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Enhancing the image resolution in a single-pixel sub-THz imaging system based on compressed sensing

机译:在基于压缩感测的单像素亚太赫兹成像系统中提高图像分辨率

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摘要

Compressed sensing (CS) techniques allow for faster imaging when combined with scan architectures, which typically suffer from speed. This technique when implemented with a subterahertz (sub-THz) single detector scan imaging system provides images whose resolution is only limited by the pixel size of the pattern used to scan the image plane. To overcome this limitation, the image of the target can be oversampled; however, this results in slower imaging rates especially if this is done in two-dimensional across the image plane. We show that by implementing a one-dimensional (1 -D) scan of the image plane, a modified approach to CS theory applied with an appropriate reconstruction algorithm allows for successful reconstruction of the reflected oversampled image of a target placed in standoff configuration from the source. The experiments are done in reflection mode configuration where the operating frequency is 93 GHz and the corresponding wavelength is λ = 3.2 mm. To reconstruct the image with fewer samples, CS theory is applied using masks where the pixel size is 5 mm × 5 mm, and each mask covers an image area of 5 cm × 5 cm, meaning that the basic image is resolved as 10 × 10 pixels. To enhance the resolution, the information between two consecutive pixels is used, and over-sampling along 1-D coupled with a modification of the masks in CS theory allowed for oversampled images to be reconstructed rapidly in 20 × 20 and 40 × 40 pixel formats. These are then compared using two different reconstruction algorithms, TVAL3 and ℓ_1 -MAGIC. The performance of these methods is compared for both simulated signals and real signals. It is found that the modified CS theory approach coupled with the TVAL3 reconstruction process, even when scanning along only 1-D, allows for rapid precise reconstruction of the oversampled target.
机译:压缩传感(CS)技术与通常受速度影响的扫描架构结合使用时,可以实现更快的成像。当用太赫兹(sub-THz)单探测器扫描成像系统实施该技术时,其图像分辨率仅受用于扫描图像平面的图案的像素大小限制。为了克服这个限制,可以对目标图像进行过采样;但是,这会导致成像速率变慢,尤其是如果是在整个图像平面上以二维方式完成的话。我们表明,通过对图像平面实施一维(1-D)扫描,采用适当的重建算法对CS理论进行改进的方法可以成功地重建从目标到对峙配置的目标的反射过采样图像。资源。实验以反射模式配置完成,其中工作频率为93 GHz,相应的波长为λ= 3.2 mm。为了用更少的样本重建图像,使用CS理论,使用像素大小为5 mm×5 mm的蒙版,每个蒙版覆盖5 cm×5 cm的图像区域,这意味着基本图像解析为10×10像素。为了提高分辨率,使用了两个连续像素之间的信息,并沿CS进行了沿1-D的过采样以及CS理论中的蒙版修改,从而可以以20×20和40×40像素格式快速重建过采样的图像。 。然后使用两种不同的重建算法TVAL3和ℓ_1-MAGIC比较它们。比较了模拟信号和真实信号的这些方法的性能。结果发现,即使仅沿一维扫描,改进的CS理论方法与TVAL3重建过程相结合,也可以快速精确地重建过采样的目标。

著录项

  • 来源
    《Optical engineering》 |2018年第4期|043102.1-043102.7|共7页
  • 作者单位

    Middle East Technical University, Department of Physics, Ankara, Turkey;

    Ankara Yildirim Beyazit University, Department of Electrical and Electronics Engineering, Ankara, Turkey;

    Ankara Yildirim Beyazit University, Department of Electrical and Electronics Engineering, Ankara, Turkey;

    Ankara Yildirim Beyazit University, Department of Electrical and Electronics Engineering, Ankara, Turkey;

    Middle East Technical University, Department of Physics, Ankara, Turkey;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    compressed sensing; sub-THz; imaging; spatial light modulator; single-pixel camera;

    机译:压缩感测亚太赫兹;成像空间光调制器;单像素相机;

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