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Learning to Make Feelings: Expressive Performance as a Part of a Machine Learning Tool for Sound-Based Emotion Control

机译:学会感受:表现力表现作为基于声音的情感控制的机器学习工具的一部分

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We propose to significantly extend our work in EEG-based emotion detection for automated expressive performances of algorithmically composed music for affective communication and induction. This new system involves music composed and expressively performed in real-time to induce specific affective states, based on the detection of affective state in a human listener. Machine learning algorithms will learn: (1) how to use biosensors such as EEG to detect the user's current emotional state; and (2) how to use algorithmic performance and composition to induce certain trajectories through affective states. In other words the system will attempt to adapt so that it can - in real-time -turn a certain user from depressed to happy, or from stressed to relaxed, or (if they like horror movies!) from relaxed to fearful. Expressive performance is key to this process as it has been shown to increase the emotional impact of affectively-based algorithmic composition. In other words if a piece is composed by computer rules to communicate an emotion of happiness, applying expressive performance rules to humanize the piece will increase the likelihood it is perceived as happy. As well as giving a project overview, a first step of this research is presented here: a machine learning system using case-based reasoning which attempts to learn from a user how themes of different affective types combine sequentially to communicate emotions.
机译:我们建议将基于EEG的情感检测的工作显着扩展,以实现算法合成音乐的自动表现,从而实现情感交流和归纳。这种新系统涉及实时侦听和合成音乐,以诱导特定的情感状态,从而检测出听众的情感状态。机器学习算法将学习:(1)如何使用生物传感器(例如EEG)来检测用户当前的情绪状态; (2)如何利用算法性能和构图通过情感状态来诱导某些轨迹。换句话说,系统将尝试进行调整,以便它可以实时地将某个用户从沮丧变为快乐,或者从压力变为放松,或者(如果他们喜欢恐怖电影!)从放松变为恐惧。表现力是这个过程的关键,因为它已经显示出可以增加基于情感的算法组成的情感影响。换句话说,如果一件作品是由计算机规则组成的,以传达一种幸福的情感,则应用表达性表现规则来使该作品人性化将增加被认为是幸福的可能性。除了给出项目概述之外,这里还介绍了这项研究的第一步:使用基于案例的推理的机器学习系统,该系统试图向用户学习不同情感类型的主题如何顺序组合以传达情感。

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