2020 Ieee International Conference On Visual Communications And Image Processing Vcip
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2020 IEEE International Conference on Visual Communications and Image Processing VCIP
![2020 IEEE International Conference on Visual Communications and Image Processing VCIP](https://youbookinc.com/wp-content/uploads/2024/06/cover.jpg)
Author | : IEEE Staff |
Publsiher | : Unknown |
Total Pages | : 135 |
Release | : 2020-12 |
Genre | : Electronic Book |
ISBN | : 1728180694 |
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Multimedia coding Multimedia coding transmission Multimedia over networks Image video processing Image video analysis Multimedia content retrieval Multimedia information security Multiview and 3D video Multimedia system design Application systems and emerging systems of visual communications and image processing
VCIP 2016
![VCIP 2016](https://youbookinc.com/wp-content/uploads/2024/06/cover.jpg)
Author | : Anonim |
Publsiher | : Unknown |
Total Pages | : 135 |
Release | : 2016 |
Genre | : Image processing |
ISBN | : OCLC:972631189 |
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Annotation The International Conference on Visual Communications and Image Processing (VCIP), sponsored by the IEEE Circuits and Systems Society and supported by the Institute of Image Processing, School of Electronic Engineering, University of Electronic Science and Technology of China, will be held in Chengdu during 27 30 Nov 2016 VCIP has served as a premier forum in SPIE and IEEE for the exchange of fundamental research results and technological advances in the field of visual communications and image processing since 1986 It provides a venue for leading engineers and scientists from around the world to advance the research frontiers in various areas of interest to VCIP.
Computational Intelligence Techniques for Green Smart Cities
Author | : Mohamed Lahby,Ala Al-Fuqaha,Yassine Maleh |
Publsiher | : Springer Nature |
Total Pages | : 418 |
Release | : 2022-04-22 |
Genre | : Science |
ISBN | : 9783030964290 |
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This book contains high-quality and original research on computational intelligence for green smart cities research. In recent years, the use of smart city technology has rapidly increased through the successful development and deployment of Internet of Things (IoT) architectures. The citizens' quality of life has been improved in several sensitive areas of the city, such as transportation, buildings, health care, education, environment, and security, thanks to these technological advances Computational intelligence techniques and algorithms enable a computational analysis of enormous data sets to reveal patterns that recur. This information is used to inform and improve decision-making at the municipal level to build smart computational intelligence techniques and sustainable cities for their citizens. Machine intelligence allows us to identify trends (patterns). The smart city could better integrate its transportation network, for example. By offering a better public transportation network adapted to the demand, we could reduce personal vehicles and energy consumption. A smart city could use models to predict the consequences of a change, such as pedestrianizing a street or adding a bike lane. A city can even create a 3D digital twin to test hypothetical projects. This book comprises many state-of-the-art contributions from scientists and practitioners working in machine intelligence and green smart cities. It aspires to provide a relevant reference for students, researchers, engineers, and professionals working in this area or those interested in grasping its diverse facets and exploring the latest advances in machine intelligence for green and sustainable smart city applications.
Pattern Recognition and Computer Vision
Author | : Huimin Ma,Liang Wang,Changshui Zhang,Fei Wu,Tieniu Tan,Yaonan Wang,Jianhuang Lai,Yao Zhao |
Publsiher | : Springer Nature |
Total Pages | : 594 |
Release | : 2021-10-22 |
Genre | : Computers |
ISBN | : 9783030880132 |
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The 4-volume set LNCS 13019, 13020, 13021 and 13022 constitutes the refereed proceedings of the 4th Chinese Conference on Pattern Recognition and Computer Vision, PRCV 2021, held in Beijing, China, in October-November 2021. The 201 full papers presented were carefully reviewed and selected from 513 submissions. The papers have been organized in the following topical sections: Object Detection, Tracking and Recognition; Computer Vision, Theories and Applications, Multimedia Processing and Analysis; Low-level Vision and Image Processing; Biomedical Image Processing and Analysis; Machine Learning, Neural Network and Deep Learning, and New Advances in Visual Perception and Understanding.
MultiMedia Modeling
Author | : Björn Þór Jónsson,Cathal Gurrin,Minh-Triet Tran,Duc-Tien Dang-Nguyen,Anita Min-Chun Hu,Binh Huynh Thi Thanh,Benoit Huet |
Publsiher | : Springer Nature |
Total Pages | : 614 |
Release | : 2022-03-14 |
Genre | : Computers |
ISBN | : 9783030983550 |
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The two-volume set LNCS 13141 and LNCS 13142 constitutes the proceedings of the 28th International Conference on MultiMedia Modeling, MMM 2022, which took place in Phu Quoc, Vietnam, during June 6–10, 2022. The 107 papers presented in these proceedings were carefully reviewed and selected from a total of 212 submissions. They focus on topics related to multimedia content analysis; multimedia signal processing and communications; and multimedia applications and services.
Pattern Recognition Computer Vision and Image Processing ICPR 2022 International Workshops and Challenges
Author | : Jean-Jacques Rousseau,Bill Kapralos |
Publsiher | : Springer Nature |
Total Pages | : 652 |
Release | : 2023-08-09 |
Genre | : Computers |
ISBN | : 9783031377310 |
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This 4-volumes set constitutes the proceedings of the ICPR 2022 Workshops of the 26th International Conference on Pattern Recognition Workshops, ICPR 2022, Montreal, QC, Canada, August 2023. The 167 full papers presented in these 4 volumes were carefully reviewed and selected from numerous submissions. ICPR workshops covered domains related to pattern recognition, artificial intelligence, computer vision, image and sound analysis. Workshops’ contributions reflected the most recent applications related to healthcare, biometrics, ethics, multimodality, cultural heritage, imagery, affective computing, etc.
2019 IEEE International Conference on Visual Communications and Image Processing VCIP
![2019 IEEE International Conference on Visual Communications and Image Processing VCIP](https://youbookinc.com/wp-content/uploads/2024/06/cover.jpg)
Author | : Anonim |
Publsiher | : Unknown |
Total Pages | : 135 |
Release | : 2019 |
Genre | : Electronic Book |
ISBN | : 1728137233 |
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Adversarial Machine Learning
Author | : Aneesh Sreevallabh Chivukula,Xinghao Yang,Bo Liu,Wei Liu,Wanlei Zhou |
Publsiher | : Springer Nature |
Total Pages | : 316 |
Release | : 2023-03-06 |
Genre | : Computers |
ISBN | : 9783030997724 |
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A critical challenge in deep learning is the vulnerability of deep learning networks to security attacks from intelligent cyber adversaries. Even innocuous perturbations to the training data can be used to manipulate the behaviour of deep networks in unintended ways. In this book, we review the latest developments in adversarial attack technologies in computer vision; natural language processing; and cybersecurity with regard to multidimensional, textual and image data, sequence data, and temporal data. In turn, we assess the robustness properties of deep learning networks to produce a taxonomy of adversarial examples that characterises the security of learning systems using game theoretical adversarial deep learning algorithms. The state-of-the-art in adversarial perturbation-based privacy protection mechanisms is also reviewed. We propose new adversary types for game theoretical objectives in non-stationary computational learning environments. Proper quantification of the hypothesis set in the decision problems of our research leads to various functional problems, oracular problems, sampling tasks, and optimization problems. We also address the defence mechanisms currently available for deep learning models deployed in real-world environments. The learning theories used in these defence mechanisms concern data representations, feature manipulations, misclassifications costs, sensitivity landscapes, distributional robustness, and complexity classes of the adversarial deep learning algorithms and their applications. In closing, we propose future research directions in adversarial deep learning applications for resilient learning system design and review formalized learning assumptions concerning the attack surfaces and robustness characteristics of artificial intelligence applications so as to deconstruct the contemporary adversarial deep learning designs. Given its scope, the book will be of interest to Adversarial Machine Learning practitioners and Adversarial Artificial Intelligence researchers whose work involves the design and application of Adversarial Deep Learning.