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Python for Finance

You're reading from   Python for Finance If your interest is finance and trading, then using Python to build a financial calculator makes absolute sense. As does this book which is a hands-on guide covering everything from option theory to time series.

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Product type Paperback
Published in Apr 2014
Publisher
ISBN-13 9781783284375
Length 408 pages
Edition 1st Edition
Languages
Tools
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Author (1):
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Yuxing Yan Yuxing Yan
Author Profile Icon Yuxing Yan
Yuxing Yan
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Toc

Table of Contents (14) Chapters Close

Preface 1. Introduction and Installation of Python FREE CHAPTER 2. Using Python as an Ordinary Calculator 3. Using Python as a Financial Calculator 4. 13 Lines of Python to Price a Call Option 5. Introduction to Modules 6. Introduction to NumPy and SciPy 7. Visual Finance via Matplotlib 8. Statistical Analysis of Time Series 9. The Black-Scholes-Merton Option Model 10. Python Loops and Implied Volatility 11. Monte Carlo Simulation and Options 12. Volatility Measures and GARCH Index

Understanding the interpolation technique

Interpolation is a technique used quite frequently in finance. In the following example, we have to find NaN between 2 and 6. The pd.interpolate() function, for a linear interpolation, is used to fill in the two missing values:

>>>import pandas as pd
>>>import numpy as np
>>>x=pd.Series([1,2,np.nan,np.nan,6])
>>>x.interpolate()
0  1.000000
1  2.000000
2  3.333333
3  4.666667
4  6.000000

If the two known points are represented by the coordinates (x0,y0) and (x1,y1), the linear interpolation is the straight line between these two points. For a value x in the interval of (x0,x1), the value y along the straight line is given by the following formula:

Understanding the interpolation technique

Solving this equation for y, which is the unknown value at x, gives the following result:

Understanding the interpolation technique

From the Yahoo! Finance bond page, we can get the following information:

Maturity

Yield

Yesterday

Last Week

Last Month

3 Month

0.05

0.05

0.04

0.03

6 Month

0.08

0.07

0.07...

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