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Görme Engelliler için Vücudun Okuma Hassasiyetinin Ölçülmesi

Year 2020, Ejosat Special Issue 2020 (ARACONF), 342 - 348, 01.04.2020
https://doi.org/10.31590/ejosat.araconf44

Abstract

Bilindiği gibi görme engelliler ve diğer engelli bireylerin sosyal hayata entegrasyonu yönünde birçok çalışma yapılmakta fakat yapılan çalışmaların birçoğu engelli bireylerin hareket, konfor gibi durumlarını sınırlamaktadır. Özellikle hareket kabiliyeti düşük olan görme engelli bireylerde hareket kabiliyetlerini kısıtlamayacak cihazlar geliştirilmesi ihtiyacı bulunmaktadır. Görme engelli bireylerin sosyal yaşamdaki karşılaştığı sorunları ele alındığında, birçok alanda ciddi gelişmelerin yaşandığı günümüz şartlarında, görme engelli kişilerin yeteri kadar teknolojiden faydalanmayıp, okuma yetenekleri sadece Braille alfabesi ile yazılan metinler ve sayısal ortamdaki metinleri sese çevirebilen teknolojilerden ibarettir. Her iki durumda da mobilitelerinin kısıtlı olması sebebiyle sosyal ortamdan uzak kalmaları büyük sorun teşkil etmektedir. Bunun yanı sıra, görme engelli bireylerin kullanacağı ve kültürel gelişimine katkıda bulunabilecek nitelikte materyallerin (kitap, dergi, gazete v.b) kısıtlı olması, üretilen materyallerin kullanılan alfabe tekniği nedeniyle ulaşılmasının zor olması veya maliyetinin yüksek olması sorun olmaktadır. Özellikle görme engelli bireylerin hareket kabiliyetlerini kısıtlamadan ve dış ortamdan izole olmadan dijital ortamdaki metinleri daha çok titreşim yoluyla okuma yapabilmesi için, vücutta kişinin çeşitli bölgeleri üzerinde bir çalışma yapılmış olup bu yolla yapacakları okuma hassasiyeti bu çalışmada araştırılmıştır.

References

  • Elmannai, W., & Elleithy, K. (2017). Sensor-based assistive devices for visually-impaired people: Current status, challenges, and future directions. Sensors, 17(3), 565.
  • Ahmad, F., Ishaq, I., Ali, D., & Riaz, M. F. (2016, December). Bionic Kinect device to assist visually impaired people by haptic and voice feedback. In 2016 International Conference on Bio-engineering for Smart Technologies (BioSMART) (pp. 1-4). IEEE.
  • Joseph, S. L., Xiao, J., Zhang, X., Chawda, B., Narang, K., Rajput, N., ... & Subramaniam, L. V. (2015). Being aware of the world: Toward using social media to support the blind with navigation. IEEE transactions on human-machine systems, 45(3), 399-405.
  • Xiao, J., Joseph, S. L., Zhang, X., Li, B., Li, X., & Zhang, J. (2015). An assistive navigation framework for the visually impaired. IEEE Transactions on Human-Machine Systems, 45(5), 635-640.
  • Andò, B., Baglio, S., Marletta, V., & Valastro, A. (2015). A haptic solution to assist visually impaired in mobility tasks. IEEE Transactions on Human-Machine Systems, 45(5), 641-646.
  • Kumar, K., Champaty, B., Uvanesh, K., Chachan, R., Pal, K., & Anis, A. (2014, July). Development of an ultrasonic cane as a navigation aid for the blind people. In 2014 International Conference on Control, Instrumentation, Communication and Computational Technologies (ICCICCT) (pp. 475-479). IEEE.
  • Battaglia, F., & Iannizzotto, G. (2012). An open architecture to develop a handheld device for helping visually impaired people. IEEE Transactions on Consumer Electronics, 58(3), 1086-1093.
  • El-Koka, A., Hwang, G. H., & Kang, D. K. (2012, February). Advanced electronics based smart mobility aid for the visually impaired society. In 2012 14th International Conference on Advanced Communication Technology (ICACT) (pp. 257-261). IEEE.
  • Galeotti, J., Horvath, S., Klatzky, R., Nichol, B., Siegel, M., & Stetten, G. (2008). FingerSight™: fingertip control and haptic sensing of the visual environment. In ACM SIGGRAPH 2008 new tech demos (pp. 1-1).
  • Horvath, S., Galeotti, J., Wu, B., Klatzky, R., Siegel, M., & Stetten, G. (2014). FingerSight: Fingertip haptic sensing of the visual environment. IEEE Journal of Translational Engineering in Health and Medicine, 2, 1-9.
  • Hirose, M., & Amemiya, T. (2003, June). Wearable finger-braille interface for navigation of deaf-blind in ubiquitous barrier-free space. In Proceedings of the HCI International (Vol. 4, pp. 1417-1421).
  • Sarkar, R., Das, S., & Rudrapal, D. (2013, February). A low cost microelectromechanical Braille for blind people to communicate with blind or deaf blind people through SMS subsystem. In 2013 3rd IEEE International Advance Computing Conference (IACC) (pp. 1529-1532). IEEE.
  • Eldem, A., & Başçiftçi, F. (2015). Electronic and Computer-Assisted Refreshable Braille Display Developed for Visually Impaired Individuals. International Journal of Medical, Health, Pharmaceutical and Biomedical Engineering, 9(1).
  • Russomanno, A., O’Modhrain, S., Gillespie, R. B., & Rodger, M. W. (2015). Refreshing refreshable braille displays. IEEE transactions on haptics, 8(3), 287-297.
  • Culbertson, H., Schorr, S. B., & Okamura, A. M. (2018). Haptics: The present and future of artificial touch sensation. Annual Review of Control, Robotics, and Autonomous Systems, 1, 385-409.
  • Avşar, İ. and Furat, M. “Görme Engelli Alfabesi Okuma Sistemi,” TPE Başvuru no:2019/09429.

Reading Sensivity Measurement of the Body for the Visually Impaired

Year 2020, Ejosat Special Issue 2020 (ARACONF), 342 - 348, 01.04.2020
https://doi.org/10.31590/ejosat.araconf44

Abstract

It is well known that many studies are carried out for the integration of visually impaired and other disabled individuals to social life, but many of the studies limit the conditions of disabled individuals such as movement and comfort. There is a need to develop devices that will not limit their mobility especially in individuals with low mobility. Considering the problems faced by visually impaired individuals in social life, in today's conditions where there are serious developments in many areas, visually impaired people do not benefit from enough technology, their reading skills are only the texts written in Braille alphabet and technologies that can translate texts in digital environment into sound. In both cases, because of their limited mobility, their being away from the social environment poses a big problem. In addition, it is a problem that the materials (books, magazines, newspapers, etc.) that are visually impaired and that can contribute to their cultural development are limited, the materials produced are difficult to access due to the alphabet technique used or the cost is high. In order to enable the visually impaired individuals to read the texts in the digital environment more by vibration without restricting their mobility and isolation from the external environment, a study was made on various parts of the body and their reading sensitivity was investigated in this study.

References

  • Elmannai, W., & Elleithy, K. (2017). Sensor-based assistive devices for visually-impaired people: Current status, challenges, and future directions. Sensors, 17(3), 565.
  • Ahmad, F., Ishaq, I., Ali, D., & Riaz, M. F. (2016, December). Bionic Kinect device to assist visually impaired people by haptic and voice feedback. In 2016 International Conference on Bio-engineering for Smart Technologies (BioSMART) (pp. 1-4). IEEE.
  • Joseph, S. L., Xiao, J., Zhang, X., Chawda, B., Narang, K., Rajput, N., ... & Subramaniam, L. V. (2015). Being aware of the world: Toward using social media to support the blind with navigation. IEEE transactions on human-machine systems, 45(3), 399-405.
  • Xiao, J., Joseph, S. L., Zhang, X., Li, B., Li, X., & Zhang, J. (2015). An assistive navigation framework for the visually impaired. IEEE Transactions on Human-Machine Systems, 45(5), 635-640.
  • Andò, B., Baglio, S., Marletta, V., & Valastro, A. (2015). A haptic solution to assist visually impaired in mobility tasks. IEEE Transactions on Human-Machine Systems, 45(5), 641-646.
  • Kumar, K., Champaty, B., Uvanesh, K., Chachan, R., Pal, K., & Anis, A. (2014, July). Development of an ultrasonic cane as a navigation aid for the blind people. In 2014 International Conference on Control, Instrumentation, Communication and Computational Technologies (ICCICCT) (pp. 475-479). IEEE.
  • Battaglia, F., & Iannizzotto, G. (2012). An open architecture to develop a handheld device for helping visually impaired people. IEEE Transactions on Consumer Electronics, 58(3), 1086-1093.
  • El-Koka, A., Hwang, G. H., & Kang, D. K. (2012, February). Advanced electronics based smart mobility aid for the visually impaired society. In 2012 14th International Conference on Advanced Communication Technology (ICACT) (pp. 257-261). IEEE.
  • Galeotti, J., Horvath, S., Klatzky, R., Nichol, B., Siegel, M., & Stetten, G. (2008). FingerSight™: fingertip control and haptic sensing of the visual environment. In ACM SIGGRAPH 2008 new tech demos (pp. 1-1).
  • Horvath, S., Galeotti, J., Wu, B., Klatzky, R., Siegel, M., & Stetten, G. (2014). FingerSight: Fingertip haptic sensing of the visual environment. IEEE Journal of Translational Engineering in Health and Medicine, 2, 1-9.
  • Hirose, M., & Amemiya, T. (2003, June). Wearable finger-braille interface for navigation of deaf-blind in ubiquitous barrier-free space. In Proceedings of the HCI International (Vol. 4, pp. 1417-1421).
  • Sarkar, R., Das, S., & Rudrapal, D. (2013, February). A low cost microelectromechanical Braille for blind people to communicate with blind or deaf blind people through SMS subsystem. In 2013 3rd IEEE International Advance Computing Conference (IACC) (pp. 1529-1532). IEEE.
  • Eldem, A., & Başçiftçi, F. (2015). Electronic and Computer-Assisted Refreshable Braille Display Developed for Visually Impaired Individuals. International Journal of Medical, Health, Pharmaceutical and Biomedical Engineering, 9(1).
  • Russomanno, A., O’Modhrain, S., Gillespie, R. B., & Rodger, M. W. (2015). Refreshing refreshable braille displays. IEEE transactions on haptics, 8(3), 287-297.
  • Culbertson, H., Schorr, S. B., & Okamura, A. M. (2018). Haptics: The present and future of artificial touch sensation. Annual Review of Control, Robotics, and Autonomous Systems, 1, 385-409.
  • Avşar, İ. and Furat, M. “Görme Engelli Alfabesi Okuma Sistemi,” TPE Başvuru no:2019/09429.
There are 16 citations in total.

Details

Primary Language Turkish
Subjects Engineering
Journal Section Articles
Authors

İlknur Avşar This is me 0000-0001-8987-2136

Murat Furat 0000-0003-3179-5099

Publication Date April 1, 2020
Published in Issue Year 2020 Ejosat Special Issue 2020 (ARACONF)

Cite

APA Avşar, İ., & Furat, M. (2020). Görme Engelliler için Vücudun Okuma Hassasiyetinin Ölçülmesi. Avrupa Bilim Ve Teknoloji Dergisi342-348. https://doi.org/10.31590/ejosat.araconf44