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December 11, 2023
Conference Paper
Title
Analog/Mixed-Signal Standard Cell Based Approach for Automated Circuit Generation of Neural Network Accelerators
Abstract
Analog and mixed-signal neural network accelerators are a promising solution to apply deep learning methods to edge applications where high energy and area efficiency are required. Such in-memory computing implementations use regular and repetitive circuit structures that take great advantage of design automation. An analog/mixed-signal standard cell design approach in combination with an automation framework has been developed to ease the design of such systems. The framework discussed here provides the basic functionality such as schematic and layout creation. It is based on manually designed standard cells and technology and topology parameters to steer the automation. The presented methodology drastically reduces the (re-)design time and engineering effort leading to a reduced time-to-market whilst errors occurring in manual executed circuit design can be avoided.
Author(s)
Project(s)
Funder
Bundesministerium für Bildung und Forschung -BMBF-
File(s)
Rights
Use according to copyright law
Language
English