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pyrsm-single-prop

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Atualizado19 de junho de 2026 às 20:17

Run and interpret one-sample proportion tests in Python using the pyrsm library's `single_prop` class. Use this skill whenever a student or analyst wants to compare a sample proportion (a yes/no, success/failure, or two-level categorical outcome) to a hypothesized population proportion, choose between an exact binomial test and a z-test approximation, build or read a confidence interval for a proportion, decide whether brand preference / churn rate / response rate / defect rate differs from a benchmark, or work with the pyrsm package for any one-sample-proportion task — even if they don't explicitly say "pyrsm" or "single_prop". Triggers include phrases like "is the brand preference really 10%", "test whether response rate exceeds X", "one-sample binomial test", "build a 95% CI for a proportion", "compare a yes/no outcome to a benchmark", "what fraction of customers said yes vs the target", or any mention of testing a binary outcome's prevalence against a target value in a marketing/business analytics class.

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