Short Text Paraphrase Identification Model Based on RDN-MESIM

Author:

Li Jing12ORCID,Zhang Dezheng12ORCID,Wulamu Aziguli12ORCID

Affiliation:

1. School of Computer and Communication Engineering, University of Science and Technology Beijing, Beijing 100083, China

2. Beijing Key Laboratory of Knowledge Engineering for Materials Science, University of Science and Technology Beijing, Beijing 100083, China

Abstract

In the rapid development of various technologies at the present stage, representative artificial intelligence technology has developed more prominently. Therefore, it has been widely applied in various social service areas. The application of artificial intelligence technology in tax consultation can optimize the application scenarios and update the application mode, thus further improving the efficiency and quality of tax data inquiry. In this paper, we propose a novel model, named RDN-MESIM, for paraphrase identification tasks in the tax consulting area. The main contribution of this work is designing the RNN-Dense network and modifying the original ESIM to adapt to the RDN structure. The results demonstrate that RDN-MESIM obtained a better performance as compared to other existing relevant models and archived the highest accuracy, of up to 97.63%.

Funder

Science and Technology Innovation 2030-“New Generation Artificial Intelligence” Major Project

Publisher

Hindawi Limited

Subject

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

Reference29 articles.

1. Convolutional neural network for paraphrase identification;W. Yin

2. English–Vietnamese cross-language paraphrase identification using hybrid feature classes;D. Dinh;Journal of Heuristics,2019

3. International comparative study on tax intelligence consulting service system;H. Xiao;International Tax,2021

4. Tax risk prevention and control of enterprises in the “internet+” era;J. Pan;Trade Show Economic,2021

5. Re-examining machine translation metrics for paraphrase identification;N. Madnani

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