Deconstructing the Dual Black Box:A Plug-and-Play Cognitive Framework for Human-AI Collaborative Enhancement and Its Implications for AI Governance
Yiming Lu

TL;DR
This paper introduces a plug-and-play cognitive framework that transforms human and AI black boxes into a transparent, collaborative system, enabling scalable expert knowledge sharing and new AI governance approaches.
Contribution
It presents the first engineering proof of cognitive equity and a novel meta-interaction framework for human-AI collaboration and governance.
Findings
Developed the RAMTN system for knowledge extraction from expert dialogues.
Demonstrated scalable conversion of expert reasoning into reusable AI assets.
Proposed a transparent interaction protocol for AI governance.
Abstract
Currently, there exists a fundamental divide between the "cognitive black box" (implicit intuition) of human experts and the "computational black box" (untrustworthy decision-making) of artificial intelligence (AI). This paper proposes a new paradigm of "human-AI collaborative cognitive enhancement," aiming to transform the dual black boxes into a composable, auditable, and extensible "functional white-box" system through structured "meta-interaction." The core breakthrough lies in the "plug-and-play cognitive framework"--a computable knowledge package that can be extracted from expert dialogues and loaded into the Recursive Adversarial Meta-Thinking Network (RAMTN). This enables expert thinking, such as medical diagnostic logic and teaching intuition, to be converted into reusable and scalable public assets, realizing a paradigm shift from "AI as a tool" to "AI as a thinking partner."…
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Taxonomy
TopicsNeuroethics, Human Enhancement, Biomedical Innovations · Ethics and Social Impacts of AI · Artificial Intelligence in Healthcare and Education
