情感检测的神经网络比较

Jose Angel Martinez-Navarro, Elsa Rubio-Espino, Juan Humberto Sossa-Azuela, Victor Hugo Ponce-Ponce, Heron Molina-Lozano, Luis Martin Garcia-Sebastian
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引用次数: 0

摘要

本文介绍了一种仿生音频情感检测系统的研究结果,并将其与各种神经网络方法(即尖峰神经网络、卷积神经网络和多层感知器)的性能进行了比较。仿真结果证明了该方法在准确检测音频情绪方面的有效性。此外,通过改进训练方法,检测任务可以达到更高的精度水平。本研究使用了EmoDB、SAVEE和RAVDESS数据库。
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Comparison of Neural Networks for Emotion Detection
This article presents the findings of a bio-inspired audio emotion-detection system and compares its performance with various neural network approaches, namely spiking neural networks, convolutional neural networks, and multilayer perceptrons. The simulation results demonstrate the effectiveness of the proposed approach in accurately detecting audio emotions. Additionally, the detection task can achieve even higher levels of precision by improving the training methods. The research utilizes the EmoDB, SAVEE, and RAVDESS databases.
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