Two-dimensional temperature estimation using diagnostic ultrasound

被引:320
|
作者
Simon, C [1 ]
VanBaren, P [1 ]
Ebbini, ES [1 ]
机构
[1] Univ Michigan, Dept Elect Engn & Comp Sci, Ann Arbor, MI 48109 USA
基金
美国国家卫生研究院; 美国国家科学基金会;
关键词
D O I
10.1109/58.710592
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
A two-dimensional temperature estimation method was developed based on the detection of shifts in echo location of backscattered ultrasound from a region of tissue undergoing thermal therapy. The echo shifts are due to the combination of the local temperature dependence of speed of sound and thermal expansion in the heated region. A linear relationship between these shifts and the underlying tissue temperature rise is derived from first principles and experimentally validated. The echo shifts are estimated from the correlation of successive backscattered ultrasound frames, and the axial derivative of the accumulated echo shifts is shown to be proportional to the temperature rise. Sharp lateral gradients in the temperature distribution introduce ripple on the estimates of the echo shifts due to a thermo-acoustic Lens effect. This ripple can be effectively reduced by filtering the echo shifts along the axial and lateral directions upon differentiation. However, this is achieved at the expense of spatial resolution. Experimental evaluation of the accuracy (0.5 degrees C) and spatial resolution (2 mm) of the algorithm in tissue mimicking phantoms was conducted using a diagnostic ultrasound imaging scanner and a therapeutic ultrasound unit. The estimated temperature maps were overlaid on the gray-scale ultrasound images to illustrate the applicability of this technique for image guidance of focused ultrasound thermal therapy.
引用
收藏
页码:1088 / 1099
页数:12
相关论文
共 50 条
  • [1] Two-dimensional temperature imaging using diagnostic ultrasound - Preliminary studies using phantom materials
    Dolui, Swapnil
    Khairalseed, Mawia
    Tarazona, Laura K. Rivera
    Ware, Taylor H.
    Hoyt, Kenneth
    [J]. 2019 IEEE 16TH INTERNATIONAL SYMPOSIUM ON BIOMEDICAL IMAGING (ISBI 2019), 2019, : 1721 - 1724
  • [2] Motion compensation algorithm for non-invasive two-dimensional temperature estimation using diagnostic pulse-echo ultrasound
    Simon, C
    VanBaren, P
    Ebbini, E
    [J]. SURGICAL APPLICATIONS OF ENERGY, PROCEEDINGS OF, 1998, 3249 : 182 - 192
  • [3] Comparison of diagnostic value of two-dimensional ultrasound and clinical examination in fetal weight estimation
    Nurzadeh, Maryam
    Naemi, Mahsa
    Hasani, Shahrzad Sheikh
    [J]. JOURNAL OF FAMILY MEDICINE AND PRIMARY CARE, 2022, 11 (02) : 775 - 779
  • [4] Real-time Two-Dimensional Temperature Imaging Using Ultrasound
    Liu, Dalong
    Ebbini, Emad S.
    [J]. 2009 ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY, VOLS 1-20, 2009, : 1971 - +
  • [5] Two-dimensional temperature imaging using pulse-echo ultrasound
    Ebbini, Emad S.
    [J]. THERAPEUTIC ULTRASOUND, 2006, 829 : 96 - 101
  • [6] Two-dimensional parameter estimation using two-dimensional cyclic statistics
    Wang, Fei
    Wang, Shu-Xun
    Dou, Hui-Jing
    [J]. Tien Tzu Hsueh Pao/Acta Electronica Sinica, 2003, 31 (10): : 1522 - 1525
  • [7] Temperature estimation in the two-dimensional Ising model
    Caiafa, CF
    Proto, AN
    [J]. INTERNATIONAL JOURNAL OF MODERN PHYSICS C, 2006, 17 (01): : 29 - 38
  • [8] Research on reconstruction method for two-dimensional temperature field in solid using ultrasound
    Shi Y.
    Wei D.
    Zeng L.
    Qian W.
    Gui Y.
    Du Y.
    [J]. Zhongguo Kexue Jishu Kexue/Scientia Sinica Technologica, 2019, 49 (05): : 518 - 530
  • [9] STRATEGIES FOR ULTRASOUND IMAGING USING TWO-DIMENSIONAL ARRAYS
    Velichko, A.
    Wilcox, P. D.
    [J]. REVIEW OF PROGRESS IN QUANTITATIVE NONDESTRUCTIVE EVALUATION, VOLS 29A AND 29B, 2010, 1211 : 887 - 894
  • [10] Estimation of the Thickness Profile of a Human Skull Phantom by Ultrasound Methods Using a Two-Dimensional Array
    S. A. Asfandiyarov
    P. B. Rosnitskiy
    S. A. Tsysar
    P. V. Yuldashev
    V. A. Khokhlova
    V. E. Sinitsyn
    E. A. Mershina
    O. A. Sapozhnikov
    [J]. Acoustical Physics, 2023, 69 : 112 - 118