An Efficient Unsupervised Learning-based Monocular Depth Estimation Processor with Partial-Switchable Systolic Array Architecture in Edge Devices

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dc.contributor.authorPark, Wonhoonko
dc.contributor.authorYoo, Hoi-Junko
dc.contributor.authorIm, DongSeokko
dc.contributor.authorKwon, Hankyulko
dc.date.accessioned2023-01-12T10:00:55Z-
dc.date.available2023-01-12T10:00:55Z-
dc.date.created2023-01-09-
dc.date.created2023-01-09-
dc.date.issued2022-11-
dc.identifier.citation2022 IEEE Asian Solid-State Circuits Conference, A-SSCC 2022-
dc.identifier.urihttp://hdl.handle.net/10203/304345-
dc.description.abstractWith the development of deep learning, many edge devices adopt monocular depth estimation (MDE) to produce reliable 3D RGB-D data due to its low power and low costs compared to an RGB-D sensor [1]. In a user domain, the MDE's deep neural network has to be re-trained for the domain adaptation [2], [3]. However, the conventional training system requires expensive labeled dataset collection, which is obtained by a high-cost RGB-D sensor with additional raw data preprocessing [3] such as depth alignment, depth synchronization, and depth inpainting. As a result, the proposed processor performs the unsupervised learning-based MDE system, which does not rely on additional sensors and preprocessing for data collection for the training.-
dc.languageEnglish-
dc.publisherInstitute of Electrical and Electronics Engineers Inc.-
dc.titleAn Efficient Unsupervised Learning-based Monocular Depth Estimation Processor with Partial-Switchable Systolic Array Architecture in Edge Devices-
dc.typeConference-
dc.identifier.scopusid2-s2.0-85146548081-
dc.type.rimsCONF-
dc.citation.publicationname2022 IEEE Asian Solid-State Circuits Conference, A-SSCC 2022-
dc.identifier.conferencecountryCH-
dc.identifier.conferencelocationGrand Hotel, Taipei & Online-
dc.identifier.doi10.1109/A-SSCC56115.2022.9980829-
dc.contributor.localauthorYoo, Hoi-Jun-
dc.contributor.nonIdAuthorPark, Wonhoon-
dc.contributor.nonIdAuthorKwon, Hankyul-
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EE-Conference Papers(학술회의논문)
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