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seminars:stat:211007 [2021/10/02 22:15] qyuseminars:stat:211007 [2021/10/02 22:16] (current) qyu
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 +<WRAP centeralign>##Statistics Seminar##\\ Department of Mathematical Sciences</WRAP>
 +
 +<WRAP 70% center>
 +^  **DATE:**|Thursday, October 7, 2021 |
 +^  **TIME:**|1:15pm -- 2:15pm |
 +^  **LOCATION:**|Zoom meeting |
 +^  **SPEAKER:**|Yifei Zeng, Binghamton University |
 +^  **TITLE:**|A deep neural network for detection and diagnosis of COVID-19 from
 +chest x-ray images  |
 +</WRAP>
 +\\ 
 +
 +<WRAP center box 80%>
 +<WRAP centeralign>**Abstract**</WRAP>
 +In this study, they propose CoroNet, a Deep Convolutional Neural Network
 +model to automati- cally detect COVID-19 infection from chest X-ray images.
 +CoroNet achieved promising results on a small prepared dataset which
 +indicates that given more data, the proposed model can achieve better
 +results with minimum pre-processing of data. Overall, the proposed model
 +substantially advances the current radiology based methodology and during
 +COVID- 19 pandemic, it can be a very helpful tool for clinical
 +practitioners and radiologists to aid them in diagnosis, quantification and
 +follow-up of COVID-19 cases.
 +</WRAP>
 +
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