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Vietnamese Poem Generation & The Prospect Of Cross-Language Poem-To-Poem Translation

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arxiv 2401.01078 v3 pith:TSNB7YM7 submitted 2024-01-02 cs.CL cs.AI

classification cs.CLcs.AI
keywords languagepoemsvietnamesecontentcontrolcross-languagegenerationgenre
verification ladder T0 review T1 audit T2 compute T3 formal
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Poetry generation has been a challenging task in the field of Natural Language Processing, as it requires the model to understand the nuances of language, sentiment, and style. In this paper, we propose using Large Language Models to generate Vietnamese poems of various genres from natural language prompts, thereby facilitating an intuitive process with enhanced content control. Our most efficacious model, the GPT-3 Babbage variant, achieves a custom evaluation score of 0.8, specifically tailored to the "luc bat" genre of Vietnamese poetry. Furthermore, we also explore the idea of paraphrasing poems into normal text prompts and yield a relatively high score of 0.781 in the "luc bat" genre. This experiment presents the potential for cross-Language poem-to-poem translation with translated poems as the inputs while concurrently maintaining complete control over the generated content.

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Cited by 1 Pith paper

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  1. PoemTale Diffusion: Minimising Information Loss in Poem to Image Generation with Multi-Stage Prompt Refinement

    cs.CV 2025-07 conditional novelty 6.0 of 10

    PoemTale Diffusion generates a coherent set of images from a poem by combining emotion-based segmentation, multi-stage LLM prompt refinement, and consistent self-attention, outperforming direct poem-to-image approache...

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