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Papers/Fused Text Segmentation Networks for Multi-oriented Scene ...

Fused Text Segmentation Networks for Multi-oriented Scene Text Detection

Yuchen Dai, Zheng Huang, Yuting Gao, Youxuan Xu, Kai Chen, Jie Guo, Weidong Qiu

2017-09-11Scene Text DetectionRegion ProposalMulti-Oriented Scene Text DetectionSegmentationSemantic SegmentationText Segmentationobject-detectionObject DetectionText Detection
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Abstract

In this paper, we introduce a novel end-end framework for multi-oriented scene text detection from an instance-aware semantic segmentation perspective. We present Fused Text Segmentation Networks, which combine multi-level features during the feature extracting as text instance may rely on finer feature expression compared to general objects. It detects and segments the text instance jointly and simultaneously, leveraging merits from both semantic segmentation task and region proposal based object detection task. Not involving any extra pipelines, our approach surpasses the current state of the art on multi-oriented scene text detection benchmarks: ICDAR2015 Incidental Scene Text and MSRA-TD500 reaching Hmean 84.1% and 82.0% respectively. Morever, we report a baseline on total-text containing curved text which suggests effectiveness of the proposed approach.

Results

TaskDatasetMetricValueModel
Scene Text DetectionTotal-TextPrecision84.7FTSN
Scene Text DetectionTotal-TextRecall78FTSN
Scene Text DetectionICDAR 2015F-Measure84.1FTSN + MNMS
Scene Text DetectionICDAR 2015Precision88.6FTSN + MNMS
Scene Text DetectionICDAR 2015Recall80FTSN + MNMS
Scene Text DetectionMSRA-TD500F-Measure82FTSN + MNMS
Scene Text DetectionMSRA-TD500Precision87.6FTSN + MNMS
Scene Text DetectionMSRA-TD500Recall77.1FTSN + MNMS

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