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A Kansei-Based Sound Modulation System for Musical Instruments by Using Neural Networks

机译:基于神经网络的Kansei的音乐仪表调制系统

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摘要

This study describes a sound modulation system based on the use of a neural network model. The inputs to the model are a) a basic, original sound wave, and b) the degree of Kansei, while the output of the model is modulated sound depending on the degree of Kansei. The degree of Kansei is the numerical value that expresses the modulation level based on a Kansei linguistic expression, such as hardness or brilliance. In the experiment, the models are constructed for the sounds of piano and Marimba. Three types of training data are used for each sound, and the degree of Kansei is assigned manually for each dataset. By changing the degree of Kansei at the input of the model, we have validated that each model could appropriately modulate the basic sound. In addition, the modulation results are illustrated for one octave of piano sounds. The potential of our proposed model and future work are also discussed.
机译:本研究描述了基于使用神经网络模型的声音调制系统。 模型的输入是a)基本,原始声波和b)Kansei的程度,而模型的输出是根据Kansei的程度调制声音的。 Kansei的程度是基于Kansei语言表达式表达调制水平的数值,例如硬度或亮度。 在实验中,模型是为钢琴和马林巴的声音构建的。 每种声音使用三种类型的训练数据,为每个数据集手动分配Kansei的程度。 通过在模型输入的输入处改变Kansei的程度,我们已经验证了每个模型可以适当地调制基本声音。 此外,调制结果被钢琴声音的一个八位音阶说明。 还讨论了我们拟议的模型和未来工作的潜力。

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