Application-controlled demand paging for out-of-core visualization

被引:138
|
作者
Cox, M [1 ]
Ellsworth, D [1 ]
机构
[1] Intel Corp, NASA, Ames Res Ctr, MRJ,Microcomp Res Labs, Santa Clara, CA 95051 USA
关键词
computational fluid dynamics; visualization; out-of-core visualization;
D O I
10.1109/VISUAL.1997.663888
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
In the area of scientific visualization, input data sets are often very large. In visualization of Computational Fluid Dynamics (CFD) in particular, input data sets today can surpass 100 Gbytes, and are expected to scale with the ability of supercomputers to generate them. Some visualization tools already partition large data sets into segments, and load appropriate segments as they are needed. However, this does not remove the problem for two reasons: 1) there are data sets for which even the individual segments are too large for the largest graphics workstations, 2) many practitioners do not have access to workstations with the memory capacity required to load even a segment, especially since the state-of-the-art visualization tools tend to be developed by researchers with much more powerful machines. When the size of the data that must be accessed is larger than the size of memory, some form of virtual memory is simply required. This may be by segmentation, paging, or by paged segments. In this paper we demonstrate that complete reliance on operating system virtual memory for out-of-core visualization leads to egregious performance. We then describe a paged segment system that we have implemented, and explore the principles of memory management that can be employed by the application for out-of-core visualization. We show that application control over some of these can significantly improve performance. We show that sparse traversal can be exploited by loading only those data actually required. We show also that application control over data loading can be exploited by 1) loading data from alternative storage format tin particular 3-dimensional data stored in subcubes), 2) controlling the page size. Both of these techniques effectively reduce the total memory required by visualization at run-time. We also describe experiments we have done on remote out-of-core visualization (when pages are read by demand from remote disk) whose results are promising.
引用
收藏
页码:235 / +
页数:11
相关论文
共 50 条
  • [41] Out-of-core divisible load processing
    Drozdowski, M
    Wolniewicz, P
    IEEE TRANSACTIONS ON PARALLEL AND DISTRIBUTED SYSTEMS, 2003, 14 (10) : 1048 - 1056
  • [42] Efficient GPU out-of-core visualization of large-scale CAD models with voxel representations
    Xue, Junjie
    Zhao, Gang
    Xiao, Wenlei
    ADVANCES IN ENGINEERING SOFTWARE, 2016, 99 : 73 - 80
  • [43] An efficient out-of-core volume ray casting method for the visualization of large medical data sets
    Xue, Jian
    Tian, Jie
    Chen, Jian
    Dai, Yakang
    MEDICAL IMAGING 2007: VISUALIZATION AND IMAGE-GUIDED PROCEDURES, PTS 1 AND 2, 2007, 6509
  • [44] Parallel out-of-core divide-and-conquer techniques with application to classification trees
    Univ of Florida, Gainesville, United States
    Proc Int Parall Process Symp IPPS, (555-562):
  • [45] Parallel out-of-core divide-and-conquer techniques with application to classification trees
    Sreenivas, MK
    AlSabti, K
    Ranka, S
    IPPS/SPDP 1999: 13TH INTERNATIONAL PARALLEL PROCESSING SYMPOSIUM & 10TH SYMPOSIUM ON PARALLEL AND DISTRIBUTED PROCESSING, PROCEEDINGS, 1999, : 555 - 562
  • [46] Manifold-guaranteed out-of-core simplification of large meshes with controlled topological type
    Liu, YJ
    Yuen, MMF
    Tang, K
    VISUAL COMPUTER, 2003, 19 (7-8): : 565 - 580
  • [47] Irregular and out-of-core parallel computing on clusters
    Brezany, P
    Bubak, M
    Malawski, M
    Zajac, K
    PARALLEL PROCESSING APPLIED MATHEMATICS, 2002, 2328 : 299 - 306
  • [48] Out-of-core compression for gigantic polygon meshes
    Isenburg, M
    Gumhold, S
    ACM TRANSACTIONS ON GRAPHICS, 2003, 22 (03): : 935 - 942
  • [49] Out-of-Core Parallel Frontier Search with MapReduce
    Reinefeld, Alexander
    Schuett, Thorsten
    HIGH PERFORMANCE COMPUTING SYSTEMS AND APPLICATIONS, 2010, 5976 : 323 - 336
  • [50] Manifold-guaranteed out-of-core simplification of large meshes with controlled topological type
    Yong-Jin Liu
    Matthew Ming-Fai Yuen
    Kai Tang
    The Visual Computer, 2003, 19 : 565 - 580