A New Approach of Matrix Factorization on Complex Domain for Data Representation

This work presents a new approach which derives a learned data representation method through matrix factorization on the complex domain. In particular, we introduce an encoding matrix-a new representation of data-that satisfies the simplicial constraint of the projective basis matrix on the field of...

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Veröffentlicht in:IEICE Transactions on Information and Systems 2017/12/01, Vol.E100.D(12), pp.3059-3063
Hauptverfasser: DUONG, Viet-Hang, BUI, Manh-Quan, DING, Jian-Jiun, LEE, Yuan-Shan, PHAM, Bach-Tung, BAO, Pham The, WANG, Jia-Ching
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Sprache:eng
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Zusammenfassung:This work presents a new approach which derives a learned data representation method through matrix factorization on the complex domain. In particular, we introduce an encoding matrix-a new representation of data-that satisfies the simplicial constraint of the projective basis matrix on the field of complex numbers. A complex optimization framework is provided. It employs the gradient descent method and computes the derivative of the cost function based on Wirtinger's calculus.
ISSN:0916-8532
1745-1361
DOI:10.1587/transinf.2017EDL8115