Bio-Inspired Distributed Constrained Optimization Technique and its Application in Dynamic Thermal Management

The stomatal network in plants is a well-characterized biological system that hypothetically solves the constrained optimization problem of maximizing CO2 uptake from the air while constraining evaporative water loss during the process of photosynthesis. There are numerous such constrained optimizat...

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Main Author: Chandrasekaran, Saranya
Format: Others
Published: DigitalCommons@USU 2010
Subjects:
Online Access:https://digitalcommons.usu.edu/etd/701
https://digitalcommons.usu.edu/cgi/viewcontent.cgi?article=1697&context=etd
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spelling ndltd-UTAHS-oai-digitalcommons.usu.edu-etd-16972019-10-13T05:41:39Z Bio-Inspired Distributed Constrained Optimization Technique and its Application in Dynamic Thermal Management Chandrasekaran, Saranya The stomatal network in plants is a well-characterized biological system that hypothetically solves the constrained optimization problem of maximizing CO2 uptake from the air while constraining evaporative water loss during the process of photosynthesis. There are numerous such constrained optimization problems present in the real world as well as in computer science. This thesis work attempts to solve one such constrained optimization problem in a distributed manner by taking a cue from the dynamics of stomatal networks. The problem considered here is Dynamic Thermal Management (DTM) in a multi-processing element system in computing. There have been several approaches in the past that tried to solve the problem of DTM by varying the frequency of operation of blocks in the computing system. The selection of frequencies for DTM such that overall performance is maximized while temperature is constrained is a non-deterministic polynomial-time (NP) hard problem. In this thesis, a distributed approach to solve the problem of DTM using a cellular neural network is proposed. A cellular neural network is used to mimic the stomatal network with slight variations based on the problem considered. 2010-05-01T07:00:00Z text application/pdf https://digitalcommons.usu.edu/etd/701 https://digitalcommons.usu.edu/cgi/viewcontent.cgi?article=1697&context=etd Copyright for this work is held by the author. Transmission or reproduction of materials protected by copyright beyond that allowed by fair use requires the written permission of the copyright owners. Works not in the public domain cannot be commercially exploited without permission of the copyright owner. Responsibility for any use rests exclusively with the user. For more information contact Andrew Wesolek (andrew.wesolek@usu.edu). All Graduate Theses and Dissertations DigitalCommons@USU bio-inspired constrained optimization technique application dynamic thermal management Computer Engineering
collection NDLTD
format Others
sources NDLTD
topic bio-inspired
constrained optimization technique
application
dynamic thermal management
Computer Engineering
spellingShingle bio-inspired
constrained optimization technique
application
dynamic thermal management
Computer Engineering
Chandrasekaran, Saranya
Bio-Inspired Distributed Constrained Optimization Technique and its Application in Dynamic Thermal Management
description The stomatal network in plants is a well-characterized biological system that hypothetically solves the constrained optimization problem of maximizing CO2 uptake from the air while constraining evaporative water loss during the process of photosynthesis. There are numerous such constrained optimization problems present in the real world as well as in computer science. This thesis work attempts to solve one such constrained optimization problem in a distributed manner by taking a cue from the dynamics of stomatal networks. The problem considered here is Dynamic Thermal Management (DTM) in a multi-processing element system in computing. There have been several approaches in the past that tried to solve the problem of DTM by varying the frequency of operation of blocks in the computing system. The selection of frequencies for DTM such that overall performance is maximized while temperature is constrained is a non-deterministic polynomial-time (NP) hard problem. In this thesis, a distributed approach to solve the problem of DTM using a cellular neural network is proposed. A cellular neural network is used to mimic the stomatal network with slight variations based on the problem considered.
author Chandrasekaran, Saranya
author_facet Chandrasekaran, Saranya
author_sort Chandrasekaran, Saranya
title Bio-Inspired Distributed Constrained Optimization Technique and its Application in Dynamic Thermal Management
title_short Bio-Inspired Distributed Constrained Optimization Technique and its Application in Dynamic Thermal Management
title_full Bio-Inspired Distributed Constrained Optimization Technique and its Application in Dynamic Thermal Management
title_fullStr Bio-Inspired Distributed Constrained Optimization Technique and its Application in Dynamic Thermal Management
title_full_unstemmed Bio-Inspired Distributed Constrained Optimization Technique and its Application in Dynamic Thermal Management
title_sort bio-inspired distributed constrained optimization technique and its application in dynamic thermal management
publisher DigitalCommons@USU
publishDate 2010
url https://digitalcommons.usu.edu/etd/701
https://digitalcommons.usu.edu/cgi/viewcontent.cgi?article=1697&context=etd
work_keys_str_mv AT chandrasekaransaranya bioinspireddistributedconstrainedoptimizationtechniqueanditsapplicationindynamicthermalmanagement
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