Publicación: Heliospheric regimes governing Forbush decreases revealed by multiscale analysis of cosmic rays
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We investigate the dynamical structure of galactic cosmic ray intensity using multiscale analysis applied to daily records from 16 neutron monitor stations over 2010--2025. The objective is to determine whether large Forbush decreases are associated with identifiable statistical states of heliospheric modulation. We identify a statistically distinct heliospheric regime---characterised by elevated long-range persistence and reduced natural-time variance---in which large Forbush decreases are significantly more likely. Multifractal detrended fluctuation analysis and natural time analysis are applied in a rolling framework to characterize long-range correlations and event-order dynamics. The results show that persistent long-range correlations and multifractal structure are universal across the global network. A coherent evolution driven by the solar cycle is observed, with reduced persistence during the 2019--2020 solar minimum and enhanced organization during active periods. Across nine major Forbush decreases, 78\% occur during intervals of elevated persistence and reduced natural-time variance, indicating a distinct heliospheric regime associated with an increased likelihood of events. No significant relationship is found between these metrics and event magnitude, confirming that the signal reflects a statistical state rather than a deterministic precursor. The combined analysis demonstrates that multiscale and natural-time approaches provide complementary information, offering a more complete characterization of heliospheric dynamics and reframing Forbush decreases as regime-dependent phenomena rather than isolated stochastic events.
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