Evaluation Metrics - Problem Set

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Q. In which scenario is the F1 Score particularly useful?
  • A. When false positives are more critical than false negatives
  • B. When false negatives are more critical than false positives
  • C. When the class distribution is balanced
  • D. When the class distribution is imbalanced
Q. In which scenario would you prioritize recall over precision?
  • A. When false positives are more costly than false negatives
  • B. When false negatives are more costly than false positives
  • C. When the dataset is balanced
  • D. When you need a high overall accuracy
Q. What does the area under the ROC curve (AUC) represent?
  • A. The probability that a randomly chosen positive instance is ranked higher than a randomly chosen negative instance
  • B. The overall accuracy of the model
  • C. The precision of the model
  • D. The recall of the model
Q. What is the main drawback of using accuracy as an evaluation metric?
  • A. It does not account for class imbalance
  • B. It is difficult to calculate
  • C. It only applies to binary classification
  • D. It does not provide insights into model performance
Q. What is the main limitation of using accuracy as a metric?
  • A. It does not account for class imbalance
  • B. It is difficult to calculate
  • C. It only applies to binary classification
  • D. It requires a large dataset
Q. What is the main limitation of using accuracy as an evaluation metric?
  • A. It does not account for false positives and false negatives
  • B. It is only applicable to regression problems
  • C. It requires a large dataset to be effective
  • D. It is difficult to calculate
Q. Which evaluation metric is most appropriate for a model predicting rare events?
  • A. Accuracy
  • B. Recall
  • C. F1 Score
  • D. Mean Squared Error
Q. Which metric is best for imbalanced datasets?
  • A. Accuracy
  • B. F1 Score
  • C. Precision
  • D. Recall
Q. Which metric would you use to evaluate a model that predicts whether an email is spam or not?
  • A. Mean Squared Error
  • B. Accuracy
  • C. F1 Score
  • D. R-squared
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