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Georeferencing Animal Specimen Datasets

机译:地理配准动物标本数据集

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摘要

For biodiversity research, the field of study that is concerned with the richness of species of our planet, it is of the utmost importance that the location of an animal specimen find is known with high precision. Due to specimens often having been collected over the course of many years, their accompanying geographical data is often ambiguous or may be very imprecise. In this article, we detail an approach that utilizes reasoning and external sources to improve the geographical information of animal finds. Our main contribution is to show that adding external domain knowledge improves the ability to georeference locations over traditional methods that focus solely on analyzing geographical information. Additionally, our system is able to output the confidence it has in its decisions through a confidence measure based on the difficulty of the instance and the steps undertaken to disambiguate it. Our results show that adding domain knowledge to the georeferencing process increases the accuracy @5km from 38.9% to 61.7% and from 47.0% to 74.5% @25km. Furthermore, we reduce the mean distance by more than half, from 251.1km to 114.5km, and decrease the number of records for which no reference can be found from 26.2% to 7.4%.
机译:对于涉及我们星球物种丰富性的研究领域而言,生物多样性的研究至关重要,最重要的是要准确知道动物标本的位置。由于通常已收集了许多年的标本,因此其随附的地理数据通常是模棱两可的,或者可能非常不准确。在本文中,我们详细介绍了一种利用推理和外部资源来改善动物发现的地理信息的方法。我们的主要贡献是表明,与仅专注于分析地理信息的传统方法相比,添加外部领域的知识可以提高地理定位的能力。另外,我们的系统能够根据实例的难度和消除实例歧义的步骤,通过置信度度量来输出决策中的置信度。我们的结果表明,在地理配准过程中添加领域知识可以将5km处的精度从38.9%提高到61.7%,将25km处的精度从47.0%提高到74.5%。此外,我们将平均距离减少了一半以上,从251.1km减少到114.5km,并将找不到参考文献的记录数量从26.2%减少到7.4%。

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