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Comparative Assessment of Some Target Detection Algorithms for Hyperspectral Images

机译:高光谱图像目标检测算法的比较评估

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Target detection is of particular interest in hyperspectral image analysis as many unknown and subtle signals (spectral response) unresolved by multispectral sensors can be discovered in hyperspectral images. The detection of signals in the form of small objects and targets from hyperspectral sensors has a wide range of applications both civilian and military. It has been observed that a number of target detection algorithms are in vogue; each has its own advantages and disadvantages and assumptions. The selection of a particular algorithm may depend on the amount of information available as per the requirement of the algorithm, application area, the computational complexity etc. In the present study, three algorithms, namely, orthogonal subspace projection (OSP), constrained energy minimization (CEM) and a nonlinear version of OSP called kernel orthogonal subspace projection (KOSP), have been investigated for target detection from hyperspectral remote sensing data. The efficacy of algorithms has been examined over two different hyperspectral datasets which include a synthetic image and an AVIRIS image. The quality of target detection from these algorithms has been evaluated through visual interpretation as well as through receiver operating characteristic (ROC) curves. The performance of OSP algorithm has been found to be better than or comparable to CEM algorithm. However, KOSP out performs both the algorithms. Defence Science Journal, 2013,??63(1), pp.53 -62 ,?? DOI:http://dx.doi.org/10.14429/dsj. 63.3764
机译:在高光谱图像分析中,目标检测尤为重要,因为可以在高光谱图像中发现许多未被多光谱传感器分辨的未知和微妙的信号(光谱响应)。从高光谱传感器检测小物体和目标形式的信号具有广泛的民用和军事应用。已经观察到许多目标检测算法正在流行。每个都有其自身的优缺点和假设。特定算法的选择可能取决于根据算法要求,应用领域,计算复杂度等可获得的信息量。在本研究中,三种算法,即正交子空间投影(OSP),约束能量最小化(CEM)和称为内核正交子空间投影(KOSP)的OSP非线性版本已被研究用于从高光谱遥感数据中进行目标检测。已经在包括合成图像和AVIRIS图像的两个不同的高光谱数据集中检查了算法的有效性。通过视觉解释以及接收器工作特性(ROC)曲线,已经评估了这些算法对目标检测的质量。已经发现OSP算法的性能优于或可比CEM算法。但是,KOSP out执行两种算法。国防科学杂志,2013,63(1),pp.53 -62, DOI:http://dx.doi.org/10.14429/dsj。 63.3764

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