Question: Your team developed a machine learning tool for a hospital. The tool takes X - ray images as inputs, and for each image input, it
Your team developed a machine learning tool for a hospital. The tool takes Xray images as inputs, and for each image input, it outputs the decision on whether or not lung cancer is detected from the Xray. You learned from the hospital that of people who took the ray do not have lung cancer. If a patient took multiple Xray exams, only the most recent one would appear in the dataset. Your model achieved accuracy, meaning that of the decisions your model made are correct. Which of the following statements is incorrect?
The machine learning model you developed is very effective, because it is correct of the time, which is a very high number.
The machine learning model you developed is not very effective in the accuracy aspect, because a naive model that predicts all Xray images to be cancerfree will have accuracy, higher than the your model achieved.
In addition to accuracy, it might be beneficial to evaluate the precision proportion of true cancer in the predicted cancer and recall proportion of true cancer identified
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