Automated Technology for Verification and Analysis: 9th by Edmund M. Clarke, Paolo Zuliani (auth.), Tevfik Bultan,

By Edmund M. Clarke, Paolo Zuliani (auth.), Tevfik Bultan, Pao-Ann Hsiung (eds.)

This e-book constitutes the refereed court cases of the ninth foreign Symposium on computerized expertise for Verification and research, ATVA 2011, held in Taipei, Taiwan, in October 2011.
The 23 revised usual papers offered including five invited papers, eleven brief papers, and a pair of software papers, have been conscientiously reviewed and chosen from seventy five submissions. The papers deal with all theoretical and functional facets of computerized research, verification and synthesis; hence offering a discussion board for interplay among the local and the overseas study groups and within the field.

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Extra info for Automated Technology for Verification and Analysis: 9th International Symposium, ATVA 2011, Taipei, Taiwan, October 11-14, 2011. Proceedings

Sample text

5 Proposals for Supporting the Development of Software Verification Tools Based on the critical assessment of the present situation we propose a way forward. We first discuss possible evolutions in our community, and note the long-term benefits that can be associated with building recognised tools. We then steer towards solutions of technical problems. 1 Publication Incentives As discussed in Sec. 2, serious development of tools is not rewarded by the evaluation criteria of publication venues. We propose two strategies for improving this situation: Repeatability requirements.

LNCS, vol. 789, pp. 575–597. Springer, Heidelberg (1994) 19. : Reasoning about infinite computations. Information and Computation 115(1), 1–37 (1994) Making Software Verification Tools Really Work Jade Alglave, Alastair F. Donaldson, Daniel Kroening, and Michael Tautschnig Department of Computer Science, University of Oxford, Oxford, UK Abstract. We discuss problems and barriers which stand in the way of producing verification tools that are robust, scalable and integrated in the software development cycle.

X86 or Power), where the model of computation is not sequentially consistent (SC) [38]. Soundness in the presence of weak memory involves considering all possible ways in which memory accesses could be resolved by the hardware, greatly increasing the (already high) complexity of concurrent software analysis. As a result, it is understandable that practical concurrent software verifiers may pragmatically assume an unrealistically strong memory model. If a tool that aims at handling concurrent programs running on modern multicores supposes SC to be the execution model [26], the tool is strictly unsound, yet perhaps practically useful in finding concurrency bugs or increasing confidence in the correctness of concurrent software.

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