Title of Invention

"A HANDOVER METHOD IN MOBILE COMMUNICATION SYSTEM."

Abstract The present invent relates to a hand over method in mobile communication system, it includes: during mobile terminal keeps communication with certain base station before hand over, mobile terminal measures the adjacent base station signals, ensures candidate target base station; mobile terminal transmits measure report to network terminal; inserts pre-synchronization process between mobile terminal and target base station includes: mobile terminal transmits training sequence to target base station at the same time with which mobile terminal transmits measure report to network terminal; after the target base station receives the training sequence, transmits the respond message of training sequence to mobile terminal; mobile terminal keeps open loop or close loop up-link synchronization with target base station; network terminal sends the hand over command to mobile terminal; the mobile terminal hands over to target base station base on the hand over command; releases the wireless link between the mobile terminal and previous base station. By the built process of wireless link synchronization in hand over is advanced to measure phase, it shortens time of hand over process, saves system resource, improves the reliability and quality of hand over.
Full Text Field of the Technology
The present invention relates to mobile communication technology, more particularly to handover method of mobile communication, applicable for designing open-loop or closed-loop synchronization technology of digital mobile communication system. By applying the pre-synchronization technology of the present invention in handover, handover performance of system can be improved.
Background of the Invention
To guarantee continuity of communication service when the mobile terminal is moving or the location of the mobile terminal is changing, all wireless communication systems adopt handover technology, which comprises soft-handover, hard-handover and handover baton handover, etc.
Figure 1 briefly illustrates flow of the current handover modes. (1) Assuming that wireless link service connection is already established between a mobile terminal and base station 1, and communication is maintained; (2) the mobile terminal measures the wireless signal from adjacent cell, mainly measuring power, distance and voice quality since these three values determine the handover threshold, then compares the handover threshold thereof with handover decision criterion established in the mobile terminal, if the handover threshold thereof exceeds the decision threshold, the mobile terminal reports the measurement report containing handover request and measuring results to network; the network integrates the reported power, distance and voice quality, and figures out a handover threshold, then compares this handover threshold with handover decision threshold stored in the network, performing handover decision and determining whether to switch; (3) when deciding to perform handover, the network sends handover command to the mobile terminal and switches the mobile terminal to base station 2 with a prepared wireless link; (4) wireless link synchronization is established between the mobile terminal and target base station 2; (5) wireless link service connection is established between

the mobile terminal and the target base station 2; (6) after the mobile terminal sends out confirmative information of handover success, the wireless link between the mobile terminal and base station 1 is released.
In most of CDMA systems, soft-handover or hard-handover is adopted, whose characteristics are: before handover, besides maintaining communication with the handover-forward base station (i.e. base station 1), mobile terminal has to measure signals of adjacent cells; during handover procedure, there is a synchronization-establishing procedure between mobile terminal and target base station (i.e. base station 2).
For the existing handover of mobile communication systems, when the base stations are already synchronous or synchronization variation is known and constant, the uplink synchronization time can be precisely calculated according to the measured values of base station downlink signals measured by mobile terminal. If synchronization is not implemented among the base stations, in most cases, wireless link synchronization between mobile terminal and target base station will not be established until not only the to-be-switched-to target base station is determined but also network decides to perform handover, so the synchronization procedure occupies the time of handover. As mobile terminal is in fast-moving state or continuous location-changing state, excessive handover time occupation will inevitably affect the handover success rate and reliability thereof, and decrease handover quality.
Summary of the Invention
The main object of the present invention is to devise a handover method in mobile communication system, so as to greatly decrease the occupied time during handover procedure, and to increase handover reliability, success rate and handover quality.

The technical scheme of the present invention is implemented as follows: a handover method in mobile communication system, comprising:
A. measuring signals of adjacent cells by a mobile terminal while
maintaining communication with a handover-forward base station, and
confirming at least a candidate handover target base station to be switched to
by the mobile terminal;
B. sending a measurement report of a target base station satisfying a
handover decision criterion to network by the mobile terminal, and performing
pre-synchronization procedure with the target base station by the mobile
terminal;
C. sending a handover command to the mobile terminal by the network
when the network determining to perform a handover according to the
handover decision criterion;
D. directly handover to the target base station according to the handover
command and releasing the wireless link with the handover-forward base
station by the mobile terminal;
wherein the pre-synchronization procedure:comprises: sending a training sequence to the handover target base station by the mobile terminal when sending the measurement report to the network returning a training sequence response message to the mobile terminal by the handover target base station after receiving the training sequence; and maintaining open-loop or closed-loop uplink synchronization between the mobile terminal and the handover target base station.
Wherein, in step A, the mobile terminal performing the measuring by receiving and detecting downlink pilot timeslot of adjacent cells, maintaining the downlink signal synchronization with each candidate handover target base station, and establishing downlink synchronization with each candidate handover target base station in open-loop mode.
Wherein, the training sequence response message being directly sent to the mobile terminal in signaling mode by the target base station.

Wherein, the training sequence response message being sent to the network in signaling mode by the target base station first, and then being sent to the handover-forward base station in signaling mode by the network, and finally being sent to the mobile terminal in signaling mode by the handover-forward base station.
Wherein, the training sequence response message comprising synchronization information and power adjustment information.
Wherein the pre-synchronization procedure between the mobile terminal and the target base station further comprising:
Sending uplink pilot code to the target base station during uplink pilot time slot by the mobile terminal with the training sequence and adopting estimated transmission timing and transmission power, and establishing uplink synchronization with the target base station in open-loop mode by the mobile terminal;
Sending the command of timing adjustment and/or power adjustment concerning the mobile terminal to the mobile terminal by the target base station with using the training sequence response message and according to the received uplink pilot code, amending the timing and/or transmission power concerning the target base station according to the command by the mobile terminal, and then establishing uplink synchronization with the target base station in closed-loop mode by the mobile terminal.
The method further comprising:
the mobile terminal recording the starting time td0 of downlink pilot time slot of the target base station and the starting time tu0of the mobile terminal's own uplink pilot time slot when establishing synchronization; the mobile terminal repeatedly executing step A and B, according to the received change of starting time td0 of downlink pilot time slot of the target base station, the mobile terminal determining the change of starting time tu0 of the mobile

terminal's uplink pilot time slot, until the mobile terminal receiving handover command, tdtd0NxTΔ, tutu0NxT2Δ, wherein N is the passed sub-frame number, T is length of each sub-frame, and Δ is the needed compensatory time variation, namely the variation when less than T.
Wherein, in the step E, the release information of wireless link between the mobile terminal and the handover-forward base station being directly sent to the handover-forward base station by the mobile terminal.
Wherein, in the said step E, the release information of wireless link between the mobile terminal and the handover-forward base station being sent to the network by the target base station first, and then sent to the handover-forward base station by the network.
As to the method of the present invention, while a mobile terminal is sending measurement report to network, by sending a special training sequence to target base station and according to the returned adjustment information, the mobile terminal completes handover preparation and establishing synchronization process, then maintains this synchronization by adopting open-loop or closed-loop mode. When the network sends out handover command, the mobile terminal can be directly switched to the allocated target base station without reestablishing access and synchronization.
As to time division duplex TD-SCDMA (Time Division Synchronous Code Division Multiple Access) system, for this open-loop or closed-loop synchronization, uplink timing adjustment needed for implanting synchronization is precisely acquired by measuring timing changes of downlink pilot time slot of target base station, and this is completed simply and accurately.

In method of the present invention, the establishment of wireless link synchronization during handover is pre-acted during measuring period, so handover procedure time is reduced, handover required system sources are saved, and handover reliability and handover quality of communication service are advanced. In addition, through network's returning response of training sequence to mobile terminal, and by adopting the mode of network releasing link of original communication base station, requirement of mobile terminal design is simplified, namely all signaling information before handover is transferred through the handover-forward base station, all signaling information after handover is transferred through the target base station, without requesting mobile terminal to maintain signaling connection with the base station before handover and the one afterward simultaneously.
Brief Description of the Drawings
Figure 1 is a flowchart illustrating the handover process of existing technology;
Figure 2 is a flowchart illustrating the handover process of the present invention;
Figure 3 is another flowchart illustrating the handover process of the present invention;
Figure 4 is the diagram illustrating frame structure of TD-SCDMA system;
Figure 5 is composed of figure 5A and figure 5B, wherein figure 5A takes TD-SCDMA system for example and illustrates time-axis distribution diagram of both starting time of target base station's downlink pilot time slot and starting time of mobile terminal's up link pilot time slot when synchronization is being established; figure 5B takes TD-SCDMA system for example and illustrates time-axis distribution diagram of both starting time of target base

station's downlink pilot time slot and starting time of mobile terminal's up link pilot time slot after a period of Nx5ms(T).
Embodiments of the Invention
The present invention will be described in detail hereinafter with reference to the accompanying drawings.
With reference to figure 2, a simplified handover process of the present invention is illustrated.
(1) While maintaining communication with the handover-forward base station (base station 1), a mobile terminal needs to measure signals of adjacent cell, according to the measured results, the mobile terminal will choose several base stations as handover candidate target base stations. During this period, other than maintaining normal communication with handover-forward base station (the base station 1), the mobile terminal also needs to measure necessary parameters of the handover candidate target base stations, including power, and distance, and real-timely updates the candidate target collection.
(2) When the mobile terminal detects that the measured results of a certain candidate target base station meet certain handover requirement according to handover decision criterion, the mobile terminal will report the results as a measurement report to network and real-timely refresh the measured results.
(a) Meanwhile, according to the measured results, the mobile terminal sends some training sequence (i.e. preamble training sequence) to a target base station (the base station 2), and then waits for training sequence response message from the base station 2 (synchronization and power adjustment information can be included in training sequence response message for transmission);

(b) The training sequence response message can be transmitted to the
mobile terminal by the target base station (the base station 2) in signaling mode;
(c) Afterwards, while maintaining wireless link connection with handover-
forward base station (the base station 1), the mobile terminal also maintains
open-loop or closed-loop uplink synchronization with the target base station
(the base station 2) according to measured results of the target base station (the
base station 2).
(3) When determining to perform handover according to handover
decision criterion, the network will send handover command to the mobile
terminal.
(4) The mobile terminal directly switches to the link resource allocated by the target base station (the base station 2) according to handover command, and continues communication.
(5) The mobile terminal releases the wireless link with handover-forward base station (the base station 1).
With reference to figure 3, the illustration difference of figure 3 and figure 2 is the arriving procedure of the training sequence response message to mobile terminal, namely the training sequence response message can also be returned to the mobile terminal through the following steps:
(bl) firstly, the target base station (the base station 2) sends training sequence response message to the network in signaling mode; (b2) then the network sends the training sequence response message to the handover-forward base station (the base station 1); (b3) finally, the handover-forward base station (the base station 1) sends the training sequence response message to the mobile terminal. In another word, the network notifies the mobile terminal in signaling

mode through the handover-forward base station (the base station 1). The advantage of this mode is: after finishing sending training sequence by the mobile terminal, there is no need for mobile terminal to wait the training sequence response message, so as to maintain communication with the handover-forward base station (the base station 1); through network's returning the training sequence response to the mobile terminal, the design requirement of the mobile terminal can be simplified.
Besides, after the mobile terminal establishes and switches to wireless link with the target base station (the base station 2) (4), the link release information (5) concerning the mobile terminal and the handover-forward base station (the base station 1) can firstly be sent to the network by the target base station (the base station 2), and then sent to the base station 1 by the network, as is shown by arrow 51 and 52 in figure 5. By the way of releasing the handover-forward base station's link through the network, design requirement of the mobile terminal can be simplified, namely all response information before handover being transferred through the handover-forward base station (from the base station 2 to the network, then to the base station 1, then to the mobile terminal), and all release information 51 and 52 being transferred through the target base station (from the base station 2 to the network and then to the base station 1).
Hereinafter, taking TD-SCDMA system for example, open-loop or closed-loop synchronization technology of the present invention will be introduced.
With reference to figure 4, frame structure of TD-SCDMA system is shown. In the frame structure, downlink pilot time slot (DwPTS) is set for providing system's downlink synchronization, also, uplink pilot time slot (UpPTS) is set for implementing uplink synchronization performance. Protection time slot G is set between downlink pilot time slot (DwPTS) and uplink pilot time slot (UpPTS). In terms of this frame structure, pre-synchronization of TD-SCDMA system can be implemented as follows:

During the period of the mobile terminal being connected with the handover-forward base station, the mobile terminal continuously measures signals of adjacent cells, and confirms the possible candidate handover target base stations according to the measured results;
By receiving and detecting downlink pilot timeslot of each candidate target base station, the mobile terminal finishes measuring and maintains downlink signal synchronization with this candidate target base station, and establishes open-loop downlink synchronization during this period;
According to the measured results, by adopting estimated transmission timing and transmission power and by using training sequence, the mobile terminal transmits uplink pilot frequency code to the target base station in uplink pilot timeslot, and starts establishing uplink synchronization in open-loop mode.
According to the received uplink pilot frequency code, the candidate target base station sends out power adjustment and/or timer adjustment command for the mobile terminal by using training sequence response, then the mobile terminal amends the transmission timing and/or transmission power for the candidate target base station and finishes establishing uplink synchronization in closed-loop mode.
With reference to figure 5, after the above process, as is shown in figure 5A, when the synchronization is established, the mobile terminal records starting time td0 of downlink pilot timeslot (DwPTS) of the target base station and the starting time tuo of the mobile terminal's uplink pilot timeslot (UpPTS);
before receiving handover command, besides maintaining normal communication with the base station 1, the mobile terminal also continues to

measure signals of adjacent cells, for instance, after Nx 5ms, according to the change of received starting time td of the candidate target base station's downlink pilot timeslot (DwPTS), namely tdtdoNx5msΔ (wherein, N is the passed sub-frame number, 5ms (T) is length of each sub-frame, Δ is the needed compensatory time variation (illustrated as total time variation divided by sub-frame length T is N, and quotient thereof is Δ, where total time variation means difference between original synchronous signal time and current synchronous signal time), and Δ is the variation value when timing is less than 5ms, when timing is exactly 5ms, Δ=0), changing of starting time tu of uplink pilot timeslot (UpPTS) of the mobile terminal is determined. When variation A is measured, changing of starting time tu of uplink pilot timeslot (UpPTS)of the mobile terminal can be acquired with requirement of maintaining synchronization, and this new starting time tutu0Nx5ms2Δ (including a Δ delayed by downlink pilot timeslot and another A delayed by the uplink pilot timeslot witch is about to take place). As is shown in figure 5B. The above mentioned open-loop synchronization technology is specially designed for the present invention, and is a technology not adopted in any current mobile communication system.
Since TD-SVDMA system is time division duplex, transmission conditions of uplink and downlink are the same, precision of this open-loop or closed-loop is quite accurate. The above-mentioned measuring procedure will be performed more than once, and variation value Δ used for timing modification will also be updated in time.
In figure 2 and 3, when receiving handover command (3) from the network, the mobile terminal has got synchronization with the target base station (the base station 2), and can communicate with the target base station (the base station 2) using the time slot and code channel allocated by system, without the need of a synchronization establishment procedure, so that service data are not to be intermitted.

Although soft handover and hard handover are different in the precedence order of new link establishment and original link release, in terms of adopting pre-synchronization technical scheme part in handover as is mentioned in the present invention, it is totally the same for soft handover and hard handover. The scheme of the present invention is applicable for the situation that base stations are synchronous or synchronization deviation is fixed and known, and also applicable for system without establishing synchronization.
The pre-synchronization technology of the present invention can be applied in handover technologies like soft handover, hard handover and relay handover.




We Claim:
1. A handover method in mobile communication system, comprising:
a. measuring signals of adjacent cells by a mobile terminal while
maintaining communication with a handover-forward base station,
and confirming at least a candidate handover target base station to be
switched to by the mobile terminal;
b. sending a measurement report of a target base station satisfying a
handover decision criterion to network by the mobile terminal, and
performing pre-synchronization procedure with the target base
station by the mobile terminal;
c. sending a handover command to the mobile terminal by the network
when the network determining to perform a handover according to
the handover decision criterion;
d. directly handover to the target base station according to the handover
command and
e. releasing the wireless link with the handover-forward base station by
the mobile terminal;
wherein the pre-synchronization procedure comprises:
sending a training sequence to the handover target base station by the mobile terminal when sending the measurement report to the network returning a training sequence response message to the mobile terminal by the handover target base station after receiving the training sequence; and maintaining open-loop or closed-loop uplink synchronization between the mobile terminal and the handover target base station.
2. The handover method in mobile communication system as claimed in
claim 1, wherein in step a,
- the mobile terminal performs the measuring by receiving
and detecting downlink pilot frequencies of adjacent cells,
- maintains the downlink signal synchronization with each candidate handover target base station, and
- establishes downlink synchronization with each candidate handover target base station in open-loop mode.

3. The handover method in mobile communication system as claimed in claim 1, wherein the training sequence response message is directly sent to the mobile terminal in signaling mode by the target base station.
4. The handover method in mobile communication system as claimed in claim 1, wherein the training sequence response message is sent to the network in signaling mode by the target base station first, and then sent to the handover-forward base station in signaling mode by the network, and finally sent to the mobile terminal in signaling mode by the handover-forward base station.
5. The handover method in mobile communication system as claimed in claim 1 or claim 3 or claim 4, wherein the training sequence response message comprises synchronization information and power adjustment information.
6. The handover method in mobile communication system as claimed in claim 1, wherein the pre-synchronization procedure between the mobile terminal and the target base station comprising:
sending uplink pilot frequency code to the target base station during pilot timeslot by the mobile terminal with the training sequence and adopting estimated transmission timer and transmission power, and establishing uplink synchronization with the target base station in open-loop mode by the mobile terminal;
sending the command of timing adjustment and/or power adjustment concerning the mobile terminal to the mobile terminal by the target base station with using the training sequence response message and according to
the received uplink pilot frequency code, amending the timing and/or transmission power concerning the target base station according to the command by the mobile terminal, and then establishing uplink synchronization with the target base station in closed-loop mode by the mobile terminal.
7. The handover method in mobile communication system as claimed in
claim 1, wherein
a. the mobile terminal repeatedly executes step A and B, according to
the received change of starting time td0 of downlink pilot timeslot of
the target base station as recorded by the mobile terminal when
establishing synchronization;
b. the mobile terminal recording the starting time tuo of the mobile
terminal's own uplink pilot timeslot when establishing
synchronization;
c. the mobile terminal determining the change of starting time tu0 of the
mobile terminal's uplink pilot timeslot, until the mobile terminal
receiving handover command, td = td0 + NxT + A,
tu = tu0 + NxT - 2A, wherein N is the passed sub-frame number, T is
length of each sub-frame, and A is the needed compensatory time variation, namely the variation when less than T.
8. The handover method in mobile communication system as claimed in claim 1, wherein in the step e, the release information of wireless link between the mobile terminal and the handover-forward base station is directly sent to the handover-forward base station by the mobile terminal.
9. The handover method in mobile communication system as claimed in claim 1, wherein in the said step e, the release information of wireless link between the mobile terminal and the handover-forward base station
is sent to the network by the target base station first, and then sent to the handover-forward base station by the network.


Documents:

2332-DELNP-2005-Abstract-(25-09-2008).pdf

2332-delnp-2005-abstract.pdf

2332-DELNP-2005-Assignment-(19-08-2011).pdf

2332-DELNP-2005-Cancalled Pages-(25-09-2008).pdf

2332-DELNP-2005-Claims-(25-09-2008).pdf

2332-DELNP-2005-Claims-(29-06-2009).pdf

2332-delnp-2005-claims.pdf

2332-DELNP-2005-Correspondence Others-(19-08-2011).pdf

2332-DELNP-2005-Correspondence-Others-(25-09-2008).pdf

2332-DELNP-2005-Correspondence-Others-(27-08-2008).pdf

2332-DELNP-2005-Correspondence-Others-(29-06-2009).pdf

2332-delnp-2005-correspondence-others.pdf

2332-DELNP-2005-Description (Complete)-(25-09-2008).pdf

2332-delnp-2005-description (complete).pdf

2332-DELNP-2005-Drawings-(25-09-2008).pdf

2332-delnp-2005-drawings.pdf

2332-DELNP-2005-Form-1-(19-08-2011).pdf

2332-DELNP-2005-Form-1-(25-05-2009).pdf

2332-delnp-2005-form-1.pdf

2332-DELNP-2005-Form-16-(19-08-2011).pdf

2332-delnp-2005-form-18.pdf

2332-DELNP-2005-Form-2-(19-08-2011).pdf

2332-DELNP-2005-Form-2-(25-09-2008).pdf

2332-delnp-2005-form-2.pdf

2332-DELNP-2005-Form-3-(25-09-2008).pdf

2332-DELNP-2005-Form-3-(27-08-2008).pdf

2332-delnp-2005-form-3.pdf

2332-DELNP-2005-Form-5-(25-09-2008).pdf

2332-delnp-2005-form-5.pdf

2332-DELNP-2005-GPA-(19-08-2011).pdf

2332-delnp-2005-gpa.pdf

2332-delnp-2005-pct-search report.pdf

2332-DELNP-2005-Petition-137-(27-08-2008).pdf

2332-DELNP-2005-Petition-138-(27-08-2008).pdf


Patent Number 235945
Indian Patent Application Number 2332/DELNP/2005
PG Journal Number 38/2009
Publication Date 18-Sep-2009
Grant Date 09-Sep-2009
Date of Filing 01-Jun-2005
Name of Patentee DA TANG MOBILE COMMUNICATION EQUIPMENT CO., LTD.
Applicant Address P.R. CHINA,OF NO 40 XUE YUAN RD., HAI DIAN DISTRICT,BEIJING 100083, P.R. CHINA.
Inventors:
# Inventor's Name Inventor's Address
1 YANG GUILING, A CHINESE CITIZEN, HAI DIAN DISTRICT, BEIJING 100083, P.R. CHINA.
2 LI CHENGUANG, NO 40 XUE YUAN RD., HAI DIAN DISTRICT, BEIJING 100083,P.R. CHINA.
3 LI FENG,A CHINESE CITIZEN NO 40 XUE YUAN RD., HAI DIAN DISTRICT BEIJING 100083, P.R. CHINA.
4 HU JINLING,A CHINESE CITIZEN, NO 40 XUE YUAN RD., HAI DIAN DISTRICT BEIJING 100083,P.R. CHINA.
5 WANG DARUN, NO 40 XUE YUAN RD., HAI DIAN DISTRICT, BEIJING 100083 , P.R. CHINA,
PCT International Classification Number H04Q7/36
PCT International Application Number PCT/CN2003/001058
PCT International Filing date 2003-12-12
PCT Conventions:
# PCT Application Number Date of Convention Priority Country
1 02155650.4 2002-12-13 China