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@ -30,7 +30,8 @@ plot coordinates {
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\begin{axis}[legend cell align={left},yticklabel style={/pgf/number format/fixed,
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/pgf/number format/precision=3},tick style = {draw = none}, width = \textwidth,
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height = 0.6\textwidth, ymin = 0.988, legend style={at={(0.9825,0.0175)},anchor=south east},
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xlabel = {epoch}, ylabel = {Classification Accuracy}, cycle list/Dark2]
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xlabel = {epoch}, ylabel = {Classification Accuracy}, cycle
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list/Dark2, every axis plot/.append style={line width =1.25pt}]
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% \addplot [dashed] table
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% [x=epoch, y=accuracy, col sep=comma, mark = none]
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% {Data/adam_datagen_full.log};
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@ -68,26 +69,26 @@ plot coordinates {
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\vspace{.25cm}
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\end{subfigure}
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\begin{subfigure}[h]{1.0\linewidth}
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\begin{tabu} to \textwidth {@{} l *6{X[c]} @{}}
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\multicolumn{7}{c}{Classification Accuracy}\Bstrut
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\\\hline
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&\textsc{Adam}&D. 0.2&D. 0.4&G.&G.+D.~0.2&G.~,D.~0.4 \Tstrut \Bstrut
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\\\hline
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mean&0.9994&0.9990&0.9989&0.9937&0.9938&0.9940 \Tstrut \\
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max& \\
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min& \\
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\multicolumn{7}{c}{Training Accuracy}\Bstrut
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\\\hline
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mean&0.9914&0.9918&0.9928&0.9937&0.9938&0.9940 \Tstrut \\
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max& \\
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min& \\
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\begin{tabu} to \textwidth {@{}lc*5{X[c]}@{}}
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\Tstrut \Bstrut & \textsc{\,Adam\,} & D. 0.2 & D. 0.4 & G. &G.+D.\,0.2 & G.+D.\,0.4 \\
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\hline
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\multicolumn{7}{c}{Classification Accuracy}\Bstrut \\
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\cline{2-7}
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mean \Tstrut & 0.9914 & 0.9923 & 0.9930 & 0.9937 & 0.9938 & 0.9943 \\
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max & 0.9926 & 0.9930 & 0.9934 & 0.9946 & 0.9955 & 0.9956 \\
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min & 0.9887 & 0.9909 & 0.9922 & 0.9929 & 0.9929 & 0.9934 \\
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\hline
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\multicolumn{7}{c}{Training Accuracy}\Bstrut \\
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\cline{2-7}
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mean \Tstrut & 0.9994 & 0.9991 & 0.9989 & 0.9967 & 0.9954 & 0.9926 \\
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max & 0.9996 & 0.9996 & 0.9992 & 0.9979 & 0.9971 & 0.9937 \\
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min & 0.9992 & 0.9990 & 0.9984 & 0.9947 & 0.9926 & 0.9908 \\
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\end{tabu}
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\caption{Mean and maximum accuracy after 48 epochs of training.}
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\end{subfigure}
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\caption{Accuracy for the net given in ... with Dropout (D.),
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data generation (G.), a combination, or neither (Default) implemented and trained
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with \textsc{Adam}. For each epoch the 60.000 training samples
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with \textsc{Adam}. For each epoch the 60.000 training samples
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were used, or for data generation 10.000 steps with each using
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batches of 60 generated data points. For each configuration the
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model was trained 5 times and the average accuracies at each epoch
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