AI Article Synopsis

  • Line charts are essential in scientific and commercial contexts for displaying data trends, but detecting and tracing line paths in these charts is challenging due to complex backgrounds and varying line styles.
  • The paper introduces ChartLine, a new network designed for effective curve detection in line graphs, incorporating advanced features like a Spatial-Sequence Attention Feature Pyramid Network.
  • Extensive testing shows that ChartLine significantly outperforms existing methods, achieving a 94% F-measure on a synthetic dataset, making it a promising solution for tasks like data extraction and quality assessment.

Article Abstract

Line charts are prevalent in scientific documents and commercial data visualization, serving as essential tools for conveying data trends. Automatic detection and tracing of line paths in these charts is crucial for downstream tasks such as data extraction, chart quality assessment, plagiarism detection, and visual question answering. However, line graphs present unique challenges due to their complex backgrounds and diverse curve styles, including solid, dashed, and dotted lines. Existing curve detection algorithms struggle to address these challenges effectively. In this paper, we propose ChartLine, a novel network designed for detecting and tracing curves in line graphs. Our approach integrates a Spatial-Sequence Attention Feature Pyramid Network (SSA-FPN) in both the encoder and decoder to capture rich hierarchical representations of curve structures and boundary features. The model incorporates a Spatial-Sequence Fusion (SSF) module and a Channel Multi-Head Attention (CMA) module to enhance intra-class consistency and inter-class distinction. We evaluate ChartLine on four line chart datasets and compare its performance against state-of-the-art curve detection, edge detection, and semantic segmentation methods. Extensive experiments demonstrate that our method significantly outperforms existing algorithms, achieving an F-measure of 94% on a synthetic dataset.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11548359PMC
http://dx.doi.org/10.3390/s24217015DOI Listing

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