Doküman Görüntüleri Üzerinde Varlik ve Iliski Isaretlemeleri ǐin Yari-Otomatik Etiketleme Araci

Mehmet Yasin Akpinar, Berke Oral, Deniz Engin, Erdem Emekligil, Secil Arslan, Gulsen Eryigit

Araştırma sonucu: ???type-name???Konferans katkısıbilirkişi

4 Atıf (Scopus)

Özet

To be able to use supervised machine learning methods in natural language processing, there is a need of labeled data in large quantities. In some cases, especially when there are multiple tasks conducted on the same data, the annotation process may become exhausting and time consuming for both the annotatore and interpreters. Thus, an effective annotation tool becomes crucial in order to both increase the annotation quality and reduce the annotation time. In this paper, a semi-automatic annotation tool, which aims to decrease the manual work and user faults, is proposed. The interface of the tool is designed in a user-friendly manner in order to ease the process. The characteristics and input/output formats of the tool is explained in detail within the paper. The effects on the speed and accuracy of the users are analyzed as well as automatic labeling accuracy with conducted performance tests. It is noted that a deep-learning model trained with a small dataset can decrease the manual entity annotation workload up to 78, 43%.

Tercüme edilen katkı başlığıA Semi-Automatic Annotation Interface for Named Entity and Relation Annotation on Document Images
Orijinal dilTürkçe
Ana bilgisayar yayını başlığıUBMK 2019 - Proceedings, 4th International Conference on Computer Science and Engineering
YayınlayanInstitute of Electrical and Electronics Engineers Inc.
Sayfalar47-52
Sayfa sayısı6
ISBN (Elektronik)9781728139647
DOI'lar
Yayın durumuYayınlandı - Eyl 2019
Etkinlik4th International Conference on Computer Science and Engineering, UBMK 2019 - Samsun, Turkey
Süre: 11 Eyl 201915 Eyl 2019

Yayın serisi

AdıUBMK 2019 - Proceedings, 4th International Conference on Computer Science and Engineering

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???event.eventtypes.event.conference???4th International Conference on Computer Science and Engineering, UBMK 2019
Ülke/BölgeTurkey
ŞehirSamsun
Periyot11/09/1915/09/19

Bibliyografik not

Publisher Copyright:
© 2019 IEEE.

Keywords

  • Deep Learning
  • Named Entity Recognition
  • Optical Character Recognition
  • Relation Extraction
  • Semi-Automatic Annotation
  • Text Processing

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