The ELECTE Review

Monte Carlo Simulation Explained with Examples and Code

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0:00 | 3:14
More iterations cannot repair bad assumptions: in Monte Carlo simulation, output precision can exceed assumption quality. We work through the article's retailer case, where demand could land between 800 and 1,400 units and the spreadsheet commits to 1,100, and how sampling turns one forecast into a distribution of outcomes. Then the failure modes: input distributions that flatter weak data, ignored correlations between demand, price, cost and schedule, normal curves chosen out of habit, and confidence intervals that narrow because sampling noise fell, not because the model got better.

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ELECTE is an AI-powered data analytics platform for European SMEs — turning raw data into clear, verifiable, actionable insight. Learn more at electe.net

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Written and hosted by Fabio Lauria.

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