WO2010102423A1 - 对协同mimo中的下行业务数据进行内容同步的方法和装置 - Google Patents
对协同mimo中的下行业务数据进行内容同步的方法和装置 Download PDFInfo
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- 238000004891 communication Methods 0.000 claims abstract description 45
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- 238000012545 processing Methods 0.000 claims description 98
- 230000005540 biological transmission Effects 0.000 claims description 24
- 238000010586 diagram Methods 0.000 description 9
- 101100022564 Schizosaccharomyces pombe (strain 972 / ATCC 24843) mcs4 gene Proteins 0.000 description 6
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/022—Site diversity; Macro-diversity
- H04B7/024—Co-operative use of antennas of several sites, e.g. in co-ordinated multipoint or co-operative multiple-input multiple-output [MIMO] systems
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W56/00—Synchronisation arrangements
Definitions
- the present invention relates to cooperative MIMO in a wireless relay communication network, and more particularly to a base station in cooperative MIMO. Background technique
- Cohomcast Multicast/Receive In LTE-Advanced, Cohomcast Multicast/Receive (CoMP) is seen as the most promising technique for managing inter-cell interference and acknowledging the performance of high cell edge users.
- One processing scheme for co-multicast transmission/reception is the MIMO (Multiple Input Multiple Output).
- eNBs evolved Node Bs, or base stations
- the problem of how to enable a cooperating base station to transmit data of the same content on the same time-frequency resource is a problem of coordinated MIMO content synchronization.
- a content synchronization mechanism is also required.
- the processing of the PDCP layer is located in the MBMS gateway, and the data packets to be sent by the MBMS gateway are processed by the unified PDCP layer, and then transmitted to each base station by IP multicast.
- Each base station performs RLC processing and MAC processing and scheduling on the transmitted data packet according to a predetermined rule.
- each base station After being processed by the data link layer, each base station obtains the same data packet, and then each base station performs the same physical layer processing, so that the data packets sent by each base station are identical.
- the PDCP processing of unicast data packets is performed by each base station separately, because the PDCP processing of the unicast data packet is combined with the current base station and the characteristics information of the mobile station (such as the base station identifier and the connection identifier). Etc.) to complete. Therefore, if the data packets transmitted to the mobile station in the cooperative MIMO are separately subjected to PDCP processing by the respective base stations, the data packets obtained by the respective base stations after performing the PDCP processing are different, and the content synchronization cannot be realized. Since the MBMS and unicast protocol stacks are different, the MBMS and unicast service characteristics are also different, so the MBMS content synchronization mechanism cannot be used for cooperative MIMO unicast services. Summary of the invention
- the present invention proposes a method for controlling downlink service data in cooperative MIMO for content synchronization in cooperative MIMO of a wireless communication network: to be sent to a mobile station by a serving base station in cooperative MIMO
- the service data is processed by the data link layer to obtain the first data packet, and the first data packet is sent to other coordinated base stations in the cooperative MIMO; thereafter, the base stations participating in the transmission of the data packets in the cooperative MIMO (may include services)
- the base station, and possibly not including the serving base station transmits the first data packet to the mobile station on the same time-frequency resource.
- a method for controlling content synchronization of downlink service data in the coordinated MIMO in a serving base station in a coordinated MIMO of a wireless communication network comprising the steps of: a Performing data link layer processing on the service data sent to the mobile station to obtain the first data packet; b. determining the first time-frequency resource information for transmitting the first data packet; c. And transmitting to the other coordinated base stations in the cooperative MIMO, and sending the first time-frequency resource information to the other coordinated base stations.
- a method for content synchronization of downlink service data in a coordinated MIMO in a coordinated base station in cooperative MIMO of a wireless communication network comprises the following steps A. receiving, by the serving base station, the first data packet processed by the serving base station, and the first time-frequency resource information determined by the serving base station to send the first data packet; Performing modulation and coding processing on the first data packet to obtain a fourth data packet; C. transmitting the fourth data packet to the mobile station on the first time-frequency resource.
- a control apparatus for controlling content synchronization of downlink service data in the coordinated MIMO in a serving base station in cooperative MIMO of a wireless communication network
- the control apparatus includes Processing device, number a determining device and a first transmitting device; wherein the processing device performs data link layer processing on the service data to be sent to the mobile station to obtain the first data packet; the first determining device is configured to determine to send the first data a first time-frequency resource information of the packet; the first sending device is configured to separately send the first data packet to all other coordinated base stations in the cooperative MIMO, and send the first time-frequency resource information to the Other cooperative base stations.
- a synchronization apparatus for synchronizing content of downlink service data in a coordinated MIMO in a coordinated base station in a cooperative MIMO of a wireless communication network, characterized in that the synchronization apparatus comprises a receiving device, a third modulation and coding device, and a fourth transmitting device; wherein the receiving device is configured to receive, by the serving base station, the first data packet processed by the serving base station after performing data link layer, and the determining by the serving base station Transmitting the first time-frequency resource information of the first data packet; the third modulation and coding device is configured to perform modulation and coding processing on the first data packet to obtain a fourth data packet; The fourth data packet is sent to the mobile station on a first time-frequency resource.
- each base station in cooperative MIMO can effectively implement the same data transmission to the mobile station on the same time-frequency resource.
- the cooperative base station in the cooperative MIMO is silenced on the time-frequency resource that should transmit the lost data packet. , that is, without sending any data, it can keep the data synchronized well without interference.
- the serving base station communicates with other coordinated base stations through the X2 interface, so that the content synchronization mechanism is very effective, and can be quickly adjusted as the coordinated MIMO member base station adjusts.
- the synchronization scheme of the present invention has almost no impact on the structural design of the existing base station and the existing X2 interface of the base station.
- 1 is a schematic diagram of an application scenario of cooperative MIMO according to an embodiment of the present invention
- 2 is a flowchart of a method for controlling content synchronization of downlink service data in the coordinated MIMO in a serving base station in cooperative MIMO of a wireless communication network according to an embodiment of the present invention
- FIG. 3 is a schematic flowchart of a method for performing modulation and coding processing on a first data packet and transmitting in a serving base station in cooperative MIMO of a wireless communication network according to an embodiment of the present invention
- FIG. 4 is a schematic flowchart of content synchronization for downlink service data in the coordinated MIMO in a coordinated base station in cooperative MIMO of a wireless communication network according to an embodiment of the present invention
- FIG. 5 is a diagram showing a corresponding coded modulation scheme for each base station in cooperative MIMO according to downlink channel quality related information of each base station to mobile station 12 in cooperative MIMO of a wireless communication network according to an embodiment of the present invention. Schematic diagram of the process;
- FIG. 6 is a flow chart showing the process of modulating and transmitting a first digital packet according to a modulation and coding scheme determined by itself in a serving base station 111 in cooperative MIMO of a wireless communication network according to an embodiment of the present invention. ;
- FIG. 7 is a schematic diagram of a MAC scheduling period and data transmission in cooperative MIMO of a wireless communication network according to an embodiment of the present invention
- FIG. 8 is a flow chart showing content synchronization in a case of packet loss in cooperative base stations 112 and 113 in cooperative MIMO of a wireless communication network according to an embodiment of the present invention
- FIG. 9 is a schematic structural diagram of a control apparatus for controlling content synchronization of downlink service data in the cooperative MIMO in a coordinated MIMO cooperative base station of a wireless communication network according to an embodiment of the present invention
- FIG. 10 is a schematic structural diagram of a synchronization apparatus for synchronizing content of downlink service data in a coordinated MIMO in a coordinated base station in cooperative MIMO of a wireless communication network according to an embodiment of the present invention
- FIG. 1 shows a schematic diagram of an application scenario in accordance with an embodiment of the present invention.
- base station 111 is a serving base station that communicates with mobile station 12, including the transmission and reception of traffic data and control signaling.
- the base stations 112, 113 are cooperative base stations and only participate in the forwarding of downlink service data to the mobile station 12.
- the member base station that participates in the downlink service data transmission of the coordinated MIMO may be the base station 111, the base station 112, and the base station 113, or may be the base station 112 and the base station 113, or may be the base station 111. And the base station 112, or the base station 111 and the base station 113.
- the serving base station 111 can determine the cooperative transmission of the downlink service data to the member base stations of the mobile station 12 according to parameters such as the downlink channel quality of each base station to the mobile station 12 and the load of each base station. Specifically, how the member base stations in the cooperative MIMO determine that there is no direct relationship with the present invention is not described in detail in the present invention.
- the present invention discusses how to maintain content synchronization after determining by a member base station in cooperative MIMO, that is, how to enable each base station in cooperative MIMO to transmit the same content data packet to the mobile station on the same time-frequency resource, the same content.
- the data packet includes the same data packet processed by the data link layer or the same data packet processed by the physical layer.
- the component base stations of the cooperative MIMO include the serving base station 111, the cooperative base stations 112 and 113, unless otherwise specified in the following embodiments.
- FIG. 2 is a flow chart showing a method for controlling content synchronization of downlink service data in the coordinated MIMO in a serving base station in a cooperative MIMO of a wireless communication network according to an embodiment of the present invention.
- the flow shown in Fig. 2 will be described in detail below with reference to Fig. 1.
- the serving base station 111 performs data link layer processing on the service data to be transmitted to the mobile station 12 to obtain a first data packet.
- specific data link layer processing can include different processing procedures.
- the data link layer processing includes PDCP (Packet Date Convergence Protocol) processing, RLC (Radio Link Control) processing, and MAC (Media Access Control, Media interview Ask Control) Processing and scheduling.
- PDCP Packet Date Convergence Protocol
- RLC Radio Link Control
- MAC Media Access Control, Media interview Ask Control
- step S202 the serving base station 111 determines to transmit the first time-frequency resource information of the first data packet.
- the serving base station 111 transmits the first data packet to the other coordinated base stations 112 and 113 in the cooperative MIMO, and transmits the first time-frequency resource information to the other coordinated base stations 112 and 113.
- each base station has an X2 interface for communicating with other base stations.
- the base station 111 can transmit the first data packet and the first time-frequency resource information to the cooperative base stations 112 and 113 via the X2 interface.
- the base station that participates in the downlink service data transmission of the coordinated MIMO may be the base station 111, the base station 112, and the base station 113, or may be the base station 112 and the base station 113, or may be the base station 111 and the base station 112, or Base station 111 and base station 113.
- the serving base station 111 participates in the transmission of the service data
- the steps as shown in Fig. 3 are also performed in the base station 111.
- step S301 the serving base station 111 performs modulation coding processing on the first data packet obtained in step S201 in Fig. 2 to obtain a second data packet.
- step S302 the serving base station 111 transmits the second data packet to the mobile station 12 on the first time-frequency resource determined in step S202 in FIG.
- the base station 112 and/or the base station 113 participate in the transmission of service data in the cooperative MIMO
- the cooperative base station in the cooperative MIMO of the wireless communication network as shown in FIG.
- the process of content synchronization of the downlink service data in the cooperative MIMO without departing from the general description, the flow shown in FIG. 4 will be described in detail by taking the base station 112 as an example.
- the base station 112 receives the first data packet from the serving base station 111 that is processed by the serving base station 111, and the first determined by the serving base station 111 to send the first data packet. Time-frequency resource information.
- step S402 the base station 112 performs modulation and coding processing on the first data packet to obtain a fourth data packet.
- step S403 the base station 112 transmits the fourth data packet to the mobile station 12 on the first time-frequency resource.
- the format of the second data packet and the fourth data packet may be the same or different, and specifically depends on the modulation coding scheme adopted by the serving base station 111 and the coordinated base station 112. If the serving base station 111 and the cooperative base station 112 learn the same modulation and coding scheme, the format of the second data packet and the fourth data packet are the same; if the serving base station 111 and the cooperative base station 112 adopt different modulation and coding schemes, the second data packet The format of the fourth packet is different.
- the scheme of the modulation and coding mode adopted by each base station to be transmitted to the first data packet of the mobile station 12 includes at least the following two situations: One is that the serving base station 111 is configured according to each base station. The downlink channel quality related information to the mobile station 12 determines a corresponding coded modulation scheme for each base station in the cooperative MIMO. The other is that each base station in cooperative MIMO individually determines a modulation and coding scheme for transmitting the first data packet. The two methods are described in detail below.
- FIG. 1 A flow chart of a detailed implementation of the first method is shown in FIG.
- step S501 the serving base station 111 acquires channel quality related information of the downlink channels of the respective base stations 112 and 113 to the mobile station 12 in the cooperative MIMO.
- the serving base station 111 transmits a channel quality indicating that the mobile station 12 measures the downlink channels to which the base stations 111, 112, and 113 are connected.
- the mobile station 12 measures the channel quality of the base stations 112 and 113 to its own downlink channel based on the synchronized broadcast information received from the base stations 112 and 113, respectively, to obtain channel quality related information.
- the mobile station 12 also measures the channel quality of the serving base station 111 to its own downlink channel based on the received unicast or broadcast information from the serving base station 111 to obtain channel quality related information. Then, the mobile station 12 returns the channel quality related information of each channel to the base station 111.
- the channel shield related information refers to information indicating channel quality, including but not limited to parameters such as channel quality indicator (CQI) or signal to noise ratio (SNR) or signal to interference and noise ratio (SINR).
- CQI channel quality indicator
- SNR signal to noise ratio
- SINR signal to interference and noise ratio
- the channel quality related information may be a statistical average of a plurality of instantaneous values over a period of time to eliminate the effects of bursty interference.
- step S502 the serving base station 111 is acquired according to the step S501.
- the channel quality related information determines a modulation coding scheme for transmitting the first data packet for each of the base stations 112 and 113 in the cooperative MIMO.
- step S503 the serving base station 111 transmits the modulation and coding scheme corresponding to each of the coordinated base stations 112 and 113 to the corresponding coordinated base station.
- the serving base station 111 may determine a modulation coding scheme for transmitting the first data packet for each of the base stations in the cooperative MIMO.
- a modulation coding scheme with higher data throughput but lower fault tolerance can be adopted, for example, an enhanced technology for enhancing GSM data rate (EDGE, Enhanced Data Rate for GSM) MCS-5 to MCS-9 in Evolution ).
- EDGE Enhanced Data Rate for GSM
- MCS-1 to MCS-4 in an evolution technique for enhancing GSM data rate.
- the serving base station 111 may also determine the same modulation coding scheme for transmitting the first data packet for each of the base stations in the cooperative MIMO. For the case where the serving base station 111 determines the same modulation and coding scheme for each of the base stations in the cooperative MIMO, the serving base station 111 may determine the modulation and coding scheme corresponding to the downlink channel with the worst channel quality as the modulation of each base station in the cooperative MIMO. The coding scheme; the serving base station 111 may also determine a modulation and coding scheme corresponding to the downlink channel with poor channel quality as a modulation and coding scheme of each base station in the cooperative MIMO.
- the channel quality of the downlink channel from the serving base station 111 to the mobile station 12 is better than the channel quality of the downlink channel of the cooperative base station 112 to the mobile station 12 without loss of generality, and the serving base station 112
- the channel quality of the downlink channel to the mobile station 12 is better than the channel quality of the downlink channel of the cooperative base station 113 to the mobile station 12, and an embodiment in which the serving base station 111 determines the same modulation and coding scheme for each base station in the cooperative MIMO is performed. Description.
- the modulation and coding scheme corresponding to the channel quality of the downlink channel of the serving base station 111 to the mobile station 12 is MCS5, and the modulation and coding scheme corresponding to the channel quality of the downlink channel of the cooperative base station 112 to the mobile station 12 is MCS4, cooperation
- the modulation and coding scheme corresponding to the channel quality of the downlink channel of the base station 113 to the mobile station 12 is MCS3.
- Service The base station 111 may use the MCS3 as a modulation and coding scheme for the first data packet by each base station in the cooperative MIMO, or may use the MCS4 as a modulation and coding scheme for the first data packet of each base station in the cooperative MIMO.
- the serving base station 111 can also use the MCS5 as a modulation and coding scheme for the first data packet by each base station in the cooperative MIMO.
- the serving base station 111 determines the corresponding coding modulation scheme for each base station in the cooperative MIMO according to the downlink channel quality related information of each base station to the mobile station 12 in the cooperative MIMO.
- the following is a detailed description of the case where each of the base stations in the cooperative MIMO determines a modulation and coding scheme for transmitting the first data packet.
- each base station in the cooperative MIMO determines the modulation and coding scheme for transmitting the first data packet, it can be divided into two cases: 1) each base station transmits the data packets coordinatedly transmitted to the mobile station 12 according to the prior agreement. The same modulation coding scheme is adopted; 2) Each base station in cooperative MIMO independently determines a coded modulation scheme for transmitting the first data packet.
- each base station can adopt a modulation and coding scheme with lower data throughput but higher fault tolerance.
- each base station in the cooperative MIMO can agree to adopt the modulation coding scheme of the MCS3 in advance.
- each base station in the cooperative MIMO independently determines a coded modulation scheme for transmitting the first data packet, and the modulation and coding schemes independently determined by the respective base stations may be the same or different.
- the serving base station 111 can adopt a modulation coding scheme of the MCS4;
- the cooperative base station 112 can adopt a modulation coding scheme of the MCS3;
- the cooperative base station 113 can adopt a modulation coding scheme of the MCS3.
- each base station in cooperative MIMO adopting the same modulation and coding scheme transmits the identical data packet to the mobile station 12 on the first time-frequency resource, that is, the second data packet or the third data packet sent by the serving base station 111.
- the fourth data packet transmitted by the coordinated base station 113 or 114 is radio-combined in the air, and the mobile station 12 does not need to distinguish which base station the data packet comes from.
- the data packets transmitted by the respective base stations are different.
- the mobile station 12 After receiving the data packets of the respective base stations, the mobile station 12 performs maximum ratio combining or soft combining processing on each data packet.
- each base station may transmit the first data packet within a relatively close (eg, within the same MAC scheduling period) but not necessarily identical.
- the serving base station 111 After the serving base station 111 determines the corresponding modulation and coding scheme for each of the base stations in the cooperative MIMO, the serving base station 111 also performs the steps shown in FIG.
- step S601 the serving base station 111 performs modulation coding processing on the first data packet for its own modulation coding scheme in step S502 shown in FIG. 5 to obtain a third data packet.
- step S602 the serving base station 111 transmits a third data packet to the mobile station 12 on the first time-frequency resource.
- the format of the second data packet and the third data packet may be the same or different, and specifically depends on whether the modulation and coding scheme adopted by the serving base station 111 for two modulation codes is the same.
- the serving base station 111 obtains the first data packet, and performs physical layer processing on the first data packet according to different protocols.
- the physical layer specification the physical layer processing that needs to be taken is also different, but at least includes the modulation and coding processing steps.
- physical layer processing includes steps such as channel coding, hybrid ARQ processing, channel interleaving, scrambling, modulation and coding processing, mapping, and precoding processing.
- steps such as channel coding, hybrid ARQ processing, channel interleaving, scrambling, modulation and coding processing, mapping, and precoding processing.
- the cooperative base station 112 receives the notification of the modulation and coding scheme from the serving base station 111 before the step S402 shown in FIG.
- step S402 the cooperative base station 112 performs corresponding modulation and coding processing on the first data packet according to the modulation and coding scheme notified by the serving base station 111 to obtain the fourth number. According to the package.
- the format of the fourth data packet obtained by different modulation and coding schemes is also different.
- the cooperative base station 112 transmits the modulated first encoded data packet, that is, the fourth data packet, to the mobile station 12 on the first time-frequency resource.
- the above takes a packet transmission as an example to describe the process of content synchronization of downlink service data in cooperative MIMO.
- One of ordinary skill in the art will recognize that for a plurality of data packets, the process is similar to one data packet.
- data link layer processing includes PDCP processing, RLC processing, and MAC processing and scheduling.
- packet data link layer 111 for performing the need for the serving base station thus, usually a period of a plurality of MAC scheduling transmission time interval (TTI, Transmission Time Interval) 0
- the serving base station 111 may transmit a plurality of first data packets to be transmitted to the mobile station 12 within one MAC scheduling period, together with their respective corresponding first time-frequency resource information and a modulation and coding scheme, to the respective coordinated base stations.
- the same modulation and coding scheme may be adopted, that is, modulation coding of each base station in the coordinated MIMO in one MAC scheduling period. The plan remains the same.
- Figure 7 shows a schematic diagram of a MAC scheduling period and data transmission in cooperative MIMO, the data set in the figure corresponding to a plurality of first data packets in the first MAC scheduling period described above.
- the cooperative base stations 112 and 113 can also perform the process shown in FIG. 8 to implement content synchronization to avoid interference. .
- the flow shown in Fig. 8 will be described in detail with reference to the cooperative base station 112 as an example without loss of generality.
- step S801 the cooperative base station 112 determines whether or not the data packet is lost based on the MAC PDU sequence number included in the first data packet from the serving base station 111.
- the serving base station 111 sends 100 first data packets to the cooperative base stations 112 and 113 as an example. If the cooperative base station 112 receives the MAC PDU sequence numbers 1 to 55, 58 to 100, the cooperative base station 112 determines the MAC PDU sequence. Two numbers 56 to 57 The first packet is lost.
- step S802 if the cooperative base station 112 determines the lost data packet, no data is transmitted on the time-frequency resource determined by the serving base station 111 for transmitting the lost data packet corresponding to the lost data packet.
- FIG. 10 is a schematic diagram showing the structure of a control apparatus 900 for controlling content synchronization of downlink service data in cooperative MIMO in a wireless communication network according to an embodiment of the present invention.
- the control device 900 includes a processing device 901, a first determining device 902, a first transmitting device 903, a first modulation encoding device 904, a second transmitting device 905, an obtaining device 906, a second determining device 907, and a second modulation encoding device 908. And a third transmitting device 909.
- the sub-devices in many preferred embodiments are shown together in FIG. 9, and those skilled in the art should understand according to the teachings of the present specification, wherein only the processing device 901 and the first determining device 902 are understood.
- the first transmitting device 903 is a device necessary for implementing the present invention, and the other sub-devices are optional devices.
- the process of controlling the content synchronization of the downlink service data in the cooperative MIMO by the control device 900 located in the serving base station 111 will be described in detail below with reference to the application scenario shown in FIG.
- the processing device 901 performs data link layer processing on the service data to be transmitted to the mobile station 12 to obtain a first data packet.
- specific data link layer processing can include different processing procedures.
- data link layer processing includes PDCP processing, RLC processing, and MAC processing and scheduling.
- the first determining means 902 determines to transmit the first time-frequency resource information of the first data packet.
- the first transmitting device 903 transmits the first data packet to the other coordinated base stations 112 and 113 in the cooperative MIMO, and transmits the first time-frequency resource information to the other coordinated base stations 112 and 113.
- each base station has an X2 interface for communicating with other base stations.
- the first transmitting device 903 can transmit the first data packet and the first time-frequency resource information to the cooperative base stations 112 and 113 through the X2 interface.
- the base station that participates in the downlink service data transmission of the cooperative MIMO may be the base station 111, the base station 112, and the base station 113, or may be the base station 112 and the base station 113, or may be the base station 111 and the base station 112, or Base station 111 and base station 113.
- the control device 900 also performs the following functions.
- the first modulation and coding apparatus 904 performs modulation and coding processing on the first data packet obtained after being processed by the processing apparatus 901 to obtain a second data packet.
- the second transmitting means 905 transmits the second data packet to the mobile station 12 on the first time-frequency resource determined by the first determining means 902.
- a base station 112 or base station 113 further includes a synchronization device 1000 as shown in FIG.
- the synchronizing apparatus 1000 includes a receiving apparatus 1001, a third modulation encoding apparatus 1002, a fourth transmitting apparatus 1003, a judging unit 1004, and a transmission control apparatus 1005.
- the sub-devices in many preferred embodiments are shown together in FIG. 10, and those skilled in the art should understand according to the teachings of the present specification, wherein only the receiving device 1001 and the third modulation encoding device are understood. 1002.
- the fourth transmitting device 1003 is a device necessary for implementing the present invention, and the other sub-devices are optional devices.
- the synchronization device 1000 located in the coordinated base station 112 firstly receives the first data packet from the serving base station 111 after the data link layer processing is performed by the serving base station 111. And determining, by the serving base station 111, first time-frequency resource information for transmitting the first data packet.
- the third modulation and coding apparatus 1002 performs modulation coding processing on the first data packet to obtain a fourth data packet.
- the fourth transmitting device 1003 transmits the fourth data packet to the mobile station 12 on the first time-frequency resource.
- the formats of the second data packet and the fourth data packet may be the same or different, and specifically depend on the modulation and coding scheme adopted by the serving base station 111 and the coordinated base station 112. If the serving base station 111 and the cooperative base station 112 adopt the same modulation and coding scheme, Then, the format of the second data packet and the fourth data packet are the same; if the serving base station 111 and the cooperative base station 112 adopt different modulation and coding schemes, the formats of the second data packet and the fourth data packet are different.
- the scheme of the modulation and coding mode adopted by each base station to be transmitted to the first data packet of the mobile station 12 includes at least the following two situations: One is that the serving base station 111 is configured according to each base station. The downlink channel quality related information to the mobile station 12 determines a corresponding coded modulation scheme for each base station in the cooperative MIMO. The other is that each base station in cooperative MIMO individually determines a modulation and coding scheme for transmitting the first data packet. The following two methods are respectively described in detail.
- the obtaining means 906 acquires channel quality related information of the downlink channels of the respective base stations 112 and 113 to the mobile station 12 in the cooperative MIMO.
- the serving base station 111 transmits a channel quality indicating that the mobile station 12 measures the downlink channels to which the base stations 111, 112, and 113 are connected.
- the mobile station 12 measures the channel quality of the base stations 112 and 113 to its own downlink channel based on the synchronized broadcast information received from the base stations 112 and 113, respectively, to obtain channel quality related information.
- the mobile station 12 also measures the channel quality of the serving base station 111 to its own downlink channel based on the received unicast or broadcast information from the serving base station 111 to obtain channel quality related information. Then, the mobile station 12 returns the channel quality related information of each channel to the base station 111.
- Channel quality related information refers to information indicating channel quality, including but not limited to parameters such as channel quality indicator (CQI) or signal to noise ratio (SNR) or signal to interference and noise ratio (SINR).
- CQI channel quality indicator
- SNR signal to noise ratio
- SINR signal to interference and noise ratio
- the channel quality related information may be a statistical average of a plurality of instantaneous values over a period of time to eliminate the effects of bursty interference.
- the second determining means 907 determines, for the base stations 112 and 113 in the cooperative MIMO, a modulation and coding scheme for transmitting the first data packet based on the channel quality related information acquired by the obtaining means 906.
- the first transmitting device 903 transmits the modulation and coding scheme corresponding to each of the coordinated base stations 112 and 113 to the corresponding coordinated base station.
- the second determining device 907 can be respectively configured for each base station in the cooperative MIMO.
- a modulation coding scheme for transmitting the first data packet is determined.
- a modulation and coding scheme with higher data throughput but lower fault tolerance can be adopted, for example, an enhanced technology for enhancing GSM data rate (EDGE, Enhanced Data Rate for GSM) MCS-5 to MCS-9 in Evolution ).
- EDGE Enhanced Data Rate for GSM
- MCS-1 to MCS-4 in an evolution technique for enhancing GSM data rate
- the second determining means 907 may also determine the same modulation coding scheme for transmitting the first data packet for each of the base stations in the cooperative MIMO. For the case where the second determining means 907 determines the same modulation and coding scheme for each of the base stations in the cooperative MIMO, optionally, the second determining means 907 may determine the modulation and coding scheme corresponding to the downlink channel with the worst channel quality as the cooperative MIMO. The modulation and coding scheme of each base station; the second determining means 907 may also determine a modulation and coding scheme corresponding to the downlink channel with poor channel quality as a modulation and coding scheme of each base station in the cooperative MIMO.
- the channel quality of the downlink channel from the serving base station 111 to the mobile station 12 is better than the channel quality of the downlink channel of the cooperative base station 112 to the mobile station 12 without loss of generality, and the serving base station 112
- the channel quality of the downlink channel to the mobile station 12 is better than the channel quality of the downlink channel of the cooperative base station 113 to the mobile station 12, and an embodiment in which the serving base station 111 determines the same modulation and coding scheme for each base station in the cooperative MIMO is performed. Description.
- the modulation and coding scheme corresponding to the channel quality of the downlink channel of the serving base station 111 to the mobile station 12 is MCS5
- the modulation and coding scheme corresponding to the channel quality of the downlink channel of the cooperative base station 112 to the mobile station 12 is MCS4
- cooperation The modulation and coding scheme corresponding to the channel quality of the downlink channel of the base station 113 to the mobile station 12 is MCS3.
- the second determining means 907 can use the MCS3 as a modulation and coding scheme for the first data packet of each base station in the cooperative MIMO, and can also use the MCS4 as a modulation and coding scheme for the first data packet of each base station in the cooperative MIMO.
- the second determining means 907 can also use the MCS 5 as a modulation and coding scheme for the first data packet by each base station in the cooperative MIMO.
- the above second determining means 907 is based on each base station to the mobile station in the cooperative MIMO
- the downlink channel quality related information of 12 is described in detail for the case where each base station in cooperative MIMO determines a corresponding coded modulation scheme.
- the following describes in detail the case where each of the base stations in the cooperative MIMO determines a modulation and coding scheme for transmitting the first data packet.
- each base station in the cooperative MIMO determines the modulation and coding scheme for transmitting the first data packet, it can be divided into two cases: 1) each base station transmits the data packets coordinatedly transmitted to the mobile station 12 according to the prior agreement. The same modulation coding scheme is adopted; 2) Each base station in cooperative MIMO independently determines a coded modulation scheme for transmitting the first data packet.
- each base station can adopt a modulation and coding scheme with lower data throughput but higher fault tolerance.
- each base station in the cooperative MIMO can agree to adopt the modulation coding scheme of the MCS3 in advance.
- each base station in the cooperative MIMO independently determines a coded modulation scheme for transmitting the first data packet, and the modulation and coding schemes independently determined by the respective base stations may be the same or different.
- the serving base station 111 can adopt a modulation coding scheme of the MCS4;
- the cooperative base station 112 can adopt a modulation coding scheme of the MCS3;
- the cooperative base station 113 can adopt a modulation coding scheme of the MCS3.
- each base station in cooperative MIMO adopting the same modulation and coding scheme transmits the identical data packet to the mobile station 12 on the first time-frequency resource, that is, the second data packet or the third data packet sent by the serving base station 111.
- the fourth data packet transmitted by the coordinated base station 113 or 114 is radio-combined in the air, and the mobile station 12 does not need to distinguish which base station the data packet comes from.
- each base station in the cooperative MIMO adopts a different modulation and coding scheme
- the data packets transmitted by the respective base stations are different.
- the mobile station 12 After receiving the data packets of the respective base stations, the mobile station 12 performs maximum ratio combining or soft combining processing on each data packet.
- each base station in cooperative MIMO adopts a different modulation and coding scheme each base station may send the first number within a relatively close time (for example, within the same MAC scheduling period) but not necessarily the same time. According to the package.
- the second determining means 907 determines the corresponding modulation coding scheme for each of the base stations in the cooperative MIMO, the following functions are also performed in the control apparatus 900.
- the second modulation and coding apparatus 908 performs modulation and coding processing on the first data packet in accordance with the modulation and coding scheme determined by the second determination means 907 for the serving base station 111 to obtain a third data packet.
- the third transmitting device 909 transmits the third data packet to the mobile station 12 on the first time-frequency resource.
- the formats of the second data packet and the third data packet may be the same or different, and specifically depend on the modulation and coding scheme adopted by the first modulation and coding device 904 and the second modulation and coding device 908. Is it the same?
- the serving base station 111 obtains the first data packet, and performs physical layer processing on the first data packet according to different protocols.
- the physical layer specification the physical layer processing that needs to be taken is also different, but at least includes the modulation and coding processing steps.
- physical layer processing includes steps of channel coding, hybrid ARQ processing, channel interleaving, scrambling, modulation and coding processing, mapping, and precoding processing.
- the modulation coding processing scheme is different from the prior art, only the determination of the modulation coding processing scheme is limited.
- the synchronization apparatus 1000 in the cooperative base stations 112 and 113 After the serving base station 111 determines the corresponding modulation and coding scheme for each of the base stations in the cooperative MIMO, the synchronization apparatus 1000 in the cooperative base stations 112 and 113 also performs the following functions, taking the synchronization apparatus 1000 in the base station 112 as an example for details. Description.
- the receiving device 1001 receives a notification from the modulation and coding scheme of the serving base station 111.
- the third modulation and coding apparatus 1002 performs a corresponding modulation and coding process on the first data packet in accordance with the modulation coding scheme notified by the serving base station 111.
- the fourth transmitting device 1003 transmits the modulated first encoded data packet, that is, the fourth data packet, to the mobile station 12 on the first time-frequency resource.
- data link layer processing includes PDCP processing, RLC processing, and MAC processing and scheduling.
- PDCP processing since the serving base station 111 is required to perform data link layer processing on the data packet, usually one MAC scheduling period is a plurality of Transmission Time Intervals (TTI).
- TTI Transmission Time Intervals
- the control device 900 may transmit a plurality of first data packets to be transmitted to the mobile station 12 within one MAC scheduling period, together with their respective corresponding first time-frequency resource information and a modulation and coding scheme, to the respective coordinated base stations.
- the same modulation and coding scheme may be adopted, that is, modulation coding of each base station in the coordinated MIMO in one MAC scheduling period. The plan remains the same.
- the synchronization device 1000 in the cooperative base stations 112 and 113 also performs the following procedure to achieve content synchronization to avoid interference. .
- the process will be described in detail by taking the synchronization device 1000 of the base station 112 as an example without loss of generality.
- the judging means 1004 judges whether or not the data packet is lost based on the MAC PDU sequence number included in the first packet from the serving base station 111 received by the receiving apparatus 1001.
- the serving base station 111 sends 100 first data packets to the cooperative base stations 112 and 113 as an example. If the receiving device 1001 receives the MAC PDU sequence numbers 1 to 55, 58 to 100, the determining device 1004 determines the MAC PDU sequence. The two first packets, numbered 56 through 57, are lost.
- the transmission control device 1005 controls the fourth transmitting device 1003 not to use the time-frequency resource for transmitting the lost data packet determined by the serving base station 111 corresponding to the lost data packet. Send any data.
- the first modulation and coding device 904 and the second modulation can be implemented by the same modulation encoding device; the second transmitting device 905 and the third transmitting device 906 It can also be implemented by the same transmitting device.
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Abstract
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Priority Applications (7)
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KR1020117023863A KR101343306B1 (ko) | 2009-03-12 | 2009-03-12 | 협력 mimo에서 다운링크 서비스 데이터에 대한 콘텐츠 동기화를 수행하는 방법 및 그 장치 |
PCT/CN2009/000262 WO2010102423A1 (zh) | 2009-03-12 | 2009-03-12 | 对协同mimo中的下行业务数据进行内容同步的方法和装置 |
US13/256,032 US20120002741A1 (en) | 2009-03-12 | 2009-03-12 | Method for performing content synchronization for downlink service data in collaborative mimo and apparatus thereof |
EP09841292.7A EP2408242A4 (en) | 2009-03-12 | 2009-03-12 | METHOD FOR PERFORMING CONTENT SYNCHRONIZATION FOR DOWNSTREAM SERVICE DATA IN A COLLABORATIVE MIMO AND DEVICE THEREFOR |
JP2011553243A JP5491534B2 (ja) | 2009-03-12 | 2009-03-12 | 協調mimoのダウンリンクサービスデータに関するコンテンツ同期を実行するための方法およびその装置 |
BRPI0924442A BRPI0924442A2 (pt) | 2009-03-12 | 2009-03-12 | método para executar sincronização de conteudo para dados de serviço em enlace descendente em mimo colaborativo e aparelho do mesmo |
CN2009801474642A CN102227941A (zh) | 2009-03-12 | 2009-03-12 | 对协同mimo中的下行业务数据进行内容同步的方法和装置 |
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PCT/CN2009/000262 WO2010102423A1 (zh) | 2009-03-12 | 2009-03-12 | 对协同mimo中的下行业务数据进行内容同步的方法和装置 |
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PCT/CN2009/000262 WO2010102423A1 (zh) | 2009-03-12 | 2009-03-12 | 对协同mimo中的下行业务数据进行内容同步的方法和装置 |
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EP (1) | EP2408242A4 (zh) |
JP (1) | JP5491534B2 (zh) |
KR (1) | KR101343306B1 (zh) |
CN (1) | CN102227941A (zh) |
BR (1) | BRPI0924442A2 (zh) |
WO (1) | WO2010102423A1 (zh) |
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JP2016052028A (ja) * | 2014-09-01 | 2016-04-11 | 株式会社日立国際電気 | 無線通信システム及び無線回線制御装置 |
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KR101624317B1 (ko) | 2014-09-01 | 2016-06-07 | 한국생산기술연구원 | 이차전지용 양극소재 제조방법 |
WO2017221352A1 (ja) * | 2016-06-22 | 2017-12-28 | 富士通株式会社 | 無線通信システム、基地局、及び、無線端末 |
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JP2012520029A (ja) | 2012-08-30 |
JP5491534B2 (ja) | 2014-05-14 |
US20120002741A1 (en) | 2012-01-05 |
EP2408242A4 (en) | 2014-09-17 |
KR20110127265A (ko) | 2011-11-24 |
BRPI0924442A2 (pt) | 2016-01-26 |
EP2408242A1 (en) | 2012-01-18 |
CN102227941A (zh) | 2011-10-26 |
KR101343306B1 (ko) | 2014-01-14 |
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