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Feature matching for underwater image via superpixel tracking

机译:通过超像素跟踪对水下图像进行特征匹配

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摘要

Feature matching is fundamental to many vision tasks. Due to the low visibility of images in underwater environments, traditional pixels-based matching methods suffer from miss-matching or error-matching. Recently, Superpixel based features have been applied to image feature analysis. However, most of existing methods dedicate to rectified stereo matching with images captured in the air. This paper presents a novel feature matching scheme aiming at underwater images. It targets the un-rectified image pair from the video sequence. The Superpixel matching process is fulfilled with multiclass labelling based on Markov Random Field (MRF). Experiments show that the proposed method produces competitive performance.
机译:特征匹配是许多视觉任务的基础。由于在水下环境中图像的可见性低,传统的基于像素的匹配方法会遭受误匹配或错误匹配的困扰。近来,基于超像素的特征已被应用于图像特征分析。然而,大多数现有方法致力于与在空中捕获的图像进行校正的立体匹配。本文提出了一种针对水下图像的新颖特征匹配方案。它针对视频序列中未校正的图像对。通过基于马尔可夫随机场(MRF)的多类标记来实现超像素匹配过程。实验表明,该方法具有良好的竞争性能。

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