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Number Systems for Deep Neural Network Architectures

Number Systems for Deep Neural Network Architectures - Synthesis Lectures on Engineering, Science, and Technology

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Publisher's Synopsis

This book provides readers a comprehensive introduction to alternative number systems for more efficient representations of Deep Neural Network (DNN) data. Various number systems (conventional/unconventional) exploited for DNNs are discussed, including Floating Point (FP), Fixed Point (FXP), Logarithmic Number System (LNS), Residue Number System (RNS), Block Floating Point Number System (BFP), Dynamic Fixed-Point Number System (DFXP) and Posit Number System (PNS). The authors explore the impact of these number systems on the performance and hardware design of DNNs, highlighting the challenges associated with each number system and various solutions that are proposed for addressing them.

Book information

ISBN: 9783031381324
Publisher: Springer Nature Switzerland
Imprint: Springer
Pub date:
DEWEY: 006.32
DEWEY edition: 23
Language: English
Number of pages: 94
Weight: 386g
Height: 240mm
Width: 168mm
Spine width: 12mm