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Recurrent neural network based Music Recognition using Audio Fingerprinting

机译:基于音频指纹的基于递归神经网络的音乐识别

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In places like restaurants and shopping malls, the music that plays might sometimes captivate the customers. The aim of this research is to obtain an efficient aid for the people to discover the song and get acquainted with it. For this purpose, a sample input is fed into the audio fingerprinting and matching module which is fingerprinted just like the songs in the database. A simple linear search is performed against the database which contains the fingerprints of several songs. This algorithm gives ideal results for an input duration of 5 seconds and is scalable. The cover song identification is achieved by extracting the features like chroma features, spectral centroid, spectral contrast, MFCC and tempo from the original songs as well as its cover songs. Proposed work is implemented using Long Short Term Memory (LS TM), to provide the original song as the output based on a score which is the number of matching features from both the original song and its cover version. Singing detection is accomplished by performing lyrical matching. A live recording of a person's singing is translated into text. This translated input is linearly searched with the dataset containing the lyrics and the output is the corresponding song name.
机译:在饭店和购物中心等地方,播放的音乐有时可能会吸引顾客。这项研究的目的是为人们找到并熟悉这首歌提供有效的帮助。为此,将样本输入输入到音频指纹识别和匹配模块中,该模块就像数据库中的歌曲一样被指纹识别。对包含几首歌曲指纹的数据库执行简单的线性搜索。该算法在5秒钟的输入持续时间内给出了理想的结果,并且是可扩展的。翻唱歌曲的识别是通过从原始歌曲及其翻唱歌曲中提取色度特征,频谱质心,频谱对比度,MFCC和速度的特征来实现的。拟议的工作是使用长期短期记忆(LS TM)来实现的,以基于分数提供原始歌曲作为输出,分数是原始歌曲及其翻唱歌曲版本中匹配功能的数量。歌唱检测是通过执行歌词匹配来完成的。一个人唱歌的现场录音被翻译成文本。使用包含歌词的数据集线性搜索此翻译后的输入,并且输出是相应的歌曲名称。

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