Difference between revisions of "Applications-of-GeoGebra/C3/Differentiation-using-GeoGebra/English"

Revision as of 18:39, 11 January 2019

Visual Cue	Narration
Slide Number 1 Title Slide	Welcome to this tutorial on Differentiation using GeoGebra.
Slide Number 2 Learning Objectives	In this tutorial, we will learn how to use GeoGebra to: Understand Differentiation Draw graphs of derivative of functions
Slide Number 3 System Requirement	Here I am using: Ubuntu Linux OS version 16.04 GeoGebra 5.0.481.0-d
Slide Number 4 Pre-requisites www.spoken-tutorial.org	To follow this tutorial, you should be familiar with: GeoGebra interface Differentiation For relevant tutorials, please visit our website.
Slide Number 5 Differentiation: First Principles [[Image:]] f(x) = x²-x f'(x) is derivative of f(x) A (x, f(x)), B (x+j, f(x+j))	Let us understand differentiation using first principles for the function f of x. f of x is equal to x squared minus x f prime x is the derivative of f of x. Consider 2 points, A and B. A is x comma f of x and B is x plus j comma f of x plus j
Show the GeoGebra window.	I have opened the GeoGebra interface.
Type f(x)=x^2-x in the input bar >> Enter	In the input bar, type the following line. For the caret symbol, hold the Shift key down and press 6. Press Enter.
Point to the equation in Algebra view. Point to parabola in Graphics view.	Observe the equation and the parabolic graph of function f.
Click on Point on Object tool >> click on the parabola at (2,2). Point to A at (2,2). Click on Point tool and click on (3,6).	Clicking on the Point on Object, create point A at 2 comma 2 and B at 3 comma 6.
Click on Line tool and click on points B and A.	Click on Line tool and click on points B and A.
Click on the Move tool. Double click on the resulting line g and click on Object Properties. Click on Color tab and select blue. Click on Style tab and select dashed style.	As shown earlier in this series, make this line g blue and dashed.
Click on Tangents tool under Perpendicular Line tool.	Under Perpendicular Line, click on Tangents.
Click on A and then on the parabola.	Click on A and then on the parabola.
Point to tangent h at point A to the parabola.	This draws a tangent h at point A to the parabola.
Double click on tangent h and click on Object Properties. Under Color tab, select red. Close the Preferences box.	Let us make tangent h a red line.
Click on Point tool and click in Graphics view. Point to point C.	Click on the Point tool and click anywhere in Graphics view. This creates point C.
Double click on point C in Algebra view and change its coordinates to (x(B),y(A)). Point to C.	In Algebra view, double-click on C and change its coordinates to the following ones.
	Now C has the same x coordinate as point B and the same y coordinate as point A.
Under Line, click on Segment and click on B and C, and then on A and C.	Let us use the Segment tool to draw segments BC and AC.
Right-click on AC >> Select Object Properties >> Color tab >> Purple Click on Style tab >> select dashed line Under Basic tab >> choose Name and Value >> Show Label check box. Close the Preferences dialog box.	We will make AC and BC purple and dashed segments.
With Move highlighted, drag B towards A on the parabola.	With Move highlighted, drag B towards A on the parabola.
Point to the value of j (length of AC) and lines g and h.	Observe lines g and h and the value of j (length of AC). As j approaches 0, points Band A begin to overlap. Lines g and h also begin to overlap.
Point to line g, BC and AC.	Slope of line g is the ratio of length of BC to length of AC.
Point to all the points on the parabola.	Derivative of the parabola is the slopes of tangents at all points on curve.
Point to text-box that appears in GeoGebra window. As B approaches A, slope AB approaches slope of tangent at A.	As B approaches A on f of x, slope of AB approaches the slope of tangent at A.
	Now let us look at the Algebra behind these concepts.
Slide Number 7 Differentiation: First Principles, the Algebra f'(x) = lim_j→0 (length of Segment BC / length of Segment AC) = lim_j→0 [(f(x+j) – f(x)]/[(x+j) – x] Remember f(x) = x²-x, (x+j)² = x²+2xj+j² f'(x) = lim_j→0 [(x+j)²-(x+j)-(x²-x)]/(x+j-x)	Slope of line AB equals the ratio of the lengths of BC to AC. Line AB becomes the tangent at point A as distance j between A and B approaches 0. BC is the difference between y' coordinates, f of x plus j and f of x, for A and B. AC is the difference between the x-coordinates, x plus j and x. Let us rewrite f of x plus j and f of x in terms of x squared minus x. We will expand the terms in the numerator.
Slide 8 The Algebra-Cont’d f'(x) = lim_j→0 [x²+2xj+j²-x-j-x²+x]/j = lim_j→0 [2xj+j²-j]/j = lim_j→0 [j(2x+j-1)]/j = lim_j→0 [2x+j-1] = 2x-1 f'(x²-x) = 2x -1	After expanding the terms in the numerator, we will cancel out similar terms with opposite signs. We will pull out j from the numerator, and cancel it. Note that as j approaches 0, j can be ignored so that 2x plus j minus 1 approaches 2x minus 1. As we know, derivative of x squared minusx is 2x minus 1.
	Let us look at derivative graphs for some functions.
Slide Number 10 Differentiation of a Polynomial Function Consider g(x)=5+12x-x³ Differentiation rules: d(u±v)/dx = d(u)/dx ± d(v)/dx d(5+12x-x³)/dx = d(5)/dx + d(12x)/dx - d(x³)/dx = 0 + 12 - 3x²= -3x²+12 For g(x)=5+12x-x³, g'(x) = -3x²+12	Consider g of x. Derivative g prime x is the sum and difference of derivatives of the individual components. g prime x is calculated by applying these rules.
	Let us differentiate g of x in GeoGebra.
Open a new GeoGebra window.	Open a new GeoGebra window.
Type g(x)=5+12x-x^3 in input bar >> Enter	In the input bar, type the following line and press Enter.
Under Move Graphics View, click on Zoom Out. Click in Graphics view until you see function g.	As shown earlier in the series, zoom out to see function g properly.
Right-click in Graphics view and select xAxis : yAxis option. Select 1:5.	Right-click in Graphics view and select xAxis is to yAxis option. Select 1 is to 5.
Under Move Graphics View, click on Zoom Out again. Click in Graphics view to zoom out.	I will zoom out again.
Click on Point on Object tool and click on the curve to create point A. Click on Tangent under Perpendicular Line. Click on point A and the curve.	As shown earlier, draw point A on curve g and a tangent f at this point.
Click on Slope tool under Angle tool and on tangent line f.	Under Angle, click on Slope and on tangent line f.
Point to slope of line f at A appearing as m value in Graphics view.	Slope of line fat A appears as m value in Graphics view.
Click on Point tool and in Graphics view to create point B. Double click on point B in Algebra view and change coordinates to (x(A), m). Point to points A and B and slope m of tangent line g.	Draw point B and change its coordinates to x A in parentheses comma m.
Right-click on point B and select Trace On option.	Right-click on point B and select Trace On option
Click on Move tool and move point A on curve. Observe the curve traced by point B.	With Move tool highlighted, move point A on the curve. Observe the curve traced by point B.
	Let us check whether we have the correct derivative graph.
Type Deri in input bar >> select Derivative( <Function> ) >> Type g instead of highlighted <Function> >> press Enter	In the input bar, type capital D e r i. From the menu that appears, select Derivative Function option. Type g to replace the highlighted word <Function>. Press Enter.
	Note the equation of g prime x in Algebra view. Drag the boundary to see it properly
Compare slide’s calculations with equation of g'(x) in Algebra view.	Compare the calculations in the previous slide with the equation of g prime x
	Let us find the maxima and minima of the function g of x.
Point to derivative curve g'(x) above the x-axis and to g(x).	Derivative curve g prime x remains above the x-axis (is positive) as long as g of x is increasing.
Point to derivative curve g'(x) below the x-axis and to g(x).	g prime x remains below the x-axis (is negative) as long as g of x is decreasing.
Point to derivative curve g'(x) intersecting x-axis at x = -2 and x = 2.	2 and -2 are the values of x when g prime x equals 0.
	Slope of the tangents at the corresponding points on g of x is 0. These points on g of x are maxima or a minima.
Point to (-2,-11) and (2,21).	Hence, for g of x, -2 comma -11 is the minimum and 2 comma 21 is the maximum.
Point to minimum of g(x) and x=-3 and x = -1.	In GeoGebra, we can see that the minimum value of g of x lies between x equals -3 and x equals -1.
In the input bar, type Min. From the menu that appears, select Min Function Start x-Value End x-Value option. Type g for Function. Press Tab to go to the next argument. Type -4 and -1 as Start and End x-Values. Press Enter.	In the input bar, type Min. From the menu that appears, select Min Function Start x-Value End x-Value option. Type g for Function. Press Tab to go to the next argument. Type -4 and -1 as Start and End x-Values. Press Enter.
Point to minimum C in Graphics view and its co-ordinates in Algebra view.	We see the minimum on g of x. Its co-ordinates are -2 comma -11 in Algebra view.
In the input bar, type Max. From the menu that appears, select Max Function Start x-Value End x-Value option. Type g, 1 and 4 as the arguments. Press Enter.	In the input bar, type Max. From the menu that appears, select Max Function Start x-Value End x-Value option. Type g, 1 and 4 as the arguments. Press Enter.
Point to maximum C in Graphics view and its co-ordinates in Algebra view.	We see the maximum on g of x, 2 comma 21.
	Finally, let us take a look at a practical application of differentiation.
Slide Number 16 A Practical Application of Differentiation We have a 24 inches by 15 inches piece of cardboard We have to convert it into a box Squares have to be cut from the four corners What size squares should we cut out to get the maximum volume of the box?	A Practical Application of Differentiation We have a 24 inches by 15 inches piece of cardboard. We have to convert it into a box. Squares have to be cut from the four corners. What size squares should we cut out to get the maximum volume of the box?
Slide Number 17 A Sketch of the Cardboard Let’s draw the cardboard: [[Image:]] The volume function here is *(24-2x)(15-2x)x* cubic inches.	A Sketch of the Cardboard Let us draw the cardboard: This is the volume function here. You could expand it into a cubic polynomial; but we will leave it as it is.
Open a new GeoGebra window.	Open a new GeoGebra window.
Type (24-2 x) (15-2 x) x in the input bar >> Enter.	In the input bar, type the following line and press Enter.
Drag the boundary to see the equation properly in Algebra view.	Drag the boundary to see the equation properly in Algebra view.
Right-click in Graphics view and set xAxis : yAxis to 1:50. Under Move Graphics View, click on Zoom Out. Click in Graphics view to see the function properly.	Right-click in Graphics view and set xAxis is to yAxis to 1 is to 50. Now, zoom out to see the function properly.
Point to the graph for this volume function in Graphics view. Click in and drag the background to move Graphics view to see the maximum.	Observe the graph that is plotted for this volume function in Graphics view. Drag the background to see the maximum.
Point to the maximum on top of the broad peak and to x = 0 and x = 7.	Note that the maximum is on the top of a broad peak from x equals 0 to x equals 7.
Point to both axes.	The length of the square side is plotted along the x-axis. Volume of the box is plotted along the y-axis.
In the input bar, type Max with capital M. From the menu that appears, select Max Function Start x-Value End x-value. Instead of highlighted Function, type f. Press Tab to move and highlight Start x-Value and type 0. Again, press Tab to move and highlight End x-Value and type 10. Press Enter.	As before, let us find the maximum of this function.
Point to the maximum, A, in Graphics view and its coordinates in Algebra view.	This maps the maximum, point A, on the curve. Its coordinates 3 comma 486 appear in Algebra view. Thus, we have to cut out 3 inch squares from all corners. This will give the maximum possible volume of 486 cubic inches for the cardboard box.
	Let us summarize.
Slide Number 19 Summary	In this tutorial, we have learnt how to use GeoGebra to: Understand differentiation Draw graphs of derivatives of functions
Slide Number 16 Assignment Draw graphs of derivatives of the following functions in GeoGebra: h(x)=e^x i(x)=ln(x) j(x)=(5x³+3x-1)/(x-1) Find the derivatives of these functions independently and compare with GeoGebra graphs.	As an assignment: Draw graphs of derivatives of the following functions in GeoGebra. Find the derivatives of these functions independently and compare with GeoGebra graphs.
Slide Number 17 About Spoken Tutorial project	The video at the following link summarizes the Spoken Tutorial project. Please download and watch it.
Slide Number 18 Spoken Tutorial workshops	The Spoken Tutorial Project team: Conducts workshops using spoken tutorials and Gives certificates on passing online tests. For more details, please write to us.
Slide Number 19 Forum for specific questions: Do you have questions in THIS Spoken Tutorial? Please visit this site Choose the minute and second where you have the question Explain your question briefly Someone from our team will answer them	Please post your timed queries on this forum.
Slide Number 20 Acknowledgement	Spoken Tutorial Project is funded by NMEICT, MHRD, Government of India. More information on this mission is available at this link.
	This is Vidhya Iyer from IIT Bombay, signing off. Thank you for joining.

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Madhurig, Snehalathak, Vidhya

Difference between revisions of "Applications-of-GeoGebra/C3/Differentiation-using-GeoGebra/English"

Revision as of 18:39, 11 January 2019

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@@ Line 1: / Line 1: @@
 {|border=1
 | | '''Visual Cue'''
@@ Line 18: / Line 17: @@
 Draw graphs of derivative of functions
 |-
-| | '''Slide Number 3'''
+|  | '''Slide Number 3'''
 '''System Requirement'''
@@ Line 41: / Line 41: @@
 Differentiation
 For relevant '''tutorials''', please visit our website.
 |-
@@ Line 64: / Line 67: @@
 '''f prime x''' is the derivative of '''f of x'''.
 Consider 2 points, '''A''' and '''B'''.
@@ Line 73: / Line 77: @@
 |-
 | | Type '''f(x)=x^2-x''' in the '''input bar''' >> '''Enter'''
-| | In the '''input bar''', type the following line and press '''Enter'''.
+| | In the '''input bar''', type the following line.
 For the '''caret symbol''', hold the '''Shift''' key down and press 6.
-'''f x''' in parentheses equals '''x caret 2''' minus '''x'''
+Press '''Enter'''.
 |-
 | | Point to the equation in '''Algebra''' view.
 Point to '''parabola''' in '''Graphics''' view.
-| | The equation appears in the '''Algebra''' view and the '''function f''' is graphed as a '''parabola'''.
+| | Observe the equation and the parabolic graph of '''function f'''.
-|-
-| | Point to '''parabola''' in '''Graphics''' view.
-| | It opens upwards and intersects the '''x-axis''' at two points.
 |-
 | | Click on '''Point on Object''' tool >> click on the parabola at '''(2,2)'''.
 Point to '''A''' at '''(2,2)'''.
-| | Under '''Point''', click on '''Point on Object''' and click on the parabola at 2 comma 2.
-This creates point '''A'''.
+Click on '''Point''' tool and click on '''(3,6)'''.
-|-
-| | Click on '''Point''' tool and click on '''(3,6)'''.
+| | Clicking on the '''Point on Object''', create point A at 2 comma 2 and B at 3 comma 6.
-| | Create a point '''B''' at 3 comma 6.
 |-
 | | Click on '''Line''' tool and click on points '''B''' and '''A'''.
@@ Line 101: / Line 101: @@
 |-
 | | Click on the '''Move''' tool.
 Double click on the resulting '''line g''' and click on '''Object Properties'''.
@@ Line 107: / Line 108: @@
 Click on '''Style''' tab and select '''dashed style'''.
-| | Let us make this line '''g '''blue and dashed.
+| | As shown earlier in this series, make this line '''g '''blue and dashed.
 |-
 | | Click on '''Tangents''' tool under '''Perpendicular Line''' tool.
@@ Line 113: / Line 114: @@
 |-
 | | Click on '''A''' and then on the '''parabola'''.
-| | Then click on '''A''' and then on the '''parabola'''.
+| | Click on '''A''' and then on the '''parabola'''.
 |-
 | | Point to '''tangent h''' at point '''A''' to the '''parabola'''.
@@ Line 119: / Line 120: @@
 |-
 | | Double click on '''tangent h''' and click on '''Object Properties'''.
 Under '''Color''' tab, select red.
@@ Line 126: / Line 128: @@
 |-
 | | Click on '''Point''' tool and click in '''Graphics''' view.
+Point to point '''C'''.
 | | Click on the '''Point''' tool and click anywhere in '''Graphics''' view.
-|-
-| | Point to point '''C'''.
-| | This creates point '''C'''.
+This creates point '''C'''.
 |-
 | | Double click on point '''C''' in '''Algebra''' view and change its '''coordinates''' to '''(x(B),y(A))'''.
+Point to '''C'''.
 | | In '''Algebra''' view, double-click on '''C''' and change its '''coordinates''' to the following ones.
-In parentheses, '''x B''' in parentheses comma '''y A''' in parentheses.
-Press '''Enter'''.
 |-
-| | Point to '''C'''.
+| |
 | | Now C has the same '''x coordinate''' as point '''B''' and the same '''y coordinate''' as point '''A'''.
-|-
-| |
-| | Let us draw segments '''BC''' and '''AC.'''
 |-
 | | Under '''Line''', click on '''Segment''' and click on '''B '''and '''C''', and then on '''A''' and '''C'''.
-| | Under '''Line''', click on '''Segment''' and click on '''B''' and '''C'''.
+| | Let us use the '''Segment''' tool to draw segments '''BC''' and '''AC.'''
-Then, click on '''A''' and '''C''' to draw '''AC'''.
-Note that '''BC''' and '''AC''' are called '''i''' and '''j''' in the order of their creation.
 |-
 | | Right-click on '''AC''' >> Select '''Object Properties''' >> '''Color''' tab >> Purple
 Click on '''Style''' tab >> select dashed line
+Under '''Basic''' tab >> choose '''Name and Value''' >> '''Show Label''' check box.
+Close the '''Preferences''' dialog box.
 | | We will make '''AC''' and '''BC''' purple and dashed segments.
 |-
-| | Under '''Basic''' tab >> choose '''Name and Value''' >> '''Show Label''' check box.
+| | With '''Move''' highlighted, drag '''B''' towards '''A''' on the '''parabola'''.
-| | Under '''Basic''' tab, choose '''Name and Value''' from the dropdown menu next to the '''Show Label''' check box.
+| | With '''Move''' highlighted, drag '''B''' towards '''A''' on the '''parabola'''.
-|-
-| | Close the '''Preferences''' dialog box.
-| | Close the '''Preferences''' dialog box.
-|-
-| | Click on '''Move''' and drag '''B''' towards '''A''' on the '''parabola'''.
-| | Click on '''Move''' and drag '''B''' towards '''A''' on the '''parabola'''.
 |-
 | | Point to the value of '''j''' (length of '''AC''') and lines '''g''' and '''h'''.
@@ Line 178: / Line 172: @@
 | | Derivative of the parabola is the slopes of tangents at all points on curve.
 |-
-| | Point to the lines '''g''' and '''h'''.
+| | Point to text-box that appears in '''GeoGebra''' window.
-| | When '''j''' equals 0, line '''g''' through '''A''' and '''B''' coincides with the tangent line '''h''' at '''A'''.
-But slope of '''g''' is undefined as the denominator of the ratio of '''i''' to '''j''' is 0.
-|-
-| | Point to text-box that appears in '''GeoGebra''' window.
 As '''B''' approaches '''A''', slope '''AB''' approaches slope of tangent at '''A'''.
@@ Line 195: / Line 185: @@
 '''Differentiation: First Principles, the Algebra'''
-'''f'(x) = lim_(j→0) length of Segment BC/length of Segment AC'''
-.......''' = lim_(j→0) [(f(x+j) – f(x)]/[(x+j) – x]'''
+'''f'(x) = lim_j→0  (length of Segment BC / length of Segment AC)'''
+'''<nowiki>= lim_j→0 </nowiki>[(f(x+j) – f(x)]/[(x+j) – x]'''
 Remember '''f(x) = x<sup>2</sup>-x, (x+j)<sup>2</sup> = x<sup>2</sup>+2xj+j<sup>2</sup>'''
-'''f'(x) = lim_(j→0) [(x+j)<sup>2</sup>-(x+j)-(x<sup>2</sup>-x)]/[(x+j-x]'''
+'''f'(x) = lim_j→0 [(x+j)<sup>2</sup>-(x+j)-(x<sup>2</sup>-x)]/(x+j-x)'''
 | | Slope of line '''AB''' equals the ratio of the lengths of '''BC''' to '''AC'''.
 Line '''AB''' becomes the tangent at point '''A''' as distance '''j''' between '''A''' and '''B''' approaches 0.
 '''BC''' is the difference between '''y' coordinates''', '''f of x''' plus '''j''' and '''f of x''', for '''A''' and '''B'''.
 '''AC''' is the difference between the '''x-coordinates''', '''x''' plus '''j''' and '''x'''.
 Let us rewrite '''f of x''' plus '''j''' and '''f of x''' in terms of '''x squared''' minus '''x'''.
 We will expand the terms in the numerator.
 |-
-| | '''Slide 8 Differentiation: First Principles—the Algebra-Cont’d'''
+| | '''Slide 8 The Algebra-Cont’d'''
+'''f'(x) = lim_j→0 [x<sup>2</sup>+2xj+j<sup>2</sup>-x-j-x<sup>2</sup>+x]/j'''
+'''<nowiki>= lim_j→0 [</nowiki>2xj+j<sup>2</sup>-j]/j = lim_j→0 [j(2x+j-1)]/j'''
-'''f'(x) = lim_(j→0) [x<sup>2</sup>+2xj+j<sup>2</sup>-x-j-x<sup>2</sup>+x]/j'''
-..............'''= lim_(j→0) [2xj+j<sup>2</sup>-j]/j = lim_(j→0) [j(2x+j-1)]/j'''
+'''<nowiki>= lim_j→0 [2x+j-1] = 2x-1</nowiki>'''
-..................'''= lim_(j→0) [2x+j-1] = 2x-1'''
-'''f'(x<sup>2</sup>-x) = 2x - 1'''
+'''f'(x<sup>2</sup>-x) = 2x -1'''
 | | After expanding the terms in the numerator, we will cancel out similar terms with opposite signs.
-As '''j''' is a common factor in the numerator, we will pull it out.
-Now, we can cancel '''j''' from both the numerator and denominator.
+We will pull out '''j''' from the numerator, and cancel it.
+Note that as '''j''' approaches 0, '''j''' can be ignored so that '''2x''' plus '''j''' minus 1 approaches '''2x''' minus 1.
-Note that as '''j''' approaches 0, '''j''' can be ignored so that '''2x''' plus '''j''' minus  1 approaches '''2x''' minus 1.
 As we know, derivative of '''x squared''' minus<sup> '''</sup>x''' is '''2x''' minus 1.
-Thus, the derivative of a '''function''' is the slope of the tangent at a point on the function.
 |-
 | |
@@ Line 242: / Line 258: @@
 '''Differentiation of a Polynomial Function'''
 Consider '''g(x)=5+12x-x<sup>3'''</sup>
-'''d(5+12x-x<sup>3</sup>)/dx = d(5)/dx + d(12x)/dx - d(x<sup>3</sup>)/dx = 0 + 12 - 3x <sup>2 </sup> = -3x <sup>2 </sup>+12'''
+'''Differentiation rules''':
+'''<div>d(u±v)/dx = d(u)/dx ± d(v)/dx</div>'''
+'''d(5+12x-x<sup>3</sup>)/dx = d(5)/dx + d(12x)/dx - d(x<sup>3</sup>)/dx <nowiki>= 0 + 12 - 3x</nowiki><sup>2 </sup><nowiki>= -3x</nowiki><sup>2 </sup>+12'''
 For '''g(x)=5+12x-x<sup>3</sup>, g'(x) = -3x<sup>2 </sup>+12'''
 | |
-Consider '''g of x''' equals 5 plus '''12 x '''minus '''x cubed'''.
+Consider '''g of x'''.
 Derivative '''g prime x''' is the sum and difference of derivatives of the individual components.
-'''g prime x''' equals 5 plus '''12 x''' minus '''x cubed''' is calculated by applying these rules.
+'''g prime x''' is calculated by applying these rules.
 |-
 | |
@@ Line 263: / Line 288: @@
 | | Type '''g(x)=5+12x-x^3''' in '''input bar''' >> '''Enter'''
 | | In the '''input bar''', type the following line and press '''Enter'''.
+|-
+| | Under '''Move Graphics View''', click on '''Zoom Out'''.
+Click in '''Graphics''' view until you see '''function g'''.
+| | As shown earlier in the series, zoom out to see '''function g''' properly.
-'''g x''' in parentheses equals 5 plus '''12 x''' minus '''x caret''' 3
 |-
 | | Right-click in '''Graphics''' view and select '''xAxis : yAxis''' option.
@@ Line 273: / Line 303: @@
 Select 1 is to 5.
 |-
-| | Click on '''Point on Object''' tool and click on the curve to create point '''A'''.
+| | Under '''Move Graphics View''', click on '''Zoom Out''' again.
-| | Click on '''Point on Object''' tool and click on curve '''g of x''' to create point '''A'''.
+Click in '''Graphics''' view to zoom out.
+| | I will zoom out again.
 |-
-| | Click on '''Tangent''' under '''Perpendicular Line'''.
+| | Click on '''Point on Object''' tool and click on the curve to create point '''A'''.
+Click on '''Tangent''' under '''Perpendicular Line'''.
 Click on point '''A''' and the curve.
-| | Under '''Perpendicular Line''', click on '''Tangent'''.
-Now click on point '''A''' and the curve '''g of x'''.
+| | As shown earlier, draw point '''A''' on curve '''g''' and a tangent '''f''' at this point.
-|-
-| | Point to tangent line '''f''' to the curve at point '''A'''.
-| | This draws a tangent line '''f''' to the curve at point '''A'''.
 |-
 | | Click on '''Slope''' tool under '''Angle''' tool and on tangent line '''f'''.
@@ Line 290: / Line 320: @@
 |-
 | | Point to slope of '''line f''' at '''A''' appearing as '''m''' value in '''Graphics''' view.
 | | Slope of line '''f'''at '''A''' appears as '''m''' value in '''Graphics''' view.
 |-
 | | Click on '''Point''' tool and in '''Graphics''' view to create point '''B'''.
-| | Click on '''Point''' tool and click in '''Graphics''' view to create point '''B'''.
-|-
-| | Double click on point '''B''' in '''Algebra''' view and change '''coordinates''' to ('''x(A), m)'''.
-| | In '''Algebra''' view, double click on '''B''' and change its '''coordinates''' to '''x A''' in parentheses comma '''m'''.
-Press '''Enter'''.
+Double click on point '''B''' in '''Algebra''' view and change '''coordinates''' to ('''x(A), m)'''.
-|-
-| | Point to points '''A''' and '''B''' and slope ''' m''' of tangent line '''g'''.
-| | This makes '''x coordinate''' of '''B''' the same as that of '''A'''.
-And slope '''m''' of tangent line '''f''' is its '''y coordinate'''.
+Point to points '''A''' and '''B''' and slope ''' m''' of tangent line '''g'''.
+| | Draw point '''B''' and change its '''coordinates''' to '''x A''' in parentheses comma '''m'''.
 |-
 | | Right-click on point '''B''' and select '''Trace On''' option.
@@ Line 311: / Line 337: @@
 Observe the curve traced by point '''B'''.
-| | Click on '''Move''' tool and move point '''A''' on the curve.
+| | With '''Move''' tool highlighted, move point '''A''' on the curve.
 Observe the curve traced by point '''B'''.
+|-
+| |
+| | Let us check whether we have the correct '''derivative''' graph.
 |-
 | | Type '''Deri''' in '''input bar''' >> select '''Derivative( <Function> )''' >> Type '''g''' instead of highlighted '''<Function>''' >> press '''Enter'''
 | | In the '''input bar''', type '''capital D e r i'''.
 From the menu that appears, select '''Derivative Function''' option.
 Type '''g''' to replace the highlighted word '''<Function>'''.
 Press '''Enter'''.
 |-
-| | Point to the derivative graph.
+| |
-| | This will confirm that you have the correct derivative graph.
-|-
-| | Point to the equation of '''g prime x''' in '''Algebra''' view.
 | | Note the equation of '''g prime x''' in '''Algebra''' view.
-|-
-| | Drag the boundary to see it properly.
+Drag the boundary to see it properly
-| | Drag the boundary to see it properly.
 |-
 | | Compare slide’s calculations with equation of '''g'(x)''' in '''Algebra''' view.
@@ Line 337: / Line 365: @@
 |-
 | |
-| | Let us use differentiation to find the maxima and minima of a '''function'''.
+| | Let us find the maxima and minima of the '''function g of x'''.
-Let us look at '''g of x'''.
 |-
 | | Point to derivative curve '''g'(x)''' above the '''x-axis''' and to '''g(x)'''.
@@ Line 350: / Line 376: @@
 | | 2 and -2 are the values of '''x''' when '''g prime x''' equals 0.
 |-
-| | Point to the "peak" and "valley" on '''g of x'''.
+| |
 | | Slope of the tangents at the corresponding points on '''g of x''' is 0.
@@ Line 356: / Line 382: @@
 |-
 | |
 Point to '''(-2,-11)''' and '''(2,21)'''.
 | | Hence, for '''g of x,''' -2 comma -11 is the minimum and 2 comma 21 is the maximum.
@@ Line 363: / Line 388: @@
 | | In '''GeoGebra''', we can see that the minimum value of '''g of x''' lies between '''x''' equals -3 and '''x''' equals -1.
 |-
-| | In the '''input bar''', type '''Min''' with capital M.
+| | In the '''input bar''', type '''Min'''.
 From the menu that appears, select '''Min Function Start x-Value End x-Value''' option.
-Type '''g''' instead of the highlighted word '''Function'''.
+Type '''g''' for '''Function'''.
-Press '''Tab''' to move to and highlight '''Start x-Value''' and type -3.
+Press '''Tab''' to go to the next argument.
-Again, press '''Tab''' to move to and highlight '''End x-Value''' and type -1.
+Type -4 and -1 as '''Start''' and '''End x-Values'''.
 Press '''Enter'''.
-| | In the '''input bar''', type '''Min''' with capital M.
+| | In the '''input bar''', type '''Min'''.
 From the menu that appears, select '''Min Function Start x-Value End x-Value''' option.
-Type '''g''' instead of the highlighted word '''Function'''.
+Type '''g''' for '''Function'''.
-Press '''Tab''' to move to and highlight '''Start x-Value''' and type -3.
+Press '''Tab''' to go to the next argument.
-Again, press '''Tab''' to move to and highlight '''End x-Value''' and type -1.
+Type -4 and -1 as '''Start''' and '''End x-Values'''.
 Press '''Enter'''.
 |-
-| | Point to minimum '''C''' in '''Graphics '''view and its '''co-ordinates''' in '''Algebra''' view.
+| | Point to minimum '''C''' in '''Graphics''' view and its '''co-ordinates''' in '''Algebra''' view.
-| | In '''Graphics''' view, we see the minimum on '''g of x'''.
+| | We see the minimum on '''g of x'''.
 Its '''co-ordinates''' are -2 comma -11 in '''Algebra''' view.
 |-
-| | In the '''input bar''', type '''Max''' with capital M.
+| | In the '''input bar''', type '''Max'''.
 From the menu that appears, select '''Max Function Start x-Value End x-Value''' option.
-Type '''g''' instead of the highlighted word '''Function'''.
-Press '''Tab''' to move to and highlight '''Start x-Value''' and type 1.
+Type '''g''', 1 and 4 as the arguments.
-Again, press '''Tab''' to move to and highlight '''End x-Value''' and type 4.
 Press '''Enter.'''
-| | In the '''input bar''', type '''Max''' with capital M.
+| | In the '''input bar''', type '''Max'''.
 From the menu that appears, select '''Max Function Start x-Value End x-Value''' option.
-Type '''g''' instead of the highlighted word '''Function'''.
-Press '''Tab''' to move to and highlight '''Start x-Value''' and type 1.
+Type '''g''', 1 and 4 as the arguments.
-Again, press '''Tab''' to move to and highlight '''End x-Value''' and type 4.
+Press '''Enter.'''
-Press '''Enter'''.
 |-
 | | Point to maximum '''C''' in '''Graphics''' view and its '''co-ordinates''' in '''Algebra''' view.
-| | In '''Graphics''' view, we see the maximum on '''g of x'''.
+| | We see the maximum on '''g of x''', 2 comma 21.
-Its '''co-ordinates''' are 2 comma 21 in '''Algebra''' view.
 |-
 | |
@@ Line 425: / Line 442: @@
 '''A Practical Application of Differentiation'''
 We have a 24 inches by 15 inches piece of cardboard
@@ Line 433: / Line 451: @@
 What size squares should we cut out to get the maximum volume of the box?
-|  | '''A Practical Application of Differentiation'''
+| | '''A Practical Application of Differentiation'''
 We have a 24 inches by 15 inches piece of cardboard.
@@ Line 446: / Line 465: @@
 '''A Sketch of the Cardboard'''
 Let’s draw the cardboard:
@@ Line 452: / Line 472: @@
 The volume function here is '''(24-2x)*(15-2x)*x''' cubic inches.
-|  | '''A Sketch of the Cardboard'''
+| | '''A Sketch of the Cardboard'''
 Let us draw the cardboard:
 This is the volume '''function''' here.
 You could expand it into a '''cubic polynomial'''<nowiki>; but we will leave it as it is. </nowiki>
 |-
 | | Open a new '''GeoGebra''' window.
 | | Open a new '''GeoGebra''' window.
 |-
 | | Type '''(24-2 x) (15-2 x) x''' in the '''input bar''' >> '''Enter'''.
 | | In the '''input bar''', type the following line and press '''Enter'''.
-In parentheses, 24 minus 2 space '''x''' space in parentheses 15 minus 2 space '''x''' space '''x'''
 |-
 | | Drag the boundary to see the equation properly in '''Algebra''' view.
@@ Line 472: / Line 500: @@
 |-
 | | Right-click in '''Graphics''' view and set '''xAxis : yAxis''' to '''1:50'''.
+Under '''Move Graphics View''', click on '''Zoom Out'''.
+Click in '''Graphics''' view to see the '''function''' properly.
 | | Right-click in '''Graphics''' view and set '''xAxis''' is to '''yAxis''' to 1 is to 50.
+Now, zoom out to see the function properly.
 |-
 | | Point to the graph for this volume '''function''' in '''Graphics''' view.
 Click in and drag the background to move '''Graphics''' view to see the maximum.
 | | Observe the graph that is plotted for this volume '''function''' in '''Graphics''' view.
-Click in and drag the background to move '''Graphics''' view to see the maximum.
+Drag the background to see the maximum.
 |-
 | | Point to the maximum on top of the broad peak and to '''x''' = 0 and '''x''' = 7.
@@ Line 486: / Line 528: @@
 | | Point to both axes.
 | | The length of the square side is plotted along the '''x-axis'''.
 Volume of the box is plotted along the '''y-axis'''.
 |-
 | | In the '''input bar''', type '''Max''' with capital M.
 From the menu that appears, select '''Max Function Start x-Value End x-value'''.
 Instead of highlighted '''Function''', type '''f'''.
 Press '''Tab''' to move and highlight '''Start x-Value''' and type 0.
 Again, press '''Tab''' to move and highlight '''End x-Value''' and type 10.
 Press '''Enter'''.
 | | As before, let us find the maximum of this '''function'''.
 |-
-| | Point to the maximum,''' A''', in '''Graphics''' view and its '''coordinates''' in '''Algebra''' view.
+| |
+Point to the maximum,''' A''', in '''Graphics''' view and its '''coordinates''' in '''Algebra''' view.
 | | This maps the maximum, point '''A''', on the curve.
-Click in and drag the background to see
 Its '''coordinates''' 3 comma 486 appear in '''Algebra''' view.
-Thus, we have to cut out 3 inches squares from all corners.
+Thus, we have to cut out 3 inch squares from all corners.
 This will give the maximum possible volume of 486 cubic inches for the cardboard box.
@@ Line 519: / Line 575: @@
 '''Summary'''
-| | In this '''tutorial''', we have learnt how to use '''GeoGebra''' to:
+| | In this tutorial, we have learnt how to use '''GeoGebra''' to:
 Understand differentiation
@@ Line 541: / Line 597: @@
 Draw graphs of derivatives of the following functions in '''GeoGebra'''.
 Find the derivatives of these '''functions''' independently and compare with '''GeoGebra''' graphs.