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Ronak Mehta
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Year
Towards a theory of out-of-distribution learning
A Geisa, R Mehta, HS Helm, J Dey, E Eaton, J Dick, CE Priebe, ...
arXiv preprint arXiv:2109.14501, 2021
92021
hyppo: A comprehensive multivariate hypothesis testing python package
S Panda, S Palaniappan, J Xiong, EW Bridgeford, R Mehta, C Shen, ...
arXiv preprint arXiv:1907.02088, 2020
72020
A general approach to progressive learning
JT Vogelstein, HS Helm, RD Mehta, J Dey, W Yang, B Tower, W LeVine, ...
Preprint at https://arxiv. org/abs/2004.12908, 2020
52020
hyppo: A multivariate hypothesis testing Python package
S Panda, S Palaniappan, J Xiong, EW Bridgeford, R Mehta, C Shen, ...
arXiv preprint arXiv:1907.02088, 2019
52019
Estimating informationtheoretic quantities with random forests
R Mehta, R Guo, C Shen, J Vogelstein
arXiv preprint arXiv:1907.00325, 2019
52019
Estimating information-theoretic quantities with uncertainty forests
R Guo, R Mehta, J Arroyo, H Helm, C Shen, JT Vogelstein
arXiv, arXiv: 1907.00325, 2019
4*2019
A partition-based similarity for classification distributions
HS Helm, RD Mehta, B Duderstadt, W Yang, CM White, A Geisa, ...
arXiv preprint arXiv:2011.06557, 2020
32020
Representation ensembling for synergistic lifelong learning with quasilinear complexity
JT Vogelstein, J Dey, HS Helm, W LeVine, RD Mehta, TM Tomita, H Xu, ...
arXiv preprint arXiv:2004.12908, 2020
32020
Manifold forests: closing the gap on neural networks
R Perry, TM Tomita, J Patsolic, B Falk, J Vogelstein
32019
A consistent independence test for multivariate timeseries
R Mehta, C Shen, T Xu, JT Vogelstein
arXiv preprint arXiv:1908.06486, 2019
32019
Manifold Oblique Random Forests: Towards Closing the Gap on Convolutional Deep Networks
A Li, R Perry, C Huynh, TM Tomita, R Mehta, J Arroyo, J Patsolic, B Falk, ...
SIAM Journal on Mathematics of Data Science 5 (1), 77-96, 2023
2*2023
Independence Testing for Multivariate Time Series
R Mehta, J Chung, C Shen, T Xu, JT Vogelstein
arXiv preprint arXiv:1908.06486, 2019
22019
Representation Ensembling for Synergistic Lifelong Learning with Quasilinear Complexity
J Dey, J Vogelstein, H Helm, W Levine, R Mehta, A Geisa, H Xu, ...
2022
Omnidirectional Transfer for Quasilinear Lifelong Learning
J Dey, J Vogelstein, H Helm, W Levine, R Mehta, A Geisa, G van de Ven, ...
2021
Omnidirectional Transfer for Quasilinear Lifelong Learning
JT Vogelstein, J Dey, HS Helm, W LeVine, RD Mehta, A Geisa, H Xu, ...
arXiv preprint arXiv:2004.12908, 2020
2020
Independence Testing for Time Series
RD Mehta
Johns Hopkins University, 2019
2019
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Articles 1–16