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Neural Network Design: Learning from Neural Architecture Search

Code and results accompanying the Learning from Neural Architecture Search paper accepted at SSCI 2020.

Apendix: ELA features

Feature MNIST Fashion CIFAR-10
disp.diff_mean_02 0.0223 ± 0.0403 0.199 ± 0.0736 0.0499 ± 0.0459
disp.diff_mean_05 0.0223 ± 0.0403 0.199 ± 0.0736 0.0499 ± 0.0459
disp.ratio_mean_02 1 ± 0.00209 1.01 ± 0.00381 1 ± 0.00238
disp.ratio_mean_05 1 ± 0.00209 1.01 ± 0.00381 1 ± 0.00238
distr.kurtosis -1.87 ± 0.00648 -0.718 ± 0.0843 4.9 ± 0.258
distr.skewness -0.0862 ± 0.0289 -0.87 ± 0.0396 2.24 ± 0.0404
ic.eps.max 0.00323 ± 0.00127 0.00462 ± 0.000634 0.00247 ± 0.000431
ic.eps.ratio -1.36 ± 0.021 -1.73 ± 0.0282 -2.19 ± 0.0301
ic.eps.s -1.07 ± 0.00981 -1.18 ± 0.0134 -1.31 ± 0.0104
ic.h.max 0.823 ± 0.0101 0.825 ± 0.00952 0.768 ± 0.0105
ic.m0 0.541 ± 0.0135 0.599 ± 0.014 0.558 ± 0.00953
lin_simple.adj_r2 0.436 ± 0.00781 0.383 ± 0.0118 0.472 ± 0.0117
lin_simple.intercept 0.581 ± 0.00636 0.617 ± 0.00569 0.199 ± 0.00276
lin_w_interact.adj_r2 0.327 ± 0.0202 0.314 ± 0.0216 0.566 ± 0.031
nbc.dist_ratio.coeff_var 0.132 ± 0.00224 0.1 ± 0.00139 0.124 ± 0.00206
nbc.nb_fitness.cor -0.43 ± 0.0119 -0.461 ± 0.0108 -0.306 ± 0.00833
nbc.nn_nb.cor 0.411 ± 0.0213 0.589 ± 0.0138 0.468 ± 0.0145
nbc.nn_nb.mean_ratio 0.874 ± 0.00215 0.916 ± 0.00104 0.889 ± 0.00195
nbc.nn_nb.sd_ratio 0.539 ± 0.0126 0.626 ± 0.0117 0.551 ± 0.0124
quad_simple.adj_r2 0.486 ± 0.00733 0.497 ± 0.0112 0.488 ± 0.012

Table: ELA features for MNIST, CIFAR-10 and Fashion NAS problem instances.

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Code accompanying the Learning from Neural Architecture Search

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