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A Comparison of Hough Transform and Deep Neural Network Methods on Road Segmentation

  • AVL List GmbH

Araştırma çıktısı: Kitap/Rapor/Konferans Bildirisinde BölümKonferans katkısıHakem

3 Atıf (Scopus)

Özet

Thanks to developments in the computer hardware systems, deep learning has been an attractive field for many researchers in different disciplines. Aim of deep learning is to extract the desired features of raw data as a learning method by operating many hidden layers. Accomplished results of learning methods on complex issues as face recognition, object detection, motion recognition etc. led researchers to think about applying deep learning methods to road lane detection-segmentation which is one of the very important issues of Advanced Driver Assistance Systems (ADAS). Considering main limitations of conventional methods for lane detection, deep learning approach can provide more robustness than existing approaches. The objective of work is to compare the effectiveness of conventional and deep learning applications to improve accuracy of the road segmentation.

Orijinal dilİngilizce
Ana bilgisayar yayını başlığı3rd International Symposium on Multidisciplinary Studies and Innovative Technologies, ISMSIT 2019 - Proceedings
YayınlayanInstitute of Electrical and Electronics Engineers Inc.
ISBN (Elektronik)9781728137896
DOI'lar
Yayın durumuYayınlandı - Eki 2019
Etkinlik3rd International Symposium on Multidisciplinary Studies and Innovative Technologies, ISMSIT 2019 - Ankara, Türkiye
Süre: 11 Eki 201913 Eki 2019

Yayın serisi

Adı3rd International Symposium on Multidisciplinary Studies and Innovative Technologies, ISMSIT 2019 - Proceedings

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???event.eventtypes.event.conference???3rd International Symposium on Multidisciplinary Studies and Innovative Technologies, ISMSIT 2019
Ülke/BölgeTürkiye
ŞehirAnkara
Periyot11/10/1913/10/19

Bibliyografik not

Publisher Copyright:
© 2019 IEEE.

Finansman

ACKNOWLEDGMENT This work is supported by AVL Autonomous Drive & Vehicle Controls Team. We would like to thank Ahmetcan

Finansörler
AVL List

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