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Article

Coarse-Grained Hawkes Processes

Department of Interdisciplinary Statistical Mathematics, The Institute of Statistical Mathematics, Tokyo 190-8562, Japan
Entropy 2025, 27(6), 555; https://doi.org/10.3390/e27060555
Submission received: 21 April 2025 / Revised: 15 May 2025 / Accepted: 23 May 2025 / Published: 25 May 2025
(This article belongs to the Section Information Theory, Probability and Statistics)

Abstract

When analyzing real-world event data, it is often the case that bin-count processes are observed instead of precise event time-stamps along a continuous timeline, owing to practical limitations in measurement accuracy. In this work, we propose a modeling framework for aggregated event data generated by multivariate Hawkes processes. The introduced model, termed the coarse-grained Hawkes process, effectively captures the second-order statistical characteristics of the bin-count representation of the Hawkes process, particularly when the bin size is large relative to the typical support of the excitation kernel. Building upon this model, we develop a method for inferring the underlying Hawkes process from bin-count observations, and demonstrate through simulation studies that the proposed approach performs comparably to, or even surpasses, existing techniques, while maintaining computational efficiency in parameter estimation.
Keywords: Hawkes process; aggregated data; count time series; coarse-grained modeling Hawkes process; aggregated data; count time series; coarse-grained modeling

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MDPI and ACS Style

Koyama, S. Coarse-Grained Hawkes Processes. Entropy 2025, 27, 555. https://doi.org/10.3390/e27060555

AMA Style

Koyama S. Coarse-Grained Hawkes Processes. Entropy. 2025; 27(6):555. https://doi.org/10.3390/e27060555

Chicago/Turabian Style

Koyama, Shinsuke. 2025. "Coarse-Grained Hawkes Processes" Entropy 27, no. 6: 555. https://doi.org/10.3390/e27060555

APA Style

Koyama, S. (2025). Coarse-Grained Hawkes Processes. Entropy, 27(6), 555. https://doi.org/10.3390/e27060555

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