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首页> 外文期刊>Ecological indicators >Interpretation of high-resolution imagery for detecting vegetation cover composition change after fuels reduction treatments in woodlands
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Interpretation of high-resolution imagery for detecting vegetation cover composition change after fuels reduction treatments in woodlands

机译:解析高分辨率图像,以检测林地减少燃料处理后植被覆盖物成分的变化

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摘要

The use of very high resolution (VHR; ground sampling distances < ~5 cm) aerial imagery to estimate site vegetation cover and to detect changes from management has been well documented. However, as the purpose of monitoring is to document change over time, the ability to detect changes from imagery at the same or better level of accuracy and precision as those measured in situ must be assessed for image-based techniques to become reliable tools for ecosystem monitoring. Our objective with this study was to quantify the relationship between field-measured and image-interpreted changes in vegetation and ground cover measured one year apart in a Pinon and Juniper (P-J) woodland in southern Utah, USA. The study area was subject to a variety of fuel removal treatments between 2009 and 2010. We measured changes in plant community composition and ground cover along transects in a control area and three different treatments prior to and following P-J removal. We compared these measurements to vegetation composition and change based on photo-interpretation of ~4 cm ground sampling distance imagery along similar transects. Estimates of cover were similar between field-based and image-interpreted methods in 2009 and 2010 for woody vegetation, no vegetation, herbaceous vegetation, and litter (including woody litter). Image-interpretation slightly overestimated cover for woody vegetation and no-vegetation classes (average difference between methods of 1.34% and 5.85%) and tended to underestimate cover for herbaceous vegetation and litter (average difference of -5.18% and 0.27%), but the differences were significant only for litter cover in 2009. Level of agreement between the field-measurements and image-interpretation was good for woody vegetation and no-vegetation classes (r between 0.47 and 0.89), but generally poorer for herbaceous vegetation and litter (r between 0.18 and 0.81) likely due to differences in image quality by year and the difficulty in discriminating fine vegetation and litter in imagery. Our results show that image interpretation to detect vegetation changes has utility for monitoring fuels reduction treatments in terms of woody vegetation and no-vegetation classes. The benefits of this technique are that it provides objective and repeatable measurements of site conditions that could be implemented relatively inexpensively and easily without the need for highly specialized software or technical expertise. Perhaps the biggest limitations of image interpretation to monitoring fuels treatments are challenges in estimating litter and herbaceous vegetation cover and the sensitivity of herbaceous cover estimates to image quality and shadowing.
机译:使用高分辨率(VHR;地面采样距离<〜〜5 cm)的航空影像来估计场地植被覆盖并从管理中发现变化已得到充分证明。但是,由于监视的目的是记录随时间的变化,因此必须评估以与基于现场的测量相同或更高水平的准确度和精确度从图像中检测变化的能力,以使基于图像的技术成为生态系统的可靠工具监控。我们这项研究的目的是量化在美国犹他州南部的Pinon和Juniper(P-J)林地中,一年测量一次的植被和地面覆盖变化的实地测量和图像解释变化之间的关系。在2009年至2010年之间,研究区域接受了多种燃料去除处理。我们测量了P-J去除前后对照地区沿样带的植物群落组成和地被植物的变化以及三种不同的处理方法。我们将这些测量结果与植被组成和变化进行了比较,这些变化是基于对类似剖面的〜4 cm地面采样距离图像的照片解释。对于木质植被,无植被,草本植被和凋落物(包括木质凋落物),2009年和2010年基于实地和图像解释方法的覆盖率估算相似。图像解释略微高估了木本植被和无植被类别的覆盖率(两种方法之间的平均差异为1.34%和5.85%),并倾向于低估了草木植被和凋落物的覆盖率(平均差异为-5.18%和0.27%),但是差异仅在2009年的凋落物覆盖率上才显着。实地测量和图像解释之间的一致性水平对于木本植被和无植被类而言较好(r在0.47至0.89之间),但对于草木植被和凋落物则通常较差(r介于0.18到0.81之间),这可能是由于年度图像质量差异以及难以区分图像中的精细植被和凋落物所致。我们的结果表明,用于检测植被变化的图像解释可用于监测木质植被和无植被类别的节油措施。该技术的好处在于,它可以对现场条件进行客观且可重复的测量,而这些测量可以相对廉价且轻松地实现,而无需高度专业的软件或专业技术知识。图像解释监测燃料处理的最大局限性可能是估算枯枝落叶和草本植被覆盖率以及草本覆盖率估算值对图像质量和阴影的敏感性方面的挑战。

著录项

  • 来源
    《Ecological indicators》 |2014年第10期|570-578|共9页
  • 作者单位

    United States Department of Agriculture - Agricultural Research Service (USDA-ARS), Jornada Experimental Range, P.O. Box 30003, MSC 3JER, New Mexico State University, Las Cruces, NM 88003-8003, USA;

    United States Department of Agriculture - Agricultural Research Service (USDA-ARS), Jornada Experimental Range, P.O. Box 30003, MSC 3JER, New Mexico State University, Las Cruces, NM 88003-8003, USA;

    University of Colorado at Boulder, Department of Ecology and Evolutionary Biology, CB 334 Ramaley N285, Boulder, CO 80309, USA;

    United States Department of Agriculture - Agricultural Research Service (USDA-ARS), Jornada Experimental Range, P.O. Box 30003, MSC 3JER, New Mexico State University, Las Cruces, NM 88003-8003, USA;

    U.S. Geological Survey, Southwest Biological Science Center, 2290 SW Resource Blvd., Moab, UT 84532, USA;

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

    Image interpretation; Rangeland monitoring; Remote sensing; High-resolution; Land cover; Change detection;

    机译:图像解释;牧场监测;遥感;高分辨率;土地覆盖;变更检测;

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