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Modelling Affective-based Music Compositional Intelligence with the Aid of ANS Analyses

机译:借助于ANS分析建模情感乐谱智能

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This research investigates the use of emotion data derived from analyzing change in activity in the autonomic nervous system (ANS) as revealed by brainwave production to support the creative music compositional intelligence of an adaptive interface. A relational model of the influence of musical events on the listener's affect is first induced using inductive logic programming paradigms with the emotion data and musical score features as inputs of the induction task. The components of composition such as interval and scale, instrumentation, chord progression and melody are automatically combined using genetic algorithm and melodic transformation heuristics that depend on the predictive knowledge and character of the induced model. Out of the four targeted basic emotional states, namely, stress, joy, sadness, and relaxation, the empirical results reported here show that the system is able to successfully compose tunes that convey one of these affective states.
机译:本研究调查了展示自主神经系统(ANS)中活动变化的情绪数据的使用,如脑波的生产所揭示,以支持自适应界面的创造性音乐组成智能。首先使用具有情感数据和音乐评分特征的感应逻辑编程范例作为感应任务的输入,首先引起音乐事件对听众影响的影响的关系模型。使用遗传算法和旋律转化启发式自动组合依赖于诱导模型的预测知识和特征,自动组合组合物的组合物,仪器,仪表,旋律和旋律的组成部分。在四个有针对性的基本情感状态下,压力,快乐,悲伤和放松,这里的经验结果表明,该系统能够成功地构成传达这些情感状态之一的曲调。

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