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碩士 === 國立中央大學 === 資訊工程學系在職專班 === 107 === Abstract Image recognition is the core technology of industrial vision detection, and lighting and color temperature are often one of the most important reasons to affect identification performance. Correct color temperature estimation can effectively improve...

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Main Authors: Jung-Hua Lu, 呂榮華
Other Authors: Ching-Han Chen
Format: Others
Language:zh-TW
Published: 2019
Online Access:http://ndltd.ncl.edu.tw/handle/p6hdsu
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spelling ndltd-TW-107NCU053920422019-10-22T05:28:09Z http://ndltd.ncl.edu.tw/handle/p6hdsu none 具自動色溫校正的智慧化視覺感測器 Jung-Hua Lu 呂榮華 碩士 國立中央大學 資訊工程學系在職專班 107 Abstract Image recognition is the core technology of industrial vision detection, and lighting and color temperature are often one of the most important reasons to affect identification performance. Correct color temperature estimation can effectively improve image recognition performance. The traditional solution focuses on how to compensate the image chroma through the algorithm under a specific light source. In this study, an intelligent visual sensor with positive color temperature is designed, and a neural network color correction model is established by six spectral reflection signals of spectral sensors, which can provide good color constancy by image in different illumination environments. We have realized the functions of image, spectral measurement, neural network color correction, and light control in the embedded platform of ARM Cortex-M7, and completed an intelligent visual sensing system which can automatically and more positive color temperature. Finally, we verify this visual sensing system by testing the baking degree of coffee beans. This system does not need to compensate the image chroma through the complex algorithm also does not need to take multiple images to compare the difference, only needs to implement the ambient color temperature correction before the use can achieve excellent image identification results. For the detection environment with serious chromatic aberration variation, our system can also achieve good reliability of detection, which can be applied to a wide range of visual inspection. Ching-Han Chen 陳慶瀚 2019 學位論文 ; thesis 56 zh-TW
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description 碩士 === 國立中央大學 === 資訊工程學系在職專班 === 107 === Abstract Image recognition is the core technology of industrial vision detection, and lighting and color temperature are often one of the most important reasons to affect identification performance. Correct color temperature estimation can effectively improve image recognition performance. The traditional solution focuses on how to compensate the image chroma through the algorithm under a specific light source. In this study, an intelligent visual sensor with positive color temperature is designed, and a neural network color correction model is established by six spectral reflection signals of spectral sensors, which can provide good color constancy by image in different illumination environments. We have realized the functions of image, spectral measurement, neural network color correction, and light control in the embedded platform of ARM Cortex-M7, and completed an intelligent visual sensing system which can automatically and more positive color temperature. Finally, we verify this visual sensing system by testing the baking degree of coffee beans. This system does not need to compensate the image chroma through the complex algorithm also does not need to take multiple images to compare the difference, only needs to implement the ambient color temperature correction before the use can achieve excellent image identification results. For the detection environment with serious chromatic aberration variation, our system can also achieve good reliability of detection, which can be applied to a wide range of visual inspection.
author2 Ching-Han Chen
author_facet Ching-Han Chen
Jung-Hua Lu
呂榮華
author Jung-Hua Lu
呂榮華
spellingShingle Jung-Hua Lu
呂榮華
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author_sort Jung-Hua Lu
title none
title_short none
title_full none
title_fullStr none
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publishDate 2019
url http://ndltd.ncl.edu.tw/handle/p6hdsu
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