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Sensitivity metric approach for retrieval of aerosol properties from multiangular and multispectral polarized radiances

机译:从多角度和多光谱偏振辐射中检索气溶胶特性的灵敏度度量方法

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Linearly polarized radiation is sensitive to the microphysical properties of aerosols, namely, to the particle-size distribution and refractive index. The discriminating power of polarized radiation increases strongly with the increasing range of scattering angles and the addition of multiple wavelengths. The polarization and directionality of the Earth's reflectances (POLDER) missions demonstrate that some aerosol properties can be successfully derived from spaceborne polarimetric, multiangular measurements at two visible wavelengths. We extend the concept to analyze the retrieval capabilities of a spaceborne instrument with six polarimetric channels at 412, 445, 555, 865, 1250, and 2250 nm, measuring approximately 100 scattering angles covering a range between 50 and 150 deg. Our focus is development of an analysis methodology that can help quantify the benefits of such multiangular and multispectral polarimetric measurements. To that goal we employ a sensitivity metric approach in a framework of the principal-component analysis. The radiances and noise used to construct the sensitivity metric are calculated with the realistic solar flux for representative orbital viewing geometries, accounting for surface reflection from the ground, and statistical and calibration errors of a notional instrument. Spherical aerosol particles covering a range of representative microphysical properties (effective radius, effective variance, real and imaginary parts of the refractive index, single-scattering albedo) are considered in the calculations. We find that there is a limiting threshold for the effective size (approximately 0.7 (mu)m), below which the weak scattering intensity results in a decreased signal-to-noise ratio and minimal polarization sensitivity, precluding reliable aerosol retrievals. For such small particles, close to the Rayleigh scattering limit, the total intensity provides a much stronger aerosol signature than the linear polarization, inspiring retrieval when the combined signals of intensities and the polarization fraction are used. We also find a strong correlation between aerosol parameters, in particular between the effective size and the variance, which forces one to simultaneously retrieve at least these two parameters.
机译:线偏振辐射对气溶胶的微物理性质(即粒度分布和折射率)敏感。偏振辐射的辨别力随着散射角范围的增加和多个波长的增加而大大增加。地球反射率(POLDER)任务的极化和方向性表明,某些气溶胶特性可以成功地从在两个可见波长处的空间极化多角度测量结果中得出。我们扩展了这一概念,以分析具有在412、445、555、865、1250和2250 nm的六个极化通道的星载仪器的恢复能力,测量大约100个散射角,覆盖50至150度之间的范围。我们的重点是开发一种分析方法,可以帮助量化这种多角度和多光谱极化测量的好处。为了达到这个目标,我们在主成分分析的框架中采用了敏感性度量方法。用于计算灵敏度度量的辐射和噪声是根据代表轨道观察几何的实际太阳通量,考虑到地面的地面反射以及概念仪器的统计和校准误差计算得出的。计算中考虑了覆盖一系列代表性微物理特性(有效半径,有效方差,折射率的实部和虚部,单散射反照率)的球形气溶胶颗粒。我们发现有效尺寸有一个极限阈值(约0.7μm),低于该阈值时,弱散射强度会导致信噪比降低和极化灵敏度最小,从而排除了可靠的气溶胶回收。对于这样的小粒子,接近瑞利散射极限,总强度提供了比线性极化要强得多的气溶胶特征,当使用强度和极化分数的组合信号时,启发了检索。我们还发现气溶胶参数之间,尤其是有效大小和方差之间有很强的相关性,这迫使人们同时至少检索这两个参数。

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