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Exploring Warp Criticality in Near-Threshold GPGPU Applications Using a Dynamic Choke Point Analysis.

, , , , and . IEEE Trans. Very Large Scale Integr. Syst., 28 (2): 456-466 (2020)

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Automated two stage detection and analyzer system in multipartitioned Digital Microfluidic Biochips., , , , and . ISCAS, page 1836-1840. IEEE, (2014)Trident: A comprehensive timing error resilient technique against choke points at NTC., , and . DATE, page 355-360. IEEE, (2018)Trident: Comprehensive Choke Error Mitigation in NTC Systems., , and . IEEE Trans. Very Large Scale Integr. Syst., 26 (11): 2195-2204 (2018)Predicting Critical Warps in Near-Threshold GPGPU Applications using a Dynamic Choke Point Analysis., , , , and . DATE, page 444-449. IEEE, (2019)Dynamic Choke Sensing for Timing Error Resilience in NTC Systems., , , and . IEEE Trans. Very Large Scale Integr. Syst., 26 (1): 1-10 (2018)Exploring Warp Criticality in Near-Threshold GPGPU Applications Using a Dynamic Choke Point Analysis., , , , and . IEEE Trans. Very Large Scale Integr. Syst., 28 (2): 456-466 (2020)ACE-GPU: Tackling Choke Point Induced Performance Bottlenecks in a Near-Threshold Computing GPU., , , , and . ISLPED, page 28:1-28:6. ACM, (2018)FIFA: Exploring a Focally Induced Fault Attack Strategy in Near-Threshold Computing., , , , , , and . IEEE Embed. Syst. Lett., 10 (4): 115-118 (2018)TITAN: Uncovering the Paradigm Shift in Security Vulnerability at Near-Threshold Computing., , , , , and . IEEE Trans. Emerg. Top. Comput., 8 (4): 986-997 (2020)SSAGA: SMs Synthesized for Asymmetric GPGPU Applications., , , , , and . ACM Trans. Design Autom. Electr. Syst., 22 (3): 49:1-49:20 (2017)