Decorrelation-based blood flow velocity estimation: Effect of spread of flow velocity, linear flow velocity gradients, and parabolic flow

被引:15
作者
Lupotti, FA [1 ]
van der Steen, AFW
Mastik, F
de Korte, CL
机构
[1] Erasmus Univ, Thoraxctr, Rotterdam, Netherlands
[2] Interuniv Cardiol Inst Netherlands, Utrecht, Netherlands
关键词
D O I
10.1109/TUFFC.2002.1009329
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
In recent years, a new method to measure transverse blood flow. based on the decorrelation of the radio frequency (RF) signals has been developed. In this paper, we investigated the influence of nonuniform flow on the velocity estimation. The decorrelation characteristics of transverse blood flow using an intravascular ultrasound (IVUS) array catheter are studied by means of computer modeling. Blood was simulated as a collection of randomly located point scatterers; moving this scattering medium transversally across the acoustical beam represented flow. First-order statistics were evaluated, and the signal-to-noise ratio from the signals were measured. The correlation coefficient method was used to present the results. Three velocity profiles were simulated: random spread of blood-flow velocity, linear blood-flow velocity gradient, and parabolic blood-flow. Radio frequency and envelope signals were used to calculate the decorrelation pattern. The results were compared to the mean decorrelation pattern for plug blood-flow. The RF signals decorrelation patterns were in good agreement with those obtained for plug blood flow. Envelope decorrelation patterns show a close agreement with the one for plug blood flow. For axial blood flow, there is a discrepancy between decorrelation patterns. The results presented here suggest that the decorrelation properties of an IVUS array catheter for measuring quantitative transverse blood flow probably will not be affected by different transverse blood-flow conditions.
引用
收藏
页码:705 / 714
页数:10
相关论文
共 50 条
[31]   A hybrid method for velocity field of fluid flow estimation based on optical flow [J].
Glomb, Grzegorz ;
Swirniak, Grzegorz .
OPTICAL MEASUREMENT SYSTEMS FOR INDUSTRIAL INSPECTION XI, 2019, 11056
[32]   VELOCITY OF BLOOD-FLOW IN PREGNANCY [J].
不详 .
LANCET, 1947, 252 (APR19) :529-529
[33]   The velocity of blood flow in arteries in animals [J].
Machella, TE .
AMERICAN JOURNAL OF PHYSIOLOGY, 1936, 115 (03) :632-644
[34]   ISOTHERMAL BLOOD FLOW VELOCITY PROBE [J].
KATSURA, S ;
WEISS, R ;
BAKER, D ;
RUSHMER, RF .
IRE TRANSACTIONS ON MEDICAL ELECTRONICS, 1959, 6 (04) :283-285
[35]   The velocity of the blood flow in therapeutic hyperpyrexia [J].
Kopp, I .
AMERICAN HEART JOURNAL, 1936, 11 :475-488
[36]   Blood Flow Velocity in Stenosed Artery [J].
Awaludin, Izyan Syazana ;
Ahmad, Rokiah Rozita .
PROCEEDINGS OF THE 20TH NATIONAL SYMPOSIUM ON MATHEMATICAL SCIENCES (SKSM20): RESEARCH IN MATHEMATICAL SCIENCES: A CATALYST FOR CREATIVITY AND INNOVATION, PTS A AND B, 2013, 1522 :261-268
[37]   Influence of hyperpyrexia on velocity of blood flow [J].
Kissin, M ;
Bierman, W .
PROCEEDINGS OF THE SOCIETY FOR EXPERIMENTAL BIOLOGY AND MEDICINE, 1933, 30 (04) :527-530
[38]   ATHEROSCLEROSIS AND BLOOD-FLOW VELOCITY [J].
MATHISON, M .
JOURNAL OF THORACIC AND CARDIOVASCULAR SURGERY, 1989, 98 (02) :301-301
[39]   VELOCITY OF BLOOD FLOW IN HEALTH AND DISEASE [J].
MORRIS, LE ;
BLUMGART, HL .
CIRCULATION, 1957, 15 (03) :448-460
[40]   CONSIDERATIONS ON PROPAGATION VELOCITY AND WAVE VELOCITY IN BLOOD-FLOW [J].
INTROZZI, AR ;
MARSICAN.FR ;
SCHTEING.D ;
DEINTROZ.GD ;
PEREYRA, H .
MEDICINA-BUENOS AIRES, 1973, 33 (06) :645-646