The present invention relates to radio communication. More particularly, the present invention relates to a data transmission system, a data transmission method, a base station and a mobile station for transmitting a signal for Multimedia Broadcast/Multicast Service (MBMS).
In mobile communication systems in recent years, in addition to voice services of a circuit switching type, large capacity multimedia services based on a packet switching scheme are starting to be provided. In the 3GPP (3rd generation partnership project), MBMS is assumed to be used in the packet switching scheme, so that configurations of UTRAN architecture and radio channels related to MBMS are disclosed (refer to non-patent document 1). Content of the MBMS is represented by a traffic channel (MTCH), and control channels (MCCH and MSCH) for transmitting it are transmitted over SCCPCH (Secondly Common Control Physical Channel). MCCH includes control messages such as a MBMS access information message and other messages. Especially, these control messages are transmitted over the SCCPCH within a specified period (modification period) at specified repetition transmission timing (repetition period). The “Modification period” and the “Repetition period” are transmitted by PCCPCH (Primary Common Control Physical Channel), that is, they are reported by broadcast information. In addition, transmission timing of the MSCH is specified based on a timing specified by MSCH configuration information included in a “MBMS GENERAL INFORMATION” message of a RRC message or “MBMS CURRENT CELL P-T-M RB INFORMATION.” Like the MCCH, the MSCH is transmitted at a repetition timing specified by the MSCH configuration information over the SCCPCH. Transmission timing of the MTCH (content of MBMS) is specified by MSCH, so that a mobile station (UE) receives the MBMS content at a specified scheduling timing. Positions where MTCH can be transmitted are not fixedly specified on the SCCPCH.
[non-patent document 1] 3GPP interface specification, “TS25.346”, “TS25.331”, Internet <URL:http://www.3gpp.org>
In the conventional technique, control signals (MCCH, MSCH) for multicasting MBMS content (MTCH) are transmitted from the base station (BTS or node B) to the mobile station (UE). The UE receives broadcast information (BCCH) at a timing when the UE moves to another cell or when the terminal is powered on so as to ascertain repetitive transmission timing of MCCH at the residing cell. When the user finds interesting one in various service contents of the MBMS, the UE checks activation (when reported by MICH, and the like) of the MBMS service, and starts to receive MCCH associated with MICH. The MCCH may include MBMS access information, MBMS modification information, MBMS current cell information and MBMS general information and the like. By receiving these control signals, the UE can ascertain information necessary for receiving MBMS content such as common parameter, adjacent cell information, MSCH repetition timing and the like. By receiving MSCH at specified timing, transmission timing of MTCH (MBMS content) can be ascertained, so that MTCH can be received at the transmission timing. As mentioned above, according to the conventional method, the processes performed until the UE starts to receive MBMS content are complicated. In addition, it may decrease radio efficiency of the common channel to uniformly transmit the control information periodically over the SCCPCH.
On the other hand, in a future mobile communication system for which discussion is started in the third generation partnership project (3GPP), it is predicted that a shared radio channel and a shared control channel are used as a downlink radio channel like HSDPA (High Speed Downlink Packet Access) of R5. On the shared radio channel, like the SCCPCH, various logical channels may be transmitted irrespective of types of logical channels. However, when MCCH and MSCH are uniformly transmitted over the shared radio channel periodically in the same way as MBMS of R6 in which MCCH and MSCH are transmitted using a same radio channel (SCCPCH), it is feared that use efficiency of the shared radio channel is decreased.
In the present invention, a data transmission system for multicasting user common data from one or more radio base stations (BTS) to one or more mobile stations (UE) is used.
The radio base station includes transmit the user common data using a shared data channel (E-PDSCH), transmit associated control information using an associated control channel (E-SCCH) and transmit broadcast information using a broadcast channel.
The mobile station includes: receive the shared data channel, the associated control channel and the broadcast channel; and analyze the broadcast information and the associated control information.
The broadcast information includes information indicating transmission timing of the associated control channel. The associated control information includes information of a radio parameter of the shared data channel, and distribution information indicating multicasting time of the user common data.
According to one or more embodiments of the present invention, the MBMS content can be transmitted using a simple procedure without decreasing radio efficiency of the shared radio channel.
According to one or more embodiments of the present invention, user common data is transmitted using a shared data channel (E-PDSCH), and associated control information including at least a radio parameter of the shared data channel is transmitted using an associated control channel (E-SCCH), and broadcast information is transmitted using a broadcast channel. By periodically transmitting, as broadcast information, common configuration parameters (transmission timing of the associated control channel, access control information, and the like) that are not dependent on MBMS services, the control signal for MBMS can be multicasted while controlling decrease of radio efficiency of the associated control channel. In addition, as an example, if it is assumed that positions where resources for MBMS can be assigned on a radio channel is limited, setting procedure of RB (radio bearer) can be omitted. After powered on or when moving to another cell, UE receives broadcast information, and after that, the UE can receive multicast of MTCH only by receiving E-SCCH. Thus, multicasting procedure of MTCH can be simplified.
The associated control channel may be coded using code associated with a predetermined identifier. A part of the associated control channel including distribution information may be coded using code associated with a group identifier of the user common data, and other associated control channel may be coded using code associated with an identifier of each user. Accordingly, distribution information of MBMS and control information to each user can be easily distinguished.
The associated control information may include a radio parameter of the shared data channel, and distribution information indicating multicasting time of the user common data.
The distribution information may include transmission start timing, transmission end timing, and information indicating a repetition number of times of transmission of the user common data.
In addition to the associated control channel of an own cell, the mobile station may also receive an associated control channel of other cell that satisfies a predetermined signal quality condition. Accordingly, the mobile station can receive distribution information and user common data not only from the own cell but also from other cell to combine these (soft combining).
In the following, a first embodiment of the present invention is described.
<Communication System>
As shown in the lower side of
<Process Performed Until Multicast of MBMS Content Starts>
Before transmitting the shared radio transmission channel (E-PDSCH), BTS transmits the shared control channel (E-SCCH) associated with it at every predetermined transmission time interval (TTI). UE in an active state or in a CELL_DCH state normally receives E-SCCH at every TTI. UE in a state (state such as IDLE, CELL_PCH and the like) that is not an active state discontinuously receives E-SCCH specified by a frame timing for MBMS as an example. The state is also called as DRX (Discontinuous Receiving) state.
When there is MBMS content scheduled to be multicasted, BTS transmits, at the frame timing for MBMS, E-SCCH on which channel coding has been performed using TMGI (Temporary MBMS Group Identifier). The TMGI is assigned to the MBMS content to be multicasted. E-SCCH is provided with at least a flag indicating continuity of MBMS content. For example, E-SCCH may further include information such as repetition number and AMC information (modulation scheme, coding rate and the like) of corresponding MBMS content, GI length (length of guard interval) of OFDM (Orthogonal Frequency Division Multiplexing). MICH is transmitted at a timing specified by the broadcast information, as an example, over any one of one or more prepared E-SCCHs, and the UE discontinuously receives MICH using the channel.
Multicasting of the MBMS content is performed over E-PDSCH following E-SCCH. UE analyzes TMGI that is channel-coded on the E-SCCH, and if there is an interesting MBMS content in MBMS services to which the UE subscribes, the UE receives MTCH that transmits the MBMS content using E-PDSCH. When E-SCCH indicates continuation of the MBMS content, the UE periodically receives the corresponding MBMS content until end flag.
<Configuration of E-SCCH>
Various control information transmitted over the E-SCCH includes control information for MBMS content multicasting and general control information (control information necessary for descramble, demodulation and the like) other than the control information for MBMS content multicasting. The table in
In the table shown in
<Configuration of BTS>
The control unit 11 manages operation of all function units of the BTS, and includes a function for managing operation of each functional entity of the BTS. The radio transmission unit 12 includes functions (spreading, modulation/coding, signal amplification and the like) necessary for transmitting broadcast information and associated control information to UE over a radio channel. The cable transmission unit 13 includes functions necessary for receiving, by the BTS, data transmitted from an upper side. The timing monitoring unit 14 includes a function for monitoring transmission timing of the broadcast information and a function for monitoring transmission timing of MBMS content. The data storing unit 15 includes a function for storing MBMS content received from the upper side until transmission timing of the MBMS content. The broadcast information generation unit 16 generates broadcast information including a common parameter and control information necessary for transmitting MBMS content. The E-SCCH generation unit 17 includes a function for generating a control signal for multicasting MBMS content at a transmission timing of MBMS content.
<Configuration of UE>
The control unit 21 manages operation of all functions of the UE, and includes a function for controlling operation of each functional entity of the UE. The radio transmission unit 22 includes functions (descramble, demodulation/decoding and the like) specific to the radio layer for receiving broadcast information and the associated control signal transmitted from the BTS. The broadcast information analyzing unit 23 includes a function for analyzing a common control parameter for MBMS communication included in received broadcast information, and a function for setting the analyzed parameter in the UE. The E-SCCH analyzing unit 24 includes a function for analyzing an identifier that is channel-coded on the associated control signal that is transmitted over the E-SCCH. The timing monitoring unit 25 includes a function for monitoring a transmission timing of the broadcast information and a transmission timing of E-SCCH.
<Operation of BTS>
First, a value (N) of a counter is reset and the counter value is set to be N=0 (step S1). The counter value N is divided by 160 TTI, and it is determined whether the remainder is 0 (step S2). As a result of the determination of step S2, when the remainder is not 0, 1 TTI is added to the counter value N (step S21), and the flow returns to step S2. As a result of determination in step S2, when the remainder is 0, the point of time is a timing for transmitting the broadcast information and the counter value N is reset (step S3). Then, the broadcast information is transmitted using the BCCH (step S4), and the flow for transmitting the broadcast information ends, and returns to step S2. Accordingly, the broadcast information is transmitted every 160 TTI. As mentioned above, the broadcast information also includes “common parameter necessary for receiving MBMS content.”
First, a value (N) of a counter is reset in which the counter value is set to be N=0 (step S1). The counter value N is divided by 200 TTI, and it is determined whether the remainder is 0 (step S2). As a result of the determination of step S2, when the remainder is not 0, 1 TTI is added to the counter value N (step S21), and the flow returns to step S2. As a result of determination in step S2, when the remainder is 0, the point of time is a timing for transmitting E-SCCH and the counter value N is reset (step S3).
Next, it is determined whether there is MBMS content to be multicasted (step S4). As a result of determination of S4, where there is MBMS content to be multicasted, E-SCCH that is channel-coded using TMGI that is assigned to the MBMS content to be multicasted is transmitted (step S5). The E-SCCH includes information listed in the table of
<Operation of UE>
Next, for checking whether there is MBMS content to be multicasted, the UE receives the E-SCCH, and analyzes channel coding of the E-SCCH (step S4). Based on the result of analyzing of the channel coding of the E-SCCH, it is determined whether there is MBMS content that the user has subscribed to and is interested in (step S5). By the way, in step S5, for example, information on MBMS content is displayed on a display, and, based on the information, the user instructs the UE to receive or not to receive the MBMS content. Accordingly, the UE can determine presence or absence of the MBMS content that the user is interested in.
As a result of determination in step S5, when there is interesting MBMS content, receipt of the MBMS content starts (step S6). The receipt of the MBMS content continues over the E-PDSCH until an end flag is shown on the E-SCCH. After that, the flow returns to step S2, and a procedure described above is repeated. When there is only MBMS content that the user does not subscribe to or the user is not interested in as a result of determination in step S5, the flow returns to step S2, and a procedure described above is repeated.
In the second embodiment of the present invention, same MBMS contents that are transmitted from a cell (serving cell) where a UE is currently residing and from an adjacent cell (non serving cell) are combined. In the present embodiment, it is desirable that a plurality of base stations are synchronized with each other in terms of time. The radio transmission unit 22 of the UE used in the present embodiment includes a function for causing a plurality of descramble and demodulation functions to operate at the same time such that the UE can receive a plurality of E-SCCHs transmitted from adjacent cells at the same time. The “cell” of the present embodiment may be defined to include a plurality of “sectors.” Alternatively, “cell” may be used to mean the same meaning as “sector.” In any cases, the present invention can be used. In the following description, “cell” and “sector” are used synonymously as a matter of convenience.
The UE identifies a cell (other cell), other than the own cell, that satisfies predetermined conditions (receive power, SIR and the like), receives E-SCCH transmitted in other cell, combines MBMS contents in phase that are transmitted at the same timing (performs soft combining) so that the UE can combine them efficiently. It is desirable that transmission rates and radio frequencies and the like are the same in the E-SCCHs transmitted from adjacent cells. In addition, it is desirable that transmission rates, radio frequencies, GI lengths and the like of the MBMS contents transmitted over the E-PDSCH are the same.
Before transmitting the shared radio transmission channel (E-PDSCH), the BTS transmits a shared control channel (E-SCCH) associated with it every predetermined transmission time interval (TTI). The UE in an active state or in a CELL_DCH state normally receives the E-SCCH every TTI. The UE that is in a state (such as IDLE, CELL_PCH and the like) that is not the active state discontinuously receives E-SCCH specified by the frame timing for MBMS, for example. This state is also called DRX (Discontinuous Receiving) state.
The UE performs power measurement for an adjacent cell to determine whether a received signal code power (RSCP) of CPICH from other cell exceeds a predetermined threshold vale. Although RSCP is used as an example, other amounts (such as SIR) representing signal quality may be used. When the UE is in the DRX state, the power of the adjacent cell is measured at a timing of DRX and the like. When a cell that provides RSCP exceeding the threshold value is found, the UE starts to receive E-SCCH of the adjacent cell in addition to E-SCCH of the serving cell.
When there is MBMS content to be multicasted at a frame timing for MBMS, the BTS transmits E-SCCH for which channel coding has been performed using TMGI in which the TMGI is assigned to the MBMS content to be multicasted. The E-SCCH is provided with at least a flag indicating continuity of the MBMS content. The E-SCCH may further include information such as a repetition number of the corresponding MBMS content, AMC information, GI length of OFDM.
Multicasting of MBMS content is performed over E-PDSCH that follows the E-SCCH. The UE analyzes the TMGI that is channel-coded to the E-SCCH, so that when there is interesting MBMS content in MBMS services that the UE subscribes to, the UE receives MTCH that transmits the MBMS content using the E-PDSCH. When E-SCCH shows continuity of the MBMS content, the UE periodically receives the corresponding MBMS content until reaching the end flag.
The present invention is not limited to the specifically disclosed embodiments, and variations and modifications may be made without departing from the scope of the invention.
The present application claims priority based on Japanese patent application No. 2005-264417, filed in the JPO on Sep. 12, 2005 and the entire contents of the Japanese patent application No. 2005-264417 is incorporated herein by reference.
Number | Date | Country | Kind |
---|---|---|---|
2005-264417 | Sep 2005 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/JP2006/317906 | 9/8/2006 | WO | 00 | 3/12/2008 |