Difference between revisions of "Scilab/C4/Solving-Non-linear-Equations/English-timed"

Revision as of 14:26, 27 February 2015

Time	Narration
00:01	Dear Friends,
00:02	Welcome to the spoken tutorial on Solving Nonlinear Equations using Numerical Methods.
00:10.	At the end of this tutorial, you will learn how to
00:13	solve nonlinear equations using numerical methods.
00:18	The methods we will be studying are
00:20	Bisection method and
00:22	Secant method.
00:23	We will also develop Scilab code to solve nonlinear equations.
00:30	To record this tutorial, I am using
00:32	Ubuntu 12.04 as the operating system and
00:36	Scilab 5.3.3 version.
00:40	Before practicing this tutorial, a learner should have
00:43	basic knowledge of Scilab and
00:46	nonlinear equations.
00:48	For Scilab, please refer to the Scilab tutorials available on the Spoken Tutorial website.
00:55	For a given function f, we have to find the value of x for which f of x is equal to zero.
01:04	This solution x is called root of equation or zero of function f.
01:11	This process is called root finding or zero finding.
01:16	We begin by studying Bisection Method.
01:20	In bisection method, we calculate the initial bracket of the root.
01:25	Then we iterate through the bracket and halve its length.
01:31	We repeat this process until we find the solution of the equation.
01:36	Let us solve this function using Bisection method.
01:41	Given:
01:42	function f equal to two sin x minus e to the power of x divided by four minus one in the interval minus five and minus three
01:54	Open Bisection dot sci on Scilab editor.
02:00	Let us look at the code for Bisection method.
02:03	We define the function Bisection with input arguments a b f and tol.
02:10	Here a is the lower limit of the interval
02:14	b is the upper limit of the interval
02:16	f is the function to be solved
02:19	and tol is the tolerance level
02:22	We specify the maximum number of iterations to be equal to hundred.
02:28	We find the midpoint of the interval and iterate till the value calculated is within the specified tolerance range.
02:37	Let us solve the problem using this code.
02:40	Save and execute the file.
02:43	Switch to Scilab console
02:47	Let us define the interval.
02:50	Let a be equal to minus five.
02:52	Press Enter.
02:54	Let b be equal to minus three.
02:56	Press Enter.
02:58	Define the function using deff function.
03:01	We type
03:02	deff open paranthesis open single quote open square bracket y close square bracket equal to f of x close single quote comma open single quote y equal to two asterisk sin of x minus open paranthesis open paranthesis percentage e to the power of x close paranthesis divided by four close paranthesis minus one close single quote close paranthesis
03:41	To know more about deff function type help deff
03:46	Press Enter.
03:48	Let tol be equal to 10 to the power of minus five.
03:53	Press Enter.
03:56	To solve the problem, type
03:58	Bisection open paranthesis a comma b comma f comma tol close paranthesis
04:07	Press Enter.
04:09	The root of the function is shown on the console.
04:14	Let us study Secant's method.
04:17	In Secant's method, the derivative is approximated by finite difference using two successive iteration values.
04:27	Let us solve this example using Secant method.
04:30	The function is f equal to x square minus six.
04:36	The two starting guesses are , p zero equal to two and p one equal to three.
04:44	Before we solve the problem, let us look at the code for Secant method.
04:50	Open Secant dot sci on Scilab editor.
04:54	We define the function secant with input arguments a, b and f.
05:01	a is first starting guess for the root
05:04	b is the second starting guess and
05:07	f is the function to be solved.
05:10	We find the difference between the value at the current point and the previous point.
05:15	We apply Secant's method and find the value of the root.
05:21	Finally we end the function.
05:24	Let me save and execute the code.
05:27	Switch to Scilab console.
05:30	Type clc.
05:32	Press Enter
05:34	Let me define the initial guesses for this example.
05:38	Type a equal to 2
05:40	Press Enter.
05:42	Then type b equal to 3
05:44	Press Enter.
05:46	We define the function using deff function.
05:49	Type deff open paranthesis open single quote open square bracket y close square bracket equal to g of x close single quote comma open single quote y equal to open paranthesis x to the power of two close paranthesis minus six close single quote close paranthesis
06:15	Press Enter
06:18	We call the function by typing
06:20	Secant open paranthesis a comma b comma g close paranthesis.
06:27	Press Enter
06:30	The value of the root is shown on the console
06:35	Let us summarize this tutorial.
06:38	In this tutorial we have learnt to:
06:41	Develop Scilab code for different solving methods
06:45	Find the roots of nonlinear equation
06:48	Solve this problem on your own using the two methods we learnt today.
06:55	Watch the video available at the link shown below
06:58	It summarises the Spoken Tutorial project
07:01	If you do not have good bandwidth, you can download and watch it
07:05	The spoken tutorial project Team
07:07	Conducts workshops using spoken tutorials
07:10	Gives certificates to those who pass an online test
07:14	For more details, please write to conatct@spoken-tutorial.org
07:21	Spoken Tutorial Project is a part of the Talk to a Teacher project
07:24	It is supported by the National Mission on Eduction through ICT, MHRD, Government of India.
07:32	More information on this mission is available at http://spoken-tutorial.org/NMEICT-Intro
07:39	This is Ashwini Patil signing off.
07:41	Thank you for joining.

Contributors and Content Editors

PoojaMoolya, Pratik kamble, Sandhya.np14

Difference between revisions of "Scilab/C4/Solving-Non-linear-Equations/English-timed"

Revision as of 14:26, 27 February 2015

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@@ Line 10: / Line 10: @@
 |-
 | 00:02
-|Welcome to the spoken tutorial on  ''' “Solving Nonlinear Equations using Numerical Methods” '''
+|Welcome to the spoken tutorial on '''Solving Nonlinear Equations using Numerical Methods'''.
 |-
 | 00:10.
-| At the end of this tutorial, you will learn how to:
+| At the end of this tutorial, you will learn how to
 |-
 |00:13
-|Solve '''nonlinear equations''' using numerical methods
+|solve '''nonlinear equations''' using numerical methods.
 |-
 |00:18
 |The methods we will be studying are
 |-
 | 00:20
-|'''Bisection method and '''
+|'''Bisection method''' and
 |-
 |00:22
-|'''Secant method'''
+|'''Secant method'''.
 |-
@@ Line 49: / Line 46: @@
 |-
 |00:36
-|'''Scilab 5.3.3''' version
+|'''Scilab 5.3.3''' version.
 |-
 |00:40
-| Before practising this tutorial, a learner should have
+| Before practicing this tutorial, a learner should have
 |-
@@ Line 61: / Line 58: @@
 |-
 | 00:46
-| '''nonlinear equations'''
+| '''nonlinear equations'''.
 |-
@@ Line 73: / Line 70: @@
 |-
 |01:04
-|This solution '''x'''  is called '''root of equation ''' or ''' zero of function f.'''
+|This solution '''x''' is called '''root of equation''' or '''zero of function f.'''
 |-
 |01:11
-| This process is called ''' root finding''' or '''zero finding.'''
+| This process is called '''root finding''' or '''zero finding.'''
 |-
 |01:16
 |We begin by studying '''Bisection Method. '''
 |-
@@ Line 89: / Line 84: @@
 |01:20
-|In '''bisection method''' we calculate the '''initial bracket''' of the '''root.'''
+|In '''bisection method''', we calculate the '''initial bracket''' of the '''root.'''
 |-
@@ Line 111: / Line 106: @@
 | 01:41
-|| Given
+|| Given:
 |-
@@ Line 124: / Line 119: @@
 | '''Open Bisection dot sci on Scilab editor. '''
 |-
 |02:00
 | Let us look at the code for '''Bisection method.'''
 |-
@@ Line 146: / Line 139: @@
 |02:14
 |'''b''' is the upper limit of the '''interval'''
 |-
 | 02:16
 ||'''f''' is the function to be solved
 |-
@@ Line 201: / Line 192: @@
 | 02:54
 |Let '''b''' be equal to minus three.
 |-
 | 02:56
 | Press '''Enter. '''
 |-
@@ Line 226: / Line 214: @@
 |To know more about '''deff function''' type '''help deff'''
 |-
@@ Line 239: / Line 225: @@
 ||Let '''tol''' be equal to 10 to the power of minus five.
 |-
@@ Line 247: / Line 231: @@
 ||Press '''Enter.'''
 |-
@@ Line 254: / Line 237: @@
 | To solve the problem, type
 |-
@@ Line 261: / Line 243: @@
 | '''Bisection open paranthesis a comma b comma f comma tol close paranthesis'''
 |-
 |04:07
 | Press '''Enter.'''
 |-
@@ Line 273: / Line 253: @@
 | The root of the function is shown on the console.
 |-
@@ Line 281: / Line 259: @@
 ||Let us study '''Secant's method.'''
 |-
@@ Line 288: / Line 265: @@
 | In '''Secant's method,''' the derivative is approximated by finite difference using two successive iteration values.
 |-
@@ Line 295: / Line 271: @@
 | Let us solve this example using '''Secant method. '''
 |-
@@ Line 303: / Line 277: @@
 |The function is '''f equal to x square minus six. '''
 |-
@@ Line 311: / Line 283: @@
 | The two '''starting guesses''' are , '''p zero''' equal to two and '''p one''' equal to three.
 |-
@@ Line 318: / Line 289: @@
 | Before we solve the problem, let us look at the code for '''Secant method. '''
 |-
@@ Line 326: / Line 295: @@
 ||Open '''Secant dot sci''' on '''Scilab editor.'''
 |-
@@ Line 346: / Line 313: @@
 |'''b''' is the second starting guess and
 |-
@@ Line 353: / Line 319: @@
 |'''f''' is the function to be solved.
 |-
@@ Line 360: / Line 325: @@
 |We find the difference between the value at the current point and the previous point.
 |-
@@ Line 368: / Line 331: @@
 | We apply '''Secant's method ''' and find the value of the root.
 |-
@@ Line 376: / Line 337: @@
 | Finally we end the function.
 |-
@@ Line 384: / Line 343: @@
 || Let me save and execute the code.
 |-
@@ Line 402: / Line 360: @@
 | Press '''Enter'''
 |-
@@ Line 417: / Line 372: @@
 | Type  '''a''' equal to 2
 |-
@@ Line 424: / Line 378: @@
 | Press '''Enter. '''
 |-
@@ Line 432: / Line 384: @@
 | Then type  '''b''' equal to 3
 |-
@@ Line 448: / Line 398: @@
 | Type '''deff open paranthesis open single quote open square bracket y close square bracket equal to g of x close single quote comma open single quote y equal to open paranthesis x to the power of two close paranthesis minus six close single quote close paranthesis '''
 |-
@@ Line 473: / Line 422: @@
 | Press '''Enter'''
 |-
@@ Line 510: / Line 458: @@
 |Solve this problem on your own using the two methods we learnt today.
 |-
@@ Line 523: / Line 469: @@
 | It summarises the Spoken Tutorial project
 |-
@@ Line 543: / Line 487: @@
 ||Conducts workshops using spoken tutorials
 |-
@@ Line 550: / Line 493: @@
 ||Gives certificates to those who pass an online test
 |-
@@ Line 557: / Line 499: @@
 ||For more details, please write to conatct@spoken-tutorial.org
 |-
@@ Line 564: / Line 505: @@
 |Spoken Tutorial Project is a part of the Talk to a Teacher project
 |-