Literature DB >> 35028878

Application of artificial intelligence in brain molecular imaging.

Satoshi Minoshima1, Donna Cross2.   

Abstract

Initial development of artificial Intelligence (AI) and machine learning (ML) dates back to the mid-twentieth century. A growing awareness of the potential for AI, as well as increases in computational resources, research, and investment are rapidly advancing AI applications to medical imaging and, specifically, brain molecular imaging. AI/ML can improve imaging operations and decision making, and potentially perform tasks that are not readily possible by physicians, such as predicting disease prognosis, and identifying latent relationships from multi-modal clinical information. The number of applications of image-based AI algorithms, such as convolutional neural network (CNN), is increasing rapidly. The applications for brain molecular imaging (MI) include image denoising, PET and PET/MRI attenuation correction, image segmentation and lesion detection, parametric image formation, and the detection/diagnosis of Alzheimer's disease and other brain disorders. When effectively used, AI will likely improve the quality of patient care, instead of replacing radiologists. A regulatory framework is being developed to facilitate AI adaptation for medical imaging.
© 2021. The Author(s) under exclusive licence to The Japanese Society of Nuclear Medicine.

Entities:  

Keywords:  Artificial intelligence; Brain; Deep learning; Molecular Imaging; PET

Mesh:

Year:  2022        PMID: 35028878     DOI: 10.1007/s12149-021-01697-2

Source DB:  PubMed          Journal:  Ann Nucl Med        ISSN: 0914-7187            Impact factor:   2.668


  53 in total

1.  Evaluation of a neural-network classifier for PET scans of normal and Alzheimer's disease subjects.

Authors:  J S Kippenhan; W W Barker; S Pascal; J Nagel; R Duara
Journal:  J Nucl Med       Date:  1992-08       Impact factor: 10.057

Review 2.  Deep learning.

Authors:  Yann LeCun; Yoshua Bengio; Geoffrey Hinton
Journal:  Nature       Date:  2015-05-28       Impact factor: 49.962

3.  Full-count PET recovery from low-count image using a dilated convolutional neural network.

Authors:  Karl Spuhler; Mario Serrano-Sosa; Renee Cattell; Christine DeLorenzo; Chuan Huang
Journal:  Med Phys       Date:  2020-08-06       Impact factor: 4.071

4.  Localization of epileptogenic zones in F-18 FDG brain PET of patients with temporal lobe epilepsy using artificial neural network.

Authors:  J S Lee; D S Lee; S K Kim; S K Lee; J K Chung; M C Lee; K S Park
Journal:  IEEE Trans Med Imaging       Date:  2000-04       Impact factor: 10.048

5.  Neural-network classification of normal and Alzheimer's disease subjects using high-resolution and low-resolution PET cameras.

Authors:  J S Kippenhan; W W Barker; J Nagel; C Grady; R Duara
Journal:  J Nucl Med       Date:  1994-01       Impact factor: 10.057

6.  Penalized PET Reconstruction Using Deep Learning Prior and Local Linear Fitting.

Authors:  Kyungsang Kim; Dufan Wu; Kuang Gong; Joyita Dutta; Jong Hoon Kim; Young Don Son; Hang Keun Kim; Georges El Fakhri; Quanzheng Li
Journal:  IEEE Trans Med Imaging       Date:  2018-06       Impact factor: 10.048

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

Authors:  Lei Xiang; Yu Qiao; Dong Nie; Le An; Qian Wang; Dinggang Shen
Journal:  Neurocomputing       Date:  2017-06-29       Impact factor: 5.719

Review 8.  The ventral visual pathway: an expanded neural framework for the processing of object quality.

Authors:  Dwight J Kravitz; Kadharbatcha S Saleem; Chris I Baker; Leslie G Ungerleider; Mortimer Mishkin
Journal:  Trends Cogn Sci       Date:  2012-12-19       Impact factor: 20.229

9.  4D deep image prior: dynamic PET image denoising using an unsupervised four-dimensional branch convolutional neural network.

Authors:  Fumio Hashimoto; Hiroyuki Ohba; Kibo Ote; Akihiro Kakimoto; Hideo Tsukada; Yasuomi Ouchi
Journal:  Phys Med Biol       Date:  2021-01-14       Impact factor: 3.609

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