Scene text detection based on multi-scale SWT and edge filtering

Yuanyuan Feng, Yonghong Song, Yuanlin Zhang · 2016

This paper presents a text detection method based on multi-scale Stroke Width Transform (SWT). First, an image pyramid is built and SWT is performed on each level of the pyramid. Second, edge components are filtered using two novel features, stroke pair ratio (SPR) and edge density of a connected component (EDC). Next, the remaining edge components on each level are grouped into text lines. And these lines are projected back onto a single image and merged. Finally, candidate text lines are verified by integrating block level features and line level features. The multi-scale mechanism makes it possible to detect text defected by reflection or blurring. And the two features are proved to be both effective and efficient in filtering non-text edges. Moreover, experimental results on the ICDAR Robust Reading Competition datasets show that the proposed text detection method provides promising performance.

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