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Gaussian Blue Noise

Among the various approaches for producing point distributions with blue noise spectrum, we argue for an optimization framework using Gaussian kernels. We show that with a wise selection of optimization parameters, this approach attains unprecedented quality, provably surpassing the current state of the art attained by the optimal transport (BNOT) approach. Further, we show that our algorithm scales smoothly and feasibly to high dimensions while maintaining the same quality, realizing unprecedented high-quality high-dimensional blue noise sets. Finally, we show an extension to adaptive sampling.

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Related contextRelated contextCo-authorshipCo-authorshipCo-authorshipAuthorshipWorks onAuthorshipAuthorshipTopic signalTopic signalTopic signalWGaussian Blue Noisepreprint / 2022AAbdalla G. M. AhmedResearcherAJing RenResearcherAPeter WonkaResearcherTMachine Learning49008 worksTApplications3567 worksTGraphics1417 works
PaperSignal 106 links

Gaussian Blue Noise

preprint / 2022

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