Current and Novel Techniques for Metal Art fact Reduction at CT: Practical Guide for Radiologists

被引:208
作者
Katsura, Masaki [1 ]
Sato, Jiro [1 ]
Akahane, Masaaki [3 ]
Kunimatsu, Akira [2 ]
Abe, Osamu [1 ]
机构
[1] Univ Tokyo, Grad Sch Med, Dept Radiol, Bunkyo Ku, 7-3-1 Hongo, Tokyo 1138655, Japan
[2] Univ Tokyo, Inst Med Sci, Dept Radiol, Bunkyo Ku, 7-3-1 Hongo, Tokyo 1138655, Japan
[3] Int Univ Hlth & Welf, Sch Med, Dept Radiol, Chiba, Japan
关键词
DUAL-ENERGY CT; HELICAL COMPUTED-TOMOGRAPHY; IN-VIVO EVALUATION; ARTIFACT REDUCTION; HIP PROSTHESES; IMAGE-QUALITY; REFORMATTED PROJECTIONS; CLINICAL-EVALUATION; SINGLE-ENERGY; ALGORITHM;
D O I
10.1148/rg.2018170102
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
Artifacts caused by metallic implants appear as dark and bright streaks at computed tomography (CT), which severely degrade the image quality and decrease the diagnostic value of the examination. When x-rays pass through a metal object, depending on its size and composition, different physical effects negatively affect the measurements in the detector, most notably the effects of photon starvation and beam hardening. To improve image quality and recover information about underlying structures, several artifact reduction methods have been introduced in modern CT systems. Projection-based metal artifact reduction (MAR) algorithms act in projection space and replace corrupted projections caused by metal with interpolation from neighboring uncorrupted projections. MAR algorithms primarily suppress artifacts that are due to photon starvation. The dual-energy CT technique is characterized by data acquisition at two different energy spectra. Dual-energy CT provides synthesized virtual monochromatic images at different photon energy (kiloelectron volt) levels, and virtual monochromatic images obtained at high kiloelectron volt levels are known to reduce the effects of beam hardening. In clinical practice, although MAR algorithms can be applied after image acquisition, the decision whether to apply dual-energy CT for the patient usually needs to be made before image acquisition. Radiologists should be more familiar with the clinical and technical features of each method and should be able to choose the optimal method according to the clinical situation. (C) RSNA, 2018
引用
收藏
页码:450 / 461
页数:12
相关论文
共 67 条
[1]   Oncologic Applications of Dual-Energy CT in the Abdomen [J].
Agrawal, Mukta D. ;
Pinho, Daniella F. ;
Kulkarni, Naveen M. ;
Hahn, Peter F. ;
Guimaraes, Alexander R. ;
Sahani, Dushyant V. .
RADIOGRAPHICS, 2014, 34 (03) :589-612
[2]   Advanced image-based virtual monoenergetic dual-energy CT angiography of the abdomen: optimization of kiloelectron volt settings to improve image contrast [J].
Albrecht, Moritz H. ;
Scholtz, Jan-Erik ;
Huesers, Kristina ;
Beeres, Martin ;
Bucher, Andreas M. ;
Kaup, Moritz ;
Martin, Simon S. ;
Fischer, Sebastian ;
Bodelle, Boris ;
Bauer, Ralf W. ;
Lehnert, Thomas ;
Vogl, Thomas J. ;
Wichmann, Julian L. .
EUROPEAN RADIOLOGY, 2016, 26 (06) :1863-1870
[3]   Dual-energy CT quantitative imaging: a comparison study between twin-beam and dual-source CT scanners [J].
Almeida, Isabel P. ;
Schyns, Lotte E. J. R. ;
Ollers, Michel C. ;
van Elmpt, Wouter ;
Parodi, Katia ;
Landry, Guillaume ;
Verhaegen, Frank .
MEDICAL PHYSICS, 2017, 44 (01) :171-179
[4]   Metal artefact reduction in CT imaging of hip prostheses-an evaluation of commercial techniques provided by four vendors [J].
Andersson, K. M. ;
Nowik, P. ;
Persliden, J. ;
Thunberg, P. ;
Norrman, E. .
BRITISH JOURNAL OF RADIOLOGY, 2015, 88 (1052)
[5]   Visual grading evaluation of commercially available metal artefact reduction techniques in hip prosthesis computed tomography [J].
Andersson, Karin M. ;
Norrman, Eva ;
Geijer, Hakan ;
Krauss, Wolfgang ;
Cao, Yang ;
Jendeberg, Johan ;
Geijer, Mats ;
Liden, Mats ;
Thunberg, Per .
BRITISH JOURNAL OF RADIOLOGY, 2016, 89 (1063)
[6]   Clinical evaluation of the iterative metal artifact reduction algorithm for CT simulation in radiotherapy [J].
Axente, Marian ;
Paidi, Ajay ;
Von Eyben, Rie ;
Zeng, Chuan ;
Bani-Hashemi, Ali ;
Krauss, Andreas ;
Hristov, Dimitre .
MEDICAL PHYSICS, 2015, 42 (03) :1170-1183
[7]   Metal artifact reduction by dual energy computed tomography using monoenergetic extrapolation [J].
Bamberg, Fabian ;
Dierks, Alexander ;
Nikolaou, Konstantin ;
Reiser, Maximilian F. ;
Becker, Christoph R. ;
Johnson, Thorsten R. C. .
EUROPEAN RADIOLOGY, 2011, 21 (07) :1424-1429
[8]   COMPUTED-TOMOGRAPHY IN THE ASSESSMENT AND PLANNING OF COMPLICATED TOTAL HIP-REPLACEMENT [J].
BARMEIR, E ;
DUBOWITZ, B ;
ROFFMAN, M .
ACTA ORTHOPAEDICA SCANDINAVICA, 1982, 53 (04) :597-604
[9]   Artifacts in CT: Recognition and avoidance [J].
Barrett, JF ;
Keat, N .
RADIOGRAPHICS, 2004, 24 (06) :1679-1691
[10]   Correction of CT artifacts and its influence on Monte Carlo dose calculations [J].
Bazalova, Magdalena ;
Beaulieu, Luc ;
Palefsky, Steven ;
Verhaegen, Frank .
MEDICAL PHYSICS, 2007, 34 (06) :2119-2132