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类脑智能与视觉感知(英文版 精)

类脑智能与视觉感知(英文版 精)

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作 者: 暂缺
出版社: 华中科技大学出版社
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标 签: 暂缺

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ISBN: 9787568050791 出版时间: 2019-03-01 包装: 精装
开本: 16开 页数: 166 字数:  

内容简介

  《类脑智能与视觉感知(英文版)》主要介绍关于大脑启发的智力和视觉感知(BIVP)研究的新成果。《类脑智能与视觉感知(英文版)》著者们收集BIVP的新的研究假设,包括介绍脑科学和视觉脑假说。此外,本文还介绍了BIVP的理论和算法,包括信息素积累与迭代、神经认知计算机制、核心模块的集成与调度、大脑感知、运动与控制。《类脑智能与视觉感知(英文版)》不仅包含基本概念、理论和规律,以前分散在许多有影响的期刊和会议上,而且包含作者的项目中的一系列新研究进展,包括中国科学院的“西部之光”计划(XBBS-2014-16),国家自然科学院中国科学基金会(41571299)、中国“千人计划”(Y47161)、国家基础研究计划(2013CB035502)和国家高技术研究发展计划(2013AA122302)。《类脑智能与视觉感知(英文版)》即可以供大学研究人员、研发工程师、本科生和研究生学习以及对机器人、脑认知或计算机视觉感兴趣的读者参考。

作者简介

  Wenfeng Wang is currently the leader of a CAS “Light of West China” Program (XBBS-2014-16) and has been invited as the director of the Institute of Artificial Intelligence, the College of Brain-inspired Intelligence, Chinese Academy of Sciences (to be set up in Nov. 2017). He also serves as a Distinguished Professor and the academic director of the R&D and Promotion center of artificial intelligence in the Robot Group of Harbin Institute of Technology, Hefei, China. His major research interests include functional analysis and intelligent algorithms with applications to video surveillance, ecologic modelling, geographic data mining and etc. He is the editor in chief of the book COMPUTER VISION AND MACHINE COGNITION (in Chinese), which has been published by Beihang University in China. Wenfeng Wang is enthusiastic in academic communications in any way and he served as PC members and Session chairs of a series of international conferences associated with the brain-inspired intelligence and visual cognition, including the 2017 IEEE International Conference on Advanced Robotics and Mechatronics, the 2017 International Conference on Information Science, Control Engineering and the 3rd International Conference on Cognitive Systems and Information Processing and etc. Xiangyang Deng is currently a full assistant professor with the Institute of Information Fusion, Naval Aeronautical University, Yantai, China. His current research interests include video big data, deep learning and computational intelligence. Xiangyang Deng has rich experience in R & D management. He won 3 First Class Prizes and 2 Third Class Prizes of Military Scientific and Technological Progress Award. He published 9 papers about the topics in the past 3 years while 5 of them were indexed by SCI, EI. He contributed to a monograph SWARM INTELLIGENCE AND APPLICATIONS (in Chinese), which was published by National Defense Industry Press. He has 2 patents and obtained 3 items of software copyright.Liang Ding is currently a full Professor with the State Key Laboratory of Robotics and System, Harbin Institute of Technology, Harbin, China. His current research interests include intelligent control and robotics, including planetary rovers and legged robots. Dr. Ding was a recipient of the 2017 ISTVS Söhne-Hata-Jurecka Award, the 2011 National Award for Technological Invention of China and the 2009/2013/2015 Award for Technological Invention of Heilongjiang Province. He received the Hiwin Excellent Doctoral Dissertation Award, the Best Conference Paper Award of IEEE ARM, and the Best Paper in Information Award of the 2012 IEEE ICIA Conference. Liang Ding is an influential scientist in intelligent control of robots and has published more than 120 authored or co-authored papers in journals and conference proceedings.Limin Zhang is currently a Full Professor and Tutor for Doctor with the Institute of Information Fusion, Naval Aeronautical University, Yantai, Shangdong, China. He was a senior visiting scholar at university college london (UCL) Modern Space Analysis and Research Center (CASA) from 2006 to 2007. His current research interests include signal processing, Complex system simulation and computational intelligence. More than 180 papers are published and 80 papers are indexed by SCI, EI. 2 monographs are published and 20 patents are applied and 6 were authorized. Limin Zhang has won two Second Class Prizes of National Scientific and Technological Progress Award and five First Class Prizes of Military Scientific and Technological Progress Award. He has been selected as outstanding scientists in national science and technology and millions of talents in engineering research field and he is enjoying special allowance from the State Council.

图书目录

1 Introduction of Brain Cognition
1.1 Background
1.2 Theory and Mechanisms
1.2.1 Brain Mechanisms to Determine Attention Value of Information in the Video
1.2.2 Swarm Intelligence to Implement the Above Biological Mechanisms
1.2.3 Models Framework for Social Computing in Object Detection
1.2.4 Swarm Optimization and Classification of the Target Impulse Responses
1.2.5 Performance of Integration Models on a Series of Challenging Real Data
1.3 From Detection to Tracking
1.3.1 Brain Mechanisms for Select Important Objects to Track
1.3.2 Mechanisms for Motion Tracking by Brain-Inspired Robots
1.3.3 Sketch of Algorithms to Implement Biological Mechanisms in the Model
1.3.4 Model Framework of the Brain-Inspired Compressive Tracking and Future Applications
1.4 Objectives and Contributions
1.5 Outline of the Book
References

2 The Vision-Brain Hypothesis
2.1 Background
2.2 Attention Mechanisms
2.2.1 Attention Mechanisms in Manned Driving
2.2.2 Attention Mechanisms in Unmanned Driving
2.2.3 Implications to the Accuracy of Cognition
2.2.4 Implications to the Speed of Response
2.2.5 Future Treatment of Regulated Attention
2.3 Locally Compressive Cognition
2.3.1 Construction of a Compressive Attention
2.3.2 Locating Centroid of a Region of Interest
2.3.3 Parameters and Classifiers of the Cognitive System
2.3.4 Treating Noise Data in the Cognition Process
2.4 An Example of the Vision-Brain
2.4.1 Illustration of the Cognitive System
2.4.2 Definition of a Vision-Brain
2.4.3 Implementation of the Vision-Brain
References

3 Pheromone Accumulation and Iteration
3.1 Background
3.2 Improving the Classical Ant Colony Optimization
3.2.1 Model of Ants' Moving Environment
3.2.2 Ant Colony System: A Classical Model
3.2.3 The Pheromone Modification Strategy
3.2.4 Adaptive Adjustment of Involved Sub-paths
3.3 Experiment Tests of the SPB-ACO
3.3.1 Test of SPB Rule
3.3.2 Test of Comparing the SPB-ACO with ACS
3.4 ACO Algorithm with Pheromone Marks
3.4.1 The Discussed Background Problem
3.4.2 The Basic Model of PM-ACO
3.4.3 The Improvement of PM-ACO
3.5 Two Coefficients of Ant Colony's Evolutionary Phases
3.5.1 Colony Diversity Coefficient
3.5.2 Elitist Individual Persistence Coefficient
3.6 Experimental Tests of PM-ACO
3.6.1 Tests in Problems Which Have Different Nodes
3.6.2 Relationship Between CDC and EIPC
3.6.3 Tests About the Best-Ranked Nodes
3.7 Further Applications of the Vision-Brain Hypothesis
3.7.1 Scene Understanding and Partition
3.7.2 Efficiency of the Vision-Brain in Face Recognition
References

4 Neural Cognitive Computing Mechanisms
4.1 Background
4.2 The Full State Constrained Wheeled Mobile Robotic System
4.2.1 System Description
4.2.2 Useful Technical Lemmas and Assumptions
4.2.3 NN Approximation
4.3 The Controller Design and Theoretical Analyses
4.3.1 Controller Design
4.3.2 Theoretic Analyses of the System Stability
4.4 Validation of the Nonlinear WMR System
4.4.1 Modeling Description of the Nonlinear WMR System
4.4.2 Evaluating Performance of the Nonlinear WMR System
4.5 System Improvement by Reinforced Learning
4.5.1 Scheme to Enhance the Wheeled Mobile Robotic System
4.5.2 Strategic Utility Function and Critic NN Design
4.6 Stability Analysis of the Enhanced WMR System
4.6.1 Action NN Design Under the Adaptive Law
4.6.2 Boundedness Approach and the Tracking Errors Convergence
4.6.3 Simulation and Discussion of the WMR System
References

5 Integration and Scheduling of Core Modules
5.1 Background
5.2 Theoretical Analyses
5.2.1 Preliminary Formulation
5.2.2 Three-Layer Architecture
5.3 Simulation and Discussion

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