The problem of isosurface extraction in uncertain data is an important research problem and may be approached in two ways. One can extract statistics (e.g., mean) from uncertain data points and visualize the extracted field. Alternatively, data uncertainty, characterized by probability distributions, can be propagated through the isosurface extraction process. We analyze the impact of data uncertainty on topology and geometry extraction algorithms. A novel, edge-crossing probability based approach is proposed to predict underlying isosurface topology for uncertain data. We derive a probabilistic version of the midpoint decider that resolves ambiguities that arise in identifying topological configurations. Moreover, the probability density function characterizing positional uncertainty in isosurfaces is derived analytically for a broad class of nonparametric distributions. This analytic characterization can be used for efficient closed-form computation of the expected value and variation in geometry. Our experiments show the computational advantages of our analytic approach over Monte-Carlo sampling for characterizing positional uncertainty. We also show the advantage of modeling underlying error densities in a nonparametric statistical framework as opposed to a parametric statistical framework through our experiments on ensemble datasets and uncertain scalar fields.
机构:
Institute of Image Processing and Pattern Recognition, Shanghai Jiaotong UniversityInstitute of Image Processing and Pattern Recognition, Shanghai Jiaotong University
Qin H.-X.
Shi F.
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Institute of Image Processing and Pattern Recognition, Shanghai Jiaotong UniversityInstitute of Image Processing and Pattern Recognition, Shanghai Jiaotong University
Shi F.
Guo L.
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Institute of Image Processing and Pattern Recognition, Shanghai Jiaotong UniversityInstitute of Image Processing and Pattern Recognition, Shanghai Jiaotong University
Guo L.
Yang J.
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Institute of Image Processing and Pattern Recognition, Shanghai Jiaotong UniversityInstitute of Image Processing and Pattern Recognition, Shanghai Jiaotong University
机构:
Institute of Image Processing & Pattern Recognition, Shanghai Jiaotong UniversityInstitute of Image Processing & Pattern Recognition, Shanghai Jiaotong University
秦红星
石峰
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Institute of Image Processing & Pattern Recognition, Shanghai Jiaotong UniversityInstitute of Image Processing & Pattern Recognition, Shanghai Jiaotong University
石峰
郭律
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Institute of Image Processing & Pattern Recognition, Shanghai Jiaotong UniversityInstitute of Image Processing & Pattern Recognition, Shanghai Jiaotong University
机构:
Univ Utah, Sch Comp, Salt Lake City, UT 84112 USA
Univ Utah, Sci Comp & Imaging Inst, Salt Lake City, UT 84112 USAUniv Utah, Sch Comp, Salt Lake City, UT 84112 USA
Etiene, Tiago
Scheidegger, Carlos
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Univ Utah, Sch Comp, Salt Lake City, UT 84112 USA
Univ Utah, Sci Comp & Imaging Inst, Salt Lake City, UT 84112 USAUniv Utah, Sch Comp, Salt Lake City, UT 84112 USA
Scheidegger, Carlos
Nonato, L. Gustavo
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Univ Sao Paulo, BR-05508 Sao Paulo, BrazilUniv Utah, Sch Comp, Salt Lake City, UT 84112 USA
Nonato, L. Gustavo
Kirby, Robert M.
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Univ Utah, Sch Comp, Salt Lake City, UT 84112 USA
Univ Utah, Sci Comp & Imaging Inst, Salt Lake City, UT 84112 USAUniv Utah, Sch Comp, Salt Lake City, UT 84112 USA
Kirby, Robert M.
Silva, Claudio T.
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Univ Utah, Sch Comp, Salt Lake City, UT 84112 USA
Univ Utah, Sci Comp & Imaging Inst, Salt Lake City, UT 84112 USAUniv Utah, Sch Comp, Salt Lake City, UT 84112 USA