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Geographic and Style Models for Historical Map Alignment and Toponym Recognition

机译:历史地图对齐和地名识别的地理和样式模型

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Recognizing the place names within textual labels on historical maps is complicated by many factors, such as curvilinear baselines and dense overlap with other textual or graphical elements. However, maps' alignment with known geography and inter-label typographic style consistencies provide strong cues for resolving uncertainty and reducing text recognition errors. We present a unified probabilistic model to leverage the mutual information between text labels and styles and their geographical locations and categories. This work also introduces likelihood functions to model label placement for polyline and polygon geographical features, such as rivers or provinces. We evaluate the methods on 30 maps from 1866-1927. By interleaving automated map georeferencing with text recognition, we reduce word recognition error by 36% over OCR alone. Incorporating category-style links reduces toponym matching error by 32%.
机译:由于许多因素(例如曲线基线以及与其他文本或图形元素的密集重叠),使历史地图的文本标签内的地名识别变得复杂。但是,地图与已知地理位置和标签间印刷样式一致性的对齐方式为解决不确定性和减少文本识别错误提供了强有力的线索。我们提出了一个统一的概率模型,以利用文本标签和样式及其地理位置和类别之间的相互信息。这项工作还引入了似然函数,以建模折线和多边形地理特征(如河流或省)的标签放置。我们在1866-1927年的30幅地图上评估了这些方法。通过将自动地图地理配准与文本识别相交织,与单独的OCR相比,我们将字词识别错误减少了36%。合并类别样式的链接可将地名匹配错误减少32%。

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