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Glacial geomorphological mapping: A review of approaches and frameworks for best practice

机译:冰川地貌测绘:对最佳实践的方法和框架综述

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摘要

Geomorphological mapping is a well-established method for examining earth surface processes and landscape evolution in a range of environmental contexts. In glacial research, it provides crucial data for a wide range of process-oriented studies and palaeoglaciological reconstructions; in the latter case providing an essential geomorphological framework for establishing glacial chronologies. In recent decades, there have been significant developments in remote sensing and Geographical Information Systems (GIS), with a plethora of high quality remotely-sensed datasets now (often freely) available. Most recently, the emergence of unmanned aerial vehicle (UAV) technology has allowed sub-decimetre scale aerial images and Digital Elevation Models (DEMs) to be obtained. Traditional field mapping methods still have an important role in glacial geomorphology, particularly in cirque glacier, valley glacier and icefield/ice-cap outlet settings. Field mapping is also used in ice sheet settings, but often takes the form of necessarily highly-selective ground-truthing of remote mapping. Given the increasing abundance of datasets and methods available for mapping, effective approaches are necessary to enable assimilation of data and ensure robustness. This paper provides a review and assessment of the various glacial geomorphological methods and datasets currently available, with a focus on their applicability in particular glacial settings. We distinguish two overarching 'work streams' that recognise the different approaches typically used in mapping landforms produced by ice masses of different sizes: (i) mapping of ice sheet geomorphological imprints using a combined remote sensing approach, with some field checking (where feasible); and (ii) mapping of alpine and plateau-style ice mass (cirque glacier, valley glacier, icefield and ice-cap) geomorphological imprints using remote sensing and considerable field mapping. Key challenges to accurate and robust geomorphological mapping are highlighted, often necessitating compromises and pragmatic solutions. The importance of combining multiple datasets and/or mapping approaches is emphasised, akin to multi-proxy approaches used in many Earth Science disciplines. Based on our review, we provide idealised frameworks and general recommendations to ensure best practice in future studies and aid in accuracy assessment, comparison, and integration of geomorphological data. These will be of particular value where geomorphological data are incorporated in large compilations and subsequently used for palaeoglaciological reconstructions. Finally, we stress that robust interpretations of glacial landforms and landscapes invariably requires additional chronological and/or sedimentological evidence, and that such data should ideally be collected as part of a holistic assessment of the overall glacier system.
机译:地貌测绘是一种熟悉的方法,用于检查地球表面过程和在一系列环境环境中的景观演变。在冰川研究中,它为广泛的过程为导向的研究和古学律师的重建提供了重要数据;在后一种情况下,提供了建立冰川时间的基本地貌框架。近几十年来,遥感和地理信息系统(GIS)上存在显着的发展,现在(通常是自由)的高质量远程感测数据集。最近,无人驾驶飞行器(UAV)技术的出现允许获得次级乘积刻度的空中图像和数字高度模型(DEMS)。传统的场地映射方法仍然在冰川地貌中具有重要作用,特别是在冰川冰川,谷冰川和冰野/冰盖出口设置中。现场映射也用于冰片设置,但通常采用远程映射的必然高度选择性地面的形式。鉴于增加的数据集和方法可用于映射,有效的方法是必要的,以实现数据的同化并确保鲁棒性。本文提供了审查和评估目前可用的各种冰川地貌方法和数据集,专注于他们特别是冰川设置的适用性。我们区分了两个总体的“工作流”,认识到通常用于绘制不同尺寸的绘制地貌的不同方法:(i)使用组合遥感方法的冰盖地貌印记的映射,有一些现场检查(可行) ; (ii)使用遥感和相当大的场测绘的高山和高原冰块(Cirque冰川,山谷冰川,岩石,冰帽)的地貌印记。突出显示准确和强大的地貌映射的关键挑战,通常需要妥协和务实的解决方案。强调了组合多个数据集和/或映射方法的重要性,类似于许多地球科学学科中使用的多功能方法。根据我们的评论,我们提供了理想化的框架和一般性建议,以确保未来的研究和辅助准确性评估,比较和地貌数据集成的最佳实践。这些将特别有价值,其中地貌数据掺入大编译中,随后用于古地理性重建。最后,我们强调对冰川地貌和景观的强大解释总是需要额外的时间顺序和/或沉积学证据,并且理想地应收集这些数据作为整体冰川系统的整体评估的一部分。

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