ConvNet-based visual place recognition under appearance changes for unmanned vehicles
Identifying the place unmanned vehicles have visited is crucial for their re-localization to eliminate accumulating drifts. As a VPR(visual place recognition problem), the goal is to retrieve the correct reference frames in database which depict the same place as given query image.For retrieval-ba...
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sg-ntu-dr.10356-1431102023-07-04T17:01:42Z ConvNet-based visual place recognition under appearance changes for unmanned vehicles Li, Heshan Wang Dan Wei School of Electrical and Electronic Engineering EDWWANG@ntu.edu.sg Engineering::Electrical and electronic engineering Identifying the place unmanned vehicles have visited is crucial for their re-localization to eliminate accumulating drifts. As a VPR(visual place recognition problem), the goal is to retrieve the correct reference frames in database which depict the same place as given query image.For retrieval-basedVPR, methods can be classified as VLAD-based and sum-based. In this dissertation, I present the following contributions. FirstlyI reproduced pipeline of the algorithm, and then trained the modelswhose backbone are alexnet or VGG16 and head architecture are max, avg or VLAD-based pooling layer NetVLAD respectively on the Pittsburgh 30k training setand test them on Pittsburgh 120k test and Pittsburgh 30k val. Then, I evaluatedtheirabilitiesof generalizationby applying them on the revisited image retrieval testing datasets roxford5k and rparis6k. And byintroducing indicator mAP and mP@, their overall performancesarebetter evaluated and compared. What’s more, I reproduced another sum-basedpooling layer APANet, then trained and evaluatedits performance. Finally I showedthat NetVLAD possesses the overall best performance, APANet enjoys greater improvement compared to the sumpooling. Master of Science (Computer Control and Automation) 2020-08-03T06:34:30Z 2020-08-03T06:34:30Z 2020 Thesis-Master by Coursework https://hdl.handle.net/10356/143110 en application/pdf Nanyang Technological University |
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Engineering::Electrical and electronic engineering Li, Heshan ConvNet-based visual place recognition under appearance changes for unmanned vehicles |
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Identifying the place unmanned vehicles have visited is crucial for their re-localization to eliminate accumulating drifts. As a VPR(visual place recognition problem), the goal is to retrieve the correct reference frames in database which depict the same place as given query image.For retrieval-basedVPR, methods can be classified as VLAD-based and sum-based. In this dissertation, I present the following contributions. FirstlyI reproduced pipeline of the algorithm, and then trained the modelswhose backbone are alexnet or VGG16 and head architecture are max, avg or VLAD-based pooling layer NetVLAD respectively on the Pittsburgh 30k training setand test them on Pittsburgh 120k test and Pittsburgh 30k val. Then, I evaluatedtheirabilitiesof generalizationby applying them on the revisited image retrieval testing datasets roxford5k and rparis6k. And byintroducing indicator mAP and mP@, their overall performancesarebetter evaluated and compared. What’s more, I reproduced another sum-basedpooling layer APANet, then trained and evaluatedits performance. Finally I showedthat NetVLAD possesses the overall best performance, APANet enjoys greater improvement compared to the sumpooling. |
author2 |
Wang Dan Wei |
author_facet |
Wang Dan Wei Li, Heshan |
format |
Thesis-Master by Coursework |
author |
Li, Heshan |
author_sort |
Li, Heshan |
title |
ConvNet-based visual place recognition under appearance changes for unmanned vehicles |
title_short |
ConvNet-based visual place recognition under appearance changes for unmanned vehicles |
title_full |
ConvNet-based visual place recognition under appearance changes for unmanned vehicles |
title_fullStr |
ConvNet-based visual place recognition under appearance changes for unmanned vehicles |
title_full_unstemmed |
ConvNet-based visual place recognition under appearance changes for unmanned vehicles |
title_sort |
convnet-based visual place recognition under appearance changes for unmanned vehicles |
publisher |
Nanyang Technological University |
publishDate |
2020 |
url |
https://hdl.handle.net/10356/143110 |
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1772828529473355776 |