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Intelligent Analysis and Processing Technology of Big Data Based on Clustering Algorithm
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DOI:10.31449/inf.v46i3.4016.png)
Abstract
En 中文
An attribute category clustering method based on hierarchical clustering is proposed in order to study the big data intelligent analysis and processing technology. The proposed model combines the attribute categories with similar fault type distribution, reduces the data dimension, and binarizes it. To address the problem of more missing values of continuous data, a data completion method based on attribute distribution function is adopted. Through the perspective of selection and estimation of project unit price in construction enterprises, this paper summarizes the data mining process facing the characteristics of project cost data, and puts forward the method of analyzing and processing project cost data based on clustering algorithm. Finally, the processed data sets are subjected to bottom-up hierarchical clustering analysis, and finally the ideal analysis results can be obtained. The experimental results show that the preprocessing method based on attribute clustering proposed in this paper can effectively merge attributes, reduce the dimension after binary transformation and effectively reduce the amount of data under the condition of ensuring data information.
Keywords:
Clustering algorithm
Big data intelligence
Smart meter
Project cost
Genetic algorithm
Journal
IF:
1.7
Papers:
250
Citations:
62
