PubMed HealthSearch

Biomedical subjects

W R Ip

Publications and source records attributed to W R Ip.

6 recordsLinked to original sources

Performance comparison of parameter estimation techniques for the quantitation of local cerebral blood flow by dynamic positron computed tomography.

Local CBF (LCBF) can be quantitated from positron computed tomographic (PCT) data and physiologically based mathematical models by several general methods. Those using a dynamic sequence of PCT scans allow the simultaneous estimation of both LCBF and p, the indicator's tissue-blood partition coefficient. This article presents a comparison of three rapid estimation techniques for use with inert diffusible radioindicators and serial PCT, each of which is based on the original Kety model. One method, developed in our laboratory, involves minimizing the mean squared discrepancy between measured data and model predictions, whereas the other two methods, recently reported in the literature, are weighted integration techniques that involve multiplying the measured data by time-dependent weighting functions. Simulation studies of noise propagation and other sources of error were performed under a variety of simulated conditions. Functional images of LCBF and p were calculated using each method for both phantom and human subject data. Errors can differ by as much as a factor of 2-3 between methods, with each having its own unique advantages and disadvantages.

Brain

A study of the image discrepancies due to object time-dependence in transmission and emission tomography.

In conventional computed tomography (CT) imaging of a point object, projection filtering causes the back-projected contributions to image positions away from the point to sum to zero. If the point object intensity is time-dependent, and all the projections are not acquired simultaneously, this cancellation cannot be complete and artefacts result. Loss of spatial invariance makes a general linear-systems approach to the problem impossible. We have studied the properties of such artefacts by the computer simulation of decaying exponential time-dependence in three different spatial distributions and four transmission and emission CT geometries. Spatially complex time-dependent objects typically produce artefacts that can be treated as an additional broad-spectrum noise source with a power comparable to that of other CT noises. Artefacts from broad ranges of similar time-dependence can add coherently to cause patches of artefact, particularly in geometries with a strong correlation between projection acquisition time and projection angle. As expected, artefacts are reduced for all geometries as scan duration is reduced. In our model, with a most rapid decay constant of 1.2 min-1, negligible artefacts were observed for a six second scan duration.

Computers

Imaging methods in the transmission computed tomographic measurement of regional xenon kinetics in the brain.

The process of an investigation of transmission computed tomographic measurements of the kinetics of stable xenon in the brain is reported. The use of functional imaging methods to generate maps of regional washout rate estimators is introduced in an animal model. Region-of-interest analysis is introduced using regions specified by the functional maps demonstrates the sensitivity of the methods to the rapid components of cerebral xenon washout. Correspondence among the regional distributions of tissue types as demonstrated by tissue attenuation coefficient, xenon solubility, and washout rate estimators supports the validity of characterizing each pixel by a single exponential response function.

Animals

Continuous time-dependence in computed tomography.

Computed tomography is sensitive to changes in the imaged distribution during acquisition of the projection data. Previous investigations have emphasized discrete or discontinuous changes in the imaged object. Recent advances have motivated our investigation of object time-dependence characterized by a continuous function in time at each point. Formal mathematical and computer simulation approaches have been developed, and are presented along with simple examples of their applications. Further applications in three distinct ongoing studies are outlined.

Computers