Why Law Always Lags AI —A Dynamic Sustenance Theory Analysis of AI Governance

The European Union's attempt to regulate artificial intelligence—from the 2021 AI Act proposal to the 2024 political agreement and the 2026 postponement of high-risk obligations—illustrates a structural condition that no amount of legislative effort can overcome: the dynamics of AI development and the pace of lawmaking follow fundamentally different temporal logics. Drawing on the analytical grammar of Dynamic Sustenance Theory (DST v15.0), this paper develops the concept of Layered Asynchrony to diagnose why law always lags AI. The dynamic layer advances cumulatively on a month-to-quarter scale and cannot be paused; the rules layer proceeds through procedural cycles on a year-to-decade scale. The transmission gap between them is permanently greater than zero. Its observable form is the Response Gap, measured against the Tolerance Window; when the window is breached, regulatory failure occurs before the response is completed. The paper compares the European, American, and Chinese regulatory strategies as different adaptations to the same structural condition, and identifies the Dual Asynchrony faced by the Global South. It argues that the way out is not faster legislation but the design of feedback loops: embedding a Dedicated Fast-Cycle Subsystem within the rules layer, endowed with interim rule-adjustment authority subject to ex-post legislative review. The EU case is presented as an interpretive illustration of Layered Asynchrony, not as an empirical test.

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-22
DOI
https://doi.org/10.5281/zenodo.22884352
Primary Topic
Legal Language and Interpretation
Type
preprint
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Why Law Always Lags AI —A Dynamic Sustenance Theory Analysis of AI Governance

Kaifeng Ning
Zenodo (CERN European Organization for Nuclear Research)
Legal Language and Interpretation
preprint

Why Law Always Lags AI —A Dynamic Sustenance Theory Analysis of AI Governance

Kaifeng Ning
preprint en

Abstract

The European Union's attempt to regulate artificial intelligence—from the 2021 AI Act proposal to the 2024 political agreement and the 2026 postponement of high-risk obligations—illustrates a structural condition that no amount of legislative effort can overcome: the dynamics of AI development and the pace of lawmaking follow fundamentally different temporal logics. Drawing on the analytical grammar of Dynamic Sustenance Theory (DST v15.0), this paper develops the concept of Layered Asynchrony to diagnose why law always lags AI. The dynamic layer advances cumulatively on a month-to-quarter scale and cannot be paused; the rules layer proceeds through procedural cycles on a year-to-decade scale. The transmission gap between them is permanently greater than zero. Its observable form is the Response Gap, measured against the Tolerance Window; when the window is breached, regulatory failure occurs before the response is completed. The paper compares the European, American, and Chinese regulatory strategies as different adaptations to the same structural condition, and identifies the Dual Asynchrony faced by the Global South. It argues that the way out is not faster legislation but the design of feedback loops: embedding a Dedicated Fast-Cycle Subsystem within the rules layer, endowed with interim rule-adjustment authority subject to ex-post legislative review. The EU case is presented as an interpretive illustration of Layered Asynchrony, not as an empirical test.

Zenodo (CERN European Organization for Nuclear Research)
Peace, Justice and strong institutions
Legal Language and Interpretation
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Why Law Always Lags AI —A Dynamic Sustenance Theory Analysis of AI Governance — Kaifeng Ning · Zenodo (CERN European Organization for Nuclear Research) (2026) | TGRS Research Map | TGRS