Core level thermal estimation techniques for early design space exploration

The primary objective of this thesis is to develop a methodology for fast, yet accurate temperature estimation during design space exploration. Power and temperature of modern day systems have become important metrics in addition to performance. Static and dynamic power dissipation leads to an incre...

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Main Author: Gandhi, Darshan Dhimantkumar
Format: Others
Language:en
Published: 2014
Subjects:
Online Access:http://hdl.handle.net/2152/25991
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spelling ndltd-UTEXAS-oai-repositories.lib.utexas.edu-2152-259912015-09-20T17:25:30ZCore level thermal estimation techniques for early design space explorationGandhi, Darshan DhimantkumarHost-compiled simulationThermal characterizationThe primary objective of this thesis is to develop a methodology for fast, yet accurate temperature estimation during design space exploration. Power and temperature of modern day systems have become important metrics in addition to performance. Static and dynamic power dissipation leads to an increase in temperature, which creates cooling and packaging issues. Furthermore, the transient thermal profile determines temperature gradients, hotspots and thermal cycles. Traditional solutions rely on cycle-accurate simulations of detailed micro-architectural structures and are slow. The thesis shows that the periodic power estimation is the key bottleneck in such approaches. It also demonstrates an approach (FastSpot) that integrates accurate thermal estimation into existing host-compiled simulations. The developed methodology can incorporate different sampling-based thermal models. It achieves a 32000x increase in simulation throughput for temperature trace generation, while incurring low measurement errors (0.06 K- transient,0.014 K- steady-state) compared to a cycle-accurate reference method.text2014-09-18T17:49:25Z2014-052014-05-27May 20142014-09-18T17:49:25ZThesisapplication/pdfhttp://hdl.handle.net/2152/25991en
collection NDLTD
language en
format Others
sources NDLTD
topic Host-compiled simulation
Thermal characterization
spellingShingle Host-compiled simulation
Thermal characterization
Gandhi, Darshan Dhimantkumar
Core level thermal estimation techniques for early design space exploration
description The primary objective of this thesis is to develop a methodology for fast, yet accurate temperature estimation during design space exploration. Power and temperature of modern day systems have become important metrics in addition to performance. Static and dynamic power dissipation leads to an increase in temperature, which creates cooling and packaging issues. Furthermore, the transient thermal profile determines temperature gradients, hotspots and thermal cycles. Traditional solutions rely on cycle-accurate simulations of detailed micro-architectural structures and are slow. The thesis shows that the periodic power estimation is the key bottleneck in such approaches. It also demonstrates an approach (FastSpot) that integrates accurate thermal estimation into existing host-compiled simulations. The developed methodology can incorporate different sampling-based thermal models. It achieves a 32000x increase in simulation throughput for temperature trace generation, while incurring low measurement errors (0.06 K- transient,0.014 K- steady-state) compared to a cycle-accurate reference method. === text
author Gandhi, Darshan Dhimantkumar
author_facet Gandhi, Darshan Dhimantkumar
author_sort Gandhi, Darshan Dhimantkumar
title Core level thermal estimation techniques for early design space exploration
title_short Core level thermal estimation techniques for early design space exploration
title_full Core level thermal estimation techniques for early design space exploration
title_fullStr Core level thermal estimation techniques for early design space exploration
title_full_unstemmed Core level thermal estimation techniques for early design space exploration
title_sort core level thermal estimation techniques for early design space exploration
publishDate 2014
url http://hdl.handle.net/2152/25991
work_keys_str_mv AT gandhidarshandhimantkumar corelevelthermalestimationtechniquesforearlydesignspaceexploration
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