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Algorithms for integrating marker-based and spatial augmented reality in the creation and optimization of three-dimensional scenes

Field of Science:Information SystemsSignal ProcessingSoftwareEngineeringControl and Systems Engineering
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ARTICLE ANNOTATION

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The article examines the algorithms for integrating marker and spatial methods of augmented reality in the process of creating and optimizing three-dimensional scenes. Methods for achieving high accuracy and stable tracking in creating a three-dimensional scene complemented by a combination of Vuforia and ARCore are described. The methodology provides for the development of an augmented reality system in the Unity environment, the use of image markers for the initial location, and the use of the ARCore platform's environment tracking function for augmented spatial mapping. The results show that the proposed approach increases the stability and accuracy of the filled scene compared to the application of each technology separately. It also discusses applications in areas such as education, museums, and architecture, emphasizing how an integrated approach enhances user experience and stage realism. In addition, measures for further improvement and recommendations for future research areas are presented.

AUTHORS

M.Artikova

"MUHAMMAD AL-XORAZMIY NOMIDAGI TOSHKENT AXBOROT TEXNOLOGIYALARI UNIVERSITETI" DAVLAT MUASSASASI

E.Sayfiyev

"MUHAMMAD AL-XORAZMIY NOMIDAGI TOSHKENT AXBOROT TEXNOLOGIYALARI UNIVERSITETI" DAVLAT MUASSASASI

O.Rayimqulov

"MUHAMMAD AL-XORAZMIY NOMIDAGI TOSHKENT AXBOROT TEXNOLOGIYALARI UNIVERSITETI" DAVLAT MUASSASASI

Tags

# integration# algorithms# Augmented Reality# marker-based AR# spatial AR# Vuforia# ARCore# SLAM# 3D scene

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References

Azuma R. T. A Survey of Augmented Reality // Presence: Teleoperators and Virtual Environments. – 1997. – Vol. 6, No. 4. – P. 355–385.

Billinghurst M., Clark A., Lee G. A Survey of Augmented Reality // Foundations and Trends in Human–Computer Interaction. – 2015. – Vol. 8, No. 2–3. – P. 73–272.

Cadena C., Carlone L., Carrillo H. et al. Past, Present, and Future of Simultaneous Localization and Mapping: Toward the Robust-Perception Age // IEEE Transactions on Robotics. – 2016. – Vol. 32, No. 6. – P. 1309–1332.

Kato H., Billinghurst M. Marker Tracking and HMD Calibration for a Video-Based Augmented Reality Conferencing System // Proceedings of the 2nd IEEE and ACM International Workshop on Augmented Reality. – 1999. – P. 85–94.

Klein G., Murray D. Parallel Tracking and Mapping for Small AR Workspaces // Proceedings of IEEE ISMAR. – 2007. – P. 225–234.

Langlotz T., Degendorfer C., Mulloni A., Schmalstieg D. Robust Detection and Tracking of Fiducial Markers in Natural Feature Tracking // IEEE VR Conference. – 2012. – P. 1–8.

Bruno F., Lagudi A., Barbieri L. et al. Underwater Augmented Reality for Cultural Heritage // Journal on Computing and Cultural Heritage. – 2019. – Vol. 12, No. 4. – P. 1–22.

Zhou F., Duh H. B.-L., Billinghurst M. Trends in Augmented Reality Tracking, Interaction and Display // IEEE ISMAR. – 2008. – P. 193–202.

Google. ARCore Developer Documentation. – https://developers.google.com/ar 2025

Wang X., Kim M. K., Love P. E. D., Kang S. W. Augmented Reality in Built Environment: Classification and Applications // Automation in Construction. – 2013. – Vol. 32. – P. 1–13.

Pentenrieder K., Meier P., Klinker G. Analysis of Tracking Accuracy for Single-Camera Square-Marker-Based Tracking // IEEE ISMAR. – 2007. – P. 1–8.

Tateno K., Tombari F., Navab N. Real-Time and Scalable Incremental Segmentation on Dense SLAM // IEEE/RSJ IROS. – 2015. – P. 4465–4472.

Ibáñez M. B., Di Serio Á., Delgado Kloos C. Augmented Reality for STEM Learning // Computers & Education. – 2014. – Vol. 73. – P. 119–133.

Google. Google Expeditions AR & VR Platform. – https://edu.google.com/expeditions 2025.

Apple Inc. ARKit Framework Documentation. – https://developer.apple.com/arkit 2025.

Bekele M. K., Pierdicca R., Frontoni E. et al. A Survey of Augmented, Virtual, and Mixed Reality for Cultural Heritage // Journal on Computing and Cultural Heritage. – 2018. – Vol. 11, No. 2. – P. 1–36.

Smithsonian Institution. Skin & Bones AR Application. – https://naturalhistory.si.edu 2025.

Dünser A., Grasset R., Billinghurst M. A Survey of Evaluation Techniques Used in Augmented Reality Studies // ACM SIGGRAPH ASIA. – 2008. – P. 1–27.

Kim M. K., Wang Q., Love P. E. D. Immersive Augmented Reality for Construction Safety Training // Journal of Computing in Civil Engineering. – 2016. – Vol. 30, No. 4.

Yoon J. S., Lee G., Park J. Marker-Based AR System for BIM Visualization // Automation in Construction. – 2018. – Vol. 94. – P. 1–14.

Yoon J. S., Park J., Lee G. Automated Generation of Fiducial Markers from BIM Data // Advanced Engineering Informatics. – 2019. – Vol. 41.

Park J., Lee G. Practical Issues of Marker-Based AR in Construction Sites // Journal of Construction Engineering and Management. – 2020. – Vol. 146, No. 3.

PTC Inc. Vuforia Engine Developer Library. – https://developer.vuforia.com 2025

Unity Technologies. Unity AR Foundation Manual. – https://docs.unity3d.com 2025.