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- W2997619215 abstract "Although audio fingerprinting has been widely used in various applications, the performances of audio fingerprinting methods are extremely decreased in case of identifying the background music mixed with speech in TV shows. To solve this, we present an approach to represent embeddings for background music identification using deep convolutional networks. We construct triplet dataset including the original songs, the same songs mixed with voices, and different songs. Then, we train the network with triplet loss function with adaptive margin. By nearest neighbor classifier, the closest embedding is found among the ones of original songs. As comparing top-1 accuracy of music identification, it is shown that our representation learning of the embedding from each music segment mixed with speech has meaningful information for music identification." @default.
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- W2997619215 date "2019-10-01" @default.
- W2997619215 modified "2023-09-25" @default.
- W2997619215 title "Representation Learning for Background Music Identification in Television Shows" @default.
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- W2997619215 doi "https://doi.org/10.1109/ictc46691.2019.8939934" @default.
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