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Vikash K. Mansinghka

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Bayes3D: fast learning and inference in structured generative models of 3D objects and scenes

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Dec 14, 2023
Nishad Gothoskar, Matin Ghavami, Eric Li, Aidan Curtis, Michael Noseworthy, Karen Chung, Brian Patton, William T. Freeman, Joshua B. Tenenbaum, Mirko Klukas, Vikash K. Mansinghka

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Sequential Monte Carlo Learning for Time Series Structure Discovery

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Jul 13, 2023
Feras A. Saad, Brian J. Patton, Matthew D. Hoffman, Rif A. Saurous, Vikash K. Mansinghka

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Differentiating Metropolis-Hastings to Optimize Intractable Densities

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Jun 30, 2023
Gaurav Arya, Ruben Seyer, Frank Schäfer, Kartik Chandra, Alexander K. Lew, Mathieu Huot, Vikash K. Mansinghka, Jonathan Ragan-Kelley, Christopher Rackauckas, Moritz Schauer

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From Word Models to World Models: Translating from Natural Language to the Probabilistic Language of Thought

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Jun 23, 2023
Lionel Wong, Gabriel Grand, Alexander K. Lew, Noah D. Goodman, Vikash K. Mansinghka, Jacob Andreas, Joshua B. Tenenbaum

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Sequential Monte Carlo Steering of Large Language Models using Probabilistic Programs

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Jun 05, 2023
Alexander K. Lew, Tan Zhi-Xuan, Gabriel Grand, Vikash K. Mansinghka

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$ω$PAP Spaces: Reasoning Denotationally About Higher-Order, Recursive Probabilistic and Differentiable Programs

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Feb 21, 2023
Mathieu Huot, Alexander K. Lew, Vikash K. Mansinghka, Sam Staton

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3D Neural Embedding Likelihood for Robust Sim-to-Real Transfer in Inverse Graphics

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Feb 07, 2023
Guangyao Zhou, Nishad Gothoskar, Lirui Wang, Joshua B. Tenenbaum, Dan Gutfreund, Miguel Lázaro-Gredilla, Dileep George, Vikash K. Mansinghka

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ProbNeRF: Uncertainty-Aware Inference of 3D Shapes from 2D Images

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Oct 27, 2022
Matthew D. Hoffman, Tuan Anh Le, Pavel Sountsov, Christopher Suter, Ben Lee, Vikash K. Mansinghka, Rif A. Saurous

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