首页> 外文期刊>International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences >NET PRIMARY PRODUCTIVITY AND DRY MATTER IN SOYBEAN CULTIVATION UTILIZING DATAS OF NDVI MULTI-SENSORS
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NET PRIMARY PRODUCTIVITY AND DRY MATTER IN SOYBEAN CULTIVATION UTILIZING DATAS OF NDVI MULTI-SENSORS

机译:利用NDVI多传感器数据的大豆培养中净初级生产率和干物质

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Net Primary Productivity (NPP) is an important indicator of vegetation growth status and ecosystems health. NPP can be estimated through remote sensing data, using vegetation indices such as NDVI. However, this index may show systematic differences when using several orbital sensors. Therefore, the objective of this paper was to compare the NDVI data obtained from different sensors and evaluate the impact over the soybean biomass and NPP estimates. NDVI data were recorded from 4 sensors, one on the field and others 3 orbitals sensors (Landsat 8/OLI, Sentinel 2/MSI and Terra/MODIS). Measured data on the field, Photosynthetically Active Radiation (PAR) and Dry Matter (DM), were used to modeling the total DM and also NPP. The NDVI data from different sensors showed differences throughout the cycle, but compared to the reference data there was a correlation greater than 0.84. The DM presented a correlation of 0.91 with the field measured MS data while the NPP presented differences of up to 240 gC/m2/month from in relation to the reference data. Therefore, NDVI obtained from multiple sensors can be used to estimate NPP for surface analysis. However, for more consistent evaluations, a function of adjustment between the NDVI sensor data and NDVI reference data is required, so that the NPP estimation be better correlated to the actual data.
机译:净初级生产率(NPP)是植被生长状态和生态系统健康的重要指标。可以通过遥感数据估计NPP,使用诸如NDVI等植被指数。然而,当使用多个轨道传感器时,该指数可能显示系统的差异。因此,本文的目的是比较从不同传感器获得的NDVI数据,并评估对大豆生物量和NPP估计的影响。 NDVI数据从4个传感器记录,一个在现场和其他3个轨道传感器(Landsat 8 / Oli,Sentinel 2 / MSI和Terra / Modis)上。在现场测量的数据,光合活性辐射(PAR)和干物质(DM)用于建模总DM和NPP。来自不同传感器的NDVI数据在整个循环中显示出差异,但与参考数据相比,相关性大于0.84。 DM呈现0.91的相关性,该字段测量MS数据,而NPP呈现与参考数据相比高达240 GC / M2 /月的差异。因此,从多个传感器获得的NDVI可用于估计NPP进行表面分析。然而,对于更一致的评估,需要在NDVI传感器数据和NDVI参考数据之间进行调整的函数,从而与实际数据更好地相关联的NPP估计。

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