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| Les deux révisions précédentes Révision précédente Prochaine révision | Révision précédente | ||
| en:ddefiprod [2021/03/24 10:34] – [Bibliography] cpouet | en:ddefiprod [2024/06/28 15:18] (Version actuelle) – modification externe 127.0.0.1 | ||
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| + | =====Course unit: Data science project ===== | ||
| + | ==== Course metadata ==== | ||
| + | * Title in French: Projet data | ||
| + | * Course code: tba | ||
| + | * ECTS credits: 3 | ||
| + | * Teaching hours: 60h | ||
| + | * Type: advanced course | ||
| + | * Language of instruction: | ||
| + | * Coordinator: | ||
| + | * Instructor(s): | ||
| + | * //Last update 27/08/2021 by C. Pouet// | ||
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| + | ==== Brief description ==== | ||
| + | |||
| + | The course consists of a theoretical part and a practical part, simulating a business project. | ||
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| + | ==== Learning outcomes ==== | ||
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| + | * Understand the workflow of a data science project in a business context | ||
| + | * Be able to account for business (collection of needs, project lifecycle, communication) and technical (data, machine learning, scaling) constraints | ||
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| + | ==== Course content ==== | ||
| + | - Data science in business | ||
| + | * The main issues | ||
| + | * Examples of data project | ||
| + | - Starting a data science project | ||
| + | * The constraints of data science projects | ||
| + | * Finding data | ||
| + | * Acquiring information | ||
| + | * Playing with data | ||
| + | - Lifecycle of a project | ||
| + | * The Bias-Variance tradeoff | ||
| + | * Feature Selection | ||
| + | * Feature Engineering | ||
| + | * Defining a metric | ||
| + | - The basic models | ||
| + | * Regressions (linear, polynomial, penalized et logistic) | ||
| + | * Decision trees (random forest and gradient boosting) | ||
| + | - Focus Natural Language Processing (NLP) | ||
| + | * Word Embedding | ||
| + | * Example: Sentiment analysis | ||
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| + | ==== Bibliography ==== | ||
| + | Check the availability of the books below at [[https:// | ||
| + | * Zeng, A and Casari, A. Feature Engineering for Machine Learning. O' | ||
| + | * Müller, A. and Guido, S. Introduction to Machine Learning with Python. O' | ||
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