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Using data tagging to improve the performance of Kanerva's sparse distributed memoryThe standard formulation of Kanerva's sparse distributed memory (SDM) involves the selection of a large number of data storage locations, followed by averaging the data contained in those locations to reconstruct the stored data. A variant of this model is discussed, in which the predominant pattern is the focus of reconstruction. First, one architecture is proposed which returns the predominant pattern rather than the average pattern. However, this model will require too much storage for most uses. Next, a hybrid model is proposed, called tagged SDM, which approximates the results of the predominant pattern machine, but is nearly as efficient as Kanerva's original formulation. Finally, some experimental results are shown which confirm that significant improvements in the recall capability of SDM can be achieved using the tagged architecture.
Document ID
19890004604
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Rogers, David
(NASA Ames Research Center Moffett Field, CA, United States)
Date Acquired
September 5, 2013
Publication Date
January 1, 1988
Subject Category
Computer Programming And Software
Report/Patent Number
NASA-CR-184557
RIACS-TR-88.1
NAS 1.26:184557
Report Number: NASA-CR-184557
Report Number: RIACS-TR-88.1
Report Number: NAS 1.26:184557
Accession Number
89N13975
Funding Number(s)
CONTRACT_GRANT: NCC2-408
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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