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# Classification Report | ||
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Class for calculate main classifier metrics: precision, recall, F1 score and support. | ||
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### Report | ||
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To generate report you must provide the following parameters: | ||
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* $actualLabels - (array) true sample labels | ||
* $predictedLabels - (array) predicted labels (e.x. from test group) | ||
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``` | ||
use Phpml\Metric\ClassificationReport; | ||
$actualLabels = ['cat', 'ant', 'bird', 'bird', 'bird']; | ||
$predictedLabels = ['cat', 'cat', 'bird', 'bird', 'ant']; | ||
$report = new ClassificationReport($actualLabels, $predictedLabels); | ||
``` | ||
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### Metrics | ||
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After creating the report you can draw its individual metrics: | ||
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* precision (`getPrecision()`) - fraction of retrieved instances that are relevant | ||
* recall (`getRecall()`) - fraction of relevant instances that are retrieved | ||
* F1 score (`getF1score()`) - measure of a test's accuracy | ||
* support (`getSupport()`) - count of testes samples | ||
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``` | ||
$precision = $report->getPrecision(); | ||
// $precision = ['cat' => 0.5, 'ant' => 0.0, 'bird' => 1.0]; | ||
``` | ||
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### Example | ||
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``` | ||
use Phpml\Metric\ClassificationReport; | ||
$actualLabels = ['cat', 'ant', 'bird', 'bird', 'bird']; | ||
$predictedLabels = ['cat', 'cat', 'bird', 'bird', 'ant']; | ||
$report = new ClassificationReport($actualLabels, $predictedLabels); | ||
$report->getPrecision(); | ||
// ['cat' => 0.5, 'ant' => 0.0, 'bird' => 1.0] | ||
$report->getRecall(); | ||
// ['cat' => 1.0, 'ant' => 0.0, 'bird' => 0.67] | ||
$report->getF1score(); | ||
// ['cat' => 0.67, 'ant' => 0.0, 'bird' => 0.80] | ||
$report->getSupport(); | ||
// ['cat' => 1, 'ant' => 1, 'bird' => 3] | ||
$report->getAverage(); | ||
// ['precision' => 0.75, 'recall' => 0.83, 'f1score' => 0.73] | ||
``` |
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