Page 54 - 《应用声学》2021年第1期
P. 54

50                                                                                   2021 年 1 月


                                                                   IEEE Transactions on Ultrasonics, Ferroelectrics, and Fre-
                                                                   quency Control, 1998, 45(4): 1088–1099.
                            参 考     文   献                       [11] Liu D, Ebbini E S. Real-time 2-D temperature imaging us-
                                                                   ing ultrasound[J]. IEEE Transactions on Biomedical En-
              [1] Li C, Miao J, Yang K, et al. Fourier and non-Fourier  gineering, 2010, 57(1): 12–16.
                 bio-heat transfer models to predict ex vivo temperature  [12] Daniels M J, Varghese T. Dynamic frame selection for in
                 response to focused ultrasound heating[J]. Journal of Ap-  vivo ultrasound temperature estimation during radiofre-
                 plied Physics, 2018, 123(17): 174906.             quency ablation[J]. Physics in Medicine and Biology, 2010,
              [2] Wang Y, Song Y, Suo M, et al. Telmisartan prevents high-  55(16): 4735–4753.
                 fat diet-induced hypertension and decreases perirenal fat  [13] Bayat M, Ballard J R, Ebbini E S. In vivo ultrasound
                 in rats[J]. Journal of Biomedical Research, 2012, 26(3):  thermography in presence of temperature heterogeneity
                 219–225.                                          and natural motions[J]. IEEE Transactions on Biomedi-
              [3] Xia J, Li Q, Liu H, et al. An approach for the visualization  cal Engineering, 2015, 62(2): 450–457.
                 of temperature distribution in tissues according to changes  [14] Fan P, Yin C, Xue H, et al. In vivo evaluation of two-
                 in ultrasonic backscattered energy[J]. Computational and  dimensional temperature variation in perirenal fat of pigs
                 Mathematical Methods in Medicine, 2013, 2013: 682827.  with B-mode ultrasound[J]. Journal of Applied Physics,
              [4] Tsui P H, Chien Y T, Liu H, et al. Using ultrasound CBE  2019, 126(8): 084902.
                 imaging without echo shift compensation for temperature  [15] Ebbini E S. Noninvasive two-dimensional temperature
                 estimation[J]. Ultrasonics, 2012, 52(7): 925–935.  imaging for guidance of thermal therapy[C]. in Biomedical
              [5] Maraghechi B, Kolios M C, Tavakkoli J. Temperature de-  Imaging: Nano to Macro, 2006. 3rd IEEE International
                 pendence of acoustic harmonics generated by nonlinear  Symposium on. 2006.
                 ultrasound beam propagation in ex vivo tissue and tissue-  [16] Huang C, Lien D, Chen B, et al.  Ultrasound ther-
                 mimicking phantoms[J]. International Journal of Hyper-  mal mapping based on a hybrid method combining
                 thermia, 2015, 31(6): 666–673.                    cross-correlation and zero-crossing tracking[J]. The Jour-
              [6] Abolhassani M D, Norouzy A, Takavar A, et al. Non-  nal of the Acoustical Society of America, 2013, 134(2):
                 invasive temperature estimation using sonographic digital  1530–1540.
                 images[J]. Journal of Ultrasound in Medicine, 2007, 26(2):  [17] Techavipoo U, Chen Q, Varghese T. Ultrasonic non-
                 215–222.                                          invasive temperature estimation using echoshift gradi-
              [7] Vázquez M, Ramos A, Leija L, et al. Noninvasive tem-  ent maps: simulation results[J]. Ultrason Imaging, 2005,
                 perature estimation in oncology hyperthermia using phase  27(3): 166–180.
                 changes in pulse–echo ultrasonic signals[J]. Japanese Jour-  [18] Fuhrmann T A, Georg O, Haller J, et al. Uncertainty
                 nal of Applied Physics, 2006, 45(10R): 7991.      estimation for temperature measurement with diagnostic
              [8] Foiret J, Ferrara K W. Spatial and temporal control of hy-  ultrasound[J]. Journal of Therapeutic Ultrasound, 2016,
                 perthermia using real time ultrasonic thermal strain imag-  4: 28.
                 ing with motion compensation, phantom study[J]. PLoS  [19] Liu Y D, Li Q, Zhou Z, et al. Adaptive ultrasound temper-
                 One, 2015, 10(8): e0134938.                       ature imaging for monitoring radiofrequency ablation[J].
              [9] Seo C H, Shi Y, Huang S, et al. Thermal strain imaging:  PLoS One, 2017, 12(8): e0182457.
                 a review[J]. Interface Focus, 2011, 1(4): 649–664.  [20] Foiret J Ferrara K. Advances in thermal strain imaging:
             [10] Simon C, VanBaren P, Ebbini E S. Two-dimensional  3D motion and tumor validation studies[C]. 2015 Ieee In-
                 temperature estimation using diagnostic ultrasound[J].  ternational Ultrasonics Symposium, 2015.
   49   50   51   52   53   54   55   56   57   58   59