首页> 外文会议>ISPRS Congress >AIRBORNE X-HH INCIDENCE ANGLE IMPACT ON CANOPY HEIGHT RETREIVAL: IMPLICATIONS FOR SPACEBORNE X-HH TANDEM-X GLOBAL CANOPY HEIGHT MODEL
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AIRBORNE X-HH INCIDENCE ANGLE IMPACT ON CANOPY HEIGHT RETREIVAL: IMPLICATIONS FOR SPACEBORNE X-HH TANDEM-X GLOBAL CANOPY HEIGHT MODEL

机译:机载X-HH发生角度影响冠层高度腐败:对于空间X-HH TANDEM-X全球冠层高度模型的影响

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To support international climate change mitigation efforts, the United Nations REDD+ initiative (Reducing Emissions from Deforestation and Degradation) seeks to reduce land use induced greenhouse gas emissions to the atmosphere. It requires independent monitoring of forest cover and forest biomass information in a spatially explicit form. It is widely recognised that remote sensing is required to deliver this information. Synthetic Aperture Radar interferometry (InSAR) techniques have gained traction in the last decade as a viable technology from which vegetation canopy height and bare earth elevations can be derived. The viewing geometry of a SAR sensor is side-looking where the radar pulse is transmitted out to one side of the aircraft or satellite, defining an incidence angle (θ) range. The incidence angle will change from near-range (NR) to far-range (FR) across of the track of the SAR platform. InSAR uses image pairs and thus, contain two set of incidence angles. Changes in the InSAR incidence angles can alter the relative contributions from the vegetation canopy and the ground surface and thus, affect the retrieved vegetation canopy height. Incidence angle change is less pronounced in spaceborne data than in airborne data and mitigated somewhat when multiple InSAR-data takes are combined. This study uses NEXTMap single- and multi-pass X-band HH polarized InSAR to derive vegetation canopy height from the scattering phase centre height (h_(spc)). Comparisons with in situ vegetation canopy height over three test sites (Arizona-1, Minnesota-2); the effect of incidence angle changes across swath on the X-HH InSAR h_(spc) was examined. Results indicate at steep incidence angles (θ = 35°), more exposure of lower vegetation canopy structure (e.g. tree trunks) led to greater lower canopy double bounce, increased ground scattering, and decreased volume scattering. This resulted in a lower scattering phase centre height (h_(spc)) or a greater underestimation of vegetation canopy height given by the single-pass X-HH InSAR data. The opposite effect occurs in the far range (θ = 55°), an increase in volume scattering resulted in more accurate vegetation canopy heights when compared to in situ measurements. These findings indicate that incidence angle corrections should be applied to airborne X-HH single-pass InSAR. In contrast, NEXTMap X-HH (multi-pass data) h_(spc) data experienced little or no effect of incidence angle, possibly because NEXTMap is an aggregation of multi-pass flight line strips, which averages data over several incidence angles. These results may aid in the understanding of potential incidence angle effects in Astrium spaceborne Tandem-X data, which will have global digital surface elevation coverage by 2015.
机译:为了支持国际气候变化缓解努力,联合国雷德+倡议(减少森林砍伐和退化的排放)寻求减少土地利用诱导的温室气体排放到大气中。它需要在空间明确的形式下独立监测森林覆盖和森林生物量信息。众所周知,需要遥感来提供此信息。合成孔径雷达干涉测量(INSAR)技术在过去十年中获得了牵引力,作为可行的植被冠层高度和裸露的地球高度可以得到的可行技术。 SAR传感器的观察几何形状是侧视的,其中雷达脉冲被传递到飞机或卫星的一侧,限定入射角(θ)范围。入射角将从SAR平台轨道上的近范范围(NR)变为远射(FR)。 INSAR使用图像对,因此,包含两组入射角。令人隙入射角的变化可以改变植被冠层和地面的相对贡献,从而影响检索到的植被冠层高度。在星载数据中发生率变化比空气传播数据中的发射角度更大,并且在组合多个insar数据时,在空中数据中减轻了一些。本研究采用NextMap单级和多通X频段HH偏振光,以从散射相位高度(H_(SPC))导出植被冠层高度。在三个测试网站(亚利桑那州-1,明尼苏达州-2)的比较植被覆盖高度;检查了X-HH INSAR H_(SPC)对X-HH INSAR H_(SPC)的入射角变化的影响。结果在陡峭入射角(θ= 35°)表示,更低的植被冠层结构暴露(例如树干)导致较大的遮篷双反射,增加的地面散射和减少的体积散射。这导致较低的散射阶段中心高度(H_(SPC))或更大低估的单通过X-HH INSAR数据给出的植被冠层高度。与原位测量相比,相反的效果发生在远方(θ= 55°)中,增加体积散射导致更精确的植被冠层高度。这些发现表明入射角校正应适用于空气传播的X-HH单通轴。与此相反,NEXTMap X-HH(多通数据)H_(SPC)数据经历入射角的很少或没有影响,这可能是因为NEXTMap是多遍飞行线带,其平均数据在几个入射角的聚合。这些结果可能有助于了解Astrium星载串联X数据中的潜在发病角度效应,到2015年将具有全球数字表面升高覆盖率。

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