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A Dual Topological Pipeline for Imperial Network Analysis: Persistent Homology, Structural Fragility, and the Aztec Collapse

Jose de Jesus Bernal Alvarado, David Delepine, Carlos Pinedo Guadarrama

physics.soc-pharXiv:2608.13845

Abstract

We apply persistent homology and a dual-model topological pipeline to a multilayer network of the Aztec Empire (Triple Alliance, 1427--1521 CE), constructed from tribute records and geographic adjacency among 38 nodes (Tenochtitlan-Centro, 36 tribute-paying provinces, and the Tlaxcala enclave) and 208 edges. We report four main results: (i) The tribute (control) layer is a pure extraction tree ( = 0, H = 0.000 at all epochs): structurally more fragile than any documented configuration in the Roman, Byzantine, or Han administrative datasets analyzed with the same pipeline. (ii) Single-node removal of Tenochtitlan-Centro collapses the giant component from 1.000 to 0.630 and eliminates 30 redundancy cycles simultaneously, a structural asymmetry ratio of >4:1 relative to random perturbation. (iii) The Tlaxcala--Puebla region coincides with the dominant class of the imperial geographic point cloud (persistence = 22.09~km, versus < 3~km for all others), a structural void that exists identically whether Tlaxcala is modeled as absent or present in the filtration. (iv) A logistic regression confirms that commercial centrality in the geographic layer (r = +0.462, p = 0.004) is the dominant predictor of early alliance formation, while tribute burden is uncorrelated (r = -0.033, p = 0.845). These four results define a new imperial collapse mode, the void-occupied tree, in which zero topological redundancy in the control layer coincides with a dominant geometric void occupied by an autonomous enclave---a configuration not previously documented in historical network TDA.

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