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On the effects of spatial and spectral resolution on spatial-spectral target detection in SHARE 2012 and Bobcat 2013 hyperspectral imagery

机译:关于空间和光谱分辨率对2012年股份谱靶检测的影响及桥梁2013高光谱图像的影响

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Previous work with the Bobcat 2013 data set1 showed that spatial-spectral feature extraction on visible to near infrared (VNIR) hyperspectral imagery (HSI) led to better target detection and discrimination than spectral-only techniques; however, the aforementioned study could not consider the possible benefits of the shortwave-infrared (SWIR) portion of the spectrum due to data limitations. In addition, the spatial resolution of the Bobcat 2013 imagery was fixed at 8cm without exploring lower spatial resolutions. In this work, we evaluate the tradeoffs in spatial and spectral resolution and spectral coverage between for a common set of targets in terms of their effects on spatial-spectral target detection performance. We show that for our spatial-spectral target detection scheme and data sets, the adaptive cosine estimator (ACE) applied to S-DAISY and pseudo Zernike moment (PZM) spatial-spectral features can distinguish between targets better than ACE applied only to the spectral imagery. In particular, S-DAISY operating on bands uniformly selected from the SWIR portion of ProSpecTIR-VS sensor imagery in conjunction with bands closely corresponding to the Airborne Real-time Cueing Hyperspectral Reconnaissance (ARCHER) sensor's VNIR bands (80 total) led to the best overall average perfomance in both target detection and discrimination.
机译:以前的使用Bobcat 2013数据Set1显示了在近红外线(VNIR)高光谱图像(HSI)上可见的空间光谱特征提取导致了比仅光谱技术更好的目标检测和辨别;然而,上述研究无法考虑由于数据限制引起的短波红外(SWIR)部分的可能效益。此外,Bobcat 2013图像的空间分辨率在8cm处固定在8厘米,而不探索较低的空间分辨率。在这项工作中,我们在其对空间光谱目标检测性能的影响方面评估空间和光谱分辨率和光谱覆盖的谱覆盖。我们表明,对于我们的空间光谱目标检测方案和数据集,应用于S-DAISY和伪Zernike时刻(PZM)空间光谱特征的自适应余弦估计器(ACE)可以在仅应用于频谱上的ACE来区分目标图像。特别地,在均匀地选择的频段上运行的S-DAISY与与空中实时提示高光谱侦察(ARCHER)传感器的VNIR频带(80总计)紧密相对应的频段以及最佳的带目标检测和歧视的总体平均性能。

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