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Coupling SAR X-band and optical data for NDVI retrieval: model calibration and validation on two test areas

机译:耦合SAR X波段和光学数据以进行NDVI检索:在两个测试区域进行模型校准和验证

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Sustainability of modern agro-hydrology requires the knowledge of spatial and temporal variability of vegetation biomass to optimize management of land and water resources. Diversely from optical imaging, temporal resolution of active sensors, such as SAR, is not limited by sky cloudiness; thus, they may be combined with optical imageries to provide a more continuous monitoring of land surfaces. Several new SAR missions (e.g., ALOS-PALSAR, COSMO-SkyMed 1 and 2, TerraSAR-X, TerraSAR-X2, Sentinel 1) acquiring at X-, C- and L-bands and dual polarization capability, are characterized by a short revisit time (from 12 h to ~10 days) and high spatial resolution (<20 m). These satellites could provide suitable data for operative crop monitoring. The new COSMO-SkyMed (owned by Italian Space Agency-ASI) represents a valuable source of SAR data in X-band, opening new opportunities to develop agro-hydrological applications. Although, X-band backscattering is not the most suitable to model agricultural and hydrological processes; it could help assessing the vegetation development if combined with optical vegetation indices (VIs). Recently, two models to infer a Ⅵ from σ° have been setup. One of these achieved accurate results in Ⅵ retrieval at a certain time using σ°(Ⅵ_(SAR)), once known the NDVI derived from optical images (Ⅵ_(opt)) at a reference time. This paper aims to further validate this model through two independent datasets. The model was firstly implemented on COSMO-SkyMed and optical DEIMOS-1 data acquired over the Sele plain (Campania, Italy). It has been further validated using different optical images. To this aim, a dataset of 2 COSMO-SkyMed images and 2 Landsat 7 SLC-off images were acquired in the southwestern part of Sicily (Italy) between 8 and 25 August 2011. Determination coefficients of the validation set were similar to those of the calibration set. Results confirm that Ⅵ_(SAR) obtained using the combined model is a suitable surrogate of Ⅵ_(opt) if estimated at parcel scale.
机译:现代农业水文学的可持续性要求了解植被生物量的时空变化,以优化土地和水资源的管理。与光学成像不同,有源传感器(例如SAR)的时间分辨率不受天空多云的限制。因此,它们可以与光学影像结合使用,以提供对陆地表面的更连续的监控。几个新的SAR任务(例如,ALOS-PALSAR,COSMO-SkyMed 1和2,TerraSAR-X,TerraSAR-X2,Sentinel 1)在X波段,C波段和L波段以及双极化能力下获得了较短的任务重访时间(从12小时到〜10天)和高空间分辨率(<20 m)。这些卫星可以为作物的有效监测提供适当的数据。新的COSMO-SkyMed(由意大利航天局ASI拥有)代表了X波段SAR数据的宝贵来源,为开发农业水文学应用开辟了新机遇。尽管X波段反向散射并不是最适合于对农业和水文过程进行建模的模型;如果结合光学植被指数(VI),它可以帮助评估植被发育。最近,已经建立了两种从σ°推断Ⅵ的模型。其中之一在使用σ°(Ⅵ_(SAR))的特定时间进行Ⅵ取回中获得了准确的结果,这曾经是在参考时间从光学图像(Ⅵ_(opt))得出的NDVI。本文旨在通过两个独立的数据集进一步验证该模型。该模型首先在COSMO-SkyMed上实现,并在Sele平原(意大利坎帕尼亚)上获取光学DEIMOS-1数据。已经使用不同的光学图像对其进行了进一步验证。为此,在2011年8月8日至25日之间,在西西里岛(意大利)的西南部获取了2个COSMO-SkyMed图像和2个Landsat 7 SLC-off图像的数据集。验证集的确定系数与校准集。结果证实,如果以包裹规模进行估算,则使用组合模型获得的Ⅵ_(SAR)是Ⅵ_(opt)的合适替代物。

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