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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>Kernel Principal Component Analysis - Glosarix</title><type>rich</type><width>600</width><height>338</height><html>&lt;blockquote class="wp-embedded-content" data-secret="UlQSceKyFg"&gt;&lt;a href="https://glosarix.com/en/glossary/kernel-principal-component-analysis-en/"&gt;Kernel Principal Component Analysis&lt;/a&gt;&lt;/blockquote&gt;&lt;iframe sandbox="allow-scripts" security="restricted" src="https://glosarix.com/en/glossary/kernel-principal-component-analysis-en/embed/#?secret=UlQSceKyFg" width="600" height="338" title="&#x201C;Kernel Principal Component Analysis&#x201D; &#x2014; Glosarix" data-secret="UlQSceKyFg" 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: Kernel Principal Component Analysis (KPCA) is an extension of Principal Component Analysis (PCA) that allows for nonlinear dimensionality reduction. Unlike traditional PCA, which assumes that data is linearly distributed, KPCA employs mapping techniques into a higher-dimensional feature space using kernel functions. This enables the capture of complex structures in the data that cannot be [&hellip;]</description></oembed>
