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Papers

The Neural Hawkes Process: A Neurally Self-Modulating Multivariate Point Process

2016-12-29 · NeurIPS 2017 12 · Hongyuan Mei, Jason Eisner

Many events occur in the world. Some event types are stochastically excited or inhibited---in the sense of having their probabilities elevated or decreased---by patterns in the sequence of previous events. Discovering such patterns can help us predict which type of event will happen next and when. We model streams of discrete events in continuous time, by constructing a neurally self-modulating multivariate point process in which the intensities of multiple event types evolve according to a novel continuous-time LSTM. This generative model allows past events to influence the future in complex and realistic ways, by conditioning future event intensities on the hidden state of a recurrent neural network that has consumed the stream of past events. Our model has desirable qualitative properties. It achieves competitive likelihood and predictive accuracy on real and synthetic datasets, including under missing-data conditions.

📄 PDF Abstract BibTeX arXiv:1612.09328

Code (9)

HMEIatJHU/neurawkes 공식 구현 pytorch
WangHexie/large_hawkes pytorch
Yoontae6719/Point-Processes pytorch
hongrui24/neuralhawkespytorch pytorch
ivan-chai/hotpp-benchmark pytorch
sohamch/Neural-Hawkes-study pytorch
vladislavzh/cotic pytorch
xiao03/nh pytorch
znhy1024/heard pytorch

Methods 이 논문이 사용한 방법론

Sigmoid Activation 설명 없음
Tanh Activation 설명 없음
LSTM An LSTM is a type of recurrent neural network that addresses the vanishing gradient problem in vanilla…

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