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Algorithmic Level Approximate Computing for Machine Learning Classifiers

Published • Nov 1, 2019
NobleIDNI8P20W49R45S32
Authors:
Hamoud Younes
,
Alì Ibrahim
,
Mostafa Rizk

Abstract

Efficiency, real-time operation and low-power consumption are the main requirements of embedded Machine Learning implementations. This paper proposes an approach for applying Algorithmic level Approximate Computing Techniques (ACTs) on two supervised machine learning algorithms. The proposed approac...

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