Augmented Reality-Based Framework Supporting Visual Inspection for Automotive Industry
Abstract
:1. Introduction
2. AR in the Industry
3. The Proposed Cognitive System for Inspection
3.1. Background
3.2. Cognitive Assistant System Conception and Design
3.2.1. MQTT-Based Data Transmission
3.2.2. Data Visualization through the Cognitive Assistant System
4. Result and Validation
- Have you felt dizzy during or after the AR experience?
- Have you found the list of tasks legible?
- Are the chosen colors clear and readable?
- Is the designed interface appropriate for the lighting conditions?
- Is the interaction way within the system usable and easy?
- Do you think the system is time-saving?
- Is it easier to handle vehicle defects using the proposed AR system?
- Do you think the device is adequate for such a task?
5. Conclusions and Future Perspective
- a voice note form if an HMD is used;
- or a “plus” touch button if an HHD is used.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Albers, A.; Gladysz, B.; Pinner, T.; Butenko, V.; Stürmlinger, T. Procedure for Defining the System of Objectives in the Initial Phase of an Industry 4.0 Project Focusing on Intelligent Quality Control Systems. Procedia CIRP 2016, 52, 262–267. [Google Scholar] [CrossRef] [Green Version]
- Erboz, G. How to Define Industry 4.0: The Main Pillars of Industry 4.0. In Managerial Trends in the Development of Enterprises in Globalization Era; Košičiarová, I., Kádeková, Z., Eds.; Slovak University of Agriculture in Nitra: Nitra, Slovakia, 2017. [Google Scholar]
- Boyes, H.; Hallaq, B.; Cunningham, J.; Watson, T. The industrial internet of things (IIoT): An analysis framework. Comput. Ind. 2018, 101, 1–12. [Google Scholar] [CrossRef]
- Olsen, T.L.; Tomlin, B. Industry 4.0: Opportunities and Challenges for Operations Management. Manuf. Serv. Op. Manag. 2020, 22, 113–122. [Google Scholar] [CrossRef]
- Fuentes, D.; Correia, L.; Costa, N.; Reis, A.; Barroso, J.; Pereira, A. SAR.IoT: Secured Augmented Reality for IoT Devices Management. Sensors 2021, 21, 6001. [Google Scholar] [CrossRef] [PubMed]
- Szajna, A.; Stryjski, R.; Woźniak, W.; Chamier-Gliszczyński, N.; Kostrzewski, M. Assessment of Augmented Reality in Manual Wiring Production Process with Use of Mobile AR Glasses. Sensors 2020, 20, 4755. [Google Scholar] [CrossRef] [PubMed]
- Masood, T.; Egger, J. Augmented reality in support of Industry 4.0—Implementation challenges and success factors. Robot. Comput. Manuf. 2019, 58, 181–195. [Google Scholar] [CrossRef]
- Unity. Multiplatform. Available online: https://unity.com/features/multiplatform (accessed on 12 May 2020).
- OASIS. MQTT Specification. Available online: http://docs.oasis-open.org/mqtt/mqtt/v3.1.1/mqtt-v3.1.1.html (accessed on 6 June 2020).
- Serozhenko, M. MQTT vs. HTTP: Which One Is the Best for IoT?—MQTT Buddy—Medium. Available online: https://medium.com/mqtt-buddy/mqtt-vs-http-which-one-is-the-best-for-iot-c868169b3105 (accessed on 12 May 2020).
- Elia, V.; Gnoni, M.G.; Lanzilotto, A. Evaluating the application of augmented reality devices in manufacturing from a process point of view: An AHP based model. Expert Syst. Appl. 2016, 63, 187–197. [Google Scholar] [CrossRef]
- Bottani, E.; Vignali, G. Augmented reality technology in the manufacturing industry: A review of the last decade. IISE Trans. 2019, 51, 284–310. [Google Scholar] [CrossRef] [Green Version]
- Hsiao, T.-C.; Tai, K.-Y.; Huang, Y.-M.; Chung, Y.-F.; Wu, Y.-C.; Kurniati, T.; Chen, T.-S. An Implementation of Efficient Hierarchical Access Control Method for VR/AR Platform. In Proceedings of the 2018 16th International Conference on Emerging eLearning Technologies and Applications (ICETA), Stary Smokovec, Slovakia, 15–16 November 2018; pp. 205–208. [Google Scholar] [CrossRef]
- Blanco-Pons, S.; Carrión-Ruiz, B.; Lerma, J.L. Augmented reality application assessment for disseminating rock art. Multimed. Tools Appl. 2018, 78, 10265–10286. [Google Scholar] [CrossRef]
- Carvalho, A.; Charrua-Santos, F.; Lima, T.M. Augmented reality in industrial applications: Technologies and challenges. In Proceedings of the International Conference on Industrial Engineering and Operations Management, Pilsen, Czech Republic, 23–25 July 2019; pp. 875–883. [Google Scholar]
- Segura, Á.; Diez, H.V.; Barandiaran, I.; Arbelaiz, A.; Álvarez, H.; Simões, B.; Posada, J.; García-Alonso, A.; Ugarte, R. Visual computing technologies to support the Operator 4.0. Comput. Ind. Eng. 2020, 139, 105550. [Google Scholar] [CrossRef]
- Urbas, U.; Vrabič, R.; Vukašinović, N. Displaying Product Manufacturing Information in Augmented Reality for Inspection. Procedia CIRP 2019, 81, 832–837. [Google Scholar] [CrossRef]
- Masood, T.; Egger, J. Adopting augmented reality in the age of industrial digitalisation. Comput. Ind. 2020, 115, 103112. [Google Scholar] [CrossRef]
- Egger, J.; Masood, T. Augmented reality in support of intelligent manufacturing—A systematic literature review. Comput. Ind. Eng. 2020, 140, 106195. [Google Scholar] [CrossRef]
- Halim, A.A. Applications of augmented reality for inspection and maintenance process in automotive industry. J. Fundam. Appl. Sci. 2018, 10, 412–421. [Google Scholar]
- Bosch. Automechanika 2016: Bosch Presents Smart Solutions for Tomorrow’s Workshops—Bosch Media Service. Available online: https://www.bosch-presse.de/pressportal/de/en/automechanika-2016-bosch-presents-smart-solutions-for-tomorrows-workshops-54976.html (accessed on 20 July 2020).
- Lee, N. Volkswagen Develops Augmented Reality Service Manual for the XL1|Engadget. Available online: https://www.engadget.com/2013-10-01-volkswagen-augmented-reality-ipad-manual-xl1.html?guccounter=1&guce_referrer=aHR0cHM6Ly93d3cuZ29vZ2xlLmNvbS8&guce_referrer_sig=AQAAAIKcAI5FGxGR6OtBmakSg7ns3OFpQbAt1DPEWauYPBFwc3QptysG-Y31ZGh9ieUTv3KBMNSKWTy8bDPnKirqmw-7 (accessed on 28 July 2020).
- Aziz, F.A.; Alostad, E.; Sulaiman, S.; Ahmad, K.A. Augmented reality marker based to aid inspection and maintenance process in automotive industry. Int. J. Eng. Adv. Technol. 2019, 8, 417–421. [Google Scholar]
- Zhou, J.; Lee, I.; Thomas, B.; Menassa, R.; Farrant, A.; Sansome, A. Applying spatial augmented reality to facilitate in-situ support for automotive spot welding inspection. In Proceedings of the 10th International Conference on Virtual Reality Continuum and Its Applications in Industry, Hong Kong, China, 11 December 2011; pp. 195–200. [Google Scholar]
- Bosch Auto. Available online: https://fr.bosch-automotive.com/fr_FR/ (accessed on 27 July 2020).
- Yuan, M. What Is MQTT? Why Use MQTT?—IBM Developer. Available online: https://developer.ibm.com/articles/iot-mqtt-why-good-for-iot/ (accessed on 6 July 2020).
- Team, H. Client, Broker/Server and Connection Establishment—MQTT Essentials: Part 3. Available online: https://www.hivemq.com/blog/mqtt-essentials-part-3-client-broker-connection-establishment/ (accessed on 6 July 2020).
- Critical Manufacturing. Critical Manufacturing MES|Integrated Manufacturing Execution System. Available online: https://www.criticalmanufacturing.com/en/critical-manufacturing-mes/overview (accessed on 7 July 2020).
- Critical Manufacturing. What Is MES? Available online: https://www.criticalmanufacturing.com/en/critical-manufacturing-mes/what-is-manufacturing-execution-system (accessed on 7 July 2020).
- Dudkin, I. Vuforia vs. ARKit vs. Arcore: Choosing an Augmented Reality SDK—Skywell Software. Available online: https://skywell.software/blog/vuforia-vs-arkit-vs-arcore-choosing-an-augmented-reality-sdk/ (accessed on 10 June 2019).
- Sanket, P. Augmented Reality SDKs in 2018: Which Are the Best for Development—ARreverie Technology. Available online: http://www.arreverie.com/blogs/best-augmented-reality-sdk-in-2018/ (accessed on 9 July 2020).
- Demeure, A.; Sottet, J.-S.; Calvary, G.; Coutaz, J.; Ganneau, V.; Vanderdonckt, J. The 4C Reference Model for Distributed User Interfaces. In Proceedings of the 4th International Conference on Autonomic and Autonomous Systems (ICAS 2008), Gosier, France, 16–21 March 2008; pp. 61–69. [Google Scholar] [CrossRef] [Green Version]
- Vuzix. Vuzix|View the Future. Available online: https://www.vuzix.com/support/legacy-product/m300-smart-glasses (accessed on 10 August 2020).
- Pérez, L.; Diez, E.; Usamentiaga, R.; García, D.F. Industrial robot control and operator training using virtual reality interfaces. Comput. Ind. 2019, 109, 114–120. [Google Scholar] [CrossRef]
- Unity. Unity Official Page. Available online: https://unity.com/ (accessed on 7 March 2022).
Questions | Using an HHD | Using an HMD (Vuzix M300) | ||
---|---|---|---|---|
Researchers | Operators | Researchers | Operators | |
(1) | 92 | 80 | 56 | 32 |
(2) | 100 | 84 | 68 | 60 |
(3) | 84 | 80 | 60 | 48 |
(4) | 88 | 80 | 84 | 80 |
(5) | 100 | 84 | 44 | 28 |
(6) | 80 | 80 | 48 | 28 |
(7) | 80 | 80 | 40 | 40 |
(8) | 96 | 92 | 40 | 32 |
Mean | 90 | 82.5 | 55 | 43.5 |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2022 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Chouchene, A.; Ventura Carvalho, A.; Charrua-Santos, F.; Barhoumi, W. Augmented Reality-Based Framework Supporting Visual Inspection for Automotive Industry. Appl. Syst. Innov. 2022, 5, 48. https://doi.org/10.3390/asi5030048
Chouchene A, Ventura Carvalho A, Charrua-Santos F, Barhoumi W. Augmented Reality-Based Framework Supporting Visual Inspection for Automotive Industry. Applied System Innovation. 2022; 5(3):48. https://doi.org/10.3390/asi5030048
Chicago/Turabian StyleChouchene, Amal, Adriana Ventura Carvalho, Fernando Charrua-Santos, and Walid Barhoumi. 2022. "Augmented Reality-Based Framework Supporting Visual Inspection for Automotive Industry" Applied System Innovation 5, no. 3: 48. https://doi.org/10.3390/asi5030048
APA StyleChouchene, A., Ventura Carvalho, A., Charrua-Santos, F., & Barhoumi, W. (2022). Augmented Reality-Based Framework Supporting Visual Inspection for Automotive Industry. Applied System Innovation, 5(3), 48. https://doi.org/10.3390/asi5030048