Temporal back-projection algorithms for photoacoustic tomography with integrating line detectors

被引:130
作者
Burgholzer, P. [1 ]
Bauer-Marschallinger, J. [1 ]
Gruen, H. [1 ]
Haltmeier, M. [2 ]
Paltauf, G. [3 ]
机构
[1] Upper Austrian Res GmbH, Dept Sensor Technol, A-4020 Linz, Austria
[2] Univ Innsbruck, Dept Comp Sci, A-6020 Innsbruck, Austria
[3] Karl Franzens Univ Graz, Dept Phys, A-8010 Graz, Austria
关键词
D O I
10.1088/0266-5611/23/6/S06
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
Line detectors integrate the measured acoustic pressure over a straight line and can be realized by a thin line of a piezoelectric film or by a laser beam as part of an interferometer. Photoacoustic imaging with integrating line detectors is performed by rotating a sample or the detectors around an axis perpendicular to the line detectors. The subsequent reconstruction is a two-step procedure: first, two-dimensional (2D) projections parallel to the line detector are reconstructed, then the three-dimensional (3D) initial pressure distribution is obtained by applying the 2D inverse Radon transform. The first step involves an inverse problem for the 2D wave equation. Wave propagation in two dimensions is significantly different from 3D wave propagation and reconstruction algorithms from 3D photoacoustic imaging cannot be used directly. By integrating recently established 3D formulae in the direction parallel to the line detector we obtain novel back-projection formulae in two dimensions. Numerical simulations demonstrate the capability of the derived reconstruction algorithms, also for noisy measurement data, limited angle problems and 3D reconstruction with integrating line detectors.
引用
收藏
页码:S65 / S80
页数:16
相关论文
共 47 条
[1]   ON THE DETERMINATION OF A FUNCTION FROM SPHERICAL AVERAGES [J].
ANDERSSON, LE .
SIAM JOURNAL ON MATHEMATICAL ANALYSIS, 1988, 19 (01) :214-232
[2]   Opto-acoustic tomography of breast cancer with arc-array-transducer [J].
Andreev, VG ;
Karabutov, AA ;
Solomatin, SV ;
Savateeva, EV ;
Aleynikov, V ;
Zhulina, YV ;
Fleming, RD ;
Oraevsky, AA .
BIOMEDICAL OPTOACOUSTICS, 2000, 3916 :36-47
[3]  
[Anonymous], 1993, METHODEN MATH PHYS
[4]  
Bracewell R.N., 1965, The Fourier Transform and Its Applications
[5]   Thermoacoustic tomography with integrating area and line detectors [J].
Burgholzer, P ;
Hofer, C ;
Paltauf, G ;
Haltmeier, M ;
Scherzer, O .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2005, 52 (09) :1577-1583
[6]   Thermoacoustic tomography using fiber based Fabry-Perot interferometer as an integrating line detector [J].
Burgholzer, P. ;
Hofer, C. ;
Matt, G. J. ;
Paltauf, G. ;
Haltmeier, M. ;
Scherzer, O. .
PHOTONS PLUS ULTRASOUND: IMAGING AND SENSING 2006, 2006, 6086
[7]  
BURGHOLZER P, 2005, P SOC PHOTO-OPT INS, V5864, P3
[8]   Exact and approximative imaging methods for photoacoustic tomography using an arbitrary detection surface [J].
Burgholzer, Peter ;
Matt, Gebhard J. ;
Haltmeier, Markus ;
Paltauf, Guenther .
PHYSICAL REVIEW E, 2007, 75 (04)
[9]  
DIEBOLD GJ, 1994, ACUSTICA, V80, P339
[10]   Optoacoustic technique for noninvasive monitoring of blood oxygenation: a feasibility study [J].
Esenaliev, RO ;
Larina, IV ;
Larin, KV ;
Deyo, DJ ;
Motamedi, M ;
Prough, DS .
APPLIED OPTICS, 2002, 41 (22) :4722-4731