Bayesian Nonparametric Poisson-Process Allocation for Time-Sequence Modeling
Abstract
Analyzing the underlying structure of multiple time-sequences provides insights into the understanding of social networks and human activities. In this work, we present the \emph{Bayesian nonparametric Poisson process allocation} (BaNPPA), a latent-function model for time-sequences, which automatically infers the number of latent functions. We model the intensity of each sequence as an infinite mixture of latent functions, each of which is obtained using a function drawn from a Gaussian process. We show that a technical challenge for the inference of such mixture models is the unidentifiability of the weights of the latent functions. We propose to cope with the issue by regulating the volume of each latent function within a variational inference algorithm. Our algorithm is computationally efficient and scales well to large data sets. We demonstrate the usefulness of our proposed model through experiments on both synthetic and real-world data sets.
Cite
Text
Ding et al. "Bayesian Nonparametric Poisson-Process Allocation for Time-Sequence Modeling." International Conference on Artificial Intelligence and Statistics, 2018.Markdown
[Ding et al. "Bayesian Nonparametric Poisson-Process Allocation for Time-Sequence Modeling." International Conference on Artificial Intelligence and Statistics, 2018.](https://mlanthology.org/aistats/2018/ding2018aistats-bayesian/)BibTeX
@inproceedings{ding2018aistats-bayesian,
title = {{Bayesian Nonparametric Poisson-Process Allocation for Time-Sequence Modeling}},
author = {Ding, Hongyi and Khan, Mohammad Emtiyaz and Sato, Issei and Sugiyama, Masashi},
booktitle = {International Conference on Artificial Intelligence and Statistics},
year = {2018},
pages = {1108-1116},
url = {https://mlanthology.org/aistats/2018/ding2018aistats-bayesian/}
}