Literature DB >> 27187939

Semisupervised Tripled Dictionary Learning for Standard-Dose PET Image Prediction Using Low-Dose PET and Multimodal MRI.

Yan Wang, Guangkai Ma, Le An, Feng Shi, Pei Zhang, David S Lalush, Xi Wu, Yifei Pu, Jiliu Zhou, Dinggang Shen.   

Abstract

OBJECTIVE: To obtain high-quality positron emission tomography (PET) image with low-dose tracer injection, this study attempts to predict the standard-dose PET (S-PET) image from both its low-dose PET (L-PET) counterpart and corresponding magnetic resonance imaging (MRI).
METHODS: It was achieved by patch-based sparse representation (SR), using the training samples with a complete set of MRI, L-PET and S-PET modalities for dictionary construction. However, the number of training samples with complete modalities is often limited. In practice, many samples generally have incomplete modalities (i.e., with one or two missing modalities) that thus cannot be used in the prediction process. In light of this, we develop a semisupervised tripled dictionary learning (SSTDL) method for S-PET image prediction, which can utilize not only the samples with complete modalities (called complete samples) but also the samples with incomplete modalities (called incomplete samples), to take advantage of the large number of available training samples and thus further improve the prediction performance.
RESULTS: Validation was done on a real human brain dataset consisting of 18 subjects, and the results show that our method is superior to the SR and other baseline methods.
CONCLUSION: This paper proposed a new S-PET prediction method, which can significantly improve the PET image quality with low-dose injection. SIGNIFICANCE: The proposed method is favorable in clinical application since it can decrease the potential radiation risk for patients.

Entities:  

Mesh:

Year:  2016        PMID: 27187939      PMCID: PMC5383421          DOI: 10.1109/TBME.2016.2564440

Source DB:  PubMed          Journal:  IEEE Trans Biomed Eng        ISSN: 0018-9294            Impact factor:   4.538


  21 in total

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  15 in total

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5.  3D conditional generative adversarial networks for high-quality PET image estimation at low dose.

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6.  Multi-Modality Cascaded Convolutional Neural Networks for Alzheimer's Disease Diagnosis.

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7.  Deep Auto-context Convolutional Neural Networks for Standard-Dose PET Image Estimation from Low-Dose PET/MRI.

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Review 8.  Machine learning in quantitative PET: A review of attenuation correction and low-count image reconstruction methods.

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9.  Locality Adaptive Multi-modality GANs for High-Quality PET Image Synthesis.

Authors:  Yan Wang; Luping Zhou; Lei Wang; Biting Yu; Chen Zu; David S Lalush; Weili Lin; Xi Wu; Jiliu Zhou; Dinggang Shen
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