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Graduate-Level Modeling · Portfolio Theory
Black-Litterman Portfolio Optimizer
Mean-variance optimization alone produces unstable, corner-heavy portfolios from noisy expected returns. Black-Litterman fixes this by anchoring to market equilibrium and blending in your own views with explicit, quantified confidence.
How To Use This Model
Reading This Tool
Set the market-cap weights and covariance-driving risk aversion, then add one view on an asset class with a confidence level.
The model reverse-engineers implied equilibrium returns from market weights, blends in your view using Bayesian updating, and re-optimizes. Check the Insights and Methodology tabs for the full interpretation and the theory behind each step.
Market & View Inputs
Equilibrium vs. Posterior (Blended) Returns
-Equities: Equilibrium → Posterior
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Bonds: Equilibrium → Posterior
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Commodities: Equilibrium → Posterior
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Market Weights vs. Black-Litterman Optimal Weights