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GetFreeCourses.Co-Udemy-Algorithmic Stock Trading and Equity Investing with Python

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文件列表

  • 3. Equity Markets and Stock TradingInvesting/5. Investing vs. Trading.mp4 143.9 MB
  • 5. Equity Analysis with Python (Part 1)/4. yfinance API - first steps.mp4 109.2 MB
  • 7. Equity Analysis with Python (Part 2)/5. Market Value vs. Book Value (Part 1).mp4 106.5 MB
  • 6. Excursus How to avoid and debug Coding Errors (don´t skip!)/11. How to traceback more complex Errors.mp4 101.5 MB
  • 11. Financial Data Analysis and Performance Evaluation/16. (Non-) Normality of Financial Returns.mp4 101.2 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/18. Market Orders and Trades.mp4 92.8 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/50. Customization of Plots.mp4 88.2 MB
  • 30. Appendix 5 Object Oriented Programming (OOP)/12. Inheritance.mp4 87.6 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/30. Slicing Rows and Columns with loc (label-based indexing).mp4 84.8 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/13. Coding Exercise 7.mp4 81.2 MB
  • 5. Equity Analysis with Python (Part 1)/10. Stock Splits.mp4 78.3 MB
  • 17. Equity Portfolio Optimization and Analysis/5. Portfolio Optimization.mp4 78.0 MB
  • 5. Equity Analysis with Python (Part 1)/9. What´s the Adjusted Close Price.mp4 77.1 MB
  • 3. Equity Markets and Stock TradingInvesting/1. Asset Classes - Overview.mp4 76.4 MB
  • 23. Stock trading with Technical Indicators - Backtesting/3. Defining an SMA Crossover Strategy.mp4 75.3 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/9. Trading Costs - Commissions.mp4 75.3 MB
  • 15. ETF Investing and Index Replication Tracking/3. The S&P500 Index and its ETFs - Full Replication.mp4 75.2 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/33. Analyzing Numerical Series with unique(), nunique() and value_counts().mp4 75.0 MB
  • 11. Financial Data Analysis and Performance Evaluation/14. Comparing the Performance of Financial Instruments.mp4 74.4 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/55. Categorical Seaborn Plots.mp4 74.2 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/27. Selecting Rows with iloc (position-based indexing).mp4 72.3 MB
  • 29. Appendix 4 Advanced Pandas Time Series Topics/2. Filling NA Values with bfill, ffill and interpolation.mp4 71.7 MB
  • 30. Appendix 5 Object Oriented Programming (OOP)/1. Introduction to OOP and examples for Classes.mp4 71.2 MB
  • 5. Equity Analysis with Python (Part 1)/13. Saving and Loading Data (Local Files).mp4 71.2 MB
  • 7. Equity Analysis with Python (Part 2)/3. Price vs. Value and Market Efficiency.mp4 70.5 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/56. Seaborn Regression Plots.mp4 69.7 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/21. Create your very first Pandas DataFrame (from csv).mp4 69.5 MB
  • 15. ETF Investing and Index Replication Tracking/7. Index Tracking with Optimization (Part 1).mp4 69.1 MB
  • 5. Equity Analysis with Python (Part 1)/8. Dividends.mp4 67.7 MB
  • 11. Financial Data Analysis and Performance Evaluation/19. Rolling Statistics.mp4 66.6 MB
  • 1. Getting started/1. Did you know... (a Sneak Preview on Stock Investing).mp4 66.5 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/38. Changing Row Index with set_index() and reset_index().mp4 66.0 MB
  • 11. Financial Data Analysis and Performance Evaluation/9. Discrete Compounding.mp4 65.7 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/16. Contracts (Advanced).mp4 65.6 MB
  • 22. Technical Analysis with Python - Introduction/3. Technical Analysis - Applications and Use Cases.mp4 64.7 MB
  • 7. Equity Analysis with Python (Part 2)/6. Market Value vs. Book Value (Part 2).mp4 64.1 MB
  • 4. Installing Python and Jupyter Notebooks/2. Download and Install Anaconda.mp4 63.8 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/46. Handling NA Values missing Values.mp4 62.8 MB
  • 3. Equity Markets and Stock TradingInvesting/2. Equities vs. Fixed Income.mp4 62.6 MB
  • 11. Financial Data Analysis and Performance Evaluation/5. Price changes and Financial Returns.mp4 62.6 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/23. First Data Inspection.mp4 62.5 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/49. Visualization with Matplotlib (Intro).mp4 62.0 MB
  • 23. Stock trading with Technical Indicators - Backtesting/4. Vectorized Strategy Backtesting.mp4 62.0 MB
  • 22. Technical Analysis with Python - Introduction/8. Bar Size Granularity.mp4 61.8 MB
  • 6. Excursus How to avoid and debug Coding Errors (don´t skip!)/2. Test your debugging skills!.mp4 61.4 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/20. Historical Data (Bars).mp4 60.5 MB
  • 30. Appendix 5 Object Oriented Programming (OOP)/13. Inheritance and the super() Function.mp4 60.5 MB
  • 26. Appendix 1 Python (& Finance) Basics/38. Coding Exercise 3.mp4 60.2 MB
  • 11. Financial Data Analysis and Performance Evaluation/27. Margin Trading and Levered Returns (Part 2).mp4 59.9 MB
  • 23. Stock trading with Technical Indicators - Backtesting/7. The Backtester Class.mp4 59.6 MB
  • 5. Equity Analysis with Python (Part 1)/7. Data Frequency.mp4 58.7 MB
  • 8. Keystone Project - Loading Data and Stock Analysis/5. Stock Analysis and Comparison.mp4 57.9 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/44. Advanced Filtering with between(), isin() and ~.mp4 57.1 MB
  • 15. ETF Investing and Index Replication Tracking/5. The Russell 3000 Index and its ETFs - Representative Sampling.mp4 56.6 MB
  • 17. Equity Portfolio Optimization and Analysis/2. Creating Random Portfolios (Part 1).mp4 56.6 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/5. The first Trades on TWS.mp4 56.4 MB
  • 30. Appendix 5 Object Oriented Programming (OOP)/14. Adding meaningful Docstrings.mp4 56.2 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/10. Trading Costs - other (hidden) Costs.mp4 56.1 MB
  • 5. Equity Analysis with Python (Part 1)/6. Analysis Period.mp4 56.0 MB
  • 4. Installing Python and Jupyter Notebooks/4. How to work with Jupyter Notebooks.mp4 56.0 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/14. How to get Market Data.mp4 55.8 MB
  • 11. Financial Data Analysis and Performance Evaluation/24. Covariance and Correlation.mp4 55.1 MB
  • 11. Financial Data Analysis and Performance Evaluation/18. Resampling Smoothing of Financial Data.mp4 54.9 MB
  • 5. Equity Analysis with Python (Part 1)/1. Yahoo Finance - Overview.mp4 54.8 MB
  • 14. How to build and analyze a Stock Index/1. Financial Indices - an Overview.mp4 54.5 MB
  • 17. Equity Portfolio Optimization and Analysis/8. The Efficient Frontier.mp4 54.0 MB
  • 8. Keystone Project - Loading Data and Stock Analysis/2. How to load the Dow Jones Constituents from the Web.mp4 53.5 MB
  • 4. Installing Python and Jupyter Notebooks/3. How to open Jupyter Notebooks.mp4 53.4 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/15. Introduction of a Risk-Free Asset.mp4 53.0 MB
  • 6. Excursus How to avoid and debug Coding Errors (don´t skip!)/5. Omitting cells, changing the sequence and more.mp4 52.4 MB
  • 26. Appendix 1 Python (& Finance) Basics/12. Coding Exercise 1.mp4 51.8 MB
  • 3. Equity Markets and Stock TradingInvesting/3. Equities - Categories and Sub Classes.mp4 51.6 MB
  • 5. Equity Analysis with Python (Part 1)/12. Multiple Tickers.mp4 51.6 MB
  • 15. ETF Investing and Index Replication Tracking/8. Index Tracking with Optimization (Part 2).mp4 51.3 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/17. Coding Challenge Get Contracts for all DJIA Constituents.mp4 51.2 MB
  • 30. Appendix 5 Object Oriented Programming (OOP)/11. Adding more methods and performance metrics.mp4 51.1 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/13. Forward-looking Mean-Variance Optimization (MVO) Pitfalls (1).mp4 50.7 MB
  • 21. Trading Strategies - Overview/2. How to create your own Trading Strategies.mp4 50.2 MB
  • 11. Financial Data Analysis and Performance Evaluation/3. Normalizing Time Series to a Base Value (100).mp4 49.6 MB
  • 11. Financial Data Analysis and Performance Evaluation/7. Investment Multiple and CAGR.mp4 49.4 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/48. Summary Statistics and Accumulations.mp4 49.2 MB
  • 15. ETF Investing and Index Replication Tracking/6. ETF Investing with IBKR.mp4 49.0 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/6. Trading Hours.mp4 49.0 MB
  • 13. PART 2 ETF Trading & Equity Portfolio Investing with Python and IBKR/2. Investment Strategies, Indices, Portfolios & Benchmarks.mp4 48.3 MB
  • 30. Appendix 5 Object Oriented Programming (OOP)/5. The method get_data().mp4 48.2 MB
  • 14. How to build and analyze a Stock Index/4. Building the Dow Jones Industrial Average Index from scratch.mp4 48.2 MB
  • 11. Financial Data Analysis and Performance Evaluation/4. Coding Challenge #1.mp4 48.0 MB
  • 11. Financial Data Analysis and Performance Evaluation/21. Introduction to Currencies (Forex) and Trading.mp4 47.7 MB
  • 22. Technical Analysis with Python - Introduction/1. Technical Analysis vs Fundamental Analysis.mp4 47.4 MB
  • 26. Appendix 1 Python (& Finance) Basics/46. Coding Exercise 4.mp4 47.3 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/41. Filtering DataFrames (one Condition).mp4 47.0 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/31. Summary, Best Practices and Outlook.mp4 46.7 MB
  • 5. Equity Analysis with Python (Part 1)/11. Stocks from other Countries Exchanges.mp4 46.6 MB
  • 7. Equity Analysis with Python (Part 2)/8. Market Value vs. Book Value (Part 3).mp4 46.2 MB
  • 7. Equity Analysis with Python (Part 2)/9. How to load Financial Statements.mp4 45.9 MB
  • 26. Appendix 1 Python (& Finance) Basics/41. Intro to Strings.mp4 45.6 MB
  • 23. Stock trading with Technical Indicators - Backtesting/5. Strategy Optimization.mp4 45.3 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/22. Pandas Display Options and the methods head() & tail().mp4 45.0 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/61. Splitting with many Keys.mp4 44.3 MB
  • 11. Financial Data Analysis and Performance Evaluation/13. Simple Returns vs Log Returns ( Part 2).mp4 44.2 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/7. Crash Course Statistics Covariance and Correlation (Part 1).mp4 44.2 MB
  • 8. Keystone Project - Loading Data and Stock Analysis/7. Hot Topic How to load all exchange tickers (Indian Stock Market).mp4 44.1 MB
  • 15. ETF Investing and Index Replication Tracking/2. Index Replication Tracking - Intro.mp4 44.1 MB
  • 26. Appendix 1 Python (& Finance) Basics/48. Keywords pass, continue and break.mp4 44.0 MB
  • 15. ETF Investing and Index Replication Tracking/10. Index Tracking with Optimization (Part 4).mp4 44.0 MB
  • 26. Appendix 1 Python (& Finance) Basics/47. Conditional Statements.mp4 43.4 MB
  • 26. Appendix 1 Python (& Finance) Basics/35. Adding and removing Elements fromto Lists.mp4 43.1 MB
  • 11. Financial Data Analysis and Performance Evaluation/10. Continuous Compounding.mp4 42.9 MB
  • 15. ETF Investing and Index Replication Tracking/1. Why ETF Investing.mp4 42.8 MB
  • 14. How to build and analyze a Stock Index/8. Creating a Market Value-Weighted Stock Index with Python (Part 1).mp4 42.7 MB
  • 8. Keystone Project - Loading Data and Stock Analysis/3. Historical Prices (Time-Series Data).mp4 42.7 MB
  • 26. Appendix 1 Python (& Finance) Basics/22. Coding Exercise 2.mp4 42.6 MB
  • 7. Equity Analysis with Python (Part 2)/7. Liquidation Value.mp4 42.3 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/10. Correlation and the Portfolio Diversification Effect.mp4 42.2 MB
  • 15. ETF Investing and Index Replication Tracking/12. Index Tracking with Optimization (Part 6).mp4 42.2 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/4. TWS - First Steps.mp4 42.1 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/1. Welcome to IKBR.mp4 42.1 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/62. split-apply-combine.mp4 42.0 MB
  • 23. Stock trading with Technical Indicators - Backtesting/6. Transaction & Trading Costs (Part 1).mp4 42.0 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/12. Creating Numpy Arrays from Scratch.mp4 41.9 MB
  • 30. Appendix 5 Object Oriented Programming (OOP)/16. Coding Exercise Create your own Class.mp4 41.6 MB
  • 6. Excursus How to avoid and debug Coding Errors (don´t skip!)/10. Getting help on StackOverflow.com.mp4 41.4 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/60. Understanding the GroupBy Object.mp4 41.3 MB
  • 7. Equity Analysis with Python (Part 2)/2. Price, Shares Outstanding & Market Capitalization.mp4 41.2 MB
  • 11. Financial Data Analysis and Performance Evaluation/2. Initial Data Inspection and Visualization.mp4 40.7 MB
  • 27. Appendix 2 User-defined Functions/2. What´s the difference between Positional Arguments vs. Keyword Arguments.mp4 40.7 MB
  • 29. Appendix 4 Advanced Pandas Time Series Topics/4. Timezones and Converting (Part 2).mp4 40.5 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/19. Positions and Account Values.mp4 40.3 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/2. Numpy Arrays.mp4 40.0 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/45. Intro to NA Values missing Values.mp4 40.0 MB
  • 26. Appendix 1 Python (& Finance) Basics/50. Introduction to while loops.mp4 39.7 MB
  • 26. Appendix 1 Python (& Finance) Basics/45. Comparison, Logical and Membership Operators in Action.mp4 39.7 MB
  • 27. Appendix 2 User-defined Functions/8. Scope - easily explained.mp4 39.6 MB
  • 1. Getting started/2. How to get the best out of this course.mp4 39.3 MB
  • 30. Appendix 5 Object Oriented Programming (OOP)/4. The special method __init__().mp4 39.3 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/13. Contracts (Introduction).mp4 39.2 MB
  • 29. Appendix 4 Advanced Pandas Time Series Topics/1. Helpful DatetimeIndex Attributes and Methods.mp4 39.2 MB
  • 11. Financial Data Analysis and Performance Evaluation/12. Simple Returns vs Log Returns ( Part 1).mp4 38.9 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/37. First Steps with Pandas Index Objects.mp4 38.9 MB
  • 7. Equity Analysis with Python (Part 2)/1. Getting more Information on Stocks - the Ticker Object.mp4 38.9 MB
  • 15. ETF Investing and Index Replication Tracking/13. Optimization and out-sample Testing (Part 1).mp4 38.8 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/4. Portfolio Return (2-Asset-Case).mp4 38.4 MB
  • 30. Appendix 5 Object Oriented Programming (OOP)/8. The methods plot_prices() and plot_returns().mp4 38.3 MB
  • 26. Appendix 1 Python (& Finance) Basics/36. Mutable vs. immutable Objects (Part 1).mp4 38.2 MB
  • 14. How to build and analyze a Stock Index/7. Market Value-Weighted Index - Theory.mp4 38.0 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/34. Analyzing non-numerical Series with unique(), nunique(), value_counts().mp4 37.9 MB
  • 26. Appendix 1 Python (& Finance) Basics/19. Calculate FV and PV for many Cashflows.mp4 37.6 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/57. Seaborn Heatmaps.mp4 37.5 MB
  • 6. Excursus How to avoid and debug Coding Errors (don´t skip!)/4. The most commonly made Errors at a glance.mp4 37.2 MB
  • 22. Technical Analysis with Python - Introduction/6. How to customize Plotly Charts.mp4 37.0 MB
  • 26. Appendix 1 Python (& Finance) Basics/20. The Net Present Value - NPV (Theory).mp4 36.8 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/12. Forward-looking Optimization.mp4 36.8 MB
  • 22. Technical Analysis with Python - Introduction/7. Candlestick and OHLC Bar Charts.mp4 36.7 MB
  • 15. ETF Investing and Index Replication Tracking/4. Active Return and Active Risk (Tracking Error).mp4 36.2 MB
  • 19. Reverse Optimization and the Black-Litterman model/1. Introduction and Motivation.mp4 36.2 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/14. Forward-looking Mean-Variance Optimization (MVO) Pitfalls (2).mp4 36.1 MB
  • 14. How to build and analyze a Stock Index/9. Creating a Market Value-Weighted Stock Index with Python (Part 2).mp4 35.7 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/1. Modules, Packages and Libraries - No need to reinvent the Wheel.mp4 35.7 MB
  • 6. Excursus How to avoid and debug Coding Errors (don´t skip!)/12. Problems with the Python Installation.mp4 35.6 MB
  • 19. Reverse Optimization and the Black-Litterman model/4. Black-Litterman Step 2 Incorporating Investor Opinions.mp4 35.1 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/36. Sorting of Series and Introduction to the inplace - parameter.mp4 35.0 MB
  • 26. Appendix 1 Python (& Finance) Basics/40. Dictionaries.mp4 34.7 MB
  • 11. Financial Data Analysis and Performance Evaluation/6. Reward and Risk of Financial Instruments.mp4 34.3 MB
  • 22. Technical Analysis with Python - Introduction/2. Technical Analysis and the Efficient Market Hypothesis.mp4 34.1 MB
  • 11. Financial Data Analysis and Performance Evaluation/8. Compound Returns & Geometric Mean Return.mp4 33.7 MB
  • 1. Getting started/3. Course Overview.mp4 33.6 MB
  • 26. Appendix 1 Python (& Finance) Basics/17. For Loops - Iterating over Lists.mp4 33.6 MB
  • 8. Keystone Project - Loading Data and Stock Analysis/4. Cross-Sectional Data.mp4 33.4 MB
  • 26. Appendix 1 Python (& Finance) Basics/39. Tuples.mp4 33.3 MB
  • 29. Appendix 4 Advanced Pandas Time Series Topics/3. Timezones and Converting (Part 1).mp4 33.1 MB
  • 14. How to build and analyze a Stock Index/11. Comparison of weighting methods (Part 2).mp4 33.0 MB
  • 3. Equity Markets and Stock TradingInvesting/4. Top-Down vs. Bottom-Up.mp4 33.0 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/11. Multiple Asset Case.mp4 32.8 MB
  • 11. Financial Data Analysis and Performance Evaluation/1. Introduction and Overview.mp4 32.8 MB
  • 22. Technical Analysis with Python - Introduction/12. Support and Resistance Lines.mp4 32.6 MB
  • 6. Excursus How to avoid and debug Coding Errors (don´t skip!)/6. IndexErrors.mp4 32.6 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/16. How to slice 2-dim Numpy Arrays (Part 1).mp4 32.5 MB
  • 11. Financial Data Analysis and Performance Evaluation/26. Margin Trading and Levered Returns (Part 1).mp4 32.2 MB
  • 11. Financial Data Analysis and Performance Evaluation/23. Short Selling and Short Position Returns (Part 3).mp4 32.2 MB
  • 21. Trading Strategies - Overview/1. Trading Strategies - Overview.mp4 32.0 MB
  • 23. Stock trading with Technical Indicators - Backtesting/2. A simple Buy and Hold Strategy.mp4 31.9 MB
  • 27. Appendix 2 User-defined Functions/3. How to work with Default Arguments.mp4 31.9 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/10. Advanced Filtering & Bitwise Operators.mp4 31.7 MB
  • 8. Keystone Project - Loading Data and Stock Analysis/1. Project - Introduction.mp4 31.7 MB
  • 11. Financial Data Analysis and Performance Evaluation/17. Annualizing Return and Risk.mp4 31.6 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/9. Portfolio Risk (2-Asset-Case).mp4 31.5 MB
  • 14. How to build and analyze a Stock Index/3. Price-Weighted Index - Theory.mp4 31.4 MB
  • 5. Equity Analysis with Python (Part 1)/14. Coding Challenge.mp4 31.4 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/58. Removing Columns.mp4 31.1 MB
  • 15. ETF Investing and Index Replication Tracking/11. Index Tracking with Optimization (Part 5).mp4 31.1 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/40. Renaming Index & Column Labels with rename().mp4 31.1 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/53. Scatterplots.mp4 30.9 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/5. Portfolio Risk (2-Asset-Case) - a (too) simple solution.mp4 30.7 MB
  • 27. Appendix 2 User-defined Functions/1. Defining your first user-defined Function.mp4 30.7 MB
  • 11. Financial Data Analysis and Performance Evaluation/22. Short Selling and Short Position Returns (Part 2).mp4 30.6 MB
  • 30. Appendix 5 Object Oriented Programming (OOP)/2. The Financial Analysis Class live in action (Part 1).mp4 30.6 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/52. Histogramms (Part 2).mp4 30.3 MB
  • 7. Equity Analysis with Python (Part 2)/4. Equity Value, Firm Value and Financial Distress.mp4 30.3 MB
  • 15. ETF Investing and Index Replication Tracking/14. Optimization and out-sample Testing (Part 2).mp4 30.1 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/7. Cash Account vs. Margin Account.mp4 30.1 MB
  • 27. Appendix 2 User-defined Functions/4. The Default Argument None.mp4 30.0 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/24. Selecting Columns.mp4 29.7 MB
  • 27. Appendix 2 User-defined Functions/6. Sequences as arguments and args.mp4 29.5 MB
  • 14. How to build and analyze a Stock Index/12. Price Index vs. PerformanceTotal Return Index.mp4 29.1 MB
  • 19. Reverse Optimization and the Black-Litterman model/3. Black-Litterman Step 1 Reverse Optimization.mp4 28.8 MB
  • 30. Appendix 5 Object Oriented Programming (OOP)/10. The method set_ticker().mp4 28.3 MB
  • 26. Appendix 1 Python (& Finance) Basics/26. Build-in Functions.mp4 28.3 MB
  • 17. Equity Portfolio Optimization and Analysis/4. Performance Measurement The Risk-adjusted Return.mp4 28.0 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/2. How to create a Paper Trading Account.mp4 27.7 MB
  • 8. Keystone Project - Loading Data and Stock Analysis/6. Hot Topic How to get complete Lists with Stock Tickers.mp4 27.7 MB
  • 6. Excursus How to avoid and debug Coding Errors (don´t skip!)/15. Summary and Debugging Flow-Chart.mp4 27.6 MB
  • 26. Appendix 1 Python (& Finance) Basics/30. More on Lists.mp4 27.5 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/5. Changing Elements in Numpy Arrays & Mutability.mp4 27.4 MB
  • 26. Appendix 1 Python (& Finance) Basics/28. Floats.mp4 27.3 MB
  • 26. Appendix 1 Python (& Finance) Basics/23. Data Types in Action.mp4 27.3 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/28. Slicing Rows and Columns with iloc (position-based indexing).mp4 27.2 MB
  • 17. Equity Portfolio Optimization and Analysis/9. Portfolio Optimization with frequent Rebalancing.mp4 27.1 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/43. Filtering DataFrames by many Conditions (OR).mp4 27.1 MB
  • 30. Appendix 5 Object Oriented Programming (OOP)/9. Encapsulation and protected Attributes.mp4 27.0 MB
  • 22. Technical Analysis with Python - Introduction/10. Technical Indicators - Overview and Examples.mp4 27.0 MB
  • 22. Technical Analysis with Python - Introduction/5. Charting - Interactive Line Charts with Cufflinks and Plotly.mp4 26.7 MB
  • 25. APPENDIX Python Crash Course/1. Introduction and Overview.mp4 26.5 MB
  • 11. Financial Data Analysis and Performance Evaluation/25. Portfolios and Portfolio Returns.mp4 26.0 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/11. How to download and install the API Wrapper & other Preparations.mp4 26.0 MB
  • 30. Appendix 5 Object Oriented Programming (OOP)/6. The method log_returns().mp4 25.9 MB
  • 17. Equity Portfolio Optimization and Analysis/10. Comparison daily Rebalancing vs. no Rebalancing.mp4 25.7 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/11. Determining a Project´s Payback Period with np.where().mp4 25.5 MB
  • 5. Equity Analysis with Python (Part 1)/2. How to open and work with the Course Notebooks.mp4 25.3 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/19. How to perform row-wise and column-wise Operations.mp4 25.3 MB
  • 2. PART 1 Basics and Prerequisites/1. Introduction and Overview PART 1.mp4 25.2 MB
  • 30. Appendix 5 Object Oriented Programming (OOP)/7. String representation and the special method __repr__().mp4 24.8 MB
  • 22. Technical Analysis with Python - Introduction/11. Trend Lines.mp4 24.8 MB
  • 26. Appendix 1 Python (& Finance) Basics/9. More on Variables and Memory.mp4 24.7 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/7. Numpy Array Methods and Attributes.mp4 24.7 MB
  • 26. Appendix 1 Python (& Finance) Basics/49. Calculate a Project´s Payback Period.mp4 24.5 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/3. How to Install the IB Trader Workstation (TWS).mp4 24.5 MB
  • 26. Appendix 1 Python (& Finance) Basics/37. Mutable vs. immutable Objects (Part 2).mp4 24.3 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/17. Portfolio Optimization with Risk-free Asset (Part 1).mp4 24.1 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/29. Selecting Rows with loc (label-based indexing).mp4 23.8 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/2. Getting Started.mp4 23.7 MB
  • 26. Appendix 1 Python (& Finance) Basics/29. How to round Floats (and Integers) with round().mp4 23.5 MB
  • 17. Equity Portfolio Optimization and Analysis/3. Creating Random Portfolios (Part 2).mp4 23.4 MB
  • 30. Appendix 5 Object Oriented Programming (OOP)/15. Creating and Importing Python Modules (.py).mp4 23.2 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/35. The copy() method.mp4 23.2 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/12. Connecting to the API.mp4 23.2 MB
  • 15. ETF Investing and Index Replication Tracking/9. Index Tracking with Optimization (Part 3).mp4 23.1 MB
  • 14. How to build and analyze a Stock Index/5. Equal-Weighted Index - Theory.mp4 22.6 MB
  • 26. Appendix 1 Python (& Finance) Basics/32. Slicing Lists.mp4 22.6 MB
  • 22. Technical Analysis with Python - Introduction/9. Volume Charts.mp4 22.6 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/42. Filtering DataFrames by many Conditions (AND).mp4 22.2 MB
  • 30. Appendix 5 Object Oriented Programming (OOP)/3. The Financial Analysis Class live in action (Part 2).mp4 22.2 MB
  • 11. Financial Data Analysis and Performance Evaluation/15. Price Return vs. Total Return (Stocks).mp4 22.0 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/8. Fractional Trading.mp4 21.9 MB
  • 26. Appendix 1 Python (& Finance) Basics/5. Calculate Interest Rates and Returns with Python.mp4 21.5 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/51. Histogramms (Part 1).mp4 21.5 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/6. View vs. copy - potential Pitfalls when slicing Numpy Arrays.mp4 21.4 MB
  • 11. Financial Data Analysis and Performance Evaluation/20. Short Selling and Short Position Returns (Part 1).mp4 21.3 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/32. First Steps with Pandas Series.mp4 21.2 MB
  • 14. How to build and analyze a Stock Index/2. Getting started.mp4 21.0 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/4. Vectorized Operations with Numpy Arrays.mp4 20.9 MB
  • 27. Appendix 2 User-defined Functions/5. How to unpack Iterables.mp4 20.9 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/14. How to work with nested Lists.mp4 20.6 MB
  • 26. Appendix 1 Python (& Finance) Basics/6. Introduction to Variables.mp4 20.3 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/9. Boolean Arrays and Conditional Filtering.mp4 20.3 MB
  • 17. Equity Portfolio Optimization and Analysis/6. Minimum Variance Portfolio.mp4 20.2 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/8. Numpy Universal Functions.mp4 20.0 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/20. Intro to Tabular Data Pandas.mp4 19.9 MB
  • 26. Appendix 1 Python (& Finance) Basics/31. Lists and Element-wise Operations.mp4 19.7 MB
  • 26. Appendix 1 Python (& Finance) Basics/42. String Replacement.mp4 19.5 MB
  • 26. Appendix 1 Python (& Finance) Basics/11. The print() Function.mp4 19.5 MB
  • 26. Appendix 1 Python (& Finance) Basics/18. The range Object - another Iterable.mp4 19.2 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/54. First Steps with Seaborn.mp4 19.1 MB
  • 26. Appendix 1 Python (& Finance) Basics/10. Variables - Dos, Don´ts and Conventions.mp4 19.0 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/19. Implications and the Two-Fund-Theorem.mp4 19.0 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/39. Changing Column Labels.mp4 18.8 MB
  • 17. Equity Portfolio Optimization and Analysis/1. Getting Started.mp4 18.8 MB
  • 22. Technical Analysis with Python - Introduction/4. Getting started and simple Price Charts.mp4 18.7 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/18. Recap Changing Elements in a Numpy Array slice.mp4 18.6 MB
  • 17. Equity Portfolio Optimization and Analysis/7. Maximum Return Portfolio.mp4 18.6 MB
  • 6. Excursus How to avoid and debug Coding Errors (don´t skip!)/13. External Factors and Issues.mp4 18.3 MB
  • 26. Appendix 1 Python (& Finance) Basics/1. Intro to the Time Value of Money (TVM) Concept (Theory).mp4 18.3 MB
  • 6. Excursus How to avoid and debug Coding Errors (don´t skip!)/1. Introduction.mp4 18.0 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/15. 2-dimensional Numpy Arrays.mp4 18.0 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/18. Portfolio Optimization with Risk-free Asset (Part 2).mp4 17.8 MB
  • 6. Excursus How to avoid and debug Coding Errors (don´t skip!)/9. TypeErrors and ValueErrors.mp4 17.6 MB
  • 6. Excursus How to avoid and debug Coding Errors (don´t skip!)/14. Errors related to the course content (Transcription Errors).mp4 17.2 MB
  • 9. Introduction to Interactive Brokers (IKBR) and API Trading/15. Data Streaming for Mulitple Tickers.mp4 17.1 MB
  • 23. Stock trading with Technical Indicators - Backtesting/1. Getting started.mp4 16.6 MB
  • 26. Appendix 1 Python (& Finance) Basics/21. Calculate an Investment Project´s NPV.mp4 16.1 MB
  • 11. Financial Data Analysis and Performance Evaluation/11. Log Returns.mp4 16.1 MB
  • 26. Appendix 1 Python (& Finance) Basics/4. Interest Rates and Returns (Theory).mp4 15.7 MB
  • 26. Appendix 1 Python (& Finance) Basics/16. Indexing Lists.mp4 15.6 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/3. Indexing and Slicing Numpy Arrays.mp4 15.3 MB
  • 23. Stock trading with Technical Indicators - Backtesting/8. Backtesting a Long-Only Strategy.mp4 15.1 MB
  • 27. Appendix 2 User-defined Functions/7. How to return many results.mp4 15.0 MB
  • 26. Appendix 1 Python (& Finance) Basics/34. Sorting and Reversing Lists.mp4 14.8 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/8. Crash Course Statistics Covariance and Correlation (Part 2).mp4 14.7 MB
  • 26. Appendix 1 Python (& Finance) Basics/2. Calculate Future Values (FV) with Python Compounding.mp4 14.3 MB
  • 13. PART 2 ETF Trading & Equity Portfolio Investing with Python and IBKR/1. Introduction and Overview PART 2.mp4 14.1 MB
  • 14. How to build and analyze a Stock Index/10. Comparison of weighting methods (Part 1).mp4 13.1 MB
  • 6. Excursus How to avoid and debug Coding Errors (don´t skip!)/8. Misuse of function names and keywords.mp4 13.0 MB
  • 26. Appendix 1 Python (& Finance) Basics/44. Operators (Theory).mp4 12.9 MB
  • 5. Equity Analysis with Python (Part 1)/5. Excursus Versions and Package Updates.mp4 12.9 MB
  • 6. Excursus How to avoid and debug Coding Errors (don´t skip!)/7. Indentation Errors.mp4 12.8 MB
  • 14. How to build and analyze a Stock Index/6. Creating an Equal-Weighted Stock Index with Python.mp4 12.8 MB
  • 5. Equity Analysis with Python (Part 1)/3. How to Install yfinance.mp4 12.7 MB
  • 26. Appendix 1 Python (& Finance) Basics/7. Excursus How to add inline comments.mp4 12.6 MB
  • 4. Installing Python and Jupyter Notebooks/5. Tips for python beginners.mp4 12.5 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/16. The Sharpe Ratio Graphical Interpretation.mp4 12.4 MB
  • 26. Appendix 1 Python (& Finance) Basics/27. Integers.mp4 12.3 MB
  • 26. Appendix 1 Python (& Finance) Basics/24. The Data Type Hierarchy (Theory).mp4 11.9 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/47. Exporting DataFrames to csv.mp4 11.8 MB
  • 19. Reverse Optimization and the Black-Litterman model/2. Getting started (Inputs for reverse Optimization).mp4 11.7 MB
  • 26. Appendix 1 Python (& Finance) Basics/13. TVM Problems with many Cashflows.mp4 11.6 MB
  • 26. Appendix 1 Python (& Finance) Basics/33. Changing Elements in Lists.mp4 11.4 MB
  • 26. Appendix 1 Python (& Finance) Basics/3. Calculate Present Values (PV) with Python Discounting.mp4 11.2 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/26. Zero-based Indexing and Negative Indexing.mp4 11.0 MB
  • 20. PART 3 Algorithmic Stock Trading with Python and IKBR/1. Introduction and Overview PART 3.mp4 10.7 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/1. Introduction.mp4 10.1 MB
  • 26. Appendix 1 Python (& Finance) Basics/43. Booleans.mp4 9.9 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/17. How to slice 2-dim Numpy Arrays (Part 2).mp4 9.9 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/6. Crash Course Statistics Variance and Standard Deviation.mp4 9.7 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/25. Selecting one Column with the dot notation.mp4 9.5 MB
  • 4. Installing Python and Jupyter Notebooks/1. Introduction.mp4 9.4 MB
  • 28. Appendix 3 Numpy, Pandas, Matplotlib and Seaborn Crash Course/59. Introduction to GroupBy Operations.mp4 9.0 MB
  • 26. Appendix 1 Python (& Finance) Basics/14. Intro to Python Lists.mp4 8.7 MB
  • 26. Appendix 1 Python (& Finance) Basics/15. Zero-based Indexing and negative Indexing in Python (Theory).mp4 8.2 MB
  • 18. Portfolio Optimization Theory and practical Pitfalls/3. 2-Asset-Case (Intro).mp4 7.8 MB
  • 26. Appendix 1 Python (& Finance) Basics/8. Variables and Memory (Theory).mp4 6.1 MB
  • 26. Appendix 1 Python (& Finance) Basics/25. Excursus Dynamic Typing in Python.mp4 5.8 MB
  • 6. Excursus How to avoid and debug Coding Errors (don´t skip!)/3. Major reasons for Coding Errors.mp4 5.7 MB
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