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Sample selection and reconstruction for array based multispectral imaging.

机译:基于阵列的多光谱成像的样本选择和重建。

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摘要

In this work we address the problem of acquisition of multispectral images in a sampled form and the subsequent processing of the acquired signal. The problem is relevant in the context of color imaging in digital cameras, and increasingly, in the field of hyperspectral imaging as applied to remote-sensing and target recognition. The scope of this work encompasses a broad swath across image processing problems and includes: image acquisition, in the problem of optimally selecting sampling rates and patterns of multiple channels; image reconstruction, in the reconstruction of the sparsely sampled data; image restoration, in obtaining an estimate of the true scene from noisy data; and finally, image enhancement and representation, in the problem of presenting the reconstructed image in a color-space that allows for transformations that achieve best perceived quality.;Acquisition of multispectral images in the simplest form entails either the use of multiple sensor arrays to sample separate spectral bands in a scene, or the use of a single sensor array with a mechanism that switches overlaying band-pass filters. Due to the nature of the acquisition process, both these methods suffer from shortcomings in terms of weight, cost, time of acquisition, etc. An alternative scheme widely in use only uses one sensor array to sample multiple bands. An array of filters, referred to as a mosaic, is overlaid on the sensor array such that only one color is sampled at a given pixel location. The full color image is obtained during a subsequent reconstruction step commonly referred to as demosaicking. This scheme offers advantages in terms of cost, weight, mechanical robustness and the elimination of the related post-processing step since registration in this case is exact.;Three main issues need to be addressed in such a scheme, viz., the shape and arrangement of the sampling pattern, selection of the sensitivities of the spectral filters, and the design of the reconstruction algorithm. Each of the above problems is contingent on multiple factors. Sensor sampling patterns are constrained by the limitations of electronic devices and manufacturing processes, spectral sensitivities are affected by the material properties of the colors painted on the array to form filters, and the reconstruction methods are limited by computational resources.;In this research, we address the above problems from a signal processing perspective and attempt to develop parametric algorithms that can accommodate external limitations and constraints. We have developed methodologies for the selection of optimal sampling patterns that will allow for ordered, repeated array blocks. In addition we have developed an algorithm for demosaicking of CFA data based on Bayesian techniques. We have also proposed a formulation for the selection of optimal spectral sensitivities for individual color filters.
机译:在这项工作中,我们解决了以采样形式获取多光谱图像以及后续处理所获取信号的问题。该问题与数字照相机中的彩色成像有关,并且越来越多地与应用于遥感和目标识别的高光谱成像有关。这项工作的范围包括解决图像处理问题的广泛领域,包括:在最佳选择采样率和多通道模式的问题中进行图像采集;图像重建,用于稀疏采样数据的重建;图像恢复,从噪声数据中获取真实场景的估计;最后是图像增强和表示,这是将重建的图像显示在可以实现最佳感知质量的变换的色彩空间中的问题。以最简单的形式获取多光谱图像需要使用多个传感器阵列进行采样在场景中分离光谱带,或将单个传感器阵列与切换覆盖带通滤波器的机制一起使用。由于采集过程的性质,这两种方法在重量,成本,采集时间等方面都有缺点。广泛使用的另一种方案仅使用一个传感器阵列对多个频段进行采样。称为马赛克的滤镜阵列覆盖在传感器阵列上,以便在给定的像素位置仅采样一种颜色。全彩色图像是在通常称为去马赛克的后续重建步骤中获得的。该方案在成本,重量,机械强度以及消除相关的后处理步骤方面均具有优势,因为这种情况下的配准是精确的。这种方案需要解决三个主要问题,即形状和形状。采样模式的安排,光谱滤波器灵敏度的选择以及重构算法的设计。上述每个问题都取决于多个因素。传感器采样模式受到电子设备和制造工艺的限制,光谱灵敏度受阵列上形成滤光片的颜色的材料特性影响,并且重建方法受到计算资源的限制。从信号处理的角度解决上述问题,并尝试开发可适应外部限制和约束的参数算法。我们已经开发出用于选择最佳采样模式的方法,从而可以选择有序的重复阵列块。此外,我们还开发了一种基于贝叶斯技术对CFA数据进行去马赛克的算法。我们还提出了一种用于为各个滤色镜选择最佳光谱灵敏度的配方。

著录项

  • 作者

    Parmar, Manu.;

  • 作者单位

    Auburn University.;

  • 授予单位 Auburn University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 121 p.
  • 总页数 121
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

  • 入库时间 2022-08-17 11:39:32

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