%INCLUDE{CSC310ForSyllabus}% ---++ Details * Professor: Arisoa Randrianasolo * Office: Online via Zoom. * Office hours MWF:10-11am, 1-2pm, 3-5pm * Class Time: Online * Class Location: Online * Textbook: No text required. ---++ Course Content The course will consist of lectures (online), labs and projects. ---+++ Policies * [[AcceptableWork][Integrity]] * [[LatePolicy ]] ---+++ Assignments * Weekly Labs contribute to 70% of your final grade * Midterm project 15% of your final grade * Final project 15% of your final grade ---+++ Grades Your grades are made up of: * Grade scale * 93% <= average <= 100% -> A * 90% <= average < 93% -> A- * 87% <= average < 90% -> B+ * 83% <= average < 87% -> B * 80% <= average < 83% -> B- * 77% <= average < 80% -> C+ * 73% <= average < 77% -> C * 70% <= average < 73% -> C- * 67% <= average < 70% -> D+ * 63% <= average < 67% -> D * 60% <= average < 63% -> D- * 0% <= average < 60% -> F ---+++ Tentative Schedule | Week | Topics and Activities | | 1 | Jupiter lab and python essential (identation,loop,selection, list) | | 2 | python reading from file | | 3 | Intro to supervised learnig: Linear regression | | 4 | K-nearest neighbor | | 5 | Naïve Bayes | | 6 | Support Vector Machine | | 7 | Support Vector Machine with Kernels | | 8 | Midterm Project | | 9 | Neural Network (identity) | | 10 | Neural Network (other activation functions) & deep network | | 11 | Intro to unsupervised and Principal Component Analysis | | 12 | Kmeans clustering | | 13 | Density Based clustering | | 14 | Agglomerative clustering | | 15-16 | Final Project | %INCLUDE{CampusPolicies2021}%
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Topic revision: r3 - 2022-08-08 - arisoarandrianasolo
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