JPH03201726A - Channel arrangement system for cellar system - Google Patents

Channel arrangement system for cellar system

Info

Publication number
JPH03201726A
JPH03201726A JP1340303A JP34030389A JPH03201726A JP H03201726 A JPH03201726 A JP H03201726A JP 1340303 A JP1340303 A JP 1340303A JP 34030389 A JP34030389 A JP 34030389A JP H03201726 A JPH03201726 A JP H03201726A
Authority
JP
Japan
Prior art keywords
interference
base station
sector
antenna
radio base
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.)
Pending
Application number
JP1340303A
Other languages
Japanese (ja)
Inventor
Toshihito Kanai
金井 敏仁
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.)
NEC Corp
Original Assignee
NEC Corp
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 NEC Corp filed Critical NEC Corp
Priority to JP1340303A priority Critical patent/JPH03201726A/en
Publication of JPH03201726A publication Critical patent/JPH03201726A/en
Pending legal-status Critical Current

Links

Landscapes

  • Mobile Radio Communication Systems (AREA)

Abstract

PURPOSE:To build up a cellar system of sector constitution with less quantity of interference by arranging an interference station closer in a direction with a small antenna gain. CONSTITUTION:A same frequency channel is arranged to a sector covered by a directional antenna of a radio base station whose maximum radiation is 0 deg. with respect to a positive direction of the X axis in which the orthogonal coordinate is given as (3<1/2>RnK, 3Rj/2) (j is an even number), where a prescribed natural number (n), optional integral numbers j, k and a prescribed real number R and to a sector covered by a directional antenna of a radio base station whose maximum radiation is 180 deg. with respect to a positive direction of the X axis in which the orthogonal coordinate is given as (3<1/2>R(2nK+1)/2, 3Rj/2) (j is an odd number). Thus, the interference station is parted in a direction with a large antenna gain and closer in a direction with a small antenna gain, the directivity of a base station antenna is utilized sufficiently to build up a cellar system with less interference quantity.

Description

【発明の詳細な説明】 (産業上の利用分野) 本発明は、セクタ構成のセルラーシステムのチャネル配
置方式に関する。
DETAILED DESCRIPTION OF THE INVENTION (Field of Industrial Application) The present invention relates to a channel allocation scheme for a sector-based cellular system.

(従来の技術) 自動車電話システムのような移動通信システムにおいて
は、サービスエリアを複数のセルに分割し、分割された
セル内をカバーする無線基地局をそれぞれ配置し、干渉
妨害の発生しない無線基地局間で同一周波数を繰返し利
用することにより、周波数の有効利用を図っている。こ
の様な移動通信システムはセルラーシステムと呼ばれて
いる。
(Prior Art) In a mobile communication system such as a car telephone system, a service area is divided into a plurality of cells, and each radio base station covering the divided cells is placed to create a radio base station that does not cause interference. Effective use of frequencies is achieved by repeatedly using the same frequency between stations. Such a mobile communication system is called a cellular system.

セルラーシステムの無線基地局に複数の指向性アンテナ
を配置してセルを更に分割すると、容易にセルサイズが
縮小され、またアンテナ指向性を利用して同一周波数の
繰返し距離が短縮可能なため、周波数利用率をより一層
向上することが出来る。この様に無線基地局に複数の指
向性アンテナを配置してセルを分割した構成は、セクタ
構成と呼ばれている。セクタ構成のセルラーシステムの
チャネル配置方式としては、電子通信学会発行「自動車
電話」(桑原守二監修)第79頁から第83頁に記載さ
れている様に、平行ビーム方式とバックバックビーム方
式とが知られている。
By placing multiple directional antennas at the wireless base station of a cellular system and further dividing the cell, the cell size can be easily reduced. Also, the repetition distance of the same frequency can be shortened by using antenna directivity, so the frequency The utilization rate can be further improved. A configuration in which a plurality of directional antennas are arranged in a radio base station to divide cells in this way is called a sector configuration. Channel allocation methods for sector-configured cellular systems include the parallel beam method and the back-back beam method, as described in "Car Telephone" published by the Institute of Electronics and Communication Engineers (edited by Moriji Kuwahara), pages 79 to 83. It has been known.

(発明が解決しようとする課題) 無指向性の基地局アンテナを用いたセル構成においては
、干渉量は同一周波数を用いる干渉層との距離だけに依
存する。従ってクラスタサイズ(繰返しセル数)一定の
下で干渉量を最小にするためには、干渉層を出来るだけ
離して配置する必要がある。セルの形状を正六角形で近
似すると、干渉層との距離を最大にするチャネル配置は
、各基地局から等距離の位置に6局の干渉層を配置した
場合である。
(Problems to be Solved by the Invention) In a cell configuration using omnidirectional base station antennas, the amount of interference depends only on the distance to an interference layer that uses the same frequency. Therefore, in order to minimize the amount of interference with a constant cluster size (number of repeated cells), it is necessary to arrange the interference layers as far apart as possible. If the shape of the cell is approximated by a regular hexagon, the channel arrangement that maximizes the distance to the interference layer is when six interference layers are arranged at positions equidistant from each base station.

一方、セクタ構成においては、干渉量は干渉層との距離
以外に基地局アンテナの指向性にも依存する。従って基
地局アンテナの指向性を利用して、干渉量を低く抑える
必要がある。しがしながら従来の平行ビーム方式やバッ
クバックビーム方式においては、アンテナ指向性を利用
した干渉除去が十分に行われていない。平行ビーム方式
は、第2図に示す様に無指向性セルと同じく、干渉層と
の距離を最大にしたチャネル配置である。従ってアンテ
ナ指向性のために最小距離にある6干渉局の内の一部の
基地局から強力な干渉を受けてしまう。またバックバッ
クビーム方式は、第3図に示す様にアンテナ指向性を利
用して干渉層との距離を平行ビーム方式より短縮したチ
ャネル配置である。トラフィックが局所的に集中した地
域における周波数利用率を重視したチャネル配置であり
、サービスエリア全体に展開した場合の干渉量は考慮さ
れていない。
On the other hand, in the sector configuration, the amount of interference depends not only on the distance to the interference layer but also on the directivity of the base station antenna. Therefore, it is necessary to suppress the amount of interference by utilizing the directivity of the base station antenna. However, in the conventional parallel beam method and back-back beam method, interference cancellation using antenna directivity is not sufficiently performed. The parallel beam method, as shown in FIG. 2, has a channel arrangement that maximizes the distance to the interference layer, similar to the omnidirectional cell. Therefore, due to antenna directivity, strong interference is received from some of the six interfering stations located at the minimum distance. Further, the back-back beam method is a channel arrangement in which the distance to the interference layer is shorter than that of the parallel beam method by utilizing antenna directivity, as shown in FIG. Channel allocation focuses on frequency utilization in areas where traffic is locally concentrated, and does not take into account the amount of interference that would occur if spread over the entire service area.

このように従来のセクタ構成のチャネル配置方式におい
ては、基地局アンテナの指向性を利用した干渉除去が十
分に行われていないため、全体の干渉量が多いという問
題がある。本発明の目的は、セクタ構成のセルラーシス
テムにおいて干渉量の少ないチャネル配置方式を提供す
ることにある。
As described above, in the conventional sector configuration channel allocation system, there is a problem in that the overall amount of interference is large because interference cancellation using the directivity of the base station antenna is not sufficiently performed. An object of the present invention is to provide a channel allocation method that reduces the amount of interference in a sector-configured cellular system.

(課題を解決するための手段) 本願の発明のチャネル配置方式は、無線基地局を、任意
の整数i、jおよび一定の実数Rに対してy=3Rj/
2 で与えられる直交座標(X、y)の位置に配置し、前記
各無線基地局に六つの指向性アンテナをその最大放射方
向がX軸の正の方向に対してそれぞれ0°、60°、1
200.180°、240°、300°となるように配
置することによりモデル化されるセクタ構成のセルラー
システムのチャネル配置方式であって、一定の自然数n
と任意の整数j、におよび一定の実数Rに対して、直交
座標が(v丁Rnk、3Rj / 2)(jが偶数の場
合)で与えられる無線基地局の最大放射方向がX軸の正
の方向に対してOoとなる指向性アンテナによりカバー
されるセクタと、直交座標が (v’TR(2nk+1)/2,3Rj/2)(jが奇
数の場合)で与えられる無線基地局の最大放射方向がX
軸の正の方向に対して1800となる指向性アンテナに
よりカバーされるセクタとに、同一周波数のチャネルを
配置することを特徴とする。
(Means for Solving the Problems) The channel allocation method of the invention of the present application arranges wireless base stations in a manner that y=3Rj/
2, six directional antennas are placed at the orthogonal coordinates (X, y) given by 1
200. A channel arrangement method for a cellular system with a sector configuration modeled by arranging them at 180°, 240°, and 300°, with a constant natural number n
and any integer j, and for a constant real number R, the maximum radiation direction of the wireless base station whose orthogonal coordinates are given by (v Rnk, 3Rj / 2) (when j is an even number) is the positive direction of the X axis. The sector covered by the directional antenna that is Oo with respect to the direction of Radiation direction is X
It is characterized in that channels of the same frequency are arranged in the sector covered by the directional antenna, which is 1800 degrees in the positive direction of the axis.

(作用) このようなチャネル配置を第4図に示す。第4図におい
て同一周波数のチャネルが配置されたセクタの基地局間
の最小距離はaとなるが、十分に鋭い指向性のアンテナ
を用いればこれらのセクタ間の干渉を抑えることが出来
る。またアンテナ指向性の最大利得方向における干渉層
との距離はv’?finとなるが、nの値をある程度大
きくすることにより干渉を抑えることが出来る。
(Operation) Such a channel arrangement is shown in FIG. In FIG. 4, the minimum distance between base stations in sectors where channels of the same frequency are arranged is a, but interference between these sectors can be suppressed by using antennas with sufficiently sharp directivity. Also, the distance to the interference layer in the maximum gain direction of the antenna directivity is v'? fin, but interference can be suppressed by increasing the value of n to some extent.

このように干渉層をアンテナ利得が大きな方向には離し
て、利得が小さな方向には近づけて配置することにより
、基地局アンテナの指向性を十分に利用して干渉量の少
ないセルラーシステムを構築することが出来る。
In this way, by placing the interference layer farther away in the direction of high antenna gain and closer to the direction of lower gain, we can fully utilize the directivity of the base station antenna and build a cellular system with less interference. I can do it.

(実施例) 次に本発明の実施例について図面を参照して説明する。(Example) Next, embodiments of the present invention will be described with reference to the drawings.

第1図は本発明のチャネル配置方式において自然数nを
4とした場合の実施例を示す図である。参照数字10.
20はそれぞれ無線基地局、同一周波数のチャネルが配
置されたセクタを示している。この場合の繰返しセクタ
数は24であり、サービスエリア全体をカバーするため
には、第2図の平行ビーム方式および第3図のバックバ
ックビーム方式と同様に異なる1周波数のチャネルが最
低24チヤネル必要である。
FIG. 1 is a diagram showing an embodiment in which the natural number n is set to 4 in the channel arrangement method of the present invention. Reference number 10.
Reference numerals 20 indicate sectors in which radio base stations and channels of the same frequency are arranged. In this case, the number of repeated sectors is 24, and in order to cover the entire service area, at least 24 channels of one different frequency are required, similar to the parallel beam method in Figure 2 and the back-back beam method in Figure 3. It is.

第1図〜第3図の各チャネル配置方式における干渉量は
、その劣化率により評価出来る。劣化率は、所要品質を
同一周波干渉および熱雑音により満足出来ない確率であ
り、セクタ内のCNR(希望波対雑音電力比)とCIR
(希望波対干渉波電力比)の結合密度関数を、所要品質
を満足出来ない範囲に渡って積分することにより求めら
れる。この詳細な方法は、1989年電子情報通信学会
秋季全国大会、B−492、第2分冊、第162頁、「
アンテナ指向性バタンを考慮したセクタセルの設計」(
金井敏仁著)および電子情報通信学会論文誌B、Vol
、 J71−B、 No、5、第633頁〜第639頁
、「小ゾーン構成移動通信における厳密な無線回線設計
法J(金井敏仁著)に記載されているため、ここでは省
略する。
The amount of interference in each channel arrangement method shown in FIGS. 1 to 3 can be evaluated based on its deterioration rate. The deterioration rate is the probability that the required quality cannot be satisfied due to co-frequency interference and thermal noise, and is the probability that the required quality cannot be satisfied due to co-frequency interference and thermal noise.
It is obtained by integrating the coupling density function of (desired wave to interference wave power ratio) over a range where the required quality cannot be satisfied. This detailed method is described in the 1989 Institute of Electronics, Information and Communication Engineers Autumn National Conference, B-492, Volume 2, p. 162.
"Design of sector cell considering antenna directivity" (
Toshihito Kanai) and IEICE Transactions B, Vol.
, J71-B, No. 5, pp. 633-639, "Strict Radio Channel Design Method J for Small Zone Configuration Mobile Communications" (written by Toshihito Kanai), so it is omitted here.

以下に示す条件のもとで劣化率を計算する。アンテナ指
向性は、1989年電子情報通信学会秋季全国大会、B
−492、第2分冊、第162頁、「アンテナ指向性バ
タンを考慮したセクタセルの設計](金井敏仁著)と同
様に、半値幅60’の実測バタンを基準にして、半値幅
n0の指向性を与える。またCを希望波電力、Nを雑音
電力、■を干渉波電力としてCI(N+■)<14dB
となる場合を劣化とする。伝搬モデルは、長区間中央値
の距離減衰定数αを3.5、希望波および各干渉波の短
区間中央値は互いに独立に標準偏差σ= 6.0dBの
対数正規分布に従うものとする。
Calculate the deterioration rate under the conditions shown below. Antenna directivity, 1989 IEICE Autumn National Conference, B
-492, Volume 2, Page 162, "Design of sector cell considering antenna directivity batten" (written by Toshihito Kanai), the directivity with half-width n0 is based on the measured batten with half-width 60'. Also, CI (N + ■) < 14 dB where C is the desired wave power, N is the noise power, and ■ is the interference wave power.
The case is considered to be deterioration. The propagation model assumes that the distance attenuation constant α of the long interval median value is 3.5, and that the short interval median values of the desired wave and each interference wave independently follow a lognormal distribution with a standard deviation σ = 6.0 dB.

第5図は、送信電力をアンテナ指向性の最大利得方向の
セル境界における長区間平均CNRが25dBとなる様
に設定した場合の半値幅に対する劣化率の変化である。
FIG. 5 shows the change in deterioration rate with respect to the half-width when the transmission power is set so that the long-term average CNR at the cell boundary in the maximum gain direction of the antenna directivity is 25 dB.

送信電力が同一であるため、劣化率の差は干渉量の差を
示している。第5図は、本発明のチャネル配置方式にお
いて半値幅が500以下のアンテナを用いれば、従来の
平行ビーム方式やバックバックビーム方式よりも、干渉
量が少なくなることを示している。例えば半値幅が30
’の場合、平行ビーム方式の劣化率11.8%に対して
、本発明のチャネル配置方式の劣化率は6.5%と37
5以下になる。また本発明のチャネル配置方式において
半値幅が50°以上のアンテナを用いると、最小距離に
あるセクタ間の干渉が無視出来なくなり干渉量は急激に
増加する。
Since the transmission power is the same, the difference in deterioration rate indicates the difference in the amount of interference. FIG. 5 shows that if an antenna with a half width of 500 or less is used in the channel arrangement method of the present invention, the amount of interference will be smaller than in the conventional parallel beam method or back-back beam method. For example, the half width is 30
', the deterioration rate of the channel arrangement method of the present invention is 6.5%, which is 37%, while the deterioration rate of the parallel beam method is 11.8%.
Becomes 5 or less. Furthermore, if an antenna with a half width of 50° or more is used in the channel arrangement method of the present invention, the interference between sectors located at the minimum distance cannot be ignored, and the amount of interference increases rapidly.

(発明の効果) 以上詳細に説明したように本発明によれば、干渉量の少
ないセクタ構成のセルラーシステムを構築することが出
来る。
(Effects of the Invention) As described in detail above, according to the present invention, it is possible to construct a cellular system having a sector configuration with less interference.

【図面の簡単な説明】[Brief explanation of drawings]

第1図は本発明のチャネル配置方式の実施例を示す図、
第2図は平行ビーム方式を示す図、第3図はバックバッ
ク方式を示す図、第4図は本発明の詳細な説明するため
の図、第5図は各チャネル配置方式の劣化率を示す図で
ある。 図において、 10・・・無線基地局、20・・・同一周波数のチャネ
ルが配置されたセクタ。
FIG. 1 is a diagram showing an embodiment of the channel arrangement method of the present invention;
FIG. 2 is a diagram showing the parallel beam method, FIG. 3 is a diagram showing the back-back method, FIG. 4 is a diagram for explaining the present invention in detail, and FIG. 5 is a diagram showing the deterioration rate of each channel arrangement method. It is a diagram. In the figure, 10... Wireless base station, 20... Sector in which channels of the same frequency are arranged.

Claims (1)

【特許請求の範囲】 無線基地局を、任意の整数i、jおよび一定の実数Rに
対して ▲数式、化学式、表等があります▼ y=3Rj/2 で与えられる直交座標(x,y)の位置に配置し、前記
各無線基地局に六つの指向性アンテナをその最大放射方
向がx軸の正の方向に対してそれぞれ0°、60°、1
20°、180°、240°、300°となるように配
置することによりモデル化されるセクタ構成のセルラー
システムのチャネル配置方式であって、 一定の自然数nと任意の整数j、kおよび一定の実数R
に対して、直交座標が(√3Rnk,3Rj/2)(j
が偶数の場合)で与えられる無線基地局の最大放射方向
がx軸の正の方向に対して0°となる指向性アンテナに
よりカバーされるセクタと、直交座標が (√3R(2nk+1)/2,3Rj/2)(jが奇数
の場合)で与えられる無線基地局の最大放射方向がx軸
の正の方向に対して180°となる指向性アンテナによ
りカバーされるセクタとに、同一周波数のチャネルを配
置することを特徴とするチャネル配置方式。
[Claims] A radio base station can be defined by orthogonal coordinates (x, y) given by ▲mathematical formulas, chemical formulas, tables, etc.▼y=3Rj/2 for arbitrary integers i, j and a constant real number R. six directional antennas are placed at each of the radio base stations, and their maximum radiation directions are 0°, 60°, and 1°, respectively, with respect to the positive direction of the x-axis.
20°, 180°, 240°, and 300°, the channel arrangement method of a cellular system with a sector configuration is modeled by arranging the sectors to be 20°, 180°, 240°, and 300°. real number R
, the orthogonal coordinates are (√3Rnk, 3Rj/2)(j
The sector covered by the directional antenna whose maximum radiation direction of the wireless base station is 0° with respect to the positive direction of the x-axis is given by , 3Rj/2) (when j is an odd number), the maximum radiation direction of the radio base station is 180° with respect to the positive direction of the x-axis. A channel arrangement method characterized by arranging channels.
JP1340303A 1989-12-28 1989-12-28 Channel arrangement system for cellar system Pending JPH03201726A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP1340303A JPH03201726A (en) 1989-12-28 1989-12-28 Channel arrangement system for cellar system

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP1340303A JPH03201726A (en) 1989-12-28 1989-12-28 Channel arrangement system for cellar system

Publications (1)

Publication Number Publication Date
JPH03201726A true JPH03201726A (en) 1991-09-03

Family

ID=18335654

Family Applications (1)

Application Number Title Priority Date Filing Date
JP1340303A Pending JPH03201726A (en) 1989-12-28 1989-12-28 Channel arrangement system for cellar system

Country Status (1)

Country Link
JP (1) JPH03201726A (en)

Similar Documents

Publication Publication Date Title
Liberti et al. Analytical results for capacity improvements in CDMA
US6339708B1 (en) Method and apparatus for communications resource allocation for a wireless communications system
US8718541B2 (en) Techniques for optimal location and configuration of infrastructure relay nodes in wireless networks
CN101848021B (en) Method and device for generating broadcast beam weight of intelligent antenna array
JPH04502694A (en) cellular radiotelephone communication system
US6405044B1 (en) Cellular communications system
CN104779986B (en) Using disturbance coordination method between the multiple cell of three-dimensional wave beam forming in 3D-MIMO systems
Yeh et al. Outage probability in mobile telephony with directive antennas and macrodiversity
Wang et al. Interference analysis and resource allocation for TDD-CDMA systems to support asymmetric services by using directional antennas
Marzi et al. Interference analysis for mm-wave picocells
Liberti et al. Reverse channel performance improvements in CDMA cellular communication systems employing adaptive antennas
Meng et al. Co‐channel coexistence analysis between 5G IoT system and fixed‐satellite service at 40 ghz
Cardieri et al. Application of narrow-beam antennas and fractional loading factor in cellular communication systems
CN100488308C (en) Intelligent antenna based on digital wave beam formation
CN107124726B (en) Multi-beam GEO system access control method based on maximized throughput
JPH03201726A (en) Channel arrangement system for cellar system
JPH03201728A (en) Channel arrangement system for cellar system
JPH03201730A (en) Channel arrangement system for cellar system
Tsoulos et al. Adaptive antennas for microcellular and mixed cell environments with DS-CDMA
JPH03201727A (en) Channel arrangement system for cellar system
JPH03201729A (en) Channel arrangement system for cellar system
CN102724684A (en) Same-frequency networking method adopting vertical coverage
Chunjian Efficient antenna patterns for three-sector WCDMA systems
JPH0411419A (en) Channel arrangement system for cellular system
CN105356929A (en) Capacity improvement method for high-altitude communication platform system