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    Python for Financial Analysis and Algorithmic Trading

    Posted By: lucky_aut
    Python for Financial Analysis and Algorithmic Trading

    Python for Financial Analysis and Algorithmic Trading
    Last updated 12/2020
    Duration: 16h39m | .MP4 1280x720, 30 fps(r) | AAC, 44100 Hz, 2ch | 6.45 GB
    Genre: eLearning | Language: English

    Learn numpy , pandas , matplotlib , quantopian , finance , and more for algorithmic trading with Python!

    What you'll learn
    Use NumPy to quickly work with Numerical Data
    Use Pandas for Analyze and Visualize Data
    Use Matplotlib to create custom plots
    Learn how to use statsmodels for Time Series Analysis
    Calculate Financial Statistics, such as Daily Returns, Cumulative Returns, Volatility, etc..
    Use Exponentially Weighted Moving Averages
    Use ARIMA models on Time Series Data
    Calculate the Sharpe Ratio
    Optimize Portfolio Allocations
    Understand the Capital Asset Pricing Model
    Learn about the Efficient Market Hypothesis
    Conduct algorithmic Trading on Quantopian

    Requirements
    Some knowledge of programming (preferably Python)
    Ability to Download Anaconda (Python) to your computer
    Basic Statistics and Linear Algebra will be helpful
    Description
    Welcome to Python for Financial Analysis and Algorithmic Trading! Are you interested in how people use Python to conduct rigorous financial analysis and pursue algorithmic trading, then this is the right course for you!


    This course will guide you through everything you need to know to use Python for Finance and Algorithmic Trading! We'll start off by learning the fundamentals of Python, and then proceed to learn about the various core libraries used in the Py-Finance Ecosystem, including jupyter, numpy, pandas, matplotlib, statsmodels, zipline, Quantopian, and much more!


    We'll cover the following topics used by financial professionals:


    Python Fundamentals
    NumPy for High Speed Numerical Processing
    Pandas for Efficient Data Analysis
    Matplotlib for Data Visualization
    Using pandas-datareader and Quandl for data ingestion
    Pandas Time Series Analysis Techniques
    Stock Returns Analysis
    Cumulative Daily Returns
    Volatility and Securities Risk
    EWMA (Exponentially Weighted Moving Average)
    Statsmodels
    ETS (Error-Trend-Seasonality)
    ARIMA (Auto-regressive Integrated Moving Averages)
    Auto Correlation Plots and Partial Auto Correlation Plots
    Sharpe Ratio
    Portfolio Allocation Optimization
    Efficient Frontier and Markowitz Optimization
    Types of Funds
    Order Books
    Short Selling
    Capital Asset Pricing Model
    Stock Splits and Dividends
    Efficient Market Hypothesis
    Algorithmic Trading with Quantopian
    Futures Trading
    Who this course is for:
    Someone familiar with Python who wants to learn about Financial Analysis!


    More Info