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Method of Real-Time Principal-Component AnalysisDominant-element-based gradient descent and dynamic initial learning rate (DOGEDYN) is a method of sequential principal-component analysis (PCA) that is well suited for such applications as data compression and extraction of features from sets of data. In comparison with a prior method of gradient-descent-based sequential PCA, this method offers a greater rate of learning convergence. Like the prior method, DOGEDYN can be implemented in software. However, the main advantage of DOGEDYN over the prior method lies in the facts that it requires less computation and can be implemented in simpler hardware. It should be possible to implement DOGEDYN in compact, low-power, very-large-scale integrated (VLSI) circuitry that could process data in real time.
Document ID
20110014703
Acquisition Source
Jet Propulsion Laboratory
Document Type
Other - NASA Tech Brief
Authors
Duong, Tuan
(California Inst. of Tech. Pasadena, CA, United States)
Duong, Vu
(California Inst. of Tech. Pasadena, CA, United States)
Date Acquired
August 25, 2013
Publication Date
January 1, 2005
Publication Information
Publication: NASA Tech Briefs, January 2005
Subject Category
Man/System Technology And Life Support
Report/Patent Number
NPO-40034
Distribution Limits
Public
Copyright
Public Use Permitted.
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