Concepedia

Publication | Open Access

DeepXplore

1.2K

Citations

66

References

2017

Year

Abstract

Deep learning (DL) systems are increasingly deployed in safety- and security-critical domains including self-driving cars and malware detection, where the correctness and predictability of a system's behavior for corner case inputs are of great importance. Existing DL testing depends heavily on manually labeled data and therefore often fails to expose erroneous behaviors for rare inputs.

References

YearCitations

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