DRASiW is an extension of the WiSARD Weightless Neural Network (WNN) model with the capability of storing the frequencies of seen patterns during the training phase in an internal data structure called "mental image" (MI). Due to this capability, in a previous work it was demonstrated how to reversely process MIs in order to generate synthetic prototypes. Then, a training set composed of synthetic prototypes can be used to train new DRASiW systems (clones) with different architectures. In this paper we present a methodology to transfer memory between DRASiW systems, and we show how it is possible to generate clones of DRASiW systems with good classification capabilities within an acceptable loss of accuracy.

Cloning DRASiW systems via memory transfer

De Gregorio M;Giordano M
2016

Abstract

DRASiW is an extension of the WiSARD Weightless Neural Network (WNN) model with the capability of storing the frequencies of seen patterns during the training phase in an internal data structure called "mental image" (MI). Due to this capability, in a previous work it was demonstrated how to reversely process MIs in order to generate synthetic prototypes. Then, a training set composed of synthetic prototypes can be used to train new DRASiW systems (clones) with different architectures. In this paper we present a methodology to transfer memory between DRASiW systems, and we show how it is possible to generate clones of DRASiW systems with good classification capabilities within an acceptable loss of accuracy.
2016
Istituto di Calcolo e Reti ad Alte Prestazioni - ICAR
Istituto di Scienze Applicate e Sistemi Intelligenti "Eduardo Caianiello" - ISASI
Memory transfer
Mental images
Weightless neural networks
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/324196
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