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Measuring grassland structure for recovery of grassland species at risk

机译:衡量草地结构,用于恢复草原物种风险

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An action plan for recovering species at risk (SAR) depends on an understanding of the plant community distribution, vegetation structure, quality of the food source and the impact of environmental factors such as climate change at large scale and disturbance at small scale, as these are fundamental factors for SAR habitat. Therefore, it is essential to advance our knowledge of understanding the SAR habitat distribution, habitat quality and dynamics, as well as developing an effective tool for measuring and monitoring SAR habitat changes. Using the advantages of nondestructive, low cost, and high efficient land surface vegetation biophysical parameter characterization, remote sensing is a potential tool for helping SAR recovery action. The main objective of this paper is to assess the most suitable techniques for using hyperspectral remote sensing to quantify grassland biophysical characteristics. The challenge of applying remote sensing in semi-arid and arid regions exists simply due to the lower biomass vegetation and high soil exposure. In conservation grasslands, this problem is enhanced because of the presence of senescent vegetation. Results from this study demonstrated that hyperspectral remote sensing could be the solution for semi-arid grassland remote sensing applications. Narrow band raw data and derived spectral vegetation indices showed stronger relationships with biophysical variables compared to the simulated broad band vegetation indices.
机译:以风险(SAR)恢复物种的行动计划取决于对植物群落分布,植被结构,食物来源的质量以及环境因素(如气候变化)的影响,因为这是SAR栖息地的根本因素。因此,必须推进我们对理解SAR栖息地分配,栖息地质量和动态的了解,以及开发有效的测量和监测SAR栖息地变化的工具。利用非破坏性,低成本和高效的土地表面植被生物物理参数表征的优点,遥感是帮助SAR恢复动作的潜在工具。本文的主要目的是评估使用高光谱遥感的最合适的技术来量化草原生物物理特征。由于较低的生物质植被和高土壤暴露,仅存在遥感在半干旱和干旱区域中的挑战。在保护草原上,由于衰老植被存在,这种问题得到了增强。本研究的结果表明,高光谱遥感可能是半干旱草原遥感应用的解决方案。与模拟的宽带植被指数相比,窄带原始数据和衍生光谱植被指数显示出与生物物理变量的更强的关系。

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