High resolution measurement of cerebral blood flow using intravascular tracer bolus passages .1. Mathematical approach and statistical analysis

被引:1218
作者
Ostergaard, L
Weisskoff, RM
Chesler, DA
Gyldensted, C
Rosen, BR
机构
[1] AARHUS UNIV HOSP, DEPT NEURORADIOL, AARHUS, DENMARK
[2] AARHUS UNIV HOSP, PET CTR, AARHUS, DENMARK
[3] HARVARD UNIV, SCH MED,MASSACHUSETTS GEN HOSP,DEPT RADIOL,NMR CTR, CHARLESTOWN, MA USA
关键词
cerebral blood flow (CBF); dynamic magnetic resonance imaging (MRI); nonparametric deconvolution; susceptibility contrast;
D O I
10.1002/mrm.1910360510
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
The authors review the theoretical basis of determination of cerebral blood flow (CBF) using dynamic measurements of nondiffusible contrast agents, and demonstrate how parametric and nonparametric deconvolution techniques can be modified for the special requirements of CBF determination using dynamic MRI. Using Monte Carlo modelling, the use of simple, analytical residue models is shown to introduce large errors in flow estimates when actual, underlying vascular characteristics are not sufficiently described by the chosen function. The determination of the shape of the residue function on a regional basis is shown to be possible only at high signal-to-noise ratio. Comparison of several nonparametric deconvolution techniques showed that a nonparametric deconvolution technique (singular value decomposition) allows estimation of flow relatively independent of underlying vascular structure and volume even at low signal-to-noise ratio associated with pixel-by-pixel deconvolution.
引用
收藏
页码:715 / 725
页数:11
相关论文
共 33 条
[2]   BLOOD FLOW AND DIFFUSION THROUGH MAMMALIAN ORGANS [J].
BASSINGT.B .
SCIENCE, 1970, 167 (3923) :1347-&
[3]  
Bassingthwaighte J., 1984, HDB PHYSL 2, V4, P549
[4]   COMPUTATIONALLY EFFICIENT ALGORITHMS FOR CONVECTION-PERMEATION-DIFFUSION MODELS FOR BLOOD-TISSUE EXCHANGE [J].
BASSINGTHWAIGHTE, JB ;
CHAN, ISJ ;
WANG, CY .
ANNALS OF BIOMEDICAL ENGINEERING, 1992, 20 (06) :687-725
[5]   THERMAL RECOVERY AFTER PASSAGE OF THE PULMONARY CIRCULATION ASSESSED BY DECONVOLUTION [J].
BOCK, J ;
DEUFLHARD, P ;
HOEFT, A ;
KORB, H ;
WOLPERS, HG ;
STEINMANN, J ;
HELLIGE, G .
JOURNAL OF APPLIED PHYSIOLOGY, 1988, 64 (03) :1210-1216
[6]   MODEL-FREE DECONVOLUTION TECHNIQUES FOR ESTIMATING VASCULAR TRANSPORT FUNCTIONS [J].
BRONIKOWSKI, TA ;
DAWSON, CA ;
LINEHAN, JH .
INTERNATIONAL JOURNAL OF BIO-MEDICAL COMPUTING, 1983, 14 (05) :411-429
[7]  
Coulam C M, 1967, Comput Biomed Res, V1, P124, DOI 10.1016/0010-4809(67)90011-0
[8]   A TRANSFER FUNCTION ANALYSIS OF CORNONARY AND RENAL CIRCULATION CALCULATED FROM UPSTREAM AND DOWNSTREAM INDICATOR-DILUTION CURVES [J].
COULAM, CM ;
WARNER, HR ;
WOOD, EH ;
BASSINGT.JB .
CIRCULATION RESEARCH, 1966, 19 (05) :879-&
[9]  
FISEL CR, 1991, MAGNET RESON MED, V17, P348
[10]   MEASUREMENT OF REGIONAL CEREBRAL BLOOD-FLOW USING ULTRAFAST COMPUTED-TOMOGRAPHY - THEORETICAL ASPECTS [J].
GOBBEL, GT ;
CANN, CE ;
FIKE, JR .
STROKE, 1991, 22 (06) :768-771