基于情感的CVAE-GAN AI音乐生成系统

Chih-Fang Huang, Cheng-Yuan Huang
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引用次数: 10

摘要

音乐情感对听者的认知有重要影响。随着科技的飞速发展,音乐的种类变得更加多样化,传播速度也更快。然而,音乐制作的成本仍然很高。为了解决这个问题,近年来,人工智能作曲逐渐受到人们的关注。本研究的目的是建立一个包含音乐、情感和机器学习的自动作曲系统。该系统包括以情感标签为输入的音乐数据库,以深度学习训练CVAE-GAN模型为框架,生成与指定情感相对应的音乐片段。受试者听取系统的结果,并判断音乐与原始情感相对应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Emotion-based AI Music Generation System with CVAE-GAN
Music emotion is important for listeners’ cognition. With the rapid development of technology, the variety of music has become more diverse and spread faster. However, the cost of music production is still very high. To solve the problem, the AI music composition has gradually gained attention in recent years. The purpose of this study is to establish an automated composition system that includes music, emotions, and machine learning. The system includes the music database with emotional tags as input, and deep learning trains the CVAE-GAN model as the framework to produce the music segments corresponding to the specified emotions. The subjects listen to the results of the system and judge that music corresponds to the original emotion.
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