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Cloud tolerance of remote-sensing technologies to measure land surface temperature

机译:遥感技术的云容忍度,用于测量地表温度

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Conventional methods to estimate land surface temperature (LST) from space rely on the thermal infrared (TIR) spectral window and is limited to cloud-free scenes. To also provide LST estimates during periods with clouds, a new method was developed to estimate LST based on passive-microwave (MW) observations. The MW-LST product is informed by six polar-orbiting satellites to create a global record with up to eight observations per day for each 0.25° resolution grid box. For days with sufficient observations, a continuous diurnal temperature cycle (DTC) was fitted. The main characteristics of the DTC were scaled to match those of a geostationary TIR-LST product.brbrThis paper tests the cloud tolerance of the MW-LST product. In particular, we demonstrate its stable performance with respect to flux tower observation sites (four in Europe and nine in the United States), over a range of cloudiness conditions up to heavily overcast skies. The results show that TIR-based LST has slightly better performance than MW-LST for clear-sky observations but suffers an increasing negative bias as cloud cover increases. This negative bias is caused by incomplete masking of cloud-covered areas within the TIR scene that affects many applications of TIR-LST. In contrast, for MW-LST we find no direct impact of clouds on its accuracy and bias. MW-LST can therefore be used to improve TIR cloud screening. Moreover, the ability to provide LST estimates for cloud-covered surfaces can help expand current clear-sky-only satellite retrieval products to all-weather applications.
机译:从空间估算陆地表面温度(LST)的常规方法依赖于热红外(TIR)光谱窗口,并且仅限于无云的场景。为了还提供云期间的LST估算,开发了一种新方法来基于被动微波(MW)观测值估算LST。 MW-LST产品由六颗极地轨道卫星通知,以创造一个全球记录,每个0.25°分辨率的网格盒每天最多可进行八次观测。经过足够的观察,安装了连续的昼夜温度周期(DTC)。缩放DTC的主要特征以使其与对地静止TIR-LST产品的特征相匹配。 本文测试了MW-LST产品的耐云性。特别是,我们证明了其在通量塔观测站点(欧洲有4个,美国有9个)上的稳定性能,在各种多云条件下,甚至在阴暗的天空下。结果表明,在晴空观测中,基于TIR的LST的性能略好于MW-LST,但随着云量的增加,其负偏差也会增大。这种负偏差是由TIR场景中云覆盖区域的不完全掩盖引起的,这会影响TIR-LST的许多应用。相比之下,对于MW-LST,我们发现云对其准确性和偏差没有直接影响。因此,MW-LST可用于改善TIR云筛查。此外,能够为被云覆盖的表面提供LST估计值的功能可以帮助将当前仅晴空的卫星检索产品扩展到全天候应用。

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