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An automatic approach to perform the verification of hardware designs according to the ISO26262 functional safety standard.

, , , , , and . LATS, page 1-6. IEEE, (2017)

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Towards an automatic approach for hardware verification according to ISO 26262 functional safety standard., , , and . IOLTS, page 287-290. IEEE, (2018)A Simulation-Based Approach to Aid Development of Software-Based Hardware Failure Detection and Mitigation Algorithms of a Mobile Robot System., , , and . Sensors, 22 (13): 4665 (2022)Use of Facial Expressions to Improve the Social Acceptance of Level 4 and 5 Automated Driving System Equipped Vehicles., , , and . SoftCOM, page 1-3. IEEE, (2022)Novel Control Flow Checking Implementations for Automotive Software., , , and . SMACD, page 1-4. IEEE, (2023)Real-Time Validation of Fault-Tolerant Mixed-Criticality Systems., , and . IOLTS, page 245-246. IEEE, (2018)A Novel Simulation-Based Approach for ISO 26262 Hazard Analysis and Risk Assessment., , , , and . IOLTS, page 253-254. IEEE, (2019)A Novel Redundant Validation IoT System for Affective Learning Based on Facial Expressions and Biological Signals., , , , , , , , , and . Sensors, 22 (7): 2773 (2022)A New Approach to Selectively Control Flow Checking Methods Compliant with ISO 26262., , and . CF, page 215-216. ACM, (2023)Real-time validation of mixed-criticality applications., , and . LATS, page 1-6. IEEE, (2018)An automatic approach to integration testing for critical automotive software., , , , , and . DTIS, page 1-2. IEEE, (2018)