News Text Classification Method and Simulation Based on the Hybrid Deep Learning Model

This paper uses the database as the data source, using bibliometrics and visual analysis methods, to statistically analyze the relevant documents published in the field of text classification in the past ten years, to clarify the development context and research status of the text classification fie...

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Main Authors: Ningfeng Sun, Chengye Du
Format: Article
Language:English
Published: Wiley 2021-01-01
Series:Complexity
Online Access:http://dx.doi.org/10.1155/2021/8064579
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author Ningfeng Sun
Chengye Du
author_facet Ningfeng Sun
Chengye Du
author_sort Ningfeng Sun
collection DOAJ
description This paper uses the database as the data source, using bibliometrics and visual analysis methods, to statistically analyze the relevant documents published in the field of text classification in the past ten years, to clarify the development context and research status of the text classification field, and to predict the research in the field of text classification priorities and research frontiers. Based on the in-depth study of the background, research status, related theories, and developments of online news text classification, this article analyzes the annual publication trend, subject distribution, journal distribution, institution distribution, author distribution, highly cited literature analysis, and research hotspots. Forefront and other aspects clarify the development context and research status of the text classification field and provide a theoretical reference for the further development of the text classification field. Then, on the basis of systematic research on text classification, deep learning, and news text classification theories, a deep learning-based network news text classification model is constructed, and the function of each module is introduced in detail, which will help the future news text classification of application and improvement provide theoretical basis. On the basis of the predecessors, this article separately studied and improved the neural network model based on the convolutional neural network, cyclic neural network, and attention mechanism and merged the three models into one model, which can obtain local associated features and contextual features and highlight the role of keywords. Finally, experiments are used to verify the effectiveness of the model proposed in this paper and compared with traditional text classification to prove the superiority of the network news text classification based on deep learning proposed in this paper. This article aims to study the internal connection between news comments and the number of votes received by news comments, and through the proposed model, the number of votes for news comments can be predicted.
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spelling doaj-art-eae42fc34fb94a0d8514f7f628fa0ffe2025-08-20T03:21:10ZengWileyComplexity1076-27871099-05262021-01-01202110.1155/2021/80645798064579News Text Classification Method and Simulation Based on the Hybrid Deep Learning ModelNingfeng Sun0Chengye Du1School of Humanities, Southwestern University of Finance and Economics, Chengdu, Sichuan 610036, ChinaSchool of Film and Television, Yunnan Arts University, Kunming, Yunnan 650500, ChinaThis paper uses the database as the data source, using bibliometrics and visual analysis methods, to statistically analyze the relevant documents published in the field of text classification in the past ten years, to clarify the development context and research status of the text classification field, and to predict the research in the field of text classification priorities and research frontiers. Based on the in-depth study of the background, research status, related theories, and developments of online news text classification, this article analyzes the annual publication trend, subject distribution, journal distribution, institution distribution, author distribution, highly cited literature analysis, and research hotspots. Forefront and other aspects clarify the development context and research status of the text classification field and provide a theoretical reference for the further development of the text classification field. Then, on the basis of systematic research on text classification, deep learning, and news text classification theories, a deep learning-based network news text classification model is constructed, and the function of each module is introduced in detail, which will help the future news text classification of application and improvement provide theoretical basis. On the basis of the predecessors, this article separately studied and improved the neural network model based on the convolutional neural network, cyclic neural network, and attention mechanism and merged the three models into one model, which can obtain local associated features and contextual features and highlight the role of keywords. Finally, experiments are used to verify the effectiveness of the model proposed in this paper and compared with traditional text classification to prove the superiority of the network news text classification based on deep learning proposed in this paper. This article aims to study the internal connection between news comments and the number of votes received by news comments, and through the proposed model, the number of votes for news comments can be predicted.http://dx.doi.org/10.1155/2021/8064579
spellingShingle Ningfeng Sun
Chengye Du
News Text Classification Method and Simulation Based on the Hybrid Deep Learning Model
Complexity
title News Text Classification Method and Simulation Based on the Hybrid Deep Learning Model
title_full News Text Classification Method and Simulation Based on the Hybrid Deep Learning Model
title_fullStr News Text Classification Method and Simulation Based on the Hybrid Deep Learning Model
title_full_unstemmed News Text Classification Method and Simulation Based on the Hybrid Deep Learning Model
title_short News Text Classification Method and Simulation Based on the Hybrid Deep Learning Model
title_sort news text classification method and simulation based on the hybrid deep learning model
url http://dx.doi.org/10.1155/2021/8064579
work_keys_str_mv AT ningfengsun newstextclassificationmethodandsimulationbasedonthehybriddeeplearningmodel
AT chengyedu newstextclassificationmethodandsimulationbasedonthehybriddeeplearningmodel