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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Saliency and semantic processing: Extracting forest cover from historical topographic maps
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Saliency and semantic processing: Extracting forest cover from historical topographic maps

机译:显着性和语义处理:从历史地形图中提取森林覆盖物

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摘要

A multi-step recognition process is developed for extracting compound forest cover information from manually produced scanned historical topographic maps of the 19th century. This information is a unique data source for GIS-based land cover change modeling. Based on salient features in the image the steps to be carried out are character recognition, line detection and structural analysis of forest symbols. Semantic expansion implying the meanings of objects is applied for final forest cover extraction. The procedure resulted in high accuracies of 94% indicating a potential for automatic and robust extraction of forest cover from larger areas. (c) 2005 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:开发了一种多步识别过程,用于从19世纪的手动生产的扫描历史地形图中提取复合森林覆盖信息。 此信息是基于GIS的土地覆盖变化建模的唯一数据源。 基于图像中的显着特征,执行步骤是森林符号的性质识别,线路检测和结构分析。 语义膨胀意味着对物体的含义适用于最终森林覆盖提取。 该过程导致高精度为94%,表明来自较大区域的自动和强大提取森林覆盖的潜力。 (c)2005年模式识别社会。 elsevier有限公司出版。保留所有权利。

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