks with mobile users
US7844698B2 (en) Wireless network modification support system and radio network modification support method
CN112217675B (en) Combined analysis method for big data of fixed and mobile communication network
CN105282784B (en) Method based on the overlapping covering of measurement report data system positioning and optimizing TDD-LTE network
CN111818532B (en) Base station antenna downward inclination angle optimizing method based on user distribution
CN107318114B (en) Method and device for planning adjacent cells
CN102131202A (en) Method for geographic gridding of communication network information based on area method
CN111148111B (en) Method, device and equipment for adjusting antenna parameters and computer storage medium
CN109239656B (en) Radio frequency map establishing method in position fingerprint positioning
CN111447677B (en) High-load geographic grid identification and positioning method, system and storage medium
CN115002795A (en) Beam forming method and device, electronic equipment and readable storage medium
CN108738129A (en) A kind of base station positioning method based on drive test data
CN112689299B (en) Cell load distribution method and device based on FP-growth algorithm
CN111432429B (en) Wireless channel model matching correction method based on map information
Zhang et al. Research and Application of 4G or 5G Antenna Beam Weight Intelligent Dynamic Optimization
US20240098509A1 (en) Network expansion optimization
US20230403575A1 (en) Cell Similarity Indicator Based on Coverage Area Morphology

Legal Events

Date Code Title Description
PB01 Publication
PB01 Publication
SE01 Entry into force of request for substantive examination
SE01 Entry into force of request for substantive examination
GR01 Patent grant
GR01 Patent grant
CP03 Change of name, title or address

Address after: 510630 Room 201, 78 Taoyu Road, Tianhe District, Guangzhou City, Guangdong Province

Patentee after: Zhongtong service Zhongrui Technology Co.,Ltd.

Address before: No. 78, Taoyu Road, Tianhe District, Guangzhou, Guangdong 510630

Patentee before: ZHONGRUI COMMUNICATION PLANNING AND DESIGN Co.,Ltd.

CP03 Change of name, title or address