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      Application of Improved Boosting Algorithm for Art Image Classification

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      Scientific Programming
      Hindawi Limited

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          Abstract

          In the field of computer science, data mining is a hot topic. It is a mathematical method for identifying patterns in enormous amounts of data. Image mining is an important data mining technique involving a variety of fields. In image mining, art image organization is an interesting research field worthy of attention. The classification of art images into several predetermined sets is referred to as art image categorization. Image preprocessing, feature extraction, object identification, object categorization, object segmentation, object classification, and a variety of other approaches are all part of it. The purpose of this paper is to suggest an improved boosting algorithm that employs a specific method of traditional and simple, yet weak classifiers to create a complex, accurate, and strong classifier image as well as a realistic image. This paper investigated the characteristics of cartoon images, realistic images, painting images, and photo images, created color variance histogram features, and used them for classification. To execute classification experiments, this paper uses an image database of 10471 images, which are randomly distributed into two portions that are used as training data and test data, respectively. The training dataset contains 6971 images, while the test dataset contains 3478 images. The investigational results show that the planned algorithm has a classification accuracy of approximately 97%. The method proposed in this paper can be used as the basis of automatic large-scale image classification and has strong practicability.

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            Super efficiency SBM-DEA and neural network for performance evaluation

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                Author and article information

                Contributors
                Journal
                Scientific Programming
                Scientific Programming
                Hindawi Limited
                1875-919X
                1058-9244
                September 4 2021
                September 4 2021
                : 2021
                : 1-11
                Affiliations
                [1 ]School of Arts and Humanities, China Academy of Art, ZheJiang 310002, China
                Article
                10.1155/2021/3480414
                4c75c65a-36d5-45f3-a4a9-979e50c4b752
                © 2021

                https://creativecommons.org/licenses/by/4.0/

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