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Notice of retraction
Vol. 34, No. 8(3), S&M3042

Notice of retraction
Vol. 32, No. 8(2), S&M2292

Print: ISSN 0914-4935
Online: ISSN 2435-0869
Sensors and Materials
is an international peer-reviewed open access journal to provide a forum for researchers working in multidisciplinary fields of sensing technology.
Sensors and Materials
is covered by Science Citation Index Expanded (Clarivate Analytics), Scopus (Elsevier), and other databases.

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Sensors and Materials, Volume 26, Number 3 (2014)
Copyright(C) MYU K.K.
pp. 171-180
S&M981 Research Paper of Special Issue
https://doi.org/10.18494/SAM.2014.952
Published: March 27, 2014

Odor Clustering Based on Molecular Parameter for Odor Sensing [PDF]

Masahiro Imahashi and Kenshi Hayashi

(Received October 1, 2013; Accepted November 21, 2013)

Keywords: odor map, molecular parameter, pattern recognition, odor clustering, multidimensional scaling

Odor sensors can benefit various areas of human activity and have been increasingly studied. For developing odor sensors, comprehensive detection of numerous volatile molecules is necessary. These advanced odor measurements might be accomplished by inspiring technology based on the bio-olfactory system. This system recognizes and discriminates odors by activity patterns, which are formed based on odor information of odorants extracted from olfactory receptors (ORs). Hence, odorants are appropriately categorized into clusters with different molecular features. The odor clustering close to biological olfaction can also be applied to the sensor systems. In this study, odor map images of rats investigated in biological studies were analyzed by principal component analysis (PCA) to clarify odor clustering features of olfaction. The definition of odor cluster and extraction of geometric features of odor maps were examined based on the primary components and factor loadings. Then, key parameters expressing clusters and measurable in sensor technology were successfully explored by evaluating the correlation between principal components and molecular parameters calculated using the molecular modeling software. Finally, artificial odor maps were reconstructed based on the defined odor clustering map, and the similarity between odor maps of rats was confirmed.

Corresponding author: Masahiro Imahashi


Cite this article
Masahiro Imahashi and Kenshi Hayashi, Odor Clustering Based on Molecular Parameter for Odor Sensing, Sens. Mater., Vol. 26, No. 3, 2014, p. 171-180.



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