TRANSMISSION DEVICE AND TRANSMISSION PROCEDURE

DE602017093799T2Active Publication Date: 2026-02-04PANASONIC INTELLECTUAL PROPERTY CORP OF AMERICA
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Patent Information

Application Number
DE602017093799
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Filing Date
2017-12-08
Publication Date
2026-02-04
Estimated Expiration
2037-12-08

AI Technical Summary

Technical Problem

Existing transmission methods do not effectively improve single stream and multi-stream data reception quality in line of sight (LOS) propagation environments, particularly when using multi-carrier schemes like OFDM.

Method used

A transmission method involving a configuration that includes error correction encoding, mapping, signal processing with weighting synthesis and phase changing, and radio transmission using multiple antennas to enhance data reception quality, specifically applying phase changes and cyclic delay diversity to improve signal quality.

Benefits of technology

The method enhances single stream and multi-stream data reception quality in LOS environments by providing a high-quality communication service through improved signal processing and diversity techniques.

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Description

TECHNICAL FIELD

[0001] The present invention relates in particular to transmission devices and reception devices that communicate by using multiple antennas.BACKGROUND ART

[0002] In a line of sight (LOS) environment in which a direct wave is dominant, one example of a communications method that uses multiple antennas is the multiple-input multiple-output (MIMO) communications method, and one example of a transmission method for achieving favorable reception quality is the method disclosed in Non-Patent Literature (NPTL) 1.

[0003] FIG. 17 illustrates one example of a configuration of a transmission device based on the Digital Video Broadcasting - Next Generation Handheld (DVB-NGH) standard, in a case where there are two transmitting antennas and two transmission modulated signals (transmission streams). This example is disclosed in NPTL 1. In the transmission device, data 003 encoded by encoder 002 is split into data 005A and data 005B by splitter 004. Data 005A is interleaved by interleaver 004A and mapped by mapper 006A. Similarly, data 005B is interleaved by interleaver 004B and mapped by mapper 006B. Weighting synthesizers 008A, 008B receive inputs of mapped signals 007A, 007B, and weighting synthesize these signals to generate weighting synthesized signals 009A, 016B. The phase of weighting synthesized signal 016B is then changed. Then, radio units 010A, 010B perform processing related to orthogonal frequency division multiplexing (OFDM) and processing such as frequency conversion and / or amplification, and transmit transmission signal 011A from antenna 012A and transmission signal 011B from antenna 012B.

[0004] The conventional configuration does not consider transmitting single stream signals together. In such a case, in particular, it is favorable to implement a new transmission method for improving data reception quality in the reception device that receives the single stream. Patent Application US 2013 / 121307 A1 relates to MIMO communication. A first and second baseband signals 307A and 307B are subject to precoding via weighting units 308A and 308B, respectively, so as to generate a first and second precoded signal 309A and 316B. A first pilot inserter 5101 inserts a pilot signal 5102A into the first precoded signal. A first phase changer 317B applies a phase change of π / 2*1 the second precoded signal, with Δ=π / 2. A second pilot inserter 5101 inserts a pilot signal 5102B in the phase-changed second precoded signal. The change is performed based on information 315 regarding the information processing scheme. Patent Application EP 2 169 846 A1 relates to mobile communication with multiple users (MIMO). Multiple streams are each duplicated according to the number of antennas, and the duplicated streams precoded. For the duplicated signals, delay diversity or cyclic delay diversity (CDD) is applied by setting different path delays for achieving uniform quality of the signal over different streams. If the communication opponents are moving fast, this control may be difficult. The signal quality is improved by the CDD over the precoding, so that the precoding is performed before the CDD, achieving a greater delay diversity effect. Patent Application EP 3 361 657 A1 relates to MIMO communication, including weighting synthesizer 203, first pilot inserter 207A, first phase changer 205B, second pilot inserter 207B, and second phase changer 209B. First / second precoded signals are generated by a weighting synthesizer, performing a precoding of first / second baseband signals. A pilot signal is inserted into the first precoded signal by pilot inserter 207A. The second precoded signal is subject to a phase change by phase changer 205B. A second pilot signal is inserted into the phase changed second precoded signal by pilot inserter 207B. The pilot-inserted phase-changed second precoded signal is subjected to a phase change by phase changer 209B. The phase change applied is y(i) or δ(i).Phase changer 209B may perform cyclic delay diversity (CDD) or cyclic shift diversity (CSD). In case of a single stream modulated signal transmission 5701, CDD / CSD unit 5407 does not perform a phase change CDC processing. Whether or not a phased change and CDD / CSD is performed depends on the transmission method (i.e. the communication scheme).Citation ListNon-patent Literature

[0005] [NPTL 1] "MIMO for DVB-NGH, the next generation mobile TV broadcasting," IEEE Commun. Mag., vol.57, no.7, pp.130-137, July 2013. [NPTL 2] "Standard conformable antenna diversity techniques for OFDM and its application to the DVB-T system," IEEE Globecom 2001, pp.3100-3105, Nov. 2001. [NPTL 3] IEEE P802.11n (D3.00) Draft STANDARD for Information Technology-Telecommunications and information exchange between systems-Local and metropolitan area networks-Specific requirements-Part11: Wireless LAN Medium Access Control (MAC) and Physical Layer (PHY) specifications, 2007. SUMMARY OF THE INVENTIONTECHNICAL PROBLEM

[0006] The present invention relates to a transmission method used when transmitting a combination of single stream signals and multi-stream signals under the use of a multi-carrier transmission scheme, such as OFDM, and via this, has an object to improve single stream data reception quality and multi-stream data reception quality in a propagation environment including LOS (line of sight).SOLUTIONS TO PROBLEM

[0007] The present invention is defined by the features of the independent claims, with preferred embodiments being specified in the dependent claims. References to embodiments which do not fall under the scope of the claims are to be understood as examples useful for understanding the invention. The claims are directed to Embodiment B1. The remaining embodiments are only for explanatory purposes.ADVANTAGEOUS EFFECT(S) OF INVENTION

[0008] In this way, according to the present invention, it is possible to provide a high-quality communications service since it is possible to improve single stream data reception quality and improve multi-stream data reception quality in a propagation environment including LOS (line of sight).BRIEF DESCRIPTION OF DRAWINGS

[0009] FIG. 1 illustrates one example of a configuration of a transmission device according to an embodiment. FIG. 2 illustrates one example of a configuration of the signal processor illustrated in FIG. 1. FIG. 3 illustrates one example of a configuration of the radio unit illustrated in FIG. 1. FIG. 4 illustrates one example of a frame configuration of a transmission signal illustrated in FIG. 1. FIG. 5 illustrates one example of a frame configuration of a transmission signal illustrated in FIG. 1. FIG. 6 illustrates one example of a configuration of components relevant to control information generation in FIG. 2. FIG. 7 illustrates one example of a configuration of the antenna unit illustrated in FIG. 1. FIG. 8 illustrates one example of a configuration of a reception device according to an embodiment. FIG. 9 illustrates one example of the relationship between a transmission device and a reception device. FIG. 10 illustrates one example of a configuration of the antenna unit illustrated in FIG. 8. FIG. 11 illustrates part of the frame illustrated in FIG. 5. FIG. 12 illustrates one example of a modulation scheme used by the mapper illustrated in FIG. 1. FIG. 13 illustrates one example of a frame configuration of a transmission signal illustrated in FIG. 1. FIG. 14 illustrates one example of a frame configuration of a transmission signal illustrated in FIG. 1. FIG. 15 illustrates one example of a configuration used when CDD is used. FIG. 16 illustrates one example of a carrier arrangement used when OFDM is used. FIG. 17 illustrates an example of a configuration of a transmission device based on the DVB-NGH standard. FIG. 18 illustrates one example of a configuration of the signal processor illustrated in FIG. 1. FIG. 19 illustrates one example of a configuration of the signal processor illustrated in FIG. 1. FIG. 20 illustrates one example of a configuration of the signal processor illustrated in FIG. 1. FIG. 21 illustrates one example of a configuration of the signal processor illustrated in FIG. 1. FIG. 22 illustrates one example of a configuration of the signal processor illustrated in FIG. 1. FIG. 23 illustrates one example of a configuration of a base station. FIG. 24 illustrates one example of a configuration of a terminal. FIG. 25 illustrates one example of a frame configuration of a modulated signal. FIG. 26 illustrates one example of transmission between a base station and a terminal. FIG. 27 illustrates one example of transmission between a base station and a terminal. FIG. 28 illustrates one example of a configuration of the signal processor illustrated in FIG. 1. FIG. 29 illustrates one example of a configuration of the signal processor illustrated in FIG. 1. FIG. 30 illustrates one example of a configuration of the signal processor illustrated in FIG. 1. FIG. 31 illustrates one example of a configuration of the signal processor illustrated in FIG. 1. FIG. 32 illustrates one example of a configuration of the signal processor illustrated in FIG. 1. FIG. 33 illustrates one example of a configuration of the signal processor illustrated in FIG. 1. FIG. 34 illustrates one example of the system configuration in a state in which transmission is being performed between a base station and a terminal. FIG. 35 illustrates one example of communication between a base station and a terminal. FIG. 36 illustrates an example of data included in a reception capability notification symbol transmitted by the terminal illustrated in FIG. 35. FIG. 37 illustrates an example of data included in a reception capability notification symbol transmitted by the terminal illustrated in FIG. 35. FIG. 38 illustrates an example of data included in a reception capability notification symbol transmitted by the terminal illustrated in FIG. 35. FIG. 39 illustrates one example of a frame configuration of a transmission signal illustrated in FIG. 1. FIG. 40 illustrates one example of a frame configuration of a transmission signal illustrated in FIG. 1. FIG. 41 illustrates one example of a configuration of a reception device included in the terminal in FIG. 24. FIG. 42 illustrates one example of a frame configuration when a base station or AP uses a multi-carrier transmission scheme and transmits a single modulated signal. FIG. 43 illustrates one example of a frame configuration when a base station or AP uses a single-carrier transmission scheme and transmits a single modulated signal. FIG. 44 illustrates one example of a configuration of a transmission device included in, for example, a base station, access point, or broadcast station. FIG. 45 illustrates one example of a symbol arrangement method with respect to the time axis of a signal. FIG. 46 illustrates one example of a symbol arrangement method with respect to the frequency axis of a signal. FIG. 47 illustrates one example of a symbol arrangement method with respect to the time and frequency axes of a signal. FIG. 48 illustrates a second example of a symbol arrangement method with respect to the time axis of a signal. FIG. 49 illustrates a second example of a symbol arrangement method with respect to the frequency axis of a signal. FIG. 50 illustrates one example of a symbol arrangement method with respect to the time and frequency axes of a signal. FIG. 51 illustrates one example of a frame configuration of a modulated signal transmitted by a base station or AP. FIG. 52 illustrates one example of a frame configuration when single stream modulated signal transmission 5101 in FIG. 51 is performed. FIG. 53 illustrates one example of a frame configuration when multi-stream multi-modulated-signal transmission 5102 in FIG. 51 is performed. FIG. 54 illustrates one example of a configuration of a signal processor in a transmission device included in a base station. FIG. 55 illustrates one example of a configuration of a radio unit. FIG. 56 illustrates one example of a configuration of a signal processor in a transmission device in a base station. FIG. 57 illustrates one example of a frame configuration of a modulated signal transmitted by a base station or AP. FIG. 58 illustrates one example of a frame configuration when single stream modulated signal transmission 5701 in FIG. 57 is performed. FIG. 59 illustrates a first example of how phase changers are arranged before and after a weighting synthesizer. FIG. 60 illustrates a second example of how phase changers are arranged before and after a weighting synthesizer. FIG. 61 illustrates a third example of how phase changers are arranged before and after a weighting synthesizer. FIG. 62 illustrates a fourth example of how phase changers are arranged before and after a weighting synthesizer. FIG. 63 illustrates a fifth example of how phase changers are arranged before and after a weighting synthesizer. FIG. 64 illustrates a sixth example of how phase changers are arranged before and after a weighting synthesizer. FIG. 65 illustrates a seventh example of how phase changers are arranged before and after a weighting synthesizer. FIG. 66 illustrates an eighth example of how phase changers are arranged before and after a weighting synthesizer. FIG. 67 illustrates a ninth example of how phase changers are arranged before and after a weighting synthesizer. FIG. 68 illustrates operations performed by the mapper illustrated in FIG. 1. FIG. 69 illustrates an example of a distribution of signal points in an in-phase I-quadrature Q plane when QPSK is used. FIG. 70 illustrates an example of a distribution of signal points in an in-phase I-quadrature Q plane when QPSK is used. FIG. 71 illustrates an example of a distribution of signal points in an in-phase I-quadrature Q plane when QPSK is used. FIG. 72 illustrates an example of a distribution of signal points in an in-phase I-quadrature Q plane when QPSK is used. FIG. 73 illustrates one example of a configuration of a transmission device in a base station or AP. FIG. 74 illustrates operations performed by the mapper illustrated in FIG. 73. FIG. 75 illustrates operations performed by the mapper illustrated in FIG. 73. FIG. 76 illustrates operations performed by the mapper illustrated in FIG. 1. FIG. 77 illustrates operations performed by the mapper illustrated in FIG. 73. FIG. 78 illustrates operations performed by the mapper illustrated in FIG. 73. FIG. 79 illustrates an example of data included in a reception capability notification symbol transmitted by the terminal illustrated in FIG. 35. FIG. 80 illustrates one example of a frame configuration. FIG. 81 illustrates one example of a frame configuration of a transmission signal illustrated in FIG. 1. FIG. 82 illustrates one example of a frame configuration of a transmission signal illustrated in FIG. 1. FIG. 83 illustrates one example of a spectrum of a transmission signal illustrated in FIG. 1. FIG. 84 illustrates an example of a distribution of signal points in an in-phase I-quadrature Q plane when BPSK is used. FIG. 85 illustrates an example of a distribution of signal points when symbol number i is an even number. FIG. 86 illustrates signal points of a precoded signal in an in-phase I-quadrature Q plane when BPSK is used. FIG. 87 illustrates signal points of a weighting synthesized signal in an in-phase I-quadrature Q plane. FIG. 88 illustrates one example of a frame configuration of a transmission signal transmitted by a base station or AP. FIG. 89 illustrates one example of a configuration of a reception device. FIG. 90 illustrates one example of a configuration of a transmission device. FIG. 91 illustrates one example of a configuration of the signal processor illustrated in FIG. 90. FIG. 92 illustrates one example of a frame configuration of a modulated signal transmitted by the transmission device illustrated in FIG. 90. FIG. 93 illustrates one example of a frame configuration of a modulated signal transmitted by the transmission device illustrated in FIG. 90. FIG. 94 illustrates a specific example of a reception capability notification symbol transmitted by the terminal illustrated in FIG. 35. FIG. 95 illustrates one example of a configuration of the reception capability notification symbol related to a single-carrier scheme and an OFDM scheme illustrated in FIG. 94. FIG. 96 illustrates one example of a configuration of the reception capability notification symbol related to a single-carrier scheme illustrated in FIG. 94. FIG. 97 illustrates one example of a configuration of the reception capability notification symbol related to an OFDM scheme illustrated in FIG. 94. FIG. 98 illustrates a specific example of a reception capability notification symbol transmitted by the terminal illustrated in FIG. 35. FIG. 99 illustrates one example of a configuration of the reception capability notification symbol related to an OFDM scheme illustrated in FIG. 94. FIG. 100 illustrates one example of a configuration of the reception capability notification symbol related to an OFDM scheme illustrated in FIG. 94. FIG. 101 illustrates one example of a configuration of the reception capability notification symbol related to an OFDM scheme illustrated in FIG. 94. FIG. 102 illustrates one example of a configuration of the reception capability notification symbol related to an OFDM scheme illustrated in FIG. 94. FIG. 103 illustrates one example of input / output data of the (error correction) encoder used in the communications device (transmission device). FIG. 104 illustrates one example of a configuration of an error correction decoding unit. FIG. 105A illustrates one example of a configuration of a capability notification symbol transmitted by the terminal to the communication partner, such as a base station, for indicating transmission / reception capability. FIG. 105B illustrates one example of a configuration of extended capabilities 1(10504A_1) through N(10504A_N) in FIG. 105A. FIG. 105C illustrates one example of a symbol for transmitting information on whether reception for a plurality of single-carrier scheme streams is supported. FIG. 106 illustrates one example of a symbol for transmitting information on whether reception for a plurality of OFDM scheme streams is supported. FIG. 107 illustrates one example of a symbol for transmitting information on a scheme supported by OFDM scheme. FIG. 108 illustrates one example of a symbol for transmitting information on a scheme supported by single-carrier scheme. FIG. 109 illustrates one example of a symbol for transmitting information on whether reception for a plurality of streams in OFDMA is supported. FIG. 110 illustrates one example of a symbol for transmitting information on whether OFDMA scheme demodulation is supported and a symbol for transmitting information on whether reception for a plurality of streams in OFDMA is supported. DESCRIPTION OF EXEMPLARY EMBODIMENTS

[0010] Hereinafter, embodiments according to the present invention will be described in detail with reference to the drawings.(EMBODIMENT 1)

[0011] A transmission method, transmission device, reception method, and reception device according to this embodiment will be described in detail.

[0012] FIG. 1 illustrates one example of a configuration of a transmission device according to this embodiment, such as a base station, access point, or broadcast station. Error correction encoder 102 receives inputs of data 101 and control signal 100, and based on information related to the error correction code included in control signal 100 (e.g., error correction code information, code length (block length), encode rate), performs error correction encoding, and outputs encoded data 103. Note that error correction encoder 102 may include an interleaver. In such a case, error correction encoder 102 may rearrange the encoded data before outputting encoded data 103.

[0013] Mapper 104 receives inputs of encoded data 103 and control signal 100, and based on information on the modulated signal included in control signal 100, performs mapping in accordance with the modulation scheme, and outputs mapped signal (baseband signal) 105_1 and mapped signal (baseband signal) 105_2. Note that mapper 104 generates mapped signal 105_1 using a first sequence and generates mapped signal 105_2 using a second sequence. Here, the first sequence and second sequence are different.

[0014] Signal processor 106 receives inputs of mapped signals 105_1 and 105_2, signal group 110, and control signal 100, performs signal processing based on control signal 100, and outputs signal-processed signals 106_A and 106_B. Here, signal-processed signal 106_A is expressed as u1(i), and signal-processed signal 106_B is expressed as u2(i) (i is a symbol number; for example, i is an integer that is greater than or equal to 0). Note that details regarding the signal processing will be described with reference to FIG. 2 later.

[0015] Radio unit 107_A receives inputs of signal-processed signal 106_A and control signal 100, and based on control signal 100, processes signal-processed signal 106_A and outputs transmission signal 108_A. Transmission signal 108_A is then output as radio waves from antenna unit #A (109_A).

[0016] Similarly, radio unit 107_B receives inputs of signal-processed signal 106_B and control signal 100, and based on control signal 100, processes signal-processed signal 106_B and outputs transmission signal 108_B. Transmission signal 108_B is then output as radio waves from antenna unit #B (109_B).

[0017] Antenna unit #A (109_A) receives an input of control signal 100. Here, based on control signal 100, antenna unit #A (108_A) processes transmission signal 108_A and outputs the result as radio waves. However, antenna unit #A (109_A) may not receive an input of control signal 100.

[0018] Similarly, antenna unit #B (109_B) receives an input of control signal 100. Here, based on control signal 100, antenna unit #B (108_B) processes transmission signal 108_B and outputs the result as radio waves. However, antenna unit #B (109_B) may not receive an input of control signal 100.

[0019] Note that control signal 100 may be generated based on information transmitted by a device that is the communication partner in FIG. 1, and, alternatively, the device in FIG. 1 may include an input unit, and control signal 100 may be generated based on information input from the input unit.

[0020] FIG. 2 illustrates one example of a configuration of signal processor 106 illustrated in FIG. 1. Weighting synthesizer (precoder) 203 receives inputs of mapped signal 201A (mapped signal 105_1 in FIG. 1), mapped signal 201B (mapped signal 105_2 in FIG. 1), and control signal 200 (control signal 100 in FIG. 1), performs weighting synthesis (precoding) based on control signal 200, and outputs weighted signal 204A and weighted signal 204B. Here, mapped signal 201A is expressed as s1(t), mapped signal 201B is expressed as s2(t), weighted signal 204A is expressed as z1(t), and weighted signal 204B is expressed as z2'(t). Note that one example of t is time (s1(t), s2(t), z1(t), and z2'(t) are defined as complex numbers (accordingly, they may be real numbers)).

[0021] Weighting synthesizer (precoder) 203 performs the following calculation. [MATH. 1] z 1 i z 2 ′ i = a b c d s 1 i s 2 i

[0022] In Equation (1), a, b, c, and d can be defined as complex numbers. Accordingly, a, b, c, and d are complex numbers (and may be real numbers). Note that i is a symbol number.

[0023] Phase changer 205B receives inputs of weighting synthesized signal 204B and control signal 200, applies a phase change to weighting synthesized signal 204B based on control signal 200, and outputs phase-changed signal 206B. Note that phase-changed signal 206B is expressed as z2(t), and z2(t) is defined as a complex number (and may be a real number).

[0024] Next, specific operations performed by phase changer 205B will be described. In phase changer 205B, for example, a phase change of y(i) is applied to z2'(i). Accordingly, z2(i) can be expressed as z2(i) = y(i) × z2'(i) (i is a symbol number (i is an integer that is greater than or equal to 0)).

[0025] For example, the phase change value is set as shown below (N is an integer that is greater than or equal to 2, N is a phase change cycle)(when N is set to an odd number greater than or equal to 3, data reception quality may improve). [MATH. 2] y i = e j 2 × π × i N (j is an imaginary number unit.)

[0026] However, Equation (2) is merely a non-limiting example. Here, phase change value y(i) = e j×δ(i)< .

[0027] Here, z1(i) and z2(i) can be expressed with the following equation. [MATH. 3] z 1 i z 2 i = 1 0 0 y i a b c d s 1 i s 2 i = 1 0 0 e j × δ i a b c d s 1 i s 2 i

[0028] Note that 6(i) is a real number. z1(i) and z2(i) are transmitted from the transmission device at the same time and using the same frequency (same frequency band).

[0029] In Equation (3), the phase change value is not limited to the value used in Equation (2); for example, a method in which the phase is changed cyclically or regularly is conceivable.

[0030] The matrix (precoding matrix) in Equation (1) and Equation (3) is as follows. [MATH. 4] a b c d = F For example, using the following matrix for matrix F is conceivable. [MATH. 5] F = β × e j 0 β × α × e j 0 β × α × e j 0 β × e jπ or [MATH. 6] F = 1 α 2 + 1 e j 0 α × e j 0 α × e j 0 e jπ or [MATH. 7] F = β × e j 0 β × α × e jπ β × α × e j 0 β × e j 0 or [MATH. 8] F = 1 α 2 + 1 e j 0 α × e jπ α × e j 0 e j 0 or [MATH. 9] F = β × α × e j 0 β × e jπ β × e j 0 β × α × e j 0 or [MATH. 10] F = 1 α 2 + 1 α × e j 0 e jπ e j 0 α × e j 0 or [MATH. 11] F = β × α × e j 0 β × e j 0 β × e j 0 β × α × e jπ or [MATH. 12] F = 1 α 2 + 1 α × e j 0 e j 0 e j 0 α × e jπ

[0031] Note that in Equation (5), Equation (6), Equation (7), Equation (8), Equation (9), Equation (10), Equation (11), and Equation (12), α may be a real number and may be an imaginary number, and β may be a real number and may be an imaginary number. However, α is not 0 (zero). β is also not 0 (zero). or [MATH. 13] F = β × cosθ β × sinθ β × sinθ − β × cosθ or [MATH. 14] F = cosθ sinθ sinθ − cosθ or [MATH. 15] F = β × cosθ − β × sinθ β × sinθ β × cosθ or [MATH. 16] F = cosθ − sinθ sinθ cosθ or [MATH. 17] F = β × sinθ − β × cosθ β × cosθ β × sinθ or [MATH. 18] F = sinθ − cosθ cosθ sinθ or [MATH. 19] F = β × sinθ β × cosθ β × cosθ − β × sinθ or [MATH. 20] F = sinθ cosθ cosθ − sinθ

[0032] Note that in Equation (13), Equation (15), Equation (17), and Equation (19), β may be a real number and may be an imaginary number. However, β is not 0 (zero) (θ is a real number). or [MATH. 21] F i = β × e jθ 11 i β × α × e j θ 11 i + λ β × α × e jθ 21 i β × e j θ 21 i + λ + π or [MATH. 22] F i = 1 α 2 + 1 e jθ 11 i α × e j θ 11 i + λ α × e jθ 21 i e j θ 21 i + λ + π or [MATH. 23] F i = β × α × e jθ 21 i β × e j θ 21 i + λ + π β × e jθ 11 i β × α × e j θ 11 i + λ or [MATH. 24] F i = 1 α 2 + 1 α × e jθ 21 i e j θ 21 i + λ + π e jθ 11 i α × e j θ 11 i + λ or [MATH. 25] F i = β × e jθ 11 β × α × e j θ 11 + λ i β × α × e jθ 21 β × e j θ 21 + λ i + π or [MATH. 26] F i = 1 α 2 + 1 e jθ 11 α × e j θ 11 + λ i α × e jθ 21 e j θ 21 + λ i + π or [MATH. 27] F i = β × α × e jθ 21 β × e j θ 21 + λ i + π β × e jθ 11 β × α × e j θ 11 + λ i or [MATH. 28] F i = 1 α 2 + 1 α × e jθ 21 e j θ 21 + λ i + π e jθ 11 α × e j θ 11 + λ i or [MATH. 29] F = β × e jθ 11 β × α × e j θ 11 + λ β × α × e jθ 21 β × e j θ 21 + λ + π or [MATH. 30] F i = 1 α 2 + 1 e jθ 11 α × e j θ 11 + λ α × e jθ 21 e j θ 21 + λ + π or [MATH. 31] F = β × α × e jθ 21 β × e j θ 21 + λ + π β × e jθ 11 β × α × e j θ 11 + λ or [MATH. 32] F = 1 α 2 + 1 α × e jθ 21 e j θ 21 + λ + π e jθ 11 α × e j θ 11 + λ

[0033] However, θ 11 (i), θ 21 (i), and λ(i) are functions (real numbers) of i (symbol number). λ is, for example, a fixed value (real number) (however, λ need not be a fixed value). α may be a real number, and, alternatively, may be an imaginary number. β may be a real number, and, alternatively, may be an imaginary number. However, α is not 0 (zero). β is also not 0 (zero). Moreover, θ 11 and θ 21 are real numbers.

[0034] Moreover, each exemplary embodiment in the present specification can also be carried out by using a precoding matrix other than these matrices. Or [MATH. 33] F i = 1 0 0 1 or [MATH. 34] F i = β 0 0 β or [MATH. 35] F i = 1 0 0 − 1 or [MATH. 36] F i = β 0 0 − β

[0035] Note that in Equation (34) and Equation (36), β may be a real number and, alternatively, may be an imaginary number. However, β is not 0 (zero).

[0036] Inserter 207A receives inputs of weighting synthesized signal 204A, pilot symbol signal (pa(t))(t is time)(251A), preamble signal 252, control information symbol signal 253, and control signal 200, and based on information on the frame configuration included in control signal 200, outputs baseband signal 208A based on the frame configuration.

[0037] Similarly, inserter 207B receives inputs of phase-changed signal 206B, pilot symbol signal (pb(t))(251B), preamble signal 252, control information symbol signal 253, and control signal 200, and based on information on the frame configuration included in control signal 200, outputs baseband signal 208B based on the frame configuration.

[0038] Phase changer 209B receives inputs of baseband signal 208B and control signal 200, applies a phase change to baseband signal 208B based on control signal 200, and outputs phase-changed signal 210B. Baseband signal 208B is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210B (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit).

[0039] Although it will be described later, note that the operation performed by phase changer 209B may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209B is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol).

[0040] FIG. 3 illustrates one example of a configuration of radio units 107_A and 107_B illustrated in FIG. 1. Serial-parallel converter 302 receives inputs of signal 301 and control signal 300 (control signal 100 in FIG. 1), applies a serial-parallel conversion based on control signal 300, and outputs serial-parallel converted signal 303.

[0041] Inverse Fourier transform unit 304 receives inputs of serial-parallel converted signal 303 and control signal 300, and based on control signal 300, applies, as one example of an inverse Fourier transform, an inverse fast Fourier transform (IFFT), and outputs inverse Fourier transformed signal 305.

[0042] Processor 306 receives inputs of inverse Fourier transformed signal 305 and control signal 300, applies processing such as frequency conversion and amplification based on control signal 300, and outputs modulated signal 307.

[0043] (For example, when signal 301 is signal-processed signal 106_A illustrated in FIG. 1, modulated signal 307 corresponds to transmission signal 108_A in FIG. 1. Moreover, when signal 301 is signal-processed signal 106_B illustrated in FIG. 1, modulated signal 307 corresponds to transmission signal 108_B in FIG. 1.)

[0044] FIG. 4 illustrates a frame configuration of transmission signal 108_A illustrated in FIG. 1. In FIG. 4, frequency (carriers) is (are) represented on the horizontal axis and time is represented on the vertical axis. Since a multi-carrier transmission scheme such as OFDM is used, symbols are present in the carrier direction. In FIG. 4, symbols from carriers 1 to 36 are shown. Moreover, in FIG. 4, symbols for time $1 through time $11 are shown.

[0045] In FIG. 4, 401 is a pilot symbol (pilot signal 251A (pa(t) in FIG. 2)), 402 is a data symbol, and 403 is an other symbol. Here, a pilot symbol is, for example, a PSK (phase shift keying) symbol, and is a symbol for the reception device that receives this frame to perform channel estimation (propagation path fluctuation estimation), frequency offset estimation, and phase fluctuation estimation. For example, the transmission device illustrated in FIG. 1 and the reception device that receives the frame illustrated in FIG. 4 may share the transmission method of the pilot symbol.

[0046] Note that mapped signal 201A (mapped signal 105_1 in FIG. 1) is referred to as "stream #1" and mapped signal 201B (mapped signal 105_2 in FIG. 1) is referred to as "stream #2". Note that this also applied to subsequent descriptions.

[0047] Data symbol 402 is a symbol that corresponds to baseband signal 208A generated in the signal processing illustrated in FIG. 2. Accordingly, data symbol 402 satisfies "a symbol including both the symbol "stream #1" and the symbol "stream #2ʺʺ, "the symbol "stream #1ʺʺ, or "the symbol "stream #2"", as determined by the configuration of the precoding matrix used by weighting synthesizer 203.

[0048] Other symbols 403 are symbols corresponding to preamble signal 242 and control information symbol signal 253 illustrated in FIG. 2 (however, the other symbols may include symbols other than a preamble or control information symbol). Here, a preamble may transmit data (control data), and may be configured as, for example, a symbol for signal detection, a signal for performing frequency and time synchronization, or a symbol for performing channel estimation (a symbol for performing propagation path fluctuation estimation). The control information symbol is a symbol including control information for the reception device that received the frame in FIG. 4 to demodulate and decode a data symbol.

[0049] For example, carriers 1 to 36 from time $1 to time 4 in FIG. 4 are other symbols 403. Then, at time $5, carrier 1 through carrier 11 are data symbols 402. At time $5, carrier 12 is pilot symbol 401, at time $5, carriers 13 to 23 are data symbols 402, at time $5, carrier 24 is pilot symbol 401...at time $6, carriers 1 and 2 are data symbols 402, at time $6, carrier 3 is pilot symbol 401...at time $11, carrier 30 is pilot symbol 401, at time $11, carriers 31 to 36 are data symbols 402.

[0050] FIG. 5 illustrates a frame configuration of transmission signal 108_B illustrated in FIG. 1. In FIG. 5, frequency (carriers) is (are) represented on the horizontal axis and time is represented on the vertical axis. Since a multi-carrier transmission scheme such as OFDM is used, symbols are present in the carrier direction. In FIG. 5, symbols from carriers 1 to 36 are shown. Moreover, in FIG. 5, symbols for time $1 through time $11 are shown.

[0051] In FIG. 5, 501 is a pilot symbol (pilot signal 251B (pb(t) in FIG. 2)), 502 is a data symbol, and 503 is an other symbol. Here, a pilot symbol is, for example, a PSK symbol, and is a symbol for the reception device that receives this frame to perform channel estimation (propagation path fluctuation estimation), frequency offset estimation, and phase fluctuation estimation. For example, the transmission device illustrated in FIG. 1 and the reception device that receives the frame illustrated in FIG. 5 may share the transmission method of the pilot symbol.

[0052] Data symbol 502 is a symbol that corresponds to baseband signal 208B generated in the signal processing illustrated in FIG. 2. Accordingly, data symbol 502 satisfies "a symbol including both the symbol "stream #1" and the symbol "stream #2ʺʺ, "the symbol "stream #1"", or "the symbol "stream #2"", as determined by the configuration of the precoding matrix used by weighting synthesizer 203.

[0053] Other symbols 503 are symbols corresponding to preamble signal 252 and control information symbol signal 253 illustrated in FIG. 2 (however, the other symbols may include symbols other than a preamble or control information symbol). Here, a preamble may transmit data (control data), and is configured as, for example, a symbol for signal detection, a signal for performing frequency and time synchronization, or a symbol for performing channel estimation (a symbol for performing propagation path fluctuation estimation). The control information symbol is a symbol including control information for the reception device that received the frame in FIG. 5 to demodulate and decode a data symbol.

[0054] For example, carriers 1 to 36 from time $1 to time 4 in FIG. 5 are other symbols 403. Then, at time $5, carrier 1 through carrier 11 are data symbols 402. At time $5, carrier 12 is pilot symbol 401, at time $5, carriers 13 to 23 are data symbols 402, at time $5, carrier 24 is pilot symbol 401...at time $6, carriers 1 and 2 are data symbols 402, at time $6, carrier 3 is pilot symbol 401...at time $11, carrier 30 is pilot symbol 401, at time $11, carriers 31 to 36 are data symbols 402.

[0055] When a symbol is present in carrier A at time $B in FIG. 4 and a symbol is present in carrier A at time $B in FIG. 5, the symbol in carrier A at time $B in FIG. 4 and the symbol in carrier A at time $B in FIG. 5 are transmitted at the same time and same frequency. Note that the frame configuration is not limited to the configurations illustrated in FIG. 4 and FIG. 5; FIG. 4 and FIG. 5 are mere examples of frame configurations.

[0056] The other symbols in FIG. 4 and FIG. 5 are symbols corresponding to "preamble signal 252 and control information symbol signal 253 in FIG. 2". Accordingly, when an other symbol 503 in FIG. 5 at the same time and same frequency (same carrier) as an other symbol 403 in FIG. 4 transmits control information, it transmits the same data (the same control information).

[0057] Note that this is under the assumption that the frame of FIG. 4 and the frame of FIG. 5 are received at the same time by the reception device, but even when the frame of FIG. 4 or the frame of FIG. 5 has been received, the reception device can obtain the data transmitted by the transmission device.

[0058] FIG. 6 illustrates one example of components relating to control information generation for generating control information symbol signal 253 illustrated in FIG. 2.

[0059] Control information mapper 602 receives inputs of data 601 related to control information and control signal 600, maps data 601 related to control information in using a modulation scheme based on control signal 600, and outputs control information mapped signal 603. Note that control information mapped signal 603 corresponds to control information symbol signal 253 in FIG. 2.

[0060] FIG. 7 illustrates one example of a configuration of antenna unit #A (109_A), antenna #B (109_B) illustrated in FIG. 1 (antenna unit #A (109_A) and antenna unit #B (109_B) are exemplified as including a plurality of antennas).

[0061] Splitter 702 receives an input of transmission signal 701, performs splitting, and outputs transmission signals 703_1, 703_2, 703_3, and 703_4.

[0062] Multiplier 704_1 receives inputs of transmission signal 703_1 and control signal 700, and based on the multiplication coefficient included in control signal 700, multiplies a multiplication coefficient with transmission signal 703_1, and outputs multiplied signal 705_1. Multiplied signal 705_1 is output from antenna 706_1 as radio waves.

[0063] When transmission signal 703_1 is expressed as Tx1(t) (t is time) and the multiplication coefficient is expressed as W1 (W1 can be defined as a complex number and thus may be a real number), multiplied signal 705_1 can be expressed as Tx1(t) × W1.

[0064] Multiplier 704_2 receives inputs of transmission signal 703_2 and control signal 700, and based on the multiplication coefficient included in control signal 700, multiplies a multiplication coefficient with transmission signal 703_2, and outputs multiplied signal 705_2. Multiplied signal 705_2 is output from antenna 706_2 as radio waves.

[0065] When transmission signal 703_2 is expressed as Tx2(t) and the multiplication coefficient is expressed as W2 (W2 can be defined as a complex number and thus may be a real number), multiplied signal 705_2 can be expressed as Tx2(t) × W2.

[0066] Multiplier 704_3 receives inputs of transmission signal 703_3 and control signal 700, and based on the multiplication coefficient included in control signal 700, multiplies a multiplication coefficient with transmission signal 703_3, and outputs multiplied signal 705_3. Multiplied signal 705_3 is output from antenna 706_3 as radio waves.

[0067] When transmission signal 703_3 is expressed as Tx3(t) and the multiplication coefficient is expressed as W3 (W3 can be defined as a complex number and thus may be a real number), multiplied signal 705_3 can be expressed as Tx3(t) × W3.

[0068] Multiplier 704_4 receives inputs of transmission signal 703_4 and control signal 700, and based on the multiplication coefficient included in control signal 700, multiplies a multiplication coefficient with transmission signal 703_4, and outputs multiplied signal 705_4. Multiplied signal 705_4 is output from antenna 706_4 as radio waves.

[0069] When transmission signal 703_4 is expressed as Tx4(t) and the multiplication coefficient is expressed as W4 (W4 can be defined as a complex number and thus may be a real number), multiplied signal 705_4 can be expressed as Tx4(t) × W4.

[0070] Note that "the absolute value of W1, the absolute value of W2, the absolute value of W3, and the absolute value of W4 are equal" may be true. Here, this is the equivalent of having performed a phase change (it goes without saying that the absolute value of W1, the absolute value of W2, the absolute value of W3, and the absolute value of W4 may be unequal).

[0071] Moreover, in FIG. 7, the antenna unit is exemplified as including four antennas (and four multipliers), but the number of antennas is not limited to four; the antenna unit may include two or more antennas.

[0072] When the configuration of antenna unit #A (109_A) in FIG. 1 is as illustrated in FIG. 7, transmission signal 701 corresponds to transmission signal 108_A in FIG. 1. When the configuration of antenna unit #B (109_B) in FIG. 1 is as illustrated in FIG. 7, transmission signal 701 corresponds to transmission signal 108_B in FIG. 1 and transmission signal 108_B in FIG. 1. However, antenna unit #A (109_A) and antenna unit #B (109_B) need not have the configurations illustrated in FIG. 7; as previously described, the antenna units need not receive an input of control signal 100.

[0073] FIG. 8 illustrates one example of a configuration of a reception device that receives a modulated signal upon the transmission device illustrated in FIG. 1 transmitting, for example, a transmission signal having the frame configuration illustrated in FIG. 4 or FIG. 5.

[0074] Radio unit 803X receives an input of reception signal 802X received by antenna unit #X (801X), applies processing such as frequency conversion and a Fourier transform, and outputs baseband signal 804X.

[0075] Similarly, radio unit 803Y receives an input of reception signal 802Y received by antenna unit #Y (801Y), applies processing such as frequency conversion and a Fourier transform, and outputs baseband signal 804Y.

[0076] Note that FIG. 8 illustrates a configuration in which antenna unit #X (801X) and antenna unit #Y (801Y) receive control signal 810 as an input, but antenna unit #X (801X) and antenna unit #Y (801Y) may be configured to not receive an input of control signal 810. Operations performed when control signal 810 is present as an input will be described in detail later.

[0077] FIG. 9 illustrates the relationship between the transmission device and the reception device. Antennas 901_1 and 901_2 in FIG. 9 are transmitting antennas, and antenna 901_1 in FIG. 9 corresponds to antenna unit #A (109_A) in FIG. 1. Antenna 901_2 in FIG. 9 corresponds to antenna unit #B (109_B) in FIG. 1.

[0078] Antennas 902_1 and 902_2 in FIG. 9 are receiving antennas, and antenna 902_1 in FIG. 9 corresponds to antenna unit #X (801X) in FIG. 8. Antenna 902_2 in FIG. 9 corresponds to antenna unit #Y (801Y) in FIG. 8.

[0079] As illustrated in FIG. 9, the signal transmitted from transmitting antenna 901_1 is u1(i), the signal transmitted from transmitting antenna 901_2 is u2(i), the signal received by receiving antenna 902_1 is r1(i), and the signal received by receiving antenna 902_2 is r2(i). Note that i is a symbol number, and, for example, is an integer that is greater than or equal to 0.

[0080] The propagation coefficient from transmitting antenna 901_1 to receiving antenna 902_1 is h11(i), the propagation coefficient from transmitting antenna 901_1 to receiving antenna 902_2 is h21(i), the propagation coefficient from transmitting antenna 901_2 to receiving antenna 902_1 is h12(i), and the propagation coefficient from transmitting antenna 901_2 to receiving antenna 902_2 is h22(i). In this case, the following relation equation holds true. [MATH. 37] r 1 i r 2 i = h 11 i h 12 i h 21 i h 22 i u 1 i u 2 i + n 1 i n 2 i

[0081] Note that n1(i) and n2(i) are noise.

[0082] Channel estimation unit 805_1 of modulated signal u1 in FIG. 8 receives an input of baseband signal 804X, and using the preamble and / or pilot symbol illustrated in FIG. 4 or FIG. 5, performs channel estimation on modulated signal u1, that is to say, estimates h11(i) in Equation (37), and outputs channel estimated signal 806_1.

[0083] Channel estimation unit 805_2 of modulated signal u2 receives an input of baseband signal 804X, and using the preamble and / or pilot symbol illustrated in FIG. 4 or FIG. 5, performs channel estimation on modulated signal u2, that is to say, estimates h12(i) in Equation (37), and outputs channel estimated signal 806_2.

[0084] Channel estimation unit 807_1 of modulated signal u1 receives an input of baseband signal 804Y, and using the preamble and / or pilot symbol illustrated in FIG. 4 or FIG. 5, performs channel estimation on modulated signal u1, that is to say, estimates h21(i) in Equation (37), and outputs channel estimated signal 808_1.

[0085] Channel estimation unit 807_2 of modulated signal u2 receives an input of baseband signal 804Y, and using the preamble and / or pilot symbol illustrated in FIG. 4 or FIG. 5, performs channel estimation on modulated signal u2, that is to say, estimates h22(i) in Equation (37), and outputs channel estimated signal 808_2.

[0086] Control information decoder 809 receives inputs of baseband signals 804X and 804Y, demodulates and decodes control information including "other symbols" in FIG. 4 and FIG. 5, and outputs control signal 810 including control information.

[0087] Signal processor 811 receives inputs of channel estimated signals 806_1, 806_2, 808_1, and 808_2, baseband signals 804X and 804Y, and control signal 810, performs demodulation and decoding using the relationship in Equation (37) or based on control information (for example, information on a modulation scheme or a scheme relating to the error correction code) in control signal 810, and outputs reception data 812.

[0088] Note that control signal 810 need not be generated via the method illustrated in FIG. 8. For example, control signal 810 in FIG. 8 may be generated based on information transmitted by a device that is the communication partner (FIG. 1) in FIG. 8, and, alternatively, the device in FIG. 8 may include an input unit, and control signal 810 may be generated based on information input from the input unit.

[0089] FIG. 10 illustrates one example of a configuration of antenna unit #X (801X) and antenna unit #Y (801Y) illustrated in FIG. 8 (antenna unit #X (801X) and antenna unit #Y (801Y) are exemplified as including a plurality of antennas).

[0090] Multiplier 1003_1 receives inputs of reception signal 1002_1 received by antenna 1001_1 and control signal 1000, and based on information on a multiplication coefficient included in control signal 1000, multiplies reception signal 1002_1 with the multiplication coefficient, and outputs multiplied signal 1004_1.

[0091] When reception signal 1002_1 is expressed as Rx1(t) (t is time) and the multiplication coefficient is expressed as D1 (D1 can be defined as a complex number and thus may be a real number), multiplied signal 1004_1 can be expressed as Rx1(t) × D1.

[0092] Multiplier 1003_2 receives inputs of reception signal 1002_2 received by antenna 1001_2 and control signal 1000, and based on information on a multiplication coefficient included in control signal 1000, multiplies reception signal 1002_2 with the multiplication coefficient, and outputs multiplied signal 1004_2.

[0093] When reception signal 1002_2 is expressed as Rx2(t) and the multiplication coefficient is expressed as D2 (D2 can be defined as a complex number and thus may be a real number), multiplied signal 1004_2 can be expressed as Rx2(t) × D2.

[0094] Multiplier 1003_3 receives inputs of reception signal 1002_3 received by antenna 1001_3 and control signal 1000, and based on information on a multiplication coefficient included in control signal 1000, multiplies reception signal 1002_3 with the multiplication coefficient, and outputs multiplied signal 1004_3.

[0095] When reception signal 1002_3 is expressed as Rx3(t) and the multiplication coefficient is expressed as D3 (D3 can be defined as a complex number and thus may be a real number), multiplied signal 1004_3 can be expressed as Rx3(t) × D3.

[0096] Multiplier 1003_4 receives inputs of reception signal 1002_4 received by antenna 1001_4 and control signal 1000, and based on information on a multiplication coefficient included in control signal 1000, multiplies reception signal 1002_4 with the multiplication coefficient, and outputs multiplied signal 1004_4.

[0097] When reception signal 1002_4 is expressed as Rx4(t) and the multiplication coefficient is expressed as D4 (D4 can be defined as a complex number and thus may be a real number), multiplied signal 1004_4 can be expressed as Rx4(t) × D4.

[0098] Synthesizer 1005 receives inputs of multiplied signals 1004_1, 1004_2, 1004_3, and 1004_4, synthesizes multiplied signals 1004_1, 1004_2, 1004_3, and 1004_4, and outputs synthesized signal 1006. Note that synthesized signal 1006 is expressed as Rx1(t) × D1 + Rx2(t) × D2 + Rx3(t) × D3 + Rx4(t) × D4.

[0099] In FIG. 10, the antenna unit is exemplified as including four antennas (and four multipliers), but the number of antennas is not limited to four; the antenna unit may include two or more antennas.

[0100] When the configuration of antenna unit #X (801X) in FIG. 8 is as illustrated in FIG. 10, reception signal 802X corresponds to synthesized signal 1006 in FIG. 10, and control signal 710 corresponds to control signal 1000 in FIG. 10. When the configuration of antenna unit #Y (801Y) in FIG. 8 is as illustrated in FIG. 10, reception signal 802Y corresponds to synthesized signal 1006 in FIG. 10, and control signal 710 corresponds to control signal 1000 in FIG. 10. However, antenna unit #X (801X) and antenna unit #Y 801Y need not have the configuration illustrated in FIG. 10; as stated before, the antenna unit may not receive an input of control signal 710.

[0101] Note that control signal 800 may be generated based on information transmitted by a device that is the communication partner, and, alternatively, the device may include an input unit, and control signal 800 may be generated based on information input from the input unit.

[0102] Next, signal processor 106 in the transmission device illustrated in FIG. 1 is inserted as phase changer 205B and phase changer 209B, as illustrated in FIG. 2. The characteristics and advantageous effects of this configuration will be described.

[0103] As described with reference to FIG. 4 and FIG. 5, phase changer 205B applies precoding (weighted synthesis) to mapped signal s1(i) (201A) (i is a symbol number; i is an integer greater than or equal to 0) obtained via mapping using the first sequence and mapped signal s2(i) (201B) obtained via mapping using the second sequence, and applies a phase change to one of the obtained weighting synthesized signals 204A and 204B. Weighting synthesized signal 204A and phase-changed signal 206B are then transmitted at the same frequency and at the same time. Accordingly, in FIG. 4 and FIG. 5, a phase change is applied to data symbol 502 in FIG. 5 (in the case of FIG. 2, since phase changer 205B applies this to weighting synthesized signal 204B, a phase change is applied to data symbol 502 in FIG. 5; when a phase change is applied to weighting synthesized signal 204A, a phase change is applied to data symbol 402 in FIG. 4; this will be described later).

[0104] For example, FIG. 11 illustrates an extraction of carrier 1 through carrier 5 and time $4 through time $6 from the frame illustrated in FIG. 5. Note that in FIG. 11, similar to FIG. 5, 501 is a pilot symbol, 502 is a data symbol, and 503 is an other symbol.

[0105] As described above, among the symbols illustrated in FIG. 11, phase changer 205B applies a phase change to the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6).

[0106] Accordingly, the phase change values for the data symbols illustrated in FIG. 11 can be expressed as "e j×δ15(i)< " for (carrier 1, time $5), "e j×δ25(i)< " for (carrier 2, time $5), "e j×δ85(i)< " for (carrier 3, time $5), "e j×δ45(i)< " for (carrier 4, time $5), "e j×855(i)< " (carrier 5, time $5), "e j×δ16(i)< " for (carrier 1, time $6), "e j×δ26(i)< " for (carrier 2, time $6), "e j×δ46(i)< " for (carrier 4, time $6), and "e j×δ56(i)< " for (carrier 5, time $6).

[0107] Among the symbols illustrated in FIG. 11, the other symbols located at (carrier 1, time $4), (carrier 2, time $4), (carrier 3, time $4), (carrier 4, time $4), and (carrier 5, time $4), and the pilot symbol located at (carrier 3, time $6) are not subject to phase change by phase changer 205B.

[0108] This point is a characteristic of phase changer 205B. Note that, as illustrated in FIG. 4, data carriers are arranged at "the same carriers and the same times" as the symbols subject to phase change in FIG. 11, which are the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6). In other words, in FIG. 4, the symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6) are data symbols (in other words, data symbols that perform MIMO transmission (transmit a plurality of streams) are subject to phase change by phase changer 205B).

[0109] One example of the phase change that phase changer 205B applies to the data symbols is the method given in Equation (2) in which phase change is applied to the data symbols regularly (such as at each cycle N) (however, the phase change method implemented on the data symbols is not limited to this example).

[0110] With this, when the environment is one in which the direct waves are dominant, such as in an LOS environment, it is possible to achieve improved data reception quality in the reception device with respect to the data symbols that perform MIMO transmission (transmit a plurality of streams). Next, the advantageous effects of this will be described.

[0111] For example, the modulation scheme used by mapper 104 in FIG. 1 is quadrature phase shift keying (QPSK) (mapped signal 201A in FIG. 2 is a QPSK signal, and mapped signal 201B is a QPSK signal; in other words, two QPSK streams are transmitted). Accordingly, for example, using channel estimated signals 806_1 and 806_2, 16 candidate signal points are obtained by signal processor 811 illustrated in FIG. 8 (2-bit transmission is possible with QPSK. Accordingly, since there are two streams, 4-bit transmission is achieved. Thus, there are 2 4< = 16 candidate signal points) (note that 16 other candidate signal points are obtained from using channel estimated signals 808_1 and 808_2 as well, but since description thereof is the same as described above, the following description will focus on the 16 candidate signal points obtained by using channel estimated signals 806_1 and 806_2).

[0112] FIG. 12 illustrates an example of the state resulting from such a case. In (A) and (B) in FIG. 12, in-phase I is represented on the horizontal axis and quadrature Q is represented on the vertical axis, and 16 candidate signal points are present in the illustrated in-phase I-quadrature Q planes (among the 16 candidate signal points, one is a signal point that is transmitted by the transmission device; accordingly, this is referred to as "16 candidate signal points").

[0113] When the environment is one in which the direct waves are dominant, such as in an LOS environment, consider a first case in which phase changer 205B is omitted from the configuration illustrated in FIG. 2 (in other words, a case in which phase change is not applied by phase changer 205B in FIG. 2).

[0114] In the first case, since phase change is not applied, there is a possibility that the state illustrated in (A) in FIG. 12 will be realized. When the state falls into the state illustrated in (A) in FIG. 12, as illustrated by "signal points 1201 and 1202", "signal points 1203, 1204, 1205, and 1206", and "signal points 1207, 1208", the signal points become dense (the distances between some signal points shorten). Accordingly, in the reception device illustrated in FIG. 8, data reception quality may deteriorate.

[0115] In order to remedy this phenomenon, in FIG. 2, phase changer 205B is inserted. When phase changer 205B is inserted, due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12. With respect to this state, since error correction code is introduced, high error correction performance is achieved, and in the reception device illustrated in FIG. 8, high data reception quality can be achieved.

[0116] Note that in FIG. 2, a phase change is not applied by phase changer 205B in FIG. 2 to "pilot symbols, preamble" for demodulating (wave detection of) data symbols, such as pilot symbols and a preamble, and for channel estimation. With this, among data symbols, "due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12" can be realized.

[0117] However, even if a phase change is applied by phase changer 205B in FIG. 2 to "pilot symbols, preamble" for demodulating (wave detection of) data symbols, such as pilot symbols and a preamble, and for channel estimation, the following is possible: "among data symbols, "due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12" can be realized." In such a case, a phase change must be applied to pilot symbols and / or a preamble under some condition. For example, one conceivable method is to implement a rule which is separate from the rule for applying a phase change to a data symbol, and "applying a phase change to a pilot symbol and / or a preamble". Another example is a method of regularly applying a phase change to a data symbol in a cycle N, and regularly applying a phase change to a pilot symbol and / or a preamble in a cycle M (N and M are integers that are greater than or equal to 2).

[0118] As described above, phase changer 209B receives inputs of baseband signal 208B and control signal 200, applies a phase change to baseband signal 208B based on control signal 200, and outputs phase-changed signal 210B. Baseband signal 208B is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210B (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit). Note that the operation performed by phase changer 209B may be CDD (cyclic delay diversity) (CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209B is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol (accordingly, in such a case, symbols subject to symbol number i include data symbols, pilot symbols, control information symbols, and preambles (other symbols))(in the case of FIG. 2, since phase changer 209B applies a phase change to baseband signal 208B, a phase change is applied to each symbol in FIG. 5; when a phase change is applied to baseband signal 208A in FIG. 2, a phase change is applied to each symbol in FIG. 4; this will be described later.)

[0119] Accordingly, in the frame illustrated in FIG. 5, phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $1.

[0120] Similarly, phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $2, phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $3, phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $4, phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $5, phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $6, phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $7, phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $8, phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $9, phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $10, phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $11.

[0121] FIG. 13 illustrates a frame configuration different from the frame configuration illustrated in FIG. 4 of transmission signal 108_A illustrated in FIG. 1. In FIG. 13, objects that operate the same as in FIG. 4 share like reference marks. In FIG. 13, frequency (carriers) is (are) represented on the horizontal axis and time is represented on the vertical axis. Similar to FIG. 4, since a multi-carrier transmission scheme such as OFDM is used, symbols are present in the carrier direction. In FIG. 13, similar to FIG. 4, symbols for carrier 1 to 36 are shown. Moreover, similar to FIG. 4, in FIG. 13 as well, symbols for time $1 through time $11 are shown.

[0122] In FIG. 13, in addition to pilot symbols 401 (pilot signal 251A (pat(t)) in FIG. 2), data symbols 402, and other symbols 403, null symbols 1301 are also shown.

[0123] Null symbol 1301 has an in-phase component I of zero (0) and a quadrature component Q of zero (0) (note that this symbol is referred to as a "null symbol" here, but this symbol may be referred to as something else).

[0124] In FIG. 13, null symbols are inserted in carrier 19 (note that the method in which the null symbols are inserted is not limited to the configuration illustrated in FIG. 13; for example, a null symbol may be inserted at some certain time, a null symbol may be inserted at some certain frequency and time region, a null symbol may be inserted continuously at a time and frequency region, and a null symbol may be inserted discretely at a time and frequency region).

[0125] FIG. 14 illustrates a frame configuration different from the frame configuration illustrated in FIG. 5 of transmission signal 108_B illustrated in FIG. 1. In FIG. 14, objects that operate the same as in FIG. 5 share like reference marks. In FIG. 14, frequency (carriers) is (are) represented on the horizontal axis and time is represented on the vertical axis. Similar to FIG. 5, since a multi-carrier transmission scheme such as OFDM is used, symbols are present in the carrier direction. In FIG. 14, similar to FIG. 5, symbols for carrier 1 to 36 are shown. Moreover, similar to FIG. 5, in FIG. 14 as well, symbols for time $1 through time $11 are shown.

[0126] In FIG. 14, in addition to pilot symbols 501 (pilot signal 251B (pb(t)) in FIG. 2), data symbols 502, and other symbols 503, null symbols 1301 are also shown.

[0127] Null symbol 1301 has an in-phase component I of zero (0) and a quadrature component Q of zero (0) (note that this symbol is referred to as a "null symbol" here, but this symbol may be referred to as something else).

[0128] In FIG. 14, null symbols are inserted in carrier 19 (note that the method in which the null symbols are inserted is not limited to the configuration illustrated in FIG. 14; for example, a null symbol may be inserted at some certain time, a null symbol may be inserted at some certain frequency and time region, a null symbol may be inserted continuously at a time and frequency region, and a null symbol may be inserted discretely at a time and frequency region).

[0129] When a symbol is present in carrier A at time $B in FIG. 13 and a symbol is present in carrier A at time $B in FIG. 14, the symbol in carrier A at time $B in FIG. 13 and the symbol in carrier A at time $B in FIG. 14 are transmitted at the same time and same frequency. Note that the frame configurations illustrated in FIG. 13 and FIG. 14 are merely examples.

[0130] The other symbols in FIG. 13 and FIG. 14 are symbols corresponding to "preamble signal 252 and control information symbol signal 253 in FIG. 2". Accordingly, when an other symbol 403 in FIG. 13 at the same time and same frequency (same carrier) as an other symbol 503 in FIG. 14 transmits control information, it transmits the same data (the same control information).

[0131] Note that this is under the assumption that the frame of FIG. 13 and the frame of FIG. 14 are received at the same time by the reception device, but even when the frame of FIG. 13 or the frame of FIG. 14 has been received, the reception device can obtain the data transmitted by the transmission device.

[0132] Phase changer 209B receives inputs of baseband signal 208B and control signal 200, applies a phase change to baseband signal 208B based on control signal 200, and outputs phase-changed signal 210B. Baseband signal 208B is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210B (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit). Note that the operation performed by phase changer 209B may be CDD (cyclic delay diversity) (CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209B is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol). Here, a null symbol may be considered as a target for application of a phase change (accordingly, in such a case, symbols subject to symbol number i include data symbols, pilot symbols, control information symbols, preambles (other symbols), and null symbols). However, even if a phase change is applied to a null symbol, the signals before and after the phase change are the same (in-phase component I is zero (0) and the quadrature component Q is zero (0)). Accordingly, it is possible to construe a null symbol as not a target for a phase change (in the case of FIG. 2, since phase changer 209B applies a phase change to baseband signal 208B, a phase change is applied to each symbol in FIG. 14; when a phase change is applied to baseband signal 208A in FIG. 2, a phase change is applied to each symbol in FIG. 13; this will be described later).

[0133] Accordingly, in the frame illustrated in FIG. 14, phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $1. However, the handling of the phase change with respect to null symbol 1301 is as previously described.

[0134] Similarly, "phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $2, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $3, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $4, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $5, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $6, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $7, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $8, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $9, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $10, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 2 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $11. However, the handling of the phase change with respect to null symbol 1301 is as previously described."...

[0135] The phase change value of phase changer 209B is expressed as Q(i). Baseband signal 208B is x'(i) and phase-changed signal 210B is x(i). Accordingly, x(i) = Ω(i) × x'(i) holds true.

[0136] For example, the phase change value is set as follows (Q is an integer that is greater than or equal to 2, and represents the number of phase change cycles). [MATH. 38] Ω i = e j 2 × π × i Q (j is an imaginary number unit.)

[0137] However, Equation (38) is merely a non-limiting example.

[0138] For example, Ω(i) may be set so as to implement a phase change that yields a cycle Q.

[0139] Moreover, for example, in FIG. 5 and FIG. 14, the same phase change value is applied to the same carriers, and the phase change value may be set on a per carrier basis. For example, the following may be implemented.

[0140] Regardless of time, the phase change value may be as follows for carrier 1 in FIG. 5 and FIG. 14. [MATH. 39] e j × 0 × π

[0141] Regardless of time, the phase change value may be as follows for carrier 2 in FIG. 5 and FIG. 14. [MATH. 40] e j 1 × π 6

[0142] Regardless of time, the phase change value may be as follows for carrier 3 in FIG. 5 and FIG. 14. [MATH. 41] e j 2 × π 6

[0143] Regardless of time, the phase change value may be as follows for carrier 4 in FIG. 5 and FIG. 14. [MATH. 42] e j 3 × π 6 ...

[0144] This concludes the operational example of phase changer 209B illustrated in FIG. 2.

[0145] Next, the advantageous effects obtained by phase changer 209B illustrated in FIG. 2 will be described.

[0146] The other symbols 403, 503 in "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" include a control information symbol. As previously described, when an other symbol 503 in FIG. 5 at the same time and same frequency (in the same carrier) as an other symbol 403 transmits control information, it transmits the same data (same control information).

[0147] However, consider the following cases.

[0148] Case 2: transmitting a control information symbol using either antenna unit #A (109_A) or antenna unit #B (109_B) illustrated in FIG. 1.

[0149] When transmission according to "case 2" is performed, since only one antenna is used to transmit the control information symbol, compared to when "transmitting a control information symbol using both antenna unit #A (109_A) and antenna unit #B (109_B)" is performed, spatial diversity gain is less. Accordingly, in "case 2", data reception quality deteriorates even when received by the reception device illustrated in FIG. 8. Accordingly, from the perspective of improving data reception quality, "transmitting a control information symbol using both antenna unit #A (109_A) and antenna unit #B (109_B)" is more beneficial.

[0150] Case 3: transmitting a control information symbol using both antenna unit #A (109_A) and antenna unit #B (109_B) illustrated in FIG. 1. However, phase change by is not performed by phase changer 209B illustrated in FIG. 2.

[0151] When transmission according to "case 3" is performed, since the modulated signal transmitted from antenna unit #A 109_A and the modulated signal transmitted from antenna unit #B 109_B are the same (or exhibit a specific phase shift), depending on the radio wave propagation environment, the reception device illustrated in FIG. 8 may receive an inferior reception signal, and both modulated signal may be subjected to the same multipath effect. Accordingly, in the reception device illustrated in FIG. 8, data reception quality deteriorates.

[0152] In order to remedy this phenomenon, in FIG. 2, phase changer 209B is inserted. Since this changes the phase along the time or frequency axis, in the reception device illustrated in FIG. 8, it is possible to reduce the probability of reception of an inferior reception signal. Moreover, since there is a high probability that there will be a difference in the multipath effect that the modulated signal transmitted from antenna unit #A 109_A is subjected to with respect to the multipath effect that the modulated signal transmitted from antenna unit #B 109_B is subjected to, there is a high probability that diversity gain will result, and accordingly, that data reception quality in the reception device illustrated in FIG. 8 will improve.

[0153] For these reasons, in FIG. 2, phase changer 209B is provided and phase change is implemented.

[0154] Other symbols 403 and other symbols 503 include, in addition to control information symbols, for example, symbols for signal detection, symbols for performing frequency and time synchronization, and symbols for performing channel estimation (a symbol for performing propagation path fluctuation estimation), for demodulating and decoding control information symbols. Moreover, "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" include pilot symbols 401, 501, and by using these, it is possible to perform demodulation and decoding with high precision via control information symbols.

[0155] Moreover, "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" transmit a plurality of streams (perform MIMO transmission) at the same time and using the same frequency (frequency band) via data symbols 402 and data symbols 502. In order to demodulate these data symbols, symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503, are used.

[0156] Here, "symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503" are applied with a phase change by phase changer 209B, as described above.

[0157] Under these circumstances, when this processing is not performed on data symbols 402 and data symbols 502 (on data symbols 402 in the example above), in the reception device, when data symbols 402 and data symbols 502 are demodulated and decoded, there is a need to perform the demodulation and decoding in which the processing for the phase change by phase changer 209B was performed, and there is a probability that this processing will be complicated (this is because "symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503" are applied with a phase change by phase changer 209B).

[0158] However, as illustrated in FIG. 2, in phase changer 209B, when a phase change is applied to data symbols 402 and data symbols 502 (to data symbols 502 in the example above), in the reception device, there is the advantage that data symbols 402 and data symbols 502 can (easily) be demodulated and decoded using the channel estimation signal (propagation path fluctuation signal) estimated by using "symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503".

[0159] Additionally, as illustrated in FIG. 2, in phase changer 209B, when a phase change is applied to data symbols 402 and data symbols 502 (data symbols 502 in the example above), in multipath environments, it is possible to reduce the influence of sharp drops in electric field intensity along the frequency axis. Accordingly, it is possible to obtain the advantageous effect of an improvement in data reception quality of data symbols 402 and data symbols 502.

[0160] In this way, the point that "symbols that are targets for implementation of a phase change by phase changer 205B" and "symbols that are targets for implementation of a phase change by phase changer 209B" are different is a characteristic point.

[0161] As described above, by applying a phase change using phase changer 205B illustrated in FIG. 2, it is possible to achieve the advantageous effect of an improvement in data reception quality of data symbols 402 and data symbols 502 in the reception device in, for example, LOS environments, and by applying a phase change using phase changer 209B illustrated in FIG. 2, for example, it is possible to achieve the advantageous effect of an improvement in data reception quality in the reception device of the control information symbols included in "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" and the advantageous effect that operations of demodulation and decoding of data symbols 402 and data symbols 502 become simple.

[0162] Note that the advantageous effect of an improvement in data reception quality in the reception device of data symbols 402 and data symbols 502 in, for example, LOS environments, is achieved as a result of the phase change implemented by phase changer 205B illustrated in FIG. 2, and furthermore, the reception quality of data symbols 402 and data symbols 502 is improved by applying a phase change to data symbols 402 and data symbols 502 using phase changer 209B illustrated in FIG. 2.

[0163] Note that FIG. 2 illustrates an example of a configuration in which phase changer 209B is arranged after inserter 207B and phase changer 209B applies a phase change to baseband signal 208B, but a configuration for achieving both the above-described advantageous effects of the phase change by phase changer 205B and the phase change by phase changer 209B is not limited to the example illustrated in FIG. 2. One example of an acceptable variation is one in which phase changer 209B is removed from the configuration illustrated in FIG. 2, baseband signal 208B output from inserter 207B becomes processed signal 106_B, phase changer 209A that performs the same operations as phase changer 209B is inserted after inserter 207A, and phase-changed signal 210A, which is generated by phase changer 209A implementing a phase change on baseband signal 208A, becomes processed signal 106_A. Even with such a configuration, similar to the example illustrated in FIG. 2 and described above, the advantageous effect of an improvement in data reception quality in the reception device of data symbols 402 and data symbols 502 in, for example, LOS environments, is achieved as a result of the phase change implemented by phase changer 205B illustrated in FIG. 2, and furthermore, the reception quality of data symbols 402 and data symbols 502 is improved by applying a phase change to data symbols 402 and data symbols 502 using phase changer 209A.

[0164] Furthermore, it is possible to achieve the advantageous effect of an improvement in data reception quality in the reception device of the control information symbols included in "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14".(Supplemental Information 1)

[0165] In, for example, Embodiment 1, it is described that the operation performed by "phase changer B" may be CDD (CSD) disclosed in NPTL 2 and 3. Next, supplemental information regarding this point will be given.

[0166] FIG. 15 illustrates a configuration in the case that CDD (CSD) is used. 1501 is a modulated signal when cyclic delay is not implemented, and is expressed as X[n].

[0167] Cyclic delayer 1502_1 receives an input of modulated signal 1501, applies a cyclic delay, and outputs a cyclic-delayed signal 1503_1. When cyclic-delayed signal 1503_1 is expressed as X1[n], X1[n] is applied with the following equation. [MATH. 43] X 1 n = X n − δ 1 mod N

[0168] Note that δ1 is the cyclic delay amount (δ1 is a real number), and X[n] is configured as N symbols (N is an integer that is greater than or equal to 2). Accordingly, n is an integer that is greater than or equal to 0 and less than or equal to N-1. ...

[0169] Cyclic delayer 1502_M receives an input of modulated signal 1501, applies a cyclic delay, and outputs a cyclic-delayed signal 1503_M. When cyclic-delayed signal 1503_M is expressed as XM[n], XM[n] is applied with the following equation. [MATH. 44] XM n = X n − δM mod N

[0170] Note that δM is the cyclic delay amount (δM is a real number), and X[n] is configured as N symbols (N is an integer that is greater than or equal to 2). Accordingly, n is an integer that is greater than or equal to 0 and less than or equal to N-1.

[0171] Cyclic delayer 1502_i (i is an integer that is greater than or equal to 1 and less than or equal to M (M is an integer that is greater than or equal to 1)) receives an input of modulated signal 1501, applies a cyclic delay, and outputs a cyclic-delayed signal 1503_i. When cyclic-delayed signal 1503_i is expressed as Xi[n], Xi[n] is applied with the following equation. [MATH. 45] Xi n = X n − δi mod N

[0172] Note that δi is the cyclic delay amount (δi is a real number), and X[n] is configured as N symbols (N is an integer that is greater than or equal to 2). Accordingly, n is an integer that is greater than or equal to 0 and less than or equal to N-1.

[0173] Cyclic-delayed signal 1503_i is then transmitted from antenna i (accordingly, cyclic-delayed signal 1503_1, ..., and cyclic-delayed signal 1503_M are each transmitted from different antennas).

[0174] This makes it possible to achieve the diversity effect via cyclic delay (in particular, reduce the adverse effects of delayed radio waves), and in the reception device, achieve an advantageous effect of improved data reception quality.

[0175] For example, phase changer 209B in FIG. 2 may be replaced with the cyclic delayer illustrated in FIG. 15, and may perform the same operations performed by phase changer 209B.

[0176] Accordingly, in phase changer 209B in FIG. 2, the cyclic delay amount δ (δ is a real number) is applied, and the input signal for phase changer 209B is expressed as Y[n]. When the output signal for phase changer 209B is expressed as Z[n], Z[n] is applied with the following equation. [MATH. 46] Z n = Y n − δ mod N

[0177] Note that Y[n] is configured as N samples (N is an integer that is greater than or equal to 2). Accordingly, n is an integer that is greater than or equal to 0 and less than or equal to N-1.

[0178] Next, the relationship between cyclic delay amount and phase change will be described.

[0179] For example, consider a case in which CDD (CSD) is applied to OFDM. Note that the carrier arrangement when OFDM is used is as illustrated in FIG. 16.

[0180] In FIG. 16, 1601 is a symbol, frequency (carriers) is (are) represented on the horizontal axis, with increasing frequency from left to right and carriers arranged in ascending order. Accordingly, the carrier of the lowest frequency is "carrier 1", and subsequent carriers are "carrier 2", "carrier 3", "carrier 4", ....

[0181] For example, in phase changer 209B illustrated in FIG. 2, a cyclic delay amount τ is applied. In such as case, phase change value Ω[i] in "carrier i" is expressed as follows. [MATH. 47] Ω i = e j × μ × i

[0182] Note that µ is a value capable of being calculated from cyclic delay amount and / or the size of the fast Fourier transform (FFT).

[0183] When the baseband signal for "carrier i", time t before being applied with a phase change (before cyclic delay processing) is expressed as v'[i][t], the signal v[i][t] for "carrier i", time t after being applied with a phase change can be expressed as v[i][t] = Ω[i] × v'[i][t].(Supplemental Information 2)

[0184] As a matter of course, the embodiments may be carried out by combining a plurality of the exemplary embodiments and other contents described in the present specification.

[0185] Moreover, each exemplary embodiment and the other contents are only examples. For example, while a "modulating method, an error correction coding method (an error correction code, a code length, a coding rate and the like to be used), control information and the like" are exemplified, it is possible to carry out the present disclosure with the same configuration even when other types of a "modulating method, an error correction coding method (an error correction code, a code length, a coding rate and the like to be used), control information and the like" are applied.

[0186] Regarding the modulation scheme, even when a modulation scheme other than the modulation schemes described in the present specification is used, it is possible to carry out the embodiments and the other subject matter described herein. For example, amplitude phase shift keying (APSK) (such as 16APSK, 64APSK, 128APSK, 256APSK, 1024APSK and 4096APSK), pulse amplitude modulation (PAM) (such as 4PAM, 8PAM, 16PAM, 64PAM, 128PAM, 256PAM, 1024PAM and 4096PAM), phase shift keying (PSK) (such as BPSK, QPSK, 8PSK, 16PSK, 64PSK, 128PSK, 256PSK, 1024PSK and 4096PSK), and quadrature amplitude modulation (QAM) (such as 4QAM, 8QAM, 16QAM, 64QAM, 128QAM, 256QAM, 1024QAM and 4096QAM) may be applied, or in each modulation scheme, uniform mapping or non-uniform mapping may be performed.

[0187] Moreover, a method for arranging 2, 4, 8, 16, 64, 128, 256, 1024, etc., signal points on an I-Q plane (a modulation scheme having 2, 4, 8, 16, 64, 128, 256, 1024, etc., signal points) is not limited to a signal point arrangement method of the modulation schemes described in the present specification. Hence, a function of outputting an in-phase component and a quadrature component based on a plurality of bits is a function in a mapper, and performing precoding and phase-change thereafter is one effective function of the present disclosure.

[0188] In the present specification, when "∀" and / or "∃" is present, "∀" represents a universal quantifier, and "∃" represents an existential quantifier.

[0189] Moreover, in the present specification, when there is a complex plane, the phase unit such as an argument is "radian".

[0190] When the complex plane is used, display in a polar form can be made as display by polar coordinates of a complex number. When point (a, b) on the complex plane is associated with complex number z = a + jb (a and b are both real numbers, and j is a unit of an imaginary number), and when this point is expressed by [r, θ] in polar coordinates, a = r × cosθ and b = r × sinθ, [MATH. 48] r = a 2 + b 2 holds true, r is an absolute value of z (r = | z |), and θ is an argument. Then, z = a + jb is expressed by r × e jθ< .

[0191] In the present specification, the reception device in the terminal and the antennas may be configured as separate devices. For example, the reception device includes an interface that receives an input, via a cable, of a signal received by an antenna or a signal generated by applying a signal received by an antenna with a frequency conversion, and the reception device performs subsequent processing.

[0192] Moreover, data / information obtained by the reception device is subsequently converted into a video or audio, and a display (monitor) displays the video or a speaker outputs the audio. Further, the data / information obtained by the reception device may be subjected to signal processing related to a video or a sound (signal processing may not be performed), and may be output from an RCA terminal (a video terminal or an audio terminal), a Universal Serial Bus (USB), or a High-Definition Multimedia Interface (registered trademark) (HDMI) of the reception device.

[0193] In the present specification, it can be considered that the apparatus which includes the transmission device is a communications and broadcast apparatus, such as a broadcast station, a base station, an access point, a terminal or a mobile phone. In such cases, it can be considered that the apparatus that includes the reception device is a communication apparatus such as a television, a radio, a terminal, a personal computer, a mobile phone, an access point, or a base station. Moreover, it can also be considered that the transmission device and reception device according to the present disclosure are each a device having communication functions that is formed so as to be connectable via some interface to an apparatus for executing an application in, for example, a television, a radio, a personal computer or a mobile phone.

[0194] Moreover, in this embodiment, symbols other than data symbols, such as pilot symbols (preamble, unique word, post-amble, reference symbol, etc.) or symbols for control information, may be arranged in any way in a frame. Here, the terms "pilot symbol" and "control information" are used, but the naming of such symbols is not important; the functions that they perform are.

[0195] A pilot symbol may be a known symbol that is modulated using PSK modulation in a transceiver (alternatively, a symbol transmitted by a transmitter can be known by a receiver by the receiver being periodic), and the receiver detects, for example, frequency synchronization, time synchronization, and a channel estimation (channel state information (CSI)) symbol (of each modulated signal) by using the symbol.

[0196] Moreover, the symbol for control information is a symbol for transmitting information required to be transmitted to a communication partner in order to establish communication pertaining to anything other than data (such as application data) (this information is, for example, the modulation scheme, error correction encoding method, or encode rate of the error correction encoding method used in the communication, or settings information in an upper layer).

[0197] Note that the present invention is not limited to each exemplary embodiment, and can be carried out with various modifications. For example, in each embodiment, the present disclosure is described as being performed as a communications device. However, the present disclosure is not limited to this case, and this communications method can also be used as software.

[0198] Moreover, in the above description, precoding switching methods in a method for transmitting two modulated signals from two antennas are described, but these examples are not limiting. A precoding switching method in which precoding weight (matrix) is changed similarly in a method in which precoding is performed on four mapped signals to generate four modulated signals and transmitted from four antennas, that is to say, a method in which precoding is performed on N mapped signals to generate N modulated signals and transmitted from N antennas, can also be applied.

[0199] The terms "precoding" and "precoding weight" are used in the present specification. The terms used to refer to such signal processing are not important per-se; the signal processing itself is what is important to the present invention.

[0200] Streams s1(t) and s2(t) may transmit different data, and may transmit the same data.

[0201] The transmitting antenna in the transmission device, the receiving antenna in the reception device, and each signal antenna illustrated in the drawings may be configured of a plurality of antennas.

[0202] The transmission device needs to notify the reception device of the transmission method (MIMO, SISO, temporal-spatial block code, interleaving method), modulation scheme, and / or error correction encoding method (may be omitted depending on embodiment); this information is present in the frame transmitted by the transmission device; the reception device changes operation upon receipt.

[0203] Note that a program for executing the above-described communications method may be stored in Read Only Memory (ROM) in advance to cause a Central Processing Unit (CPU) to operate this program.

[0204] Moreover, the program for executing the communications method may be stored in a computer-readable storage medium, the program stored in the recording medium may be recorded in RAM (Random Access Memory) in a computer, and the computer may be caused to operate according to this program.

[0205] Each configuration of each of the above-described embodiments, etc., may be realized as a LSI (large scale integration) circuit, which is typically an integrated circuit. These integrated circuits may be formed as separate chips, or may be formed as one chip so as to include the entire configuration or part of the configuration of each embodiment. LSI is described here, but the integrated circuit may also be referred to as an IC (integrated circuit), a system LSI circuit, a super LSI circuit or an ultra LSI circuit depending on the degree of integration. Moreover, the circuit integration technique is not limited to LSI, and may be realized by a dedicated circuit or a general purpose processor. After manufacturing of the LSI circuit, a programmable Field Programmable Gate Array (FPGA) or a reconfigurable processor which is reconfigurable in connection or settings of circuit cells inside the LSI circuit may be used.

[0206] Further, when development of a semiconductor technology or another derived technology provides a circuit integration technology which replaces LSI, as a matter of course, functional blocks may be integrated by using this technology. Adaption of biotechnology, for example, is a possibility.

[0207] The present disclosure can be widely applied to radio systems that transmit different modulated signals from different antennas. Moreover, the present disclosure can also be applied when MIMO transmission is used in a wired communications system including a plurality of transmission points (for example, a power line communication (PLC) system, an optical transmission system, a digital subscriber line (DSL) system).(EMBODIMENT 2)

[0208] In this embodiment, an implementation method will be described that is different from the configuration illustrated in FIG. 2 and described in Embodiment 1.

[0209] FIG. 1 illustrates one example of a configuration of a transmission device according to this embodiment, such as a base station, access point, or broadcast station. As FIG. 1 is described in detail in Embodiment 1, description will be omitted from this embodiment.

[0210] Signal processor 106 receives inputs of mapped signals 105_1 and 105_2, signal group 110, and control signal 100, performs signal processing based on control signal 100, and outputs signal-processed signals 106_A and 106_B. Here, signal-processed signal 106_A is expressed as u1(i), and signal-processed signal 106_B is expressed as u2(i) (i is a symbol number; for example, i is an integer that is greater than or equal to 0). Note that details regarding the signal processing will be described with reference to FIG. 18 later.

[0211] FIG. 18 illustrates one example of a configuration of signal processor 106 illustrated in FIG. 1. Weighting synthesizer (precoder) 203 receives inputs of mapped signal 201A (mapped signal 105_1 in FIG. 1), mapped signal 201B (mapped signal 105_2 in FIG. 1), and control signal 200 (control signal 100 in FIG. 1), performs weighting synthesis (precoding) based on control signal 200, and outputs weighted signal 204A and weighted signal 204B. Here, mapped signal 201A is expressed as s1(t), mapped signal 201B is expressed as s2(t), weighted signal 204A is expressed as z1(t), and weighted signal 204B is expressed as z2'(t). Note that one example of t is time (s1(t), s2(t), z1(t), and z2'(t) are defined as complex numbers (accordingly, they may be real numbers)). Here, these are given as functions of time, but may be functions of a "frequency (carrier number)", and may be functions of "time and frequency". These may also be a function of a "symbol number". Note that this also applies to Embodiment 1.

[0212] Weighting synthesizer (precoder) 203 performs the calculations indicated in Equation (1).

[0213] Phase changer 205B receives inputs of weighting synthesized signal 204B and control signal 200, applies a phase change to weighting synthesized signal 204B based on control signal 200, and outputs phase-changed signal 206B. Note that phase-changed signal 206B is expressed as z2(t), and z2(t) is defined as a complex number (and may be a real number).

[0214] Next, specific operations performed by phase changer 205B will be described. In phase changer 205B, for example, a phase change of y(i) is applied to z2'(i). Accordingly, z2(i) can be expressed as z2(i) = y(i) × z2'(i) (i is a symbol number (i is an integer that is greater than or equal to 0)).

[0215] For example, the phase change value is set as shown in Equation (2) (N is an integer that is greater than or equal to 2, N is a phase change cycle)(when N is set to an odd number greater than or equal to 3, data reception quality may improve). However, Equation (2) is merely a non-limiting example. Here, phase change value y(i) = e j×δ(i)< .

[0216] Here, z1(i) and z2(i) can be expressed with Equation (3). Note that 6(i) is a real number. z1(i) and z2(i) are transmitted from the transmission device at the same time and using the same frequency (same frequency band). In Equation (3), the phase change value is not limited to the value used in Equation (2); for example, a method in which the phase is changed cyclically or regularly is conceivable.

[0217] As described in Embodiment 1, conceivable examples of the (precoding) matrix inserted in Equation (1) and Equation (3) are illustrated in Equation (5) through Equation (36) (however, the precoding matrix is not limited to these examples (the same applies to Embodiment 1)).

[0218] Inserter 207A receives inputs of weighting synthesized signal 204A, pilot symbol signal (pa(t))(t is time)(251A), preamble signal 252, control information symbol signal 253, and control signal 200, and based on information on the frame configuration included in control signal 200, outputs baseband signal 208A based on the frame configuration.

[0219] Similarly, inserter 207B receives inputs of phase-changed signal 206B, pilot symbol signal (pb(t))(251B), preamble signal 252, control information symbol signal 253, and control signal 200, and based on information on the frame configuration included in control signal 200, outputs baseband signal 208B based on the frame configuration.

[0220] Phase changer 209A receives inputs of baseband signal 208A and control signal 200, applies a phase change to baseband signal 208A based on control signal 200, and outputs phase-changed signal 210A. Baseband signal 208A is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210A (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit).

[0221] As described in Embodiment 1, etc., note that the operation performed by phase changer 209A may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209A is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol).

[0222] FIG. 3 illustrates one example of a configuration of radio units 107_A and 107_B illustrated in FIG. 1. FIG. 3 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0223] FIG. 4 illustrates a frame configuration of transmission signal 108_A illustrated in FIG. 1. FIG. 4 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0224] FIG. 5 illustrates a frame configuration of transmission signal 108_B illustrated in FIG. 1. FIG. 5 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0225] When a symbol is present in carrier A at time $B in FIG. 4 and a symbol is present in carrier A at time $B in FIG. 5, the symbol in carrier A at time $B in FIG. 4 and the symbol in carrier A at time $B in FIG. 5 are transmitted at the same time and same frequency. Note that the frame configuration is not limited to the configurations illustrated in FIG. 4 and FIG. 5; FIG. 4 and FIG. 5 are mere examples of frame configurations.

[0226] The other symbols in FIG. 4 and FIG. 5 are symbols corresponding to "preamble signal 252 and control information symbol signal 253 in FIG. 2". Accordingly, when an other symbol 503 in FIG. 5 at the same time and same frequency (same carrier) as an other symbol 403 in FIG. 4 transmits control information, it transmits the same data (the same control information).

[0227] Note that this is under the assumption that the frame of FIG. 4 and the frame of FIG. 5 are received at the same time by the reception device, but even when the frame of FIG. 4 or the frame of FIG. 5 has been received, the reception device can obtain the data transmitted by the transmission device.

[0228] FIG. 6 illustrates one example of components relating to control information generation for generating control information symbol signal 253 illustrated in FIG. 2. FIG. 6 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0229] FIG. 7 illustrates one example of a configuration of antenna unit #A (109_A) and antenna unit #B (109_B) illustrated in FIG. 1 (in this example, antenna unit #A (109_A) and antenna unit #B (109_B) include a plurality of antennas). FIG. 7 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0230] FIG. 8 illustrates one example of a configuration of a reception device that receives a modulated signal upon the transmission device illustrated in FIG. 1 transmitting, for example, a transmission signal having the frame configuration illustrated in FIG. 4 or FIG. 5. FIG. 8 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0231] FIG. 10 illustrates one example of a configuration of antenna unit #X (801X) and antenna unit #Y (801Y) illustrated in FIG. 8 (antenna unit #X (801X) and antenna unit #Y (801Y) are exemplified as including a plurality of antennas). FIG. 10 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0232] Next, signal processor 106 in the transmission device illustrated in FIG. 1 is inserted as phase changer 205B and phase changer 209A, as illustrated in FIG. 18. The characteristics and advantageous effects of this configuration will be described.

[0233] As described with reference to FIG. 4 and FIG. 5, phase changer 205B applies precoding (weighted synthesis) to mapped signal s1(i) (201A) (i is a symbol number; i is an integer greater than or equal to 0) obtained via mapping using the first sequence and mapped signal s2(i) (201B) obtained via mapping using the second sequence, and applies a phase change to one of the obtained weighting synthesized signals 204A and 204B. Weighting synthesized signal 204A and phase-changed signal 206B are then transmitted at the same frequency and at the same time. Accordingly, in FIG. 4 and FIG. 5, a phase change is applied to data symbol 502 in FIG. 5 (in the case of FIG. 18, since phase changer 205 applies this to weighting synthesized signal 204B, a phase change is applied to data symbol 502 in FIG. 5; when a phase change is applied to weighting synthesized signal 204A, a phase change is applied to data symbol 402 in FIG. 4; this will be described later).

[0234] For example, FIG. 11 illustrates an extraction of carrier 1 through carrier 5 and time $4 through time $6 from the frame illustrated in FIG. 5. Note that in FIG. 11, similar to FIG. 5, 501 is a pilot symbol, 502 is a data symbol, and 503 is an other symbol.

[0235] As described above, among the symbols illustrated in FIG. 11, phase changer 205B applies a phase change to the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6).

[0236] Accordingly, the phase change values for the data symbols illustrated in FIG. 11 can be expressed as "e j×δ15(i)< " for (carrier 1, time $5), "e j×δ25(i)< " for (carrier 2, time $5), "e j×δ35(i)< " for (carrier 3, time $5), "e j×δ45(i)< " for (carrier 4, time $5), "e j×δ55(i)< " (carrier 5, time $5), "e j×δ16(i)< " for (carrier 1, time $6), "e j×δ26(i)< " for (carrier 2, time $6), "e j×δ46(i)< " for (carrier 4, time $6), and "e j×δ56(i)< " for (carrier 5, time $6).

[0237] Among the symbols illustrated in FIG. 11, the other symbols located at (carrier 1, time $4), (carrier 2, time $4), (carrier 3, time $4), (carrier 4, time $4), and (carrier 5, time $4), and the pilot symbol located at (carrier 3, time $6) are not subject to phase change by phase changer 205B.

[0238] This point is a characteristic of phase changer 205B. Note that, as illustrated in FIG. 4, data carriers are arranged at "the same carriers and the same times" as the symbols subject to phase change in FIG. 11, which are the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6). In other words, in FIG. 4, the symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6) are data symbols (in other words, data symbols that perform MIMO transmission (transmit a plurality of streams) are subject to phase change by phase changer 205B).

[0239] One example of the phase change that phase changer 205B applies to the data symbols is the method given in Equation (2) in which phase change is applied to the data symbols regularly (such as at each cycle N) (however, the phase change method implemented on the data symbols is not limited to this example).

[0240] With this, when the environment is one in which the direct waves are dominant, such as in an LOS environment, it is possible to achieve improved data reception quality in the reception device with respect to the data symbols that perform MIMO transmission (transmit a plurality of streams). Next, the advantageous effects of this will be described.

[0241] For example, the modulation scheme used by mapper 104 in FIG. 1 is quadrature phase shift keying (QPSK) (mapped signal 201A in FIG. 18 is a QPSK signal, and mapped signal 201B is a QPSK signal; in other words, two QPSK streams are transmitted). Accordingly, for example, using channel estimated signals 806_1 and 806_2, 16 candidate signal points are obtained by signal processor 811 illustrated in FIG. 8 (2-bit transmission is possible with QPSK. Accordingly, since there are two streams, 4-bit transmission is achieved. Thus, there are 2 4< = 16 candidate signal points) (note that 16 other candidate signal points are obtained from using channel estimated signals 808_1 and 808_2 as well, but since description thereof is the same as described above, the following description will focus on the 16 candidate signal points obtained by using channel estimated signals 806_1 and 806_2).

[0242] FIG. 12 illustrates an example of the state resulting from such a case. In (A) and (B) in FIG. 12, in-phase I is represented on the horizontal axis and quadrature Q is represented on the vertical axis, and 16 candidate signal points are present in the illustrated in-phase I-quadrature Q planes (among the 16 candidate signal points, one is a signal point that is transmitted by the transmission device; accordingly, this is referred to as "16 candidate signal points").

[0243] When the environment is one in which the direct waves are dominant, such as in an LOS environment, consider a first case in which phase changer 205B is omitted from the configuration illustrated in FIG. 18 (in other words, a case in which phase change is not applied by phase changer 205B in FIG. 18).

[0244] In the first case, since phase change is not applied, there is a possibility that the state illustrated in (A) in FIG. 12 will be realized. When the state falls into the state illustrated in (A) in FIG. 12, as illustrated by "signal points 1201 and 1202", "signal points 1203, 1204, 1205, and 1206", and "signal points 1207, 1208", the signal points become dense (the distances between some signal points shorten). Accordingly, in the reception device illustrated in FIG. 8, data reception quality may deteriorate.

[0245] In order to remedy this phenomenon, in FIG. 18, phase changer 205B is inserted. When phase changer 205B is inserted, due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12. With respect to this state, since error correction code is introduced, high error correction performance is achieved, and in the reception device illustrated in FIG. 8, high data reception quality can be achieved.

[0246] Note that in FIG. 18, a phase change is not applied by phase changer 205B in FIG. 18 to "pilot symbols, preamble" for demodulating (wave detection of) data symbols, such as pilot symbols and a preamble, and for channel estimation. With this, among data symbols, "due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12" can be realized.

[0247] However, even if a phase change is applied by phase changer 205B in FIG. 18 to "pilot symbols, preamble" for demodulating (wave detection of) data symbols, such as pilot symbols and a preamble, and for channel estimation, the following is possible: "among data symbols, "due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12" can be realized." In such a case, a phase change must be applied to pilot symbols and / or a preamble under some condition. For example, one conceivable method is to implement a rule which is separate from the rule for applying a phase change to a data symbol, and "applying a phase change to a pilot symbol and / or a preamble". Another example is a method of regularly applying a phase change to a data symbol in a cycle N, and regularly applying a phase change to a pilot symbol and / or a preamble in a cycle M (N and M are integers that are greater than or equal to 2).

[0248] As described above, phase changer 209A receives inputs of baseband signal 208A and control signal 200, applies a phase change to baseband signal 208A based on control signal 200, and outputs phase-changed signal 210A. Baseband signal 208A is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210A (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit). Note that the operation performed by phase changer 209A may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209A is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol (accordingly, in such a case, symbols subject to symbol number i include data symbols, pilot symbols, control information symbols, and preambles (other symbols))(in the case of FIG. 18, since phase changer 209A applies a phase change to baseband signal 208A, a phase change is applied to each symbol in FIG. 4).

[0249] Accordingly, in the frame illustrated in FIG. 4, phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $1.

[0250] Similarly, phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $2, phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $3, phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $4, phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $5, phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $6, phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $7, phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $8, phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $9, phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $10, phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $11....

[0251] FIG. 13 illustrates a frame configuration different from the frame configuration illustrated in FIG. 4 of transmission signal 108_A illustrated in FIG. 1. FIG. 13 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0252] FIG. 14 illustrates a frame configuration different from the frame configuration illustrated in FIG. 5 of transmission signal 108_B illustrated in FIG. 1. FIG. 14 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0253] When a symbol is present in carrier A at time $B in FIG. 13 and a symbol is present in carrier A at time $B in FIG. 14, the symbol in carrier A at time $B in FIG. 13 and the symbol in carrier A at time $B in FIG. 14 are transmitted at the same time and same frequency. Note that the frame configurations illustrated in FIG. 13 and FIG. 14 are merely examples.

[0254] The other symbols in FIG. 13 and FIG. 14 are symbols corresponding to "preamble signal 252 and control information symbol signal 253 in FIG. 18". Accordingly, when an other symbol 403 in FIG. 13 at the same time and same frequency (same carrier) as an other symbol 503 in FIG. 14 transmits control information, it transmits the same data (the same control information).

[0255] Note that this is under the assumption that the frame of FIG. 13 and the frame of FIG. 14 are received at the same time by the reception device, but even when the frame of FIG. 13 or the frame of FIG. 14 has been received, the reception device can obtain the data transmitted by the transmission device.

[0256] Phase changer 209A receives inputs of baseband signal 208A and control signal 200, applies a phase change to baseband signal 208A based on control signal 200, and outputs phase-changed signal 210A. Baseband signal 208A is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210A (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit). Note that the operation performed by phase changer 209A may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209A is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol). Here, a null symbol may be considered as a target for application of a phase change (accordingly, in such a case, symbols subject to symbol number i include data symbols, pilot symbols, control information symbols, preambles (other symbols), and null symbols). However, even if a phase change is applied to a null symbol, the signals before and after the phase change are the same (in-phase component I is zero (0) and the quadrature component Q is zero (0)). Accordingly, it is possible to construe a null symbol as not a target for a phase change (in the case of FIG. 18, since phase changer 209A applies a phase change to baseband signal 208A, a phase change is applied to each symbol in FIG. 13).

[0257] Accordingly, in the frame illustrated in FIG. 13, phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $1. However, the handling of the phase change with respect to null symbol 1301 is as previously described.

[0258] Similarly, "phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $2, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $3, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $4, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $5, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $6, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $7, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $8, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $9, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $10, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 18 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $11. However, the handling of the phase change with respect to null symbol 1301 is as previously described."...

[0259] The phase change value of phase changer 209A is expressed as Ω(i). Baseband signal 208A is x'(i) and phase-changed signal 210A is x(i). Accordingly, x(i) = Ω(i) × x'(i) holds true.

[0260] For example, the phase change value is set to Equation (38) (Q is an integer that is greater than or equal to 2, and represents the number of phase change cycles) (j is an imaginary number unit). However, Equation (38) is merely a non-limiting example.

[0261] For example, Ω(i) may be set so as to implement a phase change that yields a cycle Q.

[0262] Moreover, for example, in FIG. 4 and FIG. 13, the same phase change value is applied to the same carriers, and the phase change value may be set on a per carrier basis. For example, the following may be implemented.

[0263] Regardless of time, the phase change value may be as in Equation (39) for carrier 1 in FIG. 4 and FIG. 13.

[0264] Regardless of time, the phase change value may be as in Equation (40) for carrier 2 in FIG. 4 and FIG. 13.

[0265] Regardless of time, the phase change value may be as in Equation (41) for carrier 3 in FIG. 4 and FIG. 13.

[0266] Regardless of time, the phase change value may be as in Equation (42) for carrier 4 in FIG. 4 and FIG. 13. ...

[0267] This concludes the operational example of phase changer 209A illustrated in FIG. 18.

[0268] Next, the advantageous effects obtained by phase changer 209A illustrated in FIG. 18 will be described.

[0269] The other symbols 403, 503 in "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" include a control information symbol. As previously described, when an other symbol 503 in FIG. 5 at the same time and same frequency (in the same carrier) as an other symbol 403 transmits control information, it transmits the same data (same control information).

[0270] However, consider the following cases.

[0271] Case 2: transmitting a control information symbol using either antenna unit #A (109_A) or antenna unit #B (109_B) illustrated in FIG. 1.

[0272] When transmission according to "case 2" is performed, since only one antenna is used to transmit the control information symbol, compared to when "transmitting a control information symbol using both antenna unit #A (109_A) and antenna unit #B (109_B)" is performed, spatial diversity gain is less. Accordingly, in "case 2", data reception quality deteriorates even when received by the reception device illustrated in FIG. 8. Accordingly, from the perspective of improving data reception quality, "transmitting a control information symbol using both antenna unit #A (109_A) and antenna unit #B (109_B)" is more beneficial.

[0273] Case 3: transmitting a control information symbol using both antenna unit #A (109_A) and antenna unit #B (109_B) illustrated in FIG. 1. However, phase change by is not performed by phase changer 209A illustrated in FIG. 18.

[0274] When transmission according to "case 3" is performed, since the modulated signal transmitted from antenna unit #A 109_A and the modulated signal transmitted from antenna unit #B 109_B are the same (or exhibit a specific phase shift), depending on the radio wave propagation environment, the reception device illustrated in FIG. 8 may receive an inferior reception signal, and both modulated signal may be subjected to the same multipath effect. Accordingly, in the reception device illustrated in FIG. 8, data reception quality deteriorates.

[0275] In order to remedy this phenomenon, in FIG. 18, phase changer 209A is inserted. Since this changes the phase along the time or frequency axis, in the reception device illustrated in FIG. 8, it is possible to reduce the probability of reception of an inferior reception signal. Moreover, since there is a high probability that there will be a difference in the multipath effect that the modulated signal transmitted from antenna unit #A 109_A is subjected to with respect to the multipath effect that the modulated signal transmitted from antenna unit #B 109_B is subjected to, there is a high probability that diversity gain will result, and accordingly, that data reception quality in the reception device illustrated in FIG. 8 will improve.

[0276] For these reasons, in FIG. 18, phase changer 209A is provided and phase change is implemented.

[0277] Other symbols 403 and other symbols 503 include, in addition to control information symbols, for example, symbols for signal detection, symbols for performing frequency and time synchronization, and symbols for performing channel estimation (a symbol for performing propagation path fluctuation estimation), for demodulating and decoding control information symbols. Moreover, "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" include pilot symbols 401, 501, and by using these, it is possible to perform demodulation and decoding with high precision via control information symbols.

[0278] Moreover, "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" transmit a plurality of streams (perform MIMO transmission) at the same time and using the same frequency (frequency band) via data symbols 402 and data symbols 502. In order to demodulate these data symbols, symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503, are used.

[0279] Here, "symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503" are applied with a phase change by phase changer 209A, as described above.

[0280] Under these circumstances, when this processing is not performed on data symbols 402 and data symbols 502 (on data symbols 402 in the example above), in the reception device, when data symbols 402 and data symbols 502 are demodulated and decoded, there is a need to perform the demodulation and decoding in which the processing for the phase change by phase changer 209A was performed, and there is a probability that this processing will be complicated (this is because "symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503" are applied with a phase change by phase changer 209A).

[0281] However, as illustrated in FIG. 18, in phase changer 209A, when a phase change is applied to data symbols 402 and data symbols 502 (to data symbols 402 in the example above), in the reception device, there is the advantage that data symbols 402 and data symbols 502 can (easily) be demodulated and decoded using the channel estimation signal (propagation path fluctuation signal) estimated by using "symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503".

[0282] Additionally, as illustrated in FIG. 18, in phase changer 209A, when a phase change is applied to data symbols 402 and data symbols 502 (data symbols 402 in the example above), in multipath environments, it is possible to reduce the influence of sharp drops in electric field intensity along the frequency axis. Accordingly, it is possible to obtain the advantageous effect of an improvement in data reception quality of data symbols 402 and data symbols 502.

[0283] In this way, the point that "symbols that are targets for implementation of a phase change by phase changer 205B" and "symbols that are targets for implementation of a phase change by phase changer 209A" are different is a characteristic point.

[0284] As described above, by applying a phase change using phase changer 205B illustrated in FIG. 18, it is possible to achieve the advantageous effect of an improvement in data reception quality of data symbols 402 and data symbols 502 in the reception device in, for example, LOS environments, and by applying a phase change using phase changer 209A illustrated in FIG. 18, for example, it is possible to achieve the advantageous effect of an improvement in data reception quality in the reception device of the control information symbols included in "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" and the advantageous effect that operations of demodulation and decoding of data symbols 402 and data symbols 502 become simple.

[0285] Note that the advantageous effect of an improvement in data reception quality in the reception device of data symbols 402 and data symbols 502 in, for example, LOS environments, is achieved as a result of the phase change implemented by phase changer 205B illustrated in FIG. 18, and furthermore, the reception quality of data symbols 402 and data symbols 502 is improved by applying a phase change to data symbols 402 and data symbols 502 using phase changer 209A illustrated in FIG. 18.

[0286] Note that Q in Equation (38) may be an integer of -2 or less. In such a case, the value for the phase change cycle is the absolute value of Q. This feature is applicable to Embodiment 1 as well.(EMBODIMENT 3)

[0287] In this embodiment, an implementation method will be described that is different from the configuration illustrated in FIG. 2 and described in Embodiment 1.

[0288] FIG. 1 illustrates one example of a configuration of a transmission device according to this embodiment, such as a base station, access point, or broadcast station. As FIG. 1 is described in detail in Embodiment 1, description will be omitted from this embodiment.

[0289] Signal processor 106 receives inputs of mapped signals 105_1 and 105_2, signal group 110, and control signal 100, performs signal processing based on control signal 100, and outputs signal-processed signals 106_A and 106_B. Here, signal-processed signal 106_A is expressed as u1(i), and signal-processed signal 106_B is expressed as u2(i) (i is a symbol number; for example, i is an integer that is greater than or equal to 0). Note that details regarding the signal processing will be described with reference to FIG. 19 later.

[0290] FIG. 19 illustrates one example of a configuration of signal processor 106 illustrated in FIG. 1. Weighting synthesizer (precoder) 203 receives inputs of mapped signal 201A (mapped signal 105_1 in FIG. 1), mapped signal 201B (mapped signal 105_2 in FIG. 1), and control signal 200 (control signal 100 in FIG. 1), performs weighting synthesis (precoding) based on control signal 200, and outputs weighted signal 204A and weighted signal 204B. Here, mapped signal 201A is expressed as s1(t), mapped signal 201B is expressed as s2(t), weighted signal 204A is expressed as z1(t), and weighted signal 204B is expressed as z2'(t). Note that one example of t is time (s1(t), s2(t), z1(t), and z2'(t) are defined as complex numbers (accordingly, they may be real numbers)).

[0291] Here, these are given as functions of time, but may be functions of a "frequency (carrier number)", and may be functions of "time and frequency". These may also be a function of a "symbol number". Note that this also applies to Embodiment 1.

[0292] Weighting synthesizer (precoder) 203 performs the calculations indicated in Equation (1).

[0293] Phase changer 205B receives inputs of weighting synthesized signal 204B and control signal 200, applies a phase change to weighting synthesized signal 204B based on control signal 200, and outputs phase-changed signal 206B. Note that phase-changed signal 206B is expressed as z2(t), and z2(t) is defined as a complex number (and may be a real number).

[0294] Next, specific operations performed by phase changer 205B will be described. In phase changer 205B, for example, a phase change of y(i) is applied to z2'(i). Accordingly, z2(i) can be expressed as z2(i) = y(i) × z2'(i) (i is a symbol number (i is an integer that is greater than or equal to 0)).

[0295] For example, the phase change value is set as shown in Equation (2) (N is an integer that is greater than or equal to 2, N is a phase change cycle)(when N is set to an odd number greater than or equal to 3, data reception quality may improve). However, Equation (2) is merely a non-limiting example. Here, phase change value y(i) = e j×δ(i)< .

[0296] Here, z1(i) and z2(i) can be expressed with Equation (3). Note that δ(i) is a real number. z1(i) and z2(i) are transmitted from the transmission device at the same time and using the same frequency (same frequency band). In Equation (3), the phase change value is not limited to the value used in Equation (2); for example, a method in which the phase is changed cyclically or regularly is conceivable.

[0297] As described in Embodiment 1, conceivable examples of the (precoding) matrix inserted in Equation (1) and Equation (3) are illustrated in Equation (5) through Equation (36) (however, the precoding matrix is not limited to these examples (the same applies to Embodiment 1)).

[0298] Inserter 207A receives inputs of weighting synthesized signal 204A, pilot symbol signal (pa(t))(t is time)(251A), preamble signal 252, control information symbol signal 253, and control signal 200, and based on information on the frame configuration included in control signal 200, outputs baseband signal 208A based on the frame configuration.

[0299] Similarly, inserter 207B receives inputs of phase-changed signal 206B, pilot symbol signal (pb(t))(251B), preamble signal 252, control information symbol signal 253, and control signal 200, and based on information on the frame configuration included in control signal 200, outputs baseband signal 208B based on the frame configuration.

[0300] Phase changer 209A receives inputs of baseband signal 208A and control signal 200, applies a phase change to baseband signal 208A based on control signal 200, and outputs phase-changed signal 210A. Baseband signal 208A is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210A (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit).

[0301] As described in Embodiment 1, etc., note that the operation performed by phase changer 209A may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209A is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol).

[0302] Phase changer 209B receives inputs of baseband signal 208B and control signal 200, applies a phase change to baseband signal 208B based on control signal 200, and outputs phase-changed signal 210B. Baseband signal 208B is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as y'(i). Then, phase-changed signal 210B (y(i)) can be expressed as y(i) = ej × τ(i) × y'(i) (j is an imaginary number unit).

[0303] As described in Embodiment 1, etc., note that the operation performed by phase changer 209B may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209B is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol).

[0304] The characteristic feature here is that the phase changing method via ε(i) and the phase changing method via τ(i) are different. Alternatively, the characteristic feature here is that the CDD(Cyclic Delay Diversity)(CSD(Cyclic Shift Diversity)) cyclic delay amount value set by phase changer 209A and the CDD(Cyclic Delay Diversity)(CSD(Cyclic Shift Diversity)) cyclic delay amount value set by phase changer 209B are different.

[0305] FIG. 3 illustrates one example of a configuration of radio units 107_A and 107_B illustrated in FIG. 1. FIG. 3 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0306] FIG. 4 illustrates a frame configuration of transmission signal 108_A illustrated in FIG. 1. FIG. 4 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0307] FIG. 5 illustrates a frame configuration of transmission signal 108_B illustrated in FIG. 1. FIG. 5 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0308] When a symbol is present in carrier A at time $B in FIG. 4 and a symbol is present in carrier A at time $B in FIG. 5, the symbol in carrier A at time $B in FIG. 4 and the symbol in carrier A at time $B in FIG. 5 are transmitted at the same time and same frequency. Note that the frame configuration is not limited to the configurations illustrated in FIG. 4 and FIG. 5; FIG. 4 and FIG. 5 are mere examples of frame configurations.

[0309] The other symbols in FIG. 4 and FIG. 5 are symbols corresponding to "preamble signal 252 and control information symbol signal 253 in FIG. 2". Accordingly, when an other symbol 503 in FIG. 5 at the same time and same frequency (same carrier) as an other symbol 403 in FIG. 4 transmits control information, it transmits the same data (the same control information).

[0310] Note that this is under the assumption that the frame of FIG. 4 and the frame of FIG. 5 are received at the same time by the reception device, but even when the frame of FIG. 4 or the frame of FIG. 5 has been received, the reception device can obtain the data transmitted by the transmission device.

[0311] FIG. 6 illustrates one example of components relating to control information generation for generating control information symbol signal 253 illustrated in FIG. 2. FIG. 6 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0312] FIG. 7 illustrates one example of a configuration of antenna unit #A (109_A) and antenna unit #B (109_B) illustrated in FIG. 1 (in this example, antenna unit #A (109_A) and antenna unit #B (109_B) include a plurality of antennas). FIG. 7 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0313] FIG. 8 illustrates one example of a configuration of a reception device that receives a modulated signal upon the transmission device illustrated in FIG. 1 transmitting, for example, a transmission signal having the frame configuration illustrated in FIG. 4 or FIG. 5. FIG. 8 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0314] FIG. 10 illustrates one example of a configuration of antenna unit #X (801X) and antenna unit #Y (801Y) illustrated in FIG. 8 (antenna unit #X (801X) and antenna unit #Y (801Y) are exemplified as including a plurality of antennas). FIG. 10 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0315] Next, signal processor 106 in the transmission device illustrated in FIG. 1 is inserted as phase changer 205B and phase changers 209A, 209B, as illustrated in FIG. 19. The characteristics and advantageous effects of this configuration will be described.

[0316] As described with reference to FIG. 4 and FIG. 5, phase changer 205B applies precoding (weighted synthesis) to mapped signal s1(i) (201A) (i is a symbol number; i is an integer greater than or equal to 0) obtained via mapping using the first sequence and mapped signal s2(i) (201B) obtained via mapping using the second sequence, and applies a phase change to one of the obtained weighting synthesized signals 204A and 204B. Weighting synthesized signal 204A and phase-changed signal 206B are then transmitted at the same frequency and at the same time. Accordingly, in FIG. 4 and FIG. 5, a phase change is applied to data symbol 502 in FIG. 5 (in the case of FIG. 19, since phase changer 205 applies this to weighting synthesized signal 204B, a phase change is applied to data symbol 502 in FIG. 5; when a phase change is applied to weighting synthesized signal 204A, a phase change is applied to data symbol 402 in FIG. 4; this will be described later).

[0317] For example, FIG. 11 illustrates an extraction of carrier 1 through carrier 5 and time $4 through time $6 from the frame illustrated in FIG. 5. Note that in FIG. 11, similar to FIG. 5, 501 is a pilot symbol, 502 is a data symbol, and 503 is an other symbol.

[0318] As described above, among the symbols illustrated in FIG. 11, phase changer 205B applies a phase change to the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6).

[0319] Accordingly, the phase change values for the data symbols illustrated in FIG. 11 can be expressed as "e j×δ15(i)< " for (carrier 1, time $5), "e j×δ25(i)< " for (carrier 2, time $5), "e j×δ35(i)< " for (carrier 3, time $5), "e j×δ45(i)< " for (carrier 4, time $5), "e j×δ55(i)< " (carrier 5, time $5), "e j×δ16(i)< " for (carrier 1, time $6), " ej×δ26(i)< " for (carrier 2, time $6), "e j×δ46(i)< " for (carrier 4, time $6), and "e j×δ56(i)< " for (carrier 5, time $6).

[0320] Among the symbols illustrated in FIG. 11, the other symbols located at (carrier 1, time $4), (carrier 2, time $4), (carrier 3, time $4), (carrier 4, time $4), and (carrier 5, time $4), and the pilot symbol located at (carrier 3, time $6) are not subject to phase change by phase changer 205B.

[0321] This point is a characteristic of phase changer 205B. Note that, as illustrated in FIG. 4, data carriers are arranged at "the same carriers and the same times" as the symbols subject to phase change in FIG. 11, which are the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6). In other words, in FIG. 4, the symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6) are data symbols (in other words, data symbols that perform MIMO transmission (transmit a plurality of streams) are subject to phase change by phase changer 205B).

[0322] One example of the phase change that phase changer 205B applies to the data symbols is the method given in Equation (2) in which phase change is applied to the data symbols regularly (such as at each cycle N) (however, the phase change method implemented on the data symbols is not limited to this example).

[0323] With this, when the environment is one in which the direct waves are dominant, such as in an LOS environment, it is possible to achieve improved data reception quality in the reception device with respect to the data symbols that perform MIMO transmission (transmit a plurality of streams). Next, the advantageous effects of this will be described.

[0324] For example, the modulation scheme used by mapper 104 in FIG. 1 is quadrature phase shift keying (QPSK) (mapped signal 201A in FIG. 19 is a QPSK signal, and mapped signal 201B is a QPSK signal; in other words, two QPSK streams are transmitted). Accordingly, for example, using channel estimated signals 806_1 and 806_2, 16 candidate signal points are obtained by signal processor 811 illustrated in FIG. 8 (2-bit transmission is possible with QPSK. Accordingly, since there are two streams, 4-bit transmission is achieved. Thus, there are 2 4< = 16 candidate signal points) (note that 16 other candidate signal points are obtained from using channel estimated signals 808_1 and 808_2 as well, but since description thereof is the same as described above, the following description will focus on the 16 candidate signal points obtained by using channel estimated signals 806_1 and 806_2).

[0325] FIG. 12 illustrates an example of the state resulting from such a case. In (A) and (B) in FIG. 12, in-phase I is represented on the horizontal axis and quadrature Q is represented on the vertical axis, and 16 candidate signal points are present in the illustrated in-phase I-quadrature Q planes (among the 16 candidate signal points, one is a signal point that is transmitted by the transmission device; accordingly, this is referred to as "16 candidate signal points").

[0326] When the environment is one in which the direct waves are dominant, such as in an LOS environment, consider a first case in which phase changer 205B is omitted from the configuration illustrated in FIG. 19 (in other words, a case in which phase change is not applied by phase changer 205B in FIG. 19) .

[0327] In the first case, since phase change is not applied, there is a possibility that the state illustrated in (A) in FIG. 12 will be realized. When the state falls into the state illustrated in (A) in FIG. 12, as illustrated by "signal points 1201 and 1202", "signal points 1203, 1204, 1205, and 1206", and "signal points 1207, 1208", the signal points become dense (the distances between some signal points shorten). Accordingly, in the reception device illustrated in FIG. 8, data reception quality may deteriorate.

[0328] In order to remedy this phenomenon, in FIG. 19, phase changer 205B is inserted. When phase changer 205B is inserted, due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12. With respect to this state, since error correction code is introduced, high error correction performance is achieved, and in the reception device illustrated in FIG. 8, high data reception quality can be achieved.

[0329] Note that in FIG. 19, a phase change is not applied by phase changer 205B in FIG. 19 to "pilot symbols, preamble" for demodulating (wave detection of) data symbols, such as pilot symbols and a preamble, and for channel estimation. With this, among data symbols, "due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12" can be realized.

[0330] However, even if a phase change is applied by phase changer 205B in FIG. 19 to "pilot symbols, preamble" for demodulating (wave detection of) data symbols, such as pilot symbols and a preamble, and for channel estimation, the following is possible: "among data symbols, "due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12" can be realized." In such a case, a phase change must be applied to pilot symbols and / or a preamble under some condition. For example, one conceivable method is to implement a rule which is separate from the rule for applying a phase change to a data symbol, and "applying a phase change to a pilot symbol and / or a preamble". Another example is a method of regularly applying a phase change to a data symbol in a cycle N, and regularly applying a phase change to a pilot symbol and / or a preamble in a cycle M (N and M are integers that are greater than or equal to 2).

[0331] As described above, phase changer 209A receives inputs of baseband signal 208A and control signal 200, applies a phase change to baseband signal 208A based on control signal 200, and outputs phase-changed signal 210A. Baseband signal 208A is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210A (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit). Note that the operation performed by phase changer 209A may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209A is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol (accordingly, in such a case, symbols subject to symbol number i include data symbols, pilot symbols, control information symbols, and preambles (other symbols))(in the case of FIG. 19, since phase changer 209A applies a phase change to baseband signal 208A, a phase change is applied to each symbol in FIG. 4).

[0332] Accordingly, in the frame illustrated in FIG. 4, phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $1.

[0333] Similarly, phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $2, phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $3, phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $4, phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $5, phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $6, phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $7, phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $8, phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $9, phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $10, phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $11....

[0334] As described above, phase changer 209B receives inputs of baseband signal 208B and control signal 200, applies a phase change to baseband signal 208B based on control signal 200, and outputs phase-changed signal 210B. Baseband signal 208B is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as y'(i). Then, phase-changed signal 210B (y(i)) can be expressed as y(i) = ej × τ(i) × y'(i) (j is an imaginary number unit). Note that the operation performed by phase changer 209B may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209B is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol (accordingly, in such a case, symbols subject to symbol number i include data symbols, pilot symbols, control information symbols, and preambles (other symbols))(in the case of FIG. 19, since phase changer 209B applies a phase change to baseband signal 208B, a phase change is applied to each symbol in FIG. 5).

[0335] Accordingly, in the frame illustrated in FIG. 5, phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $1.

[0336] Similarly, phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $2, phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $3, phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $4, phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $5, phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $6, phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $7, phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $8, phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $9, phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $10, phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $11....

[0337] FIG. 13 illustrates a frame configuration different from the frame configuration illustrated in FIG. 4 of transmission signal 108_A illustrated in FIG. 1. FIG. 13 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0338] FIG. 14 illustrates a frame configuration different from the frame configuration illustrated in FIG. 5 of transmission signal 108_B illustrated in FIG. 1. FIG. 14 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0339] When a symbol is present in carrier A at time $B in FIG. 13 and a symbol is present in carrier A at time $B in FIG. 14, the symbol in carrier A at time $B in FIG. 13 and the symbol in carrier A at time $B in FIG. 14 are transmitted at the same time and same frequency. Note that the frame configurations illustrated in FIG. 13 and FIG. 14 are merely examples.

[0340] The other symbols in FIG. 13 and FIG. 14 are symbols corresponding to "preamble signal 252 and control information symbol signal 253 in FIG. 19". Accordingly, when an other symbol 403 in FIG. 13 at the same time and same frequency (same carrier) as an other symbol 503 in FIG. 14 transmits control information, it transmits the same data (the same control information).

[0341] Note that this is under the assumption that the frame of FIG. 13 and the frame of FIG. 14 are received at the same time by the reception device, but even when the frame of FIG. 13 or the frame of FIG. 14 has been received, the reception device can obtain the data transmitted by the transmission device.

[0342] Phase changer 209A receives inputs of baseband signal 208A and control signal 200, applies a phase change to baseband signal 208A based on control signal 200, and outputs phase-changed signal 210A. Baseband signal 208A is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210A (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit). Note that the operation performed by phase changer 209A may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209A is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol). Here, a null symbol may be considered as a target for application of a phase change (accordingly, in such a case, symbols subject to symbol number i include data symbols, pilot symbols, control information symbols, preambles (other symbols), and null symbols). However, even if a phase change is applied to a null symbol, the signals before and after the phase change are the same (in-phase component I is zero (0) and the quadrature component Q is zero (0)). Accordingly, it is possible to construe a null symbol as not a target for a phase change (in the case of FIG. 19, since phase changer 209A applies a phase change to baseband signal 208A, a phase change is applied to each symbol in FIG. 13).

[0343] Accordingly, in the frame illustrated in FIG. 13, phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $1. However, the handling of the phase change with respect to null symbol 1301 is as previously described.

[0344] Similarly, "phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $2, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $3, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $4, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $5, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $6, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $7, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $8, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $9, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $10, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $11. However, the handling of the phase change with respect to null symbol 1301 is as previously described."...

[0345] The phase change value of phase changer 209A is expressed as Ω(i). Baseband signal 208A is x'(i) and phase-changed signal 210A is x(i). Accordingly, x(i) = Ω(i) × x'(i) holds true.

[0346] For example, the phase change value is set to Equation (38) (Q is an integer that is greater than or equal to 2, and represents the number of phase change cycles) (j is an imaginary number unit). However, Equation (38) is merely a non-limiting example.

[0347] For example, Ω(i) may be set so as to implement a phase change that yields a cycle Q.

[0348] Moreover, for example, in FIG. 4 and FIG. 13, the same phase change value is applied to the same carriers, and the phase change value may be set on a per carrier basis. For example, the following may be implemented.

[0349] Regardless of time, the phase change value may be as in Equation (39) for carrier 1 in FIG. 4 and FIG. 13.

[0350] Regardless of time, the phase change value may be as in Equation (40) for carrier 2 in FIG. 4 and FIG. 13.

[0351] Regardless of time, the phase change value may be as in Equation (41) for carrier 3 in FIG. 4 and FIG. 13.

[0352] Regardless of time, the phase change value may be as in Equation (42) for carrier 4 in FIG. 4 and FIG. 13. ...

[0353] This concludes the operational example of phase changer 209A illustrated in FIG. 19.

[0354] Phase changer 209B receives inputs of baseband signal 208B and control signal 200, applies a phase change to baseband signal 208B based on control signal 200, and outputs phase-changed signal 210B. Baseband signal 208B is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as y'(i). Then, phase-changed signal 210B (y(i)) can be expressed as y(i) = e j< × τ(i)< × y'(i) (j is an imaginary number unit). Note that the operation performed by phase changer 209B may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209B is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol). Here, a null symbol may be considered as a target for application of a phase change (accordingly, in such a case, symbols subject to symbol number i include data symbols, pilot symbols, control information symbols, preambles (other symbols), and null symbols). However, even if a phase change is applied to a null symbol, the signals before and after the phase change are the same (in-phase component I is zero (0) and the quadrature component Q is zero (0)). Accordingly, it is possible to construe a null symbol as not a target for a phase change (in the case of FIG. 19, since phase changer 209B applies a phase change to baseband signal 208B, a phase change is applied to each symbol in FIG. 14).

[0355] Accordingly, in the frame illustrated in FIG. 14, phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $1. However, the handling of the phase change with respect to null symbol 1301 is as previously described.

[0356] Similarly, "phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $2, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $3, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $4, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $5, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $6, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $7, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $8, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $9, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $10, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 19 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $11. However, the handling of the phase change with respect to null symbol 1301 is as previously described."...

[0357] The phase change value of phase changer 209B is expressed as Ω(i). Baseband signal 208B is y'(i) and phase-changed signal 210B is y(i). Accordingly, y(i) = Δ(i) × y'(i) holds true.

[0358] For example, the phase change value is set as in the following equation (R is an integer that is greater than or equal to 2, and represents the number of phase change cycles. Note that the values for Q and R in Equation (38) may be different values). [MATH. 49] Δ i = e j 2 × π × i R (j is an imaginary number unit.)

[0359] However, Equation (49) is merely a non-limiting example.

[0360] For example, Δ(i) may be set so as to implement a phase change that yields a cycle R.

[0361] Note that the phase changing methods used by phase changer 209A and phase changer 209B may be different. For example, the cycle may be the same and, alternatively, may be different.

[0362] Moreover, for example, in FIG. 5 and FIG. 14, the same phase change value is applied to the same carriers, and the phase change value may be set on a per carrier basis. For example, the following may be implemented.

[0363] Regardless of time, the phase change value may be as in Equation (39) for carrier 1 in FIG. 5 and FIG. 14.

[0364] Regardless of time, the phase change value may be as in Equation (40) for carrier 2 in FIG. 5 and FIG. 14.

[0365] Regardless of time, the phase change value may be as in Equation (41) for carrier 3 in FIG. 5 and FIG. 14.

[0366] Regardless of time, the phase change value may be as in Equation (42) for carrier 4 in FIG. 5 and FIG. 14. ...

[0367] Although the phase change value is described as Equation (39), (40), (41), and (42), the phase changing methods of phase changer 209A and phase changer 209B are different.

[0368] This concludes the operational example of phase changer 209B illustrated in FIG. 19.

[0369] Next, the advantageous effects obtained by phase changers 209A, 209B illustrated in FIG. 19 will be described.

[0370] The other symbols 403, 503 in "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" include a control information symbol. As previously described, when an other symbol 503 in FIG. 5 at the same time and same frequency (in the same carrier) as an other symbol 403 transmits control information, it transmits the same data (same control information).

[0371] However, consider the following cases.

[0372] Case 2: transmitting a control information symbol using either antenna unit #A (109_A) or antenna unit #B (109_B) illustrated in FIG. 1.

[0373] When transmission according to "case 2" is performed, since only one antenna is used to transmit the control information symbol, compared to when "transmitting a control information symbol using both antenna unit #A (109_A) and antenna unit #B (109_B)" is performed, spatial diversity gain is less. Accordingly, in "case 2", data reception quality deteriorates even when received by the reception device illustrated in FIG. 8. Accordingly, from the perspective of improving data reception quality, "transmitting a control information symbol using both antenna unit #A (109_A) and antenna unit #B (109_B)" is more beneficial.

[0374] Case 3: transmitting a control information symbol using both antenna unit #A (109_A) and antenna unit #B (109_B) illustrated in FIG. 1. However, phase change by is not performed by phase changers 209A and 209B illustrated in FIG. 19.

[0375] When transmission according to "case 3" is performed, since the modulated signal transmitted from antenna unit #A 109_A and the modulated signal transmitted from antenna unit #B 109_B are the same (or exhibit a specific phase shift), depending on the radio wave propagation environment, the reception device illustrated in FIG. 8 may receive an inferior reception signal, and both modulated signal may be subjected to the same multipath effect. Accordingly, in the reception device illustrated in FIG. 8, data reception quality deteriorates.

[0376] In order to remedy this phenomenon, in FIG. 19, phase changers 209A and 209B are inserted. Since this changes the phase along the time or frequency axis, in the reception device illustrated in FIG. 8, it is possible to reduce the probability of reception of an inferior reception signal. Moreover, since there is a high probability that there will be a difference in the multipath effect that the modulated signal transmitted from antenna unit #A 109_A is subjected to with respect to the multipath effect that the modulated signal transmitted from antenna unit #B 109_B is subjected to, there is a high probability that diversity gain will result, and accordingly, that data reception quality in the reception device illustrated in FIG. 8 will improve.

[0377] For these reasons, in FIG. 19, phase changers 209A, 209B are provided and phase change is implemented.

[0378] Other symbols 403 and other symbols 503 include, in addition to control information symbols, for example, symbols for signal detection, symbols for performing frequency and time synchronization, and symbols for performing channel estimation (a symbol for performing propagation path fluctuation estimation), for demodulating and decoding control information symbols. Moreover, "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" include pilot symbols 401, 501, and by using these, it is possible to perform demodulation and decoding with high precision via control information symbols.

[0379] Moreover, "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" transmit a plurality of streams (perform MIMO transmission) at the same time and using the same frequency (frequency band) via data symbols 402 and data symbols 502. In order to demodulate these data symbols, symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503, are used.

[0380] Here, "symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503" are applied with a phase change by phase changers 209A, 209B, as described above.

[0381] Under these circumstances, when this processing is not performed on data symbols 402 and data symbols 502, in the reception device, when data symbols 402 and data symbols 502 are demodulated and decoded, there is a need to perform the demodulation and decoding in which the processing for the phase change by phase changers 209A and 209B was performed, and there is a probability that this processing will be complicated (this is because "symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503" are applied with a phase change by phase changers 209A and 209B).

[0382] However, as illustrated in FIG. 19, in phase changers 209A, 209B, when a phase change is applied to data symbols 402 and data symbols 502, in the reception device, there is the advantage that data symbols 402 and data symbols 502 can (easily) be demodulated and decoded using the channel estimation signal (propagation path fluctuation signal) estimated by using "symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbol for estimating propagation path fluctuation), which are included in other symbols 403 and other symbols 503".

[0383] Additionally, as illustrated in FIG. 19, in phase changers 209A, 209B, when a phase change is applied to data symbols 402 and data symbols 502, in multipath environments, it is possible to reduce the influence of sharp drops in electric field intensity along the frequency axis. Accordingly, it is possible to obtain the advantageous effect of an improvement in data reception quality of data symbols 402 and data symbols 502.

[0384] In this way, the point that "symbols that are targets for implementation of a phase change by phase changer 205B" and "symbols that are targets for implementation of a phase change by phase changers 209A, 209B" are different is a characteristic point.

[0385] As described above, by applying a phase change using phase changer 205B illustrated in FIG. 19, it is possible to achieve the advantageous effect of an improvement in data reception quality of data symbols 402 and data symbols 502 in the reception device in, for example, LOS environments, and by applying a phase change using phase changers 209A, 209B illustrated in FIG. 19, for example, it is possible to achieve the advantageous effect of an improvement in data reception quality in the reception device of the control information symbols included in "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" and the advantageous effect that operations of demodulation and decoding of data symbols 402 and data symbols 502 become simple.

[0386] Note that the advantageous effect of an improvement in data reception quality in the reception device of data symbols 402 and data symbols 502 in, for example, LOS environments, is achieved as a result of the phase change implemented by phase changer 205B illustrated in FIG. 19, and furthermore, the reception quality of data symbols 402 and data symbols 502 is improved by applying a phase change to data symbols 402 and data symbols 502 using phase changers 209A, 209B illustrated in FIG. 19.

[0387] Note that Q in Equation (38) may be an integer of -2 or less. In such a case, the value for the phase change cycle is the absolute value of Q. This feature is applicable to Embodiment 1 as well.

[0388] Note that R in Equation (49) may be an integer of -2 or less. In such a case, the value for the phase change cycle is the absolute value of R.

[0389] Moreover, taking into consideration the descriptions provided in Supplemental Information 1, the cyclic delay amount set in phase changer 209A and the cyclic delay amount set in phase changer 209B may be different values.(EMBODIMENT 4)

[0390] In this embodiment, an implementation method will be described that is different from the configuration illustrated in FIG. 2 and described in Embodiment 1.

[0391] FIG. 1 illustrates one example of a configuration of a transmission device according to this embodiment, such as a base station, access point, or broadcast station. As FIG. 1 is described in detail in Embodiment 1, description will be omitted from this embodiment.

[0392] Signal processor 106 receives inputs of mapped signals 105_1 and 105_2, signal group 110, and control signal 100, performs signal processing based on control signal 100, and outputs signal-processed signals 106_A and 106_B. Here, signal-processed signal 106_A is expressed as u1(i), and signal-processed signal 106_B is expressed as u2(i) (i is a symbol number; for example, i is an integer that is greater than or equal to 0). Note that details regarding the signal processing will be described with reference to FIG. 20 later.

[0393] FIG. 20 illustrates one example of a configuration of signal processor 106 illustrated in FIG. 1. Weighting synthesizer (precoder) 203 receives inputs of mapped signal 201A (mapped signal 105_1 in FIG. 1), mapped signal 201B (mapped signal 105_2 in FIG. 1), and control signal 200 (control signal 100 in FIG. 1), performs weighting synthesis (precoding) based on control signal 200, and outputs weighted signal 204A and weighted signal 204B. Here, mapped signal 201A is expressed as s1(t), mapped signal 201B is expressed as s2(t), weighted signal 204A is expressed as z1'(t), and weighted signal 204B is expressed as z2'(t). Note that one example of t is time (s1(t), s2(t), z1'(t), and z2'(t) are defined as complex numbers (accordingly, they may be real numbers)).

[0394] Here, these are given as functions of time, but may be functions of a "frequency (carrier number)", and may be functions of "time and frequency". These may also be a function of a "symbol number". Note that this also applies to Embodiment 1.

[0395] Weighting synthesizer (precoder) 203 performs the following calculation. [MATH. 50] z 1 ′ i z 2 ′ i = a b c d s 1 i s 2 i

[0396] Phase changer 205A receives inputs of weighting synthesized signal 204A and control signal 200, applies a phase change to weighting synthesized signal 204A based on control signal 200, and outputs phase-changed signal 206A. Note that phase-changed signal 206A is expressed as z1(t), and z1(t) is defined as a complex number (and may be a real number).

[0397] Next, specific operations performed by phase changer 205A will be described. In phase changer 205A, for example, a phase change of w(i) is applied to z1'(i). Accordingly, z1(i) can be expressed as z1(i) = w(i) × z1'(i) (i is a symbol number (i is an integer that is greater than or equal to 0)).

[0398] For example, the phase change value is set as follows. [MATH. 51] w i = e j 2 × π × i M (M is an integer that is greater than or equal to 2, M is a phase change cycle)(when M is set to an odd number greater than or equal to 3, data reception quality may improve).

[0399] However, Equation (51) is merely a non-limiting example. Here, phase change value is expressed as w(i) = e jxλ(i)< .

[0400] Phase changer 205B receives inputs of weighting synthesized signal 204B and control signal 200, applies a phase change to weighting synthesized signal 204B based on control signal 200, and outputs phase-changed signal 206B. Note that phase-changed signal 206B is expressed as z2(t), and z2(t) is defined as a complex number (and may be a real number).

[0401] Next, specific operations performed by phase changer 205B will be described. In phase changer 205B, for example, a phase change of y(i) is applied to z2'(i). Accordingly, z2(i) can be expressed as z2(i) = y(i) × z2'(i) (i is a symbol number (i is an integer that is greater than or equal to 0)).

[0402] For example, the phase change value is set as shown in Equation (2) (N is an integer that is greater than or equal to 2, N is a phase change cycle, N ≠ M)(when N is set to an odd number greater than or equal to 3, data reception quality may improve). However, Equation (2) is merely a non-limiting example. Here, phase change value y(i) = e j×δ(i)< .

[0403] Here, z1(i) and z2(i) can be expressed with the following equation. [MATH. 52] z 1 i z 2 i = w i 0 0 y i a b c d s 1 i s 2 i = e j × λ i 0 0 e j × δ i a b c d s 1 i s 2 i

[0404] Note that δ(i) and λ(i) are real numbers. z1(i) and z2(i) are transmitted from the transmission device at the same time and using the same frequency (same frequency band). In Equation (52), the phase change value is not limited to the value used in Equations (2) and (52); for example, a method in which the phase is changed cyclically or regularly is conceivable.

[0405] As described in Embodiment 1, conceivable examples of the (precoding) matrix inserted in Equation (50) and Equation (52) are illustrated in Equation (5) through Equation (36) (however, the precoding matrix is not limited to these examples (the same applies to Embodiment 1)).

[0406] Inserter 207A receives inputs of weighting synthesized signal 204A, pilot symbol signal (pa(t))(t is time)(251A), preamble signal 252, control information symbol signal 253, and control signal 200, and based on information on the frame configuration included in control signal 200, outputs baseband signal 208A based on the frame configuration.

[0407] Similarly, inserter 207B receives inputs of phase-changed signal 206B, pilot symbol signal (pb(t))(251B), preamble signal 252, control information symbol signal 253, and control signal 200, and based on information on the frame configuration included in control signal 200, outputs baseband signal 208B based on the frame configuration.

[0408] Phase changer 209B receives inputs of baseband signal 208B and control signal 200, applies a phase change to baseband signal 208B based on control signal 200, and outputs phase-changed signal 210B. Baseband signal 208B is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210B (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit).

[0409] As described in Embodiment 1, etc., note that the operation performed by phase changer 209B may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209B is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol).

[0410] FIG. 3 illustrates one example of a configuration of radio units 107_A and 107_B illustrated in FIG. 1. FIG. 3 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0411] FIG. 4 illustrates a frame configuration of transmission signal 108_A illustrated in FIG. 1. FIG. 4 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0412] FIG. 5 illustrates a frame configuration of transmission signal 108_B illustrated in FIG. 1. FIG. 5 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0413] When a symbol is present in carrier A at time $B in FIG. 4 and a symbol is present in carrier A at time $B in FIG. 5, the symbol in carrier A at time $B in FIG. 4 and the symbol in carrier A at time $B in FIG. 5 are transmitted at the same time and same frequency. Note that the frame configuration is not limited to the configurations illustrated in FIG. 4 and FIG. 5; FIG. 4 and FIG. 5 are mere examples of frame configurations.

[0414] The other symbols in FIG. 4 and FIG. 5 are symbols corresponding to "preamble signal 252 and control information symbol signal 253 in FIG. 2". Accordingly, when an other symbol 503 in FIG. 5 at the same time and same frequency (same carrier) as an other symbol 403 in FIG. 4 transmits control information, it transmits the same data (the same control information).

[0415] Note that this is under the assumption that the frame of FIG. 4 and the frame of FIG. 5 are received at the same time by the reception device, but even when the frame of FIG. 4 or the frame of FIG. 5 has been received, the reception device can obtain the data transmitted by the transmission device.

[0416] FIG. 6 illustrates one example of components relating to control information generation for generating control information symbol signal 253 illustrated in FIG. 2. FIG. 6 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0417] FIG. 7 illustrates one example of a configuration of antenna unit #A (109_A) and antenna unit #B (109_B) illustrated in FIG. 1 (in this example, antenna unit #A (109_A) and antenna unit #B (109_B) include a plurality of antennas). FIG. 7 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0418] FIG. 8 illustrates one example of a configuration of a reception device that receives a modulated signal upon the transmission device illustrated in FIG. 1 transmitting, for example, a transmission signal having the frame configuration illustrated in FIG. 4 or FIG. 5. FIG. 8 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0419] FIG. 10 illustrates one example of a configuration of antenna unit #X (801X) and antenna unit #Y (801Y) illustrated in FIG. 8 (antenna unit #X (801X) and antenna unit #Y (801Y) are exemplified as including a plurality of antennas). FIG. 10 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0420] Next, signal processor 106 in the transmission device illustrated in FIG. 1 is inserted as phase changers 205A, 205B and phase changer 209A, as illustrated in FIG. 20. The characteristics and advantageous effects of this configuration will be described.

[0421] As described with reference to FIG. 4 and FIG. 5, phase changers 205A, 205B apply precoding (weighted synthesis) to mapped signal s1(i) (201A) (i is a symbol number; i is an integer greater than or equal to 0) obtained via mapping using the first sequence and mapped signal s2(i) (201B) obtained via mapping using the second sequence, and applies a phase change to one of the obtained weighting synthesized signals 204A and 204B. Phase-changed signal 206A and phase-changed signal 206B are then transmitted at the same frequency and at the same time. Accordingly, in FIG. 4 and FIG. 5, a phase change is applied to data symbol 402 in FIG. 4 and data symbol 502 in FIG. 5.

[0422] For example, FIG. 11 illustrates an extraction of carrier 1 through carrier 5 and time $4 through time $6 from the frame illustrated in FIG. 4. Note that in FIG. 11, similar to FIG. 4, 401 is a pilot symbol, 402 is a data symbol, and 403 is an other symbol.

[0423] As described above, among the symbols illustrated in FIG. 11, phase changer 205A applies a phase change to the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6).

[0424] Accordingly, the phase change values for the data symbols illustrated in FIG. 11 can be expressed as "e j×λ15(i)< " for (carrier 1, time $5), "e j×λ15(i)< " for (carrier 2, time $5), "e j×λ35(i)< " for (carrier 3, time $5), "e j×λ45(i)< " for (carrier 4, time $5), "e j×λ55(i)< " (carrier 5, time $5), "e j×λ16(i)< " for (carrier 1, time $6), "e j×λ26(i)< " for (carrier 2, time $6), "e j×λ46(i)< " for (carrier 4, time $6), and "e j×λ56(i)< " for (carrier 5, time $6).

[0425] Among the symbols illustrated in FIG. 11, the other symbols located at (carrier 1, time $4), (carrier 2, time $4), (carrier 3, time $4), (carrier 4, time $4), and (carrier 5, time $4), and the pilot symbol located at (carrier 3, time $6) are not subject to phase change by phase changer 205A.

[0426] This point is a characteristic of phase changer 205A. Note that, as illustrated in FIG. 4, data carriers are arranged at "the same carriers and the same times" as the symbols subject to phase change in FIG. 11, which are the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6). In other words, in FIG. 4, the symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6) are data symbols (in other words, data symbols that perform MIMO transmission (transmit a plurality of streams) are subject to phase change by phase changer 205A).

[0427] One example of the phase change that phase changer 205A applies to the data symbols is the method given in Equation (50) in which phase change is applied to the data symbols regularly (such as at each cycle N) (however, the phase change method implemented on the data symbols is not limited to this example).

[0428] For example, FIG. 11 illustrates an extraction of carrier 1 through carrier 5 and time $4 through time $6 from the frame illustrated in FIG. 5. Note that in FIG. 11, similar to FIG. 5, 501 is a pilot symbol, 502 is a data symbol, and 503 is an other symbol.

[0429] As described above, among the symbols illustrated in FIG. 11, phase changer 205B applies a phase change to the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6).

[0430] Accordingly, the phase change values for the data symbols illustrated in FIG. 11 can be expressed as "e j×δ15(i)< " for (carrier 1, time $5), "e j×δ25(i)< " for (carrier 2, time $5), "e j×δ35(i)< " for (carrier 3, time $5), "e j×δ45(i)< " for (carrier 4, time $5), "e j×δ55(i)< " (carrier 5, time $5), "e j×δ16(i)< " for (carrier 1, time $6), "e j×δ26(i)< " for (carrier 2, time $6), "e j×δ46(i)< " for (carrier 4, time $6), and "e j×δ56(i)< " for (carrier 5, time $6).

[0431] Among the symbols illustrated in FIG. 11, the other symbols located at (carrier 1, time $4), (carrier 2, time $4), (carrier 3, time $4), (carrier 4, time $4), and (carrier 5, time $4), and the pilot symbol located at (carrier 3, time $6) are not subject to phase change by phase changer 205B.

[0432] This point is a characteristic of phase changer 205B. Note that, as illustrated in FIG. 4, data carriers are arranged at "the same carriers and the same times" as the symbols subject to phase change in FIG. 11, which are the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6). In other words, in FIG. 4, the symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6) are data symbols (in other words, data symbols that perform MIMO transmission (transmit a plurality of streams) are subject to phase change by phase changer 205B).

[0433] One example of the phase change that phase changer 205B applies to the data symbols is the method given in Equation (2) in which phase change is applied to the data symbols regularly (such as at each cycle N) (however, the phase change method implemented on the data symbols is not limited to this example).

[0434] With this, when the environment is one in which the direct waves are dominant, such as in an LOS environment, it is possible to achieve improved data reception quality in the reception device with respect to the data symbols that perform MIMO transmission (transmit a plurality of streams). Next, the advantageous effects of this will be described.

[0435] For example, the modulation scheme used by mapper 104 in FIG. 1 is quadrature phase shift keying (QPSK) (mapped signal 201A in FIG. 18 is a QPSK signal, and mapped signal 201B is a QPSK signal; in other words, two QPSK streams are transmitted). Accordingly, for example, using channel estimated signals 806_1 and 806_2, 16 candidate signal points are obtained by signal processor 811 illustrated in FIG. 8 (2-bit transmission is possible with QPSK. Accordingly, since there are two streams, 4-bit transmission is achieved. Thus, there are 2 4< = 16 candidate signal points) (note that 16 other candidate signal points are obtained from using channel estimated signals 808_1 and 808_2 as well, but since description thereof is the same as described above, the following description will focus on the 16 candidate signal points obtained by using channel estimated signals 806_1 and 806_2).

[0436] FIG. 12 illustrates an example of the state resulting from such a case. In (A) and (B) in FIG. 12, in-phase I is represented on the horizontal axis and quadrature Q is represented on the vertical axis, and 16 candidate signal points are present in the illustrated in-phase I-quadrature Q planes (among the 16 candidate signal points, one is a signal point that is transmitted by the transmission device; accordingly, this is referred to as "16 candidate signal points").

[0437] When the environment is one in which the direct waves are dominant, such as in an LOS environment, consider a first case in which phase changers 205A and 205B are omitted from the configuration illustrated in FIG. 20 (in other words, a case in which phase change is not applied by phase changers 205A and 205B in FIG. 20).

[0438] In the first case, since phase change is not applied, there is a possibility that the state illustrated in (A) in FIG. 12 will be realized. When the state falls into the state illustrated in (A) in FIG. 12, as illustrated by "signal points 1201 and 1202", "signal points 1203, 1204, 1205, and 1206", and "signal points 1207, 1208", the signal points become dense (the distances between some signal points shorten). Accordingly, in the reception device illustrated in FIG. 8, data reception quality may deteriorate.

[0439] In order to remedy this phenomenon, in FIG. 20, phase changers 205A, 205B are inserted. When phase changers 205A, 205B are inserted, due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12. With respect to this state, since error correction code is introduced, high error correction performance is achieved, and in the reception device illustrated in FIG. 8, high data reception quality can be achieved.

[0440] Note that in FIG. 20, a phase change is not applied by phase changers 205A, 205B in FIG. 20 to "pilot symbols, preamble" for demodulating (wave detection of) data symbols, such as pilot symbols and a preamble, and for channel estimation. With this, among data symbols, "due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12" can be realized.

[0441] However, even if a phase change is applied by phase changers 205A, 205B in FIG. 20 to "pilot symbols, preamble" for demodulating (wave detection of) data symbols, such as pilot symbols and a preamble, and for channel estimation, the following is possible: "among data symbols, "due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12" can be realized." In such a case, a phase change must be applied to pilot symbols and / or a preamble under some condition. For example, one conceivable method is to implement a rule which is separate from the rule for applying a phase change to a data symbol, and "applying a phase change to a pilot symbol and / or a preamble". Another example is a method of regularly applying a phase change to a data symbol in a cycle N, and regularly applying a phase change to a pilot symbol and / or a preamble in a cycle M (N and M are integers that are greater than or equal to 2).

[0442] As described above, phase changer 209B receives inputs of baseband signal 208B and control signal 200, applies a phase change to baseband signal 208B based on control signal 200, and outputs phase-changed signal 210B. Baseband signal 208B is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210B (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit). Note that the operation performed by phase changer 209B may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209B is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol (accordingly, in such a case, symbols subject to symbol number i include data symbols, pilot symbols, control information symbols, and preambles (other symbols))(in the case of FIG. 20, since phase changer 209B applies a phase change to baseband signal 208B, a phase change is applied to each symbol in FIG. 5).

[0443] Accordingly, in the frame illustrated in FIG. 5, phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $1.

[0444] Similarly, phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $2, phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $3, phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $4, phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $5, phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $6, phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $7, phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $8, phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $9, phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $10, phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $11....

[0445] FIG. 13 illustrates a frame configuration different from the frame configuration illustrated in FIG. 4 of transmission signal 108_A illustrated in FIG. 1. FIG. 13 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0446] FIG. 14 illustrates a frame configuration different from the frame configuration illustrated in FIG. 5 of transmission signal 108_B illustrated in FIG. 1. FIG. 14 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0447] When a symbol is present in carrier A at time $B in FIG. 13 and a symbol is present in carrier A at time $B in FIG. 14, the symbol in carrier A at time $B in FIG. 13 and the symbol in carrier A at time $B in FIG. 14 are transmitted at the same time and same frequency. Note that the frame configurations illustrated in FIG. 13 and FIG. 14 are merely examples.

[0448] The other symbols in FIG. 13 and FIG. 14 are symbols corresponding to "preamble signal 252 and control information symbol signal 253 in FIG. 20". Accordingly, when an other symbol 403 in FIG. 13 at the same time and same frequency (same carrier) as an other symbol 503 in FIG. 14 transmits control information, it transmits the same data (the same control information).

[0449] Note that this is under the assumption that the frame of FIG. 13 and the frame of FIG. 14 are received at the same time by the reception device, but even when the frame of FIG. 13 or the frame of FIG. 14 has been received, the reception device can obtain the data transmitted by the transmission device.

[0450] Phase changer 209B receives inputs of baseband signal 208B and control signal 200, applies a phase change to baseband signal 208B based on control signal 200, and outputs phase-changed signal 210B. Baseband signal 208B is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210B (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit). Note that the operation performed by phase changer 209B may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209B is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol). Here, a null symbol may be considered as a target for application of a phase change (accordingly, in such a case, symbols subject to symbol number i include data symbols, pilot symbols, control information symbols, preambles (other symbols), and null symbols). However, even if a phase change is applied to a null symbol, the signals before and after the phase change are the same (in-phase component I is zero (0) and the quadrature component Q is zero (0)). Accordingly, it is possible to construe a null symbol as not a target for a phase change (in the case of FIG. 20, since phase changer 209B applies a phase change to baseband signal 208B, a phase change is applied to each symbol in FIG. 14).

[0451] Accordingly, in the frame illustrated in FIG. 14, phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $1. However, the handling of the phase change with respect to null symbol 1301 is as previously described.

[0452] Similarly, "phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $2, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $3, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, all other symbols 503) for all carriers 1 to 36 at time $4, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $5, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $6, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $7, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $8, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $9, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $10, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209B illustrated in FIG. 20 applies a phase change to all symbols (in this case, pilot symbols 501 or data symbols 502) for all carriers 1 to 36 at time $11. However, the handling of the phase change with respect to null symbol 1301 is as previously described."... ...

[0453] The phase change value of phase changer 209B is expressed as Ω(i). Baseband signal 208B is x'(i) and phase-changed signal 210B is x(i). Accordingly, x(i) = Ω(i) × x'(i) holds true.

[0454] For example, the phase change value is set to Equation (38) (Q is an integer that is greater than or equal to 2, and represents the number of phase change cycles) (j is an imaginary number unit). However, Equation (38) is merely a non-limiting example.

[0455] For example, Ω(i) may be set so as to implement a phase change that yields a cycle Q.

[0456] Moreover, for example, in FIG. 5 and FIG. 14, the same phase change value is applied to the same carriers, and the phase change value may be set on a per carrier basis. For example, the following may be implemented.

[0457] Regardless of time, the phase change value may be as in Equation (39) for carrier 1 in FIG. 5 and FIG. 14.

[0458] Regardless of time, the phase change value may be as in Equation (40) for carrier 2 in FIG. 5 and FIG. 14.

[0459] Regardless of time, the phase change value may be as in Equation (41) for carrier 3 in FIG. 5 and FIG. 14.

[0460] Regardless of time, the phase change value may be as in Equation (42) for carrier 4 in FIG. 5 and FIG. 14. ...

[0461] This concludes the operational example of phase changer 209B illustrated in FIG. 20.

[0462] Next, the advantageous effects obtained by phase changer 209B illustrated in FIG. 20 will be described.

[0463] The other symbols 403, 503 in "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" include a control information symbol. As previously described, when an other symbol 503 in FIG. 5 at the same time and same frequency (in the same carrier) as an other symbol 403 transmits control information, it transmits the same data (same control information).

[0464] However, consider the following cases.

[0465] Case 2: transmitting a control information symbol using either antenna unit #A (109_A) or antenna unit #B (109_B) illustrated in FIG. 1.

[0466] When transmission according to "case 2" is performed, since only one antenna is used to transmit the control information symbol, compared to when "transmitting a control information symbol using both antenna unit #A (109_A) and antenna unit #B (109_B)" is performed, spatial diversity gain is less. Accordingly, in "case 2", data reception quality deteriorates even when received by the reception device illustrated in FIG. 8. Accordingly, from the perspective of improving data reception quality, "transmitting a control information symbol using both antenna unit #A (109_A) and antenna unit #B (109_B)" is more beneficial.

[0467] Case 3: transmitting a control information symbol using both antenna unit #A (109_A) and antenna unit #B (109_B) illustrated in FIG. 1. However, phase change by is not performed by phase changer 209B illustrated in FIG. 20.

[0468] When transmission according to "case 3" is performed, since the modulated signal transmitted from antenna unit #A 109_A and the modulated signal transmitted from antenna unit #B 109_B are the same (or exhibit a specific phase shift), depending on the radio wave propagation environment, the reception device illustrated in FIG. 8 may receive an inferior reception signal, and both modulated signal may be subjected to the same multipath effect. Accordingly, in the reception device illustrated in FIG. 8, data reception quality deteriorates.

[0469] In order to remedy this phenomenon, in FIG. 20, phase changer 209B is inserted. Since this changes the phase along the time or frequency axis, in the reception device illustrated in FIG. 8, it is possible to reduce the probability of reception of an inferior reception signal. Moreover, since there is a high probability that there will be a difference in the multipath effect that the modulated signal transmitted from antenna unit #A 109_A is subjected to with respect to the multipath effect that the modulated signal transmitted from antenna unit #B 109_B is subjected to, there is a high probability that diversity gain will result, and accordingly, that data reception quality in the reception device illustrated in FIG. 8 will improve.

[0470] For these reasons, in FIG. 20, phase changer 209B is provided and phase change is implemented.

[0471] Other symbols 403 and other symbols 503 include, in addition to control information symbols, for example, symbols for signal detection, symbols for performing frequency and time synchronization, and symbols for performing channel estimation (a symbol for performing propagation path fluctuation estimation), for demodulating and decoding control information symbols. Moreover, "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" include pilot symbols 401, 501, and by using these, it is possible to perform demodulation and decoding with high precision via control information symbols.

[0472] Moreover, "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" transmit a plurality of streams (perform MIMO transmission) at the same time and using the same frequency (frequency band) via data symbols 402 and data symbols 502. In order to demodulate these data symbols, symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503, are used.

[0473] Here, "symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503" are applied with a phase change by phase changer 209B, as described above.

[0474] Under these circumstances, when this processing is not performed on data symbols 402 and data symbols 502 (on data symbols 402 in the example above), in the reception device, when data symbols 402 and data symbols 502 are demodulated and decoded, there is a need to perform the demodulation and decoding in which the processing for the phase change by phase changer 209B was performed, and there is a probability that this processing will be complicated (this is because "symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503" are applied with a phase change by phase changer 209B).

[0475] However, as illustrated in FIG. 20, in phase changer 209B, when a phase change is applied to data symbols 402 and data symbols 502 (to data symbols 502 in the example above), in the reception device, there is the advantage that data symbols 402 and data symbols 502 can (easily) be demodulated and decoded using the channel estimation signal (propagation path fluctuation signal) estimated by using "symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503".

[0476] Additionally, as illustrated in FIG. 20, in phase changer 209B, when a phase change is applied to data symbols 402 and data symbols 502 (to data symbols 502 in the example above), in multipath environments, it is possible to reduce the influence of sharp drops in electric field intensity along the frequency axis. Accordingly, it is possible to obtain the advantageous effect of an improvement in data reception quality of data symbols 402 and data symbols 502.

[0477] In this way, the point that "symbols that are targets for implementation of a phase change by phase changers 205A, 205B" and "symbols that are targets for implementation of a phase change by phase changer 209B" are different is a characteristic point.

[0478] As described above, by applying a phase change using phase changers 205A, 205B illustrated in FIG. 20, it is possible to achieve the advantageous effect of an improvement in data reception quality of data symbols 402 and data symbols 502 in the reception device in, for example, LOS environments, and by applying a phase change using phase changer 209B illustrated in FIG. 20, for example, it is possible to achieve the advantageous effect of an improvement in data reception quality in the reception device of the control information symbols included in "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" and the advantageous effect that operations of demodulation and decoding of data symbols 402 and data symbols 502 become simple.

[0479] Note that the advantageous effect of an improvement in data reception quality in the reception device of data symbols 402 and data symbols 502 in, for example, LOS environments, is achieved as a result of the phase change implemented by phase changers 205A, 205B illustrated in FIG. 20, and furthermore, the reception quality of data symbols 402 and data symbols 502 is improved by applying a phase change to data symbols 402 and data symbols 502 using phase changer 209B illustrated in FIG. 20.

[0480] Note that Q in Equation (38) may be an integer of -2 or less. In such a case, the value for the phase change cycle is the absolute value of Q. This feature is applicable to Embodiment 1 as well.(EMBODIMENT 5)

[0481] In this embodiment, an implementation method will be described that is different from the configuration illustrated in FIG. 2 and described in Embodiment 1.

[0482] FIG. 1 illustrates one example of a configuration of a transmission device according to this embodiment, such as a base station, access point, or broadcast station. As FIG. 1 is described in detail in Embodiment 1, description will be omitted from this embodiment.

[0483] Signal processor 106 receives inputs of mapped signals 105_1 and 105_2, signal group 110, and control signal 100, performs signal processing based on control signal 100, and outputs signal-processed signals 106_A and 106_B. Here, signal-processed signal 106_A is expressed as u1(i), and signal-processed signal 106_B is expressed as u2(i) (i is a symbol number; for example, i is an integer that is greater than or equal to 0). Note that details regarding the signal processing will be described with reference to FIG. 21 later.

[0484] FIG. 21 illustrates one example of a configuration of signal processor 106 illustrated in FIG. 1. Weighting synthesizer (precoder) 203 receives inputs of mapped signal 201A (mapped signal 105_1 in FIG. 1), mapped signal 201B (mapped signal 105_2 in FIG. 1), and control signal 200 (control signal 100 in FIG. 1), performs weighting synthesis (precoding) based on control signal 200, and outputs weighted signal 204A and weighted signal 204B. Here, mapped signal 201A is expressed as s1(t), mapped signal 201B is expressed as s2(t), weighted signal 204A is expressed as z1'(t), and weighted signal 204B is expressed as z2'(t). Note that one example of t is time (s1(t), s2(t), z1'(t), and z2'(t) are defined as complex numbers (accordingly, they may be real numbers)).

[0485] Here, these are given as functions of time, but may be functions of a "frequency (carrier number)", and may be functions of "time and frequency". These may also be a function of a "symbol number". Note that this also applies to Embodiment 1.

[0486] Weighting synthesizer (precoder) 203 performs the calculations indicated in Equation (49).

[0487] Phase changer 205A receives inputs of weighting synthesized signal 204A and control signal 200, applies a phase change to weighting synthesized signal 204A based on control signal 200, and outputs phase-changed signal 206A. Note that phase-changed signal 206A is expressed as z1(t), and z1(t) is defined as a complex number (and may be a real number).

[0488] Next, specific operations performed by phase changer 205A will be described. In phase changer 205A, for example, a phase change of w(i) is applied to z1'(i). Accordingly, z1(i) can be expressed as z1(i) = w(i) × z1'(i) (i is a symbol number (i is an integer that is greater than or equal to 0)).

[0489] For example, the phase change value is set as indicated in Equation (50).

[0490] (M is an integer that is greater than or equal to 2, M is a phase change cycle)(when M is set to an odd number greater than or equal to 3, data reception quality may improve). However, Equation (50) is merely a non-limiting example. Here, phase change value is expressed as w(i) = e j×λ(i)< .

[0491] Phase changer 205B receives inputs of weighting synthesized signal 204B and control signal 200, applies a phase change to weighting synthesized signal 204B based on control signal 200, and outputs phase-changed signal 206B. Note that phase-changed signal 206B is expressed as z2(t), and z2(t) is defined as a complex number (and may be a real number).

[0492] Next, specific operations performed by phase changer 205B will be described. In phase changer 205B, for example, a phase change of y(i) is applied to z2'(i). Accordingly, z2(i) can be expressed as z2(i) = y(i) × z2'(i) (i is a symbol number (i is an integer that is greater than or equal to 0)).

[0493] For example, the phase change value is set as shown in Equation (2) (N is an integer that is greater than or equal to 2, N is a phase change cycle, N ≠ M)(when N is set to an odd number greater than or equal to 3, data reception quality may improve). However, Equation (2) is merely a non-limiting example. Here, phase change value y(i) = e j×δ(i)< .

[0494] Here, z1(i) and z2(i) can be expressed with Equation (51).

[0495] Note that δ(i) and λ(i) are real numbers. z1(i) and z2(i) are transmitted from the transmission device at the same time and using the same frequency (same frequency band). In Equation (51), the phase change value is not limited to the value used in Equations (2) and (51); for example, a method in which the phase is changed cyclically or regularly is conceivable.

[0496] As described in Embodiment 1, conceivable examples of the (precoding) matrix inserted in Equation (49) and Equation (51) are illustrated in Equation (5) through Equation (36) (however, the precoding matrix is not limited to these examples (the same applies to Embodiment 1)).

[0497] Inserter 207A receives inputs of weighting synthesized signal 204A, pilot symbol signal (pa(t))(t is time)(251A), preamble signal 252, control information symbol signal 253, and control signal 200, and based on information on the frame configuration included in control signal 200, outputs baseband signal 208A based on the frame configuration.

[0498] Similarly, inserter 207B receives inputs of phase-changed signal 206B, pilot symbol signal (pb(t))(251B), preamble signal 252, control information symbol signal 253, and control signal 200, and based on information on the frame configuration included in control signal 200, outputs baseband signal 208B based on the frame configuration.

[0499] Phase changer 209B receives inputs of baseband signal 208B and control signal 200, applies a phase change to baseband signal 208B based on control signal 200, and outputs phase-changed signal 210B. Baseband signal 208B is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210B (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit).

[0500] As described in Embodiment 1, etc., note that the operation performed by phase changer 209B may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209B is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol).

[0501] FIG. 3 illustrates one example of a configuration of radio units 107_A and 107_B illustrated in FIG. 1. FIG. 3 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0502] FIG. 4 illustrates a frame configuration of transmission signal 108_A illustrated in FIG. 1. FIG. 4 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0503] FIG. 5 illustrates a frame configuration of transmission signal 108_B illustrated in FIG. 1. FIG. 5 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0504] When a symbol is present in carrier A at time $B in FIG. 4 and a symbol is present in carrier A at time $B in FIG. 5, the symbol in carrier A at time $B in FIG. 4 and the symbol in carrier A at time $B in FIG. 5 are transmitted at the same time and same frequency. Note that the frame configuration is not limited to the configurations illustrated in FIG. 4 and FIG. 5; FIG. 4 and FIG. 5 are mere examples of frame configurations.

[0505] The other symbols in FIG. 4 and FIG. 5 are symbols corresponding to "preamble signal 252 and control information symbol signal 253 in FIG. 2". Accordingly, when an other symbol 503 in FIG. 5 at the same time and same frequency (same carrier) as an other symbol 403 in FIG. 4 transmits control information, it transmits the same data (the same control information).

[0506] Note that this is under the assumption that the frame of FIG. 4 and the frame of FIG. 5 are received at the same time by the reception device, but even when the frame of FIG. 4 or the frame of FIG. 5 has been received, the reception device can obtain the data transmitted by the transmission device.

[0507] FIG. 6 illustrates one example of components relating to control information generation for generating control information symbol signal 253 illustrated in FIG. 2. FIG. 6 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0508] FIG. 7 illustrates one example of a configuration of antenna unit #A (109_A) and antenna unit #B (109_B) illustrated in FIG. 1 (in this example, antenna unit #A (109_A) and antenna unit #B (109_B) include a plurality of antennas). FIG. 7 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0509] FIG. 8 illustrates one example of a configuration of a reception device that receives a modulated signal upon the transmission device illustrated in FIG. 1 transmitting, for example, a transmission signal having the frame configuration illustrated in FIG. 4 or FIG. 5. FIG. 8 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0510] FIG. 10 illustrates one example of a configuration of antenna unit #X (801X) and antenna unit #Y (801Y) illustrated in FIG. 8 (antenna unit #X (801X) and antenna unit #Y (801Y) are exemplified as including a plurality of antennas). FIG. 10 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0511] Next, signal processor 106 in the transmission device illustrated in FIG. 1 is inserted as phase changers 205A, 205B and phase changer 209B, as illustrated in FIG. 21. The characteristics and advantageous effects of this configuration will be described.

[0512] As described with reference to FIG. 4 and FIG. 5, phase changers 205A, 205B apply precoding (weighted synthesis) to mapped signal s1(i) (201A) (i is a symbol number; i is an integer greater than or equal to 0) obtained via mapping using the first sequence and mapped signal s2(i) (201B) obtained via mapping using the second sequence, and applies a phase change to one of the obtained weighting synthesized signals 204A and 204B. Phase-changed signal 206A and phase-changed signal 206B are then transmitted at the same frequency and at the same time. Accordingly, in FIG. 4 and FIG. 5, a phase change is applied to data symbol 402 in FIG. 4 and data symbol 502 in FIG. 5.

[0513] For example, FIG. 11 illustrates an extraction of carrier 1 through carrier 5 and time $4 through time $6 from the frame illustrated in FIG. 4. Note that in FIG. 11, similar to FIG. 4, 401 is a pilot symbol, 402 is a data symbol, and 403 is an other symbol.

[0514] As described above, among the symbols illustrated in FIG. 11, phase changer 205A applies a phase change to the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6).

[0515] Accordingly, the phase change values for the data symbols illustrated in FIG. 11 can be expressed as "e j×λ15(i)< " for (carrier 1, time $5), "e j×λ25(i)< " for (carrier 2, time $5), "e j×λ35(i)< " for (carrier 3, time $5), "e j×λ45(i)< " for (carrier 4, time $5), "e j×λ55(i)< " (carrier 5, time $5), "e j×λ16(i)< " for (carrier 1, time $6), "e j×λ26(i)< " for (carrier 2, time $6), "e j×λ46(i)< " for (carrier 4, time $6), and "e j×λ56(i)< " for (carrier 5, time $6).

[0516] Among the symbols illustrated in FIG. 11, the other symbols located at (carrier 1, time $4), (carrier 2, time $4), (carrier 3, time $4), (carrier 4, time $4), and (carrier 5, time $4), and the pilot symbol located at (carrier 3, time $6) are not subject to phase change by phase changer 205A.

[0517] This point is a characteristic of phase changer 205A. Note that, as illustrated in FIG. 4, data carriers are arranged at "the same carriers and the same times" as the symbols subject to phase change in FIG. 11, which are the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6). In other words, in FIG. 4, the symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6) are data symbols (in other words, data symbols that perform MIMO transmission (transmit a plurality of streams) are subject to phase change by phase changer 205A).

[0518] One example of the phase change that phase changer 205A applies to the data symbols is the method given in Equation (50) in which phase change is applied to the data symbols regularly (such as at each cycle N) (however, the phase change method implemented on the data symbols is not limited to this example).

[0519] For example, FIG. 11 illustrates an extraction of carrier 1 through carrier 5 and time $4 through time $6 from the frame illustrated in FIG. 5. Note that in FIG. 11, similar to FIG. 5, 501 is a pilot symbol, 502 is a data symbol, and 503 is an other symbol.

[0520] As described above, among the symbols illustrated in FIG. 11, phase changer 205B applies a phase change to the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6).

[0521] Accordingly, the phase change values for the data symbols illustrated in FIG. 11 can be expressed as "e j×δ15(i)< " for (carrier 1, time $5), "e j×δ25(i)< " for (carrier 2, time $5), "e j×δ35(i)< " for (carrier 3, time $5), "e j×δ45(i)< " for (carrier 4, time $5), "e jxδ55(i)< " (carrier 5, time $5), "e j×δ16(i)< " for (carrier 1, time $6), "e j×δ26(i)< " for (carrier 2, time $6), "e j×δ46(i)< " for (carrier 4, time $6), and "e j×δ56(i)< " for (carrier 5, time $6).

[0522] Among the symbols illustrated in FIG. 11, the other symbols located at (carrier 1, time $4), (carrier 2, time $4), (carrier 3, time $4), (carrier 4, time $4), and (carrier 5, time $4), and the pilot symbol located at (carrier 3, time $6) are not subject to phase change by phase changer 205B.

[0523] This point is a characteristic of phase changer 205B. Note that, as illustrated in FIG. 4, data carriers are arranged at "the same carriers and the same times" as the symbols subject to phase change in FIG. 11, which are the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6). In other words, in FIG. 4, the symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6) are data symbols (in other words, data symbols that perform MIMO transmission (transmit a plurality of streams) are subject to phase change by phase changer 205B).

[0524] One example of the phase change that phase changer 205B applies to the data symbols is the method given in Equation (2) in which phase change is applied to the data symbols regularly (such as at each cycle N) (however, the phase change method implemented on the data symbols is not limited to this example).

[0525] With this, when the environment is one in which the direct waves are dominant, such as in an LOS environment, it is possible to achieve improved data reception quality in the reception device with respect to the data symbols that perform MIMO transmission (transmit a plurality of streams). Next, the advantageous effects of this will be described.

[0526] For example, the modulation scheme used by mapper 104 in FIG. 1 is quadrature phase shift keying (QPSK) (mapped signal 201A in FIG. 18 is a QPSK signal, and mapped signal 201B is a QPSK signal; in other words, two QPSK streams are transmitted). Accordingly, for example, using channel estimated signals 806_1 and 806_2, 16 candidate signal points are obtained by signal processor 811 illustrated in FIG. 8 (2-bit transmission is possible with QPSK. Accordingly, since there are two streams, 4-bit transmission is achieved. Thus, there are 2 4< = 16 candidate signal points) (note that 16 other candidate signal points are obtained from using channel estimated signals 808_1 and 808_2 as well, but since description thereof is the same as described above, the following description will focus on the 16 candidate signal points obtained by using channel estimated signals 806_1 and 806_2).

[0527] FIG. 12 illustrates an example of the state resulting from such a case. In (A) and (B) in FIG. 12, in-phase I is represented on the horizontal axis and quadrature Q is represented on the vertical axis, and 16 candidate signal points are present in the illustrated in-phase I-quadrature Q planes (among the 16 candidate signal points, one is a signal point that is transmitted by the transmission device; accordingly, this is referred to as "16 candidate signal points").

[0528] When the environment is one in which the direct waves are dominant, such as in an LOS environment, consider a first case in which phase changers 205A and 205B are omitted from the configuration illustrated in FIG. 21 (in other words, a case in which phase change is not applied by phase changers 205A and 205B in FIG. 21).

[0529] In the first case, since phase change is not applied, there is a possibility that the state illustrated in (A) in FIG. 12 will be realized. When the state falls into the state illustrated in (A) in FIG. 12, as illustrated by "signal points 1201 and 1202", "signal points 1203, 1204, 1205, and 1206", and "signal points 1207, 1208", the signal points become dense (the distances between some signal points shorten). Accordingly, in the reception device illustrated in FIG. 8, data reception quality may deteriorate.

[0530] In order to remedy this phenomenon, in FIG. 21, phase changers 205A, 205B are inserted. When phase changers 205A, 205B are inserted, due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12. With respect to this state, since error correction code is introduced, high error correction performance is achieved, and in the reception device illustrated in FIG. 8, high data reception quality can be achieved.

[0531] Note that in FIG. 21, a phase change is not applied by phase changers 205A, 205B in FIG. 21 to "pilot symbols, preamble" for demodulating (wave detection of) data symbols, such as pilot symbols and a preamble, and for channel estimation. With this, among data symbols, "due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12" can be realized.

[0532] However, even if a phase change is applied by phase changers 205A, 205B in FIG. 21 to "pilot symbols, preamble" for demodulating (wave detection of) data symbols, such as pilot symbols and a preamble, and for channel estimation, the following is possible: "among data symbols, "due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12" can be realized." In such a case, a phase change must be applied to pilot symbols and / or a preamble under some condition. For example, one conceivable method is to implement a rule which is separate from the rule for applying a phase change to a data symbol, and "applying a phase change to a pilot symbol and / or a preamble". Another example is a method of regularly applying a phase change to a data symbol in a cycle N, and regularly applying a phase change to a pilot symbol and / or a preamble in a cycle M (N and M are integers that are greater than or equal to 2).

[0533] As described above, phase changer 209A receives inputs of baseband signal 208A and control signal 200, applies a phase change to baseband signal 208A based on control signal 200, and outputs phase-changed signal 210A. Baseband signal 208A is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210A (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit). Note that the operation performed by phase changer 209A may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209A is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol (accordingly, in such a case, symbols subject to symbol number i include data symbols, pilot symbols, control information symbols, and preambles (other symbols)) (in the case of FIG. 21, since phase changer 209A applies a phase change to baseband signal 208A, a phase change is applied to each symbol in FIG. 4).

[0534] Accordingly, in the frame illustrated in FIG. 4, phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $1.

[0535] Similarly, phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $2, phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $3, phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $4, phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $5, phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $6, phase changer 209Aillustrated in FIG. 21 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $7, phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $8, phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $9, phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $10, phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $11....

[0536] FIG. 13 illustrates a frame configuration different from the frame configuration illustrated in FIG. 4 of transmission signal 108_A illustrated in FIG. 1. FIG. 13 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0537] FIG. 14 illustrates a frame configuration different from the frame configuration illustrated in FIG. 5 of transmission signal 108_B illustrated in FIG. 1. FIG. 14 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0538] When a symbol is present in carrier A at time $B in FIG. 13 and a symbol is present in carrier A at time $B in FIG. 14, the symbol in carrier A at time $B in FIG. 13 and the symbol in carrier A at time $B in FIG. 14 are transmitted at the same time and same frequency. Note that the frame configurations illustrated in FIG. 13 and FIG. 14 are merely examples.

[0539] The other symbols in FIG. 13 and FIG. 14 are symbols corresponding to "preamble signal 252 and control information symbol signal 253 in FIG. 21". Accordingly, when an other symbol 403 in FIG. 13 at the same time and same frequency (same carrier) as an other symbol 503 in FIG. 14 transmits control information, it transmits the same data (the same control information).

[0540] Note that this is under the assumption that the frame of FIG. 13 and the frame of FIG. 14 are received at the same time by the reception device, but even when the frame of FIG. 13 or the frame of FIG. 14 has been received, the reception device can obtain the data transmitted by the transmission device.

[0541] Phase changer 209A receives inputs of baseband signal 208A and control signal 200, applies a phase change to baseband signal 208A based on control signal 200, and outputs phase-changed signal 210A. Baseband signal 208A is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210A (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit). Note that the operation performed by phase changer 209A may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209A is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol). Here, a null symbol may be considered as a target for application of a phase change (accordingly, in such a case, symbols subject to symbol number i include data symbols, pilot symbols, control information symbols, preambles (other symbols), and null symbols). However, even if a phase change is applied to a null symbol, the signals before and after the phase change are the same (in-phase component I is zero (0) and the quadrature component Q is zero (0)). Accordingly, it is possible to construe a null symbol as not a target for a phase change (in the case of FIG. 21, since phase changer 209A applies a phase change to baseband signal 208A, a phase change is applied to each symbol in FIG. 13).

[0542] Accordingly, in the frame illustrated in FIG. 13, phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $1. However, the handling of the phase change with respect to null symbol 1301 is as previously described.

[0543] Similarly, "phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $2, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $3, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $4, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $5, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $6, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $7, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $8, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $9, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $10, However, the handling of the phase change with respect to null symbol 1301 is as previously described.", "phase changer 209A illustrated in FIG. 21 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $11. However, the handling of the phase change with respect to null symbol 1301 is as previously described."...

[0544] The phase change value of phase changer 209A is expressed as Ω(i). Baseband signal 208A is x'(i) and phase-changed signal 210A is x(i). Accordingly, x(i) = Ω(i) × x'(i) holds true.

[0545] For example, the phase change value is set to Equation (38) (Q is an integer that is greater than or equal to 2, and represents the number of phase change cycles) (j is an imaginary number unit). However, Equation (38) is merely a non-limiting example.

[0546] For example, Ω(i) may be set so as to implement a phase change that yields a cycle Q.

[0547] Moreover, for example, in FIG. 4 and FIG. 13, the same phase change value is applied to the same carriers, and the phase change value may be set on a per carrier basis. For example, the following may be implemented.

[0548] Regardless of time, the phase change value may be as in Equation (39) for carrier 1 in FIG. 4 and FIG. 13.

[0549] Regardless of time, the phase change value may be as in Equation (40) for carrier 2 in FIG. 4 and FIG. 13.

[0550] Regardless of time, the phase change value may be as in Equation (41) for carrier 3 in FIG. 4 and FIG. 13. Regardless of time, the phase change value may be as in Equation (42) for carrier 4 in FIG. 4 and FIG. 13. ...

[0551] This concludes the operational example of phase changer 209A illustrated in FIG. 21.

[0552] Next, the advantageous effects obtained by phase changer 209A illustrated in FIG. 21 will be described.

[0553] The other symbols 403, 503 in "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" include a control information symbol. As previously described, when an other symbol 503 in FIG. 5 at the same time and same frequency (in the same carrier) as an other symbol 403 transmits control information, it transmits the same data (same control information).

[0554] However, consider the following cases.

[0555] Case 2: transmitting a control information symbol using either antenna unit #A (109_A) or antenna unit #B (109_B) illustrated in FIG. 1.

[0556] When transmission according to "case 2" is performed, since only one antenna is used to transmit the control information symbol, compared to when "transmitting a control information symbol using both antenna unit #A (109_A) and antenna unit #B (109_B)" is performed, spatial diversity gain is less. Accordingly, in "case 2", data reception quality deteriorates even when received by the reception device illustrated in FIG. 8. Accordingly, from the perspective of improving data reception quality, "transmitting a control information symbol using both antenna unit #A (109_A) and antenna unit #B (109_B)" is more beneficial.

[0557] Case 3: transmitting a control information symbol using both antenna unit #A (109_A) and antenna unit #B (109_B) illustrated in FIG. 1. However, phase change by is not performed by phase changer 209A illustrated in FIG. 21.

[0558] When transmission according to "case 3" is performed, since the modulated signal transmitted from antenna unit #A 109_A and the modulated signal transmitted from antenna unit #B 109_B are the same (or exhibit a specific phase shift), depending on the radio wave propagation environment, the reception device illustrated in FIG. 8 may receive an inferior reception signal, and both modulated signal may be subjected to the same multipath effect. Accordingly, in the reception device illustrated in FIG. 8, data reception quality deteriorates.

[0559] In order to remedy this phenomenon, in FIG. 21, phase changer 209A is inserted. Since this changes the phase along the time or frequency axis, in the reception device illustrated in FIG. 8, it is possible to reduce the probability of reception of an inferior reception signal. Moreover, since there is a high probability that there will be a difference in the multipath effect that the modulated signal transmitted from antenna unit #A 109_A is subjected to with respect to the multipath effect that the modulated signal transmitted from antenna unit #B 109_B is subjected to, there is a high probability that diversity gain will result, and accordingly, that data reception quality in the reception device illustrated in FIG. 8 will improve.

[0560] For these reasons, in FIG. 21, phase changer 209A is provided and phase change is implemented.

[0561] Other symbols 403 and other symbols 503 include, in addition to control information symbols, for example, symbols for signal detection, symbols for performing frequency and time synchronization, and symbols for performing channel estimation (a symbol for performing propagation path fluctuation estimation), for demodulating and decoding control information symbols. Moreover, "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" include pilot symbols 401, 501, and by using these, it is possible to perform demodulation and decoding with high precision via control information symbols.

[0562] Moreover, "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" transmit a plurality of streams (perform MIMO transmission) at the same time and using the same frequency (frequency band) via data symbols 402 and data symbols 502. In order to demodulate these data symbols, symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503, are used.

[0563] Here, "symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503" are applied with a phase change by phase changer 209A, as described above.

[0564] Under these circumstances, when this processing is not performed on data symbols 402 and data symbols 502 (on data symbols 402 in the example above), in the reception device, when data symbols 402 and data symbols 502 are demodulated and decoded, there is a need to perform the demodulation and decoding in which the processing for the phase change by phase changer 209A was performed, and there is a probability that this processing will be complicated (this is because "symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503" are applied with a phase change by phase changer 209A).

[0565] However, as illustrated in FIG. 21, in phase changer 209A, when a phase change is applied to data symbols 402 and data symbols 502 (to data symbols 402 in the example above), in the reception device, there is the advantage that data symbols 402 and data symbols 502 can (easily) be demodulated and decoded using the channel estimation signal (propagation path fluctuation signal) estimated by using "symbols for signal detection, symbols for frequency and time synchronization, and symbols for channel estimation (symbols for propagation path variation estimation), which are included in other symbols 403 and other symbols 503".

[0566] Additionally, as illustrated in FIG. 21, in phase changer 209A, when a phase change is applied to data symbols 402 and data symbols 502 (data symbols 402 in the example above), in multipath environments, it is possible to reduce the influence of sharp drops in electric field intensity along the frequency axis. Accordingly, it is possible to obtain the advantageous effect of an improvement in data reception quality of data symbols 402 and data symbols 502.

[0567] In this way, the point that "symbols that are targets for implementation of a phase change by phase changers 205A, 205B" and "symbols that are targets for implementation of a phase change by phase changer 209A" are different is a characteristic point.

[0568] As described above, by applying a phase change using phase changers 205A, 205B illustrated in FIG. 21, it is possible to achieve the advantageous effect of an improvement in data reception quality of data symbols 402 and data symbols 502 in the reception device in, for example, LOS environments, and by applying a phase change using phase changer 209A illustrated in FIG. 21, for example, it is possible to achieve the advantageous effect of an improvement in data reception quality in the reception device of the control information symbols included in "the frames of FIG. 4 and FIG. 5" or "the frames of FIG. 13 and FIG. 14" and the advantageous effect that operations of demodulation and decoding of data symbols 402 and data symbols 502 become simple.

[0569] Note that the advantageous effect of an improvement in data reception quality in the reception device of data symbols 402 and data symbols 502 in, for example, LOS environments, is achieved as a result of the phase change implemented by phase changers 205A and 205B illustrated in FIG. 21, and furthermore, the reception quality of data symbols 402 and data symbols 502 is improved by applying a phase change to data symbols 402 and data symbols 502 using phase changer 209A illustrated in FIG. 21.

[0570] Note that Q in Equation (38) may be an integer of -2 or less. In such a case, the value for the phase change cycle is the absolute value of Q. This feature is applicable to Embodiment 1 as well.(EMBODIMENT 6)

[0571] In this embodiment, an implementation method will be described that is different from the configuration illustrated in FIG. 2 and described in Embodiment 1.

[0572] FIG. 1 illustrates one example of a configuration of a transmission device according to this embodiment, such as a base station, access point, or broadcast station. As FIG. 1 is described in detail in Embodiment 1, description will be omitted from this embodiment.

[0573] Signal processor 106 receives inputs of mapped signals 105_1 and 105_2, signal group 110, and control signal 100, performs signal processing based on control signal 100, and outputs signal-processed signals 106_A and 106_B. Here, signal-processed signal 106_A is expressed as u1(i), and signal-processed signal 106_B is expressed as u2(i) (i is a symbol number; for example, i is an integer that is greater than or equal to 0). Note that details regarding the signal processing will be described with reference to FIG. 22 later.

[0574] FIG. 22 illustrates one example of a configuration of signal processor 106 illustrated in FIG. 1. Weighting synthesizer (precoder) 203 receives inputs of mapped signal 201A (mapped signal 105_1 in FIG. 1), mapped signal 201B (mapped signal 105_2 in FIG. 1), and control signal 200 (control signal 100 in FIG. 1), performs weighting synthesis (precoding) based on control signal 200, and outputs weighted signal 204A and weighted signal 204B. Here, mapped signal 201A is expressed as s1(t), mapped signal 201B is expressed as s2(t), weighted signal 204A is expressed as z1'(t), and weighted signal 204B is expressed as z2'(t). Note that one example of t is time (s1(t), s2(t), z1'(t), and z2'(t) are defined as complex numbers (accordingly, they may be real numbers)).

[0575] Here, these are given as functions of time, but may be functions of a "frequency (carrier number)", and may be functions of "time and frequency". These may also be a function of a "symbol number". Note that this also applies to Embodiment 1.

[0576] Weighting synthesizer (precoder) 203 performs the calculations indicated in Equation (49).

[0577] Phase changer 205A receives inputs of weighting synthesized signal 204A and control signal 200, applies a phase change to weighting synthesized signal 204A based on control signal 200, and outputs phase-changed signal 206A. Note that phase-changed signal 206A is expressed as z1(t), and z1(t) is defined as a complex number (and may be a real number).

[0578] Next, specific operations performed by phase changer 205A will be described. In phase changer 205A, for example, a phase change of w(i) is applied to z1'(i). Accordingly, z1(i) can be expressed as z1(i) = w(i) × z1'(i) (i is a symbol number (i is an integer that is greater than or equal to 0)).

[0579] For example, the phase change value is set as indicated in Equation (50).

[0580] (M is an integer that is greater than or equal to 2, M is a phase change cycle)(when M is set to an odd number greater than or equal to 3, data reception quality may improve). However, Equation (50) is merely a non-limiting example. Here, phase change value is expressed as w(i) = e j×λ(i)< .

[0581] Phase changer 205B receives inputs of weighting synthesized signal 204B and control signal 200, applies a phase change to weighting synthesized signal 204B based on control signal 200, and outputs phase-changed signal 206B. Note that phase-changed signal 206B is expressed as z2(t), and z2(t) is defined as a complex number (and may be a real number).

[0582] Next, specific operations performed by phase changer 205B will be described. In phase changer 205B, for example, a phase change of y(i) is applied to z2'(i). Accordingly, z2(i) can be expressed as z2(i) = y(i) × z2'(i) (i is a symbol number (i is an integer that is greater than or equal to 0)).

[0583] For example, the phase change value is set as shown in Equation (2) (N is an integer that is greater than or equal to 2, N is a phase change cycle, N ≠ M)(when N is set to an odd number greater than or equal to 3, data reception quality may improve). However, Equation (2) is merely a non-limiting example. Here, phase change value y(i) = e j×δ(i)< .

[0584] Here, z1(i) and z2(i) can be expressed with Equation (51).

[0585] Note that δ(i) and λ(i) are real numbers. z1(i) and z2(i) are transmitted from the transmission device at the same time and using the same frequency (same frequency band). In Equation (51), the phase change value is not limited to the value used in Equations (2) and (51); for example, a method in which the phase is changed cyclically or regularly is conceivable.

[0586] As described in Embodiment 1, conceivable examples of the (precoding) matrix inserted in Equation (49) and Equation (51) are illustrated in Equation (5) through Equation (36) (however, the precoding matrix is not limited to these examples (the same applies to Embodiment 1)).

[0587] Inserter 207A receives inputs of weighting synthesized signal 204A, pilot symbol signal (pa(t))(t is time)(251A), preamble signal 252, control information symbol signal 253, and control signal 200, and based on information on the frame configuration included in control signal 200, outputs baseband signal 208A based on the frame configuration.

[0588] Similarly, inserter 207B receives inputs of phase-changed signal 206B, pilot symbol signal (pb(t))(251B), preamble signal 252, control information symbol signal 253, and control signal 200, and based on information on the frame configuration included in control signal 200, outputs baseband signal 208B based on the frame configuration.

[0589] Phase changer 209B receives inputs of baseband signal 208B and control signal 200, applies a phase change to baseband signal 208B based on control signal 200, and outputs phase-changed signal 210B. Baseband signal 208B is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210B (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit).

[0590] As described in Embodiment 1, etc., note that the operation performed by phase changer 209B may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209B is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol).

[0591] FIG. 3 illustrates one example of a configuration of radio units 107_A and 107_B illustrated in FIG. 1. FIG. 3 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0592] FIG. 4 illustrates a frame configuration of transmission signal 108_A illustrated in FIG. 1. FIG. 4 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0593] FIG. 5 illustrates a frame configuration of transmission signal 108_B illustrated in FIG. 1. FIG. 5 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0594] When a symbol is present in carrier A at time $B in FIG. 4 and a symbol is present in carrier A at time $B in FIG. 5, the symbol in carrier A at time $B in FIG. 4 and the symbol in carrier A at time $B in FIG. 5 are transmitted at the same time and same frequency. Note that the frame configuration is not limited to the configurations illustrated in FIG. 4 and FIG. 5; FIG. 4 and FIG. 5 are mere examples of frame configurations.

[0595] The other symbols in FIG. 4 and FIG. 5 are symbols corresponding to "preamble signal 252 and control information symbol signal 253 in FIG. 2". Accordingly, when an other symbol 503 in FIG. 5 at the same time and same frequency (same carrier) as an other symbol 403 in FIG. 4 transmits control information, it transmits the same data (the same control information).

[0596] Note that this is under the assumption that the frame of FIG. 4 and the frame of FIG. 5 are received at the same time by the reception device, but even when the frame of FIG. 4 or the frame of FIG. 5 has been received, the reception device can obtain the data transmitted by the transmission device.

[0597] FIG. 6 illustrates one example of components relating to control information generation for generating control information symbol signal 253 illustrated in FIG. 2. FIG. 6 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0598] FIG. 7 illustrates one example of a configuration of antenna unit #A (109_A) and antenna unit #B (109_B) illustrated in FIG. 1 (in this example, antenna unit #A (109_A) and antenna unit #B (109_B) include a plurality of antennas). FIG. 7 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0599] FIG. 8 illustrates one example of a configuration of a reception device that receives a modulated signal upon the transmission device illustrated in FIG. 1 transmitting, for example, a transmission signal having the frame configuration illustrated in FIG. 4 or FIG. 5. FIG. 8 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0600] FIG. 10 illustrates one example of a configuration of antenna unit #X (801X) and antenna unit #Y (801Y) illustrated in FIG. 8 (antenna unit #X (801X) and antenna unit #Y (801Y) are exemplified as including a plurality of antennas). FIG. 10 is described in Embodiment 1. Accordingly, description will be omitted from this embodiment.

[0601] Next, signal processor 106 in the transmission device illustrated in FIG. 1 is inserted as phase changers 205A, 205B and phase changer 209B, as illustrated in FIG. 22. The characteristics and advantageous effects of this configuration will be described.

[0602] As described with reference to FIG. 4 and FIG. 5, phase changers 205A, 205B apply precoding (weighted synthesis) to mapped signal s1(i) (201A) (i is a symbol number; i is an integer greater than or equal to 0) obtained via mapping using the first sequence and mapped signal s2(i) (201B) obtained via mapping using the second sequence, and applies a phase change to one of the obtained weighting synthesized signals 204A and 204B. Phase-changed signal 206A and phase-changed signal 206B are then transmitted at the same frequency and at the same time. Accordingly, in FIG. 4 and FIG. 5, a phase change is applied to data symbol 402 in FIG. 4 and data symbol 502 in FIG. 5.

[0603] For example, FIG. 11 illustrates an extraction of carrier 1 through carrier 5 and time $4 through time $6 from the frame illustrated in FIG. 4. Note that in FIG. 11, similar to FIG. 4, 401 is a pilot symbol, 402 is a data symbol, and 403 is an other symbol.

[0604] As described above, among the symbols illustrated in FIG. 11, phase changer 205A applies a phase change to the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6).

[0605] Accordingly, the phase change values for the data symbols illustrated in FIG. 11 can be expressed as "e j×λ15(i)< " for (carrier 1, time $5), "e j×λ25(i)< " for (carrier 2, time $5), "e j×λ35(i)< " for (carrier 3, time $5), "e j×λ45(i)< " for (carrier 4, time $5), "e j×λ55(i)< " (carrier 5, time $5), "e jxλ16(i)< " for (carrier 1, time $6), "e j×λ26(i)< " for (carrier 2, time $6), "e j×λ46(i)< " for (carrier 4, time $6), and "e j×λ56(i)< " for (carrier 5, time $6).

[0606] Among the symbols illustrated in FIG. 11, the other symbols located at (carrier 1, time $4), (carrier 2, time $4), (carrier 3, time $4), (carrier 4, time $4), and (carrier 5, time $4), and the pilot symbol located at (carrier 3, time $6) are not subject to phase change by phase changer 205A.

[0607] This point is a characteristic of phase changer 205A. Note that, as illustrated in FIG. 4, data carriers are arranged at "the same carriers and the same times" as the symbols subject to phase change in FIG. 11, which are the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6). In other words, in FIG. 4, the symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6) are data symbols (in other words, data symbols that perform MIMO transmission (transmit a plurality of streams) are subject to phase change by phase changer 205A).

[0608] One example of the phase change that phase changer 205A applies to the data symbols is the method given in Equation (50) in which phase change is applied to the data symbols regularly (such as at each cycle N) (however, the phase change method implemented on the data symbols is not limited to this example).

[0609] For example, FIG. 11 illustrates an extraction of carrier 1 through carrier 5 and time $4 through time $6 from the frame illustrated in FIG. 5. Note that in FIG. 11, similar to FIG. 5, 501 is a pilot symbol, 502 is a data symbol, and 503 is an other symbol.

[0610] As described above, among the symbols illustrated in FIG. 11, phase changer 205B applies a phase change to the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6).

[0611] Accordingly, the phase change values for the data symbols illustrated in FIG. 11 can be expressed as "e j×δ15(i)< " for (carrier 1, time $5), "e j×δ25(i)< " for (carrier 2, time $5), "e j×δ35(i)< " for (carrier 3, time $5), "e j×δ45(i)< " for (carrier 4, time $5), "e j×δ55(i)< " (carrier 5, time $5), "e j×δ16(i)< " for (carrier 1, time $6), "e j×δ26(i)< " for (carrier 2, time $6), "e j×δ46(i)< " for (carrier 4, time $6), and "e j×δ56(i)< " for (carrier 5, time $6).

[0612] Among the symbols illustrated in FIG. 11, the other symbols located at (carrier 1, time $4), (carrier 2, time $4), (carrier 3, time $4), (carrier 4, time $4), and (carrier 5, time $4), and the pilot symbol located at (carrier 3, time $6) are not subject to phase change by phase changer 205B.

[0613] This point is a characteristic of phase changer 205B. Note that, as illustrated in FIG. 4, data carriers are arranged at "the same carriers and the same times" as the symbols subject to phase change in FIG. 11, which are the data symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6). In other words, in FIG. 4, the symbols located at (carrier 1, time $5), (carrier 2, time $5), (carrier 3, time $5), (carrier 4, time $5), (carrier 5, time $5), (carrier 1, time $6), (carrier 2, time $6), (carrier 4, time $6), and (carrier 5, time $6) are data symbols (in other words, data symbols that perform MIMO transmission (transmit a plurality of streams) are subject to phase change by phase changer 205B).

[0614] One example of the phase change that phase changer 205B applies to the data symbols is the method given in Equation (2) in which phase change is applied to the data symbols regularly (such as at each cycle N) (however, the phase change method implemented on the data symbols is not limited to this example).

[0615] With this, when the environment is one in which the direct waves are dominant, such as in an LOS environment, it is possible to achieve improved data reception quality in the reception device with respect to the data symbols that perform MIMO transmission (transmit a plurality of streams). Next, the advantageous effects of this will be described.

[0616] For example, the modulation scheme used by mapper 104 in FIG. 1 is quadrature phase shift keying (QPSK) (mapped signal 201A in FIG. 18 is a QPSK signal, and mapped signal 201B is a QPSK signal; in other words, two QPSK streams are transmitted). Accordingly, for example, using channel estimated signals 806_1 and 806_2, 16 candidate signal points are obtained by signal processor 811 illustrated in FIG. 8 (2-bit transmission is possible with QPSK. Accordingly, since there are two streams, 4-bit transmission is achieved. Thus, there are 2 4< = 16 candidate signal points) (note that 16 other candidate signal points are obtained from using channel estimated signals 808_1 and 808_2 as well, but since description thereof is the same as described above, the following description will focus on the 16 candidate signal points obtained by using channel estimated signals 806_1 and 806_2).

[0617] FIG. 12 illustrates an example of the state resulting from such a case. In (A) and (B) in FIG. 12, in-phase I is represented on the horizontal axis and quadrature Q is represented on the vertical axis, and 16 candidate signal points are present in the illustrated in-phase I-quadrature Q planes (among the 16 candidate signal points, one is a signal point that is transmitted by the transmission device; accordingly, this is referred to as "16 candidate signal points").

[0618] When the environment is one in which the direct waves are dominant, such as in an LOS environment, consider a first case in which phase changers 205A and 205B are omitted from the configuration illustrated in FIG. 22 (in other words, a case in which phase change is not applied by phase changers 205A, 205B in FIG. 22).

[0619] In the first case, since phase change is not applied, there is a possibility that the state illustrated in (A) in FIG. 12 will be realized. When the state falls into the state illustrated in (A) in FIG. 12, as illustrated by "signal points 1201 and 1202", "signal points 1203, 1204, 1205, and 1206", and "signal points 1207, 1208", the signal points become dense (the distances between some signal points shorten). Accordingly, in the reception device illustrated in FIG. 8, data reception quality may deteriorate.

[0620] In order to remedy this phenomenon, in FIG. 22, phase changers 205A, 205B are inserted. When phase changers 205A, 205B are inserted, due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12. With respect to this state, since error correction code is introduced, high error correction performance is achieved, and in the reception device illustrated in FIG. 8, high data reception quality can be achieved.

[0621] Note that in FIG. 22, a phase change is not applied by phase changers 205A, 205B in FIG. 22 to "pilot symbols, preamble" for demodulating (wave detection of) data symbols, such as pilot symbols and a preamble, and for channel estimation. With this, among data symbols, "due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12" can be realized.

[0622] However, even if a phase change is applied by phase changers 205A, 205B in FIG. 22 to "pilot symbols, preamble" for demodulating (wave detection of) data symbols, such as pilot symbols and a preamble, and for channel estimation, the following is possible: "among data symbols, "due to symbol number i, there is a mix of symbol numbers whose signal points are dense (the distances between some signal points shorten), such as in (A) in FIG. 12, and symbol numbers whose "distance between signal points is long", such as in (B) in FIG. 12" can be realized." In such a case, a phase change must be applied to pilot symbols and / or a preamble under some condition. For example, one conceivable method is to implement a rule which is separate from the rule for applying a phase change to a data symbol, and "applying a phase change to a pilot symbol and / or a preamble". Another example is a method of regularly applying a phase change to a data symbol in a cycle N, and regularly applying a phase change to a pilot symbol and / or a preamble in a cycle M (N and M are integers that are greater than or equal to 2).

[0623] As described above, phase changer 209A receives inputs of baseband signal 208A and control signal 200, applies a phase change to baseband signal 208A based on control signal 200, and outputs phase-changed signal 210A. Baseband signal 208A is a function of symbol number i (i is an integer that is greater than or equal to 0), and is expressed as x'(i). Then, phase-changed signal 210A (x(i)) can be expressed as x(i) = e j×ε(i)< × x'(i) (j is an imaginary number unit). Note that the operation performed by phase changer 209A may be CDD (cyclic delay diversity)(CSD (cycle shift diversity)) disclosed in NPTL 2 and 3. One characteristic of phase changer 209A is that it applies a phase change to a symbol present along the frequency axis (i.e., applies a phase change to, for example, a data symbol, a pilot symbol, and / or a control information symbol (accordingly, in such a case, symbols subject to symbol number i include data symbols, pilot symbols, control information symbols, and preambles (other symbols)) (in the case of FIG. 22, since phase changer 209A applies a phase change to baseband signal 208A, a phase change is applied to each symbol in FIG. 4).

[0624] Accordingly, in the frame illustrated in FIG. 4, phase changer 209A illustrated in FIG. 22 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $1.

[0625] Similarly, phase changer 209A illustrated in FIG. 22 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $2, phase changer 209A illustrated in FIG. 22 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $3, phase changer 209A illustrated in FIG. 22 applies a phase change to all symbols (in this case, all other symbols 403) for all carriers 1 to 36 at time $4, phase changer 209A illustrated in FIG. 22 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $5, phase changer 209A illustrated in FIG. 22 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $6, phase changer 209A illustrated in FIG. 22 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $7, phase changer 209A illustrated in FIG. 22 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $8, phase changer 209A illustrated in FIG. 22 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $9, phase changer 209A illustrated in FIG. 22 applies a phase change to all symbols (in this case, pilot symbols 401 or data symbols 402) for all carriers 1 to 36 at time $10, phase changer 209A illustrated in FIG. 22 applies a phase change to all symbols (in this case, pilo...

Claims

1. A transmission device supporting a communications scheme, comprising: a weighting synthesizer (203) that generates a first precoded signal z1' (204A) and a second precoded signal z2'(i) (204B) by performing a precoding process on a first baseband signal (201A) and a second baseband signal (201B), respectively, where i is a symbol number of the second precoded signal z2'(i) and is an integer that is greater than or equal to 0; a first pilot inserter (207A) that inserts a first pilot signal pa (251A) into the first precoded signal, thereby providing a first transmission signal (208A, 108_A); a first phase changer (205B) that applies a first phase change of i × Δλ to i-th symbol of the second precoded signal z2'(i), with phase change Δλ = λ(i) - λ(i-1); a second pilot inserter (207B) that inserts a second pilot signal pb(i) (251B) into the second precoded signal z2(i) (206B) applied with the phase change; and a second phase changer (209B) that applies a second phase change i x Δρ to the second precoded signal x'(i) (208B) applied with the phase change and inserted with the pilot signal, thereby providing a second transmission signal x(i) (210B; 108_B); and a first antenna unit (109_A) and a second antenna unit (109_b) that transmit the first and the second transmission signal, respectively; characterized in that the communications scheme is a single-carrier scheme, and one of the first phase changer or the second phase changer does not apply the respective first or second phase change, wherein the first phase change satisfies π / 2 radians < λ(i) - λ(i-1) < π radians, excluding the phase change λ(i) - λ(i-1) = 2π / 3 radians, or satisfies π radians < λ(i) - λ(i-1) < 3π / 2 radians, and wherein the second phase change satisfies π / 2 radians < ρ(i) - ρ(i-1) < π radians, excluding the phase change ρ(i) - ρ(i-1) = 2π / 3 radians, or satisfies π radians < ρ(i) - ρ(i-1) < 3π / 2 radians.

2. A transmission method performed by a transmission device supporting a communications scheme, comprising: generating a first precoded signal z1' (204A) and a second precoded signal z2'(i) (204B) by performing a precoding process on a first baseband signal (201A) and a second baseband signal (201B), respectively, where i is a symbol number of the second precoded signal and is an integer that is greater than or equal to 0; inserting a first pilot signal pa (251A) into the first precoded signal, thereby providing a first transmission signal (208A, 108_A); applying, as a first phase change process, a first phase change of i × Δλ to i-th symbol of the second precoded signal z2'(i), with phase change Δλ = λ(i) - λ(i-1); inserting a second pilot signal pb(i) (251B) into the second precoded signal z2(i) (206B) applied with the phase change; applying, as a second phase change process, a second phase change i x Δρ to the second precoded signal x'(i) (208B applied with the phase change and inserted with the pilot signal, thereby providing a second transmission signal x(i) (210B, 108_B); transmitting the first and the second transmission signal; characterized in that the communications scheme is a single-carrier scheme, and one of the first phase change process or the second phase change process is not performed, wherein the first phase change satisfies π / 2 radians < λ i − λ i − 1 < π radians, excluding the phase change λ(i) - λ(i-1) = 2π / 3 radians, or satisfies π radians < λ(i) - λ(i-1) < 3π / 2 radians and wherein the second phase change satisfies π / 2 radians < ρ(i) - ρ(i-1) < π radians, excluding the phase changep(i) - ρ(i-1) = 2π / 3 radians, or satisfies π radians < ρ(i) - ρ(i-1) < 3π / 2 radians.