Method and apparatus for determining transmit power

Information

  • Patent Grant
  • 9155050
  • Patent Number
    9,155,050
  • Date Filed
    Thursday, September 12, 2013
    10 years ago
  • Date Issued
    Tuesday, October 6, 2015
    8 years ago
Abstract
An apparatus is disclosed for determining a gain factor of an E-DPDCH in a compressed mode. In disclosure, the E-DPDCH gain factor in the compressed mode is determined according to the number of E-DPDCHs used for initial transmission of data. With the determined E-DPDCH gain factor, the transmission power of the E-DPDCH can be accordingly determined. As the E-DPDCH gain factor in compressed mode is determined according to the number of the E-DPDCHs for initial transmission of data, the gain factor of the E-DPDCH in compressed mode can be determined accurately, and thus the transmit power of the E-DPDCH can be determined accurately according to the E-DPDCH gain factor in the compressed mode. Therefore, the waste of transmit power of the E-DPDCH is reduced, and thus the system capacity is improved.
Description
FIELD OF THE INVENTION

The present invention relates to communications technologies, and in particular, to a method and an apparatus for determining transmit power.


BACKGROUND OF THE INVENTION

In a Wideband Code Division Multiple Access (WCDMA) system, the transmit power required by an Enhanced Dedicated Channel Dedicated Physical Data Channel (E-DPDCH) can be obtained according to an E-DPDCH gain factor. The E-DPDCH gain factor may be calculated by an extrapolation formula using one reference E-DCH Transport Format Combination (E-TFC). The extrapolation formula is as follows:










β

ed
,
i
,
harq


=


β

ed
,
ref






L

e
,
ref



L

e
,
i









K

e
,
i



K

e
,
ref




·

10

(


Δ





harq

20

)








(
1
)







In the formula above, βed,ref denotes the E-DPDCH gain factor of the reference E-TFC; Le,ref denotes the number of E-DPDCH used for the reference E-TFC; Le,i denotes the number of E-DPDCH used for the i:th E-TFC (that is, the i:th E-TFC is corresponding to the E-DPDCH whose E-DPDCH gain factor is currently to be obtained); if a spreading factor of E-DPDCH is 2, Le,i and Le,ref denote the number of channels assuming a spreading factor of E-DPDCH is 4; Ke,ref denotes the transport block size of the reference E-TFC; Ke,i denotes the transport block size of the i:th E-TFC; and Δharq denotes an offset of a Hybrid Automatic Repeat Request (HARQ), and is specified by the upper layer. Table 1 lists the values of Δharq.












TABLE 1







Δharq Signal Value
Δharq Power Offset (dB)









6
6



5
5



4
4



3
3



2
2



1
1



0
0










After the uplink 16 Quadrature Amplitude Modulation (16QAM) mode is introduced into the WCDMA system, the uplink service rate increases to 11.52 Mbps. With the increase of the service rate, a formula is put forward for calculating the E-DPDCH gain factor under high rate services. This formula uses two reference E-TFCs, and is called an interpolation formula. The interpolation formula is as follows:







β

ed
,
i
,
harq


=




L

e
,
ref
,
1



L

e
,
i




·


(



(





L

e
,
ref
,
2



L

e
,
ref
,
1





β

ed
,
ref
,
2

2


-

β

ed
,
ref
,
1

2




K

e
,
ref
,
2


-

K

e
,
ref
,
1




)



(


K

e
,
i


-

K

e
,
ref
,
1



)


+

β

ed
,
ref
,
1

2


)


·

10

(


Δ





harq

20

)







In the formula above, βed,i,harq denotes the E-DPDCH gain factor; Le,i denotes the number of E-DPDCH in non-compressed mode; βed,ref,1 and βed,ref,2 denote the E-DPDCH gain factors of the first and second reference E-TFCs respectively; Le,ref,1 and Le,ref,2 denote the number of E-DPDCHs used for the first and second reference E-TFCs; if the spreading factor of E-DPDCH is 2, Le,ref,1 and Le,ref,2 denote the number of channels assuming the spreading factor of E-DPDCH is 4; Ke,ref,1 and Ke,ref,2 denote the transport block sizes of the first and second reference E-TFCs; Ke,i denotes the transport block size of the i:th E-TFC; and Δharq denotes the offset of the HARQ, and is specified by the upper layer.


In the prior art, if the Transmission Time Interval (TTI) is 10 ms in the compressed mode, the calculation of the E-DPDCH gain factor comes in two scenarios: the current frame is a compressed frame, and the current frame is a normal frame.


At least the following problems are found in the prior art:


in the prior art The E-DPDCH gain factor calculated out in compressed mode does not reflect the transmit power required by the E-DPDCH accurately, and the transmit power required by the E-DPDCH which is determined according to the E-DPDCH gain factor is not accurate either. Consequently, part of the transmit power of E-DPDCH is wasted and therefore the system capacity is reduced.


SUMMARY OF THE INVENTION

The embodiments of the present invention provide a method and an apparatus for determining transmit power so as to determine the transmit power of E-DPDCH accurately and improve the system capacity.


To fulfill the foregoing objectives, a method for determining a transmit power is provided in an embodiment of the present invention. The method includes:


determining the E-DPDCH gain factor in compressed mode according to the number of E-DPDCH required for initial transmission of data; and


determining transmit power of E-DPDCH according to the E-DPDCH gain factor in compressed mode.


Further, an apparatus for determining a transmit power is provided in an embodiment of the present invention. The apparatus includes:


a gain factor determining module, configured to determine an E-DPDCH gain factor in compressed mode according to the number of E-DPDCH required for initial transmission of data; and


a power determining module, configured to determine transmit power of E-DPDCH according to the E-DPDCH gain factor determined by the gain determining module.


Further still, a base station is provided in an embodiment of the present invention, and the base station includes the foregoing apparatus for determining a transmit power.


Further still, a terminal is provided in an embodiment of the present invention, and the terminal includes the foregoing apparatus for determining a transmit power.


Compared with the prior art, the present invention brings at least the following benefits: The E-DPDCH gain factor in compressed mode is determined according to the number of E-DPDCH required for initial transmission of data, and therefore, the E-DPDCH gain factor in compressed mode is determined accurately, the transmit power of E-DPDCH is determined accurately according to the E-DPDCH gain factor, the waste of transmit power of E-DPDCH is reduced, and therefore the system capacity is improved.





BRIEF DESCRIPTION OF THE DRAWINGS

To describe the technical solution under the present invention more clearly, the following describes the accompanying drawings involved in the embodiments of the present invention. Apparently, the accompanying drawings outlined below are not exhaustive and shall not constitute any limitation to the scope of the present invention.



FIG. 1 is a flowchart of a method for determining transmit power in an embodiment of the present invention;



FIG. 2 shows a structure of an apparatus for determining transmit power in an embodiment of the present invention; and



FIG. 3 shows a structure of another apparatus for determining transmit power in an embodiment of the present invention.





DETAILED DESCRIPTION OF THE EMBODIMENTS

The following detailed description is provided with reference to the accompanying drawings to provide a thorough understanding of the present invention. Evidently, the drawings and the detailed description are merely representative of particular embodiments of the present invention, and the embodiments are illustrative in nature rather than exhaustive, and shall not constitute any limitation to the scope of the present invention. All other embodiments, which can be derived by those skilled in the art from the embodiments given herein without any creative efforts, fall within the scope of the present invention.


A method for determining a transmit power is provided in an embodiment of the present invention. The E-DPDCH gain factor in compressed mode is determined according to the number of E-DPDCH required for initial transmission of data, and the transmit power of E-DPDCH is determined according to the E-DPDCH gain factor. This method determines the E-DPDCH gain factor in compressed mode accurately. Because the transmit power of E-DPDCH is determined according to the E-DPDCH gain factor, the waste of transmit power of E-DPDCH is reduced, and therefore the system capacity is improved.



FIG. 1 is a flowchart of a method for determining a transmit power in an embodiment of the present invention. The method includes the following steps:


Step 101: Determine the E-DPDCH gain factor in compressed mode according to the number of E-DPDCH required for initial transmission of data.


In this embodiment, when a TTI is 10 ms, the E-DPDCH gain factor in compressed mode is calculated according to the number of E-DPDCH required for initial transmission of data, and interpolation formulas (2) and (3) are put forward.


Assuming Le,I,i denotes the number of E-DPDCH required for initial transmission of data, βed,C,i denotes the E-DPDCH gain factor, and the current frame is a compressed frame,







β

ed
,
C
,
i


=


β

c
,
C
,
j


·



L

e
,
ref
,
1



L

e
,
I
,
i




·


(



(





L

e
,
ref
,
2



L

e
,
ref
,
1





A

ed
,
ref
,
2

2


-

A

ed
,
ref
,
1

2




K

e
,
ref
,
2


-

K

e
,
ref
,
1




)



(


K

e
,
i


-

K

e
,
ref
,
1



)


+

A

ed
,
ref
,
1

2


)


·

10

(


Δ





harq

20

)


·



15
·

N

pilot
,
C





N

slots
,
I


·

N

pilot
,
N










Assuming Le,I,i denotes the number of E-DPDCH required for initial transmission of data, βed,R,i denotes the E-DPDCH gain factor, and the current frame is a non-compressed frame,










β

ed
,
R
,
i


=




L

e
,
ref
,
1



L

e
,
I
,
i




·



(






(





L

e
,
ref
,
2



L

e
,
ref
,
1





β

ed
,
ref
,
2

2


-

β

ed
,
ref
,
1

2




K

e
,
ref
,
2


-

K

e
,
ref
,
1




)



(


K

e
,
i


-

K

e
,
ref
,
1



)


+






β

ed
,
ref
,
1

2




)




15

N

slots
,
I






·

10

(


Δ
harq

20

)







(
3
)







In formula (2) and formula (3), βe,C,j denotes a Dedicated Physical Control Channel (DPCCH) gain factor used for a j:th Transport Format Combination (TFC) in compressed mode;








A

ed
,
ref
,
1


=


β

ed
,
ref
,
1



β
c



,


A

ed
,
ref
,
2


=


β

ed
,
ref
,
2



β
c



,





and βc is a DPCCH gain factor in non-compressed mode; βed,ref,1 and βed,ref,2 denote the E-DPDCH gain factors of the first and second reference E-TFCs respectively; Le,ref,1 and Le,ref,2 denote the number of E-DPDCHs used for the first and second reference E-TFCs respectively; if the spreading factor of E-DPDCH and Le,ref,1 and Le,ref,2 denote the number of channels assuming the spreading factor of E-DPDCH is 4; Ke,ref,1 and Ke,ref,2 denote the transport block sizes of the first and second reference E-TFCs respectively; Ke,i denotes the transport block size of the i:th E-TFC; Δharq denotes the offset of the HARQ, and is specified by the upper layer; Npilot,C is the number of pilot bits per slot on the DPCCH in compressed frame; Npilot,N is the number of pilot bits per slot on the DPCCH in non-compressed frame; Nslots,I is the number of non Discontinuous Transmission (DTX) slots in a frame used for initial transmission of data.


Step 102: Determine transmit power of E-DPDCH according to the E-DPDCH gain factor in compressed mode.


One of the methods for determining the transmit power of the E-DPDCH is: obtain a power offset according to the ratio of the E-DPDCH gain factor to the DPCCH gain factor, and then obtain the transmit power of E-DPDCH according to the power offset and absolute power of the DPCCH.


In the method for determining the transmit power in the foregoing embodiment, the E-DPDCH gain factor in compressed mode is determined according to the number of E-DPDCH required for initial transmission of data, and therefore, the E-DPDCH gain factor in compressed mode is determined accurately, the transmit power of E-DPDCH is determined according to the E-DPDCH gain factor, the waste of transmit power of E-DPDCH is reduced, and therefore the system capacity is improved.


As shown in FIG. 2, an apparatus for determining transmit power in an embodiment of the present invention includes:


a gain factor determining module 21, configured to determine the E-DPDCH gain factor in compressed mode according to the number of E-DPDCH required for initial transmission of data; and


a power determining module 22, configured to determine the transmit power of E-DPDCH according to the E-DPDCH gain factor determined by the E-DPDCH gain factor determining module 21.


As shown in FIG. 3, the gain factor determining module 21 may include a first determining submodule 211 and a second determining submodule 212.


The first determining submodule 211 is configured to determine the E-DPDCH gain factor when Le,I,i denotes the number of E-DPDCH required for initial transmission of data, βed,C,i denotes the E-DPDCH gain factor, and the current frame is a compressed frame:







β

ed
,
C
,
i


=


β

c
,
C
,
j


·



L

e
,
ref
,
1



L

e
,
I
,
i




·


(



(





L

e
,
ref
,
2



L

e
,
ref
,
1





A

ed
,
ref
,
2

2


-

A

ed
,
ref
,
1

2




K

e
,
ref
,
2


-

K

e
,
ref
,
1




)



(


K

e
,
i


-

K

e
,
ref
,
1



)


+

A

ed
,
ref
,
1

2


)


·

10

(


Δ





harq

20

)


·



15
·

N

pilot
,
C





N

slots
,
I


·

N

pilot
,
N










The second determining submodule 212 is configured to determine the E-DPDCH gain factor when Le,I,i denotes the number of E-DPDCH required for initial transmission of data, βed,R,i denotes the E-DPDCH gain factor, and the current frame is a non-compressed frame:







β

ed
,
R
,
i


=




L

e
,
ref
,
1



L

e
,
I
,
i




·



(






(





L

e
,
ref
,
2



L

e
,
ref
,
1





β

ed
,
ref
,
2

2


-

β

ed
,
ref
,
1

2




K

e
,
ref
,
2


-

K

e
,
ref
,
1




)



(


K

e
,
i


-

K

e
,
ref
,
1



)


+






β

ed
,
ref
,
1

2




)




15

N

slots
,
I






·

10

(


Δ
harq

20

)







In the formula above, βc,C,j denotes the DPCCH gain factor used for the j:th TFC in compressed mode;








A

ed
,
ref
,
1


=


β

ed
,
ref
,
1



β
c



,


A

ed
,
ref
,
2


=


β

ed
,
ref
,
2



β
c



,





and βc is the DPCCH gain factor in non-compressed mode; βed,ref,1 and βed,ref,2 denote the E-DPDCH gain factors of the first and second reference E-TFCs; Le,ref,1 and Le,ref,2 denote the number of E-DPDCHs used for the first and second reference E-TFCs; Ke,ref,1 and Ke,ref,2 denote the transport block sizes of the first and second reference E-TFCs; Ke,i denotes the transport block size of the i:th E-TFC; Δharq denotes the offset of the HARQ; Npilot,C is the number of pilot bits per slot on of the DPCCH in compressed frame; Npilot,N is the number of pilot bits per slot of the DPCCH in non-compressed frame; and Nslots,I is the number of non DTX slots in a frame used for initial transmission of data.


In the apparatus for determining the transmit power in the foregoing embodiment, the gain factor determining module 21 determines the E-DPDCH gain factor in compressed mode according to the number of E-DPDCH required for initial transmission of data. Therefore, the E-DPDCH gain factor in compressed mode is determined accurately, the power determining module 22 determines the transmit power of E-DPDCH according to the E-DPDCH gain factor, the waste of transmit power of E-DPDCH is reduced, and therefore the system capacity is improved.


Further, a base station is provided in an embodiment of the present invention, and the base station includes the foregoing apparatus for determining transmission power. The base station may include all or part of the modules of the foregoing apparatus for determining the transmit power.


Further, a terminal is provided in an embodiment of the present invention, and the terminal includes the foregoing apparatus for determining a transmit power. The terminal may include all or part of the modules of the foregoing apparatus for determining a transmit power.


After reading the foregoing embodiments, those skilled in the art are clearly aware that the present invention may be implemented through hardware, or through software in addition to a necessary universal hardware platform. Based on such understanding, the technical solution under the present invention may be embodied in a software product. The software product may be stored in a nonvolatile storage medium (such as a Compact Disk-Read Only Memory (CD-ROM), a Universal Serial Bus (USB) disk, or a mobile hard disk), and may include several instructions that enable a computer device (such as a personal computer, a server, or a network device) to perform the method according to any embodiment of the present invention.


It is understandable to those skilled in the art that the accompanying drawings are only schematic diagrams of the exemplary embodiments, and the modules or processes in the accompanying drawings are not mandatory for implementing the present invention.


It is understandable to those skilled in the art that the modules in an apparatus provided in an embodiment of the present invention may be distributed in the apparatus described herein, or may be located in one or more apparatuses different from the apparatus described herein. The modules may be combined into one module, or split into multiple submodules.


The sequence number of the embodiment above is designed to facilitate description only, and does not represent the order of preference.


Detailed above are several exemplary embodiments of the present invention, and the scope of the present invention is not limited thereto. Any modifications or variations that can be derived by those skilled in the art shall fall within the scope of the present invention.

Claims
  • 1. An apparatus comprising: a non-transitory storage medium including executable instructions and a processor,wherein the executable instructions, when executed by the processor, cause the processor to:determine an Enhanced Dedicated Channel Dedicated Physical Data Channel (E-DPDCH) gain factor in a compressed modeas follows, when a current frame is compressed:
  • 2. The apparatus according to claim 1, wherein the instructions, when executed by the processor, further cause the processor to determine a transmit power of a E-DPDCH according to the determined E-DPDCH gain factor in the compressed mode.
  • 3. The apparatus according to claim 2, wherein the instructions when executed by the processor, further cause the processor to determine a power offset according to a ratio of the E-DPDCH gain factor in the compressed mode to the DPCCH gain factor in the compressed mode, and wherein the transmit power of the E-DPDCH is determined according to the determined power offset and an absolute power of a DPCCH.
Priority Claims (1)
Number Date Country Kind
2008 1 0172290 Nov 2008 CN national
CROSS-REFERENCE TO RELATED APPLICATIONS

This application is a continuation of U.S. patent application Ser. No. 13/563,226, filed on Jul. 31, 2012, which is a continuation of U.S. patent application Ser. No. 13/090,874, filed on Apr. 20, 2011, which is a continuation of International Patent Application No. PCT/CN2009/074784, filed on Nov. 4, 2009, which claims priority to Chinese Patent Application No. 200810172290.2, filed on Nov. 4, 2008, all of which are hereby incorporated by reference in their entireties. This application is related to U.S. patent application Ser. No. 13/100,516, filed May 4, 2011, and U.S. patent application Ser. No. 13/250,073, filed on Sep. 30, 2011, both of which are also incorporated herein by reference in their entireties.

US Referenced Citations (18)
Number Name Date Kind
6744742 Koskela et al. Jun 2004 B1
7586977 Usuda et al. Sep 2009 B2
7606212 Kwak et al. Oct 2009 B2
7729717 Xu Jun 2010 B2
20030142979 Raaf et al. Jul 2003 A1
20060092887 Iacono et al. May 2006 A1
20060176867 Kwak et al. Aug 2006 A1
20070155335 Love et al. Jul 2007 A1
20080051127 Xu Feb 2008 A1
20080069035 Pinheiro et al. Mar 2008 A1
20090227256 Goto et al. Sep 2009 A1
20090290559 Pelletier et al. Nov 2009 A1
20100087202 Ventola et al. Apr 2010 A1
20110038305 Mella et al. Feb 2011 A1
20110188517 Wang et al. Aug 2011 A1
20110207419 Wang et al. Aug 2011 A1
20120282973 Usuda et al. Nov 2012 A1
20140010198 Wang et al. Jan 2014 A1
Foreign Referenced Citations (15)
Number Date Country
1430821 Jul 2003 CN
1527522 Sep 2004 CN
1716837 Jan 2006 CN
1770655 May 2006 CN
1855752 Nov 2006 CN
1874179 Dec 2006 CN
1960197 May 2007 CN
101132199 Feb 2008 CN
101741431 Jun 2010 CN
102547951 Jul 2012 CN
1892846 Nov 2008 EP
2216862 Nov 2003 RU
2328079 Jun 2008 RU
WO 2005064821 Jul 2005 WO
WO 2008034370 Mar 2008 WO
Non-Patent Literature Citations (26)
Entry
International Search Report in corresponding PCT Patent Application No. PCT/CN2009/074784 (Feb. 11, 2010).
Written Opinion of the International Searching Authority in corresponding PCT Patent Application No. PCT/CN2009/074784 (Feb. 11, 2010).
Related U.S. Appl. No. 13/250,073 (Aug. 13, 2012).
Related U.S. Appl. No. 13/090,874 (Mar. 29, 2012).
1st Office Action in corresponding Chinese Patent Application No. 200810172290.2 (Dec. 1, 2011).
Chinese Search Report in corresponding Chinese Patent Application No. 200810172290.2 (Oct. 20, 2011).
1st Office Action in corresponding Russian Patent Application No. 2011122603/07 (033491) (Jul. 3, 2012).
1st Office Action in corresponding Australian Patent Application No. 2009311136 (Feb. 21, 2013).
1st Office Action in corresponding European Patent Application No. 09824408.0 (Feb. 11, 2013).
Notice of Allowance in corresponding Russian Patent Application No. 2011122603/07(033491) (Feb. 4, 2013).
Corresponding U.S. Appl. No. 13/100,516 (May 28, 2013).
“3GPP TS-RAN WG1 #39—3rd Generation Partnership Project; Technical Specification Group Services and System Aspects; R1-041412-E-DPDCH & E-DPCCH Gain Factor,” Nov. 2004, 3rd Generation Partnership Project, Valbonne, France.
Extended European Search Report in corresponding European Patent Application No. 09824408.0 (May 25, 2012).
“3GPP TS 25.214—3rd Generation Partnership Project; Specification Group Radio Access Network; Physical Layer Procedures (FDD); (Release 8),” XP050366888, Sep. 2008, pp. 1-89, V8.3.0, 3GPP, Valbonne, France.
“R1-083992; 25.214 CR 0514—Correction to E-DPCH Gain Factor Interpolation in Compressed Mode,” 3GPP Draft, 3GPP TSG-RAN WG1 Meeting #54bis, Sep. 29, 2008, 3GPP, Valbonne, France.
“R1-084176; 25.214 CR 0517—Correction to E-DPCH Gain Factor Interpolation in Compressed Mode,” 3GPP Draft, 3GPP TSG-RAN WG1 Meeting #55, Nov. 10, 2008, 3GPP, Valbonne, France.
1st Office Action in related U.S. Appl. No. 13/100,516 (Mar. 30, 2012).
“3GPP TS 25.213—3rd Generation Partnership Project; Technical Specification Group Radio Access Network; Spreading and modulation (FDD) (Release 6),” Mar. 2005, Version 6.2.0, 3rd Generation Partnership Project, Valbonne, France.
“3GPP 25.214—3rd Generation Partnership Project; Technical Specification Group Radio Access Network; Physical layer procedures (FDD) (Release 7),” May 2008, Version 7.9.0, 3rd Generation Partnership Project, Valbonne, France.
“R1-050060—Gain factor setting for E-DCH,” TSG-RAN WG1 Meeting #40, Feb. 14-18, 2005, Phoenix, Arizona.
“R1-084688—Correction to E-DPDCH gain factor interpolation in compressed mode,” 3GPP TSG RAN WG1 Meeting #55, Nov. 10-Nov. 14, 2008, 3rd Generation Partnership Project, Prague, Czech Republic.
“R1-084689—Correction to E-DPDCH gain factor interpolation in compressed mode,” 3GPP TSG RAN WG1 Meeting #55, Nov. 10-Nov. 14, 2008, 3rd Generation Partnership Project, Prague, Czech Republic.
“3GPP TS 25.214—3rd Generation Partnership Project; Technical Specification Group Radio Access Network; Physical layer procedures (FDD) (Release 6),” Jun. 2005, Version 6.6.0, 3rd Generation Partnership Project, Valbonne, France.
“R1-041412—E-DPDCH & E-DPCCH Gain Factor,” 3GPP TSG RAN WG1 #39, Nov. 15-19, 2004, 3rd Generation Partnership Project, Yokohama, Japan.
International Search Report from the Chinese Patent Office in International Application No. PCT/CN2009/074784 (Feb. 11, 2010).
Final Office Action in corresponding U.S. Appl. No. 13/250,073 (Feb. 14, 2012).
Related Publications (1)
Number Date Country
20140010198 A1 Jan 2014 US
Continuations (3)
Number Date Country
Parent 13563226 Jul 2012 US
Child 14025504 US
Parent 13090874 Apr 2011 US
Child 13563226 US
Parent PCT/CN2009/074784 Nov 2009 US
Child 13090874 US