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Extraction of linear structures from LIDAR images using a machine learning approach

机译:利用机器学习方法提取LIDAR图像的线性结构

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For extraction and characterization of archeological structures from LIDar data, most studies focus on manual spotting (vectorization) or automatic image processing (IP), while few studies have examined semi-automated methods based on machine learning (ML). In the context of the Solidar project, after trying to use classical image processing techniques, we propose to reflect on elements to be integrated in ML approaches for a better and a more flexible extraction and characterization of archeological structures discovered in the LiDAR datasets. Indeed, the LiDAR data reveal many varied remains over large geographic areas. Manual digitizing of these remains is a time-consuming activity and does not guarantee an exhaustive recognition of features. This article proposes to present: (1) the archaeological context of this work, (2) the searched objects in this study, (3) the first tests and (4) how the data will be processed in the near future.
机译:用于从LIDAR数据提取和表征考古结构,大多数研究重点关注手动点(矢量化)或自动图像处理(IP),而几个研究已经检查了基于机器学习(ML)的半自动方法。在Solidar项目的上下文中,在尝试使用经典图像处理技术之后,我们建议反映在LIDAR数据集中发现的更好和更灵活的提取和表征在LIDAR数据集中的考古结构的更好和更灵活的提取元件。实际上,激光雷达数据揭示了许多各种各样的地理区域。这些遗骸的手动数字化是一种耗时的活动,并且不保证对特征的详尽识别。本文建议呈现:(1)本工作的考古背景,(2)本研究中的搜索对象,(3)第一次测试和(4)如何在不久的将来处理数据。

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