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Assessment of multiresolution segmentation for delimiting drumlins in digital elevation models

机译:评估数字高程模型中界定鼓林的多分辨率分割

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摘要

Mapping or “delimiting” landforms is one of geomorphology's primary tools. Computer-based techniques such as land-surface segmentation allow the emulation of the process of manual landform delineation. Land-surface segmentation exhaustively subdivides a digital elevation model (DEM) into morphometrically-homogeneous irregularly-shaped regions, called terrain segments. Terrain segments can be created from various land-surface parameters (LSP) at multiple scales, and may therefore potentially correspond to the spatial extents of landforms such as drumlins. However, this depends on the segmentation algorithm, the parameterization, and the LSPs. In the present study we assess the widely used multiresolution segmentation (MRS) algorithm for its potential in providing terrain segments which delimit drumlins. Supervised testing was based on five 5-m DEMs that represented a set of 173 synthetic drumlins at random but representative positions in the same landscape. Five LSPs were tested, and four variants were computed for each LSP to assess the impact of median filtering of DEMs, and logarithmic transformation of LSPs. The testing scheme (1) employs MRS to partition each LSP exhaustively into 200 coarser scales of terrain segments by increasing the scale parameter (SP), (2) identifies the spatially best matching terrain segment for each reference drumlin, and (3) computes four segmentation accuracy metrics for quantifying the overall spatial match between drumlin segments and reference drumlins. Results of 100 tests showed that MRS tends to perform best on LSPs that are regionally derived from filtered DEMs, and then log-transformed. MRS delineated 97% of the detected drumlins at SP values between 1 and 50. Drumlin delimitation rates with values up to 50% are in line with the success of manual interpretations. Synthetic DEMs are well-suited for assessing landform quantification methods such as MRS, since subjectivity in the reference data is avoided which increases the reliability, validity and applicability of results.
机译:映射或“划定”地形是地貌学的主要工具之一。基于计算机的技术(例如,地表分割)可以模拟人工地形描述的过程。地表分割将数字高程模型(DEM)彻底细分为形态均匀的不规则形状区域,称为地形部分。可以从多种尺度上的各种陆面参数(LSP)创建地形段,因此可能潜在地对应于地貌(如鼓林)的空间范围。但是,这取决于分段算法,参数化和LSP。在本研究中,我们评估了广泛使用的多分辨率分割(MRS)算法的潜力,该算法可提供界定鼓林的地形片段。监督测试基于五个5-m DEM,这些DEM代表一组173个合成鼓林,它们在相同景观中随机但有代表性。测试了五个LSP,并为每个LSP计算了四个变量,以评估DEM的中值滤波和LSP的对数转换的影响。测试方案(1)使用MRS通过增加比例参数(SP)将每个LSP彻底地划分为200个较粗的地形段,(2)为每个参考drumlin识别空间上最匹配的地形段,并且(3)计算四个分割精度度量标准,用于量化感光鼓段和参考感光鼓之间的整体空间匹配。 100个测试的结果表明,MRS倾向于在从过滤的DEM区域派生,然后进行对数转换的LSP上表现最佳。 MRS在1到50之间的SP值下勾勒出了97%的检测出的鼓膜。Drumlin的定界率高达50%与手动解释的成功相符。合成DEM非常适合评估地形定量方法(例如MRS),因为避免了参考数据的主观性,从而增加了结果的可靠性,有效性和适用性。

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