NOVEL RESOURCE EFFICIENT CIRCUIT DESIGNS FOR REBOOTING COMPUTING

CMOS based computing is reaching its limits. To take computation beyond Moores law (the number of transistors and hence processing power on a chip doubles every 18 months to 3 years) requires research explorations in (i) new materials, devices, and processes, (ii) new architectures and algorithms, (...

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Main Author: Thogarcheti, Sai Subramanya Varun
Format: Others
Published: UKnowledge 2017
Subjects:
Online Access:https://uknowledge.uky.edu/ece_etds/109
https://uknowledge.uky.edu/cgi/viewcontent.cgi?article=1117&context=ece_etds
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spelling ndltd-uky.edu-oai-uknowledge.uky.edu-ece_etds-11172019-10-16T04:28:25Z NOVEL RESOURCE EFFICIENT CIRCUIT DESIGNS FOR REBOOTING COMPUTING Thogarcheti, Sai Subramanya Varun CMOS based computing is reaching its limits. To take computation beyond Moores law (the number of transistors and hence processing power on a chip doubles every 18 months to 3 years) requires research explorations in (i) new materials, devices, and processes, (ii) new architectures and algorithms, (iii) new paradigm of logic bit representation. The focus is on fundamental new ways to compute under the umbrella of rebooting computing such as spintronics, quantum computing, adiabatic and reversible computing. Therefore, this thesis highlights explicitly Quantum computing and Adiabatic logic, two new computing paradigms that come under the umbrella of rebooting computing. Quantum computing is investigated for its promising application in high-performance computing. The first contribution of this thesis is the design of two resource-efficient designs for quantum integer division. The first design is based on non-restoring division algorithm and the second one is based on restoring division algorithm. Both the designs are compared and shown to be superior to the existing work in terms of T-count and T-depth. The proliferation of IoT devices which work on low-power also has drawn interests to the rebooting computing. Hence, the second contribution of this thesis is proving that Adiabatic Logic is a promising candidate for implementation in IoT devices. The adiabatic logic family called Symmetric Pass Gate Adiabatic Logic (SPGAL) is implemented in PRESENT-80 lightweight algorithm. Adiabatic Logic is extended to emerging transistor devices. 2017-01-01T08:00:00Z text application/pdf https://uknowledge.uky.edu/ece_etds/109 https://uknowledge.uky.edu/cgi/viewcontent.cgi?article=1117&context=ece_etds Theses and Dissertations--Electrical and Computer Engineering UKnowledge Quantum Computing Adiabatic Logic Computer Engineering Electrical and Computer Engineering
collection NDLTD
format Others
sources NDLTD
topic Quantum Computing
Adiabatic Logic
Computer Engineering
Electrical and Computer Engineering
spellingShingle Quantum Computing
Adiabatic Logic
Computer Engineering
Electrical and Computer Engineering
Thogarcheti, Sai Subramanya Varun
NOVEL RESOURCE EFFICIENT CIRCUIT DESIGNS FOR REBOOTING COMPUTING
description CMOS based computing is reaching its limits. To take computation beyond Moores law (the number of transistors and hence processing power on a chip doubles every 18 months to 3 years) requires research explorations in (i) new materials, devices, and processes, (ii) new architectures and algorithms, (iii) new paradigm of logic bit representation. The focus is on fundamental new ways to compute under the umbrella of rebooting computing such as spintronics, quantum computing, adiabatic and reversible computing. Therefore, this thesis highlights explicitly Quantum computing and Adiabatic logic, two new computing paradigms that come under the umbrella of rebooting computing. Quantum computing is investigated for its promising application in high-performance computing. The first contribution of this thesis is the design of two resource-efficient designs for quantum integer division. The first design is based on non-restoring division algorithm and the second one is based on restoring division algorithm. Both the designs are compared and shown to be superior to the existing work in terms of T-count and T-depth. The proliferation of IoT devices which work on low-power also has drawn interests to the rebooting computing. Hence, the second contribution of this thesis is proving that Adiabatic Logic is a promising candidate for implementation in IoT devices. The adiabatic logic family called Symmetric Pass Gate Adiabatic Logic (SPGAL) is implemented in PRESENT-80 lightweight algorithm. Adiabatic Logic is extended to emerging transistor devices.
author Thogarcheti, Sai Subramanya Varun
author_facet Thogarcheti, Sai Subramanya Varun
author_sort Thogarcheti, Sai Subramanya Varun
title NOVEL RESOURCE EFFICIENT CIRCUIT DESIGNS FOR REBOOTING COMPUTING
title_short NOVEL RESOURCE EFFICIENT CIRCUIT DESIGNS FOR REBOOTING COMPUTING
title_full NOVEL RESOURCE EFFICIENT CIRCUIT DESIGNS FOR REBOOTING COMPUTING
title_fullStr NOVEL RESOURCE EFFICIENT CIRCUIT DESIGNS FOR REBOOTING COMPUTING
title_full_unstemmed NOVEL RESOURCE EFFICIENT CIRCUIT DESIGNS FOR REBOOTING COMPUTING
title_sort novel resource efficient circuit designs for rebooting computing
publisher UKnowledge
publishDate 2017
url https://uknowledge.uky.edu/ece_etds/109
https://uknowledge.uky.edu/cgi/viewcontent.cgi?article=1117&context=ece_etds
work_keys_str_mv AT thogarchetisaisubramanyavarun novelresourceefficientcircuitdesignsforrebootingcomputing
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