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<oembed><version>1.0</version><provider_name>Glosarix</provider_name><provider_url>https://glosarix.com/en/</provider_url><author_name>Team Glosarix</author_name><author_url>https://glosarix.com/en/author/adm_glosarix/</author_url><title>Sparsity Regularization - Glosarix</title><type>rich</type><width>600</width><height>338</height><html>&lt;blockquote class="wp-embedded-content" data-secret="36XMa6OvtQ"&gt;&lt;a href="https://glosarix.com/en/glossary/sparsity-regularization-en/"&gt;Sparsity Regularization&lt;/a&gt;&lt;/blockquote&gt;&lt;iframe sandbox="allow-scripts" security="restricted" src="https://glosarix.com/en/glossary/sparsity-regularization-en/embed/#?secret=36XMa6OvtQ" width="600" height="338" title="&#x201C;Sparsity Regularization&#x201D; &#x2014; Glosarix" data-secret="36XMa6OvtQ" frameborder="0" marginwidth="0" marginheight="0" scrolling="no" class="wp-embedded-content"&gt;&lt;/iframe&gt;&lt;script&gt;
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</html><description>Description: Sparsity regularization is a technique used in the training of machine learning models that aims to encourage sparsity in the model weights. This means that instead of having many small weights that contribute marginally to the prediction, the model is encouraged to have a few significant weights that have a considerable impact. This technique [&hellip;]</description></oembed>
