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Dive into the research topics where Dehua Cheng is active.

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Featured researches published by Dehua Cheng.


knowledge discovery and data mining | 2014

FBLG: a simple and effective approach for temporal dependence discovery from time series data

Dehua Cheng; Mohammad Taha Bahadori; Yan Liu

Discovering temporal dependence structure from multivariate time series has established its importance in many applications. We observe that when we look in reversed order of time, the temporal dependence structure of the time series is usually preserved after switching the roles of cause and effect. Inspired by this observation, we create a new time series by reversing the time stamps of original time series and combine both time series to improve the performance of temporal dependence recovery. We also provide theoretical justification for the proposed algorithm for several existing time series models. We test our approach on both synthetic and real world datasets. The experimental results confirm that this surprisingly simple approach is indeed effective under various circumstances.


knowledge discovery and data mining | 2014

Parallel gibbs sampling for hierarchical dirichlet processes via gamma processes equivalence

Dehua Cheng; Yan Liu

The hierarchical Dirichlet process (HDP) is an intuitive and elegant technique to model data with latent groups. However, it has not been widely used for practical applications due to the high computational costs associated with inference. In this paper, we propose an effective parallel Gibbs sampling algorithm for HDP by exploring its connections with the gamma-gamma-Poisson process. Specifically, we develop a novel framework that combines bootstrap and Reversible Jump MCMC algorithm to enable parallel variable updates. We also provide theoretical convergence analysis based on Gibbs sampling with asynchronous variable updates. Experiment results on both synthetic datasets and two large-scale text collections show that our algorithm can achieve considerable speedup as well as better inference accuracy for HDP compared with existing parallel sampling algorithms.


international conference on machine learning | 2015

Accelerated Online Low Rank Tensor Learning for Multivariate Spatiotemporal Streams

Rose Yu; Dehua Cheng; Yan Liu


conference on learning theory | 2015

Efficient Sampling for Gaussian Graphical Models via Spectral Sparsification

Dehua Cheng; Yu Cheng; Yan Liu; Richard Peng; Shang-Hua Teng


neural information processing systems | 2016

SPALS: Fast Alternating Least Squares via Implicit Leverage Scores Sampling.

Dehua Cheng; Richard Peng; Yan Liu; Ioakeim Perros


international conference on artificial intelligence and statistics | 2015

Model Selection for Topic Models via Spectral Decomposition

Dehua Cheng; Xinran He; Yan Liu


international conference on learning representations | 2018

Detecting Statistical Interactions from Neural Network Weights

Michael Tsang; Dehua Cheng; Yan Liu


arXiv: Data Structures and Algorithms | 2014

Scalable Parallel Factorizations of SDD Matrices and Efficient Sampling for Gaussian Graphical Models.

Dehua Cheng; Yu Cheng; Yan Liu; Richard Peng; Shang-Hua Teng


arXiv: Data Structures and Algorithms | 2015

Spectral Sparsification of Random-Walk Matrix Polynomials.

Dehua Cheng; Yu Cheng; Yan Liu; Richard Peng; Shang-Hua Teng


international conference on artificial intelligence and statistics | 2018

Matrix completability analysis via graph k-connectivity.

Dehua Cheng; Natali Ruchansky; Yan Liu

Collaboration


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Yan Liu

University of Southern California

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Richard Peng

Massachusetts Institute of Technology

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Yu Cheng

University of Southern California

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Shang-Hua Teng

University of Southern California

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Xinran He

University of Southern California

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Ioakeim Perros

Georgia Institute of Technology

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Michael Tsang

University of Southern California

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Mohammad Taha Bahadori

University of Southern California

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Rose Yu

University of Southern California

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