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JCR 2016
جستجوی مقالات
چهارشنبه 26 آذر 1404
مدیریت فناوری اطلاعات
، جلد ۱۴، شماره Special Issue: Security and Resource Management challenges for Internet of Things، صفحات ۵۲-۶۸
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عنوان انگلیسی
Mapping Grayscale Images to Colour Space Using Deep Learning
چکیده انگلیسی مقاله
People are used to exploring grayscale images in their family albums but it is difficult to grasp the reality without colours. Luckily, with advancements in Machine Learning it has been possible to solve problems previously thought impossible. The authors aim to automatically colourize grayscale images using a subset of Machine Learning called Deep Learning. The system will be trained on an image dataset and given an input grayscale image the model will be able to assign aesthetically believable colours. A grayscale photograph has been provided; our approach solves the problem of visualizing a reasonable colour version of the grayscale picture. This issue is undoubtedly under controlled; therefore earlier methods to this problem have either counted majorly on user interaction or it leads to in unsaturated colourizations. The authors put forward a completely automatic approach that will try to produce realistic and vibrant colourizations as much as possible. The proposed system has been applied as a feed-forward in a Convolutional Neural Network and has been trained on over twenty thousand colour images currently.
کلیدواژههای انگلیسی مقاله
Convolutional Neural Networks (CNN),Convolution,RGB,CIELAB (Lab),Deep Neural Networks,Feature vector,Prediction,sampling
نویسندگان مقاله
Anu Saini |
Assistant Professor, Ph.D., Department of Computer Science and Engineering, G. B. Pant Govt. Engineering College, New Delhi, India.
Jyoti Tripathi |
Assistant Professor, Department of Computer Science and Engineering, G.B. Pant Govt. Engineering College, New Delhi, India.
نشانی اینترنتی
https://jitm.ut.ac.ir/article_85649_9c9b473afbcfd184d9407d00a7e12c1c.pdf
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