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picture1_Differentiation Pdf 169757 | 2015 Sm Implicit  Differentiation Tinspirecas


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File: Differentiation Pdf 169757 | 2015 Sm Implicit Differentiation Tinspirecas
specialist mathematics unit 3 implicit differentiation ti n spire cas explicit function is a function in which the dependant variable can be written 3 yx4 explicitly in terms of independent ...

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                                               Specialist Mathematics Unit 3  
                                    IMPLICIT DIFFERENTIATION TI N-spire CAS. 
                    
                   Explicit Function – is a function in which the dependant variable can be written 
                                                                                        3
                                                                              yx4
                   explicitly in terms of independent variable. For example:               , 
                    f (x)  loge(sin x) . 
                    
                   Implicit relation – a function or relation, in which the dependant variable is not 
                                                                           24
                   isolated on one side of the equation. For example:   x 3xy2y 1 represents an 
                   implicit relation. 
                    
                   Implicit differentiation is used to differentiate implicit relations. 
                    
                   EXAMPLES:  
                       1.  Find  dy  by implicit differentiation for each of the following relationships: 
                                 dx
                               3                      32
                       a.                         b.                    c.             
                          xy                        xy                   xy 21x
                           22                          22
                       d.                         d. 2x 2xyy 5 
                          xy1
                               12y
                       e.  xsin ()y e  
                        
                       2.  Given that  xy yx2 0, find  dy  
                                                            dx
                       a.  by explicit differentiation (making y the subject). 
                       b.  by implicit differentiation. 
                        
                       3.  Find the equation of the tangent to the curve at the indicated point: 
                           2                                         22 4
                       a.          at (2, -4)                    b.              at (5, )  
                          yx8                                      xy99 3
                                                                     22
                                2        17                         xy
                                                                       1
                       c.             at (  , 4)                 d.             at (0,-3) 
                          xyy    1      4                         16   9
                        
                       4.  Using TI-Nspire CAS calculator: 
                        
                     To differentiate implicitly, in Calculator      Type the equation you want to 
                     screen select Menu Calculus Implicit            differentiate: 
                     Differentiation :                               impDif(xyy^2 1,x,y) 
                                                                     Note that the syntax above gives  dy. 
                                                                                                       dx
                                                                      
                                                                      
                                                                      
                                                                      
                                                             
                                                                                                         1 
                   
                    
                   To find the gradient at a given point type the 
                   conditions after using ‘given that’ sign as 
                   shown in the screen to the right. 
                   impDif(xyy^21,x,y) x17/4and y4 
                    
                   If you type: impDif( xyy^2  1, y, x) , you 
                   will get  dx. 
                           dy                                                                         
                                                                Note that you need times sign between 
                                                                x and y. 
                                                         
                                                                                 22
                      PROBLEM ONE: Consider the conic section with equation x xy y 20.  
                   
                       a.  Make y the subject of the 
                          equation. 
                   Note: In the current OS we can draw the 
                   conic sections without making y the 
                   subject. 
                    
                       b. Show that the domain is 
                       (,4][4,).  
                       c. Find an expression for  dy.  
                                               dx                                                
                    
                       d. Sketch the graph.  
                   You can also draw equations of tangents 
                   to the graph and find their equations. 
                    
                       e. Find the equations of the vertical 
                       tangents. 
                    
                    
                                                                                                 
                                                                                                  2 
                    
                                                            
                    So the equations of the vertical tangents 
                    are                  . 
                        x  44and x  
                     
                     
                        
                       PROBLEM TWO: 
                        
                       The graph of the curve   2    2 2      2 is shown 
                                              (x y )    4xy
                       alongside.  
                       a.  Find the gradient of the curve at the point where 
                           x 1. Explain your result. 
                       b.  Find the gradients of the curve where  y  1, giving 
                                                                    2
                          your answers to 2 decimal places. 
                       c.  Find the equation of the normal  
                    
                    
                    Differentiate implicitly. 
                     
                    Find the y-values when  x 1 and the x-
                    values when  y  1, 
                                     2
                    It can be seen that  dy  is undefined for 
                                       dx
                     y  0 and also at (1,1) and at (1,-1) – it 
                    makes the denominator equal to zero.                                              
                                                                
                     
                                                                                                      
                                                                                                       3 
                    
                    To sketch the graph we need to find         
                    expressions for y in terms of x: 
                     
                          4x2x2 (2x24x)24x4
                     y2                                 
                                        2
                    And enter as      of the above which 
                    means that we need to enter 4 equations. 
                                                                                                       
                                                            
                                                                
                    You can also draw tangents to the curve 
                    at those values of x.  
                     
                    So the equation of the tangent to the 
                    graph at (0.804233, 0.5) is 
                                            . 
                     yx1.32428    .565029
                     
                                                                                                       
                                                                
                                                                
                    
                                                                                                        4 
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...Specialist mathematics unit implicit differentiation ti n spire cas explicit function is a in which the dependant variable can be written yx explicitly terms of independent for example f x loge sin relation or not isolated on one side equation xyy represents an used to differentiate relations examples find dy by each following relationships dx b c xy d y e xsin given that making subject tangent curve at indicated point using nspire calculator implicitly type you want screen select menu calculus impdif note syntax above gives gradient conditions after sign as shown right and if will get need times between problem consider conic section with make current os we draw sections without show domain expression sketch graph also equations tangents their vertical so are two alongside where explain your result gradients giving answers decimal places normal values when it seen undefined makes denominator equal zero expressions xx enter means those...

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