Title :
Simulation and implementation for blood flow velocity measurement on pulsed Doppler system using single-channel RF sampling
Author :
Lim, C.S. ; Remenieras, J.P. ; Roncin, A.
Author_Institution :
Fac. of Med, GIP Ultrasons, Tours, France
Abstract :
In this paper, we propose a new demodulation strategy “single channel slight undersampling” for a Doppler system. The proposed method can directly sample the RF signal at the sampling frequency of 4 fo/(2 k+1). The sampling frequency of A/D conversion is reduced proportionally to this factor. The efficiency of mean frequency estimator when coupled to the single channel RF sampling method is tested by computer simulation as a function of the intersequence sample delay time. The autors have compared the accuracy of the mean frequency tracking, both on the proposed method and the undersampling method. They have showed that single channel RF sampling until the delay 5/4 fo shows good results in the carotid artery. With a single channel RF sampling system, they present the estimation of the velocity of the blood flow in the carotid, as a factor of k
Keywords :
Doppler measurement; analogue-digital conversion; blood flow measurement; demodulation; frequency estimation; medical signal processing; signal sampling; A/D conversion; RF sampling; RF signal; blood flow; blood flow velocity measurement; carotid; computer simulation; demodulation; efficiency; estimation; intersequence sample delay time; mean frequency estimator; mean frequency tracking; pulsed Doppler system; sampling frequency; single-channel RF sampling; undersampling; Blood flow; Computer simulation; Delay estimation; Demodulation; Frequency conversion; Frequency estimation; Radio frequency; Sampling methods; Testing; Velocity measurement;
Conference_Titel :
Instrumentation and Measurement Technology Conference, 1996. IMTC-96. Conference Proceedings. Quality Measurements: The Indispensable Bridge between Theory and Reality., IEEE
Conference_Location :
Brussels
Print_ISBN :
0-7803-3312-8
DOI :
10.1109/IMTC.1996.507440