Construction of parallel and distributed static simulation system based on augmented reality

被引:0
作者
School of Information, Renmin University of China, Beijing 100872, China [1 ]
机构
[1] School of Information, Renmin University of China
来源
Zhang, J.-L. (zhangjinling_li@163.com) | 1600年 / Beijing University of Posts and Telecommunications卷 / 19期
关键词
augmented reality; parallel and distributed structure; registration; synchronization control;
D O I
10.1016/S1005-8885(11)60291-4
中图分类号
学科分类号
摘要
This article puts forward a kind of parallel and distributed static augmented scene system structure to improve the performance of real time augmented simulation system. Based on static registration technique, several groups of processing nodes do parallel scene pictures taking, 3D registration and virtual-real merging. Process on different nodes is controlled by uniform synchronization mechanism and network transmitting. Wide field of view image can be obtained from image mosaic operation and displayed by wide view display system. Detailed system architecture, registration algorithm, method how to determine camera position and synchronization mechanism between each process node are introduced. The experiment result can validate the good performance of the designed system. © 2012 The Journal of China Universities of Posts and Telecommunications.
引用
收藏
页码:117 / 121
页数:4
相关论文
共 15 条
[1]  
Azuma R.T., A survey of augmented reality, Presence: Teleoperators and Virtual Environments, 6, 4, pp. 355-385, (1997)
[2]  
Wang Y.T., Augmented Reality Research Progress. Technical Report, (2005)
[3]  
Zhu G.C., Wang T.M., Chou W.S., Et al., Research on augmented reality based teleoperation system, Journal of System Simulation, 16, 5, pp. 943-946, (2004)
[4]  
Chen J.J., Research headway of overcoming time-delay infection for teleoperation of space robot, Measurement & Control Technology, 26, 2, pp. 1-4, (2007)
[5]  
Liu G.X., Yu L.Z., Sun F.C., Et al., Augmented reality system for space-teleoperation robot, Microcomputer Information, 26, 112, pp. 148-149, (2010)
[6]  
Zheng Y., Xie T., Xie L.J., Et al., Potential applications of augmented reality in manned space engineering, Manned Spaceflight, 5, pp. 46-52, (2011)
[7]  
Kanbara M., Yokoya N., Real-time estimation of light source environment for photorealistic augmented reality, Proceedings of the IEEE 17th International Conference on Pattern Recognition (ICPR'04): Vol 2, Aug 23-26, 2004, Cambridge, UK, pp. 911-914, (2004)
[8]  
Diverdi S., Hollerer T., Combing Dynamic Physical and Virtual Illumination in Augmented Reality. Technical Report, (2004)
[9]  
Zhu J.J., Pan Z.G., Computer vision based occlusion handling algorithm for video-based augmented reality, Journal of Computer-aided Design & Computer Graphics, 19, 12, pp. 1624-1628, (2007)
[10]  
Chen P., Guan T., Affine reprojection based registration method for augmented reality, Journal of Computer-aided Design & Computer Graphics, 22, 3, pp. 480-486, (2010)