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The loan default dataset has 8 variables and 850 records, each record being loan default status for each customer. Each Applicant was rated as “Defaulted” or “Not-Defaulted”. New applicants for loan application can also be evaluated on these 8 predictor variables and classified as a default or non-default based on predictor variables.

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DarekarA/BankLoanDefault

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BankLoanDefault

-> The loan default dataset has 8 variables and 850 records, each record being loan default status for each customer. Each Applicant was rated as “Defaulted” or “Not-Defaulted”. New applicants for loan application can also be evaluated on these 8 predictor variables and classified as a default or non-default based on predictor variables.

-> Here we have a data set with following features, we need to go through each and every variable of it to understand and for better functioning. -> Size of Dataset Provided: -Rows : 850, Columns : 9 (includes 1 dependent variable) -> Missing Values: Yes ->Outliers Presented: Yes ->Below mentioned is a list of all the variable names and what they stand for: Attributes: ·
• Age : Age of each customer • Education : Education categories. • Employment : Employment status Corresponds to job status and being converted to numeric format. • Address : Geographic area -Converted to numeric values. • Income : Gross Income of each customer • debtinc : Individual’s debt payment to his or her gross income. • creddebt : debt-to-credit ratio is a measurement of how much you owe your creditors as a percentage of your available credit (credit limits) • othdebt : Any other debts

-> For Further details Please refer Loan Project Report.docx

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The loan default dataset has 8 variables and 850 records, each record being loan default status for each customer. Each Applicant was rated as “Defaulted” or “Not-Defaulted”. New applicants for loan application can also be evaluated on these 8 predictor variables and classified as a default or non-default based on predictor variables.

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