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 Attention Mechanism for Human Motion Prediction

 العقل، أمل فهد


//uquui/handle/20.500.12248/117129
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dc.contributor.authorالعقل، أمل فهدen_US
dc.date.accessioned2020-04-30T21:06:50Z-
dc.date.available2020-04-30T21:06:50Z-
dc.date.issued2020en_US
dc.identifier.urihttps://dorar.uqu.edu.sa/uquui/handle/20.500.12248/117129-
dc.description112 ورقة.en_US
dc.description.abstractHuman motion prediction aims to forecast the most likely future frames of motion conditioned on a given sequence of frames. Because of its importance to many applications especially robotics, human motion prediction has received a lot of interest and has become an active area of research. Recently, deep learning methods have been dominant in many tasks due to their successful results. Particularly, Recurrent Neural Networks (RNNs) have shown excellent performance on human motion prediction task and other tasks that depend on sequential data, where preserving the order of the sequence items is crucial. The well-known Sequence-to-Sequence (Seq2Seq) architectures have been used for sequence learning where two RNNs namely the encoder and the decoder work cooperatively to transform one sequence to another. In the context of neural machine translation, the use of attention decoders yields state-of-the-art results. This work attempts to assess quantitatively the use of a bidirectional encoder and an attention decoder in human motion prediction. The experiments of this work have shown that using attention decoder has achieved state-of-the-art results after 160 milliseconds of motion prediction. In contrast with earlier works, the quality of predictions doesn’t deteriorate and remains stable even after more than 1 second of motion prediction.en_US
dc.language.isoانجليزيen_US
dc.publisherجامعة أم القرىen_US
dc.relation.isformatofمكتبة الملك عبدالله بن عبدالعزيز الجامعيةen_US
dc.subjectComputer engineeringen_US
dc.subjectالتنبؤ العلميen_US
dc.titleAttention Mechanism for Human Motion Predictionen_US
dc.identifier.callnum23758-
dc.type.formatماجستيرen_US
dc.publisher.countryالمملكة العربية السعوديةen_US
dc.relation.collageالحاسب الآلي ونظم المعلوماتen_US
dc.type.statusمجازen_US
dc.publisher.cityمكة المكرمةen_US
dc.date.issuedhijri1441en_US
dc.relation.depعلوم الحاسب الآليen_US
Appears in Collections :الرسائل العلمية المحدثة

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