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4. For each of the following, answer briefly (no formal math needed explain intuitively). (30 points) (a) Given a training dataset with N features, is
4. For each of the following, answer briefly (no formal math needed explain intuitively). (30 points) (a) Given a training dataset with N features, is the number of nodes in any decision tree learned from this dataset guaranteed to be lesser than or equal to N? Why or why not? Briefly explain. (10 points) (b) Suppose we have a lnearly separable dataset, and we divide the data into training and validation sets. Will a perceptron learned on the training dataset (assuming gradient decent works perfectly wel) be guaranteed to have i) 0 error on the training dataset 0 error on the validation dataset. Briefly explain. (10 points) c Suppose your boss asks you design a ML algorithm for real-time prediction. Specifically, the requirement is that the ML algorithm needs to preform predic- tions very quickly. Can decision trees be used for such an application? Briefly explain your reasoning. (5 points) (d) Given a dataset where the dataset is not linearly-separable, and each of the fea- tures have continuous values, which of the following algorithms is more ideally suited a) perceptron b) decision-trees c neural-networks. Why? (5 points)
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