Research and Implementation of Text Generation Based on Text Augmentation and Knowledge Understanding

Author:

Liu Lei12ORCID,Sun Yeguo3ORCID,Liu Yihong1,Roxas Rachel Edita O.2,Raga Rodolfo C.2

Affiliation:

1. School of Computer Science, Huainan Normal University, Huainan, China

2. School of Computing and Information Technologies, National University, Manila, Philippines

3. School of Finance and Mathematics, Huainan Normal University, Huainan, China

Abstract

Text generation has always been limited by the lack of corpus data required for language model (LM) training and the low quality of the generated text. Researchers have proposed some solutions, but these solutions are often complex and will greatly increase the consumption of computing resources. Referring to the current main solutions, this paper proposes a lightweight language model (EDA-BoB) based on text augmentation technology and knowledge understanding mechanism. Experiments show that the EDA-BoB model cannot only expand the scale of the training data set but also ensure the data quality at the cost of consuming little computing resources. Moreover, our model is shown to combine the contextual semantics of sentences to generate rich and accurate texts.

Funder

Natural Science Foundation of Anhui Province

Publisher

Hindawi Limited

Subject

General Mathematics,General Medicine,General Neuroscience,General Computer Science

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