使用复数卷积、多任务学习和多输入网络扩展Tempo和Genre估计的深度节奏

Q2 Arts and Humanities
Hadrien Foroughmand Aarabi, G. Peeters
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引用次数: 0

摘要

节奏和体裁是音乐的两个相互交错的方面,体裁通常与在特定速度范围内演奏的节奏模式有关。在本文中,我们将重点放在深度节奏系统上,该系统基于节奏的谐波表示,用作卷积神经网络的输入。为了考虑频带之间的关系,我们通过复卷积处理复值输入。我们还使用多任务学习方法研究了节奏/体裁的联合估计。最后,我们研究了将第二个输入卷积分支添加到系统中,并将其应用于专用于音色的梅尔谱输入。这种多输入方法可以提高速度和类型估计的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Extending Deep Rhythm for Tempo and Genre Estimation Using Complex Convolutions, Multitask Learning and Multi-input Network
Tempo and genre are two inter-leaved aspects of music, genres are often associated to rhythm patterns which are played in specific tempo ranges.In this paper, we focus on the Deep Rhythm system based on a harmonic representation of rhythm used as an input to a convolutional neural network.To consider the relationships between frequency bands, we process complex-valued inputs through complex-convolutions.We also study the joint estimation of tempo/genre using a multitask learning approach. Finally, we study the addition of a second input convolutional branch to the system applied to a mel-spectrogram input dedicated to the timbre.This multi-input approach allows to improve the performances for tempo and genre estimation.
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来源期刊
Journal of Creative Music Systems
Journal of Creative Music Systems Arts and Humanities-Music
CiteScore
1.20
自引率
0.00%
发文量
8
审稿时长
12 weeks
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