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An Evaluation of Image Feature Detectors Based on Spatial Density and Temporal Robustness in Microsurgical Image Processing

机译:基于微型图像处理的空间密度和时间鲁棒性图像特征检测器的评估

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摘要

Optical image processing is part of many applications used for brain surgeries. Microscope camera, or patient movement, like brain-movement through the pulse or a change in the liquor, can cause the image processing to fail. One option to compensate movement is feature detection and spatial allocation. This allocation is based on image features. The frame wise matched features are used to calculate the transformation matrix. The goal of this project was to evaluate different feature detectors based on spatial density and temporal robustness to reveal the most appropriate feature. The feature detectors included corner-, and blob-detectors and were applied on nine videos. These videos were taken during brain surgery with surgical microscopes and include the RGB channels. The evaluation showed that each detector detected up to 10 features for nine frames. The feature detector KAZE resulted in being the best feature detector in both density and robustness.
机译:光学图像处理是用于脑手术的许多应用的一部分。显微镜照相机或患者运动,如脉搏或液体的变化,可以导致图像处理失败。补偿运动的一个选项是特征检测和空间分配。此分配基于图像特征。帧WISE匹配的功能用于计算变换矩阵。该项目的目标是根据空间密度和时间稳健性来评估不同的特征探测器,以揭示最合适的特征。特征探测器包括角,且BLOB检测器,并应用于九个视频。这些视频在脑手术中拍摄,手术显微镜,包括RGB频道。评估显示,每个检测器检测到九个帧的10个特征。特征检测器Kaze导致密度和稳健性的最佳特征检测器。

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