نتایج جستجو برای: large margin

تعداد نتایج: 1058648  

2008
David Chiang Yuval Marton Philip Resnik

Minimum-error-rate training (MERT) is a bottleneck for current development in statistical machine translation because it is limited in the number of weights it can reliably optimize. Building on the work of Watanabe et al., we explore the use of the MIRA algorithm of Crammer et al. as an alternative to MERT. We first show that by parallel processing and exploiting more of the parse forest, we c...

2016
Mohammad J. Saberian Jose Costa Pereira Nuno Vasconcelos Can Xu

In this paper we establish a duality between boosting and SVM, and use this to derive a novel discriminant dimensionality reduction algorithm. In particular, using the multiclass formulation of boosting and SVM we note that both use a combination of mapping and linear classification to maximize the multiclass margin. In SVM this is implemented using a pre-defined mapping (induced by the kernel)...

Journal: :CoRR 2017
Shuming Ma Xu Sun

To speed up the training process, many existing systems use parallel technology for online learning algorithms. However, most research mainly focus on stochastic gradient descent (SGD) instead of other algorithms. We propose a generic online parallel learning framework for large margin models, and also analyze our framework on popular large margin algorithms, including MIRA and Structured Perce...

2014
Rémi Lajugie Francis R. Bach Sylvain Arlot

We consider unsupervised partitioning problems based explicitly or implicitly on the minimization of Euclidean distortions, such as clustering, image or video segmentation, and other change-point detection problems. We emphasize on cases with specific structure, which include many practical situations ranging from meanbased change-point detection to image segmentation problems. We aim at learni...

Journal: :Journal of Machine Learning Research 2012
Zhihua Zhang Dehua Liu Guang Dai Michael I. Jordan

Support vector machines (SVMs) naturally embody sparseness due to their use of hinge loss functions. However, SVMs can not directly estimate conditional class probabilities. In this paper we propose and study a family of coherence functions, which are convex and differentiable, as surrogates of the hinge function. The coherence function is derived by using the maximum-entropy principle and is c...

2012
Suna Kim Suha Kwak Jan Feyereisl Bohyung Han

We present an online data association algorithm for multiobject tracking using structured prediction. This problem is formulated as a bipartite matching and solved by a generalized classification, specifically, Structural Support Vector Machines (S-SVM). Our structural classifier is trained based on matching results given the similarities between all pairs of objects identified in two consecuti...

Journal: :Statistical Analysis and Data Mining: The ASA Data Science Journal 2016

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