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07 Random Forest

07 Random Forest
Exercise: Random Forest (Regression)Build a Random Forest model to predict the price of a room.1.1) Execute the workflow below. It reads and preprocesses the Airbnbdata.1.2) Partition the data into a training set (70%) and a test set (30%). Applyrandom sampling.1.3) Train a Random Forest (Regression) model to predict the price column1.4) Apply the model to the test set1.5) Evaluate the model's performance with the Numeric Scorer node1.6) How much in average does the prediction deviate from the actualroom price per night? How much in percentage terms? 3589128241 % Read AB_NYC_2019dataPredict priceR2 and error metrics InteractiveData Cleaning CSV Reader Replace 0 price byneighborhood average Partitioning Random Forest Learner(Regression) Random Forest Predictor(Regression) Numeric Scorer Exercise: Random Forest (Regression)Build a Random Forest model to predict the price of a room.1.1) Execute the workflow below. It reads and preprocesses the Airbnbdata.1.2) Partition the data into a training set (70%) and a test set (30%). Applyrandom sampling.1.3) Train a Random Forest (Regression) model to predict the price column1.4) Apply the model to the test set1.5) Evaluate the model's performance with the Numeric Scorer node1.6) How much in average does the prediction deviate from the actualroom price per night? How much in percentage terms? 3589128241 % Read AB_NYC_2019dataPredict priceR2 and error metrics InteractiveData Cleaning CSV Reader Replace 0 price byneighborhood average Partitioning Random Forest Learner(Regression) Random Forest Predictor(Regression) Numeric Scorer

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