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Toward Dependable AI/ML Hardware: Reliability Strategies Across Architectures and Memory Systems: Survey Paper

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Volume-9 | Multidisciplinary Approaches and Applications Studies in Research and Innovation

Last date : 27-Apr-2025

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Toward Dependable AI/ML Hardware: Reliability Strategies Across Architectures and Memory Systems: Survey Paper


Anshu Naikodi | Ananya R | Archana C K | D Sathya Preetham



Anshu Naikodi | Ananya R | Archana C K | D Sathya Preetham "Toward Dependable AI/ML Hardware: Reliability Strategies Across Architectures and Memory Systems: Survey Paper" Published in International Journal of Trend in Scientific Research and Development (ijtsrd), ISSN: 2456-6470, Volume-9 | Issue-3, June 2025, pp.598-604, URL: https://www.ijtsrd.com/papers/ijtsrd80047.pdf

AI/ML workloads are becoming more widely used while their reliable hardware execution stands as a crucial factor especially when considering aggressive technology advancements and NVM technology adoption. The special session demonstrates extensive research into reliability enhancement methods for AI/ML hardware infrastructure at architectural and system-levels and design-time through neuromorphic and multiprocessor system studies. The discussion highlights three chief technical points which include elevated fault sensitivity of systems and aging mechanics due to voltage effects as well as the sustaining of reliability against hardware decay. The research shows breakthrough approaches which comprise Rox-ANN for efficient ANN implementation and PALP and DATACON methods for PCM memory optimization as well as MNEME and HEBE systems to manage NVM and hybrid memory aging and RENEU for neuromorphic reliability modelling under workload conditions. This work studies system-level methods that integrate thermal-aware task mapping and aging-aware checkpoint distribution and performs a combined analysis between DVFS and replication techniques in multiprocessor task scheduling. These solutions achieve substantial advancements regarding system energy efficiency coupled with increased performance while lengthening the system operational period. Experimental tests performed on SPEC CPU2017 and MiBench as well as diverse ML operations demonstrate the need for implementing early-stage reliability modelling approaches with workload management techniques that understand applications and architecture specifications to develop dependable AI/ML hardware systems.

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IJTSRD80047
Volume-9 | Issue-3, June 2025
598-604
IJTSRD | www.ijtsrd.com | E-ISSN 2456-6470
Copyright © 2019 by author(s) and International Journal of Trend in Scientific Research and Development Journal. This is an Open Access article distributed under the terms of the Creative Commons Attribution License (CC BY 4.0) (http://creativecommons.org/licenses/by/4.0)

International Journal of Trend in Scientific Research and Development - IJTSRD having online ISSN 2456-6470. IJTSRD is a leading Open Access, Peer-Reviewed International Journal which provides rapid publication of your research articles and aims to promote the theory and practice along with knowledge sharing between researchers, developers, engineers, students, and practitioners working in and around the world in many areas like Sciences, Technology, Innovation, Engineering, Agriculture, Management and many more and it is recommended by all Universities, review articles and short communications in all subjects. IJTSRD running an International Journal who are proving quality publication of peer reviewed and refereed international journals from diverse fields that emphasizes new research, development and their applications. IJTSRD provides an online access to exchange your research work, technical notes & surveying results among professionals throughout the world in e-journals. IJTSRD is a fastest growing and dynamic professional organization. The aim of this organization is to provide access not only to world class research resources, but through its professionals aim to bring in a significant transformation in the real of open access journals and online publishing.

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