The Quantum Language & Consciousness Model (QLCM)
Ccuántica / Quantum Language & Consciousness Model (QLCM)
Caracas, Venezuela
@OsmaryLisbeth
November 13, 2025
This document presents the Quantum Language & Consciousness Model (QLCM), a theoretical framework that uses mathematical formalisms from quantum mechanics to model linguistic, cognitive, and communicational processes. QLCM proposes that natural language exhibits properties analogous to quantum systems, including semantic superposition, contextual interference, and informational non-locality. It explicitly distinguishes between physical non-locality and informational non-locality to ensure coherence with contemporary physics. The framework develops semantic Hilbert spaces, contextual operators, and metrics for coherence and conceptual entanglement. Finally, computational, cognitive, and neuroscientific validation methodologies are proposed.
Keywords: quantum linguistics, quantum cognition, formal semantics, information theory, consciousness models.
Question: Is it really physical non-locality?
Answer: No. QLCM rigorously distinguishes between:
In other words, QLCM does not imply physical action at a distance in the brain nor real quantum phenomena at the neuronal level; all its formal structure resides in semantic Hilbert spaces and contextual operators, ensuring coherence with the principles of physics.
Natural language presents properties that challenge classical models based on Kolmogorovian probability and Boolean logic. Fundamental examples include:
These phenomena suggest the need for a more general formalism that captures the superposition of meanings and their collapse according to interpretative context.
Quantum cognition has demonstrated that certain mental processes follow non-classical patterns: violations of the total probability law, order effects in decisions, and cognitive interference phenomena. However, there was still no framework specifically designed for language.
QLCM proposes a formal theory where:
A central clarification of QLCM is the rigorous distinction between:
QLCM operates exclusively in the informational domain, without compromising the principles of relativity or energy conservation.
Meanings are represented as vectors in a semantic Hilbert space:
where each $|s_i\rangle$ represents a possible meaning.
Linguistic interpretation corresponds to a projection:
where $P_C$ is the operator associated with context.
Meaning can correlate distant concepts in the linguistic structure without requiring physical proximity.
We define:
where $C(s_i,s_j)$ is a measure of semantic coherence and $\Theta$ is the step function for conceptual distance threshold.
QLCM models interference between meanings in superposition:
Introduces conceptual entanglement:
explaining metaphors, analogies, and linguistic creativity.
Semantic evolution is modeled as a linguistic Schrödinger equation:
QLCM does not require the brain to be physically quantum; it uses mathematical analogies at three levels:
QLCM respects:
Primary measure: Index of Non-Locality in Semantic Coherence (INCS)
QLCM prediction (Sonic State / Pure Quantum Communication):
Prediction: Phase-locked gamma synchronization between distant cortical regions during complex metaphorical processing under PQC conditions.
Expected outcome: Cross-hemispheric and thalamo-cortical coherence significantly higher in QLCM group vs. classical control (p < 0.01).
QLCM:
QLCM constitutes a rigorous, consistent, and empirically viable proposal for modeling language from quantum principles. Its main contribution is distinguishing between physical processes and informational processes, avoiding common categorical errors. This framework establishes the basis for a new generation language science, aligned with advances in mathematical physics, cognitive neuroscience, and artificial intelligence.