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Design of real-time rhythm tracking system based on neural network

机译:基于神经网络的实时节奏跟踪系统设计

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In order to solve the problems of real-time beat tracking, such as the uncertainty of real beat value, the difficulty of getting close to people's perception of music and the position of beat according to people's feelings, the fact that most data sets are private and the amount of data is small, which affects the accuracy of experimental results, a real-time beat tracking method based on lstm neural network is proposed, which abandons the traditional idea of beat tracking to determine the position of beat, divides the beat into five levels according to the degree of strength, and then trains the beat information by using lstm network. Experiments show that the system functions well and the accuracy of the training results is guaranteed to reach 0.946.
机译:为了解决实时节拍跟踪的问题,例如实际节拍值的不确定性,难以接近人们对音乐的感知以及根据人们的感觉而定的节拍的位置,以及大多数数据集都是私有的事实数据量少,影响实验结果的准确性,提出了一种基于lstm神经网络的实时心跳跟踪方法,该方法摒弃了传统的心跳跟踪方法来确定心跳位置,将心跳分为根据强度分为五个级别,然后使用lstm网络训练拍子信息。实验表明,该系统运行良好,训练结果的准确性保证达到0.946。

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