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A bibliometric analysis of research trends and advanced technologies in tactile graphics design

A bibliometric analysis of research trends and advanced technologies in tactile graphics design

Rong, Anqi ; Hansopaheluwakan-Edward, Nina ;

Full paper:

"Tactile graphics in the human–computer interaction profession emerged in the 1970s to solve various issues visually impaired people faced and the wider social implications of such challenges. As technology continues to evolve, designers are becoming interested in tactile graphics from a human-centred design perspective, which while potentially enriching this field also risks losing valuable input from other disciplines. This study thus reviews extant literature on tactile graphics research from an interdisciplinary perspective, considering valuable input from various disciplines to identify, analyse, and discuss diverse hotspots and techniques used in tactile graphics. The process involves a bibliometric analysis of the tactile graphics literature to help researchers quickly understand the direction of research besides their application in other disciplines in order to find solutions to problems related to tactile graphics. Its findings provide insights into the new field that benefit researchers, stakeholders in the design industry and, ultimately, users of tactile graphics."

Full paper:

"Tactile graphics in the human–computer interaction profession emerged in the 1970s to solve various issues visually impaired people faced and the wider social implications of such challenges. As technology continues to evolve, designers are becoming interested in tactile graphics from a human-centred design perspective, which while potentially enriching this field also risks losing valuable input from other disciplines. This study thus reviews extant literature on tactile graphics research from an interdisciplinary perspective, considering valuable input from various disciplines to identify, analyse, and discuss diverse hotspots and techniques used in tactile graphics. The process involves a bibliometric analysis of the tactile graphics literature to help researchers quickly understand the direction of research besides their application in other disciplines in order to find solutions to problems related to tactile graphics. Its findings provide insights into the new field that benefit researchers, stakeholders in the design industry and, ultimately, users of tactile graphics."

Palavras-chave: "Visually impaired, Tactile graphics, Technology, Tactile graphics design, Citespace",

Palavras-chave: "Visually impaired, Tactile graphics, Technology, Tactile graphics design, Citespace",

DOI: 10.5151/ead2023-1BIL-01Full-06Rong

Referências bibliográficas
  • [1] Wabiński, & Mościcka, A. (2019). Automatic (Tactile) Map Generation—A Systematic Literature Review. ISPRS International Journal of Geo-Information, 8(7), 293–.
  • [2] Ferro, & Pawluk, D. (2017). Providing Dynamic Access to Electronic Tactile Diagrams. Universal Access in Human–Computer Interaction. Designing Novel Interactions, 269–28
  • [3] Engel, & Weber, G. (2019). User Study: A Detailed View on the Effectiveness and Design of Tactile Charts. Human-Computer Interaction – INTERACT 2019, 63–82.
  • [4] Zebehazy, & Wilton, A. P. (2014). Straight from the Source: Perceptions of Students with Visual Impairments about Graphic Use. Journal of Visual Impairment & Blindness, 108(4), 275–286.
  • [5] Mukhiddinov, & Kim, S.-Y. (2021). A Systematic Literature Review on the Automatic Creation of Tactile Graphics for the Blind and Visually Impaired. Processes, 9(10), 1726–.
  • [6] Holloway, Marriott, K., & Butler, M. (2018). Accessible Maps for the Blind: Comparing 3D Printed Models with Tactile Graphics. Proceedings of the 2018 CHI Conference on Human Factors in Computing Systems, 1–13.
  • [7] Stangl, Kim, J., & Yeh, T. (2014). 3D printed tactile picture books for children with visual impairments: a design probe. Proceedings of the 2014 Conference on Interaction Design and Children, 321–324.
  • [8] Pawluk, Adams, R. J., & Kitada, R. (2015). Designing Haptic Assistive Technology for Individuals Who Are Blind or Visually Impaired. IEEE Transactions on Haptics, 8(3), 258–27
  • [9] Fusco, G., & Morash, V. S. (2015, October). The tactile graphics helper: providing audio clarification for tactile graphics using machine vision. In Proceedings of the 17th International ACM SIGACCESS Conference on Computers & Accessibility (pp. 97-106).
  • [10] Shi, L., Zelzer, I., Feng, C., & Azenkot, S. (2016, May). Tickers and talker: An accessible labeling toolkit for 3D printed models. In Proceedings of the 2016 chi conference on human factors in computing systems (pp. 4896-4907).
  • [11] Leo, F., Cocchi, E., & Brayda, L. (2016). The effect of programmable tactile displays on spatial learning skills in children and adolescents of different visual disability. IEEE Transactions on Neural Systems and Rehabilitation Engineering, 25(7), 861-872.
  • [12] Holloway, L., Marriott, K., Butler, M., & Reinders, S. (2019, October). 3D printed maps and icons for inclusion: Testing in the wild by people who are blind or have low vision. In Proceedings of the 21st International ACM SIGACCESS Conference on Computers and Accessibility (pp. 183-195).
  • [13] Kim, S., Park, E. S., & Ryu, E. S. (2019). Multimedia vision for the visually impaired through 2d multiarray braille display. Applied Sciences, 9(5), 878.
  • [14] Engel, Müller, E., & Weber, G. (2019). SVGPlott: an accessible tool to generate highly adaptable, accessible audio-tactile charts for and from blind and visually impaired people. Proceedings of the 12th ACM International Conference on Pervasive Technologies Related to Assistive Environments, 186–195.
  • [15] Gonzalez, R., Gonzalez, C., & Guerra-Gomez, J. A. (2019, October). Tactiled: Towards more and better tactile graphics using machine learning. In Proceedings of the 21st International ACM SIGACCESS Conference on Computers and Accessibility (pp. 530-532).
  • [16] Abdusalomov, A., Mukhiddinov, M., Djuraev, O., Khamdamov, U., & Whangbo, T. K. (2020). Automatic salient object extraction based on locally adaptive thresholding to generate tactile graphics. Applied Sciences, 10(10), 3350.
  • [17] Bose, R., Bauer, M. A., & Jürgensen, H. (2020, September). Utilizing Machine Learning Models for Developing a Comprehensive Accessibility System for Visually Impaired People. In ICCHP (p. 83).
  • [18] Melfi, G., Müller, K., Schwarz, T., Jaworek, G., & Stiefelhagen, R. (2020, April). Understanding what you feel: A mobile audio-tactile system for graphics used at schools with students with visual impairment. In Proceedings of the 2020 CHI Conference on Human Factors in Computing Systems (pp. 1-12).
  • [19] Lee, D., & Cho, J. (2022). Automatic object detection algorithm-based braille image generation system for the recognition of real-life obstacles for visually impaired people. Sensors, 22(4), 1601.
  • [20] Götzelmann. (2018). Visually Augmented Audio-Tactile Graphics for Visually Impaired People. ACM Transactions on Accessible Computing, 11(2), 1–31.
  • [21] Brock, Truillet, P., Oriola, B., Picard, D., & Jouffrais, C. (2015). Interactivity Improves Usability of Geographic Maps for Visually Impaired People. Human-Computer Interaction, 30(2), 156–194.
  • [22] Lu, C., & Zong X., 2017.Study of tactile graphics design for the blind. Design (pp.126-127).
  • [23] Červenka, P., Břinda, K., Hanousková, M., Hofman, P., & Seifert, R. (2016). Blind friendly maps: Tactile maps for the blind as a part of the public map portal (Mapy. cz). In Computers Helping People with Special Needs: 15th International Conference, ICCHP 2016, Linz, Austria, July 13-15, 2016, Proceedings, Part II 15 (pp. 131-138). Springer International Publishing.
  • [24] Watanabe, T., Yamaguchi, T., Koda, S., & Minatani, K. (2014). Tactile map automated creation system using openstreetmap. In Computers Helping People with Special Needs: 14th International Conference, ICCHP 2014, Paris, France, July 9-11, 2014, Proceedings, Part II 14 (pp. 42-49). Springer International Publishing.
  • [25] Takagi, N., & Chen, J. (2014, August). Development of a computer-aided system for automating production of tactile maps and its usability evaluation. In 2014 World automation congress (WAC) (pp. 213-218). IEEE.
  • [26] Pandey, M., Subramonyam, H., Sasia, B., Oney, S., & O'Modhrain, S. (2020, April). Explore, create, annotate: designing digital drawing tools with visually impaired people. In Proceedings of the 2020 CHI conference on human factors in computing systems (pp. 1-12).
  • [27] Butler, M., Holloway, L. M., Reinders, S., Goncu, C., & Marriott, K. (2021, May). Technology developments in touch-based accessible graphics: A systematic review of research 2010-2020. In Proceedings of the 2021 Chi conference on human factors in computing systems (pp. 1-15).
  • [28] Cole, H. (2021). Tactile cartography in the digital age: A review and research agenda. Progress in Human Geography, 45(4), 834-854.
  • [29] Kent, A. J. (2019). Maps, materiality and tactile aesthetics. The Cartographic Journal, 56(1), 1-3.
  • [30] Hu, R., Huang, S., Wang, M., Luo, X., Shiomi, J., & Qiu, C. W. (2019). Encrypted thermal printing with regionalization transformation. Advanced Materials, 31(25), 1807849.
  • [31] Stone, B., Kay, D., Reynolds, A., & Brown, D. (2020). 3D Printing and Service Learning: Accessible Open Educational Resources for Students with Visual Impairment. International Journal of Teaching and Learning in Higher Education, 32(2), 336-346.
  • [32] Yang, W., Huang, J., Wang, R., Zhang, W., Liu, H., & Xiao, J. (2021). A survey on tactile displays for visually impaired people. IEEE Transactions on Haptics, 14(4), 712-721.
Como citar:

Rong, Anqi; Hansopaheluwakan-Edward, Nina; "A bibliometric analysis of research trends and advanced technologies in tactile graphics design", p. 78-89 . In: 15th International Conference of the European Academy of Design. São Paulo: Blucher, 2023.
ISSN 2318-6968, DOI 10.5151/ead2023-1BIL-01Full-06Rong

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