Search arXivSearch

arXiv · 2509.14474

From Mimicry to True Intelligence (TI) -- A New Paradigm for Artificial General Intelligence

Abstract

The debate around Artificial General Intelligence (AGI) remains open due to two fundamentally different goals: replicating human-level performance versus replicating human-like cognitive processes. We argue that performance-based definitions are inadequate, offering no roadmap for research and failing to define the qualitative nature of genuine intelligence. Four decades of work on cognitive architectures have already characterized the relevant mechanisms; our claim is that this knowledge is not being consulted by the research program now driving AGI development. What we offer is a translation of it into terms bearing on contemporary systems, with criteria for assessing them. We define True Intelligence (TI) as a system characterized by six components: five architectural pillars for which assessment criteria can be stated (embodied sensory fusion, core directives, dynamic schemata, a highly interconnected multi-expert architecture, and an orchestration layer), together with Interconnectedness, an emergent quality for which we can offer no independent measure. Two commitments distinguish the framework from the architectures on which it builds: that the topology of the schema network is itself shaped by the directives under which a system has operated, so that identical experience under different directives yields differently organized knowledge; and that a continuously active associative substrate, from which a salience mechanism promotes only a fraction to deliberate processing, is a distinct locus of cognitive work rather than the unconscious support of a task cycle. Based on the five assessable pillars we propose a five-level taxonomy of AGI, applied to four contemporary and classical systems. We hold that Level 5 is the strongest architectural condition for TI that can presently be specified, and leave open whether meeting it is sufficient.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Meltem Subasioglu, Nevzat Subasioglu. 2026-08-07. From Mimicry to True Intelligence (TI) -- A New Paradigm for Artificial General Intelligence. https://arxiv.org/abs/2509.14474

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related papers

Collab-Solver: Collaborative Solving Policy Learning for Mixed-Integer Linear Programming

Mixed-integer linear programming (MILP) has been a fundamental problem in combinatorial optimization. Conventional MILP solving mainly relies on carefully designed heuristics embedded in the branch-and-bound framework. Driven by the strong capabilities of neural networks, recent research is exploring the value of machine learning alongside conventional MILP solving. Although learning-based MILP methods have shown great promise, existing works typically learn policies for individual modules in MILP solvers in isolation, without considering their interdependence, which limits both solving efficiency and solution quality. To address this limitation, we propose Collab-Solver, a novel multi-agent-based policy learning framework for MILP that enables collaborative policy optimization for multiple modules. Specifically, we formulate the collaboration between cut selection and branching in MILP solving as a Stackelberg game. Under this formulation, we develop a two-phase learning paradigm to stabilize collaborative policy learning: the first phase performs data-communicated policy pretraining, and the second phase further orchestrates the policy learning for various modules. Extensive experiments on both synthetic and large-scale real-world MILP datasets demonstrate that the jointly learned policies significantly improve solving performance. Moreover, the policies learned by Collab-Solver have also demonstrated excellent generalization abilities across different instance sets.

cs.AI

Fact Grounded Attention: Eliminating Hallucination in Large Language Models Through Attention Level Knowledge Integration

"The greatest enemy of knowledge is not ignorance, it is the illusion of knowledge." Large Language Models have conquered natural language but remain prisoners of their own probabilistic nature--confidently hallucinating facts they never truly knew. We present Fact Grounded Attention (FGA), a novel architectural modification that transforms unreliable language models into deterministic truth tellers by injecting verifiable knowledge directly into the attention mechanism. Unlike existing approaches that patch hallucinations after generation or prepend retrieved text, FGA intervenes at the mathematical heart of the transformer--the pre-softmax attention scores--creating a model that cannot hallucinate when facts exist in its knowledge base. Our experiments across 1,107 technical queries spanning smartphones, laptops, and electric vehicles demonstrate a transformation from 6.3% accuracy in vanilla Llama 3.2 to 99.7% accuracy with FGA. More critically, knowledge updates occur in under one second without retraining, compared to hours for parameter editing approaches. FGA doesn't just reduce hallucination--it eliminates it entirely for verifiable facts, marking a fundamental shift from probabilistic approximation to deterministic precision in neural language generation.

cs.AI

MemeLens: Multilingual Multitask VLMs for Memes

Memes are a dominant medium for online communication and manipulation because meaning emerges from interactions between embedded text, imagery, and cultural context. Existing meme research is distributed across tasks (e.g., \textit{hate, misogyny, propaganda, sentiment, humour}) and languages, which limits cross-domain generalization. To address this gap, we propose \textsc{MemeLens}, a unified multilingual, multitask explanation-enhanced Vision-Language Model (VLM) for meme understanding. We consolidate $38$ public meme datasets, filter and map dataset-specific labels into a shared taxonomy of $20$ tasks spanning harm, targets, figurative/pragmatic intent, and affect. We present a comprehensive empirical analysis across modeling paradigms, task categories, and datasets. Our findings suggest that robust meme understanding requires multimodal training, varies substantially across semantic categories, and remains sensitive to over-specialization when models are fine-tuned on individual datasets rather than trained in a unified setting. We make the experimental resources (https://github.com/MohamedBayan/MemeLens), model (https://huggingface.co/QCRI/MemeLens-VLM) and datasets (https://huggingface.co/datasets/QCRI/MemeLens) publicly available to the community.

cs.AI