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Drum Instrument Classification Using Machine Learning

机译:使用机器学习的鼓仪器分类

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摘要

Music is a way to express our creativity. As an art form, music can go beyond the limits of human imagination. When one hears a piece of music or sounds, human brain releases chemical dopamine. Hearing sounds again and again repetitively allows us to remember characteristics and nature of sound in a very efficient way. This is known as auditory learning and is believed to occur in our day to day life which helps us in identifying, memorizing and classifying various sounds. It allows, for example, immediate recognition of sounds or voices which become familiar through experience. The exact same principle can be implemented using Machine Learning. Music and Mathematics are strongly correlated with each other, whether it be the waveform or the sequence in which the melody is being played. In this paper, a Drum Instrument Classification Model is implemented using Machine Learning. The data is self prepared by recording samples and by using a Drum Simulator. The initial dataset contains only audio files in .wav format. The pivotal task is to perform Feature Extraction from the audio files and using them to train the Machine Learning model. Finally, a model is created which is capable of classifying various drum instruments when provided with an audio input.
机译:音乐是一种表达我们创造力的一种方式。作为艺术形式,音乐可以超越人类想象的极限。当一个人听到一块音乐或声音时,人类脑释放化学多巴胺。再次听到声音,再次重复地让我们以非常有效的方式记住声音的特征和性质。这被称为听觉学习,据信在我们的日常生活中发生,这有助于我们识别,记忆和分类各种声音。例如,它允许立即识别通过经验熟悉的声音或声音。可以使用机器学习实现完全相同的原理。音乐和数学彼此强烈相关,无论是旋律正在播放的波形还是序列。本文使用机器学习实现了一种鼓仪器分类模型。数据通过记录样品并通过使用鼓模拟器来自制。初始数据集仅包含.wav格式的音频文件。关键任务是从音频文件执行功能提取,并使用它们培训机器学习模型。最后,创建了一种模型,其能够在提供音频输入时进行分类各种鼓乐器。

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