A publisher plans to boost the sales of its most popular magazine by sending out promotional mails. We refer to a customer as a responder if he/she subscribes to the magazine for the next year after receiving a promotional mail. Otherwise the customer is referred to as a non-responder. Denote responder by C1 and non-responder by C2. The publisher has built a model to classify each customer as either a responder or a non-responder. In practice only 1% of the customers are responders, and the remaining 99% are non-responders. In order to build an unbiased model, the publisher employed the oversampling method in creating the training set and the validation set, such that both datasets contain 50% responders and 50% non-responders. The validation confusion matrix is given below.   Actual Class C1 C2 Predicted Class C1 645 112 C2 255 788   Round your answers to 3 digits after the decimal point. The oversampling factor of C1 is  . The oversampling factor of C2 is  . Please adjust the above validation confusion matrix for oversampling, and compute the following accuracy measures using the adjusted confusion matrix. The Overall Accuracy is  . The Overall Error Rate is  . The False Discovery Rate (FDR) is  . The False Omission Rate (FOR) is  . The Precision is  . The Specificity is  . The Sensitivity is  .

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A publisher plans to boost the sales of its most popular magazine by sending out promotional mails. We refer to a customer as a responder if he/she subscribes to the magazine for the next year after receiving a promotional mail. Otherwise the customer is referred to as a non-responder. Denote responder by C1 and non-responder by C2. The publisher has built a model to classify each customer as either a responder or a non-responder. In practice only 1% of the customers are responders, and the remaining 99% are non-responders. In order to build an unbiased model, the publisher employed the oversampling method in creating the training set and the validation set, such that both datasets contain 50% responders and 50% non-responders. The validation confusion matrix is given below.

 

Actual Class

C1

C2

Predicted Class

C1

645

112

C2

255

788

 

Round your answers to 3 digits after the decimal point.

The oversampling factor of C1 is  .

The oversampling factor of C2 is  .

Please adjust the above validation confusion matrix for oversampling, and compute the following accuracy measures using the adjusted confusion matrix.

The Overall Accuracy is  .

The Overall Error Rate is  .

The False Discovery Rate (FDR) is  .

The False Omission Rate (FOR) is  .

The Precision is  .

The Specificity is  .

The Sensitivity is  .

 
 
 
 
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