Construction of Social Security Fund Cloud Audit Platform Based on Fuzzy Data Mining Algorithm

Guided by the theories of system theory, synergetic theory, and other disciplines and based on fuzzy data mining algorithm, this article constructs a three-tier social security fund cloud audit platform. Firstly, the article systematically expounds the current situation of social security fund and s...

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Main Authors: Yangting Huai, Qianxiao Zhang
Format: Article
Language:English
Published: Hindawi-Wiley 2021-01-01
Series:Complexity
Online Access:http://dx.doi.org/10.1155/2021/9939454
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spelling doaj-b8577777ab854d47a662a18d98724b382021-05-10T00:26:08ZengHindawi-WileyComplexity1099-05262021-01-01202110.1155/2021/9939454Construction of Social Security Fund Cloud Audit Platform Based on Fuzzy Data Mining AlgorithmYangting Huai0Qianxiao Zhang1School of Economics and FinanceSchool of Economics and FinanceGuided by the theories of system theory, synergetic theory, and other disciplines and based on fuzzy data mining algorithm, this article constructs a three-tier social security fund cloud audit platform. Firstly, the article systematically expounds the current situation of social security fund and social security fund audit, such as the technical basis of cloud computing and data mining. Combined with the actual work, the necessity and feasibility of building a cloud audit platform for social security funds are analyzed. This article focuses on the construction of the cloud audit platform for social security funds. The general idea of using fuzzy data mining algorithm to build the social security fund audit cloud platform is to compress the knowledge contained in a large number of data into the weights between nodes and optimize the weights through the learning of the neural network system. Through the optimization function, the information contained in the neural network is stored in a few weights as far as possible. The main information is further highlighted by network clipping and removing weights that have little impact on the output.http://dx.doi.org/10.1155/2021/9939454
collection DOAJ
language English
format Article
sources DOAJ
author Yangting Huai
Qianxiao Zhang
spellingShingle Yangting Huai
Qianxiao Zhang
Construction of Social Security Fund Cloud Audit Platform Based on Fuzzy Data Mining Algorithm
Complexity
author_facet Yangting Huai
Qianxiao Zhang
author_sort Yangting Huai
title Construction of Social Security Fund Cloud Audit Platform Based on Fuzzy Data Mining Algorithm
title_short Construction of Social Security Fund Cloud Audit Platform Based on Fuzzy Data Mining Algorithm
title_full Construction of Social Security Fund Cloud Audit Platform Based on Fuzzy Data Mining Algorithm
title_fullStr Construction of Social Security Fund Cloud Audit Platform Based on Fuzzy Data Mining Algorithm
title_full_unstemmed Construction of Social Security Fund Cloud Audit Platform Based on Fuzzy Data Mining Algorithm
title_sort construction of social security fund cloud audit platform based on fuzzy data mining algorithm
publisher Hindawi-Wiley
series Complexity
issn 1099-0526
publishDate 2021-01-01
description Guided by the theories of system theory, synergetic theory, and other disciplines and based on fuzzy data mining algorithm, this article constructs a three-tier social security fund cloud audit platform. Firstly, the article systematically expounds the current situation of social security fund and social security fund audit, such as the technical basis of cloud computing and data mining. Combined with the actual work, the necessity and feasibility of building a cloud audit platform for social security funds are analyzed. This article focuses on the construction of the cloud audit platform for social security funds. The general idea of using fuzzy data mining algorithm to build the social security fund audit cloud platform is to compress the knowledge contained in a large number of data into the weights between nodes and optimize the weights through the learning of the neural network system. Through the optimization function, the information contained in the neural network is stored in a few weights as far as possible. The main information is further highlighted by network clipping and removing weights that have little impact on the output.
url http://dx.doi.org/10.1155/2021/9939454
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AT qianxiaozhang constructionofsocialsecurityfundcloudauditplatformbasedonfuzzydataminingalgorithm
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