Bi-modal First Impressions Recognition using Temporally Ordered Deep Audio and Stochastic Visual Features

We propose a novel approach for First Impressions Recognition in terms of the Big Five personality-traits from short videos. The Big Five personality traits is a model to describe human personality using five broad categories: Extraversion, Agreeableness, Conscientiousness, Neuroticism and Openness....

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Veröffentlicht in:arXiv.org 2016-10
Hauptverfasser: Subramaniam, Arulkumar, Patel, Vismay, Mishra, Ashish, Balasubramanian, Prashanth, Mittal, Anurag
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Sprache:eng
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Zusammenfassung:We propose a novel approach for First Impressions Recognition in terms of the Big Five personality-traits from short videos. The Big Five personality traits is a model to describe human personality using five broad categories: Extraversion, Agreeableness, Conscientiousness, Neuroticism and Openness. We train two bi-modal end-to-end deep neural network architectures using temporally ordered audio and novel stochastic visual features from few frames, without over-fitting. We empirically show that the trained models perform exceptionally well, even after training from a small sub-portions of inputs. Our method is evaluated in ChaLearn LAP 2016 Apparent Personality Analysis (APA) competition using ChaLearn LAP APA2016 dataset and achieved excellent performance.
ISSN:2331-8422