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Markov Constraints for Generating Lyrics with Style

机译:产生样式的歌词的马尔可夫约束

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We address the issue of generating texts in the style of an existing author, that also satisfy structural constraints imposed by the genre of the text. We focus on song lyrics, for which structural constraints are well-defined: rhyme and meter. Although Markov processes are known to be suitable for representing style, they are difficult to control in order to satisfy non-local properties, such as structural constraints, that require long distance modeling. We show that the framework of Constrained Markov Processes allows us to precisely generate texts that are consistent with a corpus, while being controllable in terms of rhymes and meter, a result that no other technique, to our knowledge, could achieve to date. Controlled Markov processes consist in reformulating Markov processes in the context of constraint satisfaction. We describe how to represent stylistic and structural properties in terms of constraints in this framework and we provide an evaluation of our method by comparing it to both pure Markov and pure constraint-based approaches. We show how this approach can be used for the semi-automatic generation of lyrics in the style of a popular author that has the same structure as an existing song.
机译:我们以现有作者的方式解决生成文本的问题,该问题也满足了文本类型所施加的结构性约束。我们专注于歌词,对于这些歌词,结构上的限制是明确定义的:押韵和节拍。尽管已知马尔可夫过程适合于表示样式,但为了满足需要长距离建模的非局部属性(如结构约束),很难控制它们。我们证明了约束马尔可夫过程的框架使我们能够精确地生成与语料库一致的文本,同时在韵律和音调方面是可控制的,这是迄今为止所知的其他技术无法实现的结果。受控马尔可夫过程包括在约束满足的情况下重新制定马尔可夫过程。我们描述了如何在此框架中以约束表示形式和结构特性,并通过将其与纯Markov方法和基于纯约束的方法进行比较来提供对我们方法的评估。我们将展示这种方法如何以流行作者的风格(与现有歌曲具有相同的结构)用于半自动生成歌词。

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