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Journal ArticleDOI

LIBSVM: A library for support vector machines

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TLDR
Issues such as solving SVM optimization problems theoretical convergence multiclass classification probability estimates and parameter selection are discussed in detail.
Abstract
LIBSVM is a library for Support Vector Machines (SVMs). We have been actively developing this package since the year 2000. The goal is to help users to easily apply SVM to their applications. LIBSVM has gained wide popularity in machine learning and many other areas. In this article, we present all implementation details of LIBSVM. Issues such as solving SVM optimization problems theoretical convergence multiclass classification probability estimates and parameter selection are discussed in detail.

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Book ChapterDOI

Describing clothing by semantic attributes

TL;DR: A fully automated system that is capable of generating a list of nameable attributes for clothes on human body in unconstrained images is proposed, and a novel application of dressing style analysis is introduced that utilizes the semantic attributes produced by the system.
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EEG-Based Emotion Recognition Using Deep Learning Network with Principal Component Based Covariate Shift Adaptation

TL;DR: A deep learning network (DLN) is proposed to discover unknown feature correlation between input signals that is crucial for the learning task and provides better performance compared to SVM and naive Bayes classifiers.
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A Tutorial on Multilabel Learning

TL;DR: An up-to-date tutorial about multilabel learning is presented that introduces the paradigm and describes the main contributions developed and Evaluation measures, fields of application, trending topics, and resources are presented.
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Reliable Crowdsourcing and Deep Locality-Preserving Learning for Unconstrained Facial Expression Recognition

TL;DR: A new deep locality-preserving convolutional neural network (DLP-CNN) method that aims to enhance the discriminative power of deep features by preserving the locality closeness while maximizing the inter-class scatter is proposed.
Journal ArticleDOI

A Regression Approach to Music Emotion Recognition

TL;DR: This paper forms MER as a regression problem to predict the arousal and valence values (AV values) of each music sample directly and applies the regression approach to detect the emotion variation within a music selection and find the prediction accuracy superior to existing works.
References
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Journal ArticleDOI

Support-Vector Networks

TL;DR: High generalization ability of support-vector networks utilizing polynomial input transformations is demonstrated and the performance of the support- vector network is compared to various classical learning algorithms that all took part in a benchmark study of Optical Character Recognition.

Statistical learning theory

TL;DR: Presenting a method for determining the necessary and sufficient conditions for consistency of learning process, the author covers function estimates from small data pools, applying these estimations to real-life problems, and much more.
Proceedings ArticleDOI

A training algorithm for optimal margin classifiers

TL;DR: A training algorithm that maximizes the margin between the training patterns and the decision boundary is presented, applicable to a wide variety of the classification functions, including Perceptrons, polynomials, and Radial Basis Functions.

A Practical Guide to Support Vector Classication

TL;DR: A simple procedure is proposed, which usually gives reasonable results and is suitable for beginners who are not familiar with SVM.
Journal ArticleDOI

A comparison of methods for multiclass support vector machines

TL;DR: Decomposition implementations for two "all-together" multiclass SVM methods are given and it is shown that for large problems methods by considering all data at once in general need fewer support vectors.