比较基于二值和双极边缘特征的目标识别。

Jae-Hyun Jung, Tian Pu, Eli Peli
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引用次数: 1

摘要

图像中亮度突变产生的边缘为目标识别提供了重要的信息。典型的二值边缘图像(白色背景上的黑色边缘或黑色背景上的白色边缘)被用来表示场景中的特征(边缘和尖点)。然而,顶点和边缘的极性可能包含重要的深度信息(来自阴影的深度),这些信息在二值边缘表示中丢失了。在某种程度上,使用双极边缘可以恢复这种深度信息。我们比较了26名受试者的16幅二值边缘图像或双相特征的识别率。双极边缘的目标识别率更高,在复杂背景的场景中提高显著。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Comparing object recognition from binary and bipolar edge features.

Edges derived from abrupt luminance changes in images carry essential information for object recognition. Typical binary edge images (black edges on white background or white edges on black background) have been used to represent features (edges and cusps) in scenes. However, the polarity of cusps and edges may contain important depth information (depth from shading) which is lost in the binary edge representation. This depth information may be restored, to some degree, using bipolar edges. We compared recognition rates of 16 binary edge images, or bipolar features, by 26 subjects. Object recognition rates were higher with bipolar edges and the improvement was significant in scenes with complex backgrounds.

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