Order the diagnostic reasoning steps used to conclude the 10%/11%/20% algorithm has avoidable bias and data mismatch but not high variance.
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What does the 1% gap between training error (10%) and training-dev error (11%) indicate in the ML Yearning scenario?
True or False: An algorithm with 10% training error, 11% training-dev error, and 20% dev error suffers from high variance on the training set distribution.
With 10% training error, 11% training-dev error, and 20% dev error, the algorithm suffers from high avoidable bias and _____, but not high variance.
Match each error gap from the 10%/11%/20% scenario to the ML problem it diagnoses.
Order the diagnostic reasoning steps used to conclude the 10%/11%/20% algorithm has avoidable bias and data mismatch but not high variance.
Which combination of problems does an algorithm with 10% training error, 11% training-dev error, and 20% dev error have (assuming ~0% human-level error)?
True or False: In the 10%/11%/20% scenario, data mismatch contributes a larger performance drop than variance when going from training to dev error.
In the 10%/11%/20% scenario, the gap between training error and _____ error is used to assess variance on the training set distribution.
Match each ML problem type to the error evidence that confirms or rules it out in the 10%/11%/20% scenario.
Order the three error measurements from lowest to highest as reported in ML Yearning's high-avoidable-bias and data-mismatch scenario.