2017
DOI: 10.1109/tns.2017.2654680
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Direct Reconstruction of CT-Based Attenuation Correction Images for PET With Cluster-Based Penalties

Abstract: Extremely low-dose CT acquisitions used for PET attenuation correction have high levels of noise and potential bias artifacts due to photon starvation. This work explores the use of a priori knowledge for iterative image reconstruction of the CT-based attenuation map. We investigate a maximum a posteriori framework with cluster-based multinomial penalty for direct iterative coordinate decent (dICD) reconstruction of the PET attenuation map. The objective function for direct iterative attenuation map reconstruc… Show more

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