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Fast Laplacian twin support vector machine with active learning for pattern classification

delete2019-01-01
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PRE
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R
Reshma Rastogi *
S
Sweta Sharma
DOI:10.1016/j.asoc.2018.10.042delete
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摘要

摘要

En 中文
In this paper, we propose a semi-supervised classifier termed as Fast Laplacian Twin Support Vector Machine (FLap - TWSVM) with an objective to reduce the requirement of labeled data and simultaneously lessen the training time complexity of a traditional Laplacian Twin Support Vector Machine semisupervised classifier. FLap - TWSVM is faster than existing Laplacian twin support vector machine as it solves a smaller size Quadratic Programming Problem (QPP) along with an Unconstrained Minimization Problem (UMP) to obtain decision hyperplanes which can also handle heteroscedastic noise present in the training data. Traditional semi-supervised classifiers generally have no explicit control over the choice of labeled data available for training, hence to overcome this limitation, we propose a pool-based active learning framework which identifies most informative examples to train the learning model. Moreover, the aforementioned framework has been extended to deal with multi-category classification scenarios. Several experiments have been performed on machine learning benchmark datasets which proves the utility of the proposed classifier over traditional Laplacian Twin Support Vector Machine (Lap - TWSVM) and active learning based Support Vector Machine (SVMAL). The efficacy of the proposed framework has also been tested on human activity recognition problem and content based image retrieval system. (C) 2018 Elsevier B.V. All rights reserved.
Keyword:
Semi-supervised learning
Laplacian twin support vector machine
Active learning
Activity recognition
Content based image retrieval
Multi-category classification
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期刊

Applied Soft Computing 封面图
Applied Soft Computing
IF:
6.6
论文数:
1.4W
被引数:
4.8W

机构

S
south asian university (sau)
学者数:
364
论文数: 338
被引数: 0
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