نتایج جستجو برای: incoherence dictionary learning

تعداد نتایج: 618286  

2013
Andreas Maurer Massimiliano Pontil Bernardino Romera-Paredes

We investigate the use of sparse coding and dictionary learning in the context of multitask and transfer learning. The central assumption of our learning method is that the tasks parameters are well approximated by sparse linear combinations of the atoms of a dictionary on a high or infinite dimensional space. This assumption, together with the large quantity of available data in the multitask ...

Journal: :Philosophical Review 2013

2015
Yun Fu Shuyang Wang

Locality-Constrained Discriminative Learning and Coding Report Title This paper explores the enhancement by locality constraint to both learning and coding schemes, more specifically, discriminative low-rank dictionary learning and auto-encoder. Previous Fisher discriminative based dictionary learning has led to interesting results by learning more discerning sub-dictionaries. Also, the low-ran...

2016
Zemin Zhang Shuchin Aeron

In this paper a new dictionary learning algorithm for multidimensional data is proposed. Unlike most conventional dictionary learning methods which are derived for dealing with vectors or matrices, our algorithm, named KTSVD, learns a multidimensional dictionary directly via a novel algebraic approach for tensor factorization as proposed in [3, 12, 13]. Using this approach one can define a tens...

Journal: :IEEE Transactions on Image Processing 2018

Journal: :Journal of Visual Communication and Image Representation 2016

Journal: :EURASIP Journal on Advances in Signal Processing 2018

Journal: :Neural Computing and Applications 2016

Journal: :VLSI Signal Processing 2006
Joseph F. Murray Kenneth Kreutz-Delgado

Images can be coded accurately using a sparse set of vectors from a learned overcomplete dictionary, with potential applications in image compression and feature selection for pattern recognition. We present a survey of algorithms that perform dictionary learning and sparse coding and make three contributions. First, we compare our overcomplete dictionary learning algorithm (FOCUSS-CNDL) with o...

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