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2014 International Conference on Multisensor Fusion and Information Integration for Intelligent Systems (MFI)

2014 International Conference on Multisensor Fusion and Information Integration for Intelligent Systems (MFI)
Author: IEEE Staff
Publisher:
Total Pages:
Release: 2014-09-28
Genre:
ISBN: 9781479967339

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Innovative results on multisensory fusion topics are invited such as sensor actuator networks, distributed and cloud architectures, bio inspired systems and evolutionary approaches, methods of cognitive sensor fusion, Bayesian approaches, fuzzy systems and neural networks, biomedical applications, autonomous vehicles (land, sea, air), localization, tracking, SLAM, 3D perception, manipulation with multi finger hands, robotics, micro nano systems, information fusion, sensors, multimodal integration in HCI and HRI, etc


MFI 2014

MFI 2014
Author:
Publisher:
Total Pages:
Release: 2014
Genre: Intelligent control systems
ISBN:

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Multisensor Fusion and Integration for Intelligent Systems

Multisensor Fusion and Integration for Intelligent Systems
Author: Lee Suk-han
Publisher: Springer Science & Business Media
Total Pages: 476
Release: 2009-05-28
Genre: Technology & Engineering
ISBN: 354089859X

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The ?eld of multi-sensor fusion and integration is growing into signi?cance as our societyisintransitionintoubiquitouscomputingenvironmentswithroboticservices everywhere under ambient intelligence. What surround us are to be the networks of sensors and actuators that monitor our environment, health, security and safety, as well as the service robots, intelligent vehicles, and autonomous systems of ever heightened autonomy and dependability with integrated heterogeneous sensors and actuators. The ?eld of multi-sensor fusion and integration plays key role for m- ing the above transition possible by providing fundamental theories and tools for implementation. This volume is an edition of the papers selected from the 7th IEEE International Conference on Multi-Sensor Integration and Fusion, IEEE MFI‘08, held in Seoul, Korea, August 20–22, 2008. Only 32 papers out of the 122 papers accepted for IEEE MFI’08 were chosen and requested for revision and extension to be included in this volume. The 32 contributions to this volume are organized into three parts: Part I is dedicated to the Theories in Data and Information Fusion, Part II to the Multi-Sensor Fusion and Integration in Robotics and Vision, and Part III to the Applications to Sensor Networks and Ubiquitous Computing Environments. To help readers understand better, a part summary is included in each part as an introduction. The summaries of Parts I, II, and III are prepared respectively by Prof. Hanseok Ko, Prof. Sukhan Lee and Prof. Hernsoo Hahn.


Multisensor Fusion and Integration in the Wake of Big Data, Deep Learning and Cyber Physical System

Multisensor Fusion and Integration in the Wake of Big Data, Deep Learning and Cyber Physical System
Author: Sukhan Lee
Publisher: Springer
Total Pages: 306
Release: 2018-07-04
Genre: Technology & Engineering
ISBN: 3319905090

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This book includes selected papers from the 13th IEEE International Conference on Multisensor Integration and Fusion for Intelligent Systems (MFI 2017) held in Daegu, Korea, November 16–22, 2017. It covers various topics, including sensor/actuator networks, distributed and cloud architectures, bio-inspired systems and evolutionary approaches, methods of cognitive sensor fusion, Bayesian approaches, fuzzy systems and neural networks, biomedical applications, autonomous land, sea and air vehicles, localization, tracking, SLAM, 3D perception, manipulation with multifinger hands, robotics, micro/nano systems, information fusion and sensors, and multimodal integration in HCI and HRI. The book is intended for robotics scientists, data and information fusion scientists, researchers and professionals at universities, research institutes and laboratories.


Proceedings of 2022 Chinese Intelligent Systems Conference

Proceedings of 2022 Chinese Intelligent Systems Conference
Author: Yingmin Jia
Publisher: Springer Nature
Total Pages: 916
Release: 2022-09-26
Genre: Technology & Engineering
ISBN: 9811962030

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This book constitutes the proceedings of the 18th Chinese Intelligent Systems Conference, CISC 2022, which was held during October 15–16, 2022, in Beijing, China. The papers in these proceedings deal with various topics in the field of intelligent systems and control, such as multi-agent systems, complex networks, intelligent robots, complex system theory and swarm behavior, event-triggered control and data-driven control, robust and adaptive control, big data and brain science, process control, intelligent sensor and detection technology, deep learning and learning control guidance, navigation and control of aerial vehicles.


Proceedings of ELM-2016

Proceedings of ELM-2016
Author: Jiuwen Cao
Publisher: Springer
Total Pages: 286
Release: 2017-05-25
Genre: Technology & Engineering
ISBN: 3319574213

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This book contains some selected papers from the International Conference on Extreme Learning Machine 2016, which was held in Singapore, December 13-15, 2016. This conference will provide a forum for academics, researchers and engineers to share and exchange R&D experience on both theoretical studies and practical applications of the ELM technique and brain learning. Extreme Learning Machines (ELM) aims to break the barriers between the conventional artificial learning techniques and biological learning mechanism. ELM represents a suite of (machine or possibly biological) learning techniques in which hidden neurons need not be tuned. ELM learning theories show that very effective learning algorithms can be derived based on randomly generated hidden neurons (with almost any nonlinear piecewise activation functions), independent of training data and application environments. Increasingly, evidence from neuroscience suggests that similar principles apply in biological learning systems. ELM theories and algorithms argue that “random hidden neurons” capture an essential aspect of biological learning mechanisms as well as the intuitive sense that the efficiency of biological learning need not rely on computing power of neurons. ELM theories thus hint at possible reasons why the brain is more intelligent and effective than current computers. ELM offers significant advantages over conventional neural network learning algorithms such as fast learning speed, ease of implementation, and minimal need for human intervention. ELM also shows potential as a viable alternative technique for large‐scale computing and artificial intelligence. This book covers theories, algorithms ad applications of ELM. It gives readers a glance of the most recent advances of ELM.