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Automatic TAC extraction from dynamic cardiac PET imaging using iterative correlation from a population template. | LitMetric

AI Article Synopsis

  • The work presents a new iterative approach for extracting time-activity curves (TAC) from dynamic imaging studies, utilizing prior information from generalized TAC templates.
  • This method involves creating analytical expressions from manually segmented TACs obtained from 13NH3 studies in pigs and tests both ventricular and myocardial TAC extractions.
  • Results showed that masking irrelevant structures like lungs enhances extraction accuracy, leading to reliable TAC definition and kinetic parameter estimation, even when initial templates are not a perfect fit.

Article Abstract

This work describes a new iterative method for extracting time-activity curves (TAC) from dynamic imaging studies using a priori information from generic models obtained from TAC templates. Analytical expressions of the TAC templates were derived from TACs obtained by manual segmentation of three (13)NH3 pig studies (gold standard). An iterative method for extracting both ventricular and myocardial TACs using models of the curves obtained as an initial template was then implemented and tested. These TACs were extracted from masked and unmasked images; masking was applied to remove the lungs and surrounding non-relevant structures. The resulting TACs were then compared with TACs obtained manually; the results of kinetic analysis were also compared. Extraction of TACs for each region was sensitive to the presence of other organs (e.g., lungs) in the image. Masking the volume of interest noticeably reduces error. The proposed method yields good results in terms of TAC definition and kinetic parameter estimation, even when the initial TAC templates do not accurately match specific tracer kinetics.

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Source
http://dx.doi.org/10.1016/j.cmpb.2013.04.010DOI Listing

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