This application claims the priority benefit of Taiwan application serial no. 100105270, filed Feb. 17, 2011. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
1. Field of Invention
The present invention relates to a method for selecting a transmission architecture and a transmission system. More particularly, the present invention relates to a method for dynamically selecting a transmission architecture and a transmission system according to a covering rages of base stations, coverage of base stations, subscriber distributions of base stations and numbers of subscribers of base stations.
2. Description of Related Art
IEEE 802.16 provides a concept of multicast-and-broadcast service (MBS) which is as same as the multimedia broadcast and multicast service (MBMS) provided by 3GPPLTE. Both of MBS and MBMS are the important service technologies in the fourth generation mobile communication system.
Generally, there are three major transmission types for transmitting multimedia service to multiple users, such as unicast, broadcast and multicast. The characteristic of the unicast is that a plurality of point-to-point transmission channels which are independent from each other are established between the network and the users for transmitting the service. However, when the data is transmitted to a lot of users, the a lot of bandwidth is consumed due to individual transmission. The characteristic of the broadcast is that the common point-to-multipoint transmission channel is established between the network and the users for transmitting the service and all of the users can receive the data. The characteristic of the multicast is that the common point-to-multipoint transmission channel is established between the network and the groups for transmitting the service. The multicast is different from the broadcast in that, in the multicast, only the user group subscribing the service receives the service.
The conventional multicast-and-broadcast service uses fixed transmission architecture. However, in the practical environment, the number of the subscribers in the covering range of the base station varies. The network resource cannot be effectively allocated by using the fixed transmission architecture.
The invention provides a method for selecting a transmission architecture capable of improving the whole transmission performance of a transmission system transmitting a multicast-and-broadcast service.
The invention provides a transmission system capable of dynamically selecting transmission architecture according to covering ranges of base stations, coverage of base stations, subscriber distribution of base stations and the number of subscribers of the base stations so as to improve the whole transmission performance of a transmission system transmitting a multicast-and-broadcast service.
The invention provides a method for a transmission system selecting one of a plurality of transmission architectures to transmit a multicast-and-broadcast service. The transmission system includes at least a base station participating a transmission of the multicast-and-broadcast service. The method comprises steps of calculating a number of subscribers subscribing the multicast-and-broadcast service within a covering range of each of the base stations. According to a number of the base stations participating the transmission of the multicast-and-broadcast service, a coverage of each of the base stations, the covering range of each of the base stations, the number of the subscribers within the covering range of each of the base stations, a subscriber distribution of each of the base stations, an average cell efficiency corresponding to each of the transmission architectures which are respectively used by the transmission system to transmit the multicast-and-broadcast service is calculated. The average cell efficiency corresponding to each of the transmission architectures which are respectively used by the transmission system to transmit the multicast-and-broadcast service is analyzed. The transmission architecture corresponding to the maximum average cell efficiency is selected for the transmission system transmitting the multicast-and-broadcast service.
In one embodiment of the present invention, the average cell efficiency corresponding to each of the transmission architectures comprises an average cell information or an average cell spectral efficiency.
In one embodiment of the present invention, when the average cell efficiency corresponding to each of the transmission architectures is the average cell spectral efficiency, the step of calculating an average cell efficiency corresponding to each of the transmission architectures which are respectively used by the transmission system to transmit the multicast-and-broadcast service comprises steps of calculating a plurality of signal-to-interference-and-noise ratios (SINRs) corresponding to each of the base stations while the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures. According to the SINRs, a data per symbol corresponding to each of the base stations while the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures is determined. According to the data per symbol corresponding to each of the base stations as the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures, a single cell spectral efficiency of each of the base stations while the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures is calculated. According to the number of the base stations and the single cell spectral efficiency of each of the base stations while the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures, the average cell spectral efficiency corresponding to each of the transmission architectures in which the transmission system transmits the multicast-and-broadcast service respectively is calculated.
In one embodiment of the present invention, each of the transmission architectures is selected from a group comprised of a single-cell point-to-multipoint (SC-PTM) communication mode, a relay-enabled single-cell point-to-multipoint (relay-enabled SC-PTM) communication mode, a single frequency network (SFN) communication mode, a relay-enabled single frequency network (relay-enabled SFN) communication mode or the combination thereof.
In one embodiment of the present invention, after the step of calculating the number of the subscribers and before the step of calculating the average cell efficiency corresponding to each of the transmission architectures which are respectively used by the transmission system to transmit the multicast-and-broadcast service, the method further comprises a step of performing a preliminary selection, according to the number of the subscribers of each of the base stations, to select a portion of the transmission architectures, wherein, in the step of calculating the average cell efficiency, the average cell efficiency corresponding to each of the selected transmission architectures which are respectively used by the transmission system to transmit the multicast-and-broadcast service are calculated.
In one embodiment of the present invention, the preliminary selection comprises steps of classifying a communication mode of each of the base stations into communication classes including a SC-PTM communication class and a SFN communication class according to the number of the subscribers of each of the base stations. According to a preliminary transmission topology established by the communication class of each of the base stations in the transmission system, the portion of the transmission architectures which are similar to the preliminary transmission topology are selected.
The invention further provides a transmission system for transmitting a multicast-and-broadcast service. The transmission system comprises at least a base station participating a transmission of the multicast-and-broadcast service, a recording module, a calculating module, an analyzing module and a selecting module. The recording module records a number of subscribers subscribing the multicast-and-broadcast service within a covering range of each of the base stations. The calculating module calculates an average cell efficiency corresponding to each of the transmission architectures which are respectively used by the transmission system to transmit the multicast-and-broadcast service according to a number of the base stations participating the transmission of the multicast-and-broadcast service, a coverage of each of the base stations, the covering range of each of the base stations, the number of the subscribers within the covering range of each of the base stations, a subscriber distribution of each of the base stations. The analyzing module analyzes the average cell efficiency corresponding to each of the transmission architectures which are respectively used by the transmission system to transmit the multicast-and-broadcast service. The selecting module selects the transmission architecture corresponding to the maximum average cell efficiency for the transmission system transmitting the multicast-and-broadcast service.
In one embodiment of the present invention, the average cell efficiency corresponding to each of the transmission architectures comprises an average cell information or an average cell spectral efficiency.
In one embodiment of the present invention, when the average cell efficiency corresponding to each of the transmission architectures is the average cell spectral efficiency, the calculating module comprises an SINR calculating module, a determining module, a spectral efficiency calculating module and an average-value calculating module. The SINR calculating module calculates a plurality of signal-to-interference-and-noise ratios (SINRs) corresponding to each of the base stations while the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures. The determining module determines a data per symbol corresponding to each of the base stations according to the SINRs while the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures. The spectral efficiency calculating module calculates a single cell spectral efficiency of each of the base stations while the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures according to the data per symbol corresponding to each of the base stations as the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures. The average-value calculating module calculates the average cell spectral efficiency corresponding to each of the transmission architectures in which the transmission system respectively transmits the multicast-and-broadcast service according to the number of the base stations and the single cell spectral efficiency of each of the base stations while the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures.
In one embodiment of the present invention, each of the transmission architectures is selected from a group comprised of a single-cell point-to-multipoint (SC-PTM) communication mode, a relay-enabled single-cell point-to-multipoint (relay-enabled SC-PTM) communication mode, a single frequency network (SFN) communication mode, a relay-enabled single frequency network (relay-enabled SFN) communication mode or the combination thereof.
In one embodiment of the present invention, the transmission system further comprises a preliminary selection module selecting a portion of the transmission architectures according to the number of the subscribers of each of the base stations.
In one embodiment of the present invention, the preliminary selection module comprises a classifying module, a topology establishing module and a topology selection module. The classifying module classifies a communication mode of each of the base stations into communication classes including a SC-PTM communication class and a SFN communication class according to the number of the subscribers of each of the base stations. The topology establishing module establishes a preliminary transmission topology according to the communication class of each of the base stations in the transmission system. The topology selection module selects the portion of the transmission architectures which are similar to the preliminary transmission topology.
The invention provides a selection mechanism for selecting the transmission architecture for transmitting the multicast-and-broadcast service. In the selection mechanism of the present invention, the communication mode of each of the base stations is individually determined to improve the whole transmission performance of the transmission system. Moreover, by further considering the variables including the coverage of each of the base stations, the covering range of each of the base stations, the subscriber distribution of each of the base stations (probability of the distance between the subscriber and the base station) and the number of the subscribers of each of the base stations, several equations are provided to calculate the transmission efficiency respectively corresponding to each of the transmission architectures. Thus, the transmission architecture for transmitting the multicast-and-broadcast service can be dynamically changed by selecting the one with the maximum transmission efficiency.
It is to be understood that both the foregoing general description and the following detailed description are exemplary, and are intended to provide further explanation of the invention as claimed.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
Each of the transmission architectures is selected from a group comprised of a single-cell point-to-multipoint (SC-PTM) communication mode, a relay-enabled single-cell point-to-multipoint (relay-enabled SC-PTM) communication mode, a single frequency network (SFN) communication mode, a relay-enabled single frequency network (relay-enabled SFN) communication mode or the combination thereof. That is, for the whole covering range of the transmission system, each of the transmission architectures can provides a transmission topology of the transmission system. Further, each of the transmission topologies reveals the distribution of the communication modes of the base stations in the transmission system.
In addition, it should be noticed that in the relay-enabled SC-PTM communication mode and the relay-enabled SFN communication mode, one base station corresponds to several relay stations and each of the relay stations can be, for example, the relay station with the decode-and-forward type which decodes the received signals and forwards the decoded signals to the destination terminals.
Moreover, as shown in
Then, in the step S105, according to the number of the base stations participating the transmission of the multicast-and-broadcast service, a coverage of each of the base stations, the covering range of each of the base stations, the number of the subscribers within the covering range of each of the base stations, a subscriber distribution of each of the base stations, an average cell efficiency corresponding to each of the transmission architectures which are respectively used by the transmission system to transmit the multicast-and-broadcast service is calculated. The coverage is that, in the covering range of a single base station, the average block error rate of the packets or the signals of the broadcast service received by the subscribers located in the service quality guarantee range corresponding to the coverage must be smaller than the block error rate upper limit. For instance, in IEEE 802.16m standard, the performance of the multicast-and-broadcast service is evaluated by observing the maximum transmission rate while the block error rate of the packets received by the subscribers is smaller than 1% under the coverage of 95%. That is, the service quality is ensured within the coverage of 95%.
In the step S111, the average cell efficiency corresponding to each of the transmission architectures which are respectively used by the transmission system to transmit the multicast-and-broadcast service is analyzed. In the step S115, the transmission architecture corresponding to the maximum average cell efficiency is selected for the transmission system transmitting the multicast-and-broadcast service.
In the aforementioned embodiment, the average cell efficiency corresponding to each of the transmission architectures can be for example but not limited to, an average cell information (or the mutual information per cell) or an average cell spectral efficiency (or the spectral efficiency per cell). In the following embodiments, basing on the average cell information and the average cell spectral efficiency, the processes for evaluating the performance of the transmission system using each of the transmission architectures are described. Moreover, table 1 lists the definitions of the parameters used in the equations in the following embodiments.
Under the circumstance that the average cell information of the base stations in the transmission system is calculated to evaluate the performance of the transmission architectures, when the communication mode of a single base station in one transmission architecture is SFN communication mode, the distance between the border of the covering range of the base station and the base station is used as the basis of the calculation and the maximum transmission information (ISFN) of the single base station in the SFN communication mode can be calculated according to equation (a):
Moreover, when the communication mode of a single base station in one transmission architecture is relay-enabled SFN communication mode, the distance between the border of the covering range of the base station and the base station and the distance between the base station and the corresponding relay station are used as the bases of the calculation and the maximum transmission information (ISFN,RELAY) of the single base station in the relay-enabled SFN communication mode can be calculated according to equation (b):
Further, when the communication mode of a single base station in one transmission architecture is SC-PTM communication mode, the maximum transmission information (ISC-PTM) of the single base station in the SC-MTP communication mode can be calculated according to equation (c) by considering the parameters including the subscriber distribution in the covering rage of the single base station, the number of the subscribers and the various coverages:
In addition, when the communication mode of a single base station in one transmission architecture is relay-enabled SC-PTM communication mode, the maximum transmission information (ISC-PTM,RELAY) of the single base station in the SC-MTP communication mode can be calculated according to equation (d) by considering the parameters including the subscriber distribution in the covering rage of the single base station, the number of the subscribers and the various coverages:
It should be noticed that the probability P(N,R,C,X) can be obtained by applying equation (e):
Also, the probability P(N,C) can be obtained by applying equation (f):
P(N,C)=(1−C)N (f)
According to the transmission topology provided by each of the transmission architectures, the individual maximum transmission information of each of the base stations in different transmission architectures can be respectively calculated. Then, according to the number of the base stations participating the transmission of the multicast-and-broadcast service in the transmission system, the average cell information respectively corresponding to each of the transmission architectures used by the transmission system to transmit the multicast-and-broadcast service can be respectively calculated.
Taking the transmission topology shown in
That is, the seven base stations operated in the SFN communication mode in the central region can be regarded as a single base station operated in the SFN communication mode. Further, the maximum transmission information ISFN of the aforementioned single base station adds the sum of the maximum transmission information of the twelve base stations operated in the SC-PTM communication mode. Then, the summation is divided by the number of the base stations (which is 13) to obtain the average cell information of the transmission system 200c operated with the transmission architecture shown in
When the average cell spectral efficiency of the base stations in the transmission system is calculated to evaluate the performance of the transmission architectures, the aforementioned step S105 for calculating the average cell efficiency corresponding to each of the transmission architectures which are respectively used by the transmission system to transmit the multicast-and-broadcast service is depicted in the following embodiments accompanied with the corresponding drawings.
In one embodiment, in a transmission topology provided by a transmission architecture, when the communication mode of a base station is the SC-PTM communication mode or the relay-enabled SC-PTM communication mode, the SINR of the multicast-and-broadcast service received by the farthest subscriber within the covering range of the base station is regarded as the SINR of the base station. Moreover, when the communication mode of a base station is the SFN communication mode or the relay-enabled SFN communication mode, the SINR of the multicast-and-broadcast service received by the subscriber at the border of the covering range of the base station is regarded as the SINR of the base station.
More specifically, when the communication mode of the base station is the SC-PTM communication mode, the SINR SINRSC-PTM corresponding to the base station is calculated according to equation (h):
When the communication mode of the base station is the relay-enabled SC-PTM communication mode, the SINR SINRSC-PTM,RELAY corresponding to the base station is calculated according to equation (i):
When the communication mode of the base station is the SFN communication mode, the SINR SINRSFN corresponding to the base station is calculated according to equation (j):
When the communication mode of the base station is the relay-enabled SFN communication mode, the SINR SINRSFN,RELAY corresponding to the base station is calculated according to equation (k):
Thereafter, in the step S305, according to the SINRs corresponding to each of the base stations, a data per symbol corresponding to each of the base stations while the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures is calculated.
In one embodiment, the data per symbol corresponding to each of the base stations can be regarded as the function of SINR respectively corresponding to each of the base stations and the function of SINR is shown as equation (l):
DATA=MCSlevel(SINR) (l)
By using table 2 to map SINR to modulation level and coding scheme, each of the SINRs calculated from the step S301 can be respectively mapped to the date per symbol corresponding to each of the base station.
In the step S311, according to the data per symbol corresponding to each of the base stations as the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures, the single cell spectral efficiency of each of the base stations while the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures is calculated.
In one embodiment, in each of the transmission architectures, the single cell spectral efficiency DL of each of the base stations can be calculated according to equation (m):
In the step S415, according to the number of the base stations and the single cell spectral efficiency of each of the base stations while the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures, the average cell spectral efficiency corresponding to each of the transmission architectures in which the transmission system transmits the multicast-and-broadcast service respectively is calculated.
Taking the transmission topology shown in
That is, the seven base stations operated in the SFN communication mode in the central region can be regarded as a single base station operated in the SFN communication mode. Further, the cell spectral efficiency DLSFN of the aforementioned single base station adds the sum of the cell spectral efficiencies of the twelve base stations operated in the SC-PTM communication mode. Then, the summation is divided by the number of the base stations (which is 13) to obtain the average cell spectral efficiency of the transmission system 200c operated with the transmission architecture shown in
In another embodiment, by considering the covering rage of each of the base stations, the subscriber distribution within the covering range of each of the base stations, the number of the subscribers of each of the base stations and various coverages, in the aforementioned step S105 for calculating the average cell efficiency (average cell spectral efficiency) corresponding to each of the transmission architectures used by the transmission system to transmit the multicast-and-broadcast service, when the communication mode of the base station is the SC-PTM communication mode or the relay-enabled SC-PTM communication mode, the data per symbol of the farthest subscriber with various farthest distance away from the base station can be calculated by using equation (I) and then the single cell spectral efficiency DL within the covering range of the base station can be calculated by using equation (o):
When the communication mode of the base station is the SFN communication mode or the relay-enabled SFN communication mode, the SINR of the multicast-and-broadcast service received by the subscriber located at the border of the covering range of the base station is calculated. Further, according to the obtained SINR and the aforementioned equation (m), the single cell spectral efficiency DL of the base station corresponding to the transmission architecture while the transmission system transmits the multicast-and-broadcast service with the transmission architecture is calculated.
Similar to the aforementioned step S415, according to the number of the base stations participating the transmission of the multicast-and-broadcast service in the transmission system and the single cell spectral efficiency of each of the base stations while the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures, the average cell spectral efficiency corresponding to each of the transmission architectures in which the transmission system transmits the multicast-and-broadcast service respectively is calculated.
In the other embodiment, after the step (S101) of calculating the number of the subscribers of each of the base stations and before the step (S105) of calculating the average cell efficiency corresponding to each of the transmission architectures, the method for the transmission system to select a transmission architecture further comprises a step of performing a preliminary selection to select a portion of the transmission architectures according to the number of the subscribers of each of the base stations. In the step of calculating the average cell efficiency, the average cell efficiency corresponding to each of the selected transmission architectures which are respectively used by the transmission system to transmit the multicast-and-broadcast service are calculated.
In the step S405, a preliminary transmission topology established according to the communication class of each of the base stations in the transmission system. In the step S411, according to the preliminary transmission topology, the portion of the transmission architectures similar to the preliminary transmission topology are selected. More specifically, when the number of the subscribers of the base station is larger than seven, the communication mode of the base station is classified into the SFN communication class. However, when the number of the subscribers of the base station is smaller than seven, the communication mode of the base station is classified into the SC-PTM communication class.
In addition, when the number of the subscribers within the covering range is relatively large, the base stations operated in the SFN communication mode and relay-enabled SFN communication mode reveal relatively better performances. On the other hand, when the number of the subscribers within the covering range is relatively small, the base stations operated in the SC-PTM communication mode and relay-enabled SC-PTM communication mode reveal relatively better performances. For instance, as shown in
As shown in
According to a number of the base stations participating the transmission of the multicast-and-broadcast service in the transmission system 700, a coverage of each of the base stations, the covering range of each of the base stations, the number of the subscribers within the covering range of each of the base stations, a subscriber distribution of each of the base stations, the calculating module 708 calculates an average cell efficiency corresponding to each of the transmission architectures which are respectively used by the transmission system 700 (step S105).
The analyzing module 710 analyzes the average cell efficiency corresponding to each of the transmission architectures which are respectively used by the transmission system 700 to transmit the multicast-and-broadcast service (step S111). The selecting module 712 selects the transmission architecture corresponding to the maximum average cell efficiency for the transmission system 700 transmitting the multicast-and-broadcast service (step S115). In the above embodiment, the average cell efficiency respectively corresponding to each of the transmission architectures can be, for example but not limited to, an average cell information (or the mutual information per cell) or an average cell spectral efficiency (or the spectral efficiency per cell).
The SINR calculating module 802 calculates a plurality of signal-to-interference-and-noise ratios (SINRs) respectively corresponding to each of the base stations while the transmission system 700 transmits the multicast-and-broadcast service respectively in each of the transmission architectures (step S301 in the previous embodiment).
In one embodiment, under a transmission topology provided by a transmission architecture, when a base station is operated in the SC-PTM communication mode or the relay-enabled SC-PTM communication mode, the SINR calculating module 802 calculates the SINR of the multicast-and-broadcast service received by the farthest subscriber away from the base station and within the covering range of the base station. Moreover, when the base station is operated in the SFN communication mode or relay-enabled SFN communication mode, the SINR calculating module 802 calculates the SINR of the multicast-and-broadcast service received by one of the subscribers at the border of the covering range.
More specifically, when the base station is operated in the SC-PTM communication mode, the SINR calculating module 802 calculates the SINR SINRSC-PTM corresponding to the base station according to the equation (h) mentioned above.
When the base station is operated in the relay-enabled SC-PTM, the SINR calculating module 802 calculates the SINR SINRSC-PTM,RELAY corresponding to the base station according to the equation (i) mentioned above.
When the base station is operated in the SFN, the SINR calculating module 802 calculates the SINR SINRSFN corresponding to the base station according to the equation (j) mentioned above.
When the base station is operated in the relay-enabled SFN, the SINR calculating module 802 calculates the SINR SINRSFN,RELAY corresponding to the base station according to the equation (k) mentioned above.
The determining module 804 determines a data per symbol corresponding to each of the base stations according to the SINRs while the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures (step S305).
As shown in the equation (l) in the aforementioned embodiment, the data per symbol respectively corresponding to each of the base stations is regarded as the function of SINR respectively corresponding to each of the base stations. Thus, the determining module 804, by using table 2 which lists the SINRs respectively corresponding to the modulation levels and the coding schemes, maps the SINRs respectively corresponding to each of the base stations and obtained from the SINR calculating module 802 onto the data per symbol which can be respectively transmitted by each of the base station.
According to the data per symbol corresponding to each of the base stations as the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures, the spectral efficiency calculating module 806 calculates a single cell spectral efficiency of each of the base stations while the transmission system 700 transmits the multicast-and-broadcast service respectively in each of the transmission architectures (step S311). In one embodiment, under each of the transmission architectures, the spectral efficiency calculating module 806 calculates the single cell spectral efficiency DL of each of the base stations according to the equation (m) in the aforementioned embodiment.
The average-value calculating module 808 calculates the average cell spectral efficiency corresponding to each of the transmission architectures in which the transmission system respectively transmits the multicast-and-broadcast service according to the number of the base stations and the single cell spectral efficiency of each of the base stations while the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures (step S315).
In another embodiment, when the base station is operated in the SC-PTM communication mode or the relay-enabled SC-PTM communication mode, the calculating module 708, taking the factors including the covering range of the base station, the subscriber distribution within the covering range of the single base station, the number of the subscribers within the covering range of the base station and various coverages into account, calculates the single cell spectral efficiency DL of the base station by referring to the data per symbol of each of the subscribers respectively with various farthest distances away from the base station according to the equation (l) and using the equation (o) in the aforementioned embodiment (step S105 in the aforementioned embodiment).
When the base station is operated in the SFN communication mode or the relay-enabled SFN communication mode, the calculating module 708 calculates the SINR of the multicast-and-broadcast service received by one of the subscribers at the border of the covering range of the base station, and calculates the single cell spectral efficiency DL of the base station while the transmission system 700 transmits the multicast-and-broadcast service with one of the transmission architecture according to the SINR and the equation (m). Finally, according to the number of the base stations and the single cell spectral efficiency of each of the base stations while the transmission system transmits the multicast-and-broadcast service respectively in each of the transmission architectures, the average-value calculating module 808 of the calculating module 708 calculates the average cell spectral efficiency corresponding to each of the transmission architectures in which the transmission system 700 respectively transmits the multicast-and-broadcast service.
The topology establishing module 904 establishes a preliminary transmission topology according to the communication class of each of the base stations in the transmission system 700 (step S405). The topology selection module 706 selects the portion of the transmission architectures which are similar to the preliminary transmission topology (step S411). More specifically, when the number of the subscribers within the covering range of the base station is larger than or equal to seven, the communication mode of the base station is classified into the SFN communication class. However, when the number of the subscribers within the covering range of the base station is smaller than seven, the communication mode of the base station is classified into the SC-PTM communication class.
It should be noticed that all of the modules of the transmission system of the present invention can be implemented by a computer readable-and-writable program and the computer readable-and-writable program is executed by a processor to implement the method of selecting one of the transmission architectures for the transmission system of the present invention.
The invention provides a selection mechanism for selecting the transmission architecture for transmitting the multicast-and-broadcast service. By individually determining the communication mode of each of the base stations in the transmission system, the transmission performance of each of the base stations is improved and the whole transmission performance of the transmission system is improved as well. Moreover, by further considering the variables/factors including the coverage of each of the base stations, the covering range of each of the base stations, the subscriber distribution within the covering range of each of the base stations (probability of the distance between the subscriber and the base station) and the number of the subscribers within the covering range of each of the base stations, several equations are provided to calculate the transmission efficiency respectively corresponding to each of the transmission architectures. Thus, the transmission architecture for transmitting the multicast-and-broadcast service can be dynamically changed by selecting the one with the maximum transmission efficiency.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present invention without departing from the scope or spirit of the invention. In view of the foregoing descriptions, it is intended that the present invention covers modifications and variations of this invention if they fall within the scope of the following claims and their equivalents.
Number | Date | Country | Kind |
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100105270 | Feb 2011 | TW | national |