Empowering decision support in healthcare with AI
Current contact tracing techniques deployed for the COVID-19 pandemic has been useful in curbing the spread of the virus. However, many of these techniques comes with their drawbacks such as incorrect identification of exposed individuals and privacy vulnerabilities. These techniques mainly adapt...
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sg-ntu-dr.10356-1492092021-05-29T05:53:00Z Empowering decision support in healthcare with AI Ang, Joshua Yong Woon Yu Han School of Computer Science and Engineering han.yu@ntu.edu.sg Engineering::Computer science and engineering Current contact tracing techniques deployed for the COVID-19 pandemic has been useful in curbing the spread of the virus. However, many of these techniques comes with their drawbacks such as incorrect identification of exposed individuals and privacy vulnerabilities. These techniques mainly adapt from the PEPP-PT or DP-3T protocols. In this project, we introduced a contact tracing system architecture to tackle the privacy issues surrounding contact tracing and explored the use of sequence embedding algorithms to embed trajectory sequences of individuals to aid contact tracing efforts. We adapt the 2 sequence embedding algorithms namely, Sequence Graph Transform and Sqn2Vec, to a contact tracing use case. Despite tuning the embedding algorithms extensively, the project was unable to achieve promising results. From our results, we speculate that sequence embedding algorithms may not be effective for our use case, because they generate embeddings based on subsequence patterns. Bachelor of Engineering (Computer Science) 2021-05-29T05:53:00Z 2021-05-29T05:53:00Z 2021 Final Year Project (FYP) Ang, J. Y. W. (2021). Empowering decision support in healthcare with AI. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/149209 https://hdl.handle.net/10356/149209 en SCSE20-0323 application/pdf Nanyang Technological University |
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Engineering::Computer science and engineering Ang, Joshua Yong Woon Empowering decision support in healthcare with AI |
description |
Current contact tracing techniques deployed for the COVID-19 pandemic has been useful in
curbing the spread of the virus. However, many of these techniques comes with their
drawbacks such as incorrect identification of exposed individuals and privacy vulnerabilities.
These techniques mainly adapt from the PEPP-PT or DP-3T protocols.
In this project, we introduced a contact tracing system architecture to tackle the privacy
issues surrounding contact tracing and explored the use of sequence embedding algorithms to
embed trajectory sequences of individuals to aid contact tracing efforts. We adapt the 2
sequence embedding algorithms namely, Sequence Graph Transform and Sqn2Vec, to a
contact tracing use case. Despite tuning the embedding algorithms extensively, the project
was unable to achieve promising results. From our results, we speculate that sequence
embedding algorithms may not be effective for our use case, because they generate
embeddings based on subsequence patterns. |
author2 |
Yu Han |
author_facet |
Yu Han Ang, Joshua Yong Woon |
format |
Final Year Project |
author |
Ang, Joshua Yong Woon |
author_sort |
Ang, Joshua Yong Woon |
title |
Empowering decision support in healthcare with AI |
title_short |
Empowering decision support in healthcare with AI |
title_full |
Empowering decision support in healthcare with AI |
title_fullStr |
Empowering decision support in healthcare with AI |
title_full_unstemmed |
Empowering decision support in healthcare with AI |
title_sort |
empowering decision support in healthcare with ai |
publisher |
Nanyang Technological University |
publishDate |
2021 |
url |
https://hdl.handle.net/10356/149209 |
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1701270494888591360 |