TY - JOUR
T1 - Augmented reality based real-time subcutaneous vein imaging system
AU - Ai, Danni
AU - Yang, Jian
AU - Fan, Jingfan
AU - Zhao, Yitian
AU - Song, Xianzheng
AU - Shen, Jianbing
AU - Shao, Ling
AU - Wang, Yongtian
N1 - Publisher Copyright:
© 2016 Optical Society of America.
PY - 2016/7/1
Y1 - 2016/7/1
N2 - A novel 3D reconstruction and fast imaging system for subcutaneous veins by augmented reality is presented. The study was performed to reduce the failure rate and time required in intravenous injection by providing augmented vein structures that back-project superimposed veins on the skin surface of the hand. Images of the subcutaneous vein are captured by two industrial cameras with extra reflective near-infrared lights. The veins are then segmented by a multiple-feature clustering method. Vein structures captured by the two cameras are matched and reconstructed based on the epipolar constraint and homographic property. The skin surface is reconstructed by active structured light with spatial encoding values and fusion displayed with the reconstructed vein. The vein and skin surface are both reconstructed in the 3D space. Results show that the structures can be precisely back-projected to the back of the hand for further augmented display and visualization. The overall system performance is evaluated in terms of vein segmentation, accuracy of vein matching, feature points distance error, duration times, accuracy of skin reconstruction, and augmented display. All experiments are validated with sets of real vein data. The imaging and augmented system produces good imaging and augmented reality results with high speed.
AB - A novel 3D reconstruction and fast imaging system for subcutaneous veins by augmented reality is presented. The study was performed to reduce the failure rate and time required in intravenous injection by providing augmented vein structures that back-project superimposed veins on the skin surface of the hand. Images of the subcutaneous vein are captured by two industrial cameras with extra reflective near-infrared lights. The veins are then segmented by a multiple-feature clustering method. Vein structures captured by the two cameras are matched and reconstructed based on the epipolar constraint and homographic property. The skin surface is reconstructed by active structured light with spatial encoding values and fusion displayed with the reconstructed vein. The vein and skin surface are both reconstructed in the 3D space. Results show that the structures can be precisely back-projected to the back of the hand for further augmented display and visualization. The overall system performance is evaluated in terms of vein segmentation, accuracy of vein matching, feature points distance error, duration times, accuracy of skin reconstruction, and augmented display. All experiments are validated with sets of real vein data. The imaging and augmented system produces good imaging and augmented reality results with high speed.
UR - http://www.scopus.com/inward/record.url?scp=84977083878&partnerID=8YFLogxK
U2 - 10.1364/BOE.7.002565
DO - 10.1364/BOE.7.002565
M3 - Article
AN - SCOPUS:84977083878
SN - 2156-7085
VL - 7
SP - 2565
EP - 2585
JO - Biomedical Optics Express
JF - Biomedical Optics Express
IS - 7
M1 - 261571
ER -