Conversion of mammographic images to appear with the noise and sharpness characteristics of a different detector and x-ray system

被引:54
作者
Mackenzie, Alistair [1 ,2 ]
Dance, David R. [1 ,2 ]
Workman, Adam [3 ]
Yip, Mary [2 ]
Wells, Kevin [4 ]
Young, Kenneth C. [1 ,2 ]
机构
[1] Royal Surrey Cty Hosp, Natl Coordinating Ctr Phys Mammog, Guildford GU2 7XX, Surrey, England
[2] Univ Surrey, Dept Phys, Guildford GU2 7XH, Surrey, England
[3] Forster Green Hosp, No Ireland Reg Med Phys Serv, Belfast BT8 4HD, Antrim, North Ireland
[4] Univ Surrey, Fac Engn & Phys Sci, Ctr Vis Speech & Signal Proc, Guildford GU2 7XH, Surrey, England
基金
英国工程与自然科学研究理事会;
关键词
mammography; simulation; noise power spectra; COMPUTED RADIOGRAPHY SYSTEMS; FIELD DIGITAL MAMMOGRAPHY; DOSE REDUCTION; FILM MAMMOGRAPHY; QUALITY; SIMULATION; PERFORMANCE; GLARE;
D O I
10.1118/1.4704525
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Purpose: Undertaking observer studies to compare imaging technology using clinical radiological images is challenging due to patient variability. To achieve a significant result, a large number of patients would be required to compare cancer detection rates for different image detectors and systems. The aim of this work was to create a methodology where only one set of images is collected on one particular imaging system. These images are then converted to appear as if they had been acquired on a different detector and x-ray system. Therefore, the effect of a wide range of digital detectors on cancer detection or diagnosis can be examined without the need for multiple patient exposures. Methods: Three detectors and x-ray systems [Hologic Selenia (ASE), GE Essential (CSI), Carestream CR (CR)] were characterized in terms of signal transfer properties, noise power spectra (NPS), modulation transfer function, and grid properties. The contributions of the three noise sources (electronic, quantum, and structure noise) to the NPS were calculated by fitting a quadratic polynomial at each spatial frequency of the NPS against air kerma. A methodology was developed to degrade the images to have the characteristics of a different (target) imaging system. The simulated images were created by first linearizing the original images such that the pixel values were equivalent to the air kerma incident at the detector. The linearized image was then blurred to match the sharpness characteristics of the target detector. Noise was then added to the blurred image to correct for differences between the detectors and any required change in dose. The electronic, quantum, and structure noise were added appropriate to the air kerma selected for the simulated image and thus ensuring that the noise in the simulated image had the same magnitude and correlation as the target image. A correction was also made for differences in primary grid transmission, scatter, and veiling glare. The method was validated by acquiring images of a CDMAM contrast detail test object (Artinis, The Netherlands) at five different doses for the three systems. The ASE CDMAM images were then converted to appear with the imaging characteristics of target CR and CSI detectors. Results: The measured threshold gold thicknesses of the simulated and target CDMAM images were closely matched at normal dose level and the average differences across the range of detail diameters were -4% and 0% for the CR and CSI systems, respectively. The conversion was successful for images acquired over a wide dose range. The average difference between simulated and target images for a given dose was a maximum of 11%. Conclusions: The validation shows that the image quality of a digital mammography image obtained with a particular system can be degraded, in terms of noise magnitude and color, sharpness, and contrast to account for differences in the detector and antiscatter grid. Potentially, this is a powerful tool for observer studies, as a range of image qualities can be examined by modifying an image set obtained at a single (better) image quality thus removing the patient variability when comparing systems. (C) 2012 American Association of Physicists in Medicine. [http://dx.doi.org/10.1118/1.4704525]
引用
收藏
页码:2721 / 2734
页数:14
相关论文
共 31 条
[1]   Mammogram synthesis using a 3D simulation. 1. Breast tissue model and image acquisition simulation [J].
Bakic, PR ;
Albert, M ;
Brzakovic, D ;
Maidment, ADA .
MEDICAL PHYSICS, 2002, 29 (09) :2131-2139
[2]   Method of simulating dose reduction for digital radiographic systems [J].
Båth, M ;
Håkansson, M ;
Tingberg, A ;
Månsson, LG .
RADIATION PROTECTION DOSIMETRY, 2005, 114 (1-3) :253-259
[3]   A three-dimensional breast software phantom for mammography simulation [J].
Bliznakova, K ;
Bliznakov, Z ;
Bravou, V ;
Kolitsi, Z ;
Pallikarakis, N .
PHYSICS IN MEDICINE AND BIOLOGY, 2003, 48 (22) :3699-3719
[4]   The effect of scatter and glare on image quality in contrast-enhanced breast imaging using an a-Si/CsI(Tl) full-field flat panel detector [J].
Carton, Ann-Katherine ;
Acciavatti, Raymond ;
Kuo, Johnny ;
Maidment, Andrew D. A. .
MEDICAL PHYSICS, 2009, 36 (03) :920-928
[5]   A comparison of the imaging properties of CCD-based devices used for small field digital mammography [J].
Evans, DS ;
Workman, A ;
Payne, M .
PHYSICS IN MEDICINE AND BIOLOGY, 2002, 47 (01) :117-135
[6]   Penalty on the detective quantum efficiency from off-axis incident x rays [J].
Hajdok, G ;
Cunningham, IA .
MEDICAL IMAGING 2004: PHYSICS OF MEDICAL IMAGING, PTS 1 AND 2, 2004, 5368 :109-118
[7]  
International Electrotechnical Commission, 2007, IEC- 62220-1-2
[8]   Physical characteristics of five clinical systems for digital mammography [J].
Lazzari, B. ;
Belli, G. ;
Gori, C. ;
Del Turco, M. Rosselli .
MEDICAL PHYSICS, 2007, 34 (07) :2730-2743
[9]   Characterization of noise sources for two generations of computed radiography systems using powder and crystalline photostimulable phosphors [J].
Mackenzie, Alistair ;
Honey, Ian D. .
MEDICAL PHYSICS, 2007, 34 (08) :3345-3357
[10]   Validation of a method to convert an image to appear as if acquired using a different digital detector [J].
Mackenzie, Alistair ;
Workman, Adam ;
Dance, David R. ;
Yip, Mary ;
Wells, Kevin ;
Young, Kenneth C. .
MEDICAL IMAGING 2011: PHYSICS OF MEDICAL IMAGING, 2011, 7961