Pleasantness of Binary Odor Mixtures: Rules and Prediction

Author:

Ma Yue12,Tang Ke1,Thomas-Danguin Thierry2ORCID,Xu Yan1

Affiliation:

1. School of Biotechnology, Jiangnan University, Jiangsu, People’s Republic of China

2. Centre des Sciences du Goût et de l’Alimentation, INRAE, CNRS, AgroSup Dijon, Université Bourgogne Franche-Comté, Dijon, France

Abstract

Abstract Pleasantness is a major dimension of odor percepts. While naturally encountered odors rely on mixtures of odorants, few studies have investigated the rules underlying the perceived pleasantness of odor mixtures. To address this issue, a set of 222 binary mixtures based on a set of 72 odorants were rated by a panel of 30 participants for odor intensity and pleasantness. In most cases, the pleasantness of the binary mixtures was driven by the pleasantness and intensity of its components. Nevertheless, a significant pleasantness partial addition was observed in 6 binary mixtures consisting of 2 components with similar pleasantness ratings. A mathematical model, involving the pleasantness of the components as well as τ-values reflecting components’ odor intensity, was applied to predict mixture pleasantness. Using this model, the pleasantness of mixtures including 2 components with contrasted intensity and pleasantness could be efficiently predicted at the panel level (R2 > 0.80, Root Mean Squared Error < 0.67).

Funder

National Key R&D Program

National First-class Discipline Program of Light Industry Technology and Engineering

China Scholarship Council

Postgraduate Research & Practice Innovation Program of Jiangsu Provence

Publisher

Oxford University Press (OUP)

Subject

Behavioral Neuroscience,Physiology (medical),Sensory Systems,Physiology

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