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Belge İmgeleri Siniflandirma İçin Evrişimsel Sinir Aǧi Modellerinin Karşilaştirilmasi

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Özet

Despite the increase in digitization, the use of documents is still very common today. It is essential that these documents are correctly labeled and classified for their need to be archived in an accessible manner. In this study, we used state-of-the-art convolutional neural network models to satisfy this need. Convolutional Neural Networks achieve high performance compared to alternative methods in the field of classification, due to the strong and rich features they can learn from large data through deep architecture. For the experiments, we have used a dataset containing 400,000 images of 16 different document classes. The state-of-the-art deep learning models have been fine-tuned and compared in detail. VGG-16 architecture has achieved the best performance on this dataset with 90.93% correct classification rate.

Tercüme edilen katkı başlığıComparison of convolutional neural network models for document image classification
Orijinal dilTürkçe
Ana bilgisayar yayını başlığı2017 25th Signal Processing and Communications Applications Conference, SIU 2017
YayınlayanInstitute of Electrical and Electronics Engineers Inc.
ISBN (Elektronik)9781509064946
DOI'lar
Yayın durumuYayınlandı - 27 Haz 2017
Etkinlik25th Signal Processing and Communications Applications Conference, SIU 2017 - Antalya, Turkey
Süre: 15 May 201718 May 2017

Yayın serisi

Adı2017 25th Signal Processing and Communications Applications Conference, SIU 2017

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???event.eventtypes.event.conference???25th Signal Processing and Communications Applications Conference, SIU 2017
Ülke/BölgeTurkey
ŞehirAntalya
Periyot15/05/1718/05/17

Bibliyografik not

Publisher Copyright:
© 2017 IEEE.

Keywords

  • convolutional neural network
  • deep learning
  • document classification

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