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Primal-improv: Towards co-evolutionary musical improvisation

机译:即兴创作:迈向共同进化的音乐即兴创作

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This paper describes a work in progress on co-evolving Artificial Neural Networks (ANNs) for music improvisation. Using this neuro-evolutionary approach the ANNs adapt to the changes in the human player's music as input, while still maintaining some of the structure of the musical piece previously evolved. The system is called PRIMAL-IMPROV and evolves modules that are composed of two ANNs, one controlling pitch and one controlling rhythm. The results of a quantitative study show that, by only introducing simple rules as fitness functions, the system is able to generate more interesting arrangements than ANNs evolved without a specific objective. The emerging and interesting musical patterns that are produced by the evolved ANNs hint at the promising potential of the system.
机译:本文介绍了针对音乐即兴创作的协同进化人工神经网络(ANN)的一项正在进行的工作。使用这种神经进化方法,人工神经网络可以适应人类演奏者的音乐变化作为输入,同时仍然保持先前发展的音乐作品的某些结构。该系统称为PRIMAL-IMPROV,其模块由两个ANN(一个控制音高和一个控制节奏)组成。定量研究的结果表明,通过仅将简单规则引入适应度函数,与没有特定目标的人工神经网络相比,该系统能够生成更多有趣的排列。进化的人工神经网络产生的新兴有趣的音乐模式暗示了该系统的巨大潜力。

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