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Heretic: Modeling Anthony Braxton's Language Music

机译:遗传:建模安东尼Braxton的语言音乐

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This article presents a new system for real-time machine listening within human-machine free improvisation. Heretic uses Anthony Braxton's Language Music system as a grammatical model for contextualizing real-time audio feature data within free improvisation. Heretic hears, recognizes, and organizes unseen musical material from a human improviser into a fluid, coherent, and expressive musical language. Systems similar to Heretic often prioritize agnostic approaches to machine listening by avoiding prior musical knowledge in the system's training stage. However, prominent improvisers such as Cecil Taylor, Ornette Coleman, Joe Morris, and Anthony Braxton detail their approaches to improvisation as languages or grammatical systems. These improvisers contextualize the real-time musical materials of their band-mates by applying their formulated grammatical systems to their decision-making processes. Taylor, Coleman, Morris, and Braxton's autonomy and musical creativity are not compromised by using grammatical systems. In regards to human-machine improvisation, Heretic demonstrates that a grammatical approach to machine listening can yield idiosyncratic interactions, full machine autonomy, and novel musical output. This article details a re-imagining of Anthony Braxton's Language Music within the context of machine listening, and an implementation of Language Music within Heretic via SuperCollider's audio feature extraction functionality and Wekinator's multi-layer perceptron neural networks.
机译:本文介绍了人机免费即兴创新内的实时机器侦听系统。异历使用Anthony Braxton的语言音乐系统作为用于在免费即兴发起的基础上语境中音频功能数据的语法模型。从人类的即兴者进入流体,相干和表现力的音乐语言,从人类的改进者中,识别出遗传的听力,识别和组织看不见的音乐材料。通过避免系统培训阶段的先前音乐知识,类似于中文的系统通常优先考虑机器侦听的无可争议的方法。然而,杰出的即兴创作者,如Cecil Taylor,Ornette Coleman,Joe Morris和Anthony Braxton详细说明了他们的即兴发展方式作为语言或语法系统。这些即兴创作者通过将配制的语法系统应用于其决策过程来了解其带状伴侣的实时音乐材料。泰勒,科尔曼,莫里斯和Braxton的自主权和音乐创造力没有通过使用语法系统损害。关于人机的即兴,遗传学证明了机器聆听的语法方法可以产生特殊的相互作用,全机自主权和新颖的音乐输出。本文详细介绍了在机器聆听背景下重新想象Anthony Braxton的语言音乐,并通过SuperCollider的音频特征提取功能和Wekinator的多层Perceptron神经网络在遗传学中的语言音乐的实施。

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