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College Algebra
Chapter 4
Mary Stangler Center for Academic Success
Note:
This review is composed of questions similar to those
in the chapter review at the end of chapter 4. This
review is meant to highlight basic concepts from
chapter 4. It does not cover all concepts presented
by your instructor. Refer back to your notes, unit
objectives, handouts, etc. to further prepare for your
exam.
Mary Stangler Center for Academic Success
For π π₯ = π₯ + 4 and π π₯ = π₯ 2 + 4 find:
πβπ
πβπ
πβπ
πβπ
3
β1
0
4
πβπ 3
i) Find g(3): π 3 = (3)2 +4=13
ii) Find f(13): π 13 = 13 + 4 = 17
π β π 3 = 17
π β π β1
i) find f(-1): π β1 = β1 + 4 = 3
ii) find π( 3): π( 3)=( 3)2 +4=3+4=7
π β π β1 =7
πβπ 0
i) find f(0): f 0 = 0 + 4 = 4 = 2
ii) find f(2): π 2 = 2 + 4 = 6
πβπ 0 = 6
πβπ 4
i) Find g(4): π 4 = 42 + 4 = 20
ii) Find g(20): π 20 = 202 + 4 = 404
π₯+2
1
For π π₯ = π₯β1 and π π₯ = 3π₯ find: π β π and π β π. State the domain for each composite
function.
πβπ
1
+2
1
3π₯
π
=
1
3π₯
β1
3π₯
Find the common denominator and
ππππππ πππππππππ‘ππ
multiply the function by
ππππππ πππππππππ‘ππ
1
+ 2 3π₯
1
3π₯
π
=
β
1
3π₯
β 1 3π₯
3π₯
Multiple 3x through
1
1 + 6π₯
π
=
3π₯
1 β 3π₯
1 + 6π₯
πβπ π₯ =
1 β 3π₯
Domain: Find the domain of the result and the
domain of the inside function.
1+6π₯
1
Domain of the result (
) is {π₯|π₯ β }. The
1β3π₯
3
domain of the inside function (g). {π₯|π₯ β 0}.
Combining these the domain of π β π
1
is {π₯|π₯ β , x β 0}.
3
πβπ
1
1
=
1
3π₯
3
3π₯
Simplify βthrees cancel out
π
1
1
=
1
3π₯
π₯
Rewrite
1
1 1
π
= ÷
3π₯
1 π₯
Flip to make multiplication
1
1
π
= βπ₯ =π₯
3π₯
1
πβπ π₯ =π₯
Domain: Find the domain of the result and the
domain of the inside function.
Domain of the result (x) is all real numbers The
domain of the inside function (g). {π₯|π₯ β 0}.
Combining these the domain of π β π
is {π₯| x β 0}.
π
Find the inverse of π π₯ = π₯ β 5. The function is one-to-one.
π π₯ = π₯β5
π¦ = π₯β5
Switch x and y
π₯ = π¦β5
Solve for y
π₯2 = π¦ β 5
π₯2 + 5 = π¦
π β1 x = π₯ 2 + 5
Mary Stangler Center for Academic Success
1
If π π₯ = log 4 π₯ , evaluate π(16) and π 64 by hand.
π
1
π
ππ
1
π
= log 4
16
16
Rewrite 16 in terms of the base of the logarithm (4)
π
1
16
Use
π
1
16
1
42
βπ
= log 4
1
π₯π
=π₯
π ππ
π 64 = log 4 64
Rewrite 64 in terms of the base of the logarithm (4)
π 64 = log 4 43
Use log π₯ π₯ π = π
π 64 = 3
= log 4 4β2
Use log π₯ π₯ π = π
π
1
16
= β2
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3π₯
Find the domain of β π₯ = log(π₯+1)
1. Set the inside of the logarithm to be greater than zero and solve
3π₯
>0
π₯+1
3π₯ > 0
π₯>0
2. Set the denominator equal to zero and solve. x cannot be this value
π₯+1=0
π₯ = β1
π₯ β β1
3. Combine the results from 1 and 2
Domain is π₯ π₯ > 0, π₯ β β1
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Write the expression as the sum and/or difference of logarithms. Express powers as factors.
3π₯ 2
log 3
π€π¦
π₯
π¦
2
Use log π₯π¦ = log π₯ + log π¦ and log = log π₯ β log π¦
log 3
Simplify (remember log π π = 1
Use log π₯ π = π log π₯
3π₯
= log 3 3 + log 3 π₯ 2 β (log 3 π€ + log 3 π¦)
π€π¦
1 + log 3 π₯ 2 β log 3 π€ β log 3 π¦
3π₯ 2
log 3
= 1 + 2log 3 π₯ β log 3 π€ β log 3 π¦
π€π¦
Mary Stangler Center for Academic Success
Write the expression as a single logarithm
ln
π₯+2
π₯
+ ln
π₯
π₯β2
β ln(π₯ 2 β 4)
π₯
π¦
Use log π₯π¦ = log π₯ + log π¦ and log = log π₯ β log π¦
ln
π₯+2
π₯
ln
Simplify
π₯
β ln(π₯ 2 β 4)
π₯β2
π₯+2
π₯
π₯
π₯β2
2
π₯ β4
ln
π₯+2
π₯β2
π₯2 β 4
π₯+2
π₯+2
π₯β2
ln
= ln
÷( π₯β2 π₯+2 )
(π₯ β 2)(π₯ + 2)
π₯β2
π₯+2
1
ln
β
π₯β2 π₯β2 π₯+2
Cross out the x+2 from the numerator and the denominator
1
1
ln
= ln
(π₯ β 2)(π₯ β 2)
(π₯ β 2)2
Mary Stangler Center for Academic Success
For each function f
a) find the domain of f
b) Graph f
c) From the graph, determine the range and any asymptotes of f
e) Find the domain and range of π β1
f) graph π β1
i) π π₯ = 3π₯β1
π π = ππβπ
a) Domain is all real numbers
d) find π β1
ii) π π₯ = ln(π₯ + 2)
π π = ππ(π + π)
a) Domain
π₯+2>0
π₯ > β2
{π₯|π₯ > β2}
b)
b)
c) The range is {π¦|π¦ > 0}
c) The range is all real numbers
Mary Stangler Center for Academic Success
For each function f
a) find the domain of f
b) Graph f
c) From the graph, determine the range and any asymptotes of f
e) Find the domain and range of π β1
f) graph π β1
i) π π₯ = 3π₯β1
d) find π β1
ii) π π₯ = ln(π₯ + 2)
π π = ππβπ
d. π¦ = 3π₯β1
π₯ = 3π¦β1
log 3 π₯ = π¦ β 1
log 3 π₯ + 1 = π¦
π β1 x = log 3 π₯ + 1
π π = ππ(π + π)
d. π¦ = ln(π₯ + 2)
π₯ = ln(π¦ + 2)
ππ₯ = π¦ + 2
ππ₯ β 2 = π¦
π β1 x = π π₯ β 2
Remember Domain of π = range of πβπ and the range of π = domain of πβπ
e. Domain: π₯ π₯ > 0
Range: All real numbers
f.
e. Domain: all real numbers
Range: π¦ π¦ > β2
f.
Solve
a) 4π₯+2 = 16π₯
b)3π₯ = 6π₯+1
c) 9π₯ β 6 β
3π₯ + 5 = 0
ππ+π = πππ
ππ = ππ+π
ππ β π β
ππ + π = π
Write each with the same base
4π₯+2 = (42 )π₯
4π₯+2 = 42π₯
Since the bases are the same, we
can cross them out
π₯ + 2 = 2π₯
Solve for x
2=π₯
Take the Log of both sides
πΏππ 3π₯ = πΏππ 6π₯+1
Use log π₯ π = π log π₯
π₯ log 3 = (π₯ + 1) log 6
Distribute log 6
π₯ log 3 = π₯ log 6 + log 6
Bring everything with an x to the
same side
π₯ log 3 β π₯ log 6 = log 6
Factor out x
π₯ (log 3 β log 6) = log 6
Solve for x
log 3 β log 6
π₯=
log 6
Get common exponential
(3π₯ )2 β 6 β
3π₯ + 5 = 0
Use u substitution for 3π₯
π’2 β 6π’ + 5 = 0
Solve for u (factor)
π’β5 π’β1 =0
π’ = 5 ππ π’ = 1
Use values for u to solve for 3π₯
5 = 3π₯ ππ 1 = 3π₯
For each equation, take the log on
both sides to solve for x
log 3 5 = π₯ ππ log 3 1 = π₯
π₯ β 1.465 ππ π₯ = 0
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Solve
a) ln π₯ + 2 = 4
b) log π₯ + 2 + log π₯ + 1 = 1
ππ π + π = π
Write in exponential form
π4 = π₯ + 2
Square both sides
(π 4 )2 = ( π₯ + 2)2
Remember (π₯ π )π = π₯ ππ
π8 = π₯ + 2
Solve for x
π8 β 2 = π₯
πππ π + π + πππ π + π = π
Combine Logs
log (π₯ + 2 (π₯ + 1)) = 1
FOIL
2
log π₯ + π₯ + 2π₯ + 2 = 1
log π₯ 2 + 3π₯ + 2 = 1
Write in exponential form
π₯ 2 + 3π₯ + 2 = 101
π₯ 2 + 3π₯ + 2 = 10
π₯ 2 + 3π₯ β 8 = 0
Solve using the quadratic formula (not shown)
π₯=
However only
Mary Stangler Center for Academic Success
β3± 41
2
β3+ 41
π₯=
2
works
A childβs aunt wishes to purchase a bond that matures in 18 years to be used for his college
education. The bond pays 6% interest compounded semiannually. How much should they pay so
the bond is worth $150,000 at maturity.
π
π
Use π΄ = π(1 + )ππ‘
P=? A=150000 t=18 n=2 (semiannually) r=.06
.06 2β18
150000 = π(1 +
)
2
Solve for P
150000
=π
.06 2β18
(1 +
)
2
π β 4045.31
Mary Stangler Center for Academic Success
A pan is removed from an oven where the temperature is 425β and placed in a room whose
temperature is 68β. After 10 minutes, the temperature of the pan is 375β. How long will it be
until the temperature is 200β. Round k to 3 decimal places
Using Newtonβs Law of cooling (π’ π‘ = π + (π’0 β π)π ππ‘ )
T=temperature of the room =68
π’0 =the initial temperature of the pan=425
k=negative constant currently unknown
1) Find K. Let π’ π‘ =375 when t=10
375 = 68 + (425 β 68)π π10
Combine like terms
375 = 68 + 357π π10
Subtract 68 from both sides
307 = 357π π10
Divide by 357
307
= π π10
357
Rewrite in logarithmic form
307
ln
= π10
357
Divide by 10
307
ln
π = 357 β β.015
10
2) Substitute the known values of k, let
π’ π‘ =200, and solve for t
200 = 68 + (425 β 68)π β.015π‘
Combine like terms
200 = 68 + (357)π β.015π‘
Subtract 68 from both sides
132 = 357π β.015π‘
Divide by 357
132
= π β.015π‘
357
Rewrite in logarithmic form
132
ln
= β.015π‘
357
Divide by -.015
132
ln
π‘ = 357 β 66.3 ππππ’π‘ππ
β.015
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