Introduction to Computational Thinking and Data Science

Course Feature
  • Cost
    Free
  • Provider
    ThaiMOOC
  • Certificate
    Paid Certification
  • Language
    English
  • Start Date
    18th Oct, 2023
  • Learners
    No Information
  • Duration
    16.00
  • Instructor
    Eric Grimson and John Guttag
Next Course
4.5
9,131 Ratings
Learn to use computation to solve real-world problems with 6.00.2x. This course provides an introduction to computational problem solving and data science, with topics such as advanced programming in Python 3, knapsack problem, graphs and graph optimization, dynamic programming, plotting with the pylab package, random walks, probability, distributions, Monte Carlo simulations, curve fitting, and statistical fallacies.
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Course Overview

❗The content presented here is sourced directly from ThaiMOOC platform. For comprehensive course details, including enrollment information, simply click on the 'Go to class' link on our website.

Updated in [June 30th, 2023]

Introduction to Computational Thinking and Data Science is a course designed to teach students how to use computation to accomplish a variety of goals. This course is aimed at students with some prior programming experience in Python and a rudimentary knowledge of computational complexity. Students will learn advanced programming in Python 3, knapsack problem, graphs and graph optimization, dynamic programming, plotting with the pylab package, random walks, probability, distributions, Monte Carlo simulations, curve fitting, and statistical fallacies. Through this course, students will gain a better understanding of how to use computation to solve problems and gain insight into data science.

[Applications]
Upon completion of 6.00.2x, students can apply the knowledge and skills acquired to a variety of tasks. These include writing programs to simulate physical systems, creating data visualizations to better understand data, and using Monte Carlo simulations to solve complex problems. Additionally, students can use the concepts of computational thinking to develop algorithms to solve problems in a variety of fields, such as finance, engineering, and medicine.

[Career Paths]
One job position path that is recommended to learners of this course is a Data Scientist. Data Scientists are responsible for analyzing large amounts of data and using their findings to inform decisions and strategies. They use a variety of techniques, such as machine learning, statistical analysis, and data visualization, to uncover insights from data. Data Scientists must be able to communicate their findings to stakeholders in a clear and concise manner.

The development trend of Data Scientists is very positive. As businesses become increasingly data-driven, the demand for Data Scientists is expected to continue to grow. Companies are investing more in data-driven decision making, and Data Scientists are becoming increasingly important in helping organizations make informed decisions. Additionally, the emergence of new technologies, such as artificial intelligence and machine learning, is creating new opportunities for Data Scientists to explore and develop.

[Education Paths]
The recommended educational path for learners who have completed 6.00.2x is to pursue a degree in Computational Thinking and Data Science. This degree typically requires a combination of courses in mathematics, computer science, and statistics. Students will learn how to use computational methods to solve problems, analyze data, and develop algorithms. They will also gain an understanding of the principles of data science, including data mining, machine learning, and artificial intelligence. Additionally, they will learn how to use programming languages such as Python, R, and Java to create data-driven applications.

The development trend of this degree is to focus on the application of computational thinking and data science in various fields, such as healthcare, finance, and business. Students will learn how to use data to make decisions, develop predictive models, and create automated systems. They will also gain an understanding of the ethical implications of data science and the importance of data privacy. Furthermore, they will learn how to use data visualization tools to communicate their findings.

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