Synthetic Resampling Methods for Variance Estimation in Parametric Images

نویسنده

  • Ranjan Maitra
چکیده

Parametric imaging procedures ooer the possibility of comprehensive assessment of tissue metabolic activity. Estimating variances of these images is important for the development of inference procedures in a diagnostic setting. Unfortunately, the complexity of the radio-tracer models used in the generation of a parametric image makes analytic variance expressions intractable. A natural extension of the usual resampling approach is infeasible because of the computational eeort. This paper suggests a computationally practical approximate simulation strategy to variance estimation. Results of experiments done to evaluate the approach in a simpliied model one-dimensional problem are very encouraging. The suggested methodology is evaluated here in the context of parametric images extracted by mixture analysis; however, the approach is general enough to extend to other parametric imaging methods.

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تاریخ انتشار 1997