The above and other aspects and advantages of the present invention will become apparent and more readily appreciated from the following detailed description of certain exemplary embodiments of the invention, taken in conjunction with the accompanying drawings of which:
Reference will now be made in detail to exemplary embodiments of the present invention, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to the like elements throughout. The exemplary embodiments are described below in order to explain the present invention by referring to the figures.
A mobile terminal including a transmitter and a receiver supporting a space time block code (STBC) scheme in a single carrier (SC) system based on a unique word (UW) according to the present invention may include a public switched telephone network (PSTN) terminal, a voice over Internet protocol (VoIP) terminal, a session initiation protocol (SIP) terminal, a media gateway control (Megaco) terminal, a personal digital assistant (PDA), a mobile phone, a personal communication service (PCS) phone, a hand-held personal computer (PC), a Code Division Multiple Access (CDMA)-2000 (1X, 3X) phone, a Wideband CDMA phone, a dual band/dual mode phone, a Global System for Mobile Communications (GSM) phone, a mobile broadband system (MBS) phone, and a satellite/terrestrial Digital Multimedia Broadcasting (DMB) phone.
As illustrated in
The ST encoder 110 encodes a plurality of symbols, having been received according to a predetermined pattern, using space time encoding, and the predetermined pattern may define the received plurality of symbols in a type of a matrix
The first UW adder 120 generates a first transmission sequence by inserting a first UW after a first symbol, from the encoded plurality of symbols, and the second UW adder 121 generates a second transmission sequence by inserting a second UW after a second symbol, from the encoded plurality of symbols.
The first transmission antenna 131 transmits the generated first transmission sequence, and the second transmission antenna 132 transmits the generated second transmission sequence. Hereinafter, a transmission method supporting an STBC scheme in an SC system based on a UW according to an exemplary embodiment of the present invention will be described by referring to
As illustrated in
In operation S210, the ST encoder 110 encodes the plurality of symbols, having been received according to a predetermined pattern, using space time encoding.
In operation S220, the first UW adder 120 generates the first transmission sequence by inserting a first UW into a transmission sequence of the first symbol, from the plurality of symbols, and in operation S230, the second adder 121 generates the second transmission sequence by inserting a second UW into a transmission sequence of the second symbol, from the plurality of symbols. The generated first and second transmission sequences will be described by referring to
As illustrated in
Similarly, a second transmission sequence in the SC system based on the UW according to the exemplary embodiment of the present invention may include a first block including K elements of symbols s2,K and a single second UW u2, and a second block including K number of symbols s1* and the single second UW u2, and the s2,K is arranged in an order of s2,0, . . . , s2,K−1 and the s1* is arranged in an order of s*1,K−1, . . . , s*1,0.
Consequently, a first transmission antenna 130 may transmit the generated first transmission sequence of operation S240 of
In this case, the {tilde over (s)}m(i) indicates a transpose matrix [sm(i) 0G×1]T, the ũm indicates a transpose matrix [0K×1 um]T, and the xm(i) indicates a transpose matrix [xm,0(i) xm,1(i) . . . xm,N−1(i)]T=[sm,0(i) sm,1(i) . . . sm,K−1(i) um,0 um,1 . . . um,G−1]T=[sm(i) um]T.
Hereinafter, a receiver supporting an STBC scheme in an SC system based on a UW, according to an exemplary embodiment of the present invention will be described by referring to
As illustrated in
The FD-DFE module 450 may include a feed forward filter (FFF) 451, an inverse fast Fourier transform (IFFT) module 452, a P/S module 453, a feedback filter (FBF) 456, an adder 454, and a decision module 455. Hereinafter, a receiving method supporting an STBC scheme in an SC system based on a UW according to the exemplary embodiment of the present invention will be described by referring to
As illustrated in
Initially, the receiver 400 of
In this case, the ‘P’ and ‘Q’ respectively indicate an N×N cyclic shift permutation matrix and a reversed cyclic shift permutation matrix.
In operation S510, the FFT 420 of
In this case, Equation 2 may include interference components WPū1 and WPū2 by a UW, and the interference component process module 430 may generate a second symbol having been eliminated with the interference components WPū1 and WPū2, using a corresponding UW, from the second symbol of the plurality of symbols, in operation S520. The second symbol having been eliminated with the interference components WPū1 and WPū2 may be represented by,
Namely, the plurality of symbols in the frequency domain may be represented by,
The STBC combination module 440 of
In this case, the
In operation S540, the FD-DFE module 450 may generate a receiving sequence by generating a present recovery symbol using a previous recovery symbol and the UW, from the linear combined symbol. The generation of the receiving sequence of
As illustrated in
Hereinafter, the generation of the receiving sequence of
The FFF 451 feed forward filters the linear combined symbol in operation S610, and the inverse fast Fourier transform module performs an inverse fast Fourier transformation with respect to the feed forward filtered symbol in operation S620.
The P/S module 453 transforms the parallel sequence into the serial sequence with respect to the inverse fast Fourier transformed symbol in operation S630, and the FBF 456 feedback filters the previous recovery symbol using the UW in operation S640.
The adder 454 adds the feedback filtered symbol to the serial sequence symbol in operation S650, the adding result may be represented by,
In this case, the ‘B’ indicates a number of a feedback tab, the GRR,k, k=0, . . . , N−1 indicates a coefficient of the FFF 451, and the gFB,p, p=0, . . . , B−1 indicates a coefficient of the FBF 456.
The decision module 455 generates the present recovery symbol by determining each symbol data according to the adding result, consequently the receiving sequence is generated in operation S660.
The above-described embodiment of the present invention may be recorded in computer-readable media including program instructions to implement various operations embodied by a computer. The media may also include, alone or in combination with the program instructions, data files, data structures, and the like. Examples of computer-readable media include magnetic media such as hard disks, floppy disks, and magnetic tape; optical media such as CD ROM disks and DVD; magneto-optical media such as optical disks; and hardware devices that are specially configured to store and perform program instructions, such as read-only memory (ROM), random access memory (RAM), flash memory, and the like. The media may also be a transmission medium such as optical or metallic lines, wave guides, and the like, including a carrier wave transmitting signals specifying the program instructions, data structures, and the like. Examples of program instructions include both machine code, such as produced by a compiler, and files containing higher level code that may be executed by the computer using an interpreter. The described hardware devices may be configured to act as one or more software modules in order to perform the operations of the above-described embodiments of the present invention.
As described above, the transmitter, the receiver, and a method thereof supporting an STBC scheme in an SC system based on a UW according to the exemplary embodiment of the present invention can acquire both a diversity gain and an equalization gain since a signal is transmitted according to a transmission sequence based on a UW, and the UW is used to recover orthogonality of a receiving sequence according to a received signal.
Also, the transmitter, the receiver, and a method of supporting an STBC scheme in an SC system based on a UW according to the exemplary embodiment of the present invention which can achieve an enhanced performance without an error propagation since a signal is transmitted according to a transmission sequence based on a UW, and the UW is used to recover orthogonality of a receiving sequence according to a received signal.
Although a few exemplary embodiments of the present invention have been shown and described, the present invention is not limited to the described exemplary embodiments. Instead, it would be appreciated by those skilled in the art that changes may be made to these exemplary embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the claims and their equivalents.
Number | Date | Country | Kind |
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10-2006-0100325 | Oct 2006 | KR | national |