author | Shantanu <shantanu@fossee.in> |
Fri, 20 Nov 2009 00:34:18 +0530 | |
changeset 321 | 8bf99f747817 |
parent 317 | 0eca6c542fce |
child 324 | 2361df479844 |
permissions | -rwxr-xr-x |
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\documentclass[12pt]{article} |
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\title{Solving Equations \& ODEs} |
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\author{FOSSEE} |
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\usepackage{listings} |
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\lstset{language=Python, |
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basicstyle=\ttfamily, |
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commentstyle=\itshape\bfseries, |
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showstringspaces=false, |
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} |
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\newcommand{\typ}[1]{\lstinline{#1}} |
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\usepackage[english]{babel} |
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\usepackage[latin1]{inputenc} |
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\usepackage{times} |
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\usepackage[T1]{fontenc} |
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\usepackage{ae,aecompl} |
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\usepackage{mathpazo,courier,euler} |
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\usepackage[scaled=.95]{helvet} |
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\begin{document} |
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\date{} |
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\vspace{-1in} |
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\begin{center} |
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\LARGE{Solving Equations \& ODEs}\\ |
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\large{FOSSEE} |
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\end{center} |
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\section{Solving linear equations} |
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Condier following sets of equations:\\ |
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\begin{align*} |
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3x + 2y - z & = 1 \\ |
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2x - 2y + 4z & = -2 \\ |
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-x + $\frac{1}{2}$y -z & = 0 |
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\end{align*}\\ |
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The matrix representation is:\\ |
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\begin{center} |
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$A*x = B$ |
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\end{center} |
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Where A is coefficient matrix(in this case 3x3)\\ |
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B is constant matrix(1x3)\\ |
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x is the required solution.\\ |
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\begin{lstlisting} |
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In []: A = array([[3,2,-1], [2,-2,4], [-1, 0.5, -1]]) |
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In []: B = array([[1], [-2], [0]]) |
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In []: x = solve(A, B) |
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\end{lstlisting} |
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Solve the equation $A x = B$ for $x$.\\ |
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To check whether solution is correct try this: |
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\begin{lstlisting} |
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In []: Ax = dot(A,x) #Matrix multiplication of A and x(LHS) |
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In []: allclose(Ax, B) |
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Out[]: True |
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\end{lstlisting} |
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\typ{allclose} Returns \typ{True} if two arrays(in above case Ax and B) are element-wise equal within a tolerance. |
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\newpage |
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\section{Finding roots} |
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\subsection{Polynomials} |
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\begin{center} |
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$x^2+6x+13=0$ |
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\end{center} |
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to find roots, pylab provides \typ{roots} function. |
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\begin{lstlisting} |
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In []: coeffs = [1, 6, 13] #list of all coefficients |
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In []: roots(coeffs) |
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\end{lstlisting} |
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\subsection{functions} |
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Functions can be defined and used by following syntax: |
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\begin{lstlisting} |
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def func_name(arg1, arg2): |
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#function code |
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return ret_value |
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\end{lstlisting} |
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70 |
A simple example can be |
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\begin{lstlisting} |
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def expression(x): |
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y = x*sin(x) |
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return y |
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75 |
\end{lstlisting} |
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Above function when called with a argument, will return $xsin(x)$ value for that argument. |
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\begin{lstlisting} |
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In [95]: expression(pi/2) |
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Out[95]: 1.5707963267948966 |
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|
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In [96]: expression(pi/3) |
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Out[96]: 0.90689968211710881 |
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\end{lstlisting} |
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\subsection{Roots of non-linear eqations} |
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For Finding the roots of a non linear equation(defined as $f(x)=0$), around a starting estimate we use \typ{fsolve}:\\ |
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\typ{In []: from scipy.optimize import fsolve}\\ |
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\typ{fsolve} is not part of \typ{pylab}, instead it is part of \textbf{optimize} package of \textbf{scipy}, and hence we \textbf{import} it.\\ |
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%\typ{fsolve} takes first argument as name of function, which evaluates $f(x)$, whose roots one wants to find. And second argument is starting estimate, around which roots are found. |
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For illustration, we want to find roots of equation: |
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\begin{center} |
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$f(x)=sin(x)+cos(x)^2$ |
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\end{center} |
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93 |
So just like we did above, we define a function: |
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94 |
\begin{lstlisting} |
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In []: def f(x): |
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....: return sin(x)+cos(x)**2 |
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97 |
....: |
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98 |
\end{lstlisting} |
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Now to find roots of this non linear equation, around a initial estimate value, say 0, we use \typ{fsolve} in following way: |
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100 |
\begin{lstlisting} |
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In []: fsolve(f, 0) #arguments are function name and estimate |
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102 |
Out[]: -0.66623943249251527 |
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103 |
\end{lstlisting} |
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104 |
|
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\section{ODE} |
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\begin{lstlisting} |
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In []: def epid(y, t): |
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108 |
.... k, L = 0.00003, 25000 |
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.... return k*y*(L-y) |
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110 |
.... |
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111 |
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In []: t = arange(0, 12, 0.2) |
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In []: y = odeint(epid, 250, t) |
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In []: plot(t, y) |
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\end{lstlisting} |
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\section{Links and References} |
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\begin{itemize} |
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\item Documentation for Numpy and Scipy is available at: \url{http://docs.scipy.org/doc/} |
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\item For "recipes" or worked examples of commonly-done tasks in SciPy explore: \url{http://www.scipy.org/Cookbook/} |
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\end{itemize} |
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\end{document} |