Analysis and Recognition Method of Internet Image Public Opinion Based on Partial Differential Equation

This article comprehensively and systematically expounds the development trends and basic theory of partial differential methods, analyzes the characteristics of sampling multiscale transformation in detail, and deeply studies the network image denoising and network image restoration methods that pe...

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Main Author: Yang Zhang
Format: Article
Language:English
Published: Wiley 2021-01-01
Series:Advances in Mathematical Physics
Online Access:http://dx.doi.org/10.1155/2021/9759199
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author Yang Zhang
author_facet Yang Zhang
author_sort Yang Zhang
collection DOAJ
description This article comprehensively and systematically expounds the development trends and basic theory of partial differential methods, analyzes the characteristics of sampling multiscale transformation in detail, and deeply studies the network image denoising and network image restoration methods that perform partial differential diffusion in the pixel domain and the transform domain. An adaptive diffusion method of partial differential equations is proposed. Among them, the key parameters can be adaptively changed according to the curvature and gradient of the local geometric information of the network image, and the diffusion direction and intensity of the diffusion can be controlled. First, using the principle of variation, we derive the Euler equation corresponding to the diffusion method of partial differential equations and analyze its diffusion ability using the local orthogonal coordinate system of the network image. Based on the theoretical analysis of public opinion, this article applies opinion mining technology to the online public opinion early warning system to achieve the purpose of grasping the opinions of netizens in time and guiding the trend of public opinion. Opinion mining is the use of natural language processing technology to automatically extract the emotional tendencies and evaluation objects contained in the subjective text. In the edge area of the network image, the diffusion along the edge direction should have a large diffusion coefficient, and the diffusion along the vertical edge direction should have a small diffusion coefficient; in the flat area of the network image, it diffuses to the surrounding with equal intensity, and the diffusion intensity value is relatively high. Secondly, based on the analysis of the adaptive partial differential equation diffusion method, using the half-point difference format, a numerical method for network image recognition is designed. Both theoretical analysis and experimental results show that the network image recognition model based on adaptive partial differential equation diffusion is more effective than the model based on partial differential equation recognition; at the same time, experiments show that the network image recognition model based on adaptive partial differential equation diffusion is more effective than the network image recognition model based on ordinary diffusion. The network image recognition model based on constant partial differential equation diffusion is more effective in improving the quality of network image recognition.
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spelling doaj-art-0489ba441076445cb05dbd33e6ef0f732025-08-20T02:03:07ZengWileyAdvances in Mathematical Physics1687-91201687-91392021-01-01202110.1155/2021/97591999759199Analysis and Recognition Method of Internet Image Public Opinion Based on Partial Differential EquationYang Zhang0Business School, University of Shanghai for Science and Technology, Shanghai 200093, ChinaThis article comprehensively and systematically expounds the development trends and basic theory of partial differential methods, analyzes the characteristics of sampling multiscale transformation in detail, and deeply studies the network image denoising and network image restoration methods that perform partial differential diffusion in the pixel domain and the transform domain. An adaptive diffusion method of partial differential equations is proposed. Among them, the key parameters can be adaptively changed according to the curvature and gradient of the local geometric information of the network image, and the diffusion direction and intensity of the diffusion can be controlled. First, using the principle of variation, we derive the Euler equation corresponding to the diffusion method of partial differential equations and analyze its diffusion ability using the local orthogonal coordinate system of the network image. Based on the theoretical analysis of public opinion, this article applies opinion mining technology to the online public opinion early warning system to achieve the purpose of grasping the opinions of netizens in time and guiding the trend of public opinion. Opinion mining is the use of natural language processing technology to automatically extract the emotional tendencies and evaluation objects contained in the subjective text. In the edge area of the network image, the diffusion along the edge direction should have a large diffusion coefficient, and the diffusion along the vertical edge direction should have a small diffusion coefficient; in the flat area of the network image, it diffuses to the surrounding with equal intensity, and the diffusion intensity value is relatively high. Secondly, based on the analysis of the adaptive partial differential equation diffusion method, using the half-point difference format, a numerical method for network image recognition is designed. Both theoretical analysis and experimental results show that the network image recognition model based on adaptive partial differential equation diffusion is more effective than the model based on partial differential equation recognition; at the same time, experiments show that the network image recognition model based on adaptive partial differential equation diffusion is more effective than the network image recognition model based on ordinary diffusion. The network image recognition model based on constant partial differential equation diffusion is more effective in improving the quality of network image recognition.http://dx.doi.org/10.1155/2021/9759199
spellingShingle Yang Zhang
Analysis and Recognition Method of Internet Image Public Opinion Based on Partial Differential Equation
Advances in Mathematical Physics
title Analysis and Recognition Method of Internet Image Public Opinion Based on Partial Differential Equation
title_full Analysis and Recognition Method of Internet Image Public Opinion Based on Partial Differential Equation
title_fullStr Analysis and Recognition Method of Internet Image Public Opinion Based on Partial Differential Equation
title_full_unstemmed Analysis and Recognition Method of Internet Image Public Opinion Based on Partial Differential Equation
title_short Analysis and Recognition Method of Internet Image Public Opinion Based on Partial Differential Equation
title_sort analysis and recognition method of internet image public opinion based on partial differential equation
url http://dx.doi.org/10.1155/2021/9759199
work_keys_str_mv AT yangzhang analysisandrecognitionmethodofinternetimagepublicopinionbasedonpartialdifferentialequation