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    Data Science With Python

    Posted By: lucky_aut
    Data Science With Python

    Data Science With Python
    Duration: 3h 53m | .MP4 1280x720, 30 fps(r) | AAC, 44100 Hz, 2ch | 1.28 GB
    Genre: eLearning | Language: English

    All about Data Science!

    What you'll learn:
    Explain Data Science in detail
    Explain Data Analytics in detail
    Understand the Statistical Analysis and Business
    Understand the Python Environment Setup and Essentials
    Describe Mathematical Computing with Python
    Describe Scientific Computing with Python
    Work on Data Manipulation with Pandas
    Work on Machine Learning with Scikit-Learn
    Understand the working of Natural Language Processing with Scikit Learn
    Perform Data Visualization in Python using Matplotlib
    Perform Web Scraping with BeautifulSoup
    Understand the Python Integration with Hadoop MapReduce and Spark

    Requirements:
    No prerequisites are required, as the course covers the concepts from the scratch. However, basic knowledge of Python would help.

    Description:
    About the Course:

    The “Data Science” course is an intermediate level course, curated exclusively for both beginners and professionals.
    The course covers the basics as well as the advanced level concepts. The course contains content based videos along with practical demonstrations, that performs and explains each step required to complete the task.

    Learning Objectives:

    By the end of the course, you will be able to learn about:
    Data Science in detail
    Sectors Using Data Science
    Purpose and Components of Python
    Data Analytics Process
    Exploratory Data Analysis (EDA)
    EDA-Quantitative Technique
    EDA - Graphical Technique
    Data Analytics Conclusion or Predictions
    Data Analytics Communication
    Data Types for Plotting
    Data Types and Plotting
    Introduction to Statistics
    Statistical and Non-statistical Analysis
    Major Categories of Statistics
    Statistical Analysis Considerations
    Population and Sample
    Statistical Analysis Process
    Data Distribution
    Dispersion
    Histogram
    Testing
    Correlation and Inferential Statistics
    Anaconda
    Installation of Anaconda Python Distribution
    Data Types with Python
    Basic Operators and Functions
    Numpy
    Creating and Printing an ndarray
    Class and Attributes of ndarray
    Basic Operations
    Activity-Slice It
    Copy and Views
    Mathematical Functions of Numpy
    Analyzing London Olympics Dataset
    Introduction to SciPy
    SciPy Sub Package - Integration and Optimization
    SciPy sub package
    Calculating Eigenvalues and Eigenvector
    Identifying the SciPy Sub Package
    Solving Linear Algebra problem using SciPy
    Performing CDF and PDF using Scipy
    Introduction to Pandas
    Understanding DataFrame
    View and Select Data
    Missing Values
    Data Operations
    File Read and Write Support
    Pandas SQLOperation
    Analyzing NewYork city fire department Dataset
    Introduction to Machine Learning Approach
    How it Works?
    Supervised Learning Model Considerations
    Supervised Learning Models - Linear Regression
    Supervised Learning Models - Logistic Regression
    Introduction to Unsupervised Learning Models
    Pipeline
    Model Persistence and Evaluation
    Building a model to predict Diabetes
    Introduction to NLP
    Applications of NLP
    NLP Libraries-Scikit
    Extraction Considerations
    Scikit Learn-Model Training and Grid Search
    Sentiment Analysis using NLP
    Introduction to Data Visualization
    Line Properties
    (x,y) Plot and Subplots
    Types of Plots
    Drawing a pair plot using seaborn library
    Web Scraping and Parsing
    Understanding and Searching the Tree
    Navigating options
    Navigating a Tree
    Modifying the Tree
    Parsing and Printing the Document
    Web Scraping of Any Website
    Identifying the reasons why Big Data Solutions are Provided for Python.
    Components of Hadoop Core
    Python Integration with HDFS using Hadoop Streaming
    Python Integration with Spark using PySpark
    Using PySpark to Determine Word Count

    …and much more!
    If you're new to this technology, don't worry - the course covers the topics from the basics. If you've done some programming before, you should pick it up quickly.
    If you’re a programmer looking to switch into an exciting new career track, this course will teach you the basic techniques used by real-world industry Data Scientist. These are topics any successful technologist absolutely needs to know about, so what are you waiting for? Enroll now

    Who this course is for:
    Beginner Python developers willing to learn Data Science
    Candidates willing to make a career in Data Science
    IT professionals willing to upskill their knowledge in Data Science
    Freshers/ Beginners who starting their career in this field

    More Info

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