Point processes in time have a wide range of applications that include the claims arrival process in insurance or the analysis of queues in operations research. Due to advances in technology, such samples of point processes are increasingly encountered. A key object of interest is the local intensity function. It has a straightforward interpretation that allows to understand and explore point process data. We consider functional approaches for point processes, where one has a sample of repeated realizations of the point process. This situation is inherently connected with Cox processes, where the intensity functions of the replications are modeled as random functions. Here we study a situation where one records covariates for each replication of the process, such as the daily temperature for bike rentals. For modeling point processes as responses with vector covariates as predictors we propose a novel regression approach for the intensity function that is intrinsically nonparametric. While the intensity function of a point process that is only observed once on a fixed domain cannot be identified, we show how covariates and repeated observations of the process can be utilized to make consistent estimation possible, and we also derive asymptotic rates of convergence without invoking parametric assumptions.
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School of Mathematics and Statistics, Wuhan University, Wuhan,430072, ChinaSchool of Mathematics and Statistics, Wuhan University, Wuhan,430072, China
He, Baihua
Liu, Yanyan
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School of Mathematics and Statistics, Wuhan University, Wuhan,430072, ChinaSchool of Mathematics and Statistics, Wuhan University, Wuhan,430072, China
Liu, Yanyan
Wu, Yuanshan
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School of Statistics and Mathematics, Zhongnan University of Economics and Law, Wuhan,430073, ChinaSchool of Mathematics and Statistics, Wuhan University, Wuhan,430072, China
Wu, Yuanshan
Yin, Guosheng
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Department of Statistics and Actuarial Science, University of Hong Kong, Pokfulam Road, Hong KongSchool of Mathematics and Statistics, Wuhan University, Wuhan,430072, China
Yin, Guosheng
Zhao, Xingqiu
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Department of Applied Mathematics, Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong KongSchool of Mathematics and Statistics, Wuhan University, Wuhan,430072, China