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METIS: Resource and Context-Aware Monitoring of Finite State Properties

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Runtime Verification (RV 2018)

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Abstract

Runtime monitoring of finite state properties may incur large and unpredictable overheads in terms of memory and execution time, which makes its deployment in a production environment challenging. In this work, we present a monitoring approach that investigates the trade-offs between memory overheads of monitoring, execution times of monitoring operations, and error reporting. Our approach is motivated by two key observations. First, there is a prominent behavioral redundancy among monitors. Second, the events on the same or related objects are often temporally segregated. We have implemented our approach in a prototype tool, Metis. Its evaluation indicates that it can reduce the memory footprint effectively and provide compact worst-case execution time bounds to monitoring operations with little to no compromise in error reporting.

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Notes

  1. 1.

    The execution context of an error report is the path of the call graph from the root function to the current function where that error report was triggered.

  2. 2.

    The probability of generating the monitor decreases multiplicatively with the number of monitors that are already in the pool.

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Acknowledgements

We thank Dr. Mohan Dhawan (IBM Research) and the anonymous reviewers for their valuable suggestions. This work was partly supported by Infosys Center for Artificial Intelligence.

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Correspondence to Garvita Allabadi .

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Allabadi, G., Dhar, A., Bashir, A., Purandare, R. (2018). METIS: Resource and Context-Aware Monitoring of Finite State Properties. In: Colombo, C., Leucker, M. (eds) Runtime Verification. RV 2018. Lecture Notes in Computer Science(), vol 11237. Springer, Cham. https://doi.org/10.1007/978-3-030-03769-7_10

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  • DOI: https://doi.org/10.1007/978-3-030-03769-7_10

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