Cardiac-gated dual-energy imaging of the chest: Design and performance evaluation of a cardiac trigger based on a fingertip pulse oximeter

被引:0
|
作者
Shkumat, N.
Siewerdsen, J.
Dhanantwari, A.
Williams, D.
Pau, N.
Yorkston, J.
Van Metter, R.
机构
[1] Univ Toronto, Dept Med Biophys, Toronto, ON, Canada
[2] Princess Margaret Hosp, Ontario Canc Inst, Toronto, ON M4X 1K9, Canada
[3] Princess Margaret Hosp, Dept Med Imaging, Toronto, ON M4X 1K9, Canada
[4] Eastman Kodak Co, Rochester, NY USA
[5] Eastman Kodak Co, Washington, DC USA
关键词
D O I
10.1118/1.2760492
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: A research prototype for high‐performance dual‐energy (DE) imaging of the chest is under development. This paper discusses the development and characterization of a cardiac gating system designed to precisely trigger the imaging system according to cardiac phase and minimize anatomical misregistration due to heart motion. Method and Materials: A fingertip pulse oximeter was employed to measure the peripheral pulse waveform and trigger x‐ray exposures during the quiescent phase of the heart (diastole). Temporal delays accounted in the timing scheme include physiological pulse propagation, waveform processing, and imaging system delays (filter‐wheel, bucky‐grid, and flat‐panel detector). An empirical model of the diastolic period allows calculation of the implemented delay, timp, required to trigger correctly at any patient heart‐rate. Performance was evaluated in terms of accuracy and precision of diastole‐trigger coincidence and expert assessment of cardiac motion artifact in gated and ungated DE images. Results: The model suggests a triggering scheme characterized by two heart‐rate (HR) regimes: below a HR‐threshold, sufficient time exists to expose on the same heartbeat [formula omitted]; above the HR‐threshold, a characteristic timp(HR) delays exposure to the subsequent heartbeat, accounting for all fixed and variable system delays. Initial implementation indicated 83% accuracy in diastole‐trigger coincidence. By modifying the HR estimation method (reduced temporal smoothing of the pulse waveform), trigger accuracy of 100% was achieved. Cardiac‐gated DE patient images demonstrate significantly reduced cardiac motion as assessed by expert radiologists. Conclusion: A pulse oximeter combined with a cardiac model provides accurate x‐ray triggering and significantly reduces heart motion artifacts. A simple fingertip clip presents logistic, cost, and workflow advantages compared to ECG. The system has been implemented in a clinical research trial, with gated and ungated arms allowing characterization of the impact of cardiac motion artifact on diagnostic performance. Conflict of Interest: Research sponsored in part by Eastman Kodak. © 2007, American Association of Physicists in Medicine. All rights reserved.
引用
收藏
页码:2364 / 2364
页数:1
相关论文
共 50 条
  • [31] Myocardial Extracellular Volume Fraction with Dual-Energy Equilibrium Contrast-enhanced Cardiac CT in Nonischemic Cardiomyopathy: A Prospective Comparison with Cardiac MR Imaging
    Lee, Hye-Jeong
    Im, Dong Jin
    Youn, Jong-Chan
    Chang, Suyon
    Suh, Young Joo
    Hong, Yoo Jin
    Kim, Young Jin
    Hur, Jin
    Choi, Byoung Wook
    RADIOLOGY, 2016, 280 (01) : 49 - 57
  • [32] ONE-SHOT DUAL-ENERGY SUBTRACTION CHEST IMAGING WITH COMPUTED RADIOGRAPHY - CLINICAL-EVALUATION OF FILM IMAGES
    ISHIGAKI, T
    SAKUMA, S
    IKEDA, M
    RADIOLOGY, 1988, 168 (01) : 67 - 72
  • [33] Feasibility Study to Demonstrate Cardiac Imaging using fast kVp switching dual-energy computed tomography: Phantom Study
    Madhav, Priti
    Imai, Yasuhiro
    Narayanan, Suresh
    Dutta, Sandeep
    Chandra, Naveen
    Hsieh, Jiang
    MEDICAL IMAGING 2012: PHYSICS OF MEDICAL IMAGING, 2012, 8313
  • [34] Evaluation of motion-correction methods for dual-gated cardiac positron emission tomography/computed tomography imaging
    Klen, Riku
    Noponen, Tommi
    Koikkalainen, Juha
    Lotjonen, Jyrki
    Thielemans, Kris
    Hoppela, Erika
    Sipila, Hannu
    Teras, Mika
    Knuuti, Juhani
    NUCLEAR MEDICINE COMMUNICATIONS, 2016, 37 (09) : 956 - 968
  • [35] System Design and Performance Evaluation for Cardiac SPECT Imaging with Multi-pinhole Collimator
    Sun L.
    Lyu Z.
    Hou Y.
    Liu W.
    Jiang N.
    Liu H.
    Ma T.
    Yuanzineng Kexue Jishu/Atomic Energy Science and Technology, 2021, 55 : 407 - 413
  • [36] The impact of cardiac gating on the detection of coronary calcifications in dual-energy chest radiography: A phantom study - art. no. 61421F
    Sabol, John M.
    Liu, Ray
    Saunders, Rowland
    Markley, Jonathan
    Moreno, Nery
    Seamans, John
    Wiese, Scott
    Jabri, Kadri
    Gilkeson, Robert C.
    Medical Imaging 2006: Physics of Medical Imaging, Pts 1-3, 2006, 6142 : F1421 - F1421
  • [37] Performance evaluation of deep learning image reconstruction algorithm for dual-energy spectral CT imaging: A phantom study
    Li, Haoyan
    Li, Zhentao
    Gao, Shuaiyi
    Hu, Jiaqi
    Yang, Zhihao
    Peng, Yun
    Sun, Jihang
    JOURNAL OF X-RAY SCIENCE AND TECHNOLOGY, 2024, 32 (03) : 513 - 528
  • [38] Evaluation of multi-echo ICA denoising for task based fMRI studies: Block designs, rapid event-related designs, and cardiac-gated fMRI
    Gonzalez-Castillo, Javier
    Panwar, Puja
    Buchanan, Laura C.
    Caballero-Gaudes, Cesar
    Handwerker, Daniel A.
    Jangraw, David C.
    Zachariou, Valentinos
    Inati, Souheil
    Roopchansingh, Vinai
    Derbyshire, John A.
    Bandettini, Peter A.
    NEUROIMAGE, 2016, 141 : 452 - 468
  • [39] Quantitative Analysis of a Whole Cardiac Mass Using Dual-Energy Computed Tomography: Comparison with Conventional Computed Tomography and Magnetic Resonance Imaging
    Hong, Yoo Jin
    Hur, Jin
    Han, Kyunghwa
    Im, Dong Jin
    Suh, Young Joo
    Lee, Hye-Jeong
    Kim, Young Jin
    Choi, Byoung Wook
    SCIENTIFIC REPORTS, 2018, 8
  • [40] Dual-energy cardiac imaging: an image quality and dose comparison for a flat-panel detector and x-ray image intensifier
    Ducote, Justin L.
    Xu, Tong
    Molloi, Sabee
    PHYSICS IN MEDICINE AND BIOLOGY, 2007, 52 (01): : 183 - 196