使用squeezenet和促进的理想气体分子运动进行音乐类型分类的深度学习模型
1Department of Cultural and Creative Arts, The Education University of Hong Kong, 10 Lo Ping Road, Tai Po, New Territories, Hong Kong. xuemengjin2025@163.com.
这项研究引入了一种新型的SqueezeNet模型,该模型使用Promoted Ideal Gas Molecular Motion (PIGMM) 优化,用于准确的音乐类型分类. 混合方法的精度高,性能优于现有方法,提供轻量级,耐噪声的解决方案.
科学领域:
- 计算机科学
- 人工智能
- 音乐信息检索
背景情况:
- 音乐类型分类 (MGC) 是非常重要的,但由于高维度,可变和杂的音频信号而具有挑战性.
- 传统的深度学习模型经常与过度匹配和局部优化作斗争,需要大量的计算资源.
研究的目的:
- 提出一种新的混合模式来提高音乐类别的分类性能.
- 解决传统深度学习模型在处理复杂音频数据方面的局限性.
主要方法:
- 使用促进理想气体分子运动 (PIGMM) 优化了一个SqueezeNet模型,这是一个包含混乱理论和基于对立的学习的元启发算法.
- 该模型在音频谱图上进行训练和验证,使用GTZAN和扩展舞厅数据集的十倍交叉验证.
主要成果:
- 拟议的模型在特征提取方面达到96%的准确性.
- 获得了91.1% (GTZAN) 和93.4% (扩展舞厅) 的分类精度,超过了最先进的模型.
- 高精度 (高达95.8%) 和回忆值 (高达97.7%) 证实了该模型的有效性.
结论:
- SqueezeNet-PIGMM混合模型为可扩展的音乐类型分类提供了轻量级和耐噪解决方案.
- 与现有方法相比,这种方法表现出优越的性能和概括能力.
- 这项研究强调了超听觉优化在音频信号处理中的潜力.
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