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A comparison of global and regional open datasets for urban greenspace mapping

机译:城市绿地空间映射全球和区域开放数据集的比较

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摘要

Greenspace has positive influences on urban environment and human health, and thus it is desirable to acquire data for (urban) greenspace mapping. Nowadays, global and regional open land-use/land-cover datasets have become essential sources for greenspace mapping, but few studies have quantitatively compared them. To fill this gap, this study carries out a quantitative comparison of six global and regional open datasets (CGLS-LC100, CLC, GLC30, UA, FROM-GLC10 and OSM) for greenspace mapping. First of all, the most appropriate land-use/landcover classes selected as greenspace are analyzed for each open dataset; then, different open datasets are evaluated and compared in terms of five measures (accuracy, precision, recall, F1-score and green coverage rate). Five urban areas in UK are chosen as study areas. Two categories of reference datasets are used for evaluation, including an Ordnance Survey (OS) greenspace dataset in UK and a number of sampling points classified by referring to Google Earth. Results show that: the OSM dataset performs the best, while comparing with the OS dataset (characterized by a narrowly interpreted greenspace); and the FROM-GLC10 dataset performs the best, while comparing with the sampling points (characterized by a broadly interpreted greenspace). Moreover, by using these two open datasets, most quantitative results are close to or higher than 80 %, in terms of the accuracy, precision, recall and F1-score; in most cases there also is the smallest difference between using these two open datasets and corresponding reference datasets, in terms of the green coverage rate. These findings have benefits for researchers and planners to choose an appropriate open dataset for greenspace mapping.
机译:绿色空间对城市环境和人类健康有着积极的影响,因此需要获取(城市)绿色空间制图的数据。如今,全球和区域开放的土地利用/土地覆盖数据集已成为绿色空间制图的重要来源,但很少有研究对它们进行定量比较。为了填补这一空白,本研究对绿色空间制图的六个全球和区域开放数据集(CGLS-LC100、CLC、GLC30、UA、FROM-GLC10和OSM)进行了定量比较。首先,针对每个开放数据集,分析被选为绿地的最合适的土地利用/土地覆盖类别;然后,从五个方面(准确度、精密度、召回率、F1分数和绿色覆盖率)对不同的开放数据集进行评估和比较。选择英国的五个城市地区作为研究区域。评估中使用了两类参考数据集,包括英国的一个军械调查(OS)绿色空间数据集和一系列参考谷歌地球分类的采样点。结果表明:OSM数据集的性能最好,而与OS数据集(以狭义解释的绿色空间为特征)相比;与采样点相比,FROM-GLC10数据集的性能最好(其特点是具有广泛解释的绿色空间)。此外,通过使用这两个开放数据集,大多数定量结果在准确性、精密度、召回率和F1分数方面接近或高于80%;在大多数情况下,就绿色覆盖率而言,使用这两个开放数据集和相应的参考数据集之间的差异也最小。这些发现有利于研究人员和规划者为绿色空间制图选择合适的开放数据集。

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