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Reducing scan time of paediatric 99mTc-DMSA SPECT via deep learning

Authors :
Ying-Feng Chang
Huai-Hsuan Huang
Chwan-Fwu Lin
Chun-Chia Cheng
H.-Y. Chiu
Source :
Clinical Radiology. 76:315.e13-315.e20
Publication Year :
2021
Publisher :
Elsevier BV, 2021.

Abstract

AIM To investigate the feasibility of reducing the scan time of paediatric technetium 99m (99mTc) dimercaptosuccinic acid (DMSA) single-photon-emission computed tomographic (SPECT) using a deep learning (DL) method. MATERIAL AND METHODS A total of 112 paediatric 99mTc-DMSA renal SPECT scans were analysed retrospectively. Of the 112 examinations, 88 (84 for training and four for validation) were used to train a DL-based model that could generate full-acquisition-time reconstructed SPECT images from half-time acquisition. The remaining 24 examinations were used to evaluate the performance of the trained model. RESULTS DL-based SPECT images obtained from half-time acquisition have image quality similar to the standard clinical SPECT images obtained from full-acquisition-time acquisition. Moreover, the accuracy, sensitivity and specificity of the DL-based SPECT images for detection of affected kidneys were 91.7%, 83.3%, and 100%, respectively. CONCLUSION These preliminary results suggest that DL has the potential to reduce the scan time of paediatric 99mTc-DMSA SPECT imaging while maintaining diagnostic accuracy.

Details

ISSN :
00099260
Volume :
76
Database :
OpenAIRE
Journal :
Clinical Radiology
Accession number :
edsair.doi...........f7848d1aa2ee22b392c427dbfca1734b
Full Text :
https://doi.org/10.1016/j.crad.2020.11.114