Improving Object Detection using Enhanced EfficientNet Architecture

dc.contributor.advisorEl-Sharkawy, Mohamed
dc.contributor.authorKamel Ibrahim, Michael
dc.contributor.otherKing, Brian
dc.contributor.otherRizkalla, Maher
dc.date.accessioned2023-08-31T09:51:16Z
dc.date.available2023-08-31T09:51:16Z
dc.date.issued2023-08
dc.degree.date2023en_US
dc.degree.disciplineElectrical & Computer Engineeringen
dc.degree.grantorPurdue Universityen_US
dc.degree.levelM.S.E.C.E.en_US
dc.descriptionIndiana University-Purdue University Indianapolis (IUPUI)en_US
dc.description.abstractEfficientNet is designed to achieve top accuracy while utilizing fewer parameters, in addition to less computational resources compared to previous models. In this paper, we are presenting compound scaling method that re-weight the network’s width (w), depth(d), and resolution (r), which leads to better performance than traditional methods that scale only one or two of these dimensions by adjusting the hyperparameters of the model. Additionally, we are presenting an enhanced EfficientNet Backbone architecture. We show that EfficientNet achieves top accuracy on the ImageNet dataset, while being up to 8.4x smaller and up to 6.1x faster than previous top performing models. The effec- tiveness demonstrated in EfficientNet on transfer learning and object detection tasks, where it achieves higher accuracy with fewer parameters and less computation. Henceforward, the proposed enhanced architecture will be discussed in detail and compared to the original architecture. Our approach provides a scalable and efficient solution for both academic research and practical applications, where resource constraints are often a limiting factor.en_US
dc.identifier.urihttps://hdl.handle.net/1805/35266
dc.language.isoen_USen_US
dc.subjectAutonomous Vehiclesen_US
dc.subjectEfficientNet Architectureen_US
dc.subjectObject Detectionen_US
dc.subjectConvolutional Neural Networksen_US
dc.subjectMachine Learningen_US
dc.titleImproving Object Detection using Enhanced EfficientNet Architectureen_US
dc.typeThesisen
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