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Higher-order modeling of face-to-face interactions

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arxiv 2406.05026 v2 pith:DJTMGUMN submitted 2024-06-07 physics.soc-ph cond-mat.stat-mechcs.SI

classification physics.soc-phcond-mat.stat-mechcs.SI
keywords interactionsface-to-faceagentsgroupshigher-ordermodelssocialbeen
verification ladder T0 review T1 audit T2 compute T3 formal
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The most fundamental social interactions among humans occur face-to-face. Their features have been extensively studied in recent years, owing to the availability of high-resolution data on individuals' proximity. Mathematical models based on mobile agents have been crucial to understanding the spatio-temporal organization of face-to-face interactions. However, these models focus on dyadic relationships only, failing to characterize interactions in larger groups of individuals. Here, we propose a model in which agents interact with each other by forming groups of different sizes. Each group has a degree of social attractiveness, based on which neighboring agents decide whether to join. Our framework reproduces different properties of groups in face-to-face interactions, including their distribution, the correlation in their number, and their persistence in time, which dyadic models cannot replicate. Furthermore, it captures homophilic patterns at the level of higher-order interactions, going beyond standard pairwise approaches. Our work provides further evidence that higher-order interactions are key to describe human face-to-face contacts, paving the way for further investigation of how group dynamics at a microscopic scale affects social phenomena at a macroscopic scale.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. OpenAlex reports about 4 citations worldwide. Full citation record

  1. The recurrence of groups inhibits the information spreading under higher-order interactions

    physics.soc-ph 2025-02 conditional novelty 6.0 of 10

    Recurring triangular groups in face-to-face contact networks suppress information spreading, and higher-order (triad-level) transmission strengthens this suppression.

  2. Streaming Model Cascades for Semantic SQL

    cs.DB 2026-04 unverdicted novelty 5.5 of 10

    SUPG-IT and GAMCAL route streaming semantic-SQL rows through cheap proxies with joint precision/recall guarantees or a single cost-error tradeoff, cutting oracle calls while keeping high F1.

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