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Bi-RDNet: Performance Enhancement for Remote Sensing Scene Classification with Rotational Duplicate Layers

Araştırma sonucu: Kitap/Rapor/Konferans Bildirisinde BölümKonferans katkısıbilirkişi

1 Atıf (Scopus)

Özet

We propose compact and effective network layer Rotational Duplicate Layer (RDLayer) that takes the place of regular convolution layer resulting up to 128 × in memory saving. Along with network accuracy, memory and power constraints affect design choices of computer vision tasks performed on resource-limited devices such as FPGAs (Field Programmable Gate Array). To overcome this limited availability, RDLayers are trained in a way that whole layer parameters are obtained from duplication and rotation of smaller learned kernel. Additionally, we speed up the forward pass via partial decompression methodology for data compressed with JPEG(Joint Photograpic Expert Group)2000. Our experiments on remote sensing scene classification showed that our network achieves ∼ 4 × reduction in model size in exchange of ∼ 4.5 % drop in accuracy, ∼ 27 × reduction with the cost of ∼ 10 % drop in accuracy, along with ∼ 2.6 × faster evaluation time on test samples.

Orijinal dilİngilizce
Ana bilgisayar yayını başlığıAdvances in Computational Collective Intelligence - 13th International Conference, ICCCI 2021, Proceedings
EditörlerKrystian Wojtkiewicz, Jan Treur, Elias Pimenidis, Marcin Maleszka
YayınlayanSpringer Science and Business Media Deutschland GmbH
Sayfalar669-678
Sayfa sayısı10
ISBN (Basılı)9783030881122
DOI'lar
Yayın durumuYayınlandı - 2021
Etkinlik13th International Conference on Computational Collective Intelligence, ICCCI 2021 - Virtual, Online
Süre: 29 Eyl 20211 Eki 2021

Yayın serisi

AdıCommunications in Computer and Information Science
Hacim1463
ISSN (Basılı)1865-0929
ISSN (Elektronik)1865-0937

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???event.eventtypes.event.conference???13th International Conference on Computational Collective Intelligence, ICCCI 2021
ŞehirVirtual, Online
Periyot29/09/211/10/21

Bibliyografik not

Publisher Copyright:
© 2021, Springer Nature Switzerland AG.

Finansman

We would like to thank our colleagues from ASELSAN for their support.

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