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Transparent Object Detection Using Single-pixel Imaging and Compressive Sensing

机译:使用单像素成像和压缩感测的透明物体检测

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Opaque object detection and image acquisition are perfectly done with the techniques collecting reflections from the object. However, transparent object detection is a challenge due to the complex nature of light interacting with it. The characteristics of light such as absorption, transmission, reflection, and refraction in transparent objects makes its acquisition challenging. Single-pixel imaging (SPI), which uses a single pixel sensor to capture the image, is an evolving technology. The proposed study focuses on designing a 2D single-pixel transparent object inspection system which utilizes compressive sensing and 11 minimization approach. A novel camera architecture based on Digital Micromirror Device (DMD) along with Compressive Sensing (CS) algorithm is adopted for image reconstruction. Two-dimensional image reconstruction of transparent objects is performed by collecting transmitted light intensity from the object with a single-pixel detector. With the CS algorithm, good quality images are reconstructed with few measurements in contrast to large data required for Nyquist criteria. The digitized input for CS algorithm is based on the inner product between the transparent object and a set of random patterns projected from the DMD. The transparent object detection was achieved using only 30% of the total pixels in the image with the reconstructed images showing around 60 percent similarity to the real object. Our experimental setup has been compared to a conventional imaging system to prove its efficiency in obtaining accurate results. Furthermore, our technique is nondestructive, does not require raster scanning, not time-gated detection and benefits from compressive sensing.
机译:不透明的物体检测和图像采集可以通过收集物体反射的技术来完美完成。然而,由于光与之相互作用的复杂性质,透明物体检测是一个挑战。透明物体中的光的特征(例如吸收,透射,反射和折射)使其具有挑战性。使用单像素传感器捕获图像的单像素成像(SPI)是一项不断发展的技术。拟议的研究重点在于设计利用压缩感测和11最小化方法的2D单像素透明对象检查系统。基于数字微镜设备(DMD)和压缩传感(CS)算法的新型相机架构被用于图像重建。透明物体的二维图像重建是通过使用单个像素检测器收集来自物体的透射光强度来执行的。使用CS算法,与奈奎斯特标准所需的大数据相比,只需很少的测量就可以重建高质量的图像。 CS算法的数字化输入基于透明对象与DDM投影的一组随机图案之间的内积。仅使用图像中总像素的30%即可实现透明物体检测,而重建图像显示出与真实物体约60%的相似性。我们的实验装置已与常规成像系统进行了比较,以证明其在获得准确结果方面的效率。此外,我们的技术是非破坏性的,不需要光栅扫描,不需要时间选通检测,并且可以从压缩感测中受益。

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