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+ − 4 <html lang="en">
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+ − 5 <head>
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+ − 10
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+ − 11 <title>Cross-spectral density estimates (LTPDA Toolbox)</title>
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+ − 12 <link rel="stylesheet" href="docstyle.css" type="text/css">
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+ − 13 <meta name="generator" content="DocBook XSL Stylesheets V1.52.2">
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+ − 14 <meta name="description" content=
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+ − 15 "Presents an overview of the features, system requirements, and starting the toolbox.">
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+ − 16 </head>
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+ − 17
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+ − 18 <body>
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+ − 19 <a name="top_of_page" id="top_of_page"></a>
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+ − 20
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+ − 21 <p style="font-size:1px;"> </p>
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+ − 22
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+ − 23 <table class="nav" summary="Navigation aid" border="0" width=
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+ − 24 "100%" cellpadding="0" cellspacing="0">
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+ − 25 <tr>
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+ − 26 <td valign="baseline"><b>LTPDA Toolbox</b></td><td><a href="../helptoc.html">contents</a></td>
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+ − 27
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+ − 28 <td valign="baseline" align="right"><a href=
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+ − 29 "sigproc_psd.html"><img src="b_prev.gif" border="0" align=
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+ − 30 "bottom" alt="Power spectral density estimates"></a> <a href=
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+ − 31 "sigproc_cohere.html"><img src="b_next.gif" border="0" align=
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+ − 32 "bottom" alt="Cross coherence estimates"></a></td>
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+ − 33 </tr>
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+ − 34 </table>
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+ − 35
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+ − 36 <h1 class="title"><a name="f3-12899" id="f3-12899"></a>Cross-spectral density estimates</h1>
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+ − 37 <hr>
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+ − 38
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+ − 39 <p>
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+ − 40 <h2>Description</h2>
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+ − 41 <p>
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+ − 42 Cross-power spectral density is performed by the Welch's averaged, modified periodogram method.
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+ − 43 The LTPDA method <a href="matlab:doc('ao/cpsd')">ao/cpsd</a> estimates the cross-spectral density of time-series
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+ − 44 signals, included in the input <tt>ao</tt>s following the Welch's averaged, modified periodogram method <a href="#references">[1]</a>.
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+ − 45 Data are windowed prior to the estimation of the spectra, by multiplying
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+ − 46 it with a <a href="specwin.html">spectral window object</a>, and can be detrended by polinomial of time in order to reduce the impact
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+ − 47 of the border discontinuities. The window length is adjustable to shorter lenghts to reduce the spectral
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+ − 48 density uncertainties, and the percentage of subsequent window overlap can be adjusted as well.
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+ − 49 <br>
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+ − 50 <br>
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+ − 51 <h2>Syntax</h2>
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+ − 52 </p>
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+ − 53 <div class="fragment"><pre>
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+ − 54 <br> b = cpsd(a1,a2,pl)
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+ − 55 </pre>
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+ − 56 </div>
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+ − 57 <p>
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+ − 58 <tt>a1</tt> and <tt>a2</tt> are the 2 <tt>ao</tt>s containing the input time series to be evaluated, <tt>b</tt> is the output object,
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+ − 59 and <tt>pl</tt> is an optional parameters list.
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+ − 60 <h2>Parameters</h2>
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+ − 61 The parameter list <tt>pl</tt> includes the following parameters:</p>
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+ − 62 <ul>
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+ − 63 <li> <tt>'Nfft'</tt> - number of samples in each fft [default: length of input data]
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+ − 64 A string value containing the variable 'fs' can
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+ − 65 also be used, e.g., plist('Nfft', '2*fs') </li>
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+ − 66 <li> <tt>'Win'</tt> - the window to be applied to the data to remove the
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+ − 67 discontinuities at edges of segments. [default: taken from user prefs].<br>
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+ − 68 The window is described by a string with its name and, only in the case of Kaiser window,
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+ − 69 the additional parameter <tt>'psll'</tt>. <br>For instance: plist('Win', 'Kaiser', 'psll', 200). </li>
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+ − 70 <li> <tt>'Olap'</tt> - segment percent overlap [default: -1, (taken from window function)] </li>
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+ − 71 <li> <tt>'Order'</tt> - order of segment detrending <ul>
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+ − 72 <li> -1 - no detrending </li>
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+ − 73 <li> 0 - subtract mean [default] </li>
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+ − 74 <li> 1 - subtract linear fit </li>
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+ − 75 <li> N - subtract fit of polynomial, order N </li> </ul> </li>
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+ − 76 <li><tt>'Navs'</tt> - number of averages. If set, and if Nfft was set to 0 or -1, the number of points for each window will be calculated to match the request. [default: -1, not set] </li>
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+ − 77 <li><tt>'Times'</tt> - interval of time to evaluate the calculation on. If empty [default], it will take the whole section.</li>
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+ − 78 </ul>
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+ − 79 <p>
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+ − 80 The length of the window is set by the value of the parameter <tt>'Nfft'</tt>, so that the window
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+ − 81 is actually rebuilt using only the key features of the window, i.e. the name and, for Kaiser windows, the PSLL.
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+ − 82 </p>
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+ − 83
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+ − 84 <p>As an alternative to setting the number of points <tt>'Nfft'</tt> in each window, it's possible to ask for a given number of CPSD estimates by setting the <tt>'Navs'</tt> parameter, and the algorithm takes care of calculating the correct window length, according to the amount of overlap between subsequent segments.</p>
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+ − 85 <p>
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+ − 86 <table cellspacing="0" class="note" summary="Note" cellpadding="5" border="1">
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+ − 87 <tr width="90%">
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+ − 88 <td>
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+ − 89 If the user doesn't specify the value of a given parameter, the default value is used.
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+ − 90 </td>
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+ − 91 </tr>
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+ − 92 </table>
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+ − 93 </p>
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+ − 94
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+ − 95 <p>
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+ − 96 The function makes CPSD estimates between the 2 input <tt>ao</tt>s. The input argument
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+ − 97 list must contain 2 analysis objects, and the output will contain the CPSD estimate.
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+ − 98 If passing two identical objects <tt>ai</tt>, the output will be equivalent to the output of <tt>psd(ai)</tt>.
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+ − 99 </p>
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+ − 100 </pre> </div>
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+ − 101 </p>
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+ − 102 <p>
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+ − 103 <h2>Algorithm</h2>
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+ − 104 <p>
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+ − 105 The algorithm is based in standard MATLAB's tools, as the ones used by <a href="matlab:doc('pwelch')">pwelch</a>. However, in order to
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+ − 106 compute the standard deviation of mean for each frequency bin, the averaging of the different segments is performed using Welford's
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+ − 107 algorithm <a href="#references">[2]</a> which allows to compute mean and variance in one loop.
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+ − 108 </p>
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+ − 109 <h2>Example</h2>
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+ − 110 </p>
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+ − 111 <p>
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+ − 112 Evaluation of the CPSD of two time-series represented by: a low frequency sinewave signal superimposed to
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+ − 113 white noise, and a low frequency sinewave signal at the same frequency, phase shifted and with different
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+ − 114 amplitude, superimposed to white noise.
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+ − 115 </p>
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+ − 116 <div class="fragment"><pre>
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+ − 117 nsecs = 1000;
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+ − 118 x = ao(plist(<span class="string">'waveform'</span>,<span class="string">'sine wave'</span>,<span class="string">'f'</span>,0.1,<span class="string">'A'</span>,1,<span class="string">'nsecs'</span>,nsecs,<span class="string">'fs'</span>,10)) + ...
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+ − 119 ao(plist(<span class="string">'waveform'</span>,<span class="string">'noise'</span>,<span class="string">'type'</span>,<span class="string">'normal'</span>,<span class="string">'nsecs'</span>,nsecs,<span class="string">'fs'</span>,10));
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+ − 120 x.setYunits(<span class="string">'m'</span>);
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+ − 121 y = ao(plist(<span class="string">'waveform'</span>,<span class="string">'sine wave'</span>,<span class="string">'f</span>',0.1,<span class="string">'A'</span>,2,<span class="string">'nsecs'</span>,nsecs,<span class="string">'fs'</span>,10,<span class="string">'phi'</span>,90)) + ...
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+ − 122 4*ao(plist(<span class="string">'waveform'</span>,<span class="string">'noise'</span>,<span class="string">'type'</span>,<span class="string">'normal'</span>,<span class="string">'nsecs'</span>,nsecs,<span class="string">'fs'</span>,10));
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+ − 123 y.setYunits(<span class="string">'V'</span>);
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+ − 124 z = cpsd(x,y,plist(<span class="string">'nfft'</span>,1000));
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+ − 125 iplot(z);
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+ − 126 </pre>
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+ − 127 </div>
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+ − 128
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+ − 129 <img src="images/cpsd_1.png" alt="" border="3">
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+ − 130 <br>
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+ − 131
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+ − 132 <h2><a name="references">References</a></h2>
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+ − 133
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+ − 134 <ol>
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+ − 135 <li> P.D. Welch, The Use of Fast Fourier Transform for the Estimation of Power Spectra: A Method Based on Time Averaging Over Short,
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+ − 136 Modified Periodograms, <i>IEEE Trans. on Audio and Electroacoustics</i>, Vol. 15, No. 2 (1967), pp. 70 - 73</a></li>
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+ − 137 <li> B. P. Weldford, Note on a Method for Calculating Corrected Sums of Squares and Products,
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+ − 138 <i>Technometrics<i>, Vol. 4, No. 3 (1962), pp 419 - 420.</li>
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+ − 139 </ol>
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+ − 140
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+ − 141
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+ − 142
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+ − 143
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+ − 144
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+ − 145 </p>
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+ − 146
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+ − 147 <br>
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+ − 148 <br>
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+ − 149 <table class="nav" summary="Navigation aid" border="0" width=
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+ − 150 "100%" cellpadding="0" cellspacing="0">
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+ − 151 <tr valign="top">
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+ − 152 <td align="left" width="20"><a href="sigproc_psd.html"><img src=
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+ − 153 "b_prev.gif" border="0" align="bottom" alt=
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+ − 154 "Power spectral density estimates"></a> </td>
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+ − 155
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+ − 156 <td align="left">Power spectral density estimates</td>
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+ − 157
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+ − 158 <td> </td>
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+ − 159
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+ − 160 <td align="right">Cross coherence estimates</td>
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+ − 161
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+ − 162 <td align="right" width="20"><a href=
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+ − 163 "sigproc_cohere.html"><img src="b_next.gif" border="0" align=
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+ − 164 "bottom" alt="Cross coherence estimates"></a></td>
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+ − 165 </tr>
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+ − 166 </table><br>
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+ − 167
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+ − 168 <p class="copy">©LTP Team</p>
Daniele Nicolodi <nicolodi@science.unitn.it>
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+ − 169 </body>
Daniele Nicolodi <nicolodi@science.unitn.it>
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+ − 170 </html>