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A comprehensive Python framework for game theory modeling, analysis, and simulation.

Project description

GameForge

A comprehensive, modular framework for advanced game theory applications, integrating classical, computational, behavioral, and AI-driven game theory into a unified, scalable ecosystem.


Overview

GameForge is a powerful, extensible library designed to facilitate game theory research, simulation, and application across diverse domains. Whether you are a researcher, developer, or strategist, GameForge provides tools to model, analyze, and refine strategic interactions using a wide range of theoretical and computational approaches.

GameForge supports:

  • Classical Game Theory – Nash equilibria, mixed strategies, extensive and strategic forms.
  • Computational Game Theory – Algorithmic analysis, AI-driven game strategies, and equilibrium computation.
  • Behavioral Game Theory – Human decision-making biases, prospect theory, and bounded rationality.
  • Multi-Agent Systems & AI – Reinforcement learning, adaptive strategies, and agent-based modeling.
  • Metagaming & Dynamic Environments – Iterated play, evolving incentives, and external factors.

Features

1. Game Representation & Modeling

  • Extensive Form (game trees, sequential decisions, perfect/imperfect information)
  • Strategic Form (payoff matrices, simultaneous play)
  • Graph-Based & Hybrid Representations

2. Computational Analysis

  • Equilibrium Computation (Nash, correlated, evolutionary)
  • Algorithmic Strategy Optimization
  • Monte Carlo & Minimax Simulations

3. Behavioral & Psychological Modeling

  • Prospect Theory & Risk Preferences
  • Social Preferences & Fairness
  • Framing Effects & Decision Heuristics

4. Multi-Agent Systems & AI Integration

  • Reinforcement Learning Agents
  • Adaptive Strategy Learning
  • Agent-Based Modeling for Dynamic Environments

5. Game Length & Complexity Refinements

  • Finite vs. Infinite Horizon Adjustments
  • Endgame Scenarios & Tipping Points
  • Computational Complexity & Algorithmic Playability

6. Metagaming & External Incentives

  • Iterated Play & Reputation Systems
  • Policy & Regulatory Game Theory
  • Real-World Incentive Modeling

Installation

GameForge is in active development. Once released, it will be available via PyPI:

pip install gameforge

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