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Scala-Adult

Hadoop Scala Project DS

I’m going to use this data for my Project; http://archive.ics.uci.edu/ml/datasets/Adult

Project Representation Here : https://prezi.com/view/ZzLta04v1LafKOUJQyIL/

Project Report Here : https://prezi.com/i/y-ovfepik9vt/hadoop/

Attribute Information

Listing of attributes:

>50K, <=50K. 

age: continuous. 
workclass: Private, Self-emp-not-inc, Self-emp-inc, Federal-gov, Local-gov, State-gov, Without-pay, Never-worked. 
fnlwgt: continuous. 
education: Bachelors, Some-college, 11th, HS-grad, Prof-school, Assoc-acdm, Assoc-voc, 9th, 7th-8th, 12th, Masters, 1st-4th, 10th, Doctorate, 5th-6th, Preschool. 
education-num: continuous. 
marital-status: Married-civ-spouse, Divorced, Never-married, Separated, Widowed, Married-spouse-absent, Married-AF-spouse. 
occupation: Tech-support, Craft-repair, Other-service, Sales, Exec-managerial, Prof-specialty, Handlers-cleaners, Machine-op-inspct, Adm-clerical, Farming-fishing, Transport-moving, Priv-house-serv, Protective-serv, Armed-Forces. 
relationship: Wife, Own-child, Husband, Not-in-family, Other-relative, Unmarried. 
race: White, Asian-Pac-Islander, Amer-Indian-Eskimo, Other, Black. 
sex: Female, Male. 
capital-gain: continuous. 
capital-loss: continuous. 
hours-per-week: continuous. 
native-country: United-States, Cambodia, England, Puerto-Rico, Canada, Germany, Outlying-US(Guam-USVI-etc), India, Japan, Greece, South, China, Cuba, Iran, Honduras, Philippines, Italy, Poland, Jamaica, Vietnam, Mexico, Portugal, Ireland, France, Dominican-Republic, Laos, Ecuador, Taiwan, Haiti, Columbia, Hungary, Guatemala, Nicaragua, Scotland, Thailand, Yugoslavia, El-Salvador, Trinadad&Tobago, Peru, Hong, Holand-Netherlands.

As you can see data has multiple attributes to examine. I want to focus on mostly race and education status later on if they have income-high. For that reason I’m planning to change race as White – non White and want to understand if income_high related to education or race more.

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