Stock Technical Analysis with Python – Diego Fernandez

What you'll learn

Requirements

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Description

Full Course Content Last Update 12/2017

Learn stock technical analysis through a practical course with R statistical software using S&P 500® Index ETF historical data for back-testing. It explores main concepts from basic to expert level which can help you achieve better grades, develop your academic career, apply your knowledge at work or do research as experienced investor. All of this while referencing best practitioners in the field.

Become a Stock Technical Analysis Expert in this Practical Course with R

Become a Stock Technical Analysis Expert and Put Your Knowledge in Practice

Learning stock technical analysis is indispensable for finance careers in areas such as equity research and equity trading. It is also essential for academic careers in quantitative finance.  And it is necessary for experienced investors stock technical trading research and development.

But as learning curve can become steep as complexity grows, this course helps by leading you step by step using S&P 500® Index ETF prices historical data for back-testing to achieve greater effectiveness.

Content and Overview

This practical course contains 46 lectures and 7 hours of content. It’s designed for all stock technical analysis knowledge levels and a basic understanding of R statistical software is useful but not required.

At first, you’ll learn how to read or download S&P 500® Index ETF prices historical data to perform technical analysis operations by installing related packages and running script code on RStudio IDE. 

Next, you’ll calculate lagging stock technical indicators such as simple moving averages (SMA), exponential moving averages (EMA), Bollinger bands (BB), parabolic stop and reverse (SAR). After that, you’ll compute leading stock technical indicators such as average directional movement index (ADX), commodity channel index (CCI), moving averages convergence/divergence (MACD), rate of change (ROC), relative strength index (RSI), stochastic momentum index (SMI) and Williams %R.

Then, you’ll define single technical indicator based stock trading openings through price, double, bands, centerline and signal crossovers. Next, you’ll determine multiple technical indicators based trading opportunities through price crossovers which need to be confirmed by second technical indicator band crossover. Later, you’ll give shape to long-only stock trading strategies using single or multiple technical indicators trading occasions.

Finally, you’ll evaluate stock trading strategies performance with buy and hold as initial benchmark and comparing their annualized return for performance, annualized standard deviation for volatility or risk and annualized Sharpe ratio for risk adjusted return.

Who this course is for:

Get Stock Technical Analysis with Python – Diego Fernandez, Only Price $47


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