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An efficient, classification-based approach for grouping pen strokes into objects

机译:一种有效的基于分类的方法,用于将笔触分组为对象

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摘要

Objects in freely drawn sketches often have no spatial or temporal separation, making object identification difficult. We present a two-step stroke-grouping algorithm that first classifies individual strokes according to the type of object to which they belong, and then groups strokes with like classifications into clusters representing individual objects. The first step facilitates clustering by naturally separating the strokes, and both steps fluidly integrate spatial and temporal information. Our single-stroke classifier has comparable accuracy to an existing state-of-the-art single-stroke classifier on text vs. non-text classification, and is significantly more efficient. Furthermore, our classifier is also suitable for applications with more than two classes of strokes. Our approach to grouping is unique in its formulation as an efficient classification task rather than, for example, an expensive search task. In experiments on several types of sketches, our grouping method performed accurately, correctly grouping up to 92% of the ink, with up to 79% of the shapes being perfectly clustered.
机译:自由绘制的草图中的对象通常没有空间或时间上的分隔,从而使对象识别变得困难。我们提出了一种两步式笔划分组算法,该算法首先根据笔划所属的对象的类型对笔划进行分类,然后将具有类似分类的笔划归为代表各个对象的簇。第一步通过自然分离笔划来促进聚类,并且两个步骤都将空间和时间信息流畅地整合在一起。我们的单笔分类器在文本分类和非文本分类方面的准确性与现有的最新单笔分类器相当,并且效率显着提高。此外,我们的分类器还适用于具有两种以上笔划的应用。我们的分组方法在将其表示为有效的分类任务而不是例如昂贵的搜索任务方面具有独特性。在对几种类型的草图进行的实验中,我们的分组方法能够准确执行,正确地将多达92%的墨水正确分组,而多达79%的形状可以完美地聚在一起。

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