Abstract
Ensuring reliability is paramount in deep learning, particularly within the domain of medical imaging, where diagnostic decisions often hinge on model outputs. The capacity to separate out-ofdistribution (OOD) samples has proven to be a valuable indicator of a model’s reliability in research. In medical imaging, this is especially critical, as identifying OOD inputs can help flag potential anomalies
that might otherwise go undetected. While many OOD detection methods rely on feature or logit space representations, recent works suggest these approaches may not fully capture OOD diversity. To address this, we propose a novel OOD scoring mechanism, called NERO, that leverages neuron-level relevance at the feature layer. Specifically, we cluster neuron-level relevance for each in-distribution (ID) class to form representative centroids and introduce a relevance distance metric to quantify a new sample’s deviation from these centroids, enhancing OOD separability. Additionally, we refine performance by incorporating scaled relevance in the bias term and combining feature norms. Our framework also enables explainable OOD detection. We validate its effectiveness across multiple deep learning architectures on the gastrointestinal imaging benchmarks Kvasir and GastroVision, achieving improvements over
state-of-the-art OOD detection methods.
that might otherwise go undetected. While many OOD detection methods rely on feature or logit space representations, recent works suggest these approaches may not fully capture OOD diversity. To address this, we propose a novel OOD scoring mechanism, called NERO, that leverages neuron-level relevance at the feature layer. Specifically, we cluster neuron-level relevance for each in-distribution (ID) class to form representative centroids and introduce a relevance distance metric to quantify a new sample’s deviation from these centroids, enhancing OOD separability. Additionally, we refine performance by incorporating scaled relevance in the bias term and combining feature norms. Our framework also enables explainable OOD detection. We validate its effectiveness across multiple deep learning architectures on the gastrointestinal imaging benchmarks Kvasir and GastroVision, achieving improvements over
state-of-the-art OOD detection methods.
| Original language | English |
|---|---|
| DOIs | |
| Publication status | Accepted/In press - 1 Jul 2025 |
| Event | MICCAI 2025: The 28th International Conference on Medical Image Computing and Computer Assisted Intervention - DAEJEON CONVENTION CENTER, Daejon, Korea, Democratic People's Republic of Duration: 23 Sept 2025 → 27 Sept 2025 https://conferences.miccai.org/2025/en/ |
Conference
| Conference | MICCAI 2025: The 28th International Conference on Medical Image Computing and Computer Assisted Intervention |
|---|---|
| Abbreviated title | MICCAI 2025 |
| Country/Territory | Korea, Democratic People's Republic of |
| City | Daejon |
| Period | 23/09/25 → 27/09/25 |
| Internet address |
Bibliographical note
The proceedings will be published as Lecture Notes in Computer Science (LNCS).Keywords
- OOD
- Neuron relevance
- Gastrointestinal imaging
- Explainable
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