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Pandas with Python for Data Science

  • Development
  • Apr 19, 2025
SynopsisPandas with Python for Data Science, available at $49.99, has...
Pandas with Python for Data Science  No.1

Pandas with Python for Data Science, available at $49.99, has an average rating of 4.55, with 58 lectures, based on 159 reviews, and has 23470 subscribers.

You will learn about You will get to learn about the basics of pandas and python libraries, what it can offer, and what kind of problems could be solved using these libraries. Data analysis and visualization using Pandas. This course is ideal for individuals who are This Pandas and NumPy Tutorial Course is designed for professionals with different backgrounds who are willing to learn data science in simple and easy steps using Python as a programming language. If you are into any kind of data and analytics work on any platform then this course is very useful for you or Managers and seniors should look up to this course as the current market is at its transition stage where you must have a good understanding of data and analysis techniques. It is particularly useful for This Pandas and NumPy Tutorial Course is designed for professionals with different backgrounds who are willing to learn data science in simple and easy steps using Python as a programming language. If you are into any kind of data and analytics work on any platform then this course is very useful for you or Managers and seniors should look up to this course as the current market is at its transition stage where you must have a good understanding of data and analysis techniques.

Enroll now: Pandas with Python for Data Science

Summary

Title: Pandas with Python for Data Science

Price: $49.99

Average Rating: 4.55

Number of Lectures: 58

Number of Published Lectures: 58

Number of Curriculum Items: 58

Number of Published Curriculum Objects: 58

Original Price: $89.99

Quality Status: approved

Status: Live

What You Will Learn

  • You will get to learn about the basics of pandas and python libraries, what it can offer, and what kind of problems could be solved using these libraries.
  • Data analysis and visualization using Pandas.
  • Who Should Attend

  • This Pandas and NumPy Tutorial Course is designed for professionals with different backgrounds who are willing to learn data science in simple and easy steps using Python as a programming language. If you are into any kind of data and analytics work on any platform then this course is very useful for you
  • Managers and seniors should look up to this course as the current market is at its transition stage where you must have a good understanding of data and analysis techniques.
  • Target Audiences

  • This Pandas and NumPy Tutorial Course is designed for professionals with different backgrounds who are willing to learn data science in simple and easy steps using Python as a programming language. If you are into any kind of data and analytics work on any platform then this course is very useful for you
  • Managers and seniors should look up to this course as the current market is at its transition stage where you must have a good understanding of data and analysis techniques.
  • The goal of this course is to make the trainees expert on working with Pandas python libraries. This training will be helping folks to achieve proficiency in introducing the concept of data science with the help of libraries that we will be covering here. This course has been focused on training on Pandas. All the concepts that revolve around these libraries will be detailed very precisely through this course. The sole objective of this course is to enrich the trainees with the entire set of skills that are required to work with these python-based libraries. In this unit, you will get to learn about the basics of these libraries, what it can offer, and what kind of problems could be solved using these libraries. The initial hour in this unit has been given to explain the introduction while the rest of the time has been devoted to explaining the main concepts.

    Pandas is an open-source, BSD-licensed Python library providing high-performance, easy-to-use data structures and data analysis tools for the Python programming language. This Python course will get you up and running with using Python for data analysis and visualization. The training will include the following:

  • Installing Jupyter

  • Jupyter Environment

  • Read data using Pandas

  • Series vs Data Frame

  • Basic Operations in Pandas

  • Analyze the imported data

  • Renaming Columns

  • Sorting

  • Filtering Data

  • Filtering Function

  • Read Selective Columns & Rows

  • Course Curriculum

    Chapter 1: Introduction

    Lecture 1: Introduction to Pandas with Python

    Chapter 2: Data Set

    Lecture 1: Understanding Jupiter Environment

    Lecture 2: Reading the Data Set

    Lecture 3: Series and Data Frame

    Lecture 4: Operations in Data Set

    Lecture 5: More on Panda Functions

    Lecture 6: Column Names and Operation

    Lecture 7: Removing Columns and Rows

    Lecture 8: Sorting Data Frame

    Chapter 3: Data Analysis

    Lecture 1: Filter Multiple Criteria

    Lecture 2: Selective Columns and Rows

    Lecture 3: Data Frame and Series

    Lecture 4: Axis Parameter

    Lecture 5: String Methods in Pandas

    Lecture 6: Changing the Data Types

    Lecture 7: Example of Data Type Change

    Lecture 8: Group by Functions

    Lecture 9: Functions on Series

    Lecture 10: Plotting series in Pandas

    Lecture 11: Dealing with Null Values

    Lecture 12: Uses of Index

    Lecture 13: Column in Index

    Lecture 14: Output of Data

    Lecture 15: Functions of iX Method

    Lecture 16: InPlace Parameter

    Lecture 17: Inspecting the Space

    Lecture 18: Reducing the Space

    Lecture 19: Using in Country Series

    Lecture 20: Creating Manual Data Frame

    Lecture 21: Random Sampling with Pandas

    Lecture 22: Concept of Dummy Coding

    Lecture 23: Creating Dummified Values

    Lecture 24: Duplicates in Data Frame

    Lecture 25: Functions for Date and Time

    Lecture 26: Setting with Copy Warning

    Lecture 27: Example on Copy Warning

    Lecture 28: Changing the Display Option

    Lecture 29: Formatting the Data

    Lecture 30: Tricks for Display Options

    Lecture 31: Data with Rows and Columns

    Lecture 32: Converting Data Frame

    Chapter 4: Azure Data Lake

    Lecture 1: Introduction to Azure Data Lake

    Lecture 2: Merging Data Frames

    Lecture 3: Shaping a Data Frame

    Lecture 4: Filling NA Values

    Lecture 5: Importing Time Series Data

    Lecture 6: Working with Interpolate Method

    Lecture 7: Stacking and Unstacking

    Lecture 8: Stacking and Unstacking for 3 Levels

    Lecture 9: Concept of Crosstab

    Lecture 10: More on Crosstab

    Lecture 11: More Options with Crosstab

    Lecture 12: Functions of Pivot

    Lecture 13: Pivot Table Method

    Lecture 14: Example on Pivot Table

    Lecture 15: Data Frame to CSV File

    Lecture 16: Using Excel Functions

    Chapter 5: Summary

    Lecture 1: Summary on Pandas

    Instructors

  • Pandas with Python for Data Science  No.2
    Exam Turf
    #1 Brand for Competitive Exam Preparation and Test Series
  • Rating Distribution

  • 1 stars: 2 votes
  • 2 stars: 3 votes
  • 3 stars: 17 votes
  • 4 stars: 57 votes
  • 5 stars: 80 votes
  • Frequently Asked Questions

    How long do I have access to the course materials?

    You can view and review the lecture materials indefinitely, like an on-demand channel.

    Can I take my courses with me wherever I go?

    Definitely! If you have an internet connection, courses on Udemy are available on any device at any time. If you don’t have an internet connection, some instructors also let their students download course lectures. That’s up to the instructor though, so make sure you get on their good side!