Component carrier allocation method and device, and computer storage medium with improved communication quality of UE moving at high speed in cell
09602254 ยท 2017-03-21
Assignee
Inventors
Cpc classification
International classification
Abstract
Disclosed are a method, device, and a computer storage medium for component carrier allocation. The method includes that when it is determined that a component carrier which has a frequency exceeding a preset threshold exists in component carriers which are available to be allocated currently in a cell, a FDM of UE in the cell is updated according to the coverage of the component carrier which has a frequency exceeding the preset threshold; and frequency domain priority is determined according to the updated FDM, and the component carrier which has a frequency exceeding the preset threshold is allocated for the UE in the cell according to the frequency domain priority.
Claims
1. A method for component carrier allocation, comprising: when it is determined that a component carrier which has a frequency exceeding a preset frequency threshold exists in component carriers which are available to be allocated currently in a cell, updating a Frequency Domain Metric (FDM) of a User Equipment (UE) in the cell according to coverage of the component carrier which has a frequency exceeding the preset frequency threshold; and determining frequency domain priority according to the updated FDM, and allocating the component carrier which has a frequency exceeding the preset frequency threshold for the UE in the cell according to the determined frequency domain priority, wherein before it is determined that the component carrier which has a frequency exceeding the preset frequency threshold exists in the component carriers which are available to be allocated currently in the cell, the method further comprising: determining the FDM of the UE in the cell as
2. The method according to claim 1, wherein updating the FDM of the UE in the cell according to the coverage of the component carrier which has a frequency exceeding the preset frequency threshold further comprises: when a coverage radius of the component carrier which has a frequency exceeding the preset frequency threshold is greater than or equal to a preset distance threshold r.sub.2, updating FDM of UE which has a distance longer than a preset distance threshold r.sub.1 and shorter than the preset distance threshold r.sub.2 from a base station to which the cell belongs to aFDM.sub.1, and updating FDM of UE which has a distance longer than or equal to the preset distance threshold r.sub.2 from the base station to which the cell belongs to bFDM.sub.2, wherein FDM.sub.1 and FDM.sub.2 are the FDM of the UEs before update, a is greater than 1, and b is greater than a; when the coverage radius of the component carrier which has a frequency exceeding the preset frequency threshold is shorter than the preset distance threshold r.sub.2, updating FDM of UE which has a distance longer than the preset distance threshold r.sub.1 and shorter than the preset distance threshold r.sub.2 from the base station to which the cell belongs to aFDM.sub.1, and updating FDM of UE which has a distance longer than or equal to the preset distance threshold r.sub.2 from the base station to which the cell belongs to 0, wherein a is greater than 1, and FDM.sub.1 is the FDM of the UE before update.
3. The method according to claim 2, further comprising: when it is determined that a component carrier which has a frequency not exceeding the preset frequency threshold exists in the component carriers which are available to be allocated currently in the cell, determining frequency domain priority according to the determined FDM
4. The method according to claim 3, further comprising: controlling a preset number of component carriers in the component carriers which have frequencies exceeding the preset frequency threshold to cover an area having a distance exceeding a preset distance threshold r.sub.2 from the base station to which the cell belongs, and controlling a preset number of component carriers in the component carriers which have frequencies exceeding the preset frequency threshold to cover an area having a distance longer than the preset distance threshold r.sub.1 and shorter than the preset distance threshold r.sub.2 from the base station to which the cell belongs; controlling the component carrier which has a frequency not exceeding the preset frequency threshold to cover an area having a distance shorter than or equal to the preset distance threshold r.sub.1 from the base station to which the cell belongs.
5. The method according to claim 2, further comprising: controlling a preset number of component carriers in the component carriers which have frequencies exceeding the preset frequency threshold to cover an area having a distance exceeding a preset distance threshold r.sub.2 from the base station to which the cell belongs, and controlling a preset number of component carriers in the component carriers which have frequencies exceeding the preset frequency threshold to cover an area having a distance longer than the preset distance threshold r.sub.1 and shorter than the preset distance threshold r.sub.2 from the base station to which the cell belongs; controlling the component carrier which has a frequency not exceeding the preset frequency threshold to cover an area having a distance shorter than or equal to the preset distance threshold r.sub.1 from the base station to which the cell belongs.
6. The method according to claim 1, further comprising: when it is determined that a component carrier which has a frequency not exceeding the preset frequency threshold exists in the component carriers which are available to be allocated currently in the cell, determining frequency domain priority according to the determined FDM
7. The method according to claim 6, further comprising: controlling a preset number of component carriers in the component carriers which have frequencies exceeding the preset frequency threshold to cover an area having a distance exceeding a preset distance threshold r.sub.2 from the base station to which the cell belongs, and controlling a preset number of component carriers in the component carriers which have frequencies exceeding the preset frequency threshold to cover an area having a distance longer than the preset distance threshold r.sub.1 and shorter than the preset distance threshold r.sub.2 from the base station to which the cell belongs; controlling the component carrier which has a frequency not exceeding the preset frequency threshold to cover an area having a distance shorter than or equal to the preset distance threshold r.sub.1 from the base station to which the cell belongs.
8. The method according to claim 1, further comprising: controlling a preset number of component carriers in the component carriers which have frequencies exceeding the preset frequency threshold to cover an area having a distance exceeding a preset distance threshold r.sub.2 from the base station to which the cell belongs, and controlling a preset number of component carriers in the component carriers which have frequencies exceeding the preset frequency threshold to cover an area having a distance longer than the preset distance threshold r.sub.1 and shorter than the preset distance threshold r.sub.2 from the base station to which the cell belongs; controlling the component carrier which has a frequency not exceeding the preset frequency threshold to cover an area having a distance shorter than or equal to the preset distance threshold r.sub.1 from the base station to which the cell belongs.
9. The method according to claim 1, wherein updating the FDM of the UE in the cell according to the coverage of the component carrier which has a frequency exceeding the preset frequency threshold comprises: when a coverage radius of the component carrier which has a frequency exceeding the preset frequency threshold is greater than or equal to a preset distance threshold r.sub.2, updating FDM of UE which has a distance longer than a preset distance threshold r.sub.1 and shorter than the preset distance threshold r.sub.2 from a base station to which the cell belongs to aFDM.sub.1, and updating FDM of UE which has a distance longer than or equal to the preset distance threshold r.sub.2 from the base station to which the cell belongs to bFDM.sub.2, wherein FDM.sub.1 and FDM.sub.2 are the FDM of the UEs before update, a is greater than 1, and b is greater than a; when the coverage radius of the component carrier which has a frequency exceeding the preset frequency threshold is shorter than the preset distance threshold r.sub.2, updating FDM of UE which has a distance longer than the preset distance threshold r.sub.1 and shorter than the preset distance threshold r.sub.2 from the base station to which the cell belongs to a.sup.FDM.sub.1, and updating FDM of UE which has a distance longer than or equal to the preset distance threshold r.sub.2 from the base station to which the cell belongs to 0, wherein a is greater than 1, and FDM.sub.1 is the FDM of the UE before update.
10. The method according to claim 9, further comprising: when it is determined that a component carrier which has a frequency not exceeding the preset frequency threshold exists in the component carriers which are available to be allocated currently in the cell, determining frequency domain priority according to the determined FDM
11. The method according to claim 10, further comprising: controlling a preset number of component carriers in the component carriers which have frequencies exceeding the preset frequency threshold to cover an area having a distance exceeding a preset distance threshold r.sub.2 from the base station to which the cell belongs, and controlling a preset number of component carriers in the component carriers which have frequencies exceeding the preset frequency threshold to cover an area having a distance longer than the preset distance threshold r.sub.1 and shorter than the preset distance threshold r.sub.2 from the base station to which the cell belongs; controlling the component carrier which has a frequency not exceeding the preset frequency threshold to cover an area having a distance shorter than or equal to the preset distance threshold r.sub.1 from the base station to which the cell belongs.
12. The method according to claim 9, further comprising: controlling a preset number of component carriers in the component carriers which have frequencies exceeding the preset frequency threshold to cover an area having a distance exceeding a preset distance threshold r.sub.2 from the base station to which the cell belongs, and controlling a preset number of component carriers in the component carriers which have frequencies exceeding the preset frequency threshold to cover an area having a distance longer than the preset distance threshold r.sub.1 and shorter than the preset distance threshold r.sub.2 from the base station to which the cell belongs; controlling the component carrier which has a frequency not exceeding the preset frequency threshold to cover an area having a distance shorter than or equal to the preset distance threshold r.sub.1 from the base station to which the cell belongs.
13. A device for component carrier allocation, comprising: a memory storing programming instructions; and a processor arranged to execute the stored programming instructions to: judge whether a component carrier which has a frequency exceeding a preset frequency threshold exists in component carriers which are available to be allocated currently in a cell; when a judging result is yes, update a Frequency Domain Metric (FDM) of a User Equipment (UE) in the cell according to coverage of the component carrier which has a frequency exceeding the preset frequency threshold; and determine frequency domain priority according to the determined FDM, and allocate the component carrier which has a frequency exceeding the preset frequency threshold for the UE in the cell according to the determined frequency domain priority, wherein the processor is further arranged to: before it is judged whether the component carrier which has a frequency exceeding the preset frequency threshold exists in the component carriers which are available to be allocated currently in the cell, determine the FDM of the UE in the cell as
14. The device for component carrier allocation according to claim 13, wherein the processor is arranged to executed the stored programming instructions to: when a coverage radius of the component carrier which has a frequency exceeding the preset frequency threshold is greater than or equal to a preset distance threshold r.sub.2, update FDM of UE which has a distance longer than the preset distance threshold r.sub.1 and shorter than the preset distance threshold r.sub.2 from a base station to which the cell belongs to aFDM.sub.1, and update FDM of UE which has a distance longer than or equal to the preset distance threshold r.sub.2 from the base station to which the cell belongs to bFDM.sub.2, wherein FDM.sub.1 and FDM.sub.2 are the FDM of the UEs before update, a is greater than 1, and b is greater than a; and when the coverage radius of the component carrier which has a frequency exceeding the preset frequency threshold is shorter than the preset distance threshold r.sub.2, update FDM of UE which has a distance longer than the preset distance threshold r.sub.1 and shorter than the preset distance threshold r.sub.2 from the base station to which the cell belongs to aFDM.sub.1, and update FDM of UE which has a distance longer than or equal to the preset distance threshold r.sub.2 from the base station to which the cell belongs to 0, wherein a is greater than 1, and FDM.sub.1 is the FDM of the UE before update.
15. The device for component carrier allocation according to claim 13, the processor is further arranged to execute the stored programming instructions to: judge whether a component carrier which has a frequency not exceeding the preset frequency threshold exists in the component carriers which are available to be allocated currently in the cell; and when a judging result is yes, determine frequency domain priority according to the determined FDM
16. The device for component carrier allocation according to claim 13, the processor is further arranged to execute the stored programming instructions to: control a preset number of component carriers in the component carriers which have frequencies exceeding the preset frequency threshold to cover an area having a distance exceeding the preset distance threshold r.sub.2 from the base station to which the cell belongs, and control a preset number of component carriers in the component carriers which have frequencies exceeding the preset frequency threshold to cover an area having a distance longer than the preset distance threshold r.sub.1 and shorter than the preset distance threshold r.sub.2 from the base station to which the cell belongs; and control the component carrier which has a frequency not exceeding the preset frequency threshold to cover an area having a distance shorter than or equal to the preset distance threshold r.sub.1 from the base station to which the cell belongs.
17. A non-transitory computer storage medium, storing a computer program for executing steps of: when it is determined that a component carrier which has a frequency exceeding a preset frequency threshold exists in component carriers which are available to be allocated currently in a cell, updating a Frequency Domain Metric (FDM) of a User Equipment (UE) in the cell according to coverage of the component carrier which has a frequency exceeding the preset frequency threshold; and determining frequency domain priority according to the updated FDM, and allocating the component carrier which has a frequency exceeding the preset frequency threshold for the UE in the cell according to the determined frequency domain priority wherein before it is determined that the component carrier which has a frequency exceeding the preset frequency threshold exists in the component carriers which are available to be allocated currently in the cell, the method further comprising: determining the FDM of the UE in the cell as
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
DETAILED DESCRIPTION
(5) The present disclosure is further elaborated below in combination with the accompanying drawings and the specific embodiments.
(6) The present disclosure describes a method for component carrier allocation; FIG. 1 is a flowchart of the method for component carrier allocation according to an embodiment of the present disclosure; as shown in
(7) Step 101 is that when it is determined that a component carrier which has a frequency exceeding the preset threshold exists in component carriers which are available to be allocated currently in a cell, the FDM of UE in the cell is updated according to the coverage of the component carrier which has a frequency exceeding the preset threshold.
(8) Here, before Step 101, a Time Domain Metric (TDM) of the UE in the cell is determined as
(9)
according a proportional fair allocation policy, wherein D(i,t) is a throughput which UE i reaches in a time slot t,
(10)
according to the proportional fair allocation policy, wherein C.sub.k is a component carrier set allocated for the UE k, R.sub.k(t) is the average data transmission rate of the UE k before the time slot t, r.sub.k,m(t) is the instantaneous data transmission rate that the UE k reaches on an allocated component carrier m in the time slot t, and T is the measuring window size of the average throughput of the cell.
(11)
(12) Based on the above, it is found that when component carriers are allocated for the UE in the edge area of the cell and the UE in the middle area of the cell, if the FDM of the UE in the edge area of the cell and the FDM of the UE in the middle area of the cell are increased according to a preset range, the probability of allocating component carriers for the UE in the edge area of the cell and the UE in the middle area of the cell will be increased obviously, thereby improving the data throughput; besides, it is also found that when the component carriers have the same coverage, since the channel fading of a component carrier which has a frequency lower than the preset threshold is relatively low, the UE may require for preferentially allocating the component carrier with good channel condition and low frequency, and different areas of the cell are listed below according to the descending order of amounts of the UEs in different areas of the cell: the core area of the cell, the middle area of the cell and the edge area of the cell. Thus, in the embodiment of the present disclosure, the frequencies of the component carriers covering the core area of the cell, the middle area of the cell and the edge area of the cell increase in order, for example, the component carrier which has a frequency not exceeding the preset threshold is controlled to cover the core area (namely the area which has a distance shorter than or equal to r.sub.1 from the base station to which the cell belongs) of the cell, the component carrier which has a frequency higher than the preset threshold is controlled to cover the middle area (namely the area which has a distance longer than r.sub.1 and shorter than r.sub.2 from the base station to which the cell belongs) of the cell and the edge area (namely the area which has a distance longer than r.sub.2 from the base station to which the cell belongs) of the cell; the frequency of the component carrier covering the edge area of the cell is higher than that of the component carrier covering the middle area of the cell.
(13) Besides, since the path loss of the UE in the edge area of the cell and the path loss of the UE in the middle area of the cell are relatively large, in the present embodiment of the present disclosure, the component carriers which have frequencies higher than the preset threshold are transmitted by a high power, so that the component carriers which have frequencies higher than the preset threshold cover the middle area of the cell and the edge area of the cell; since the channel condition of the UE in the core area of the cell is good, and reduction in a transmitting power will not influence the communication quality of the UE, in the present embodiment of the present disclosure, the component carrier which has a frequency not exceeding the preset threshold is transmitted by a low power, so that the component carrier which has a frequency not exceeding the preset threshold covers the core area of the cell.
(14) It should be noted that, since the component carrier is transmitted by the base station to which the cell belongs, the component carrier which has a frequency higher than the preset threshold and which covers the middle area (namely the area which has a distance longer than r.sub.1 and shorter than r.sub.2 from the base station to which the cell belongs) of the cell also covers the core area (namely the area which has a distance shorter than or equal to r.sub.1 from the base station to which the cell belongs) of the cell, and the component carrier which covers the edge area (namely the area which has a distance longer than r.sub.2 from the base station to which the cell belongs) of the cell covers the core area and the middle area (namely the area which has a distance shorter than or equal to r.sub.2 from the base station to which the cell belongs) of the cell at the same time.
(15) For example, Long Term Evolution-Advanced (LTE-A) deployment frequency bands include: 450-470 MHz, 698-862 MHz, 790-862 MHz, 2.3-2.4 GHz, 3.4-4.2 GHz and 4.4-4.99 GHz.
(16) Correspondingly, in a LTE-A cell, the frequency bands which have frequencies not exceeding 862 MHz in the above frequency bands, namely 450-470 MHz, 698-862 MHz and 790-862 MHz, are controlled; the corresponding component carrier covers the core area of the cell;
(17) the two frequency bands with the lowest frequency, namely 2.3-2.4 GHz and 1-2 GHz, in the frequency bands which have frequencies exceeding the preset threshold 1 GHz are controlled; the corresponding component carrier covers the middle area of the cell, and also covers the core area of the cell correspondingly;
(18) the two frequency bands with the highest frequency, namely 3.4-4.2 GHz and 4.4-4.99 GHz, in the frequency bands which have frequencies exceeding the preset threshold 1 GHz are controlled, and the corresponding component carrier covers the edge area of the cell, namely the whole cell.
(19)
(20) For Z, under the following two conditions: (1) all the L component carriers are allocated for the UEs in the core area of the cell and the middle area of the cell; (2) (L-Z) component carriers obtained by removing Z component carriers from the L component carriers are allocated for the UEs in the core area of the cell and the middle area of the cell, the following is obtained:
(21)
(22) the value range of Z obtained from the formulae (1) and (2) is
(23)
(24) For Y, under the following two conditions: (1) all the L component carriers are allocated for the UEs in the core area of the cell; (2) (LY) component carriers obtained by removing Y component carriers from the L component carriers are allocated for the UEs in the core area of the cell and the edge area of the cell, the following is obtained:
(25)
(26) the value range of Y obtained from the formulae (3) and (4) is
(27)
(28) Through the above value ranges, it can be determined that when there are 20 component carriers covering the cell, 14 component carriers with a frequency lower than the preset threshold cover the core area of the cell, 4 component carriers with a frequency higher than the preset threshold cover the middle area of the cell, and 2 component carriers with a frequency higher than the preset threshold cover the edge area of the cell, that is, the component carriers cover the whole cell.
(29) In the embodiment of the present disclosure, when the coverage of the component carrier is shorter than the preset threshold r.sub.2, the FDM of UE which has a distance longer than the preset threshold r.sub.1 and shorter than the preset threshold r.sub.2 from the base station to which the cell belongs is updated to aFDM.sub.1, wherein a is greater than 1, and FDM.sub.1 is the FDM before update, namely
(30)
and the FDM of UE in a distance longer than or equal to the preset threshold r.sub.2 from the base station to which the cell belongs is updated to 0.
(31) Here, since it is identified that the component carrier does not cover the edge area of the cell when the coverage radius of the component carrier is shorter than the preset threshold r.sub.2, the component carrier cannot be allocated for the UE in the edge area of the cell, namely the UE which has a distance longer than or equal to the preset threshold r.sub.2 from the base station to which the cell belongs; correspondingly, the FDM of the UE in the edge area of the cell is set as 0, so that the component carrier will not be allocated for the UE in the edge area of the cell.
(32) In the embodiment of the present disclosure, when the coverage radius of the component carrier is longer than or equal to the preset threshold r.sub.2, the FDM of the UE which has a distance longer than the preset threshold r.sub.1 and shorter than the preset threshold r.sub.2 from the base station to which the cell belongs is updated to aFDM.sub.1, wherein FDM.sub.1 is the FDM before update, namely
(33)
and the FDM of the UE which has a distance longer than or equal to the preset threshold r.sub.2 from the base station to which the cell belongs is updated to bFDM.sub.2, wherein b is greater than a.
(34) Here, it is identified that the component carrier covers the edge area of the cell when the coverage radius of the component carrier is longer than or equal to the preset threshold r.sub.2; correspondingly, the FDM of the UE in the edge area of the cell and the FDM of the UE in the middle area of the cell are increased, and the FDM of the UE in the edge area of the cell is made higher than the FDM of the UE in the middle area of the cell, so as to increase the probability of allocating the component carriers for the UEs in the edge area of the cell and the middle area of the cell.
(35) Step 102 is that the frequency domain priority is determined according to the updated FDM, and the component carrier which has a frequency exceeding the preset threshold is allocated for the UE in the cell according to the frequency domain priority.
(36) Here, a descending order of the updated FDM is determined as the frequency domain priority of the UE, and the component carrier is allocated for the UE according to a descending order of the priority.
(37) Since the present disclosure uses the low-frequency component carrier (namely the component carrier with a frequency lower than the preset threshold) to cover the core area of the cell, when it is determined that the component carrier which has a frequency not exceeding the preset threshold exists in the component carriers which are available to be allocated currently, the descending order of the determined FDM
(38)
is determined as the frequency domain priority of the UE, and the component carrier which has a frequency not exceeding the preset threshold is allocated for the UE according to the descending order of the priority.
(39) An embodiment of the present disclosure also provides a computer storage medium, which stores the computer program; the computer program is used for executing the method for component carrier allocation in the above embodiments.
(40) An embodiment of the present disclosure also describes a device for component carrier allocation;
(41) the first judging unit 21 is configured to judge whether a component carrier which has a frequency exceeding a preset threshold exists in component carriers which are available to be allocated currently in the cell;
(42) the updating unit 22 is configured to, when a judging result of the first judging unit is yes, update the FDM of UE in the cell according to the coverage of the component carrier which has a frequency exceeding the preset threshold; and
(43) the allocating unit 23 is configured to determine the frequency domain priority according to the FDM determined by the updating unit 22, and allocate the component carrier which has a frequency exceeding the preset threshold for the UE in the cell according to the frequency domain priority.
(44) Preferably, the device further includes:
(45) the determining unit 24, which is configured to, before the first judging unit 21 judges whether the component carrier which has a frequency exceeding the preset threshold exists in the component carriers which are available to be allocated currently in the cell, determine the FDM of the UE in the cell as
(46)
wherein C.sub.k is the component carrier set allocated for UE k, R.sub.k(t) is the average data transmission rate of the UE k before the time slot t, r.sub.k,m(t) is the instantaneous data transmission rate that the UE k reaches on an allocated component carrier m in the time slot t, and T is the measuring window size of the average throughput of the cell.
(47) Preferably, the updating unit 22 is further configured to, when the coverage radius of the component carrier which has a frequency exceeding the preset threshold is greater than or equal to the preset threshold r.sub.2, update the FDM of the UE which has a distance longer than the preset threshold r.sub.1 and shorter than the preset threshold r.sub.2 from the base station to which the cell belongs to aFDM.sub.1, and update the FDM of the UE which has a distance longer than or equal to the preset threshold r.sub.2 from the base station to which the cell belongs to bFDM.sub.2, wherein FDM.sub.1 and FDM.sub.2 are the FDM of the UE before update, a is greater than 1, and b is greater than a; and
(48) the updating unit 22 is further configured to, when the coverage radius of the component carrier which has a frequency exceeding the preset threshold is shorter than the preset threshold r.sub.2, update the FDM of the UE which has a distance longer than the preset threshold r.sub.1 and shorter than the preset threshold r.sub.2 from the base station to which the cell belongs to aFDM.sub.1, and update the FDM of the UE which has a distance longer than or equal to the preset threshold r.sub.2 from the base station to which the cell belongs to 0, wherein a is greater than 1, and FDM.sub.1 is the FDM of the UE before update.
(49) Preferably, the device further includes:
(50) the second judging unit 25, which is configured to judge whether a component carrier which has a frequency not exceeding the preset threshold exists in the component carriers which are available to be allocated currently in the cell;
(51) the allocating unit 23 is further configured to, when a judging result of the second judging unit 25 is yes, determine the frequency domain priority according to the determined FDM
(52)
of the UE, and allocate the component carrier which has a frequency not exceeding the preset threshold for the UE in the cell according to the frequency domain priority.
(53) Preferably, the device further includes:
(54) the controlling unit 26, which is configured to control a preset number of component carriers in the component carriers which have frequencies exceeding the preset threshold to cover the area having a distance exceeding the preset threshold r.sub.2 from the base station to which the cell belongs, and control a preset number of component carriers in the component carriers which have frequencies exceeding the preset threshold to cover the area having a distance longer than the preset threshold r.sub.1 and shorter than the preset threshold r.sub.2 from the base station to which the cell belongs; and
(55) the controlling unit 26 is further configured to control the component carriers which has a frequency not exceeding the preset threshold to cover the area having a distance smaller than or equal to the preset threshold r.sub.1 from the base station to which the cell belongs.
(56) In the practical application, all of the first judging unit 21, the updating unit 22, the allocating unit 23, the determining unit 24, the second judging unit 25 and the controlling unit 26 can be implemented by a Central Processing Unit (CPU), a Digital Signal Processor (DSP) or a Field Programmable Gate Array (FPGA).
(57) The present disclosure is further illustrated below by taking an out-of-band non-contiguous CA scenario for example. The diagram of the cell in the present disclosure is shown in
(58)
of the number of component carriers covering the edge area of the cell and the value range
(59)
of the number of component carriers covering the middle area of the cell in the embodiment of the present disclosure, 14 low-frequency component carriers which have frequencies not exceeding the preset threshold 300 KHz, namely the component carriers corresponding to f1f14, are controlled to cover the core area of the cell, the 2 high-frequency component carriers with the highest frequencies in the component carriers which have frequencies exceeding the preset threshold 300 KHz, namely the component carriers corresponding to f19 and f20, are controlled to cover the whole cell, and the rest 4 high-frequency component carriers, namely the component carriers corresponding to f15-f18, are controlled to cover the middle area of the cell; the coverage of the component carrier is achieved by controlling the transmitting power of the component carrier.
(60) Based on the above scenario,
(61) Step 301 is that the FDM of UE is determined.
(62) Before Step 301, the TDM of the UE is determined according to the proportional fair allocation policy.
(63) .sub.i(n,t) is for representing the SNR of UE i on the nth resource block RB.sub.n of the component carrier in the time slot t, then .sub.i(n,t) is
(64)
wherein p.sub.k(n) is the transmitting power of the RB.sub.n on the component carrier k, H.sub.i(n,t) is a composite channel gain of the UE i on the RB.sub.n; N.sub.0 is a noise power of the UE i on the RB.sub.n, and P.sub.k (is the transmitting power of the component carrier k. Thus, the instantaneous speed r.sub.i(n,t) of the UE i on the RB.sub.n in the time slot t is W log(1+.sub.i(n,t)), wherein W is the bandwidth of the RB.sub.n, and is an SNR gap with a value [1.5/ln(5Pen)][1.5/ln(5Pen)], wherein Pen is a target bit error rate.
(65) Step 302 is that it is judged whether a component carrier which has a frequency exceeding the preset threshold exists in the component carriers which are available to be allocated currently in the cell; if such a component carrier exists, Step 303 is executed; or else, Step 306 is executed.
(66) Step 303 is that it is judged whether the component carrier covers the edge area of the cell; if the component carrier covers the edge area of the cell, Step 304 is executed; or else, Step 305 is executed.
(67) Step 304 is that the FDM of the UE in the middle area of the cell is updated to aFDM.sub.1, and the FDM of the UE in the edge area of the cell is updated to bFDM.sub.2.
(68) The FDM of the UE having a distance longer than the preset threshold r.sub.1 and shorter than the preset threshold r.sub.2 from the base station to which the cell belongs, namely the FDM of the UE in the middle area of the cell, is updated to aFDM.sub.1; and the FDM of the UE having a distance longer than or equal to the preset threshold r.sub.2 to the base station to which the cell belongs, namely the FDM of the UE in the edge area of the cell, is updated to bFDM.sub.2, wherein FDM.sub.1 and FDM.sub.2 are the FDM of the UEs before update, a is greater than 1, and b is greater than a.
(69) Step 305 is that the FDM of the UE in the middle area of the cell is updated to aFDM.sub.1, and the FDM of the UE in the edge area of the cell is updated to 0.
(70) The FDM of the UE which has a distance longer than the preset threshold r.sub.1 and shorter than the preset threshold r.sub.2 to the base station to which the cell belongs is updated to aFDM.sub.1, and the FDM of the UE which has a distance longer than or equal to the preset threshold r.sub.2 to the base station to which the cell belongs is updated to 0, wherein a is greater than 1, and FDM.sub.1 is the FDM of the UE before update.
(71) Step 306 is that the frequency domain priority of the UE is determined according to the descending order of the current FDM, and the component carrier is allocated for the UE according to the determined frequency domain priority.
(72) Here, the component carrier which is available to be allocated in Step 303 is the one which has a frequency exceeding the preset threshold, that is, the identified component carrier belongs to the set of 14 component carriers with the lowest frequency; since the component carrier is only allocated for the UE in the core area of the cell, Step 306 is executed directly without need of adjusting the FDM of the UE in the middle area of the cell and the edge area of the cell.
(73) Through this embodiment, the following technical effects can be achieved:
(74) the set of the component carriers which are available to be allocated for the UE in the middle area of the cell is {f15, f16, . . . , f20}; the component carrier is allocated for each UE according to the descending order of the updated aFDM.sub.1; the 2 component carriers with the highest frequencies, namely the component carriers corresponding to f19 and f20, can be allocated for the UE in the edge area of the cell; the component carrier is allocated for the UE in the edge area of the cell according to the frequency domain priority determined based on the updated bFDM.sub.2; that is, for the component carriers corresponding to f19 and f20, the UE in the edge area of the cell has the highest priority of allocation, the priority of the UE in the middle area of the cell is lower than the highest priority, and the priority of the UE in the core area of the cell is lowest; for the component carriers corresponding to f15f18, the component carrier cannot be allocated for the UE in the edge area of the cell, the UE in the middle area of the cell has the highest priority of allocation, and the priority of the UE in the core area of the cell is lower than the highest priority; for the component carriers corresponding to f1f14, the component carriers can only be allocated for the UE in the core area of the cell;
(75) thus, the throughput of the UE in the edge area of the cell can be improved, and the communication quality is guaranteed; besides, the low-frequency component carrier with a relatively good channel condition is controlled in the core area of the cell, thereby guaranteeing the throughput of the cell at a high level.
(76) The above are only the preferred embodiments of the present disclosure and not intended to limit the scope of the claims of the present disclosure.
INDUSTRIAL APPLICABILITY
(77) In the present disclosure, when it is determined that a component carrier which has a frequency exceeding the preset threshold exists in component carries which are available to be allocated currently in the cell, the FDM of UE in the cell is updated according to the coverage of the component carrier which has a frequency exceeding the preset threshold; and the frequency domain priority is determined according to the updated FDM, and the component carrier which has a frequency exceeding the preset threshold is allocated for the UE in the cell according to the frequency domain priority. By adopting the technical solutions of the present disclosure, the problem of poor communication quality of UE moving at a high speed caused by the low fairness of component carrier allocation in the cell can be solved.