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Using Autonomous Agents to Improvise Music Compositions in Real-Time

机译:使用自主代理在实时即兴创作音乐组合物

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This paper outlines an approach to real-time music generation using melody and harmony focused agents in a process inspired by jazz improvisation. A harmony agent employs a Long Short-Term Memory (LSTM) artificial neural network trained on the chord progressions of 2986 jazz 'standard' compositions using a network structure novel to chord sequence analysis. The melody agent uses a rule-based system of manipulating provided, pre-composed melodies to improvise new themes and variations. The agents take turns in leading the direction of the composition based on a rating system that rewards harmonic consistency and melodic flow. In developing the multi-agent system it was found that implementing embedded spaces in the LSTM encoding process resulted in significant improvements to chord sequence learning.
机译:本文概述了使用旋律和和谐聚焦代理的实时音乐生成的方法,该过程在爵士乐即兴创作的过程中的灵感。一个和谐的代理商使用长期记忆(LSTM)人工神经网络训练,在爵士乐的展览中培训了2986爵士乐的标准'组合物,该组合物使用网络结构新颖对Chord序列分析。熔融剂使用基于规则的操纵系统,预先组成的旋律来即兴创新的新主题和变化。代理基于奖励谐波一致性和旋律流动的评级系统,引导组合物的方向。在开发多种代理系统时,发现在LSTM编码过程中实现嵌入式空间导致和弦序列学习的显着改进。

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