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Immersive Molecular Visualization with Omnidirectional StereoscopicRay Tracing and Remote Rendering

机译:全向立体视觉沉浸式分子可视化光线追踪和远程渲染

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摘要

Immersive molecular visualization provides the viewer with intuitive perception of complex structures and spatial relationships that are of critical interest to structural biologists. The recent availability of commodity head mounted displays (HMDs) provides a compelling opportunity for widespread adoption of immersive visualization by molecular scientists, but HMDs pose additional challenges due to the need for low-latency, high-frame-rate rendering. State-of-the-art molecular dynamics simulations produce terabytes of data that can be impractical to transfer from remote supercomputers, necessitating routine use of remote visualization. Hardware-accelerated video encoding has profoundly increased frame rates and image resolution for remote visualization, however round-trip network latencies would cause simulator sickness when using HMDs. We present a novel two-phase rendering approach that overcomes network latencies with the combination of omnidirectional stereoscopic progressive ray tracing and high performance rasterization, and its implementation within VMD, a widely used molecular visualization and analysis tool. The new rendering approach enables immersive molecular visualization with rendering techniques such as shadows, ambient occlusion lighting,depth-of-field, and high quality transparency, that are particularly helpful forthe study of large biomolecular complexes. We describe ray tracing algorithmsthat are used to optimize interactivity and quality, and we report keyperformance metrics of the system. The new techniques can also benefit manyother application domains.
机译:沉浸式分子可视化为观看者提供了对结构生物学家至关重要的复杂结构和空间关系的直观感知。商用头戴式显示器(HMD)的最新可用性为分子科学家广泛采用沉浸式可视化提供了令人信服的机会,但由于需要低延迟,高帧频渲染,HMD构成了其他挑战。最新的分子动力学模拟产生了数TB的数据,这些数据可能无法从远程超级计算机传输,因此需要常规使用远程可视化。硬件加速的视频编码已大大提高了帧速率和图像分辨率,可实现远程可视化,但是,使用HMD时,往返网络延迟会导致模拟器出现问题。我们提出了一种新颖的两阶段渲染方法,该方法通过全向立体渐进射线跟踪和高性能光栅化相结合克服了网络等待时间,并在VMD(一种广泛使用的分子可视化和分析工具)中实现了该方法。新的渲染方法通过诸如阴影,环境光遮挡,景深和高质量的透明度,对于大型生物分子复合物的研究。我们描述射线追踪算法用于优化交互性和质量的报告,我们会报告关键系统的性能指标。新技术也可以使许多人受益其他应用程序域。

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