1 | \hypertarget{classMPF}{ |
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2 | \section{MPF$<$ BM\_\-T $>$ Class Template Reference} |
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3 | \label{classMPF}\index{MPF@{MPF}} |
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4 | } |
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5 | Marginalized Particle filter. |
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6 | |
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7 | |
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8 | {\tt \#include $<$libPF.h$>$} |
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9 | |
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10 | Inheritance diagram for MPF$<$ BM\_\-T $>$:\nopagebreak |
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11 | \begin{figure}[H] |
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12 | \begin{center} |
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13 | \leavevmode |
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14 | \includegraphics[width=62pt]{classMPF__inherit__graph} |
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15 | \end{center} |
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16 | \end{figure} |
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17 | Collaboration diagram for MPF$<$ BM\_\-T $>$:\nopagebreak |
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18 | \begin{figure}[H] |
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19 | \begin{center} |
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20 | \leavevmode |
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21 | \includegraphics[width=159pt]{classMPF__coll__graph} |
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22 | \end{center} |
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23 | \end{figure} |
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24 | \subsection*{Public Member Functions} |
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25 | \begin{CompactItemize} |
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26 | \item |
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27 | \hypertarget{classMPF_fc5e11e11eec3195e3c6503937bf02bd}{ |
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28 | \hyperlink{classMPF_fc5e11e11eec3195e3c6503937bf02bd}{MPF} (const \hyperlink{classRV}{RV} \&rvlin, const \hyperlink{classRV}{RV} \&rvpf, \hyperlink{classmpdf}{mpdf} \&par0, \hyperlink{classmpdf}{mpdf} \&obs0, int \hyperlink{classPF_2c2f44ed7a4eaa42e07bdb58d503f280}{n}, const BM\_\-T \&BMcond0)} |
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29 | \label{classMPF_fc5e11e11eec3195e3c6503937bf02bd} |
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30 | |
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31 | \begin{CompactList}\small\item\em Default constructor. \item\end{CompactList}\item |
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32 | void \hyperlink{classMPF_55daf8e4b6553dd9f47c692de7931623}{bayes} (const vec \&dt) |
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33 | \begin{CompactList}\small\item\em Incremental Bayes rule. \item\end{CompactList}\item |
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34 | \hypertarget{classMPF_992e01bb8f06c814cda036796e4a55ae}{ |
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35 | const \hyperlink{classepdf}{epdf} \& \hyperlink{classMPF_992e01bb8f06c814cda036796e4a55ae}{\_\-epdf} () const } |
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36 | \label{classMPF_992e01bb8f06c814cda036796e4a55ae} |
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37 | |
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38 | \begin{CompactList}\small\item\em Returns a reference to the \hyperlink{classepdf}{epdf} representing posterior density on parameters. \item\end{CompactList}\item |
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39 | \hypertarget{classMPF_942a1eb28a57ef0f0239264e7b0b82eb}{ |
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40 | const \hyperlink{classepdf}{epdf} $\ast$ \hyperlink{classMPF_942a1eb28a57ef0f0239264e7b0b82eb}{\_\-e} () const } |
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41 | \label{classMPF_942a1eb28a57ef0f0239264e7b0b82eb} |
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42 | |
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43 | \begin{CompactList}\small\item\em Returns a pointer to the \hyperlink{classepdf}{epdf} representing posterior density on parameters. Use with care! \item\end{CompactList}\item |
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44 | \hypertarget{classMPF_7c66e1c1c0e45fc4ae765133cb3a1553}{ |
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45 | void \hyperlink{classMPF_7c66e1c1c0e45fc4ae765133cb3a1553}{set\_\-est} (const \hyperlink{classepdf}{epdf} \&epdf0)} |
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46 | \label{classMPF_7c66e1c1c0e45fc4ae765133cb3a1553} |
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47 | |
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48 | \begin{CompactList}\small\item\em Set postrior of {\tt rvc} to samples from epdf0. Statistics of Bms are not re-computed! Use only for initialization! \item\end{CompactList}\item |
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49 | \hypertarget{classMPF_82e7d8fd6bce040a78327d5038ab668f}{ |
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50 | \hyperlink{classBM}{BM} $\ast$ \hyperlink{classMPF_82e7d8fd6bce040a78327d5038ab668f}{\_\-BM} (int i)} |
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51 | \label{classMPF_82e7d8fd6bce040a78327d5038ab668f} |
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52 | |
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53 | \begin{CompactList}\small\item\em Access function. \item\end{CompactList}\item |
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54 | \hypertarget{classPF_140a073d5236684078b09021892d3b20}{ |
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55 | vec $\ast$ \hyperlink{classPF_140a073d5236684078b09021892d3b20}{\_\-\_\-w} ()} |
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56 | \label{classPF_140a073d5236684078b09021892d3b20} |
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57 | |
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58 | \begin{CompactList}\small\item\em access function \item\end{CompactList}\item |
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59 | \hypertarget{classBM_0186270f75189677f390fe088a9947e9}{ |
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60 | virtual void \hyperlink{classBM_0186270f75189677f390fe088a9947e9}{bayesB} (const mat \&Dt)} |
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61 | \label{classBM_0186270f75189677f390fe088a9947e9} |
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62 | |
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63 | \begin{CompactList}\small\item\em Batch Bayes rule (columns of Dt are observations). \item\end{CompactList}\item |
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64 | virtual double \hyperlink{classBM_8a8ce6df431689964c41cc6c849cfd06}{logpred} (const vec \&dt) const |
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65 | \item |
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66 | \hypertarget{classBM_cd0660f2a1a344b56ac39802708ff165}{ |
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67 | vec \hyperlink{classBM_cd0660f2a1a344b56ac39802708ff165}{logpred\_\-m} (const mat \&dt) const } |
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68 | \label{classBM_cd0660f2a1a344b56ac39802708ff165} |
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69 | |
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70 | \begin{CompactList}\small\item\em Matrix version of logpred. \item\end{CompactList}\item |
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71 | \hypertarget{classBM_5594d68ee9aa6fc8c1e79019da5c9d56}{ |
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72 | virtual \hyperlink{classepdf}{epdf} $\ast$ \hyperlink{classBM_5594d68ee9aa6fc8c1e79019da5c9d56}{predictor} (const \hyperlink{classRV}{RV} \&\hyperlink{classBM_af00f0612fabe66241dd507188cdbf88}{rv}) const } |
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73 | \label{classBM_5594d68ee9aa6fc8c1e79019da5c9d56} |
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74 | |
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75 | \begin{CompactList}\small\item\em Constructs a predictive density (marginal density on data). \item\end{CompactList}\item |
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76 | \hypertarget{classBM_126bd2595c48e311fc2a7ab72876092a}{ |
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77 | const \hyperlink{classRV}{RV} \& \hyperlink{classBM_126bd2595c48e311fc2a7ab72876092a}{\_\-rv} () const } |
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78 | \label{classBM_126bd2595c48e311fc2a7ab72876092a} |
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79 | |
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80 | \begin{CompactList}\small\item\em access function \item\end{CompactList}\item |
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81 | \hypertarget{classBM_87f4a547d2c29180be88175e5eab9c88}{ |
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82 | double \hyperlink{classBM_87f4a547d2c29180be88175e5eab9c88}{\_\-ll} () const } |
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83 | \label{classBM_87f4a547d2c29180be88175e5eab9c88} |
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84 | |
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85 | \begin{CompactList}\small\item\em access function \item\end{CompactList}\item |
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86 | \hypertarget{classBM_1ffa9f23669aabecc3760c06c6987522}{ |
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87 | void \hyperlink{classBM_1ffa9f23669aabecc3760c06c6987522}{set\_\-evalll} (bool evl0)} |
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88 | \label{classBM_1ffa9f23669aabecc3760c06c6987522} |
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89 | |
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90 | \begin{CompactList}\small\item\em access function \item\end{CompactList}\item |
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91 | virtual \hyperlink{classBM}{BM} $\ast$ \hyperlink{classBM_eb58c81d6a7b75b05fc6f276eed78887}{\_\-copy\_\-} (bool changerv=false) |
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92 | \end{CompactItemize} |
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93 | \subsection*{Protected Attributes} |
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94 | \begin{CompactItemize} |
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95 | \item |
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96 | \hypertarget{classPF_2c2f44ed7a4eaa42e07bdb58d503f280}{ |
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97 | int \hyperlink{classPF_2c2f44ed7a4eaa42e07bdb58d503f280}{n}} |
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98 | \label{classPF_2c2f44ed7a4eaa42e07bdb58d503f280} |
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99 | |
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100 | \begin{CompactList}\small\item\em number of particles; \item\end{CompactList}\item |
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101 | \hypertarget{classPF_1a0a09e309da997f63ae8e30d1e9806b}{ |
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102 | \hyperlink{classeEmp}{eEmp} \hyperlink{classPF_1a0a09e309da997f63ae8e30d1e9806b}{est}} |
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103 | \label{classPF_1a0a09e309da997f63ae8e30d1e9806b} |
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104 | |
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105 | \begin{CompactList}\small\item\em posterior density \item\end{CompactList}\item |
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106 | \hypertarget{classPF_5c87aba508df321ff26536ced64dbb3a}{ |
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107 | vec \& \hyperlink{classPF_5c87aba508df321ff26536ced64dbb3a}{\_\-w}} |
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108 | \label{classPF_5c87aba508df321ff26536ced64dbb3a} |
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109 | |
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110 | \begin{CompactList}\small\item\em pointer into {\tt \hyperlink{classeEmp}{eEmp}} \item\end{CompactList}\item |
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111 | \hypertarget{classPF_cf7dad75e31215780a746c30e71ad9c5}{ |
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112 | Array$<$ vec $>$ \& \hyperlink{classPF_cf7dad75e31215780a746c30e71ad9c5}{\_\-samples}} |
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113 | \label{classPF_cf7dad75e31215780a746c30e71ad9c5} |
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114 | |
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115 | \begin{CompactList}\small\item\em pointer into {\tt \hyperlink{classeEmp}{eEmp}} \item\end{CompactList}\item |
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116 | \hypertarget{classPF_d92ac103f88f8c21e197e90af5695a09}{ |
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117 | \hyperlink{classmpdf}{mpdf} \& \hyperlink{classPF_d92ac103f88f8c21e197e90af5695a09}{par}} |
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118 | \label{classPF_d92ac103f88f8c21e197e90af5695a09} |
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119 | |
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120 | \begin{CompactList}\small\item\em Parameter evolution model. \item\end{CompactList}\item |
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121 | \hypertarget{classPF_dd0a687a4515333d6809147335854e77}{ |
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122 | \hyperlink{classmpdf}{mpdf} \& \hyperlink{classPF_dd0a687a4515333d6809147335854e77}{obs}} |
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123 | \label{classPF_dd0a687a4515333d6809147335854e77} |
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124 | |
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125 | \begin{CompactList}\small\item\em Observation model. \item\end{CompactList}\item |
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126 | \hypertarget{classBM_af00f0612fabe66241dd507188cdbf88}{ |
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127 | \hyperlink{classRV}{RV} \hyperlink{classBM_af00f0612fabe66241dd507188cdbf88}{rv}} |
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128 | \label{classBM_af00f0612fabe66241dd507188cdbf88} |
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129 | |
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130 | \begin{CompactList}\small\item\em Random variable of the posterior. \item\end{CompactList}\item |
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131 | \hypertarget{classBM_5623fef6572a08c2b53b8c87b82dc979}{ |
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132 | double \hyperlink{classBM_5623fef6572a08c2b53b8c87b82dc979}{ll}} |
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133 | \label{classBM_5623fef6572a08c2b53b8c87b82dc979} |
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134 | |
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135 | \begin{CompactList}\small\item\em Logarithm of marginalized data likelihood. \item\end{CompactList}\item |
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136 | \hypertarget{classBM_bf6fb59b30141074f8ee1e2f43d03129}{ |
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137 | bool \hyperlink{classBM_bf6fb59b30141074f8ee1e2f43d03129}{evalll}} |
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138 | \label{classBM_bf6fb59b30141074f8ee1e2f43d03129} |
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139 | |
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140 | \begin{CompactList}\small\item\em If true, the filter will compute likelihood of the data record and store it in {\tt ll} . Set to false if you want to save computational time. \item\end{CompactList}\end{CompactItemize} |
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141 | \subsection*{Classes} |
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142 | \begin{CompactItemize} |
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143 | \item |
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144 | class \textbf{mpfepdf} |
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145 | \begin{CompactList}\small\item\em internal class for MPDF providing composition of \hyperlink{classeEmp}{eEmp} with external components \item\end{CompactList}\end{CompactItemize} |
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146 | |
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147 | |
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148 | \subsection{Detailed Description} |
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149 | \subsubsection*{template$<$class BM\_\-T$>$ class MPF$<$ BM\_\-T $>$} |
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150 | |
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151 | Marginalized Particle filter. |
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152 | |
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153 | Trivial version: proposal = parameter evolution, observation model is not used. (it is assumed to be part of \hyperlink{classBM}{BM}). |
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154 | |
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155 | \subsection{Member Function Documentation} |
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156 | \hypertarget{classMPF_55daf8e4b6553dd9f47c692de7931623}{ |
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157 | \index{MPF@{MPF}!bayes@{bayes}} |
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158 | \index{bayes@{bayes}!MPF@{MPF}} |
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159 | \subsubsection[bayes]{\setlength{\rightskip}{0pt plus 5cm}template$<$class BM\_\-T$>$ void {\bf MPF}$<$ BM\_\-T $>$::bayes (const vec \& {\em dt})\hspace{0.3cm}{\tt \mbox{[}inline, virtual\mbox{]}}}} |
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160 | \label{classMPF_55daf8e4b6553dd9f47c692de7931623} |
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161 | |
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162 | |
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163 | Incremental Bayes rule. |
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164 | |
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165 | \begin{Desc} |
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166 | \item[Parameters:] |
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167 | \begin{description} |
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168 | \item[{\em dt}]vector of input data \end{description} |
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169 | \end{Desc} |
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170 | |
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171 | |
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172 | Reimplemented from \hyperlink{classPF_64f636bbd63bea9efd778214e6b631d3}{PF}. |
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173 | |
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174 | References PF::\_\-samples, PF::\_\-w, PF::est, PF::n, PF::par, eEmp::resample(), and mpdf::samplecond().\hypertarget{classBM_8a8ce6df431689964c41cc6c849cfd06}{ |
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175 | \index{MPF@{MPF}!logpred@{logpred}} |
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176 | \index{logpred@{logpred}!MPF@{MPF}} |
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177 | \subsubsection[logpred]{\setlength{\rightskip}{0pt plus 5cm}virtual double BM::logpred (const vec \& {\em dt}) const\hspace{0.3cm}{\tt \mbox{[}inline, virtual, inherited\mbox{]}}}} |
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178 | \label{classBM_8a8ce6df431689964c41cc6c849cfd06} |
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179 | |
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180 | |
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181 | Evaluates predictive log-likelihood of the given data record I.e. marginal likelihood of the data with the posterior integrated out. |
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182 | |
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183 | Reimplemented in \hyperlink{classARX_e7f9e7823aec9bf7ddc3b42d9b3304c4}{ARX}, \hyperlink{classMixEF_424ca64f36d4e41de7a7e7ae921d35ea}{MixEF}, and \hyperlink{classmultiBM_13e26a61757278981fd8cac9a7ef91eb}{multiBM}. |
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184 | |
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185 | Referenced by BM::logpred\_\-m().\hypertarget{classBM_eb58c81d6a7b75b05fc6f276eed78887}{ |
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186 | \index{MPF@{MPF}!\_\-copy\_\-@{\_\-copy\_\-}} |
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187 | \index{\_\-copy\_\-@{\_\-copy\_\-}!MPF@{MPF}} |
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188 | \subsubsection[\_\-copy\_\-]{\setlength{\rightskip}{0pt plus 5cm}virtual {\bf BM}$\ast$ BM::\_\-copy\_\- (bool {\em changerv} = {\tt false})\hspace{0.3cm}{\tt \mbox{[}inline, virtual, inherited\mbox{]}}}} |
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189 | \label{classBM_eb58c81d6a7b75b05fc6f276eed78887} |
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190 | |
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191 | |
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192 | Copy function required in vectors, Arrays of \hyperlink{classBM}{BM} etc. Have to be DELETED manually! Prototype: BM$\ast$ \hyperlink{classBM_eb58c81d6a7b75b05fc6f276eed78887}{\_\-copy\_\-()}\{\hyperlink{classBM}{BM} Tmp$\ast$=new Tmp(this$\ast$); return Tmp; \} |
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193 | |
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194 | Reimplemented in \hyperlink{classARX_5de61fbd4f97fa3216760b1f733f5af0}{ARX}, and \hyperlink{classBMEF_97f5312efe4a5bedb86d2daec59d8651}{BMEF}. |
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195 | |
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196 | The documentation for this class was generated from the following file:\begin{CompactItemize} |
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197 | \item |
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198 | work/git/mixpp/bdm/estim/\hyperlink{libPF_8h}{libPF.h}\end{CompactItemize} |
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