Medical interface research at the HIT Lab

被引:1
作者
Weghorst S. [1 ]
Seibel E. [1 ]
Oppenheimer P. [1 ]
Hoffman H. [1 ]
Schowengerdt B. [1 ]
Furness T.A. [1 ]
机构
[1] Human Interface Technology Laboratory, University of Washington, Seattle, WA
关键词
Endoscopy; Medical informatics; Mixed reality; Rehabilitation; Surgical simulation; Virtual reality;
D O I
10.1007/s10055-008-0107-9
中图分类号
学科分类号
摘要
The Human Interface Technology Laboratory (HIT Lab) is a multi-disciplinary research and development lab whose work centers on novel approaches to human interface technology. Lab researchers represent a wide range of disciplines from across the University of Washington campus, including engineering, medicine, education, social sciences, architecture, and the design arts. We describe here a representative sampling of past and current HIT Lab research and development activities related to medicine, including virtual reality and augmented/mixed reality applications for direct patient therapy, tools for basic medical education and procedure training, novel approaches to medical image acquisition and display, and new visualization methods in medical informatics. © Springer-Verlag London Limited 2008.
引用
收藏
页码:201 / 214
页数:13
相关论文
共 55 条
[41]  
Sankaranarayanan G., Weghorst S., Sanner M.F., Gillet A., Olson A.J., Role of haptics in teaching structural molecular biology, Proceedings of 11th International Symposium on Haptic Interfaces for Virtual Environment and Teleoperator Systems, pp. 266-363, (2003)
[42]  
Sanner M.F., Python: A programming language for software integration and development, J Mol Graph Model, 17, 1, pp. 57-61, (1999)
[43]  
Schowengerdt B.T., Seibel E.J., True 3D scanned voxel displays using single and multiple light sources, J Soc Inf Disp, 14, 2, pp. 135-143, (2006)
[44]  
Seibel E.J., Smithwick Q.Y.L., Unique features of optical scanning, single fiber endoscopy, Lasers Surg Med, 30, 3, pp. 177-183, (2002)
[45]  
Seibel E.J., Smithwick Q.Y.J., Brown C.M., Reinhall P.G., Single fiber flexible endoscope: General design for small size, high resolution, and wide field of view, Proceedings of the SPIE, Biomonitoring and Endoscopy Technologies, 4158, pp. 29-39, (2001)
[46]  
Seibel E.J., Johnston R.S., Melville C.D., A full-color scanning fiber endoscope, Optical Fibers and Sensors For Medical Diagnostics and Treatment Applications, Proceedings of SPIE, 6083, pp. 9-16, (2006)
[47]  
Seibel E.J., Carroll R.E., Dominitz J.A., Johnston R.S., Melville C.D., Lee C.M., Seitz S.M., Kimmey M.B., Tethered-capsule endoscopy, a low-cost and high-performance alternative technology for the screening of esophageal cancer and Barrett's esophagus, IEEE Trans Biomed Eng, 55, 3, pp. 1032-1042, (2008)
[48]  
Steele E., Grimmer K., Thomas B., Mulley B., Fulton I., Hoffman H., Virtual reality as a pediatric pain modulation technique: A case study, Cyberpsychol Behav, 6, pp. 633-638, (2003)
[49]  
Sweet R.M., Oppenheimer P., Porter J., Hendrickson D., Gupta A., Weghorst S., The simulation of bleeding in endoscopic procedures using virtual reality, J Endourol, 16, 7, pp. 451-455, (2002)
[50]  
Sweet R.M., Kowalewski T., Oppenheimer P., Berkley J., Satava R., Weghorst S., Validation of the UW TURP simulator as an assessment and training tool, J Urol, 172, 5 PART 1, pp. 1953-1957, (2004)