The real-time infrared image denoising method of double buffering for microcantilever-based infrared imaging system

2009 ◽  
Author(s):  
Cheng Gong ◽  
Mei Hui ◽  
Liquan Dong ◽  
Yuejin Zhao
2017 ◽  
Vol T170 ◽  
pp. 014027 ◽  
Author(s):  
A Huber ◽  
D Kinna ◽  
V Huber ◽  
G Arnoux ◽  
I Balboa ◽  
...  

2010 ◽  
Author(s):  
Huishi Zhu ◽  
Yuejin Zhao ◽  
Liquan Dong ◽  
Xiaohua Liu ◽  
Xiaomei Yu ◽  
...  

Author(s):  
Yuye Wang ◽  
Guofeng Zhang ◽  
Xiaoguang Hu

Purpose Infrared simulation plays an important role in small and affordable unmanned aerial vehicles. Its key and main goal is to get the infrared image of a specific target. Infrared physical model is established through a theoretical research, thus the temperature field is available. Then infrared image of a specific target can be simulated properly while taking atmosphere state and effect of infrared imaging system into account. For recent years, some research has been done in this field. Among them, the infrared simulation for large scale is still a key problem to be solved. In this passage, a method of classification based on texture blending is proposed and this method effectively solves the problem of classification of large number of images and increase the frame rate of large infrared scene rendering. The paper aims to discuss these issues. Design/methodology/approach Mosart Atmospheric Tool (MAT) is used first to calculate data of sun radiance, skyshine radiance, path radiance, temperatures of different material which is an offline process. Then, shader in OGRE does final calculation to get simulation result and keeps a high frame rate. Considering this, the authors convert data in MAT file into textures which can be easily handled by shader. In shader responding, radiance can be indexed by information of material, vertex normal, eye and sun. Adding the effect of infrared imaging system, the final radiance distribution is obtained. At last, the authors get infrared scene by converting radiance to grayscale. Findings In the fragment shader, fake infrared textures are used to look up temperature which can calculate radiance of itself and related radiance. Research limitations/implications The radiance is transferred into grayscale image while considering effect of infrared imaging system. Originality/value Simulation results show that a high frame rate can be reached while guaranteeing the fidelity.


2021 ◽  
Author(s):  
Feng Deng ◽  
Zhong Su ◽  
Rui Wang ◽  
Jun Liu ◽  
Yanzhi Wang

Most of the existing infrared imaging systems employ the scheme of FPGA/FPGA+DSP with numerous peripheral circuits, which leads to complex hardware architecture, limited system versatility, and low computing performance. It has become an intriguing technical problem worldwide to simplify the system structure while improving the imaging performance. In this paper, we present a novel real-time infrared imaging system based on the Rockchip’s RV1108 visual processing SoC (system on chip). Moreover, to address the problem of low contrast and dim details in infrared images with a high dynamic range, an adaptive contrast enhancement method based on bilateral filter is proposed and implemented on the system. First, the infrared image is divided into a base layer and a detail layer through bilateral filter, then the base layer is compressed by an adaptive bi-plateau histogram equalization algorithm, and finally a linear-weighted method is used to integrate the detail layer to obtain the image with enhanced details. The experimental results indicate that compared with traditional algorithms, our method can effectively improve the overall contrast of the image, while effectively retaining the image details without noise magnification. For an image of 320*240 pixels, the real-time processing rate of the system is 68 frames/s. The system has the characteristics of simplified structure, perceptive image details, and high computing performance.


2012 ◽  
Vol 38 (1) ◽  
pp. 14-18
Author(s):  
黄战华 HUANG Zhanhua ◽  
杨鹤猛 YANG Hemeng ◽  
孙立彬 SUN Libin ◽  
蔡怀宇 CAI Huaiyu

2009 ◽  
Author(s):  
Ruo-lan Hu ◽  
Xin-gang Mou ◽  
Xiao-dong Pan ◽  
Gui-lin Zhang

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