Title :
Equalizer: A Scalable Parallel Rendering Framework
Author :
Eilemann, Stefan ; Makhinya, Maxim ; Pajarola, Renato
Author_Institution :
Eyescale Software, Visualization & MultiMedia Lab. (VMML), Univ. of Zurich, Neuchatel
Abstract :
Continuing improvements in CPU and GPU performances as well as increasing multi-core processor and cluster-based parallelism demand for flexible and scalable parallel rendering solutions that can exploit multipipe hardware accelerated graphics. In fact, to achieve interactive visualization, scalable rendering systems are essential to cope with the rapid growth of data sets. However, parallel rendering systems are non-trivial to develop and often only application specific implementations have been proposed. The task of developing a scalable parallel rendering framework is even more difficult if it should be generic to support various types of data and visualization applications, and at the same time work efficiently on a cluster with distributed graphics cards. In this paper we introduce a novel system called Equalizer, a toolkit for scalable parallel rendering based on OpenGL which provides an application programming interface (API) to develop scalable graphics applications for a wide range of systems ranging from large distributed visualization clusters and multi-processor multipipe graphics systems to single-processor single-pipe desktop machines. We describe the system architecture, the basic API, discuss its advantages over previous approaches, present example configurations and usage scenarios as well as scalability results.
Keywords :
application program interfaces; data visualisation; rendering (computer graphics); Equalizer; OpenGL; application programming interface; cluster-based parallelism demand; distributed graphics cards; interactive visualization; multi-core processor; multipipe hardware accelerated graphics; scalable parallel rendering framework; Computer graphics; Data visualization; Displays; Equalizers; Hardware; Multicore processing; Parallel processing; Rendering (computer graphics); Tree graphs; Workstations; Cluster Graphics; Display Wall; Parallel Rendering; Scalable Visualization; Algorithms; Computer Graphics; Image Enhancement; Image Interpretation, Computer-Assisted; Imaging, Three-Dimensional; Pattern Recognition, Automated; Reproducibility of Results; Sensitivity and Specificity; Signal Processing, Computer-Assisted; Software; User-Computer Interface;
Journal_Title :
Visualization and Computer Graphics, IEEE Transactions on
DOI :
10.1109/TVCG.2008.104