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Towards Generating Long and Coherent Text with Multi-Level Latent Variable Models

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arxiv 1902.00154 v2 pith:6K4MM5O4 submitted 2019-02-01 cs.CL cs.LG

classification cs.CLcs.LG
keywords coherentmulti-leveltextlatentlongdecodergenerategenerating
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Variational autoencoders (VAEs) have received much attention recently as an end-to-end architecture for text generation with latent variables. In this paper, we investigate several multi-level structures to learn a VAE model to generate long, and coherent text. In particular, we use a hierarchy of stochastic layers between the encoder and decoder networks to generate more informative latent codes. We also investigate a multi-level decoder structure to learn a coherent long-term structure by generating intermediate sentence representations as high-level plan vectors. Empirical results demonstrate that a multi-level VAE model produces more coherent and less repetitive long text compared to the standard VAE models and can further mitigate the posterior-collapse issue.

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Cited by 1 Pith paper

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  1. TransSent: Towards Generation of Structured Sentences with Discourse Marker

    cs.CL 2019-09 conditional novelty 6.0 of 10

    TransSent generates a tail discourse from a head discourse and a discourse marker by treating the marker as a translation in embedding space, with new datasets and improved scores over baselines.

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