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Anlamsal Bölütleme için Kenar Dikkati ile Gözü Kapali Alan Uyarlamasi

  • Eskisehir Technical University

Araştırma sonucu: Kitap/Rapor/Konferans Bildirisinde BölümKonferans katkısıbilirkişi

Özet

Domain adaptation is a special type of transfer learning that aims to train machine learning architectures trained on a dataset to work on data created for the same task but with a different distribution. Blind domain adaptation is when only the source domain data is accessible during training and the target domain is unknown. In this study, we propose an edge attention module for the semantic segmentation problem to enable the model trained on synthetic datasets to work on real images in the target domain. Since there is no access to the target domain's data distribution in the blind domain adaptation, it is aimed to let the network focus the edges that will be common to both domains through the attention mechanism. Experiments show that the proposed method improves the segmentation performance of the fully convolutional network up to %27.1.

Tercüme edilen katkı başlığıBlind Domain Adaptation for Semantic Segmentation via Edge Attention
Orijinal dilTürkçe
Ana bilgisayar yayını başlığı31st IEEE Conference on Signal Processing and Communications Applications, SIU 2023
YayınlayanInstitute of Electrical and Electronics Engineers Inc.
ISBN (Elektronik)9798350343557
DOI'lar
Yayın durumuYayınlandı - 2023
Etkinlik31st IEEE Conference on Signal Processing and Communications Applications, SIU 2023 - Istanbul, Türkiye
Süre: 5 Tem 20238 Tem 2023

Yayın serisi

Adı31st IEEE Conference on Signal Processing and Communications Applications, SIU 2023

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???event.eventtypes.event.conference???31st IEEE Conference on Signal Processing and Communications Applications, SIU 2023
Ülke/BölgeTürkiye
ŞehirIstanbul
Periyot5/07/238/07/23

Bibliyografik not

Publisher Copyright:
© 2023 IEEE.

Keywords

  • Domain adaptation
  • attention mechanism
  • blind domain adaptation
  • semantic segmentation

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