The Self-Utility Hypothesis: A Possible Route to Emergent Functional Selfhood in Temporally Continuous AI Systems

This technical note proposes the Self-Utility Hypothesis: the idea that functional self-related representations may emerge without being explicitly engineered, if an AI system is trained under temporally continuous conditions in which a shared representation of “self” becomes useful across multiple tasks. The hypothesis draws on prior work in emergent capabilities, predictive learning, continual learning, self-modeling, autobiographical memory, temporal self-continuity, intrinsic motivation, and time-aware world models. It does not claim novelty for these individual components. The proposed contribution is an integrative, testable hypothesis: rather than directly constructing a self-model, one may design learning pressures in which self-representation becomes an efficient shared latent solution for causal attribution, long-term goal persistence, capability estimation, autobiographical consistency, temporal prediction, and self-initiated behavior. The note also proposes falsifiable experimental routes, including comparisons between temporally isolated and temporally continuous training conditions, ablation of elapsed-time signals, and analysis of whether a stable cross-task self-related representation emerges. The scope is explicitly functional rather than metaphysical. The note does not address consciousness, subjective experience, or philosophical claims about “true selfhood.”

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-10-03
DOI
https://doi.org/10.5281/zenodo.23127272
Primary Topic
Embodied and Extended Cognition
Type
article
Field-Weighted Citation Impact
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article

The Self-Utility Hypothesis: A Possible Route to Emergent Functional Selfhood in Temporally Continuous AI Systems

ago99
Zenodo (CERN European Organization for Nuclear Research)
Embodied and Extended Cognition
article

The Self-Utility Hypothesis: A Possible Route to Emergent Functional Selfhood in Temporally Continuous AI Systems

ago99
article en

Abstract

This technical note proposes the Self-Utility Hypothesis: the idea that functional self-related representations may emerge without being explicitly engineered, if an AI system is trained under temporally continuous conditions in which a shared representation of “self” becomes useful across multiple tasks. The hypothesis draws on prior work in emergent capabilities, predictive learning, continual learning, self-modeling, autobiographical memory, temporal self-continuity, intrinsic motivation, and time-aware world models. It does not claim novelty for these individual components. The proposed contribution is an integrative, testable hypothesis: rather than directly constructing a self-model, one may design learning pressures in which self-representation becomes an efficient shared latent solution for causal attribution, long-term goal persistence, capability estimation, autobiographical consistency, temporal prediction, and self-initiated behavior. The note also proposes falsifiable experimental routes, including comparisons between temporally isolated and temporally continuous training conditions, ablation of elapsed-time signals, and analysis of whether a stable cross-task self-related representation emerges. The scope is explicitly functional rather than metaphysical. The note does not address consciousness, subjective experience, or philosophical claims about “true selfhood.”

Zenodo (CERN European Organization for Nuclear Research)
Openalex Percentile: Top 10%
Embodied and Extended Cognition
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The Self-Utility Hypothesis: A Possible Route to Emergent Functional Selfhood in Temporally Continuous AI Systems — ago99 · Zenodo (CERN European Organization for Nuclear Research) (2026) | TGRS Research Map | TGRS