Details
Originalsprache | Englisch |
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Titel des Sammelwerks | ANALOG 2016 - 15. ITG/GMM-Fachtagung |
Herausgeber (Verlag) | VDE Verlag GmbH |
Seiten | 70-74 |
Seitenumfang | 5 |
ISBN (elektronisch) | 9783800742653 |
Publikationsstatus | Veröffentlicht - 2016 |
Veranstaltung | 15. ITG/GMM-Fachtagung ANALOG 2016 - 15th ITG/GMM Conference ANALOG 2016 - Bremen, Deutschland Dauer: 12 Sept. 2016 → 14 Sept. 2016 |
Publikationsreihe
Name | ANALOG 2016 - 15. ITG/GMM-Fachtagung |
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Abstract
Continuously shrinking design sizes facilitated increased integration of multitude of components on a single chip. The performance of conventional simulation methods through analog design has proven insufficient to meet the increasing demands of present mixed-signal circuits. We present an extension of the PRAISE (Piecewise Rapid Analog Integrated Simulation Environment) approach which allows accelerated simulation of analog circuits with extended applicability. In the past, this approach was only applied to piecewise-constant input stimuli (implicitly given by the digital part of analog/mixed-signal circuits). To meet the requirements of realistic mixed-signal simulations we expanded the simulation kernel to handle linear input stimuli. We introduce the changes in the algorithm and discuss runtime and accuracy compared to a conventional simulator.
ASJC Scopus Sachgebiete
- Informatik (insg.)
- Hardware und Architektur
- Informatik (insg.)
- Signalverarbeitung
- Werkstoffwissenschaften (insg.)
- Oberflächen, Beschichtungen und Folien
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- BibTex
- RIS
ANALOG 2016 - 15. ITG/GMM-Fachtagung. VDE Verlag GmbH, 2016. S. 70-74 (ANALOG 2016 - 15. ITG/GMM-Fachtagung).
Publikation: Beitrag in Buch/Bericht/Sammelwerk/Konferenzband › Aufsatz in Konferenzband › Forschung › Peer-Review
}
TY - GEN
T1 - Modeling of Linear Stimuli for Accelerated Mixed-Signal Simulations
AU - Divanbeigi, S.
AU - Lee, H. S.L.
AU - Röhrig, E.
AU - Olbrich, M.
AU - Barke, E.
N1 - Publisher Copyright: © 2016 VDE VERLAG GMBH.
PY - 2016
Y1 - 2016
N2 - Continuously shrinking design sizes facilitated increased integration of multitude of components on a single chip. The performance of conventional simulation methods through analog design has proven insufficient to meet the increasing demands of present mixed-signal circuits. We present an extension of the PRAISE (Piecewise Rapid Analog Integrated Simulation Environment) approach which allows accelerated simulation of analog circuits with extended applicability. In the past, this approach was only applied to piecewise-constant input stimuli (implicitly given by the digital part of analog/mixed-signal circuits). To meet the requirements of realistic mixed-signal simulations we expanded the simulation kernel to handle linear input stimuli. We introduce the changes in the algorithm and discuss runtime and accuracy compared to a conventional simulator.
AB - Continuously shrinking design sizes facilitated increased integration of multitude of components on a single chip. The performance of conventional simulation methods through analog design has proven insufficient to meet the increasing demands of present mixed-signal circuits. We present an extension of the PRAISE (Piecewise Rapid Analog Integrated Simulation Environment) approach which allows accelerated simulation of analog circuits with extended applicability. In the past, this approach was only applied to piecewise-constant input stimuli (implicitly given by the digital part of analog/mixed-signal circuits). To meet the requirements of realistic mixed-signal simulations we expanded the simulation kernel to handle linear input stimuli. We introduce the changes in the algorithm and discuss runtime and accuracy compared to a conventional simulator.
UR - http://www.scopus.com/inward/record.url?scp=85067792831&partnerID=8YFLogxK
M3 - Conference contribution
AN - SCOPUS:85067792831
T3 - ANALOG 2016 - 15. ITG/GMM-Fachtagung
SP - 70
EP - 74
BT - ANALOG 2016 - 15. ITG/GMM-Fachtagung
PB - VDE Verlag GmbH
T2 - 15. ITG/GMM-Fachtagung ANALOG 2016 - 15th ITG/GMM Conference ANALOG 2016
Y2 - 12 September 2016 through 14 September 2016
ER -