Passed
Pull Request — master (#146)
by Tomáš
02:39
created
src/Phpml/FeatureExtraction/StopWords/French.php 1 patch
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 <?php
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-declare(strict_types=1);
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+declare(strict_types = 1);
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 namespace Phpml\FeatureExtraction\StopWords;
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src/Phpml/Helper/Optimizer/StochasticGD.php 1 patch
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@@ -1,6 +1,6 @@  discard block
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-declare(strict_types=1);
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+declare(strict_types = 1);
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 namespace Phpml\Helper\Optimizer;
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     {
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         // Check for early stop: No change larger than threshold (default 1e-5)
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         $diff = array_map(
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-            function ($w1, $w2) {
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+            function($w1, $w2) {
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                 return abs($w1 - $w2) > $this->threshold ? 1 : 0;
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             },
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             $oldTheta,
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src/Phpml/Helper/Optimizer/GD.php 1 patch
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 <?php
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-declare(strict_types=1);
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+declare(strict_types = 1);
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 namespace Phpml\Helper\Optimizer;
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src/Phpml/Clustering/FuzzyCMeans.php 1 patch
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-declare(strict_types=1);
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+declare(strict_types = 1);
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 namespace Phpml\Clustering;
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                 $total += $val;
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             }
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-            $this->membership[] = array_map(function ($val) use ($total) {
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+            $this->membership[] = array_map(function($val) use ($total) {
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                 return $val / $total;
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             }, $row);
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         }
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src/Phpml/Classification/NaiveBayes.php 1 patch
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-declare(strict_types=1);
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 namespace Phpml\Classification;
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                 $this->dataType[$label][$i] = self::NOMINAL;
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                 $this->discreteProb[$label][$i] = array_count_values($values);
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                 $db = &$this->discreteProb[$label][$i];
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-                $db = array_map(function ($el) use ($numValues) {
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+                $db = array_map(function($el) use ($numValues) {
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                     return $el / $numValues;
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                 }, $db);
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             } else {
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             return $this->discreteProb[$label][$feature][$value];
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         }
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-        $std = $this->std[$label][$feature] ;
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+        $std = $this->std[$label][$feature];
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         $mean = $this->mean[$label][$feature];
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         // Calculate the probability density by use of normal/Gaussian distribution
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         // Ref: https://en.wikipedia.org/wiki/Normal_distribution
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src/Phpml/Classification/Ensemble/RandomForest.php 1 patch
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-declare(strict_types=1);
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+declare(strict_types = 1);
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 namespace Phpml\Classification\Ensemble;
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src/Phpml/Classification/Ensemble/AdaBoost.php 1 patch
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-declare(strict_types=1);
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+declare(strict_types = 1);
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 namespace Phpml\Classification\Ensemble;
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src/Phpml/Classification/Linear/Adaline.php 1 patch
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 namespace Phpml\Classification\Linear;
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     protected function runTraining(array $samples, array $targets)
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     {
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         // The cost function is the sum of squares
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-        $callback = function ($weights, $sample, $target) {
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+        $callback = function($weights, $sample, $target) {
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             $this->weights = $weights;
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             $output = $this->output($sample);
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src/Phpml/Classification/Linear/LogisticRegression.php 2 patches
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 namespace Phpml\Classification\Linear;
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                  * The gradient of the cost function to be used with gradient descent:
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                  *		∇J(x) = -(y - h(x)) = (h(x) - y)
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                  */
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-                $callback = function ($weights, $sample, $y) use ($penalty) {
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+                $callback = function($weights, $sample, $y) use ($penalty) {
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                     $this->weights = $weights;
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                     $hX = $this->output($sample);
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                  * The gradient of the cost function:
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                  *		∇J(x) = -(h(x) - y) . h(x) . (1 - h(x))
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                  */
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-                $callback = function ($weights, $sample, $y) use ($penalty) {
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+                $callback = function($weights, $sample, $y) use ($penalty) {
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                     $this->weights = $weights;
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                     $hX = $this->output($sample);
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      *
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      * The probability is simply taken as the distance of the sample
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      * to the decision plane.
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      * @param mixed $label
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      */
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     protected function predictProbability(array $sample, $label) : float
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