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Multi-source AI news clustered, deduplicated, and scored 0–100 across authority, cluster strength, headline signal, and time decay.

  1. HawkesNest: A Multi-Axis Synthetic Benchmark for Spatiotemporal Pattern Complexity

    Researchers have introduced HawkesNest, a new synthetic benchmark designed to evaluate spatiotemporal point process (STPP) models. Unlike real-world datasets, HawkesNest offers controlled complexity along four axes: space-time entanglement, background heterogeneity, cross-type interaction, and domain topology. This allows for diagnostic stress tests of STPP models by isolating specific structural difficulties. Initial tests show that existing Hawkes-family baselines and neural models like AutoSTPP degrade under certain complexity increases, highlighting their sensitivities. AI

    IMPACT Provides a new diagnostic tool for evaluating the robustness of spatiotemporal AI models.