Variance Analysis of Multi-sample and One-sample Multiple Importance Sampling
We reexamine in this paper the variance for the Multiple Importance Sampling (MIS) estimator for multi‐sample and one‐sample model. As a result of our analysis we can obtain the optimal estimator for the multi‐sample model for the case where the weights do not depend on the count of samples. We exte...
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| Published in | Computer graphics forum Vol. 35; no. 7; pp. 451 - 460 |
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| Main Authors | , , |
| Format | Journal Article |
| Language | English |
| Published |
Oxford
Blackwell Publishing Ltd
01.10.2016
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| Subjects | |
| Online Access | Get full text |
| ISSN | 0167-7055 1467-8659 |
| DOI | 10.1111/cgf.13042 |
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| Abstract | We reexamine in this paper the variance for the Multiple Importance Sampling (MIS) estimator for multi‐sample and one‐sample model. As a result of our analysis we can obtain the optimal estimator for the multi‐sample model for the case where the weights do not depend on the count of samples. We extend the analysis to include the cost of sampling. With these results in hand we find a better estimator than balance heuristic with equal count of samples. Further, we show that the variance for the one‐sample model is larger or equal than for the multi‐sample model, and that there are only two cases where the variance is the same. Finally, we study on four examples the difference of variances for equal count as used by Veach, our new estimator, and a recently introduced heuristic. |
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| AbstractList | We reexamine in this paper the variance for the Multiple Importance Sampling (MIS) estimator for multi-sample and one-sample model. As a result of our analysis we can obtain the optimal estimator for the multi-sample model for the case where the weights do not depend on the count of samples. We extend the analysis to include the cost of sampling. With these results in hand we find a better estimator than balance heuristic with equal count of samples. Further, we show that the variance for the one-sample model is larger or equal than for the multi-sample model, and that there are only two cases where the variance is the same. Finally, we study on four examples the difference of variances for equal count as used by Veach, our new estimator, and a recently introduced heuristic. |
| Author | Havran, V. Sbert, M. Szirmay-Kalos, L. |
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| Cites_doi | 10.1109/TVCG.2010.230 10.1109/LSP.2015.2432078 10.1145/2670473.2670496 10.1111/cgf.12220 10.1145/218380.218498 10.1111/cgf.12416 |
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| Copyright | 2016 The Author(s) Computer Graphics Forum © 2016 The Eurographics Association and John Wiley & Sons Ltd. Published by John Wiley & Sons Ltd. 2016 The Eurographics Association and John Wiley & Sons Ltd. |
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| References | Elvira V., Martino L., Luengo D., Bugallo M.F.: Efficient multiple importance sampling estimators. IEEE Signal Process. Lett. 22, 10 (2015), 1757-1761. URL: http://dx.doi.org/10.1109/LSP.2015.2432078, doi:10.1109/LSP.2015.2432078. 1 Douc R., Guillin A., Marin J.M., Robert C.P.: Minimum variance importance sampling via population monte carlo. ESAIM: Probability and Statistics 11 (2007), 424-447. 10 Veach E.: Robust Monte Carlo Methods for Light Transport Simulation. PhD thesis, Stanford University, 1997. 1, 2, 4, 5, 6 Veach E., Guibas L. J.: Optimally Combining Sampling Techniques for Monte Carlo Rendering. In Proceedings of the 22nd annual conference on Computer graphics and interactive techniques, New York, NY, USA, 1995), SIGGRAPH '95, ACM, pp. 419-428. URL: http://doi.acm.org/10.1145/218380.218498, doi: 10.1145/218380.218498. 1, 2, 6 Pajot A., Barthe L., Paulin M., Poulin P.: Representativity for robust and adaptive multiple importance sampling. IEEE Trans. Vis. Comput. Graph. 17, 8 (2011), 1108-1121. URL: http://dx.doi.org/10.1109/TVCG.2010.230, doi:10.1109/TVCG.2010.230. 1 Lu H., Pacanowski R., Granier X.: Second-Order Approximation for Variance Reduction in Multiple Importance Sampling. Computer Graphics Forum 32, 7 (2013), 131-136. URL: http://dx.doi.org/10.1111/cgf.12220, doi:10.1111/cgf.12220. 1, 6, 8 Subr K., Nowrouzezahrai D., Jarosz W., Kautz J., Mitchell K.: Error analysis of estimators that use combinations of stochastic sampling strategies for direct illumination. Computer Graphics Forum (Proceedings of EGSR) 33, 4 (June 2014), 93-102. doi:10.1111/cgf.12416. 1 1997 1952 1995 2014 2011; 17 2013; 32 2007; 11 2014; 33 2015; 22 e_1_2_10_8_2 Veach E. (e_1_2_10_9_2) 1997 e_1_2_10_10_2 e_1_2_10_3_2 Douc R. (e_1_2_10_2_2) 2007; 11 Hardy G. (e_1_2_10_4_2) 1952 e_1_2_10_5_2 e_1_2_10_7_2 e_1_2_10_6_2 |
| References_xml | – reference: Pajot A., Barthe L., Paulin M., Poulin P.: Representativity for robust and adaptive multiple importance sampling. IEEE Trans. Vis. Comput. Graph. 17, 8 (2011), 1108-1121. URL: http://dx.doi.org/10.1109/TVCG.2010.230, doi:10.1109/TVCG.2010.230. 1 – reference: Subr K., Nowrouzezahrai D., Jarosz W., Kautz J., Mitchell K.: Error analysis of estimators that use combinations of stochastic sampling strategies for direct illumination. Computer Graphics Forum (Proceedings of EGSR) 33, 4 (June 2014), 93-102. doi:10.1111/cgf.12416. 1 – reference: Elvira V., Martino L., Luengo D., Bugallo M.F.: Efficient multiple importance sampling estimators. IEEE Signal Process. Lett. 22, 10 (2015), 1757-1761. URL: http://dx.doi.org/10.1109/LSP.2015.2432078, doi:10.1109/LSP.2015.2432078. 1 – reference: Veach E.: Robust Monte Carlo Methods for Light Transport Simulation. PhD thesis, Stanford University, 1997. 1, 2, 4, 5, 6 – reference: Douc R., Guillin A., Marin J.M., Robert C.P.: Minimum variance importance sampling via population monte carlo. ESAIM: Probability and Statistics 11 (2007), 424-447. 10 – reference: Lu H., Pacanowski R., Granier X.: Second-Order Approximation for Variance Reduction in Multiple Importance Sampling. Computer Graphics Forum 32, 7 (2013), 131-136. URL: http://dx.doi.org/10.1111/cgf.12220, doi:10.1111/cgf.12220. 1, 6, 8 – reference: Veach E., Guibas L. J.: Optimally Combining Sampling Techniques for Monte Carlo Rendering. In Proceedings of the 22nd annual conference on Computer graphics and interactive techniques, New York, NY, USA, 1995), SIGGRAPH '95, ACM, pp. 419-428. URL: http://doi.acm.org/10.1145/218380.218498, doi: 10.1145/218380.218498. 1, 2, 6 – year: 1997 – volume: 17 start-page: 1108 issue: 8 year: 2011 end-page: 1121 article-title: Representativity for robust and adaptive multiple importance sampling publication-title: IEEE Trans. Vis. Comput. Graph. – volume: 33 start-page: 93 issue: 4 year: 2014 end-page: 102 article-title: Error analysis of estimators that use combinations of stochastic sampling strategies for direct illumination publication-title: Computer Graphics Forum (Proceedings of EGSR) – year: 1952 – start-page: 141 year: 2014 end-page: 150 – volume: 32 start-page: 131 issue: 7 year: 2013 end-page: 136 article-title: Second‐Order Approximation for Variance Reduction in Multiple Importance Sampling publication-title: Computer Graphics Forum – start-page: 419 year: 1995 end-page: 428 – volume: 11 start-page: 424 year: 2007 end-page: 447 article-title: Minimum variance importance sampling via population monte carlo publication-title: ESAIM: Probability and Statistics – volume: 22 start-page: 1757 issue: 10 year: 2015 end-page: 1761 article-title: Efficient multiple importance sampling estimators publication-title: IEEE Signal Process. Lett. – ident: e_1_2_10_7_2 doi: 10.1109/TVCG.2010.230 – volume-title: Cambridge Mathematical Library year: 1952 ident: e_1_2_10_4_2 – ident: e_1_2_10_3_2 doi: 10.1109/LSP.2015.2432078 – ident: e_1_2_10_5_2 doi: 10.1145/2670473.2670496 – ident: e_1_2_10_6_2 doi: 10.1111/cgf.12220 – ident: e_1_2_10_10_2 doi: 10.1145/218380.218498 – ident: e_1_2_10_8_2 doi: 10.1111/cgf.12416 – volume: 11 start-page: 424 year: 2007 ident: e_1_2_10_2_2 article-title: Minimum variance importance sampling via population monte carlo publication-title: ESAIM: Probability and Statistics – volume-title: Robust Monte Carlo Methods for Light Transport Simulation year: 1997 ident: e_1_2_10_9_2 |
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| Snippet | We reexamine in this paper the variance for the Multiple Importance Sampling (MIS) estimator for multi‐sample and one‐sample model. As a result of our analysis... We reexamine in this paper the variance for the Multiple Importance Sampling (MIS) estimator for multi-sample and one-sample model. As a result of our analysis... |
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| SubjectTerms | Analysis Categories and Subject Descriptors (according to ACM CCS) Computer graphics Counting Estimating techniques Estimators G.3 [Computer Graphics]: Mathematics of Computing / PROBABILITY AND STATISTICS-Probabilistic algorithms global illumination Heuristic Importance sampling Monte Carlo multiple importance sampling Optimization rendering equation analysis Sampling Studies Variance Variance analysis |
| Title | Variance Analysis of Multi-sample and One-sample Multiple Importance Sampling |
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