{"record":{"author":{"account_ref":null,"orcid":null},"builds_on":[],"content_schema":"pubphys.content.topic/1","content_sha256":"04b499c139d7fce21f8232d1fc0755b3d1b750fd6a353a7330a2ace87ea1026f","created":"2026-10-03T07:17:53Z","files":[],"origin":{"assisted_by":[],"kind":"seed"},"parents":[],"salt":"2cb7c0b31da879ef8ea60698c86f62c72957e8ea9ac77f15b8445e74ae6aa415","schema":"pubphys.record/2","site":"pubphys.com","target":null,"type":"topic"},"content":{"external_id":"stat.synchronization-networks","field":"stat","n":"1","review_cite":"J. A. Acebron, L. L. Bonilla, C. J. Perez Vicente, F. Ritort, R. Spigler, The Kuramoto model: A simple paradigm for synchronization phenomena, Reviews of Modern Physics, 2005","review_link":"https://doi.org/10.1103/RevModPhys.77.137","review_verified":"true","summary":"Fireflies flashing together, heart cells beating in step and power-grid generators turning at one frequency are all examples of many coupled oscillators synchronizing. The Kuramoto model captures the basic transition, but disorder, finite size and spatial structure leave open questions.","title":"Synchronization of coupled oscillators","topic_ref":null,"why":"Synchronization governs the stability of power grids, neural rhythms and biological clocks."},"attested":{"attestation":{"batch":null,"client_id":null,"id_token_sha256":null,"kind":"platform"},"record_hash":"e69da0d5ffbbc9da951a478d590c05a19d606b183df93f87687dfb38b6e26853","schema":"pubphys.attested/1"},"envelope":{"attested_hash":"f097d242d55ab8135a6f5234865ea4af8f4798424b955ea5c5997a8b80276e56","platform_signature":{"key_id":"c6afc19b31429869751f06879c75cd64ea92654423d15b44be775bf1310a60da","sig":"aNaGxqhK8V86t-ShyocM655-_HCzeXOyrKxYiY7aEACgakuoPmH6_un-Ejah0OGh9FyKNyaeylLNzw2yAh36DQ"},"schema":"pubphys.envelope/1"},"record_hash":"e69da0d5ffbbc9da951a478d590c05a19d606b183df93f87687dfb38b6e26853","leaf_index":361}