The present disclosure relates to methods and devices for managing a cellular radio network.
Cellular radio networks allow for mobile communication all over the world. In some deployments of a cellular radio networks a so-called Combined Cell is configured. Combined Cell allows the operator to configure multiple transceivers with partially overlapping coverage where the multiple transmitters utilize the same carrier signal. The same downlink signal is then transmitted from each transmitter in the downlink, and the uplink signal is combined from the different transceivers. In other words the signal from one radio base station is transmitted/ received via multiple uplinks/downlinks to spatially separated transmitters/receivers on the network side. Typically a Combined Cell configuration is employed to cover blind spots underneath a macro sector, or to reduce the required number of separate cell carriers for covering a larger area, see also. Third Generation Partnership Project (3GPP) TSG RAN WG1 Meeting #71 R1-125220, Combined Cell Deployment Scenarios in Heterogeneous Networks, New Orleans, USA, 12-16 Nov. 2012.
One typical scenario where combined cell can be used is when a Remote radio Unit (RRU) is combined with a macro sector, which can be deployed in blind spots or outdoor hot spots near macro cells. Another typical scenario where combined cell can be used is in a scenario with limited coverage, such as high mobility (railways).
Compared to separate cells, the combined cell can have fewer cells controlled by the Radio Network Controller /Operations Support System RNC/OSS, less mobility signaling, and it can have smooth cell split if traffic increases.
In some cases, one or many of the multiple transceivers can be muted to reduce inter-cell interference. In other scenarios different signals to different UE can be transmitted from different transceivers using the same radio resource when there is large spatial isolation, which can get spatial reuse gain. The spatial isolation can be measured from uplink.
Handover Procedure
In
There is a constant desire to improve performance in cellular radio networks.
Hence, there is a need for a method and an apparatus that provide an improved utilization of resources in a cellular radio network, in particular a WCDMA radio network.
It is an object of the present invention to provide an improved method and apparatus for improving utilization of resources in a cellular radio network, in particular a WCDMA radio network.
This object and others are obtained by the method and device as set out in the appended claims.
As has been realized by the inventors in a combined cell, the Primary CPICH is used for mobility measurement, and the dedicated pilot signal can be used for the data demodulation for future UEs. In other words Combined cell might be a new feature in Release 12. The futures UEs can follow release 12 requirements. After handover from a combined cell, the UE may switch to another dedicated pilot signal in a target combined cell for data demodulation. In accordance with some embodiments signaling is used to support the switch from one combined cell to another combined cell. Further, the dedicated pilot could use different scramble code from the scramble code for Primary CPICH.
In accordance with some embodiments a method in a network node of a cellular radio network, such as a WCDMA network, is provided. When a handover of a User equipment from a first combined cell to a second combined cell is performed information is transmitted from a network node to the UE informing the UE about a dedicated pilot signal used in the second combined cell. Hereby an improved handover can be achieved. In accordance with some embodiments the information to the UE about the dedicated pilot signal used in the second combined cell is transmitted from the serving Radio Network Controller during the handover. In some alternative embodiments the information to the UE about the dedicated pilot signal used in the second combined cell is transmitted from a node in the second combined cell after the handover.
The disclosure also extends to devices, such as User Equipments and network nodes for use in a cellular radio system adapted to perform the methods as described herein. The devices can be provided with a controller/controller circuitry for performing the above processes. The controller(s) can be implemented using suitable hardware and or software. The hardware can comprise one or many processors that can be arranged to execute software stored in a readable storage media. The processor(s) can be implemented by a single dedicated processor, by a single shared processor, or by a plurality of individual processors, some of which may be shared or distributed. Moreover, a processor or may include, without limitation, digital signal processor (DSP) hardware, ASIC hardware, read only memory (ROM), random access memory (RAM), and/or other storage media.
The present invention will now be described in more detail by way of non-limiting examples and with reference to the accompanying drawings, in which:
In
When the UE handovers from one combined cell to another combined cell, the demodulation of the received data can be handled in different manners.
In accordance with some embodiments a direct switch to a dedicated pilot signal in the target combined cell can be performed as depicted in
First, the UTRAN informs UE of the neighboring cell information. Next the UE measures CPICH power and time delay from adjacent cells. Then the UE reports measurements to
UTRAN. Then the UTRAN decides the handover strategy. These steps correspond to existing mechanisms for handover as described herein above.
In
In accordance with embodiments of
After synchronization, target cell starts transmission using the dedicated pilot signal, the transmission of the downlink signal can take place using some or all of the different transmit antennas available for downlink transmission.
Then the serving Radio Network Controller (RNC) of the UTRAN informs UE the “active set update” in a step 8a. The “active set update” message also comprises information about the dedicated pilot signal of the target cell.
Finally, the UE starts receiving and responds with “active set update complete”. The UE now has knowledge about the dedicated pilot signal of the target cell.
In accordance with some embodiments a switch to common pilot first and then switch to a dedicated pilot signal in the target combined cell can be performed as depicted in
First, the UTRAN informs UE of the neighboring cell information. Next the UE measures CPICH power and time delay from adjacent cells. Then the UE reports measurements to UTRAN. Then the UTRAN decides the handover strategy. These steps correspond to existing mechanisms for handover as described herein above.
In
After synchronization steps 6 and 7, the target cell starts the transmission TX, and the UTRAN informs the UE using the “active set update ” in step 8 and the UE starts receiving RX and responds with “active set update complete” in a step 9.
Then in a step 10, the target combined cell informs the UE the information of the dedicated pilot, and starts to transmit the data with dedicated pilot using some (or all) of the antennas available for downlink transmission.
In accordance with some embodiments, when the UTRAN informs UE of the neighboring cell information, the neighbor cell information can be different for different UEs since the UE uses different dedicated pilot and rough position can be know by UTRAN. In other words the neighbor cell information can be user specific and instead of cell specific.
In
In
Further,
Using the methods and devices as described herein will provide a more efficient handover in when a UE is handed over form one combined cell to another combined cell.
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/CN2013/071817 | 2/25/2013 | WO | 00 |