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A Scene-Text Synthesis Engine Achieved Through Learning From Decomposed Real-World Data.

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    We introduce DecompST, a new dataset and a Learning-Based Text Synthesis (LBTS) engine to improve synthetic scene-text image generation for training deep learning models. LBTS enhances text integration for better scene text detection performance.

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    Area of Science:

    • Computer Vision
    • Machine Learning
    • Artificial Intelligence

    Background:

    • Scene-text image synthesis is crucial for training deep neural networks, offering accurate annotation data.
    • Existing methods often rely on unsupervised learning due to a lack of suitable datasets, leading to performance limitations.
    • Previous approaches explored rule-based generation and learning-based methods on 2D and 3D surfaces.

    Purpose of the Study:

    • To facilitate research on learning-based scene text synthesis.
    • To introduce a novel dataset (DecompST) and a Learning-Based Text Synthesis (LBTS) engine.
    • To improve the generation of realistic synthetic scene-text images for downstream tasks.

    Main Methods:

    • The DecompST dataset was created from public benchmarks, featuring quadrilateral BBoxes, stroke-level masks, and text-erased images.
    • A Learning-Based Text Synthesis (LBTS) engine was proposed, comprising a text location proposal network (TLPNet) and a text appearance adaptation network (TAANet).
    • TLPNet identifies text embedding regions, while TAANet adjusts text geometry and color to match background context.

    Main Results:

    • The proposed LBTS engine effectively generates synthetic scene-text images.
    • Experiments demonstrated that LBTS produces superior pretraining data for scene text detectors compared to existing methods.
    • The integrated TLPNet and TAANet successfully adapt text instances to background scenes.

    Conclusions:

    • The DecompST dataset and LBTS engine significantly advance the field of scene-text image synthesis.
    • The developed approach enables the creation of high-quality synthetic data for training robust scene text analysis models.
    • The availability of the dataset and code encourages further research and development in this area.