Support Vector Machines in Python, From Start to Finish

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Dans ce Guided Project, vous :

Import data into, and manipulating a pandas dataframe

Format the data for a support vector machine, including One-Hot Encoding and missing data.

Optimize parameters for the radial basis function and classification

Build, evaluate, draw and interpret a support vector machine

Clock4 hours/week
IntermediateIntermédiaire
CloudAucun téléchargement requis
VideoVidéo en écran partagé
Comment DotsAnglais
LaptopOrdinateur de bureau uniquement

In this lesson we will built this Support Vector Machine for classification using scikit-learn and the Radial Basis Function (RBF) Kernel. Our training data set contains continuous and categorical data from the UCI Machine Learning Repository to predict whether or not a patient has heart disease. This course runs on Coursera's hands-on project platform called Rhyme. On Rhyme, you do projects in a hands-on manner in your browser. You will get instant access to pre-configured cloud desktops containing all of the software and data you need for the project. Everything is already set up directly in your Internet browser so you can just focus on learning. For this project, you’ll get instant access to a cloud desktop with (e.g. Python, Jupyter, and Tensorflow) pre-installed. Prerequisites: In order to be successful in this project, you should be familiar with programming in Python and the concepts behind Support Vector Machines, the Radial Basis Function, Regularization, Cross Validation and Confusion Matrices. Notes: - You will be able to access the cloud desktop 5 times. However, you will be able to access instructions videos as many times as you want. - This course works best for learners who are based in the North America region. We’re currently working on providing the same experience in other regions.

Les compétences que vous développerez

Data ScienceMachine LearningPython ProgrammingSupport Vector Machine (SVM)classification

Apprendrez étape par étape

Votre enseignant(e) vous guidera étape par étape, grâce à une vidéo en écran partagé sur votre espace de travail :

  1. Task 1: Import the modules that will do all the work

  2. Task 2: Import the data

  3. Task 3: Missing Data Part 1: Identifying Missing Data

  4. Task 4: Missing Data Part 2: Dealing With Missing Data

  5. Task 5: Format Data Part 1: Split the Data into Dependent and Independent Variables

  6. Task 6: Format the Data Part 2: One-Hot Encoding

  7. Task 7: Format the Data Part 3: Centering and Scaling

  8. Task 8: Build A Preliminary Support Vector Machine

  9. Task 9: Optimize Parameters with Cross Validation

  10. Task 10: Building, Evaluating, Drawing, and Interpreting the Final Support Vector Machine

How Guided Projects work

Votre espace de travail est un bureau cloud situé dans votre navigateur, aucun téléchargement n'est requis.

Votre enseignant(e) vous guide étape par étape dans une vidéo en écran partagé

Foire Aux Questions

Foire Aux Questions

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