Design and implementation of a multifrequency near-infrared diffuse optical tomography system

被引:64
作者
Gulsen, G [1 ]
Xiong, B [1 ]
Birgul, O [1 ]
Nalcioglu, O [1 ]
机构
[1] Univ Calif Irvine, Ctr Funct Oncoimaging, Tu & Yuen Ctr Funct Onocimaging, Irvine, CA 92697 USA
关键词
multifrequency; optical tomography; network analyzer;
D O I
10.1117/1.2161199
中图分类号
Q5 [生物化学];
学科分类号
071010 [生物化学与分子生物学]; 081704 [应用化学];
摘要
The design and implementation of a multifrequency and multispectral diffuse optical tomography system is described. Four wavelengths are utilized: 665, 785, 808, and 830 nm. The system is based on a network analyzer, which provides rf modulation signals for the laser diodes, as well as measures the amplitude and the phase of the detected signals. Six different modulation frequencies ranging from 110 to 280 MHz are used. The details of instrumentation, calibration, data acquisition, and performance of the system are given. A finite element algorithm is used to solve the diffusion equation, and an inverse solver based on this forward solver is implemented to calculate the absorption and scattering maps from the acquired data. Data acquisition for one wavelength is completed in less than 2.5 min for a single modulation frequency. The measurement repeatability is 0.5% in ac intensity and 0.2 deg in phase. The performance of the system is evaluated with phantom studies. A multifrequency reconstruction algorithm is used, in which a single absorption and scattering image pair is obtained using the whole dataset obtained at different modulation frequencies. It is shown that the multifrequency reconstruction approach provides superior image quality compared to the single frequency counterpart. (c) 2006 Society of Photo- Optical Instrumentation Engineers.
引用
收藏
页数:10
相关论文
共 28 条
[1]
Optical imaging in medicine .2. Modelling and reconstruction [J].
Arridge, SR ;
Hebden, JC .
PHYSICS IN MEDICINE AND BIOLOGY, 1997, 42 (05) :841-853
[2]
Three-dimensional optical-tomographic localization of changes in absorption coefficients in the human brain [J].
Bluestone, A ;
Abdoulaev, G ;
Barbour, R ;
Schmitz, C ;
Hielscher, AH .
OPTICAL TOMOGRAPHY AND SPECTROSCOPY OF TISSUE IV, 2001, 4250 :258-268
[3]
The accuracy of near infrared spectroscopy and imaging during focal changes in cerebral hemodynamics [J].
Boas, DA ;
Gaudette, T ;
Strangman, G ;
Cheng, XF ;
Marota, JJA ;
Mandeville, JB .
NEUROIMAGE, 2001, 13 (01) :76-90
[4]
Spectroscopy enhances the information content of optical mammography [J].
Cerussi, AE ;
Jakubowski, D ;
Shah, N ;
Bevilacqua, F ;
Lanning, R ;
Berger, AJ ;
Hsiang, D ;
Butler, J ;
Holcombe, RF ;
Tromberg, BJ .
JOURNAL OF BIOMEDICAL OPTICS, 2002, 7 (01) :60-71
[5]
Phase measurement of light absorption and scatter in human tissue [J].
Chance, B ;
Cope, M ;
Gratton, E ;
Ramanujam, N ;
Tromberg, B .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1998, 69 (10) :3457-3481
[6]
Three-dimensional diffuse optical tomography in the parallel plane transmission geometry: Evaluation of a hybrid frequency domain/continuous wave clinical system for breast imaging [J].
Culver, JP ;
Choe, R ;
Holboke, MJ ;
Zubkov, L ;
Durduran, T ;
Slemp, A ;
Ntziachristos, V ;
Chance, B ;
Yodh, AG .
MEDICAL PHYSICS, 2003, 30 (02) :235-247
[7]
Multiwavelength three-dimensional near-infrared tomography of the breast: initial simulation, phantom, and clinical results [J].
Dehghani, H ;
Pogue, BW ;
Poplack, SP ;
Paulsen, KD .
APPLIED OPTICS, 2003, 42 (01) :135-145
[8]
Frequency-domain optical mammography: Edge effect corrections [J].
Fantini, S ;
Franceschini, MA ;
Gaida, G ;
Gratton, E ;
Jess, H ;
Mantulin, WW ;
Moesta, KT ;
Schlag, PM ;
Kaschke, M .
MEDICAL PHYSICS, 1996, 23 (01) :149-157
[9]
AN IMPROVED DESIGN FOR A STABLE AND REPRODUCIBLE PHANTOM MATERIAL FOR USE IN NEAR-INFRARED SPECTROSCOPY AND IMAGING [J].
FIRBANK, M ;
ODA, M ;
DELPY, DT .
PHYSICS IN MEDICINE AND BIOLOGY, 1995, 40 (05) :955-961
[10]
Improvement of image quality in diffuse optical tomography by use of full time-resolved data [J].
Gao, F ;
Zhao, HJ ;
Yamada, Y .
APPLIED OPTICS, 2002, 41 (04) :778-791