Fluidity Index: Next-Generation Super-intelligence Benchmarks

Fuente: arXiv
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Main Authors: Ngoiya, Eric, Bao, Tianshu
Format: Preprint
Published: 2025
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author Ngoiya, Eric
Bao, Tianshu
author_facet Ngoiya, Eric
Bao, Tianshu
contents This paper introduces the Fluidity Index (FI) to quantify model adaptability in dynamic, scaling environments. The benchmark evaluates response accuracy based on deviations in initial, current, and future environment states, assessing context switching and continuity. We distinguish between closed-ended and open-ended benchmarks, prioritizing closed-loop open-ended real-world benchmarks to test adaptability. The approach measures a model's ability to understand, predict, and adjust to state changes in scaling environments. A truly super-intelligent model should exhibit at least second-order adaptability, enabling self-sustained computation through digital replenishment for optimal fluidity.
format Preprint
id arxiv_https___arxiv_org_abs_2510_20636
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Fluidity Index: Next-Generation Super-intelligence Benchmarks
Ngoiya, Eric
Bao, Tianshu
Artificial Intelligence
This paper introduces the Fluidity Index (FI) to quantify model adaptability in dynamic, scaling environments. The benchmark evaluates response accuracy based on deviations in initial, current, and future environment states, assessing context switching and continuity. We distinguish between closed-ended and open-ended benchmarks, prioritizing closed-loop open-ended real-world benchmarks to test adaptability. The approach measures a model's ability to understand, predict, and adjust to state changes in scaling environments. A truly super-intelligent model should exhibit at least second-order adaptability, enabling self-sustained computation through digital replenishment for optimal fluidity.
title Fluidity Index: Next-Generation Super-intelligence Benchmarks
topic Artificial Intelligence
url https://arxiv.org/abs/2510.20636