Improved face mask detection with super-resolution techniques
Super-Resolution is the process of reconstructing a low resolution image into a high resolution image. In recent years, many deep learning based techniques have surfaced and as a result, super-resolution has become a competitive field spurring the proposal of many state-of-the-art models. Super-Reso...
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2021
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sg-ntu-dr.10356-1479422021-04-16T07:56:27Z Improved face mask detection with super-resolution techniques Suresh, Prem Adithya Qian Kemao School of Computer Science and Engineering MKMQian@ntu.edu.sg Engineering::Computer science and engineering Super-Resolution is the process of reconstructing a low resolution image into a high resolution image. In recent years, many deep learning based techniques have surfaced and as a result, super-resolution has become a competitive field spurring the proposal of many state-of-the-art models. Super-Resolution can potentially have many applications and one such application, which is especially relevant during this COVID-19 pandemic, is face mask detection. Face mask detection has been implemented rapidly around the world since the start of the pandemic and this project shows that super-resolution techniques help improve the accuracy of face mask detection. Three models which are SSD based models enhanced with the addition super-resolution layers are pitted against the baseline model without super-resolution layers present. All models were trained, validated and tested on a dataset containing 14,016 images of masked and unmasked faces. All of the proposed models beat the baseline model’s mean average precision (mAP) of 76.73% where the best mAP achieved was 80.69%. Bachelor of Engineering (Computer Science) 2021-04-16T07:56:26Z 2021-04-16T07:56:26Z 2021 Final Year Project (FYP) Suresh, P. A. (2021). Improved face mask detection with super-resolution techniques. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/147942 https://hdl.handle.net/10356/147942 en SCSE20-0347 application/pdf Nanyang Technological University |
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Engineering::Computer science and engineering Suresh, Prem Adithya Improved face mask detection with super-resolution techniques |
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Super-Resolution is the process of reconstructing a low resolution image into a high resolution image. In recent years, many deep learning based techniques have surfaced and as a result, super-resolution has become a competitive field spurring the proposal of many state-of-the-art models. Super-Resolution can potentially have many applications and one such application, which is especially relevant during this COVID-19 pandemic, is face mask detection. Face mask detection has been implemented rapidly around the world since the start of the pandemic and this project shows that super-resolution techniques help improve the accuracy of face mask detection. Three models which are SSD based models enhanced with the addition super-resolution layers are pitted against the baseline model without super-resolution layers present. All models were trained, validated and tested on a dataset containing 14,016 images of masked and unmasked faces. All of the proposed models beat the baseline model’s mean average precision (mAP) of 76.73% where the best mAP achieved was 80.69%. |
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Qian Kemao |
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Qian Kemao Suresh, Prem Adithya |
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Final Year Project |
author |
Suresh, Prem Adithya |
author_sort |
Suresh, Prem Adithya |
title |
Improved face mask detection with super-resolution techniques |
title_short |
Improved face mask detection with super-resolution techniques |
title_full |
Improved face mask detection with super-resolution techniques |
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Improved face mask detection with super-resolution techniques |
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Improved face mask detection with super-resolution techniques |
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improved face mask detection with super-resolution techniques |
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Nanyang Technological University |
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2021 |
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https://hdl.handle.net/10356/147942 |
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