面向VR应用的花卉植物物理渲染技术研究与实现
摘要:花卉植物高真实感的仿真交互是目前虚拟植物可视化研究的一个重要方向。随着虚拟现实技术的普及,越来越多的应用采用了VR头戴设备的呈现方式。VR系统需要高度真实的沉浸感画面,通用的植物建模和图形引擎渲染功能已不能满足该需求。该文通过分析光照原理并融合基于物理的渲染技术,提出基于双向散射分布函数BSDF的花卉植物高度真实感的物理渲染算法,利用ShaderLab,对几种盆栽花卉植物在光照下进行仿真,并对融合算法做优化处理。针对VR头盔设备HTC Vive的成像效果,对图像进行扭曲变形优化,使画面更符合人眼双目立体视觉成像效果,增强系统沉浸感。最后基于该方法设计并实现了一个头盔式VR花卉植物仿真模拟系统,获得了逼真的场景漫游体验效果。
Abstract:The high realism simulation interaction of flower plants is an important direction of virtual plant visualization. More and more applications are presented by the Virtual Reality (VR) headset device with the popularity of virtual reality technology. The VR system requires a highly realistic immersive picture for which generic plant modeling and graphics engine rendering capabilities are no longer sufficient. In this paper, a physical rendering algorithm is proposed based on Bidirectional Scattering Distribution Function (BSDF) to realistic flower plants by analyzing the principle of illumination and combining the Physics-Based Shading (PBS) technology. Potted flora in light mode is simulated by ShaderLab and the fusion algorithm is optimized. The image is distorted by lens matching rendering technology to make the virtual scene closer to the real human eye vision and reduce the user vertigo when user wearing the VR headset when using the VR helmet equipment HTC Vive. Finally a helmet VR floral plant simulation system is designed and a realistic immersive scene is realized.
巫影, 何琳, 黄映云, 等. 虚拟现实技术综述[J]. 计算机与数字工程, 2002, 30(3): 41-44.doi: 10.3969/j.issn.1672-9722. 2002.03.007.WU Ying, HE Lin, HUANG Yingyun, et al. Summarizing of virtual reality technology[J]. Computer and Digital Engineering, 2002, 30(3): 41-44. doi: 10.3969/j.issn.1672- 9722.2002.03.007MA Wei and ZHA Hongshan. Realistic rendering of small- scale plants[J]. Journal of Computer-Aided Design & Computer Graphics, 2009, 21(4): 505-510.HUAI Yongjian and ZENG Xi. Visual simulation of morphology and growth of virtual flower plants[J]. Computer Engineering and Applications, 2012, 48(8): 185-188. doi: 10.3778/j.issn.1002-8331.2012.08.053.MA Ruishi and BAI Shunxian. Image based plant leaves wither deformation measurement simulation[J]. Computer Simulation, 2012, 29(10): 302-305. doi: 10.3969/j.issn.1006- 9348.2012.10.072.ZHANG Ming. Research and realization of dynamic simulation technology for 3D diversion process[D]. [Master dissertation], Xiamen University, 2009.HUAI Yongjian and LI Fan. Simulation on motion behavior of virtual flower in variable wind fields[J]. Transactions of the Chinese Society of Agricultural Engineering, 2012, 28(19): 130-136. doi: 10.3969/j.issn.1002-6819.2012.19.017.MENG Xiangyan, REN Yumiao, and PAN Haixian. Algorithm for illumination and shadow model in realistic volume rendering[J]. Laser Journal, 2016, 37(8): 141-144. doi: 10.14016/j.cnki.jgzz.2016.08.141.ZHAO Hui. Simulation of vegetation realism based on radiation method[D]. [Master dissertation], Jilin University, 2014.TANG Yong, ZHANG Lihui, L? Mengya, et al. Research progress in real time modeling and rendering for realistic ocean scene[J]. Journal of Yanshan University, 2016, 40(6): 471-480. doi: 10.3969/j.issn.1007-791X.2016.06.001.CHEN Shengyu. Drawing and dynamic simulation of complex vegetation scene based on GPU[D]. [Master dissertation], University of Electronic Science and Technology of China, 2016.[11] GAO Yuan, LIU Yue, CHENG Dewen, et al. A review on development of head mounted display[J]. Journal of Computer-Aided Design & Computer Graphics, 2016, 28(6): 896-904. doi: 10.3969/j.issn.1003-9775.2016.06.004.XIE Yonghua, YUAN Fuxing, and WANG Chang. Research of 3D cloud illumination model based on importance sampling[J]. Journal of System Simulation, 2016, 28(1): 57-62.[13] KAJIYA J T. The rendering equation[J]. ACM Siggraph Computer Graphics, 1986, 20(4): 143-150. doi: 10.1145/15922. 15902.[14] STAM J. Diffraction shaders[J]. Proc Acm Siggraph, 1999, 11(4): 101-110. doi: 10.1145/311535.311546.[15] SADEGHI I, LAVEN P, LAVEN P, et al. Physically-based simulation of rainbows[J]. Acm Transactions on Graphics, 2012, 31(1): 3. doi: 10.1145/2077341.2077344.WU Fukun, WU Jiaze, and ZHENG Changwen. A microfacet-based physically rendering of diffraction effects[J]. Journal of Computer-Aided Design & Computer Graphics, 2014, 26(1):1-9.[17] TORRANCE K E and SPARROW E M. Theory for off-specular reflection from roughened surfaces[J]. Journal of the Optical Society of America, 1967, 57(9): 1105-1114. doi: 10.1364/JOSA.57.001105[18] OBERST H, KOUZNETSOV D, SHIMIZU K, et al. Fresnel diffraction mirror for an atomic wave[J]. Physical Review Letters, 2005, 94(1): 013203. doi: 10.1103/PhysRevLett.94. 01320314JANUARY2005.[19] SCHLICK C. An inexpensive BRDF model for physically- based rendering[J]. Computer Graphics Forum, 1994, 13(3): 233-246. doi: 10.1007/s00371-014-0958-x.相关知识
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