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Hi @dllussier!
My team and I have come up with a variety of classifier models from this article and I was wondering if you had some suggestions about which ones would be good ones to start with:
NON-LINEAR
- Nearest Neighbors (K-NN) (Cover and Hart, 1967) with K=1 and Euclidean distance metric
- Gaussian Naïve Bayes (GNB)
- Random Forests Classifier (RF) (Breiman, 2001) @anproulx
- Decision trees
LINEAR (sparse l_1 regularization)
- Support Vector Classification (SVC)
- Logistic Regression (Hastie et al., 2009)
NON-SPARSE LINEAR (l_2 regularization)
- Ridge classification
- SVC
- Logistic regression
We are thinking of starting with supervised learning and then perhaps branching out to unsupervised learning if we have time.
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