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Abstraction Refinement for Large Scale Model Checking
Details
The techniques proposed in this book are fully automatic and are crucial at improving the performance of abstraction refinement. Their application to model checking can significantly increase the model checker's ability to handle large designs. Our experimental studies on some real-world benchmark circuits indicate that these automatic abstraction refinement techniques are the key to applying model checking to industrial-scale systems.
Proposes fully automatic techniques for improving the performance of abstraction refinement The algorithms in this book demonstrate significant improvement over prior techniques Includes supplementary material: sn.pub/extras
Klappentext
Abstraction Refinement for Large Scale Model Checking summarizes recent research on abstraction techniques for model checking large digital systems. Considering both the size of today's digital systems and the capacity of state-of-the-art verification algorithms, abstraction is the only viable solution for the successful application of model checking techniques to industrial-scale designs. This book describes recent research developments in automatic abstraction refinement techniques. The authors address the main challenge in abstraction refinement, i.e., the ability to efficiently reach or come close to the optimum abstraction (the smallest abstract model that proves or refutes the given property). A suite of fully automatic abstraction techniques are proposed to improve the overall computation efficiency. The suite of algorithms presented in this book has demonstrated significant improvement over the prior art; some of them have already been adopted by the EDA companies in their commercial/in-house verification tools.
Abstraction Refinement for Large Scale Model Checking will be of interest to EDA researchers and tool developers, verification engineers, as well as people who are in the general areas of computer science and want to know the state-of-the-art of formal verification.
Inhalt
Symbolic Model Checking.- Abstraction.- Refinement.- Compositional SCC Analysis.- Disjunctive Decomposition.- Far Side Image Computation.- Refining SAT Decision Ordering.- Conclusions.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09781489993953
- Genre Elektrotechnik
- Auflage 2006
- Sprache Englisch
- Lesemotiv Verstehen
- Anzahl Seiten 196
- Größe H235mm x B155mm x T11mm
- Jahr 2014
- EAN 9781489993953
- Format Kartonierter Einband
- ISBN 1489993959
- Veröffentlichung 06.12.2014
- Titel Abstraction Refinement for Large Scale Model Checking
- Autor Chao Wang , Fabio Somenzi , Gary D. Hachtel
- Untertitel Integrated Circuits and Systems
- Gewicht 306g
- Herausgeber Springer US