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Hybrid approach to efficient text extraction in complex color images

机译:在复杂彩色图像中有效提取文本的混合方法

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Texture-based methods and connected component (CC) methods have been widely used for text localization. However, these two primary methods have their own strength and weakness. This paper proposes a hybrid approach of the two methods for text localization in complex images. An automatically constructed MLP-based texture classifier can increase the recall rates for complex images with much less user intervention and no explicit feature extraction. The CC-based filtering based on the geometry and shape information enhances the precision rates without affecting overall performance. Then, the time-consuming texture analysis for less relevant pixels is avoided by using CAMShift. Our experimentation shows that the proposed hybrid approach leads to not only robust but also efficient text localization.
机译:基于纹理的方法和连接的组件(CC)方法已被广泛用于文本本地化。但是,这两种主要方法各有优缺点。本文提出了两种方法在复杂图像中的文本定位的混合方法。一个自动构造的基于MLP的纹理分类器可以提高复杂图像的召回率,而无需用户干预,而且无需显式特征提取。基于几何和形状信息的基于CC的过滤可提高精度,而不会影响整体性能。然后,通过使用CAMShift可以避免针对不太相关的像素进行耗时的纹理分析。我们的实验表明,提出的混合方法不仅导致健壮而且有效的文本本地化。

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