日本フィジカルAI新聞

世界のフィジカルAIを、日本語で。

週刊ニュースレター購読
視覚場所認識arXiv:2606.24234v2

外洋から船内へ:海事認識と船内点検のためのクロスシーン視覚場所認識ProteusVPR

From Open Waters to Enclosed Cabins: ProteusVPR for Cross-Scene Visual Place Recognition in Maritime Perception and Cabin Inspection

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船舶環境での視覚場所認識の課題に対処するため、2段階の検索・精密化フレームワークProteusVPRを提案し、新しい8Kパノラマ船舶データセットXHZで精度を大幅に向上させた。

著者: Zexi Chen, Zitai Huang, Qiwen Gu, Zhiqi Li, Shengli Dong, Chenlei Wang, Junqiao Zhao, Hongdong Wang, Bing Han

分類: cs.CV, cs.RO

原文アブストラクト

Autonomous robotic inspection in maritime environments presents unique challenges for Visual Place Recognition (VPR) due to cross-scene perceptual shifts. Robots navigating ship-borne environments must transition between visually distinct domains: open decks with sparse textures and severe illumination changes, and enclosed cabins with repetitive structures and high visual ambiguity. Existing VPR methods, designed primarily for urban or indoor scenes, fail to generalize reliably across these starkly different scenarios. To address this, we propose ProteusVPR, a two-stage retrieval-refinement framework. The first stage employs any standard VPR model for initial image retrieval. The second stage introduces a geometric-visual estimation network that fuses the retrieved image with two temporally preceding frames, incorporating geometric descriptors, a local affine coordinate system, and camera azimuth encoding to achieve precise localization. To support this task, we introduce the XHZ dataset, an 8K-panoramic ship-borne dataset collected from an operational vessel, featuring multi-floor cabin structures, deck transition zones, and strict query-database separation for rigorous evaluation. Extensive experiments on the XHZ dataset demonstrate that ProteusVPR consistently improves the localization accuracy across multiple VPR backbones, reducing mean localization error by over 60\% on average and that ProteusVPR offers an effective and robust solution for precise visual localization in challenging, cross-scene maritime environments.

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