[Chapter 9] k-Nearest Neighbors for Classification In the k-Nearest Neighbors method for classification, you set k = 1 to 20 and the data mining procedure reported the best k = 10. The table below gives the 10 nearest neighbors in the training set for a new observation and the class membership for each neighbor. Neighbor 2 3 4 5 6 Class 0 1 1 0 1 Answer the following questions based on the above information. 1 1 O Cannot be determined; more information is needed. Class 1 Question 33 If the cutoff value is 0.50, the new observation should be classified as Class 0 7 0 8 1 9 0 10 1
[Chapter 9] k-Nearest Neighbors for Classification In the k-Nearest Neighbors method for classification, you set k = 1 to 20 and the data mining procedure reported the best k = 10. The table below gives the 10 nearest neighbors in the training set for a new observation and the class membership for each neighbor. Neighbor 2 3 4 5 6 Class 0 1 1 0 1 Answer the following questions based on the above information. 1 1 O Cannot be determined; more information is needed. Class 1 Question 33 If the cutoff value is 0.50, the new observation should be classified as Class 0 7 0 8 1 9 0 10 1
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