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Transferability and the effect of colour calibration during multi-image classification of Arctic vegetation change

机译:北极植被变化的多图像分类中的可转移性和颜色校准的效果

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摘要

Mapping changes in vegetation cover is essential for understanding the consequences of climate change on Arctic ecosystems. Classification of ultra-high spatial-resolution (UHR, 1cm) imagery can provide estimates of vegetation cover across space and time. The challenge of this approach is to assure comparability of classification across many images taken at different illumination conditions and locations. With warming, vegetation at higher elevation is expected to resemble current vegetation at lower elevation. To investigate the value of classification of UHR imagery for monitoring vegetation change, we collected visible and near-infrared images from 108 plots with hand-held cameras along an altitudinal gradient in Greenland and examined the classification accuracy of shrub cover on independent images (i.e. classification transferability). We implemented several models to examine if colour calibration improves transferability based on an in-image calibration target. The classifier was trained on different number of images to find the minimum training subset size. With a training set of20% of the images the overall accuracy levelled off at about 81% and 68% on the non-calibrated training and validation images, respectively. Colour calibration improved the accuracy on training images (1-4%) while it only improved the classifier transferability significantly for training sets 20%. Linear calibration only based on the target's grey series improved transferability most. Reasonable transferability of Arctic shrub cover classification can be obtained based only on spectral data and about 20% of all images. This is promising for vegetation monitoring through multi-image classification of UHR imagery acquired with hand-held cameras or Unmanned Aerial Systems.
机译:绘制植被覆盖变化图对于了解气候变化对北极生态系统的后果至关重要。超高空间分辨率(UHR,<1cm)图像的分类可以提供跨时空植被覆盖的估计。这种方法的挑战在于确保在不同照明条件和位置拍摄的许多图像之间的分类可比性。随着变暖,高海拔地区的植被有望与低海拔地区的当前植被相似。为了调查UHR影像分类对监测植被变化的价值,我们使用手持摄像机沿着格陵兰的海拔梯度收集了108个样地的可见和近红外图像,并检查了独立图像上灌木覆盖的分类准确性(即分类可转让性)。我们基于图像内校准目标实施了几种模型来检查颜色校准是否可以改善可传递性。对分类器进行了不同数量的图像训练,以找到最小训练子集大小。在训练集为图像的20%的情况下,未校准训练图像和验证图像的总体准确度分别稳定在约81%和68%。颜色校准提高了训练图像的准确性(1-4%),而对于训练集<20%的分类器,只能显着提高分类器的可传递性。仅基于目标的灰色系列的线性校准最大程度地改善了可传递性。仅基于光谱数据和全部图像的约20%,才能获得北极灌木覆盖分类的合理转移性。通过使用手持摄像机或无人航空系统获取的UHR图像的多图像分类,这对于植被监测很有希望。

著录项

  • 来源
    《Polar biology》 |2019年第7期|1227-1239|共13页
  • 作者单位

    Aarhus Univ, Ctr Biodivers Dynam Changing World, Dept Biosci, Sect Ecoinformat & Biodivers, Ny Munkegade 116, DK-8000 Aarhus C, Denmark;

    Aarhus Univ, Ctr Biodivers Dynam Changing World, Dept Biosci, Sect Ecoinformat & Biodivers, Ny Munkegade 116, DK-8000 Aarhus C, Denmark|Swiss Fed Res Inst WSL, Remote Sensing Grp, Zurcherstr 111, CH-8903 Birmensdorf, Switzerland|Aarhus Univ, Arctic Res Ctr, Dept Biosci, Ny Munkegade 116, DK-8000 Aarhus C, Denmark;

    Aarhus Univ, Ctr Biodivers Dynam Changing World, Dept Biosci, Sect Ecoinformat & Biodivers, Ny Munkegade 116, DK-8000 Aarhus C, Denmark|Univ Edinburgh, Sch Geosci, Edinburgh EH8 9XP, Midlothian, Scotland;

    Aarhus Univ, Ctr Biodivers Dynam Changing World, Dept Biosci, Sect Ecoinformat & Biodivers, Ny Munkegade 116, DK-8000 Aarhus C, Denmark;

    Aarhus Univ, Ctr Biodivers Dynam Changing World, Dept Biosci, Sect Ecoinformat & Biodivers, Ny Munkegade 116, DK-8000 Aarhus C, Denmark;

    Swiss Fed Res Inst WSL, Remote Sensing Grp, Zurcherstr 111, CH-8903 Birmensdorf, Switzerland;

    Swiss Fed Res Inst WSL, Remote Sensing Grp, Zurcherstr 111, CH-8903 Birmensdorf, Switzerland;

    Aarhus Univ, Ctr Biodivers Dynam Changing World, Dept Biosci, Sect Ecoinformat & Biodivers, Ny Munkegade 116, DK-8000 Aarhus C, Denmark|Aarhus Univ, Arctic Res Ctr, Dept Biosci, Ny Munkegade 116, DK-8000 Aarhus C, Denmark|Swiss Fed Res Inst WSL, Landscape Dynam Grp, Zurcherstr 111, CH-8903 Birmensdorf, Switzerland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Arctic tundra; Climate change; Colour calibration; Standardization; Spectral data; Classification transferability;

    机译:北极苔原;气候变化;颜色校准;标准化;光谱数据;分类可转移性;

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