High-fidelity rendering of physical colour references for projected-based spatial augmented reality design applications

被引:0
作者
Morosi F. [1 ]
Caruso G. [1 ]
机构
[1] Politecnico di Milano, Mechanical Engineering department
基金
欧盟地平线“2020”;
关键词
Colour calibration; Colour fidelity; Product design; Spatial augmented reality;
D O I
10.14733/cadaps.2021.343-356
中图分类号
学科分类号
摘要
Spatial Augmented Reality allows users to visualise information onto physical objects by projecting digital contents on them. Product design applications could profitably exploit this feature to create prototypes partially real and partially virtual (mixed prototypes) to be used for the evaluation of products during the development processes. A mixed prototype needs a high visual quality, because design decisions are taken on the base of its aspect, and projected colours should match the colour standards (e.g. Pantone, RAL, etc.) to be able to rely on the visualised colours. The current paper analyzes the effect of a colour calibration method, based on the iteration of comparison and compensation phases, onto the projected images using objective measurements and subjective users’ evaluations. The procedure, whose effectiveness is verified thanks to the presented results, allows to replicate any colour available inside the projector gamut by simply using a physical sample. © 2021 CAD Solutions, LLC.
引用
收藏
页码:343 / 356
页数:13
相关论文
共 26 条
[1]  
Akiyama R., Yamamoto G., Amano T., Taketomi T., Plopski A., Sandor C., Kato H., Light Projection-Induced Illusion for Controlling Object Color, Proceedings of the IEEE Conference on Virtual Reality and 3D User Interfaces (VR), pp. 499-500, (2018)
[2]  
Aliaga D.G., Law A.J., Yeung Y.H., A virtual restoration stage for real-world objects, ACM Transactions on Graphics, 27, 5, (2008)
[3]  
Baldevbhai P.J., Anand R.S., Color Image Segmentation for Medical Images using L*a*b* Color Space, IOSR Journal of Electronics and Communication Engineering, 1, 2, pp. 24-45, (2012)
[4]  
Bimber O., Raskar R., Spatial Augmented Reality: Merging Real and Virtual Worlds, (2005)
[5]  
Diez D.M., Barr C.D., Cetinkaya-Rundel M., OpenIntro Statistics, (2017)
[6]  
Emmel P., Hersch R., Colour calibration for colour reproduction, 2000 IEEE International Symposium on Circuits and Systems. Emerging Technologies for the 21st Century. Proceedings (IEEE Cat No.00CH36353), 5, pp. 105-108, (2000)
[7]  
Ishii H., Ratti C., Piper B., Wang Y., Biderman A., Ben-Joseph E., Bringing Clay and Sand into Digital Design-Continuous Tangible user Interfaces, BT Technology Journal, 22, 4, pp. 287-299, (2004)
[8]  
Jeffries J., The use of Light Reflectance Values (LVRs) in achieving visual contrast, (2013)
[9]  
Jones B., Shapira L., Sodhi R., Murdock M., Mehra R., Benko H., Wilson A., Ofek E., MacIntyre B., Raghuvanshi N., RoomAlive: Magical Experiences Enabled by Scalable, Adaptive Projector-Camera Units, Proceedings of the 27th annual ACM symposium on User interface software and technology UIST ’14, pp. 637-644, (2014)
[10]  
Laviole J., Interaction en réalité augmentée spatiale pour le dessin physique, (2013)