Models and Methods of Intelligent Processing of Web Documents Based on Artificial Intelligence Technologies
Annotatsiya
This article analyzes modern models and methods of intelligent processing of web documents based on artificial intelligence technologies. Algorithms for automatic processing, clustering, classification, and detection of unnamed events in textual, graphical, and structural data contained in web documents are considered. During the research, machine learning, deep learning, semantic analysis, and DOM tree-based models are studied, and their advantages and disadvantages are compared. In addition, the efficiency of K-means, DBSCAN, Hierarchical Clustering, and BiDist methods in intelligent processing of web documents is analyzed. As a result of the study, an effective model for automatic analysis of web data is proposed.
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