Incremental one-class classifier based on convex–concave hull
One subject that has been considered less is a binary classification on data streams with concept drifting in which only information of one class (target class) is available for learning. Well-known methods such as SVDD and convex hull have tried to find the enclosed boundary around target class, bu...
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Published in | Pattern analysis and applications : PAA Vol. 23; no. 4; pp. 1523 - 1549 |
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Main Authors | , |
Format | Journal Article |
Language | English |
Published |
London
Springer London
01.11.2020
Springer Nature B.V |
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Abstract | One subject that has been considered less is a binary classification on data streams with concept drifting in which only information of one class (target class) is available for learning. Well-known methods such as SVDD and convex hull have tried to find the enclosed boundary around target class, but their high complexity makes them unsuitable for large data sets and also online tasks. This paper presents a novel online one-class classifier adapted to the streaming data. Considering time complexity, an incremental convex–concave hull classification method, called ICCHC, is proposed which can significantly reduce the computational time and expand the target class boundary. Also, it can be adapted to the gradual concept drift. Evaluations have been conducted on seventeen real-world data sets by hold-out validation. Also, noise analysis has been carried out. The results of the experiments have been compared with the state-of-the-art methods, which show the superiority of ICCHC regarding the accuracy, precision, and recall metrics. |
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AbstractList | One subject that has been considered less is a binary classification on data streams with concept drifting in which only information of one class (target class) is available for learning. Well-known methods such as SVDD and convex hull have tried to find the enclosed boundary around target class, but their high complexity makes them unsuitable for large data sets and also online tasks. This paper presents a novel online one-class classifier adapted to the streaming data. Considering time complexity, an incremental convex–concave hull classification method, called ICCHC, is proposed which can significantly reduce the computational time and expand the target class boundary. Also, it can be adapted to the gradual concept drift. Evaluations have been conducted on seventeen real-world data sets by hold-out validation. Also, noise analysis has been carried out. The results of the experiments have been compared with the state-of-the-art methods, which show the superiority of ICCHC regarding the accuracy, precision, and recall metrics. |
Author | Moradi, Mona Hamidzadeh, Javad |
Author_xml | – sequence: 1 givenname: Javad surname: Hamidzadeh fullname: Hamidzadeh, Javad email: J_Hamidzadeh@sadjad.ac.ir organization: Faculty of Computer Engineering and Information Technology, Sadjad University of Technology – sequence: 2 givenname: Mona surname: Moradi fullname: Moradi, Mona organization: Faculty of Computer Engineering and Information Technology, Sadjad University of Technology |
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CitedBy_id | crossref_primary_10_1016_j_ins_2023_119602 crossref_primary_10_1007_s13042_024_02135_1 crossref_primary_10_1016_j_patcog_2022_108930 crossref_primary_10_1016_j_knosys_2021_106878 crossref_primary_10_1016_j_patcog_2024_111339 crossref_primary_10_1007_s41060_023_00463_z |
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Keywords | Data stream Convex hull Online learning One-class classification Convex–concave hull |
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Title | Incremental one-class classifier based on convex–concave hull |
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