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An Ensemble Framework of Voice-Based Emotion Recognition System for Films and TV Programs

Published 3 Mar 2018 in eess.AS and cs.SD | (1803.01122v1)

Abstract: Employing voice-based emotion recognition function in AI product will improve the user experience. Most of researches that have been done only focus on the speech collected under controlled conditions. The scenarios evaluated in these research were well controlled. The conventional approach may fail when background noise or nonspeech filler exist. In this paper, we propose an ensemble framework combining several aspects of features from audio. The framework incorporates gender and speaker information relying on multi-task learning. Therefore it is able to dig and capture emotional information as much as possible. This framework is evaluated on multimodal emotion challenge (MEC) 2017 corpus which is close to real world. The proposed framework outperformed the best baseline system by 29.5% (relative improvement).

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