The present invention relates to the communication field, and particularly relates to a method of sharing the load of a base station in a mobile communication system.
In the mobile communication system, the transmission, reception and processing of the wireless signals are performed by base stations (BTS). As shown in
In the traditional BTS system, since the baseband processing subsystem, RF subsystem and antenna are geographically located together, therefore each cell must be equipped with enough channel processing resources to fulfill each cell's peak traffic, and therefore needs a higher cost. To solve this problem, there is proposed a BTS structure with a low cost, a centralized BTS system based on remote antenna units, and more implementation details were disclosed in PCT patent WO9005432 “Communications system”, U.S. Pat. No. 5,657,374 “Cellular system with centralized base stations and distributed antenna unit”, U.S. Pat. No. 6,324,391 “Cellular communication with centralized control and signal processing”, China patent CN1211889 “duplex open air BTS transceiver subsystem using a hybrid system”, and United States Patent application US20030171118 “Cellular radio transmission apparatus and cellular radio transmission method”.
As shown in
However, for the centralized BTS system adopting remote antenna units and implemented according to existing techniques, there is still a certain channel processing resource allocation problem, As noted earlier, in the centralized BTS system adopting remote antenna units, since the reusing of the channel processing resources by multiple cells, the actual total amount of the channel processing resources may be less than the total peak traffic of all the cells. For example, a centralized BTS system supports maximal 10 remote antenna units, each of which corresponds to one cell. Suppose that each cell's peak traffic is equivalent to 96 service channels, the total peak traffic of all the cells is equivalent to 960 service channels. In consideration of reuse of the processing resources, the number of the actually configured channel processing units is less than the total peak traffic. Thus, when all the cells in a centralized BTS system reach to a very high traffic, the centralized BTS system's channel processing resources will not be able to fulfill the actual traffic demand, thereby causing call loss which impacts the quality of service.
Although increasing the amount of the centralized BTS system's channel processing resources may reduce the occurrence frequency of this problem, it counteracts the centralized BTS system's advantage of higher resource utilization resulted from the reuse of the channel processing resources by multiple cells, and therefore, for this problem, the present invention propose a method which allows for adopting as low as possible configured channel processing resources, and at the same time, is able to avoid call loss caused by inadequate resources.
An object of the present invention is to provide a method which allows for adopting as low as possible configured channel processing resources, and at the same time, is able to avoid call loss caused by inadequate resources, so as to optimize the wireless base station system's resource allocation and solve the above problem.
According to a aspect of the present invention, there is provided a wireless base station which is operatively connected to a wireless network control device, another wireless base station and a subscriber unit, comprising: a first communication device for receiving downlink data frames from the wireless network control device and transmitting uplink data frames to the wireless network control device; a second communication device for transmitting downlink wireless signals to the subscriber unit and receiving uplink wireless signals from the subscriber unit; a channel processing device for processing the downlink data frames into the downlink wireless signals and processing the uplink wireless signals into the uplink data frames; and a signal distribution unit for supplying the downlink data frames and the uplink wireless signals to the channel processing device for processing, characterized in that, the wireless base station further comprising a third communication device for communicating with the another wireless base station, and the signal distribution unit further comprising: forwarding control means for transmitting the downlink data frames or uplink wireless signals to the another wireless base station and receiving corresponding downlink wireless signals or uplink data frames from the another wireless base station, through the third communication device.
According to another aspect of the present invention, there is further provided a wireless base station system comprising a first base station, a second base station and a wireless network control device, the first base station comprising: a first communication device for receiving downlink data frames from the wireless network control device and transmitting uplink data frames to the wireless network control device; a second communication device for transmitting downlink wireless signals to the subscriber unit and receiving uplink wireless signals from the subscriber unit; a channel processing device for processing the downlink data frames into the downlink wireless signals and processing the uplink wireless signals into the uplink data frames; and a signal distribution unit for supplying the downlink data frames and the uplink wireless signals to the channel processing device for processing, characterized in that, the first base station further comprising a third communication device for communicating with the second base station, and the signal distribution unit further comprising: forwarding control means for transmitting the downlink data frames or uplink wireless signals to the second base station and receiving corresponding downlink wireless signals or uplink data frames from the second base station, through the third communication device.
According to another aspect of the present invention, there is provided a communication method in a wireless base station which is operatively connected to a wireless network control device, another wireless base station and a subscriber unit, the wireless base station comprising a first communication device, a second communication device, a channel processing device and a signal distribution unit, the method comprising steps: receiving downlink data frames from the wireless network control device through the first communication device; transmitting uplink data frames to the wireless network control device through the first communication device; transmitting downlink wireless signals to the subscriber unit through the second communication device; receiving uplink wireless signals from the subscriber unit through the second communication device; supplying through the signal distribution unit the downlink data frames and the uplink wireless signals to the channel processing device for processing; and processing the downlink data frames into the downlink wireless signals and processing the uplink wireless signals into the uplink data frames in the channel processing device, wherein the wireless base station further comprising a third communication device for communicating with the another wireless base station, and the method is characterized in that the providing step further comprising: transmitting the downlink data frames or the uplink wireless signal to the another wireless base station through the third communication device; and receiving corresponding downlink wireless signals or uplink data frames from the another wireless base station through the third communication device.
According to another aspect of the present invention, there is provided a communication method in a wireless base station system, the wireless base station system comprising a first base station, a second base station and a wireless network control device, the first base station comprising a first communication device, a second communication device, a channel processing device and a signal distribution unit, wherein in the first base station: receiving downlink data frames from the wireless network control device through the first communication device; transmitting uplink data frames to the wireless network control device through the first communication device; transmitting downlink wireless signals to the subscriber unit through the second communication device; receiving uplink wireless signals from the subscriber unit through the second communication device; supplying through the signal distribution unit the downlink data frames and the uplink wireless signals to the channel processing device for processing; and processing the downlink data frames into the downlink wireless signals and processing the uplink wireless signals into the uplink data frames in the channel processing device, wherein the first base station further comprising a third communication device for communicating with the second base station, and the method is characterized in that the providing step further comprising: in the first base station, transmitting the downlink data frames or the uplink wireless signals to the second wireless base station through the third communication device; and in the first base station, receiving corresponding downlink wireless signals or uplink data frames from the second base station through the third communication device.
In an alternative embodiment of the present invention, there are wideband link interfaces between the BTSs. The local BTS connects to a remote end BTS through the above wideband link interface. The wideband link interface comprises a link layer function such as multiplexing/demultiplexing and etc., and a physical link interface. In the present invention, an improved signal distribution unit switches some wireless signals directly to the wideband link interface to share excessive processing loads by another remote end BTS system, thereby avoiding the call loss caused by inadequate resources of the centralized BTS system.
The present invention's advantages also include the ability to realize high usability of the base station system, i.e., when a part or all of a BTS's channel processing resources fail to work, the technology is still able to guarantee the user's access.
The above and/or other aspects, features and/or advantages of the present invention will be further appreciated in view of the following description in conjunction with the accompanying figures, wherein:
The base station and method of the present invention will be described in detail by referring to the accompanying drawings, wherein since the present invention's method relates to cooperating of BSC/RNC and BTSs, the method steps of the present invention will be described in connection with the explanation of BSC/RNC and BTS.
Taking a WCDMA system for example, the uplink signals from one cell include a plurality of uplink physic channels undergone the uplink complex scrambling and spreading, and when adopting the signal distribution manner as shown in
Since there is a certain connection between the uplink and downlink signals, for example in the WCDMA system, uplink and downlink physic channels satisfy a certain timing relation, and the generation and processing of some control commands of the physical layer, such as power control command (TPC), feedback indication in the closed loop transmission diversity and site selection diversity transmission (SSDT), and etc., both require that the processing of the uplink and downlink physic channels is performed by the same BTS. Therefore, when adopting the signal distribution manner as shown in
In the present invention, the benefit of adopting the signal distribution manner as shown in
According to a preferable embodiment of the present invention, the wideband link interface connected to the remote end BTS (s) comprises link layer functions such as multiplexing/demultiplexing and etc., and a physical link interface such as photoelectric conversion and electrooptical conversion module, light transceiver and etc. when using optical fiber.
For the convenience of specific description, the specific implementation procedure of the present invention will be described by taking a WCDMA FDD system as an example. In the WCDMA system, each BTS, i.e., node B (NodeB) has a local frame timer (BFN) to which the system frame timing (SFN) of the cell the BTS belongs to is identical, SFN and BFN are at a range of 0˜4095 frames, all the wireless channels of the cell are established with this as a reference (see protocols such as TS25.402, TS25.211 and etc. for more details).
According to the above, when a part or all of signals of a cell the local NodeB belongs to are distributed to the remote end NodeB via the wideband link between the NodeBs for processing, in order for the remote end NodeB to be able to correctly receive and transmit the cell's wireless signals, the local NodeB should transfers its BFN/SFN timing information to the remote end NodeB, thus the remote end NodeB is able to obtain the correct timing.
To guarantee the down link orthogonality, when using the signal distribution manner as shown in
For implementing the processing resource sharing and load-sharing according to the present invention between the BTSs, the interface between the NodeB should transmit control signaling and user plane data frames between the NodeBs, wherein the control signaling between the NodeBs includes operating commands such as processing resource query, distribution control, establishment, modification, release and etc. The processing resource query command is used to query the processing resource status of the remote end NodeB. The establishment command is used to control the remote end NodeB to establish a processing task to share the load of the local NodeB. The modification command is used to adjust the processing task and processing resource allocation on the remote end NodeB. The release command is used to finish the processing task and release processing resources on the remote end NodeB. The allocation control command is used to configure a variety of attributes relating to the processing task on the remote end NodeB. The user plane data frame transmission mainly includes the downlink data frames forwarded from the RNC by the local NodeB, and the uplink data frames returned to the local NodeB which are formed by processing of the remote end NodeB, and in addition, the user plane may also include an in-band signalling control frame for purpose of the preact control, the time delay estimation of the wideband transmission link between the NodeBs and etc. One skilled in the art knows that besides the above method, there are other methods which are able to satisfy the timing requirement.
For the wireless BTS structure proposed according to the present invention for supporting processing resource sharing and load-sharing, there are a great variety of networking modes and load-sharing control policies.
According to the present invention, a possible networking mode is using plane structure, i.e., one BTS may connect to a plurality of adjacent BTSs, and then may perform the allocation control on the processing resources in the following manner: One method is to make the BSC/RNC to assume the control on the processing resource allocation and the load-sharing; Another method is to have the BTSs specifically configured with processing resource allocation management right to assume the control on the processing resource allocation and the load-sharing; a further method is to have the BTSs supporting processing resource sharing and load-sharing to perform the control on the processing resource allocation and the load-sharing through a certain dynamic negotiation procedure. The first method requires the BSC/RNC to obtain real time resource status of relevant BTSs, and therefore needs to change the original standardlized interface protocol between the BTS and the BSC/RNC; the second method is easier to implement; the third method is able to implement better processing resource allocation control, but has a greater implementation complexity.
In a word, the load-sharing control policy may be controlled by the BSC/RNC, or by one of the local BTS, the remote end BTS and other BTS(s), or through the negotiation between the BTSs, i.e., deciding the channel processing to be forwarded and the BTS which is in charge of sharing the forwarded channel processing. The local BTS and the remote end BTS perform channel processing forwarding and corresponding processing under the control of the load-sharing control policy.
In one embodiment, the load-sharing control policy may dynamically determine the channel processing to be forwarded and the BTS in charge of sharing the forwarded channel processing according to the traffic of the BTS and the amount of available channel processing resources of the BTS.
In one embodiment, when the channel processing resources of the local BTS are insufficient to complete its all channel processing, for example when a traffic peak occurs or some channel processing resources fail, the load-sharing control policy starts.
According to the present invention, another possible networking mode is using layered structure, i.e., one of a certain number of BTSs is configured as the load-sharing center having centralized channel processing resources, and relevant BTS processing resource allocation and load-sharing control are assumed by the center. The benefit of such a network structure is the simple control and the easy network planning and configuration.
According to the present invention, other kind of possible networking mode is to interconnect in pairs the geographically adjacent BTSs, as shown in
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN04/00174 | 3/4/2004 | WO | 6/14/2007 |