TWI695640B - Group base stations transmit power and antenna pattern joint optimization system and method - Google Patents

Group base stations transmit power and antenna pattern joint optimization system and method Download PDF

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TWI695640B
TWI695640B TW108111925A TW108111925A TWI695640B TW I695640 B TWI695640 B TW I695640B TW 108111925 A TW108111925 A TW 108111925A TW 108111925 A TW108111925 A TW 108111925A TW I695640 B TWI695640 B TW I695640B
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base stations
group
antenna
network controller
base station
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TW202038646A (en
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彭楚芸
唐之璇
龍蒂涵
湯凱傑
陳昱安
蔡佳霖
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中華電信股份有限公司
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The invention discloses Group base stations transmit power and antenna pattern joint optimization system and method. User equipments (UE) report UE data to base stations, the base stations report the UE data, number of handovers of adjacent base stations, and information of environment scan to a network controller, and then the network controller divides the base stations into a group base station to establish a group base station list. The network controller instructs the base stations to switch their antenna beam directions one by one or successively to each of different antenna beam directions to collect sufficient UE data, and establishs a sorted list of transmit power and antenna pattern or antenna beam direction of the group base station. The network controller finds a best solution from the sorted list to instruct the base stations to jointly adjust their transmit power and antenna pattern or beam radiation direction to the optimal solution.

Description

群組基地台發射功率與天線場型聯合優化系統及方法 System and method for joint optimization of group base station transmit power and antenna pattern

本發明係關於一種基地台發射功率與天線場型優化技術,特別是指一種群組基地台發射功率與天線場型聯合優化系統及方法。 The invention relates to a base station transmission power and antenna field pattern optimization technology, in particular to a group base station transmission power and antenna field pattern joint optimization system and method.

由於行動網路訊務需求的不斷增加,營運商傾向透過密集佈建小型的基地台於人潮多、高訊務需求的區域,以達成高度的網路涵蓋,並提供足夠的行動網路容量,且降低網路佈建的成本。 Due to the increasing demand for mobile network traffic, operators tend to intensively deploy small base stations in crowded areas with high traffic demand to achieve high network coverage and provide sufficient mobile network capacity. And reduce the cost of network deployment.

傳統上,小型的基地台內建全向性的天線,天線輻射場型固定,朝向四周均勻輻射。然而,隨著行動網路訊務需求的不斷增加,密集佈建小型的基地台成為未來趨勢,惟當多個相鄰的基地台共存時,多個基地台之間的同頻干擾將嚴重影響無線信號品質。換言之,若在鄰近的區域內有同頻的基地台存在時,多個基地台之間的同頻干擾,會造成無線環境的信號品質低落,降低用戶裝置(User Equipment,UE)的傳輸速率與品質,大幅影響用戶的感受。 Traditionally, omnidirectional antennas are built in small base stations, and the radiation pattern of the antenna is fixed and radiates evenly around. However, as the demand for mobile network communications continues to increase, densely deploying small base stations becomes the future trend, but when multiple adjacent base stations coexist, co-channel interference between multiple base stations will be seriously affected Wireless signal quality. In other words, if there are base stations with the same frequency in the adjacent area, the same frequency interference between multiple base stations will cause the signal quality of the wireless environment to degrade, reducing the transmission rate and the user equipment (UE) transmission rate. Quality greatly affects the user's feelings.

再者,存在多個(如n個)基地台的網路環境中,若每一基地台的天線有多個(如m個)可切換天線場型或天線波束方向可供選擇時,則 在此群組基地台的無線環境中應有m的n次方(即mn)種天線場型或天線波束方向的可能解,以致無線系統需要進行m的n次方(即mn)種天線掃描,才能找出最佳的基地台天線場型配置解,從而大幅增加多個基地台的天線需切換或掃描的次數及時間成本。 Furthermore, in a network environment where there are multiple (eg, n) base stations, if there are multiple (eg, m) switchable antenna patterns or antenna beam directions for each base station’s antenna, then In the wireless environment of this group of base stations, there should be possible solutions of m nth power (ie m n ) antenna field patterns or antenna beam directions, so that the wireless system needs to perform m nth power (ie m n ) antennas Scanning can find the best solution for the configuration of the antenna pattern of the base station, thereby greatly increasing the number and time cost of switching or scanning the antennas of multiple base stations.

因此,如何優化群組基地台之發射功率與天線場型或天線波束方向,實已成為本領域技術人員之一大課題。 Therefore, how to optimize the transmission power of the group base station and the antenna pattern or antenna beam direction has become a major issue for those skilled in the art.

本發明提供一種群組基地台發射功率與天線場型聯合優化系統及方法,其可聯合優化群組基地台之發射功率與天線場型或天線波束方向。 The invention provides a system and method for jointly optimizing the transmission power of a group base station and the antenna pattern, which can jointly optimize the transmission power of the group base station and the antenna pattern or antenna beam direction.

本發明之群組基地台發射功率與天線場型聯合優化系統包括:多個用戶裝置,具有回報用戶裝置數據資料之能力;多個基地台,係接收多個用戶裝置所回報的用戶裝置數據資料,並可回報用戶裝置數據資料、相鄰基地台之間的交遞次數與基地台測量環境掃描的資訊給網路控制器;以及至少一網路控制器,係依據來自多個基地台的用戶裝置數據資料、相鄰基地台之間的交遞次數與基地台測量環境掃描的資訊,將多個基地台分成至少一群組基地台,以建立用於群組基地台之發射功率與天線場型優化的一群組基地台名單;其中,網路控制器依據群組基地台名單指示群組基地台中的多個基地台將其天線波束方向逐一或逐次切換到多個不同的天線波束方向的每一者,以供網路控制器收集在多個不同的天線波束方向下一段時間或足夠的用戶裝置數據資料,且網路控制器依據所收集之用戶裝 置數據資料與多個基地台之發射功率的可調整範圍建立群組基地台之發射功率與天線場型或天線波束方向的排序列表,再從群組基地台之發射功率與天線場型或天線波束方向的排序列表中找出最佳解,俾供網路控制器指示多個基地台聯合調整其發射功率與天線場型或波束輻射方向至最佳解。 The group base station transmission power and antenna pattern joint optimization system of the present invention includes: multiple user devices with the ability to report user device data; multiple base stations receiving user device data reported by multiple user devices , And can report the user device data, the number of handovers between neighboring base stations and the information scanned by the base station measurement environment to the network controller; and at least one network controller based on users from multiple base stations The device data, the number of handovers between neighboring base stations and the information scanned by the base station's measurement environment divides multiple base stations into at least one group of base stations to establish the transmission power and antenna field for the group of base stations Optimized list of group base stations; where the network controller instructs multiple base stations in the group base station to switch their antenna beam directions one by one or one by one to multiple different antenna beam directions according to the group base station list Each of them is used by the network controller to collect data for a certain period of time or enough user device data in multiple different antenna beam directions, and the network controller is based on the collected user equipment Set the data and the adjustable range of the transmission power of multiple base stations to create a sorted list of the transmission power of the group base station and the antenna pattern or antenna beam direction, and then select the transmission power of the group base station and the antenna pattern or antenna Find the best solution in the sorted list of beam directions for the network controller to instruct multiple base stations to jointly adjust their transmit power and antenna pattern or beam radiation direction to the best solution.

本發明之群組基地台發射功率與天線場型聯合優化方法包括:由多個用戶裝置回報用戶裝置數據資料,並由多個基地台接收多個用戶裝置所回報的用戶裝置數據資料,以供多個基地台回報用戶裝置數據資料、相鄰基地台之間的交遞次數與基地台測量環境掃描的資訊給網路控制器;由至少一網路控制器依據來自多個基地台的用戶裝置數據資料、相鄰基地台之間的交遞次數與基地台測量環境掃描的資訊,將多個基地台分成至少一群組基地台,以建立用於群組基地台之發射功率與天線場型優化的一群組基地台名單;由網路控制器依據群組基地台名單指示群組基地台中的多個基地台將其天線波束方向逐一或逐次切換到多個不同的天線波束方向的每一者,以供網路控制器收集在多個不同的天線波束方向下一段時間或足夠的用戶裝置數據資料;由網路控制器依據所收集之用戶裝置數據資料與多個基地台之發射功率的可調整範圍建立群組基地台之發射功率與天線場型或天線波束方向的排序列表;由網路控制器從群組基地台之發射功率與天線場型或天線波束方向的排序列表中找出最佳解;以及由網路控制器指示多個基地台聯合調整其發射功率與天線場型或波束輻射方向至最佳解。 The group base station transmission power and antenna pattern joint optimization method of the present invention includes: multiple user devices report user device data, and multiple base stations receive user device data reported by multiple user devices for Multiple base stations report user device data, the number of handovers between neighboring base stations, and the information scanned by the base station measurement environment to the network controller; at least one network controller based on the user devices from multiple base stations The data, the number of handovers between neighboring base stations and the information scanned by the base station's measurement environment divides multiple base stations into at least one group of base stations to establish the transmission power and antenna pattern for the group of base stations Optimized group base station list; the network controller instructs multiple base stations in the group base station to switch their antenna beam directions one by one or sequentially to each of multiple different antenna beam directions according to the group base station list In order for the network controller to collect user device data in a plurality of different antenna beam directions for a period of time or enough; the network controller according to the collected user device data and the transmission power of multiple base stations Adjustable range to create a sorted list of the transmission power of the group base station and the antenna pattern or antenna beam direction; find out from the sorted list of the transmission power of the group base station and the antenna pattern or antenna beam direction by the network controller The best solution; and the network controller instructs multiple base stations to jointly adjust their transmission power and antenna pattern or beam radiation direction to the best solution.

為讓本發明上述特徵與優點能更明顯易懂,下文特舉實施例,並配合所附圖式作詳細說明。在以下描述內容中將部分闡述本發明之額外 特徵及優點,且此等特徵及優點將部分自所述描述內容顯而易見,或可藉由對本發明之實踐習得。本發明之特徵及優點借助於在申請專利範圍中特別指出的元件及組合來認識到並達到。應理解,前文一般描述與以下詳細描述兩者均僅為例示性及解釋性的,且不欲約束本發明所主張之範圍。 In order to make the above-mentioned features and advantages of the present invention more obvious and understandable, the embodiments are specifically described below in conjunction with the accompanying drawings for detailed description. The following description will partially explain the additional features of the present invention Features and advantages, and these features and advantages will be partially apparent from the description, or may be learned by practicing the present invention. The features and advantages of the present invention are recognized and achieved by means of the elements and combinations particularly pointed out in the scope of the patent application. It should be understood that both the foregoing general description and the following detailed description are merely exemplary and explanatory, and are not intended to limit the claimed scope of the invention.

1‧‧‧群組基地台發射功率與天線場型聯合優化系統 1‧‧‧ Group base station transmission power and antenna pattern joint optimization system

10‧‧‧用戶裝置(UE) 10‧‧‧User device (UE)

11‧‧‧用戶裝置數據資料 11‧‧‧User device data

20‧‧‧群組基地台 20‧‧‧ group base station

21‧‧‧基地台(BS) 21‧‧‧ Base Station (BS)

30‧‧‧網路控制器 30‧‧‧Network Controller

31‧‧‧群組基地台名單 31‧‧‧ Group base station list

32‧‧‧排序列表 32‧‧‧Sort list

Sector_i、Sector_j、Sector_k‧‧‧天線波束方向 Sector_i, Sector_j, Sector_k‧‧‧‧ antenna beam direction

S1至S6‧‧‧步驟 S1 to S6‧‧‧ steps

第1圖為本發明之群組基地台發射功率與天線場型聯合優化系統的示意架構圖;第2圖為本發明之基地台之類智慧型天線系統之可切換三個不同天線波束方向的示意圖;第3圖為本發明之多個基地台的初始天線波束方向皆為第一天線波束方向(如Sector_i方向)的示意圖;第4圖為本發明之群組基地台發射功率與天線場型聯合優化方法的示意流程圖;第5A圖至第5C圖為本發明之網路控制器指示群組基地台中的多個基地台將其天線波束方向切換到同一個天線波束方向的示意圖;第6圖為本發明中群組基地台之發射功率與天線場型或天線波束方向的排序列表;以及第7A圖與第7B圖分別為本發明之多個用戶裝置的平均訊雜比於優化前及優化後之模擬結果圖,第7C圖為第7A圖與第7B圖之相關標示、訊雜比(SINR)及信號品質表。 Figure 1 is a schematic architecture diagram of a group base station transmission power and antenna pattern joint optimization system of the present invention; Figure 2 is a switchable three different antenna beam directions of a smart antenna system such as a base station of the present invention Schematic diagram; Figure 3 is a schematic diagram of the initial antenna beam directions of multiple base stations of the present invention are the first antenna beam direction (such as Sector_i direction); Figure 4 is a group base station transmit power and antenna field of the present invention 5A to 5C are schematic diagrams of the network controller of the present invention instructing multiple base stations in a group of base stations to switch their antenna beam directions to the same antenna beam direction; 6 is a sorted list of the transmission power of the group base station and the antenna pattern or antenna beam direction in the present invention; and FIGS. 7A and 7B are respectively the average signal-to-noise ratio of multiple user devices of the present invention before optimization And the optimized simulation result graph, Figure 7C is the related label, signal-to-noise ratio (SINR) and signal quality table of Figure 7A and Figure 7B.

以下藉由特定的具體實施形態說明本發明之實施方式,熟悉此技術之人士可由本說明書所揭示之內容輕易地了解本發明之其他優點與功效,亦可藉由其他不同的具體實施形態加以施行或應用。 The following describes the embodiments of the present invention by specific specific embodiments. Those familiar with this technology can easily understand other advantages and effects of the present invention from the contents disclosed in this specification, and can also be implemented by other different specific embodiments. Or application.

第1圖為本發明之群組基地台發射功率與天線場型聯合優化系統1的示意架構圖。如圖所示,群組基地台發射功率與天線場型聯合優化系統1可應用在多個相鄰的基地台21(如行動基地台)的網路環境中,並包括多個用戶裝置(UE)10、多個基地台(BS)21與至少一網路控制器(Network controller)30。 FIG. 1 is a schematic architecture diagram of a group base station transmission power and antenna pattern joint optimization system 1 of the present invention. As shown in the figure, the group base station transmit power and antenna field pattern joint optimization system 1 can be applied to the network environment of multiple adjacent base stations 21 (such as mobile base stations), and includes multiple user devices (UE 10.) A plurality of base stations (BS) 21 and at least one network controller (Network controller) 30.

多個用戶裝置10可回報用戶裝置數據資料11給多個基地台21或網路控制器30。多個基地台21可接收多個用戶裝置10所回報的用戶裝置數據資料11,並可回報用戶裝置數據資料11、相鄰基地台21之間的交遞次數與基地台21測量環境掃描(REM)的資訊給網路控制器30。網路控制器30可依據來自多個基地台21的用戶裝置數據資料11、相鄰基地台21之間的交遞次數與基地台21測量環境掃描的資訊,將多個基地台21分成至少一群組基地台20,以建立用於群組基地台20之發射功率與天線場型優化的一群組基地台名單31。 The multiple user devices 10 can report the user device data 11 to the multiple base stations 21 or the network controller 30. The multiple base stations 21 can receive the user device data 11 reported by the multiple user devices 10, and can report the user device data 11, the number of handovers between adjacent base stations 21, and the base station 21 measurement environment scan (REM )'S information to the network controller 30. The network controller 30 may divide the plurality of base stations 21 into at least one based on the user device data data 11 from the plurality of base stations 21, the number of handovers between neighboring base stations 21, and the information of the base station 21 measurement environment scan The group base station 20 establishes a group base station list 31 for optimizing the transmission power and antenna pattern of the group base station 20.

同時,網路控制器30可依據群組基地台名單31指示群組基地台20中的多個基地台21將其天線波束方向逐一或逐次切換到多個(如三個)不同的天線波束方向的每一者,以供網路控制器30收集在多個不同的天線波束方向下一段時間或足夠的用戶裝置數據資料11。網路控制器30可依據所收集之用戶裝置數據資料11與多個基地台21之發射功率的可調 整範圍建立群組基地台20之發射功率與天線場型或天線波束方向的排序列表32,並由網路控制器30計算出群組基地台20中多個基地台21(基地台細胞)的服務人數與負載程度,從群組基地台20之發射功率與天線場型或天線波束方向的排序列表32中找出最佳解,俾供網路控制器30指示多個基地台21聯合調整其發射功率與天線場型或波束輻射方向至最佳解。 At the same time, the network controller 30 can instruct the plurality of base stations 21 in the group base station 20 to switch their antenna beam directions one by one or sequentially to multiple (eg, three) different antenna beam directions according to the group base station list 31 Each of them is used by the network controller 30 to collect user device data 11 in a plurality of different antenna beam directions for a period of time or enough. The network controller 30 can adjust the transmission power of the collected user device data 11 and the multiple base stations 21 A sorted list 32 of the transmission power of the group base station 20 and the antenna pattern or antenna beam direction is established over the entire range, and the network controller 30 calculates the number of base stations 21 (base station cells) in the group base station 20 The number of people served and the degree of load, find the best solution from the sorted list 32 of the transmission power of the group base station 20 and the antenna field pattern or antenna beam direction, for the network controller 30 to instruct multiple base stations 21 to jointly adjust their The best solution is to transmit power and antenna pattern or beam radiation direction.

上述用戶裝置10可為智慧手機、智慧手錶、平板電腦、筆記型電腦等。網路控制器30可為自組織網路(Self-Organizing Network,SON)控制器等,且網路控制器30不限於單一實體之網路元件,只要可提供此種集中處理計算功能之網路元件都包括在網路控制器30的定義範疇中。 The user device 10 may be a smart phone, a smart watch, a tablet computer, a notebook computer, or the like. The network controller 30 can be a self-organizing network (Self-Organizing Network, SON) controller, etc., and the network controller 30 is not limited to a single physical network element, as long as it can provide such a centralized processing computing network The elements are included in the definition category of the network controller 30.

上述多個用戶裝置10週期性回報的用戶裝置數據資料11至少包括:群組基地台20中多個基地台21(基地台細胞)的代號、多個基地台21之天線輻射至多個用戶裝置10上的接收信號強度值(如參考信號接收功率(Reference Signal Receiving Power,RSRP))、多個用戶裝置10的服務訊務類型等。上述用戶裝置數據資料11的回報可透過多個用戶裝置10將所量測到的無線測量報告(Measurement Report,MR)傳送給基地台21再傳給網路控制器30,或者在多個用戶裝置10安裝測量軟體(APP),再由多個用戶裝置10將所測量到的接收信號強度值(RSRP)與用戶裝置數據資料11回報給網路控制器30。 The user device data 11 periodically reported by the multiple user devices 10 includes at least: the code name of the multiple base stations 21 (base station cells) in the group base station 20, and the antennas of the multiple base stations 21 radiate to the multiple user devices 10 The received signal strength value (eg, Reference Signal Receiving Power (RSRP)), the type of service communication of multiple user devices 10, etc. The report of the user device data data 11 can send the measured wireless measurement report (Measurement Report, MR) to the base station 21 and then to the network controller 30 through multiple user devices 10, or in multiple user devices 10 Install the measurement software (APP), and then multiple user devices 10 report the measured received signal strength value (RSRP) and the user device data 11 to the network controller 30.

以一應用場景為例,當某個群組基地台20中有多個(如n個)基地台21(基地台細胞)相鄰時,每一個基地台21(基地台細胞)具有一類智慧型天線系統,該類智慧型天線系統具有多個固定場型或多個固定天線 波束方向,可從多個天線場型或天線波束方向中選取一個或多個特定波束供傳輸與接收。 Taking an application scenario as an example, when multiple (eg, n) base stations 21 (base station cells) in a group of base stations 20 are adjacent, each base station 21 (base station cell) has a type of smart Antenna system, this type of smart antenna system has multiple fixed fields or multiple fixed antennas For the beam direction, one or more specific beams can be selected from multiple antenna patterns or antenna beam directions for transmission and reception.

在現有技術之天線掃描方法中,若每一基地台天線系統之類智慧型天線系統可切換m個不同的波束輻射方向,則在此群組基地台的無線環境中應有m的n次方(即mn)種天線場型或天線波束方向的可能解,其中m及n為正整數。但是,本發明能跳脫現有技術之天線掃描方法需要進行m的n次方(即mn)種基地台的天線切換或掃描,才能找出天線場型或天線波束方向最佳解的作法。 In the prior art antenna scanning method, if a smart antenna system such as each base station antenna system can switch m different beam radiation directions, there should be m to the nth power in the wireless environment of this group of base stations (I.e. m n ) possible solutions of various antenna field patterns or antenna beam directions, where m and n are positive integers. However, the present invention can escape from the prior art antenna scanning method, which requires m-th power (ie m n ) of base station antenna switching or scanning to find the best solution for the antenna field pattern or antenna beam direction.

申言之,本發明可降低群組基地台20之無線環境優化需切換或掃描天線的次數到僅需要m次,透過週期性、中央集中式的取得同一個群組基地台20中多個基地台21下,用戶裝置10回報的用戶裝置數據資料11作為依據,再依據基地台21(基地台細胞)之發射功率的可調整範圍,由網路控制器30交叉計算群組基地台20之天線場型的各種可能解在發射功率調整後,有關多個用戶裝置10的接收信號強度值(RSRP)及訊雜比(如訊號與干擾加雜訊比(Signal to Interference plus Noise Ratio,SINR)),並將各種可能解中多個用戶裝置10的平均訊雜比(SINR)進行排序(如由大至小排序),以將由大而小的平均訊雜比對應的發射功率與天線場型可能解排序,俾建立最佳無線信號品質的群組基地台20之發射功率與天線場型或天線波束方向的排序列表32。 In other words, the present invention can reduce the number of times the group base station 20 needs to switch or scan the antenna for wireless environment optimization to only m times, by periodically and centrally acquiring multiple bases in the same group base station 20 Under the station 21, the user device data 11 reported by the user device 10 is used as a basis, and then according to the adjustable range of the transmission power of the base station 21 (base station cell), the network controller 30 cross-calculates the antenna of the group base station 20 Various possible solutions of the field pattern are related to the received signal strength value (RSRP) and signal-to-noise ratio (such as Signal to Interference plus Noise Ratio (SINR)) of multiple user devices 10 after the adjustment of the transmission power , And sort the average signal-to-noise ratio (SINR) of multiple user devices 10 in various possible solutions (such as sorting from large to small), so that the transmission power and antenna pattern corresponding to the large to small average signal-to-noise ratio may be De-sorting to create a sorted list 32 of the transmission power of the group base station 20 with the best wireless signal quality and the antenna pattern or antenna beam direction.

網路控制器30依據用戶裝置數據資料11中的用戶裝置服務訊務類型...等資訊,可以推估出在群組基地台20之發射功率與天線場型或天線波束方向的排序列表32中,每一種天線波束方向的可能解中的基地台 21的服務人數與負載程度,並排除基地台21的服務人數過少或負載程度過低的可能解,即可從群組基地台20之發射功率與天線場型或天線波束方向的排序列表32中找出最佳解。在優化無線信號品質之後,亦完成系統容量的最佳化,可大幅提升基地台21(基地台細胞)的頻譜效益,進而提升用戶裝置10的傳輸速率與用戶的感受。 The network controller 30 can estimate the sorted list 32 of the transmission power and the antenna pattern or antenna beam direction at the group base station 20 based on the user device service traffic type in the user device data data 11 etc. The base station in the possible solution of each antenna beam direction The number of servings of 21 and the degree of loading, and excluding the possible solution of the number of servings of the base station 21 is too small or the load is too low, you can choose from the sorted list 32 of the transmission power of the group base station 20 and the antenna pattern or antenna beam direction Find the best solution. After optimizing the quality of the wireless signal, the optimization of the system capacity is also completed, which can greatly improve the spectrum efficiency of the base station 21 (base station cell), thereby improving the transmission rate of the user device 10 and the user's experience.

網路控制器30可透過演算法以控制指令調整多個基地台21的發射功率與天線場型或波束輻射方向,進而以集中式聯合調整群組基地台20中多個基地台21的發射功率與天線場型或波束輻射方向,故可規劃較好的無線信號涵蓋,避免在密集佈建基地台21(基地台細胞)的網路環境中,有涵蓋漏洞、涵蓋重疊或涵蓋過遠的情形發生。同時,天線場型的調整可包括天線本身輻射場型(如半功率波束寬(Half Power Beam width,HPBW))的調整、天線波束方向(下傾角度或水平方向)的調整,或結合前述兩種方式的天線輻射場型的調整。 The network controller 30 can adjust the transmission power of multiple base stations 21 and the antenna pattern or beam radiation direction through an algorithm and control commands, and then collectively adjust the transmission power of multiple base stations 21 in the group base station 20 It is compatible with the antenna pattern or beam radiation direction, so a better wireless signal coverage can be planned to avoid coverage holes, overlapping coverage, or too far coverage in the network environment of densely deployed base stations 21 (base station cells) occur. At the same time, the adjustment of the antenna pattern can include the adjustment of the antenna's radiation pattern (such as Half Power Beam width (HPBW)), the adjustment of the antenna beam direction (downtilt angle or horizontal direction), or a combination of the two The adjustment of the antenna radiation pattern in various ways.

第2圖為本發明之基地台21(基地台細胞)之類智慧型天線系統之可切換三個不同天線波束方向的示意圖。 FIG. 2 is a schematic diagram of three different antenna beam directions that can be switched in a smart antenna system such as a base station 21 (base station cell) of the present invention.

以一應用場景為例,包括相鄰的多個基地台21(如四個基地台BS_A、BS_B、BS_C、BS_D),四個基地台21的無線操作頻率是2600MHz(兆赫),已選定佈建位置並架設於3.4公尺高,四個基地台21的初始發射功率皆為27dBm(分貝毫瓦),每一個基地台21具有一類智慧型天線系統,該類智慧型天線系統具有三個不同天線波束方向,如第2圖所示之第一天線波束方向(如Sector_i方向)、第二天線波束方向(如Sector_j方向)、第三天線波束方向(如Sector_k方向),可從三個不同天線波束方向 中選取一個特定天線波束方向供傳輸與接收。 Taking an application scenario as an example, it includes multiple adjacent base stations 21 (such as four base stations BS_A, BS_B, BS_C, and BS_D). The wireless operating frequency of the four base stations 21 is 2600 MHz (megahertz). It is located at a height of 3.4 meters. The initial transmission power of the four base stations 21 is 27 dBm (decibel milliwatts). Each base station 21 has a type of smart antenna system with three different antennas. The beam direction, such as the first antenna beam direction (such as Sector_i direction), the second antenna beam direction (such as Sector_j direction), and the third antenna beam direction (such as Sector_k direction) shown in Figure 2, can be different from three Antenna beam direction Select a specific antenna beam direction for transmission and reception.

第3圖為本發明之多個基地台21的初始天線波束方向皆為第一天線波束方向(如Sector_i方向)的示意圖,請一併參閱第2圖。 FIG. 3 is a schematic diagram of the initial antenna beam directions of multiple base stations 21 of the present invention all being the first antenna beam direction (such as the Sector_i direction), please refer to FIG. 2 together.

第4圖為本發明之群組基地台發射功率與天線場型聯合優化方法的示意流程圖,第5A圖至第5C圖為本發明之網路控制器30指示群組基地台20中多個基地台21(如四個基地台BS_A、BS_B、BS_C、BS_D)將其天線波束方向切換到例如同一個天線波束方向的示意圖,第6圖為本發明中群組基地台20之發射功率與天線場型或天線波束方向的排序列表32,請一併參閱第1圖至第3圖。 FIG. 4 is a schematic flowchart of a method for joint optimization of group base station transmit power and antenna pattern of the present invention, and FIGS. 5A to 5C are network controller 30 of the present invention instructing a plurality of group base stations 20 A schematic diagram of the base station 21 (such as four base stations BS_A, BS_B, BS_C, BS_D) switching its antenna beam direction to, for example, the same antenna beam direction. FIG. 6 is the transmission power and antenna of the group base station 20 in the present invention For the sorting list 32 of field patterns or antenna beam directions, please refer to FIGS. 1 to 3 together.

本發明之群組基地台發射功率與天線場型聯合優化方法主要包括:(1)由多個用戶裝置10回報用戶裝置數據資料11給多個基地台21或網路控制器30,並由多個基地台21接收多個用戶裝置10所回報的用戶裝置數據資料11,以供多個基地台21回報用戶裝置數據資料11、相鄰基地台21之間的交遞次數與基地台21測量環境掃描的資訊給網路控制器30;(2)由至少一網路控制器30依據來自多個基地台21的用戶裝置數據資料11、相鄰基地台21之間的交遞次數與基地台21測量環境掃描的資訊,將多個基地台21分成至少一群組基地台20,以建立用於群組基地台20之發射功率與天線場型優化的一群組基地台名單31;(3)由網路控制器30依據群組基地台名單31指示群組基地台20中的多個基地台21將其天線波束方向逐一或逐次切換到多個不同的天線波束方向的每一者,以供網路控制器30收集在多個不同的天線波束方向下一段時間或足夠的用戶裝置數據資料11;(4)由網路控制器30依據所收集之用戶裝置數據資料11與多個基地台 21之發射功率的可調整範圍建立群組基地台20之發射功率與天線場型或天線波束方向的排序列表32;(5)由網路控制器30從群組基地台20之發射功率與天線場型或天線波束方向的排序列表32中找出最佳解;(6)由網路控制器30指示多個基地台21聯合調整其發射功率與天線場型或波束輻射方向至最佳解。 The group base station transmission power and antenna pattern joint optimization method of the present invention mainly includes: (1) multiple user devices 10 report user device data 11 to multiple base stations 21 or network controllers 30, and the multiple Each base station 21 receives the user device data data 11 reported by the multiple user devices 10 for the multiple base stations 21 to report the user device data data 11, the number of handovers between neighboring base stations 21, and the measurement environment of the base station 21 Scanned information to the network controller 30; (2) At least one network controller 30 according to user device data data 11 from multiple base stations 21, the number of handovers between neighboring base stations 21 and the base station 21 Measure the information scanned by the environment and divide multiple base stations 21 into at least one group of base stations 20 to establish a group of base stations list 31 for optimizing the transmission power and antenna pattern of the group base stations 20; (3) According to the group base station list 31, the network controller 30 instructs the plurality of base stations 21 in the group base station 20 to switch their antenna beam directions one by one or sequentially to each of a plurality of different antenna beam directions for The network controller 30 collects user device data 11 for a period of time or enough under multiple different antenna beam directions; (4) The network controller 30 is based on the collected user device data 11 and multiple base stations The adjustable range of the transmission power of 21 establishes a sorted list 32 of the transmission power of the group base station 20 and the antenna field pattern or antenna beam direction 32; (5) The transmission power and antenna of the group base station 20 from the network controller 30 Find the best solution in the sorted list 32 of field patterns or antenna beam directions; (6) The network controller 30 instructs multiple base stations 21 to jointly adjust their transmission power and antenna field pattern or beam radiation direction to the best solution.

舉例而言,在第4圖之步驟S1中,第3圖所示多個基地台21(如四個基地台BS_A、BS_B、BS_C、BS_D)之服務範圍下連接的用戶裝置10週期性回報用戶裝置數據資料11(見第1圖)給多個基地台21或網路控制器30。多個基地台21(如四個基地台BS_A、BS_B、BS_C、BS_D)可接收多個用戶裝置10週期性回報的用戶裝置數據資料11,並將用戶裝置數據資料11、相鄰基地台21之間的交遞次數與基地台21測量環境掃描(REM)的資訊(如相鄰基地台21之間的接收信號強度值)...等,回報給網路控制器30。 For example, in step S1 of FIG. 4, the user device 10 connected within the service range of the multiple base stations 21 (such as four base stations BS_A, BS_B, BS_C, BS_D) shown in FIG. 3 periodically reports back to the user The device data 11 (see FIG. 1) is given to multiple base stations 21 or network controllers 30. Multiple base stations 21 (e.g., four base stations BS_A, BS_B, BS_C, BS_D) can receive user device data information 11 periodically reported by multiple user devices 10, and combine the user device data information 11 with neighboring base stations 21 The number of inter-delivery times and the information of the base station 21's measurement environment scan (REM) (such as the received signal strength value between adjacent base stations 21)... etc. are reported to the network controller 30.

在第4圖之步驟S2中,第1圖之網路控制器30可依據來自多個基地台21的用戶裝置數據資料11、相鄰基地台21之間的交遞次數與測量環境掃描(REM)的資訊作判斷,將網路中的多個基地台21(如四個基地台BS_A、BS_B、BS_C、BS_D)分成或組成至少一群組基地台20,以建立用於群組基地台20之發射功率與天線場型聯合優化的一群組基地台名單31。 In step S2 of FIG. 4, the network controller 30 of FIG. 1 can scan based on the user device data data 11 from multiple base stations 21, the number of handovers between neighboring base stations 21 and the measurement environment scan (REM ) To determine the information, divide multiple base stations 21 (such as four base stations BS_A, BS_B, BS_C, BS_D) into at least one group of base stations 20 to establish a group of base stations 20 A list of base stations in a group of joint optimization of the transmission power and antenna field pattern 31.

在第4圖之步驟S3中,第1圖之網路控制器30可依據群組基地台名單31指示群組基地台20中的多個基地台21將其天線波束方向逐一或逐次切換到多個不同的天線波束方向的每一者,以供網路控制器30 收集在多個不同的天線波束方向下一段時間或足夠的用戶裝置數據資料11。 In step S3 of FIG. 4, the network controller 30 of FIG. 1 may instruct the plurality of base stations 21 in the group base station 20 according to the group base station list 31 to switch their antenna beam directions one by one or one by one Each of the different antenna beam directions for the network controller 30 Collect user device data 11 for a period of time or enough in multiple different antenna beam directions.

例如,網路控制器30可依據群組基地台名單31指示第5A圖所示群組基地台20中多個基地台21(如四個基地台BS_A、BS_B、BS_C、BS_D),將其天線波束方向一併切換到第一天線波束方向(如第5A圖之Sector_i方向,但亦可為第5B圖之Sector_j方向、第5C圖之Sector_k方向或其他方向),以收集在第一天線波束方向(如Sector_i方向)下一段時間或足夠的用戶裝置數據資料11。 For example, the network controller 30 may instruct a plurality of base stations 21 (such as four base stations BS_A, BS_B, BS_C, BS_D) in the group base station 20 shown in FIG. The beam direction is switched to the first antenna beam direction (such as the Sector_i direction in Figure 5A, but it can also be the Sector_j direction in Figure 5B, the Sector_k direction in Figure 5C or other directions) to be collected in the first antenna A period of time in the beam direction (eg, Sector_i direction) or sufficient user device data 11.

當在此群組基地台20下服務的每一個用戶裝置10的數據資料中測量到足夠數量的用戶裝置10對群組基地台20中,每一個基地台21在第一天線波束方向(如Sector_i方向)下的接收信號強度值(RSRP),且回報給網路控制器30時,網路控制器30可依據群組基地台名單31指示群組基地台20中多個基地台21(如四個基地台BS_A、BS_B、BS_C、BS_D),將多個基地台21之第一天線波束方向一併切換到第二天線波束方向(如第5B圖之Sector_j方向,但亦可為第5A圖之Sector_i方向、第5C圖之Sector_k或其他方向),以收集在第二天線波束方向下一段時間或足夠的用戶裝置數據資料11。 When the data of each user device 10 served under the group base station 20 measures a sufficient number of user devices 10 to the group base station 20, each base station 21 is in the direction of the first antenna beam (e.g. Sector_i direction) received signal strength value (RSRP), and when reported back to the network controller 30, the network controller 30 can instruct the plurality of base stations 21 in the group base station 20 according to the group base station list 31 (such as Four base stations BS_A, BS_B, BS_C, BS_D), the first antenna beam direction of multiple base stations 21 is switched to the second antenna beam direction (such as Sector_j direction in FIG. 5B, but it can also be the first (Sector_i direction in FIG. 5A, Sector_k in FIG. 5C or other directions) to collect user device data 11 for a period of time or enough in the second antenna beam direction.

同理,當收集一段時間直到每一個用戶裝置10的數據資料中測量到足夠數量的用戶裝置10對群組基地台20中,每一個基地台21(如基地台BS_A、BS_B、BS_C、BS_D)在第二天線波束方向(如Sector_j方向)下的接收信號強度值(RSRP),且回報給網路控制器30時,網路控制器30指示群組基地台20中多個基地台21(如四個基地台BS_A、BS_B、BS_C、 BS_D),將多個基地台21之第二天線波束方向一併切換到第三天線波束方向(如第5C圖之Sector_k方向,但亦可為第5A圖之Sector_i方向、第5B圖之Sector_j方向或其他方向),以收集在第三天線波束方向下一段時間或足夠的用戶裝置數據資料11。當收集一段時間直到每一個用戶裝置10的數據資料中測量到足夠數量的用戶裝置10對群組基地台20中,每一個基地台21(如基地台BS_A、BS_B、BS_C、BS_D)在第三天線波束方向(如Sector_k方向)下的接收信號強度值(RSRP),且回報給網路控制器30時,即可完成接收信號強度值(RSRP)與用戶裝置數據資料11的收集。 Similarly, when a period of time is collected until the data of each user device 10 measures a sufficient number of user devices 10 against the group of base stations 20, each base station 21 (eg, base stations BS_A, BS_B, BS_C, BS_D) When the received signal strength value (RSRP) in the second antenna beam direction (eg, Sector_j direction) is reported to the network controller 30, the network controller 30 instructs the plurality of base stations 21 in the group base station 20 ( Such as four base stations BS_A, BS_B, BS_C, BS_D), the second antenna beam direction of multiple base stations 21 is switched to the third antenna beam direction (such as the Sector_k direction in Figure 5C, but it can also be the Sector_i direction in Figure 5A, Sector_j in Figure 5B) Direction or other directions) to collect user device data 11 in the third antenna beam direction for a period of time or enough. When data is collected for a period of time until a sufficient number of user devices 10 are measured in the group of base stations 20, each base station 21 (eg, base stations BS_A, BS_B, BS_C, BS_D) is in the third When the received signal strength value (RSRP) in the antenna beam direction (eg Sector_k direction) is reported to the network controller 30, the collection of the received signal strength value (RSRP) and the user device data 11 can be completed.

簡而言之,網路控制器30會指示群組基地台20中多個基地台21切換或掃描三個不同的天線波束方向,並將接收信號強度值(RSRP)與用戶裝置數據資料11透過基地台21或直接回報給網路控制器30,網路控制器30可得到每一個用戶裝置10對多個基地台21(如四個基地台BS_A、BS_B、BS_C、BS_D),在三個不同天線波束方向下(如Sector_i、Sector_i、Sector_k)的接收信號強度值(RSRP)。由於網路控制器30可一併指示多個基地台21切換到某一天線波束方向去進行用戶裝置數據資料11的測量與收集,因此群組基地台20的天線切換或掃描只需要進行三次。前述用戶裝置數據資料11可包括:群組基地台20中多個基地台21(基地台細胞)之代號及其天線輻射至用戶裝置10上的接收信號強度值(如RSRP_BS_A、RSRP_BS_B、RSRP_BS_C、RSRP_BS_D...)、用戶裝置10的服務訊務類型相關資訊...等。 In short, the network controller 30 will instruct multiple base stations 21 in the group base station 20 to switch or scan three different antenna beam directions, and transmit the received signal strength value (RSRP) and the user device data 11 through The base station 21 may directly report to the network controller 30. The network controller 30 may obtain each user device 10 for a plurality of base stations 21 (such as four base stations BS_A, BS_B, BS_C, and BS_D) in three different Received signal strength value (RSRP) in the antenna beam direction (eg Sector_i, Sector_i, Sector_k). Since the network controller 30 can instruct a plurality of base stations 21 to switch to a certain antenna beam direction to measure and collect user device data 11, the antenna switching or scanning of the group base station 20 only needs to be performed three times. The aforementioned user device data 11 may include: the codes of a plurality of base stations 21 (base station cells) in the group base station 20 and their received signal strength values (such as RSRP_BS_A , RSRP_BS_B , RSRP_ BS_C, RSRP_ BS_D ...), type of user device service-traffic-related information 10 ... and so on.

基地台21亦可將基地台資訊與負載資訊傳送給網路控制器30,包括:(1)基地台21(基地台細胞)之識別碼,例如CID、序號(Serial number)等。(2)基地台21(基地台細胞)之發射功率,例如TX功率、參考信號功率(reference signal power)。(3)基地台21(基地台細胞)之發射功率的可調整範圍,例如ΔTX:-20dB~0dB。(4)UL/DL總PRB利用率%(UL/DL total PRB utilization %)。(5)UL/DL的平均/最大連接UE數目(Average/Max active UE number on the UL/DL)。(6)平均/最大UL/DL細胞吞吐量(Average/Max UL/DL cell throughput)相關參數。 The base station 21 can also send base station information and load information to the network controller 30, including: (1) the identification code of the base station 21 (base station cell), such as CID, serial number (Serial number) etc. (2) The transmit power of the base station 21 (base station cell), such as TX power and reference signal power. (3) The adjustable range of the transmit power of the base station 21 (base station cell), for example, ΔTX: -20dB~0dB. (4) UL/DL total PRB utilization% (UL/DL total PRB utilization %). (5) Average/Max active UE number on the UL/DL. (6) Average/Max UL/DL cell throughput (Average/Max UL/DL cell throughput) related parameters.

在第4圖之步驟S4中,第1圖之網路控制器30可產生群組基地台20中多個基地台21(如四個基地台BS_A、BS_B、BS_C、BS_D)的不同天線波束方向(如Sector_i、Sector_j、Sector_k三個方向)的所有可能解,共有三的四次方(即34=81)種群組基地台20之天線波束方向的可能解,針對每一種天線波束方向的可能解,網路控制器30由上述步驟S3取得多個基地台21之發射功率的可調整範圍ΔTX(在本實施例中ΔTX=0dB、-5dB、-10dB),以及多個基地台21之發射功率調整前每一個用戶裝置10對多個基地台21(如四個基地台BS_A、BS_B、BS_C、BS_D)在不同天線波束方向下的接收信號強度值(RSRP),可計算出在每一種天線波束方向的可能解之下,多個基地台21之發射功率被調整後,每一個用戶裝置10對多個基地台21(如四個基地台BS_A、BS_B、BS_C、BS_D)的接收信號強度值(RSRP)。 In step S4 of FIG. 4, the network controller 30 of FIG. 1 can generate different antenna beam directions of multiple base stations 21 (eg, four base stations BS_A, BS_B, BS_C, BS_D) in the group base station 20 (For example, Sector_i, Sector_j, Sector_k three directions), there are three possible solutions to the antenna beam direction of the group base station 20 of three to the fourth power (ie 3 4 =81). For each antenna beam direction Possibly, the network controller 30 obtains the adjustable range ΔTX of the transmission power of the multiple base stations 21 (ΔTX=0dB, -5dB, -10dB in this embodiment) and the multiple base stations 21 from the above step S3 Before adjusting the transmission power, each user equipment 10 can calculate the received signal strength value (RSRP) of multiple base stations 21 (such as four base stations BS_A, BS_B, BS_C, and BS_D) in different antenna beam directions. Under the possible solution of the antenna beam direction, after the transmission power of multiple base stations 21 is adjusted, the received signal strength of each user device 10 to multiple base stations 21 (such as four base stations BS_A, BS_B, BS_C, BS_D) Value (RSRP).

對群組基地台20之某一種天線波束方向的可能解,例如基地台BS_A的天線波束方向是Sector_i、基地台BS_B的天線波束方向是Sector_i、基地台BS_C的天線波束是Sector_j、基地台BS_D的天線波束方向是Sector_k,由上述步驟S3已知基地台21之發射功率調整前,有關 某個用戶裝置10對多個基地台21(如四個基地台BS_A、BS_B、BS_C、BS_D)的接收信號強度(RSRP_BS_A_Sector_i、RSRP_BS_B_Sector_i、RSRP_BS_C_Sector_j、RSRP_BS_D_Sector_k),網路控制器30可計算出多個基地台21之發射功率被調整後,此用戶裝置10對多個基地台21(如四個基地台BS_A、BS_B、BS_C、BS_D)的接收信號強度(RSRP_after_BS_A_Sector_i、RSRP_after_BS_B_Sector_i、RSRP_after_BS_C_Sector_j、RSRP_after_BS_D_Sector_k),如下列式子(1)至式子(4)所示。 Possible solution for one of the antenna beam directions of the group base station 20, for example, the antenna beam direction of the base station BS_A is Sector_i, the antenna beam direction of the base station BS_B is Sector_i, and the antenna beam of the base station BS_C is Sector_j, and the base station BS_D The antenna beam direction is Sector_k. It is known from the above step S3 that before the transmission power of the base station 21 is adjusted, the received signal of a certain user equipment 10 to multiple base stations 21 (such as four base stations BS_A, BS_B, BS_C, BS_D) strength (RSRP_ BS_A_Sector_i, RSRP_ BS_B_Sector_i, RSRP_ BS_C_Sector_j, RSRP_ BS_D_Sector_k), the controller 30 may calculate a plurality of network base stations 21 after the transmission power is adjusted, a plurality of base stations 10 pairs of user equipment 21 (e.g., four bases Taiwan BS_A, BS_B, BS_C, BS_D) received signal strength (RSRP_after_ BS_A_Sector_i, RSRP_after_BS_ B_Sector_i, RSRP_after_ BS_C_Sector_j, RSRP_after_BS_ D_Sector_k), as in the following equation (1) to equation (4) shown in FIG.

式子(1):RSRP_after_BS_A_Sector_i[dBm]→RSRP_BS_A_Sector_i[dBm]+ΔTX_BS_A[dB] Formula (1): RSRP_after_ BS_A_Sector_i [dBm]→RSRP_ BS_A_Sector_i [dBm]+ΔTX_ BS_A [dB]

式子(2):RSRP_after_BS_B_Sector_i[dBm]→RSRP_BS_B_Sector_i[dBm]+ΔTX_BS_B[dB] Formula (2): RSRP_after_ BS_B_Sector_i [dBm]→RSRP_ BS_B_Sector_i [dBm]+ΔTX_ BS_B [dB]

式子(3):RSRP_after_BS_C_Sector_j[dBm]→RSRP_BS_C_Sector_j[dBm]+ΔTX_BS_C[dB] Formula (3): RSRP_after_ BS_C_Sector_j [dBm]→RSRP_ BS_C_Sector_j [dBm]+ΔTX_ BS_C [dB]

式子(4):RSRP_after_BS_D_Sector_k[dBm]→RSRP_BS_D_Sector_k[dBm]+ΔTX_BS_D[dB] Formula (4): RSRP_after_ BS_D_Sector_k [dBm]→RSRP_ BS_D_Sector_k [dBm]+ΔTX_ BS_D [dB]

網路控制器30比較上述式子(1)(2)(3)(4),RSRP_after最大的為RSRP_serving_after[W],其餘的以W為單位相加為RSRP_deteceted_after[W],可計算出此用戶裝置10的訊雜比(SINR)為下列式子,其中ThermalNoise為熱雜訊,以W為單位。 The network controller 30 compares the above formulas (1)(2)(3)(4), the largest of RSRP_after is RSRP_serving_after[W], and the rest are added in units of W to RSRP_deteceted_after[W] to calculate this user The signal-to-noise ratio (SINR) of the device 10 is the following formula, where ThermalNoise is the thermal noise in W.

SINR_after

Figure 108111925-A0101-12-0014-15
max(min(10×log
Figure 108111925-A0101-12-0015-3
,30),-10) SINR_after
Figure 108111925-A0101-12-0014-15
max ( min ( 10× log
Figure 108111925-A0101-12-0015-3
,30),-10)

由網路控制器30依據以上方式計算出在每一種天線波束方向可能解之下,群組基地台20中的多個基地台20在調整發射功率之後的每一個用戶裝置10的訊雜比(SINR),再依據多個用戶裝置10的平均訊雜比(SINR)進行排序(如由大至小排序),以將由大而小的平均訊雜比對應的發射功率與天線場型可能解排序,俾建立最佳無線信號品質的群組基地台20之發射功率與天線場型或天線波束方向的排序列表32,如第6圖所示。透過上述計算方法,網路控制器30指示群組基地台20的天線僅需進行三次的切換掃描,即可估算出三的四次方(即34=81)種有關群組基地台20之天線波束方向的可能解的無線信號品質。 The network controller 30 calculates the signal-to-noise ratio of each user device 10 of the plurality of base stations 20 in the group of base stations 20 after adjusting the transmit power under each possible antenna beam direction according to the above method ( SINR), and then sorted according to the average signal-to-noise ratio (SINR) of multiple user devices 10 (eg, sorted from large to small) to de-sort the possible transmission power and antenna pattern corresponding to the large to small average signal-to-noise ratio In order to establish a sorted list 32 of the transmission power of the group base station 20 and the antenna pattern or antenna beam direction for the best wireless signal quality, as shown in FIG. 6. Through the above calculation method, the network controller 30 instructs the antenna of the group base station 20 to perform only three handover scans, and can estimate three of the fourth powers (that is, 3 4 =81) related to the group base station 20 Wireless signal quality with possible solution of antenna beam direction.

在第4圖之步驟S5中,第1圖之網路控制器30依據用戶裝置數據資料11中的用戶裝置服務訊務類型...等資訊,可以推估上述步驟S4產生的群組基地台20之發射功率與天線場型或天線波束方向的排序列表32中,每一種天線波束方向的可能解中的基地台21的服務人數與負載程度,以排除基地台21的服務人數過少或負載程度過低的可能解,即可從群組基地台20之發射功率與天線場型或天線波束方向的排序列表32中找出最佳解。 In step S5 of FIG. 4, the network controller 30 of FIG. 1 can estimate the group base station generated in the above step S4 according to the user device service traffic type in the user device data 11... 20. In the ranking list 32 of the transmission power and the antenna field pattern or antenna beam direction, the number of service persons and the load level of the base station 21 in each possible solution of the antenna beam direction are excluded to exclude the too few service persons or the load level of the base station 21 If the possible solution is too low, the best solution can be found from the sorted list 32 of the transmission power of the group base station 20 and the antenna pattern or antenna beam direction.

在第4圖之步驟S6中,第1圖之網路控制器30指示多個基地台21(如四個基地台BS_A、BS_B、BS_C、BS_D)聯合調整其發射功率與天線場型或波束輻射方向至最佳解。 In step S6 of FIG. 4, the network controller 30 of FIG. 1 instructs multiple base stations 21 (such as four base stations BS_A, BS_B, BS_C, BS_D) to jointly adjust their transmission power and antenna pattern or beam radiation Direction to the best solution.

第7A圖與第7B圖分別為本發明之多個用戶裝置10的平均訊雜比(SINR)於優化前及優化後之模擬結果圖,第7C圖為第7A圖與第7B圖之相關標示、訊雜比(SINR)及信號品質表。 FIGS. 7A and 7B are graphs of simulation results of the average signal-to-noise ratio (SINR) of multiple user devices 10 before and after optimization according to the present invention, and FIG. 7C is a related label of FIGS. 7A and 7B. , Signal-to-noise ratio (SINR) and signal quality table.

如第7A圖至第7C圖所示之模擬結果,例如:使基地台21(如BS_A)調整發射功率ΔTX=-10dB,調整天線波束方向為Sector_k;使基地台21(如BS_B)調整發射功率ΔTX=-10dB,調整天線波束方向為Sector_k;使基地台21(如BS_C)調整發射功率ΔTX=0dB,調整天線波束方向為Sector_i;以及使基地台21(如BS_D)調整發射功率ΔTX=-10dB,調整天線波束方向為Sector_k。與未經計算之前的初始狀態(如四個基地台的發射功率都是27dBm,且天線波束方向固定為Sector_i方向相比,經本發明之優化後,多個用戶裝置10的平均訊雜比(SINR)由第7A圖之10.6dB(優化前)大幅提升到第7B圖之24.7dB(優化後),同時每一個基地台21亦排除負載過少的情形,據此達到無線環境品質與容量最佳化。 The simulation results shown in Figures 7A to 7C, for example: make the base station 21 (such as BS_A) adjust the transmit power ΔTX=-10dB, adjust the antenna beam direction to Sector_k; make the base station 21 (such as BS_B) adjust the transmit power ΔTX=-10dB, adjust the antenna beam direction to Sector_k; make the base station 21 (such as BS_C) adjust the transmit power ΔTX=0dB, adjust the antenna beam direction to Sector_i; and make the base station 21 (such as BS_D) adjust the transmit power ΔTX=-10dB , Adjust the antenna beam direction to Sector_k. Compared with the initial state before calculation (such as the transmission power of the four base stations are 27 dBm, and the antenna beam direction is fixed in the Sector_i direction, after the optimization of the present invention, the average signal-to-noise ratio (SINR) of multiple user devices 10 ) From 10.6dB in Figure 7A (before optimization) to 24.7dB in Figure 7B (after optimization), and each base station 21 also eliminates the situation of too little load, thereby optimizing the quality and capacity of the wireless environment .

綜上,本發明之群組基地台發射功率與天線場型聯合優化系統及方法可具有下列特色、優點或技術功效: In summary, the system and method for joint optimization of group base station transmit power and antenna pattern of the present invention may have the following features, advantages, or technical effects:

一、本發明可應用在多個相鄰的基地台的網路環境中,透過網路控制器指示群組基地台進行少量次數的天線切換與掃描,依據用戶裝置週期性回報的用戶裝置數據資料的計算,並由網路控制器計算出基地台的服務人數與負載程度,能聯合調整群組基地台中多個基地台的發射功率與天線場型或波束輻射方向,使群組基地台的無線信號品質與容量達到最佳化。 1. The present invention can be applied to the network environment of multiple adjacent base stations. The network controller instructs the group of base stations to perform antenna switching and scanning a small number of times, based on the user device data reported periodically by the user device. Calculation, and the network controller calculates the number of base stations serving and the load level, can jointly adjust the transmission power of multiple base stations in the group base station and the antenna pattern or beam radiation direction, so that the group base station wireless The signal quality and capacity are optimized.

二、本發明透過中央式的網路控制器聯合調整群組基地台中 多個基地台的發射功率與天線場型或波束輻射方向,達到群組基地台的無線信號品質與容量最佳化,可降低相鄰同頻之基地台間無線信號的干擾問題,增加基地台的頻譜效益,提升整體用戶裝置的通訊接收品質與傳輸速率。 2. The present invention jointly adjusts the group base stations through a central network controller The transmission power of multiple base stations and the antenna pattern or beam radiation direction can optimize the wireless signal quality and capacity of the group of base stations, which can reduce the interference of wireless signals between adjacent base stations of the same frequency and increase the number of base stations. The spectrum efficiency improves the communication reception quality and transmission rate of the overall user device.

三、本發明可降低多個基地台的天線需切換或掃描的次數到僅需要m次(如m個可切換天線場型或天線波束方向),即能找出群組基地台之天線場型或天線波束方向最佳解的作法。亦即,本發明可跳脫現有技術之天線掃描方法需要進行m的n次方(即mn)種基地台的天線切換或掃描,才能找出天線場型或天線波束方向最佳解的作法,故本發明能大幅降低多個基地台的天線需切換或掃描的次數及時間成本。 3. The invention can reduce the number of times the antennas of multiple base stations need to be switched or scanned to only m times (such as m switchable antenna field patterns or antenna beam directions), that is, the antenna field pattern of the group base station can be found Or the best solution for the antenna beam direction. That is, the method of the present invention that can escape from the prior art antenna scanning requires the m-th power (ie m n ) of base station antenna switching or scanning to find the best solution for the antenna field pattern or antenna beam direction Therefore, the present invention can greatly reduce the number and time cost of switching or scanning the antennas of multiple base stations.

上述實施形態僅例示性說明本發明之原理、特點及其功效,並非用以限制本發明之可實施範疇,任何熟習此項技藝之人士均可在不違背本發明之精神及範疇下,對上述實施形態進行修飾與改變。任何運用本發明所揭示內容而完成之等效改變及修飾,均仍應為申請專利範圍所涵蓋。因此,本發明之權利保護範圍,應如申請專利範圍所列。 The above-mentioned embodiments only exemplarily illustrate the principles, characteristics and effects of the present invention, and are not intended to limit the scope of the invention. Anyone who is familiar with this skill can do the above without departing from the spirit and scope of the present invention. The embodiment is modified and changed. Any equivalent changes and modifications made using the disclosure of the present invention should still be covered by the scope of the patent application. Therefore, the scope of protection of the rights of the present invention should be as listed in the scope of patent application.

1‧‧‧群組基地台發射功率與天線場型聯合優化系統 1‧‧‧ Group base station transmission power and antenna pattern joint optimization system

10‧‧‧用戶裝置(UE) 10‧‧‧User device (UE)

11‧‧‧用戶裝置數據資料 11‧‧‧User device data

20‧‧‧群組基地台 20‧‧‧ group base station

21‧‧‧基地台(BS) 21‧‧‧ Base Station (BS)

30‧‧‧網路控制器 30‧‧‧Network Controller

31‧‧‧群組基地台名單 31‧‧‧ Group base station list

32‧‧‧排序列表 32‧‧‧Sort list

Claims (17)

一種群組基地台發射功率與天線場型聯合優化系統,包括:多個用戶裝置,係回報用戶裝置數據資料;多個基地台,係接收該多個用戶裝置所回報的該用戶裝置數據資料,並可回報該用戶裝置數據資料、相鄰基地台之間的交遞次數與基地台測量環境掃描的資訊;以及至少一網路控制器,係依據來自該多個基地台的該用戶裝置數據資料、相鄰基地台之間的交遞次數與基地台測量環境掃描的資訊,將該多個基地台分成至少一群組基地台,以建立用於該群組基地台之發射功率與天線場型優化的一群組基地台名單;其中,該網路控制器依據該群組基地台名單逐次指示該群組基地台中的該多個基地台將其天線波束方向一併切換到多個不同的天線波束方向的每一者,以供該網路控制器收集在該不同的天線波束方向下一段時間或足夠的該用戶裝置數據資料;及其中,該網路控制器依據所收集之該用戶裝置數據資料與該多個基地台之發射功率的可調整範圍建立該群組基地台之發射功率與天線場型或天線波束方向的排序列表,以從該群組基地台之發射功率與天線場型或天線波束方向的排序列表中找出最佳解,俾供該網路控制器指示該多個基地台聯合調整其發射功率與天線場型或波束輻射方向至該最佳解。 A group base station transmission power and antenna field type joint optimization system includes: a plurality of user devices reporting data data of the user device; a plurality of base stations receiving data data of the user device reported by the plurality of user devices, And can report the user device data, the number of handovers between neighboring base stations and the information scanned by the base station's measurement environment; and at least one network controller based on the user device data from the multiple base stations 3. The number of handovers between neighboring base stations and the information scanned by the base station's measurement environment to divide the multiple base stations into at least one group of base stations to establish the transmit power and antenna pattern for the group of base stations Optimized group base station list; wherein, the network controller sequentially instructs the plurality of base stations in the group base station to switch their antenna beam directions to multiple different antennas according to the group base station list Each of the beam directions for the network controller to collect the user device data in the different antenna beam directions for a period of time or enough; and wherein, the network controller is based on the collected user device data The data and the adjustable range of the transmission power of the plurality of base stations create a sorted list of the transmission power of the group of base stations and the antenna pattern or antenna beam direction, from the group of base stations' transmission power and antenna pattern or Find the best solution in the sorted list of antenna beam directions for the network controller to instruct the multiple base stations to jointly adjust their transmit power and antenna pattern or beam radiation direction to the best solution. 如申請專利範圍第1項所述之系統,其中,該多個用戶裝置係週期性回報該用戶裝置數據資料給該多個基地台或該網路控制器,且該用戶裝置數據資料包括該群組基地台中的該多個基地台的代號、該多個基 地台的天線輻射至該多個用戶裝置上的接收信號強度值、或用戶裝置服務訊務類型。 The system as described in item 1 of the patent application scope, wherein the plurality of user devices periodically report the user device data to the plurality of base stations or the network controller, and the user device data include the group The code name of the multiple base stations in the base station group, the multiple base stations The antenna of the platform radiates to the received signal strength value on the plurality of user devices, or the type of service traffic of the user devices. 如申請專利範圍第1項所述之系統,其中,該多個基地台各自具有一類智慧型天線系統,且該類智慧型天線系統具有多個固定場型或多個固定天線波束方向。 The system as described in item 1 of the patent application scope, wherein each of the plurality of base stations has a type of smart antenna system, and the type of smart antenna system has a plurality of fixed field patterns or a plurality of fixed antenna beam directions. 如申請專利範圍第1項所述之系統,其中,該網路控制器係逐次指示該群組基地台中的該多個基地台將其天線波束方向先一併切換到第一天線波束方向、再一併切換到第二天線波束方向、再一併切換到第三天線波束方向,以供該網路控制器收集在該第一天線波束方向、第二天線波束方向與第三天線波束方向下一段時間或足夠的該用戶裝置數據資料。 The system as described in item 1 of the patent application scope, wherein the network controller sequentially instructs the plurality of base stations in the group of base stations to switch their antenna beam directions to the first antenna beam direction, Switch to the second antenna beam direction and switch to the third antenna beam direction together for the network controller to collect the first antenna beam direction, the second antenna beam direction and the third antenna A period of time under the beam direction or enough data data of the user device. 如申請專利範圍第1項所述之系統,其中,該網路控制器計算出該群組基地台中的該多個基地台的服務人數與負載程度,以依據該多個基地台的服務人數與負載程度優化該群組基地台的無線信號品質與容量。 The system as described in item 1 of the patent application scope, wherein the network controller calculates the number of service persons and the load level of the plurality of base stations in the group of base stations, based on the number of service persons and the number of service of the plurality of base stations The load level optimizes the wireless signal quality and capacity of the group of base stations. 如申請專利範圍第1項所述之系統,其中,該網路控制器更計算出該群組基地台之發射功率與天線場型的各種可能解,以將該各種可能解中該多個用戶裝置的平均訊雜比進行排序,俾供該網路控制器依據排序後的該平均訊雜比建立該群組基地台之發射功率與天線場型或天線波束方向的排序列表。 The system as described in item 1 of the patent application scope, wherein the network controller further calculates various possible solutions of the transmission power of the group of base stations and the antenna pattern, so as to include the various possible solutions in the multiple users The average signal-to-noise ratio of the device is sorted so that the network controller can establish a sorted list of the transmission power of the group of base stations and the antenna pattern or antenna beam direction according to the sorted average signal-to-noise ratio. 如申請專利範圍第1項所述之系統,其中,該網路控制器更依據該用戶裝置數據資料中的用戶裝置服務訊務類型排除該多個基地台的服務人數過少或負載程度過低的可能解,以從該群組基地台之發射功率與天線場型或天線波束方向的排序列表中找出最佳解。 The system as described in item 1 of the patent application scope, wherein the network controller further excludes those with too few service bases or too low load of the multiple base stations according to the user device service traffic type in the user device data Possible solutions to find the best solution from the sorted list of transmit power of the group of base stations and antenna pattern or antenna beam direction. 如申請專利範圍第1項所述之系統,其中,該網路控制器更以控制指令調整該多個基地台的發射功率與天線場型或波束輻射方向,進而以集中式聯合調整該群組基地台中的該多個基地台的發射功率與天線場型或波束輻射方向。 The system as described in item 1 of the patent application scope, wherein the network controller further adjusts the transmission power of the plurality of base stations and the antenna pattern or beam radiation direction with control commands, and then jointly adjusts the group in a centralized manner The transmission power of the multiple base stations in the base station and the antenna pattern or beam radiation direction. 一種群組基地台發射功率與天線場型聯合優化方法,包括:由多個用戶裝置回報用戶裝置數據資料,並由多個基地台接收該多個用戶裝置所回報的該用戶裝置數據資料,以供該多個基地台回報該用戶裝置數據資料、相鄰基地台之間的交遞次數與基地台測量環境掃描的資訊;由至少一網路控制器依據來自該多個基地台的該用戶裝置數據資料、相鄰基地台之間的交遞次數與基地台測量環境掃描的資訊,將該多個基地台分成至少一群組基地台,以建立用於該群組基地台之發射功率與天線場型優化的一群組基地台名單;由該網路控制器依據該群組基地台名單逐次指示該群組基地台中的該多個基地台將其天線波束方向一併切換到多個不同的天線波束方向的每一者,以供該網路控制器收集在該不同的天線波束方向下一段時間或足夠的該用戶裝置數據資料;由該網路控制器依據所收集之該用戶裝置數據資料與該多個基地台之發射功率的可調整範圍建立該群組基地台之發射功率與天線場型或天線波束方向的排序列表;由該網路控制器從該群組基地台之發射功率與天線場型或天線波束方向的排序列表中找出最佳解;以及由該網路控制器指示該多個基地台聯合調整其發射功率與天線場型或 波束輻射方向至該最佳解。 A joint optimization method for group base station transmission power and antenna pattern includes: multiple user devices reporting user device data, and multiple base stations receiving the user device data reported by the multiple user devices, to For the plurality of base stations to report the data data of the user equipment, the number of handovers between neighboring base stations and the information scanned by the base station measurement environment; at least one network controller based on the user equipment from the plurality of base stations The data, the number of handovers between neighboring base stations and the information of the base station's measurement environment scan, divide the multiple base stations into at least one group of base stations to establish the transmission power and antenna for the group of base stations Field-optimized list of a group of base stations; the network controller instructs the base stations in the group of base stations to switch their antenna beam directions to multiple different Each of the antenna beam directions for the network controller to collect the user device data in the different antenna beam directions for a period of time or sufficient; the network controller according to the collected user device data Establish an ordered list of the transmission power of the group of base stations and the antenna pattern or antenna beam direction with the adjustable range of the transmission power of the plurality of base stations; the network controller Find the best solution in the sorted list of antenna field patterns or antenna beam directions; and the network controller instructs the multiple base stations to jointly adjust their transmit power and antenna field pattern or Beam radiation direction to this optimal solution. 如申請專利範圍第9項所述之方法,其中,該多個用戶裝置係週期性回報該用戶裝置數據資料給該多個基地台或該網路控制器,且該用戶裝置數據資料包括該群組基地台中的該多個基地台的代號、該多個基地台的天線輻射至該多個用戶裝置上的接收信號強度值、或用戶裝置服務訊務類型。 The method according to item 9 of the patent application scope, wherein the plurality of user devices periodically report the user device data to the plurality of base stations or the network controller, and the user device data include the group The codes of the plurality of base stations in the group of base stations, the received signal strength values of the antennas of the plurality of base stations radiated to the plurality of user devices, or the type of service traffic of the user devices. 如申請專利範圍第9項所述之方法,其中,該多個基地台各自具有一類智慧型天線系統,且該類智慧型天線系統具有多個固定場型或多個固定天線波束方向。 The method as described in item 9 of the patent application range, wherein each of the plurality of base stations has a type of smart antenna system, and the type of smart antenna system has a plurality of fixed field patterns or a plurality of fixed antenna beam directions. 如申請專利範圍第9項所述之方法,其中,該網路控制器係逐次指示該群組基地台中的該多個基地台將其天線波束方向先一併切換到第一天線波束方向、再一併切換到第二天線波束方向、再一併切換到第三天線波束方向,以供該網路控制器收集在該第一天線波束方向、第二天線波束方向與第三天線波束方向下一段時間或足夠的該用戶裝置數據資料。 The method as described in item 9 of the patent application scope, wherein the network controller sequentially instructs the plurality of base stations in the group of base stations to switch their antenna beam directions to the first antenna beam direction, Switch to the second antenna beam direction and switch to the third antenna beam direction together for the network controller to collect the first antenna beam direction, the second antenna beam direction and the third antenna A period of time under the beam direction or enough data data of the user device. 如申請專利範圍第9項所述之方法,其中,該網路控制器計算出該群組基地台中的該多個基地台的服務人數與負載程度,以依據該多個基地台的服務人數與負載程度優化該群組基地台的無線信號品質與容量。 The method as described in item 9 of the patent application scope, wherein the network controller calculates the number of service persons and the load level of the plurality of base stations in the group of base stations, based on the number of service persons and the number of service of the plurality of base stations The load level optimizes the wireless signal quality and capacity of the group of base stations. 如申請專利範圍第9項所述之方法,其中,該網路控制器計算出該群組基地台之發射功率與天線場型的各種可能解,以將該各種可能解中該多個用戶裝置的平均訊雜比進行排序,俾供該網路控制器依據排序後的該平均訊雜比建立該群組基地台之發射功率與天線場型或天線波束方向的排序列表。 The method as described in item 9 of the patent application scope, wherein the network controller calculates various possible solutions of the transmission power of the group of base stations and the antenna pattern to include the various possible solutions in the multiple user devices The average signal-to-noise ratio is sorted so that the network controller can create a sorted list of the transmission power of the group of base stations and the antenna pattern or antenna beam direction according to the sorted average signal-to-noise ratio. 如申請專利範圍第9項所述之方法,其中,該網路控制器依據該用戶裝置數據資料中的用戶裝置服務訊務類型排除該多個基地台的服務人數過少或負載程度過低的可能解,以從該群組基地台之發射功率與天線場型或天線波束方向的排序列表中找出最佳解。 The method as described in item 9 of the patent application scope, wherein the network controller excludes the possibility that the number of service bases of the plurality of base stations is too small or the load is too low according to the user device service traffic type in the user device data Solution to find the best solution from the ordered list of the transmit power of the group of base stations and the antenna pattern or antenna beam direction. 如申請專利範圍第9項所述之方法,其中,該網路控制器以控制指令調整該多個基地台的發射功率與天線場型或波束輻射方向,進而以集中式聯合調整該群組基地台中的該多個基地台的發射功率與天線場型或波束輻射方向。 The method as described in item 9 of the patent application scope, wherein the network controller adjusts the transmission power of the plurality of base stations and the antenna pattern or beam radiation direction with control commands, and then jointly adjusts the group base in a centralized manner The transmission power of the multiple base stations in the station and the antenna pattern or beam radiation direction. 一種用於群組基地台發射功率與天線場型聯合優化之網路控制器,包括:至少一網路控制器,係依據來自多個基地台的用戶裝置數據資料、相鄰基地台之間的交遞次數與基地台測量環境掃描的資訊,將該多個基地台分成至少一群組基地台,以建立用於該群組基地台之發射功率與天線場型優化的一群組基地台名單;其中,該網路控制器依據該群組基地台名單逐次指示該群組基地台中的該多個基地台將其天線波束方向一併切換到多個不同的天線波束方向的每一者,以供該網路控制器收集在該不同的天線波束方向下一段時間或足夠的該用戶裝置數據資料;以及其中,該網路控制器依據所收集之該用戶裝置數據資料與該多個基地台之發射功率的可調整範圍建立該群組基地台之發射功率與天線場型或天線波束方向的排序列表,以從該群組基地台之發射功率與天線場型或天線波束方向的排序列表中找出最佳解,俾供該網路控制器指示該多個基 地台聯合調整其發射功率與天線場型或波束輻射方向至該最佳解。 A network controller for joint optimization of group base station transmission power and antenna pattern, including: at least one network controller, based on user device data from multiple base stations, between adjacent base stations The number of handovers and the information of the base station measurement environment scan to divide the multiple base stations into at least one group of base stations to create a group of base station lists for the optimization of the transmission power and antenna pattern of the group of base stations Where the network controller instructs the plurality of base stations in the group of base stations to switch their antenna beam directions to each of a plurality of different antenna beam directions one by one according to the group base station list, to For the network controller to collect the user equipment data in the different antenna beam directions for a period of time or enough; and wherein the network controller is based on the collected user equipment data and the plurality of base stations The adjustable range of the transmit power establishes a sorted list of the transmit power of the group of base stations and the antenna pattern or antenna beam direction to find from the sorted list of the transmit power of the group of base stations and the antenna pattern or antenna beam direction The best solution for the network controller to instruct the multiple bases The platform jointly adjusts its transmission power and antenna pattern or beam radiation direction to the optimal solution.
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