Ke Zhai

Zhai, Ke

zhaikedavy@gmail.com | Curriculum Vitae

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I am currently a Staff Research Scientist at Apple, focusing on pushing the boundaries of machine learning and its practical applications.

Research Interests

  • Statistical Machine Learning
  • Large-scale: Distributed and Online Learning
  • Probabilistic Bayesian Models

Education

Ph.D. in Computer Science University of Maryland, College Park

Advised by Dr. Jordan Boyd-Graber and co-supervised by Dr. Jimmy Lin. Associated with UMIACS, Cloud Computing Center, and CLIP Lab. Focus: non-parametric Bayesian learning and cloud computing.

M.S. in Computer Science (2011) University of Maryland, College Park Paper: "Using Variational Inference and MapReduce to Scale Topic Models"
B.E. in Computer Engineering (2009) Nanyang Technological University, Singapore Thesis: "An Embedded Caching Framework for Privacy-Preserving Data Mining"

Publications

(* indicates equal contribution)

Adaptive Dropout with Rademacher Complexity Regularization

Ke Zhai*, and Huan Wang*.

International Conference on Learning Representations (ICLR), 2018

Query to Knowledge: Unsupervised Entity Extraction from Shopping Queries using Adaptor Grammars

Ke Zhai, Zornitsa Kozareva, Yuening Hu, Qi Li and Weiwei Guo.

SIGIR, 2016

Recognizing Salient Entities in Shopping Queries

Zornitsa Kozareva, Qi Li, Ke Zhai and Weiwei Guo.

ACL, 2016

Online Adaptor Grammars with Hybrid Inference

Ke Zhai, Jordan Boyd-Graber and Shay B. Cohen.

TACL, 2014

Discovering Latent Structure in Task-Oriented Dialogues

Ke Zhai and Jason D. Williams.

ACL, 2014

Polylingual Tree-Based Topic Models for Translation Domain Adaptation

Ke Zhai*, Yuening Hu*, Vladimir Edelman and Jordan Boyd-Graber.

ACL, 2014

Online Latent Dirichlet Allocation with Infinite Vocabulary

Ke Zhai and Jordan Boyd-Graber.

ICML, 2013

Modeling Images using Transformed Indian Buffet Processes

Ke Zhai*, Yuening Hu*, Sinead Williamson and Jordan Boyd-Graber.

ICML, 2012

Mr. LDA: A Flexible Large Scale Topic Modeling Package using Variational Inference in MapReduce

Ke Zhai, Jordan Boyd-Graber, Nima Asadi and Mohamed Alkhouja.

WWW, 2012

Speeding Up Secure Computations via Embedded Caching

Ke Zhai, Wee Keong Ng, Andre Ricardo Herianto and Shuguo Han.

SDM, 2009