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result-sanity-reconciliation

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更新时间2026年6月1日 00:11

Verify processed tabular results with basic sanity checks before using or returning them. Use this skill after a pandas or SQL data-processing pipeline when you need to confirm that the final output has a reasonable row count, contains the expected columns, looks plausible in sample rows, and does not contain unexpected NaN values in critical fields. Focus on simple final-output verification with df.shape, df.columns, df.describe(), and df.isna().sum().

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