GKSL (Gorini-Kossakowski-Sudarshan-Lindblad) master equation methodology for quantum-like models of cognition and decision making. Models mental state evolution as dissipative process influenced by informational environment. Includes cognitive beats analysis, Passive/Active Hamiltonian regimes, and non-Nash equilibrium stabilization. Use when: quantum cognition, decision making models, open quantum systems in psychology, GKSL/Lindblad equations for cognition, cognitive beats, Prisoner's Dilem...
Scanned 9/11/2026
Install to Claude Code
npx -y skills add hiyenwong/ai_collection --skill gksl-quantum-cognition --agent claude-codeInstalls into .claude/skills of the current project.
Are you the author of Gksl Quantum Cognition?
Add the live security badge to your README — it updates automatically with every re-scan.
[](https://www.skillsdirectory.com/skills/hiyenwong-gksl-quantum-cognition-ai-collection)More formats (shields.io, HTML) on the badges page.
---
name: gksl-quantum-cognition
description: >
GKSL (Gorini-Kossakowski-Sudarshan-Lindblad) master equation methodology for
quantum-like models of cognition and decision making. Models mental state
evolution as dissipative process influenced by informational environment.
Includes cognitive beats analysis, Passive/Active Hamiltonian regimes, and
non-Nash equilibrium stabilization. Use when: quantum cognition, decision
making models, open quantum systems in psychology, GKSL/Lindblad equations
for cognition, cognitive beats, Prisoner's Dilemma quantum models,
ArXiv:2604.18643, quantum-like decision making, Asano Khrennikov.
---
# GKSL Quantum Cognition Framework
Model cognition and decision making using the GKSL (Lindblad) master equation
from open quantum systems theory.
## GKSL Master Equation for Cognition
Mental state ρ evolves as:
```
dρ/dt = -i[H, ρ] + Σ_k (L_k ρ L_k† - ½{L_k†L_k, ρ})
```
Where H encodes cognitive dynamics and L_k are Lindblad operators modeling
environmental (informational) influence.
## Dynamical Regimes
| Regime | Hamiltonian | Cognitive Meaning |
|--------|------------|-------------------|
| **Passive** | H commutes with decision basis | Habitual/automatic responses |
| **Active** | H does NOT commute with decision basis | Cognitive agency, deliberation |
**Key diagnostic**: Non-commutation with projections on decision basis =
mathematical signature of cognitive agency and quantum escape from classical equilibria.
## Cognitive Beats
When competing "flows of mind" operate at approximately equal frequencies:
- **Beats** emerge from structural tension between Liouvillian channels
- **Beat envelope** dictates timing of peak readiness and hesitation
- Distinct from simple damped oscillations — secondary slow-scale modulation
- Provides **spectral diagnostic** for depth of cognitive agency
## Applications
### Strategic Games (e.g., Prisoner's Dilemma)
GKSL framework can stabilize **non-Nash outcomes** by modeling the deliberation
process as a dissipative quantum evolution rather than static equilibrium.
### Decision Dynamics Pipeline
1. Define decision basis (orthogonal outcome states)
2. Construct H encoding preferences and conflicts
3. Add Lindblad operators for environmental/informational coupling
4. Solve for ρ(t) — track conviction oscillations
5. Identify beat frequencies → predict hesitation/commitment timing
## Nested Timescales
The framework resolves nested temporal structure:
- **Fast**: Liouvillian channel dynamics (ms-scale neural)
- **Beat envelope**: Modulation of conviction (s-scale deliberation)
- **Decision commitment**: Collapse to outcome (behavioral response)
## Activation Keywords
GKSL, Lindblad, Gorini Kossakowski Sudarshan, quantum cognition, open quantum
systems cognition, cognitive beats, quantum decision making, Asano, Khrennikov,
non-Nash equilibrium, Prisoner's Dilemma quantum
Is this your skill, or is something wrong with this listing? Request removal or report an issue. Author removals are honored within 72 hours.
No comments yet. Be the first to comment!