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G$^{2}$SF-MIAD: Geometry-Guided Score Fusion for Multimodal Industrial Anomaly Detection

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arxiv 2503.10091 v2 pith:E3M6DO6Y submitted 2025-03-13 eess.IV

classification eess.IV
keywords localunderlineanomalydetectionfusionscoreeuclideanfeature
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Industrial quality inspection plays a critical role in modern manufacturing by identifying defective products during production. While single-modality approaches using either 3D point clouds or 2D RGB images suffer from information incompleteness, multimodal anomaly detection offers promise through the complementary fusion of crossmodal data. However, existing methods face challenges in effectively integrating unimodal results and improving discriminative power. To address these limitations, we first reinterpret memory bank-based anomaly scores in single modalities as isotropic Euclidean distances in local feature spaces. Dynamically evolving from Euclidean metrics, we propose a novel \underline{G}eometry-\underline{G}uided \underline{S}core \underline{F}usion (G$^{2}$SF) framework that progressively learns an anisotropic local distance metric as a unified score for the fusion task. Through a geometric encoding operator, a novel Local Scale Prediction Network (LSPN) is proposed to predict direction-aware scaling factors that characterize first-order local feature distributions, thereby enhancing discrimination between normal and anomalous patterns. Additionally, we develop specialized loss functions and score aggregation strategy from geometric priors to ensure both metric generalization and efficacy. Comprehensive evaluations on the MVTec-3D AD and Eyecandies datasets demonstrate the state-of-the-art detection performance of our method, and detailed ablation analysis validates each component's contribution. Our code is available at https://github.com/ctaoaa/G2SF.

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Cited by 1 Pith paper

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  1. IAENet: An Importance-Aware Ensemble Model for 3D Point Cloud-Based Anomaly Detection

    cs.CV 2025-08 conditional novelty 5.0 of 10

    IAENet fuses 2D and 3D anomaly scores with a learned importance-aware weighting and a margin-based selector loss, achieving state-of-the-art point-level localization on MVTec 3D-AD.

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