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University of Illinois Urbana Champaign - Data Mining Project 

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Data Mining Project
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Coursera 
Overview

Duration

11 hours

Total fee

Free

Mode of learning

Online

Official Website

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Credential

Certificate

Data Mining Project
Table of content
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  • Overview
  • Highlights
  • Course Details
  • Curriculum

Data Mining Project
 at 
Coursera 
Highlights

  • This Course Plus the Full Specialization.
  • Shareable Certificates.
  • Graded Programming Assignments.
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Data Mining Project
 at 
Coursera 
Course details

More about this course
  • Note: You should complete all the other courses in this Specialization before beginning this course.
  • This six-week long Project course of the Data Mining Specialization will allow you to apply the learned algorithms and techniques for data mining from the previous courses in the Specialization, including Pattern Discovery, Clustering, Text Retrieval, Text Mining, and Visualization, to solve interesting real-world data mining challenges. Specifically, you will work on a restaurant review data set from Yelp and use all the knowledge and skills you?ve learned from the previous courses to mine this data set to discover interesting and useful knowledge. The design of the Project emphasizes: 1) simulating the workflow of a data miner in a real job setting; 2) integrating different mining techniques covered in multiple individual courses; 3) experimenting with different ways to solve a problem to deepen your understanding of techniques; and 4) allowing you to propose and explore your own ideas creatively.
  • The goal of the Project is to analyze and mine a large Yelp review data set to discover useful knowledge to help people make decisions in dining. The project will include the following outputs:
  • 1. Opinion visualization: explore and visualize the review content to understand what people have said in those reviews.
  • 2. Cuisine map construction: mine the data set to understand the landscape of different types of cuisines and their similarities.
  • 3. Discovery of popular dishes for a cuisine: mine the data set to discover the common/popular dishes of a particular cuisine.
  • 4. Recommendation of restaurants to help people decide where to dine: mine the data set to rank restaurants for a specific dish and predict the hygiene condition of a restaurant.
  • From the perspective of users, a cuisine map can help them understand what cuisines are there and see the big picture of all kinds of cuisines and their relations. Once they decide what cuisine to try, they would be interested in knowing what the popular dishes of that cuisine are and decide what dishes to have. Finally, they will need to choose a restaurant. Thus, recommending restaurants based on a particular dish would be useful. Moreover, predicting the hygiene condition of a restaurant would also be helpful.
  • By working on these tasks, you will gain experience with a typical workflow in data mining that includes data preprocessing, data exploration, data analysis, improvement of analysis methods, and presentation of results. You will have an opportunity to combine multiple algorithms from different courses to complete a relatively complicated mining task and experiment with different ways to solve a problem to understand the best way to solve it. We will suggest specific approaches, but you are highly encouraged to explore your own ideas since open exploration is, by design, a goal of the Project.
  • You are required to submit a brief report for each of the tasks for peer grading. A final consolidated report is also required, which will be peer-graded.
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Data Mining Project
 at 
Coursera 
Curriculum

Orientation

Welcome to the Data Mining Project!

Orientation Overview

Syllabus

About the Discussion Forums

Updating Your Profile

MeTA Installation and Overview

Data Set and Toolkit Acquisition

Task 1 Overview

Task 1 Rubric

Task 2 - Cuisine Clustering and Map Construction

Task 2 Overview

Task 2 Rubric

Task 3 - Dish Recognition

Task 3 Overview

Task 3 Rubric

Task 4 & 5 - Popular Dishes and Restaurant Recommendation

Task 4 and 5 Overview

Task 4 and 5 Rubric

Task 6

Task 6 Overview

Task 6 Rubric

Final Report

Final Report Instructions

Final Report Rubric

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Data Mining Project
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