データサイエンス入門 | Học trực tuyến CNTT, học lập trình từ cơ bản đến nâng cao

Thông tin chung

This Introduction to Data Science course aims at providing learners with an overview of Data Science and its core concepts. Particularly, Data Science professionals will introduce definition and functions of Data Science as well as its tools and algorithm applied on our daily basis. Learners also have a chance to explore what skills they need to master to pursue a career in this field. Learners will learn about qualities that distinguish Data Science from other professionals. More importantly, learners will learn about analytics and vital roles of data scientists in this process as well as about story-telling and the importance of an effective final deliverable.

To begin the course, let’s take a few minutes to explore the course site. Review the material we’ll cover each week, and preview the assignments/projects/quizzes you’ll need to complete to pass the course.

Main concepts are delivered through videos, demos and hands-on exercises.

Mục tiêu môn học

Understand the basic concepts of Data Science

Interpret Data Science Topics

Acknowledge the application of Data Science

Comprehend and Practice with tool for data science

Understand the methodology used in data science, steps to solve data science problems from the problem, collecting and analyzing data, building algorithms and understanding feedback after the algorithm is installed put and use

Understand the basic concepts of descriptive statistics and probability

Trải nghiệm học tập

Module 1: What is Data Science?

Lesson 1: Defining Data Science and What Data Scientists Do

Lesson 2: Data Science Topics

Lesson 3: Data Science in Business

Lesson 4: Introducing Jupyter Notebooks

Module 2: Data Science Methodology

Lesson 5: From Problem to Approach

Lesson 6: From Requirements to Collection

Lesson 7: From Understanding to Preparation

Lesson 8: From Modeling to Evaluation

Lesson 9: From Deployment to Feedback

Module 3: Statistics & Probability

Lesson 10: Descriptive statistics

Lesson 11: Correlation and Regression

Lesson 12: Probability

Lesson 13: Probability Distributions

Module 4Python for Data Science

Lesson 14: Python Basics with Data Structures

Lesson 15: Python Advance with OOP and API

Lesson 16: Numpy in Python

Lesson 17: Working with data and Pandas

Nguồn học liệu

In modern times, each subject has numerous relevant studying materials including printed and online books. FUNiX Way does not provide a specific learning resource but offers recommendation for students to choose the most appropriate source to them. In the process of studying from many different sources based on that personal choice, students will be timely connected to a mentor to respond to their questions. All the assessments including multiple choice questions, exercises, projects and oral exams are designed, developed and conducted by FUNiX.  

Learners are under no obligation to choose a fixed learning material. They are encouraged to actively find and study from any appropriate sources including printed textbooks, MOOCs or websites. Students are on their own responsibilities in using these learning sources and ensuring full compliance with the source owners’ policies; except for the case in which they have an official cooperation with FUNiX. For further support, feel free to contact FUNiX Academic Department for detailed instructions. 

Learning resources are recommended below. It should be noted that listing these learning sources does not necessarily imply that FUNiX has an official partnership with the source’s owner: CourseratutorialspointedX TrainingUdemy or Standford.

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