Efficient Multiplicative Updates For Support Vector Machines

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Efficient Multiplicative Updates for Support Vector Machines.

    https://www.researchgate.net/publication/220907326_Efficient_Multiplicative_Updates_for_Support_Vector_Machines
    A 'read' is counted each time someone views a publication summary (such as the title, abstract, and list of authors), clicks on a figure, or views or downloads the full-text.

Efficient multiplicative updates for SVM

    https://www.cs.unm.edu/~pliz/research/papers/pdf/musik_talk.pdf
    Efficient multiplicative updates for SVM Sergey Plis Computer Science Department ... 1 Introduction Support Vector Machines Non-negative Matrix Factorization NQP 2 SVM as NMF 3 Experiments 2/45. Introduction Outline 1 Introduction Support Vector Machines ... Efficient multiplicative updates for SVM

Efficient Multiplicative updates for Support Vector ...

    http://citeseerx.ist.psu.edu/viewdoc/summary?doi=10.1.1.566.6514
    CiteSeerX - Document Details (Isaac Councill, Lee Giles, Pradeep Teregowda): The dual formulation of the support vector machine (SVM) objective function is an instance of a nonnegative quadratic programming problem. We reformulate the SVM objective function as a matrix factorization problem which establishes a connection with the regularized nonnegative matrix fac-torization (NMF) problem.

Efficient Multiplicative updates for Support Vector ...

    http://citeseerx.ist.psu.edu/viewdoc/summary?doi=10.1.1.217.1814
    CiteSeerX - Document Details (Isaac Councill, Lee Giles, Pradeep Teregowda): The dual formulation of the support vector machine (SVM) objective function is an instance of a nonnegative quadratic programming problem. We reformulate the SVM objective function as a matrix factorization problem which establishes a connection with the regularized nonnegative matrix factorization (NMF) problem.

Multiplicative Update Rules for Multilinear Support Tensor ...

    https://www.researchgate.net/publication/220928574_Multiplicative_Update_Rules_for_Multilinear_Support_Tensor_Machines
    A 'read' is counted each time someone views a publication summary (such as the title, abstract, and list of authors), clicks on a figure, or views or downloads the full-text.

Efficient Multiplicative updates for Support Vector ...

    https://epubs.siam.org/doi/abs/10.1137/1.9781611972795.104
    Proceedings of the 2009 SIAM International Conference on Data Mining > 10.1137/1.9781611972795.104 Manage this Paper. Add to my favorites. Download Citations. Track Citations. Recommend & Share. Recommend to Library. Email to a friend Facebook Twitter CiteULike Newsvine Digg This Delicious. Notify Me! E-mail Alerts ...

Efficient Multiplicative updates for Support Vector Machines

    https://core.ac.uk/display/21752791
    Efficient Multiplicative updates for Support Vector Machines . By Vamsi K. Potluru, Sergey M. Plis, Morten Mørup, Vincent D. Calhoun and Terran Lane. Abstract. The dual formulation of the support vector machine (SVM) objective function is an instance of a nonnegative quadratic programming problem. ... Multiplicative updates that we derive for ...

Multiplicative update rules for incremental training of ...

    https://www.sciencedirect.com/science/article/pii/S0031320311004547
    Multiplicative update rules for incremental training of multiclass support vector machines ... We present a new method for the incremental training of multiclass support vector machines that can simultaneously modify each class separating hyperplane and provide computational efficiency for training tasks where the training data collection is ...Cited by: 8

Efficient Multiplicative Updates for Support Vector Machines

    https://core.ac.uk/display/13725105
    Download PDF: Sorry, we are unable to provide the full text but you may find it at the following location(s): http://orbit.dtu.dk/en/publica... (external link) http ...

US7478074B2 - Support vector machine - Google Patents

    https://patents.google.com/patent/US7478074B2/en
    A method for operating a computer as a support vector machine (SVM) in order to define a decision surface separating two opposing classes of a training set of vectors. The method involves associating a distance parameter with each vector of the SVM's training set. The distance parameter indicates a distance from its associated vector, being in a first class, to the opposite class.Cited by: 4



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