6 ftp.pproxima#Tangentlineatx--Ay=lCx-Dy~ · 2020. 10. 26. · 5. Find the linear approximation of...
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Notes: Linear Approximation Day 6 Application of Derivatives Classwork Example One: Find the linearization L(x) of the function at a. A. ሺሻ ൌ െ 2 2 , ൌ 5, B. ሺሻ ൌ , ൌ గ 4 , Example Two: Compute the linearization of ሺሻ ൌ √ −1 ൌ 1 Example Three: Approximate using linearization. A. √17 B. ln ሺ1.07ሻ C. ሺെ1.999ሻ 3 D.) sin ሺ89 ° ሻ Tangent line at * s Y - Yi - - MH - X , ) ① Point f- ( 57=-245.5-2125 ) y -1-45=-191×-5 ) ② Slope f- ' (57--191-415) y= - 191×-5) - 45 f- ' 1×7=1 - 4X argent line at * I , y - I =2lX - If ) ① Point H' E) =L tan y=2( x - ' E) tl ② Slope f- ' CE , )=2_ csectif.EE/=Iflxl--tanxfYxl..=sec2x Tangent line at # I flared - ' =CDeEClXD=I y - 1=21×-1 ) ① Point f- ( 17=-1 FIX ) -_ x' ' 2. ex - I 2 ② Slope f- ' ( D= -312 fy×keF ! + e ' !zx- ' k y - - Zzcx - htt f' care "te=HE=Z fyxtrxe 't 't zrx Because fcx ) is flxtrx y - 4 - - toll -16 ) Approximation concave down _*⇒ Tangent line at x=l6 y= ( x - 161+4 y24 . 125 the tangent line lies •←←#→ ① Point 'fCl67=-4 - ABIE f- ( x ) so OUR , ② Slope f' Clo ) -18--26=2743 y - - tool " -167+4 Th - - 4.123 approximation is an ' 6 fix )=x 't y - - tooth over approximation . f- ' Cx ) - - IK " - - 2¥ ya . 125+4924.125 ftp.pproxima#Tangentlineatx--Ay=lCx-Dy~.07 fame %39ionptffiYE-ty-khohenu.oa.ve #o¥¥ fix ) -_ enx ya . 07 I f- ' (x ) - - I f- ( x )=X3 y -18=121×-12 ) Approximation A iota :& .hn#ci.nze.Estx---2yy:.YfEt?ahaIg.s ( same ② Slope f 't -27=-1231-25 y= . 012-8 C- 1.99913=-7.988005 µ f- ' CX ) - - 3×2 yay -7,988 L FIX) - - Sino y - 1=04 - IL ) convert 897rad ( ←•→ Tangent line at # Iz y=o( x - E) ti 890 . ✓ L yer ① Point HE)=l_ Sin 'E 890=81 # same ② Slope f- ' C' E) = -0 COSTE Y - - 014¥ - 9¥ )H ego Approximation f 'Cx7= cost y - - Offgto) t ' yurt 921 silnfgqo ) I.99984
Transcript of 6 ftp.pproxima#Tangentlineatx--Ay=lCx-Dy~ · 2020. 10. 26. · 5. Find the linear approximation of...
Notes: Linear Approximation Day 6 Application of Derivatives
Classwork Example One: Find the linearization L(x) of the function
at a.
A. 22, 5,
B. , 4
, Example Two: Compute the linearization of √−1 1 Example Three: Approximate using linearization. A. √17 B. ln 1.07 C. 1.999 3 D.) sin 89°
Tangent line at *s Y - Yi -
- MH- X ,) Point f-(57=-245.5-2125) y -1-45=-191×-5 )
Slope f- ' (57--191-415) y= - 191×-5) - 45
f- '1×7=1 - 4X
argent line at * I, y - I =2lX - If )
PointH'E)=L tan y=2( x - 'E)tl Slope f- 'CE,)=2_csectif.EE/=Iflxl--tanxfYxl..=sec2x Tangent line at # I flared
- '=CDeEClXD=I y - 1=21×-1) Point f-(17=-1 FIX) -_ x''2.ex- I 2
Slope f- ' (D= -312 fy×keF! + e
' !zx- 'k y -
zrx
_*⇒
Tangent line at x=l6 y= (x- 161+4 y24. 125 the tangent line lies •←←#→ Point 'fCl67=-4 - ABIE f-(x) so OUR ,
Slope f'Clo)-18--26=2743 y - - tool" -167+4 Th -- 4.123 approximation is an
' 6
f- '
f- (x)=X3 y -18=121×-12) Approximation A
iota:&.hn#ci.nze.Estx---2yy:.YfEt?ahaIg.s ( same
Slope f 't-27=-1231-25 y= . 012-8 C-1.99913=-7.988005 µ f- ' CX) -- 3×2 yay -7,988
L
FIX) -- Sino y - 1=04-IL) convert 897rad ( ←•→Tangent line at # Iz y=o(x-E)ti 890 .
L yer Point HE)=l_ Sin'E 890=81# same
Slope f- ' C'E) =-0 COSTE Y -- 014¥ - 9¥)H ego
Approximation f 'Cx7= cost y -- Offgto) t ' yurt
921 silnfgqo ) I.99984
Notes: Linear Approximation Day 6 Application of Derivatives Example 4: How would you see it on the AP exam? A. The function is twice differentiable with 2 1, 2 4, and 2 3. What is the value of the approximation of 1.9 using the line tangent to the graph of at 2?
B. Let be a differentiable function such that 3 2 and 3 5. If the tangent line to the graph of at 3 is used to find an approximation to a zero of , that approximation is
1-4: Find the linearization L(x) of the function at a. 1. 4 2( ) 3 , 1f x x x a= + = 2. ( ) sin ,
6 f x x a= =
3. ( ) , 4f x x a= = 4. 3 4( ) , 16f x x a= =
(A) 0.4 (B) 0.6 (C) 0.7 (D) 1.3 (E) 1.4
(A) 0.4 (B) 0.5 (C) 2.6 (D) 3.4 (E) 5.5
@8apno9ehftfignzeIHHatx-2rfHlzt-3-pos9sie.t:¥¥.ie#ii:iii:ihEy---.4ttyz.6isanY2.6 under approximation
because f- ' ' CX ) >0 .
Tangent line of fix) atx-- 3 y 51×-37+2 f- (37=2 zerolrootlxiinterceptl solution@ f' ( 31=5 HI , @ D
y - 2=51×-37 0=5×-15+2 13=5X x -_ Eg -_ 245--2.6
5. Find the linear approximation of the function ( ) 1f x x= at a=0 and use it to approximate
the numbers 0.9 and 0.99 . 6-10: Use a linear approximation (or differentials) to estimate the given number.
6. ( )41.999
7. 0.015e
2 6 2 y x= +
3) ( )1 4 2 4
y x= +
.99 .995
6) ( )41.999 15.968 7) 0.015 .985e 8) 3 1001 10.003 9) 1 .249875
4.002 10) ( )tan 44 .965 11) 99.8 9.99
A. 22, 5,
B. , 4
, Example Two: Compute the linearization of √−1 1 Example Three: Approximate using linearization. A. √17 B. ln 1.07 C. 1.999 3 D.) sin 89°
Tangent line at *s Y - Yi -
- MH- X ,) Point f-(57=-245.5-2125) y -1-45=-191×-5 )
Slope f- ' (57--191-415) y= - 191×-5) - 45
f- '1×7=1 - 4X
argent line at * I, y - I =2lX - If )
PointH'E)=L tan y=2( x - 'E)tl Slope f- 'CE,)=2_csectif.EE/=Iflxl--tanxfYxl..=sec2x Tangent line at # I flared
- '=CDeEClXD=I y - 1=21×-1) Point f-(17=-1 FIX) -_ x''2.ex- I 2
Slope f- ' (D= -312 fy×keF! + e
' !zx- 'k y -
zrx
_*⇒
Tangent line at x=l6 y= (x- 161+4 y24. 125 the tangent line lies •←←#→ Point 'fCl67=-4 - ABIE f-(x) so OUR ,
Slope f'Clo)-18--26=2743 y - - tool" -167+4 Th -- 4.123 approximation is an
' 6
f- '
f- (x)=X3 y -18=121×-12) Approximation A
iota:&.hn#ci.nze.Estx---2yy:.YfEt?ahaIg.s ( same
Slope f 't-27=-1231-25 y= . 012-8 C-1.99913=-7.988005 µ f- ' CX) -- 3×2 yay -7,988
L
FIX) -- Sino y - 1=04-IL) convert 897rad ( ←•→Tangent line at # Iz y=o(x-E)ti 890 .
L yer Point HE)=l_ Sin'E 890=81# same
Slope f- ' C'E) =-0 COSTE Y -- 014¥ - 9¥)H ego
Approximation f 'Cx7= cost y -- Offgto) t ' yurt
921 silnfgqo ) I.99984
Notes: Linear Approximation Day 6 Application of Derivatives Example 4: How would you see it on the AP exam? A. The function is twice differentiable with 2 1, 2 4, and 2 3. What is the value of the approximation of 1.9 using the line tangent to the graph of at 2?
B. Let be a differentiable function such that 3 2 and 3 5. If the tangent line to the graph of at 3 is used to find an approximation to a zero of , that approximation is
1-4: Find the linearization L(x) of the function at a. 1. 4 2( ) 3 , 1f x x x a= + = 2. ( ) sin ,
6 f x x a= =
3. ( ) , 4f x x a= = 4. 3 4( ) , 16f x x a= =
(A) 0.4 (B) 0.6 (C) 0.7 (D) 1.3 (E) 1.4
(A) 0.4 (B) 0.5 (C) 2.6 (D) 3.4 (E) 5.5
@8apno9ehftfignzeIHHatx-2rfHlzt-3-pos9sie.t:¥¥.ie#ii:iii:ihEy---.4ttyz.6isanY2.6 under approximation
because f- ' ' CX ) >0 .
Tangent line of fix) atx-- 3 y 51×-37+2 f- (37=2 zerolrootlxiinterceptl solution@ f' ( 31=5 HI , @ D
y - 2=51×-37 0=5×-15+2 13=5X x -_ Eg -_ 245--2.6
5. Find the linear approximation of the function ( ) 1f x x= at a=0 and use it to approximate
the numbers 0.9 and 0.99 . 6-10: Use a linear approximation (or differentials) to estimate the given number.
6. ( )41.999
7. 0.015e
2 6 2 y x= +
3) ( )1 4 2 4
y x= +
.99 .995
6) ( )41.999 15.968 7) 0.015 .985e 8) 3 1001 10.003 9) 1 .249875
4.002 10) ( )tan 44 .965 11) 99.8 9.99
