Bio-inspired NoC fault tolerant techniques using guaranteed throughput and best effort services

Best Effort (BE) and Guaranteed Throughput services (GT) are the two broad categories of communication services provided in NoC. Few of the existing NoC architectures provide both of these services. GT based services, which are based on circuit switching or connection oriented mechanisms of packet s...

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Main Authors: Sethi, Muhammad Athar Javed, Hussin, Fawnizu Azmadi, Hamid, Nor Hisham
Format: Article
Published: Elsevier 2016
Online Access:http://eprints.utp.edu.my/11930/1/Online%20paper_Bio-inspired%20NoC%20fault%20tolerant%20techniques%20using%20guaranteed.pdf
http://www.sciencedirect.com/science/article/pii/S0167926016000109
http://eprints.utp.edu.my/11930/
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spelling my.utp.eprints.119302017-01-19T08:20:56Z Bio-inspired NoC fault tolerant techniques using guaranteed throughput and best effort services Sethi, Muhammad Athar Javed Hussin, Fawnizu Azmadi Hamid, Nor Hisham Best Effort (BE) and Guaranteed Throughput services (GT) are the two broad categories of communication services provided in NoC. Few of the existing NoC architectures provide both of these services. GT based services, which are based on circuit switching or connection oriented mechanisms of packet switching, are usually preferred for real time traffic while packet switching services are provided by the BE architecture. In this paper, biologically inspired fault tolerant techniques are implemented on these two different services. Biologically inspired techniques offer novel ways of making NoCs fault tolerant; faults in NoCs arise partly due to advanced nanoscale manufacturing processes and the complex communication requirements of the processing elements (PEs). The proposed NoCs fault-tolerant methods (synaptogenesis and sprouting) are adapted from the biological brain׳s robust fault tolerant mechanisms. These techniques are implemented on both BE and GT services. From the experimental results, the BE architecture was efficiently utilizing the bandwidth compared to GT services, while throughput utilization of GT services were better. The accepted traffic (flit/cycle/node) of the BE architecture is 6.31% better than GT architecture while the accepted traffic of the bio-inspired techniques is 72.12% better than traditional fault tolerant techniques. Elsevier 2016 Article PeerReviewed application/pdf http://eprints.utp.edu.my/11930/1/Online%20paper_Bio-inspired%20NoC%20fault%20tolerant%20techniques%20using%20guaranteed.pdf http://www.sciencedirect.com/science/article/pii/S0167926016000109 Sethi, Muhammad Athar Javed and Hussin, Fawnizu Azmadi and Hamid, Nor Hisham (2016) Bio-inspired NoC fault tolerant techniques using guaranteed throughput and best effort services. Integration, the VLSI Journal, 54 (3). pp. 65-96. ISSN 0167-9260 http://eprints.utp.edu.my/11930/
institution Universiti Teknologi Petronas
building UTP Resource Centre
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Petronas
content_source UTP Institutional Repository
url_provider http://eprints.utp.edu.my/
description Best Effort (BE) and Guaranteed Throughput services (GT) are the two broad categories of communication services provided in NoC. Few of the existing NoC architectures provide both of these services. GT based services, which are based on circuit switching or connection oriented mechanisms of packet switching, are usually preferred for real time traffic while packet switching services are provided by the BE architecture. In this paper, biologically inspired fault tolerant techniques are implemented on these two different services. Biologically inspired techniques offer novel ways of making NoCs fault tolerant; faults in NoCs arise partly due to advanced nanoscale manufacturing processes and the complex communication requirements of the processing elements (PEs). The proposed NoCs fault-tolerant methods (synaptogenesis and sprouting) are adapted from the biological brain׳s robust fault tolerant mechanisms. These techniques are implemented on both BE and GT services. From the experimental results, the BE architecture was efficiently utilizing the bandwidth compared to GT services, while throughput utilization of GT services were better. The accepted traffic (flit/cycle/node) of the BE architecture is 6.31% better than GT architecture while the accepted traffic of the bio-inspired techniques is 72.12% better than traditional fault tolerant techniques.
format Article
author Sethi, Muhammad Athar Javed
Hussin, Fawnizu Azmadi
Hamid, Nor Hisham
spellingShingle Sethi, Muhammad Athar Javed
Hussin, Fawnizu Azmadi
Hamid, Nor Hisham
Bio-inspired NoC fault tolerant techniques using guaranteed throughput and best effort services
author_facet Sethi, Muhammad Athar Javed
Hussin, Fawnizu Azmadi
Hamid, Nor Hisham
author_sort Sethi, Muhammad Athar Javed
title Bio-inspired NoC fault tolerant techniques using guaranteed throughput and best effort services
title_short Bio-inspired NoC fault tolerant techniques using guaranteed throughput and best effort services
title_full Bio-inspired NoC fault tolerant techniques using guaranteed throughput and best effort services
title_fullStr Bio-inspired NoC fault tolerant techniques using guaranteed throughput and best effort services
title_full_unstemmed Bio-inspired NoC fault tolerant techniques using guaranteed throughput and best effort services
title_sort bio-inspired noc fault tolerant techniques using guaranteed throughput and best effort services
publisher Elsevier
publishDate 2016
url http://eprints.utp.edu.my/11930/1/Online%20paper_Bio-inspired%20NoC%20fault%20tolerant%20techniques%20using%20guaranteed.pdf
http://www.sciencedirect.com/science/article/pii/S0167926016000109
http://eprints.utp.edu.my/11930/
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score 13.211508