Deep Attention-Based Alignment Network for Melody Generation from Incomplete Lyrics

M. Gurunath Reddy, Zhe Zhang, Yi Yu, Florian Harscoet, Simon Canales, Suhua Tang
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Abstract

We propose a deep attention-based alignment network, which aims to automatically predict lyrics and melody with given incomplete lyrics as input in a way similar to the music creation of humans. Most importantly, a deep neural lyrics-to-melody net is trained in an encoder-decoder way to predict possible pairs of lyrics-melody when given incomplete lyrics (few keywords). The attention mechanism is exploited to align the predicted lyrics with the melody during the lyrics-to-melody generation. The qualitative and quantitative evaluation metrics reveal that the proposed method is indeed capable of generating proper lyrics and corresponding melody for composing new songs given a piece of incomplete seed lyrics.
基于深度注意力的不完整歌词旋律生成对齐网络
我们提出了一个基于深度注意力的对齐网络,旨在以类似于人类音乐创作的方式,以给定的不完整歌词作为输入,自动预测歌词和旋律。最重要的是,当给定不完整的歌词(很少关键字)时,深度神经歌词-旋律网络以编码器-解码器的方式进行训练,以预测可能的歌词-旋律对。在歌词到旋律的生成过程中,利用注意机制将预测的歌词与旋律对齐。定性和定量评价指标表明,该方法确实能够在给定一段不完整的种子歌词的情况下生成合适的歌词和相应的旋律来创作新歌。
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