A framework for noise-power spectrum analysis of multidimensional images.
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[1] R. Bracewell. The Fourier Transform and Its Applications , 1966 .
[2] J. Bendat,et al. Random Data: Analysis and Measurement Procedures , 1971 .
[3] J. C. Dainty,et al. Image Science: Principles, Analysis and Evaluation of Photographic-Type Imaging Processes , 1974 .
[4] K. Hanson,et al. Detectability in computed tomographic images. , 1979, Medical physics.
[5] R. F. Wagner,et al. Application of information theory to the assessment of computed tomography. , 1979, Medical physics.
[6] L. Feldkamp,et al. Practical cone-beam algorithm , 1984 .
[7] M. Giger,et al. Investigation of basic imaging properties in digital radiography. 2. Noise Wiener spectrum. , 1984, Medical physics.
[8] John G. Proakis,et al. Probability, random variables and stochastic processes , 1985, IEEE Trans. Acoust. Speech Signal Process..
[9] M. Rabbani,et al. Detective quantum efficiency of imaging systems with amplifying and scattering mechanisms. , 1987, Journal of the Optical Society of America. A, Optics and image science.
[10] M F Kijewski,et al. The noise power spectrum of CT images. , 1987, Physics in medicine and biology.
[11] Larry E. Antonuk,et al. Considerations for High Frame Rate Operation of Two-Dimensional a-Si:H Imaging Arrays , 1993 .
[12] A Fenster,et al. A spatial-frequency dependent quantum accounting diagram and detective quantum efficiency model of signal and noise propagation in cascaded imaging systems. , 1994, Medical physics.
[13] M J Yaffe,et al. Analysis of the spatial-frequency-dependent DQE of optically coupled digital mammography detectors. , 1994, Medical physics.
[14] H. Blume,et al. DQE(f) of four generations of computed radiography acquisition devices. , 1995, Medical physics.
[15] Perry Sprawls,et al. The Expanding role of medical physics in diagnostic imaging , 1997 .
[16] J A Rowlands,et al. Digital radiology using active matrix readout of amorphous selenium: theoretical analysis of detective quantum efficiency. , 1997, Medical physics.
[17] J Yorkston,et al. Empirical and theoretical investigation of the noise performance of indirect detection, active matrix flat-panel imagers (AMFPIs) for diagnostic radiology. , 1997, Medical physics.
[18] I. Blevis,et al. Digital radiology using active matrix readout of amorphous selenium: construction and evaluation of a prototype real-time detector. , 1997, Medical physics.
[19] Ruola Ning,et al. Selenium flat-panel detector-based volume tomographic angiography imaging: phantom studies , 1998, Medical Imaging.
[20] J A Rowlands,et al. Digital x-ray imaging using amorphous selenium: reduction of aliasing. , 1998, Medical physics.
[21] Jeffrey H. Siewerdsen,et al. DQE and system optimization for indirect-detection flat-panel imagers in diagnostic radiology , 1998, Medical Imaging.
[22] J Yorkston,et al. Signal, noise power spectrum, and detective quantum efficiency of indirect-detection flat-panel imagers for diagnostic radiology. , 1998, Medical physics.
[23] Jean-Pierre Moy. Image quality of scintillator-based x-ray electronic imagers , 1998, Medical Imaging.
[24] K Stierstorfer,et al. Self-normalizing method to measure the detective quantum efficiency of a wide range of x-ray detectors. , 1999, Medical physics.
[25] J H Siewerdsen,et al. Cone-beam computed tomography with a flat-panel imager: effects of image lag. , 1999, Medical physics.
[26] John Moore Boudry. Operation of amorphous silicon detectors for chest radiography within system latency requirements , 1999, Medical Imaging.
[27] Isaias D. Job,et al. Characterization of a third-generation multimode sensor panel , 1999, Medical Imaging.
[28] D. Jaffray,et al. A ghost story: spatio-temporal response characteristics of an indirect-detection flat-panel imager. , 1999, Medical physics.
[29] D. Jaffray,et al. Optimization of x-ray imaging geometry (with specific application to flat-panel cone-beam computed tomography). , 2000, Medical physics.
[30] P. Granfors,et al. Performance of a 41X41-cm2 amorphous silicon flat panel x-ray detector for radiographic imaging applications. , 2000, Medical physics.
[31] J H Siewerdsen,et al. Strategies to improve the signal and noise performance of active matrix, flat-panel imagers for diagnostic x-ray applications. , 2000, Medical physics.
[32] J H Siewerdsen,et al. Cone-beam computed tomography with a flat-panel imager: initial performance characterization. , 2000, Medical physics.
[33] S Suryanarayanan,et al. Full breast digital mammography with an amorphous silicon-based flat panel detector: physical characteristics of a clinical prototype. , 2000, Medical physics.
[34] Harold L. Kundel,et al. Handbook of Medical Imaging, Volume 1. Physics and Psychophysics , 2000 .
[35] Hiroshi Aradate,et al. Large area 2-dimensional detector for real-time 3-dimensional CT (4D-CT) , 2001 .
[36] Ian A. Cunningham,et al. Detective quantum efficiency of fluoroscopic systems: the case for a spatial-temporal approach (or, does the ideal observer have infinite patience?) , 2001, SPIE Medical Imaging.
[37] I A Cunningham,et al. Parallel cascades: new ways to describe noise transfer in medical imaging systems. , 2001, Medical physics.
[38] Hiroshi Aradate,et al. Large-area two-dimensional detector for real-time three-dimensional CT (4D CT) , 2001, SPIE Medical Imaging.
[39] J A Rowlands,et al. Effects of characteristic x rays on the noise power spectra and detective quantum efficiency of photoconductive x-ray detectors. , 2001, Medical physics.
[40] D. Jaffray,et al. Cone-beam computed tomography with a flat-panel imager: magnitude and effects of x-ray scatter. , 2001, Medical physics.