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FPGA implementation of collaborative representation algorithm for real-time hyperspectral target detection

机译:实时高光谱目标检测协同表示算法的FPGA实现

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Hyperspectral image contains various wavelength channels and the corresponding imagery processing requires a computation platform with high performance. Target and anomaly detection on hyperspectral image has been concerned because of its practicality in many real-time detection fields while wider applicability is limited by the computing condition and low processing speed. The field programmable gate arrays (FPGAs) offer the possibility of on-board hyperspectral data processing with high speed, low-power consumption, reconfigurability and radiation tolerance. In this paper, we develop a novel FPGA-based technique for efficient real-time target detection algorithm in hyperspectral images. The collaborative representation is an efficient target detection (CRD) algorithm in hyperspectral imagery, which is directly based on the concept that the target pixels can be approximately represented by its spectral signatures, while the other cannot. To achieve high processing speed on FPGAs platform, the CRD algorithm reduces the dimensionality of hyperspectral image first. The Sherman–Morrison formula is utilized to calculate the matrix inversion to reduce the complexity of overall CRD algorithm. The achieved results demonstrate that the proposed system may obtains shorter processing time of the CRD algorithm than that on 3.40 GHz CPU.
机译:高光谱图像包含各种波长通道,并且相应的图像处理需要高性能的计算平台。由于高光谱图像的目标和异常检测在许多实时检测领域中的实用性而受到关注,而更广泛的适用性受到计算条件和低处理速度的限制。现场可编程门阵列(FPGA)提供了板载高光谱数据处理的可能性,具有高速,低功耗,可重构性和辐射耐受性。在本文中,我们开发了一种基于FPGA的新颖技术,用于高光谱图像中的高效实时目标检测算法。协作表示是高光谱图像中的一种有效的目标检测(CRD)算法,它直接基于以下概念:目标像素可以由其光谱特征近似表示,而其他像素则不能。为了在FPGA平台上实现较高的处理速度,CRD算法首先降低了高光谱图像的维数。 Sherman-Morrison公式用于计算矩阵求逆,以降低整体CRD算法的复杂性。取得的结果表明,与在3.40 GHz CPU上相比,所提出的系统可以获得更短的CRD算法处理时间。

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