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ProGIP: Protecting Gradient-Based Input Perturbation Approaches for OOD Detection from Soft Errors
- Joshi, Sumedh Shridhar;
- So, Hwisoo;
- Park, Soyeong;
- Ko, Woobin;
- Jung, Jinhyo;
- 외 4명
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0초록
Undetected out-of-distribution (OOD) inputs pose a significant threat to the reliability of deep learning models, as they may lead to unexpected behaviors during inference. Several studies have proposed effective OOD input detection methods. However, soft errors-another significant threat to reliability-can impact both the classification results of neural network models and the ID/OOD detections of OOD detection methods. To provide a resilient OOD detection solution against soft errors, we analyze the effect of soft errors on neural network models with gradient-based input perturbation (GIP) approaches, which are representative methods for OOD detection. Building on our analysis, we propose ProGIP, which incorporates two software-level range-based fault detectors to protect all execution phases of GIP approaches, including two forward passes and one backward pass. Because it is purely software-based and adds just two scalar comparisons, ProGIP is readily deployable even on resource-constrained embedded platforms. Our ProGIP solution enables GIP approaches to distinguish between ID, OOD, and fault-affected inferences, detecting 97.7% of critical faults with a negligible runtime overhead of only 0.84%. Experimental results with 2.4 million fault injections across various neural networks and OOD detection methods demonstrate ProGIP's effectiveness in ensuring comprehensive reliability against non-malicious threats.
키워드
- 제목
- ProGIP: Protecting Gradient-Based Input Perturbation Approaches for OOD Detection from Soft Errors
- 저자
- Joshi, Sumedh Shridhar; So, Hwisoo; Park, Soyeong; Ko, Woobin; Jung, Jinhyo; Ko, Yohan; Hwang, Uiwon; Lee, Kyoungwoo; Shrivastava, Aviral
- DOI
- 10.1145/3761796
- 발행일
- 2025-09
- 유형
- Article
- 권
- 24
- 호
- 5
- 언어
- ENG
- 출판사
- ASSOC COMPUTING MACHINERY
- 발행국가
- 미국
- ISSN
- E 1558-3465
P 1539-9087