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Generic Shape Classification for Retrieval

机译:检索的通用形状分类

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摘要

We present a shape classification technique for structural content-based retrieval of two-dimensional vector drawings. Our method has two distinguishing features. For one, it relies on explicit hierarchical descriptions of drawing structure by means of spatial relationships and shape characterization. However, unlike other approaches which attempt rigid shape classification, our method relies on estimating the likeness of a given shape to a restricted set of simple forms. It yields for a given shape, a feature vector describing its geometric properties, which is invariant to scale, rotation and translation. This provides the advantage of being able to characterize arbitrary two-dimensional shapes with few restrictions. Moreover, our technique seemingly works well when compared to established methods for two dimensional shapes.
机译:我们提出一种形状分类技术,用于基于结构内容的二维矢量图形检索。我们的方法有两个明显的特点。首先,它依赖于通过空间关系和形状表征对图形结构进行明确的层次描述。但是,与其他尝试进行刚性形状分类的方法不同,我们的方法依赖于估计给定形状与一组受限制的简单形式的相似度。对于给定的形状,它会生成描述其几何特性的特征向量,该特征向量的大小,旋转和平移不变。这提供了能够以很少的限制来表征任意二维形状的优点。此外,与针对二维形状的既定方法相比,我们的技术似乎运行良好。

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