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Quantifying olfactory perception: mapping olfactory perception space by using multidimensional scaling and self-organizing maps

机译:量化嗅觉:通过使用多维缩放和自组织映射来映射嗅觉空间

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摘要

In this paper we describe an effort to project an olfactory perception database onto the nearest high dimensional Euclidean space using multidimensional scaling. This yields an independent Euclidean interpretation of odor perception, whether this space is metric or not. Self-organizing maps were then applied to produce two-dimensional maps of the Euclidean approximation of olfactory perception space. These maps provide new knowledge about complexity and potentially the functionality of the sense of smell from the point of view of human odor perception. This report is based on a recent thesis by Madany Mamlouk, Quantifying olfactory perception, at the University of Luebeck, Germany.
机译:在本文中,我们描述了使用多维缩放将嗅觉感知数据库投影到最近的高维欧几里德空间上的工作。无论该空间是公制还是非公制,这都会对气味感知产生独立的欧几里得解释。然后将自组织图应用于嗅觉空间的欧几里得近似的二维图。这些地图从人类气味感知的角度提供了有关复杂性以及潜在的嗅觉功能的新知识。本报告基于德国吕贝克大学Madany Mamlouk最近发表的论文《嗅觉量化》。

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