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Big Ideas Constant Rates of Change
Rates of Change
Suppose the population of a small country was 1 million individuals in 1990, and isgrowing at a steady rate of 20,000 individuals per year.
x
y
1 mil
1990
2000
1.2 mil
2010
1.4 mil
P(x)
Big Ideas Constant Rates of Change
Rates of Change
Suppose the population of a small country was 1 million individuals in 1990, and isgrowing at a steady rate of 20,000 individuals per year.
x
y
1 mil
1990
2000
1.2 mil
2010
1.4 mil
P(x)
Big Ideas Constant Rates of Change
Rates of Change
Suppose the population of a small country was 1 million individuals in 1990, and isgrowing at a steady rate of 20,000 individuals per year.
x
y
1 mil
1990 2000
1.2 mil
2010
1.4 mil
P(x)
Big Ideas Constant Rates of Change
Rates of Change
Suppose the population of a small country was 1 million individuals in 1990, and isgrowing at a steady rate of 20,000 individuals per year.
x
y
1 mil
1990 2000
1.2 mil
2010
1.4 mil
P(x)
Big Ideas Constant Rates of Change
Rates of Change
Suppose the population of a small country was 1 million individuals in 1990, and isgrowing at a steady rate of 20,000 individuals per year.
x
y
1 mil
1990 2000
1.2 mil
2010
1.4 mil
P(x)
Big Ideas Constant Rates of Change
Rates of Change
Suppose the population of a small country was 1 million individuals in 1990, and isgrowing at a steady rate of 20,000 individuals per year.
x
y
1 mil
1990 2000
1.2 mil
2010
1.4 mil
P(x)
Big Ideas Constant Rates of Change
Rates of Change
Suppose the population of a small country was 1 million individuals in 1990, and isgrowing at a steady rate of 20,000 individuals per year.
x
y
1 mil
1990 2000
1.2 mil
2010
1.4 mil
P(x)
Big Ideas Constant Rates of Change
Definition
The slope of a line that passes through the points (x1, y1) and (x2, y2) is “rise over run”
∆y
∆x=
y2 − y1
x2 − x1.
This is also called the rate of change of the function.If a line has equation y = mx + b, its slope is m.
x
y
1 mil
1990 2000
1.2 mil
2010
1.4 mil
P(x)
∆x
∆y
Rate of change:400, 000 people
20 years= 20, 000
people
year(doesn’t depend on the year)
Big Ideas Constant Rates of Change
Definition
The slope of a line that passes through the points (x1, y1) and (x2, y2) is “rise over run”
∆y
∆x=
y2 − y1
x2 − x1.
This is also called the rate of change of the function.If a line has equation y = mx + b, its slope is m.
x
y
1 mil
1990 2000
1.2 mil
2010
1.4 mil
P(x)
∆x
∆y
Rate of change:400, 000 people
20 years= 20, 000
people
year(doesn’t depend on the year)
Big Ideas Constant Rates of Change
Definition
The slope of a line that passes through the points (x1, y1) and (x2, y2) is “rise over run”
∆y
∆x=
y2 − y1
x2 − x1.
This is also called the rate of change of the function.If a line has equation y = mx + b, its slope is m.
x
y
1 mil
1990 2000
1.2 mil
2010
1.4 mil
P(x)
∆x
∆y
Rate of change:400, 000 people
20 years= 20, 000
people
year
(doesn’t depend on the year)
Big Ideas Constant Rates of Change
Definition
The slope of a line that passes through the points (x1, y1) and (x2, y2) is “rise over run”
∆y
∆x=
y2 − y1
x2 − x1.
This is also called the rate of change of the function.If a line has equation y = mx + b, its slope is m.
x
y
1 mil
1990 2000
1.2 mil
2010
1.4 mil
P(x)
∆x
∆y
Rate of change:400, 000 people
20 years= 20, 000
people
year(doesn’t depend on the year)
Big Ideas Non-constant Rates of Change
Rates of Change
Suppose the population of a small country is given in the chart below.
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
0.8 mil ppl
10 years
2.4 mil ppl
10 years
Rate of change:∆ pop
∆ timedepends on time interval
Big Ideas Non-constant Rates of Change
Rates of Change
Suppose the population of a small country is given in the chart below.
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
0.8 mil ppl
10 years
2.4 mil ppl
10 years
Rate of change:∆ pop
∆ timedepends on time interval
Big Ideas Non-constant Rates of Change
Rates of Change
Suppose the population of a small country is given in the chart below.
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
0.8 mil ppl
10 years
2.4 mil ppl
10 years
Rate of change:∆ pop
∆ time
depends on time interval
Big Ideas Non-constant Rates of Change
Rates of Change
Suppose the population of a small country is given in the chart below.
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
0.8 mil ppl
10 years
2.4 mil ppl
10 years
Rate of change:∆ pop
∆ timedepends on time interval
Big Ideas Non-constant Rates of Change
Rates of Change
Suppose the population of a small country is given in the chart below.
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
0.8 mil ppl
10 years
2.4 mil ppl
10 years
Rate of change:∆ pop
∆ timedepends on time interval
Big Ideas Non-constant Rates of Change
Rates of Change
Suppose the population of a small country is given in the chart below.
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
0.8 mil ppl
10 years
2.4 mil ppl
10 years
Rate of change:∆ pop
∆ timedepends on time interval
Big Ideas Non-constant Rates of Change
Rates of Change
Suppose the population of a small country is given in the chart below.
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
0.8 mil ppl
10 years
2.4 mil ppl
10 years
Rate of change:∆ pop
∆ timedepends on time interval
Big Ideas Non-constant Rates of Change
Rates of Change
Suppose the population of a small country is given in the chart below.
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
0.8 mil ppl
10 years
2.4 mil ppl
10 years
Rate of change:∆ pop
∆ timedepends on time interval
Big Ideas Non-constant Rates of Change
Definition
Let y = f (x) be a curve that passes through (x1, y1) and (x2, y2). Then the average rateof change of f (x) when x1 ≤ x ≤ x2 is
∆y
∆x=
y2 − y1
x2 − x1
x
y
1990 2000 2010 20200.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
0.8 mil ppl
10 years
2.4 mil ppl
10 years
Average rate of change from 1990 to 2000: 80, 000 people per year.Average rate of change from 2010 to 2020: 240, 000 people per year.
Big Ideas Non-constant Rates of Change
Definition
Let y = f (x) be a curve that passes through (x1, y1) and (x2, y2). Then the average rateof change of f (x) when x1 ≤ x ≤ x2 is
∆y
∆x=
y2 − y1
x2 − x1
x
y
1990 2000 2010 20200.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
0.8 mil ppl
10 years
2.4 mil ppl
10 years
Average rate of change from 1990 to 2000: 80, 000 people per year.
Average rate of change from 2010 to 2020: 240, 000 people per year.
Big Ideas Non-constant Rates of Change
Definition
Let y = f (x) be a curve that passes through (x1, y1) and (x2, y2). Then the average rateof change of f (x) when x1 ≤ x ≤ x2 is
∆y
∆x=
y2 − y1
x2 − x1
x
y
1990 2000 2010 20200.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
0.8 mil ppl
10 years
2.4 mil ppl
10 years
Average rate of change from 1990 to 2000: 80, 000 people per year.Average rate of change from 2010 to 2020: 240, 000 people per year.
Big Ideas Non-constant Rates of Change
Average Rate of Change and Slope
What is the difference between average rate of change and slope?
Definition
The slope of a line that passes through the points (x1, y1) and (x2, y2) is “rise over run”
∆y
∆x=
y2 − y1
x2 − x1.
This is also called the rate of change of the function.If a line has equation y = mx + b, its slope is m.
Definition
Let y = f (x) be a curve that passes through (x1, y1) and (x2, y2). Then the average rateof change of f (x) when x1 ≤ x ≤ x2 is
∆y
∆x=
y2 − y1
x2 − x1
The average rate of change for a straight line is always the same, regardless of theinterval we choose. We call it the slope of the line. If a curve is not a straight line, itsaverage rate of change will differ over different intervals.
Big Ideas Non-constant Rates of Change
Average Rate of Change and Slope
What is the difference between average rate of change and slope?
Definition
The slope of a line that passes through the points (x1, y1) and (x2, y2) is “rise over run”
∆y
∆x=
y2 − y1
x2 − x1.
This is also called the rate of change of the function.If a line has equation y = mx + b, its slope is m.
Definition
Let y = f (x) be a curve that passes through (x1, y1) and (x2, y2). Then the average rateof change of f (x) when x1 ≤ x ≤ x2 is
∆y
∆x=
y2 − y1
x2 − x1
The average rate of change for a straight line is always the same, regardless of theinterval we choose. We call it the slope of the line. If a curve is not a straight line, itsaverage rate of change will differ over different intervals.
Big Ideas Non-constant Rates of Change
Average Rate of Change and Slope
What is the difference between average rate of change and slope?
Definition
The slope of a line that passes through the points (x1, y1) and (x2, y2) is “rise over run”
∆y
∆x=
y2 − y1
x2 − x1.
This is also called the rate of change of the function.If a line has equation y = mx + b, its slope is m.
Definition
Let y = f (x) be a curve that passes through (x1, y1) and (x2, y2). Then the average rateof change of f (x) when x1 ≤ x ≤ x2 is
∆y
∆x=
y2 − y1
x2 − x1
The average rate of change for a straight line is always the same, regardless of theinterval we choose. We call it the slope of the line. If a curve is not a straight line, itsaverage rate of change will differ over different intervals.
Big Ideas Instantaneous Rates of Change
Rates of Change
How fast is the population growing in the year 2010?
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
0.8 mil ppl
10 years
2.4 mil ppl
10 years
2005 2015
tangent line
secant line
Big Ideas Instantaneous Rates of Change
Rates of Change
How fast is the population growing in the year 2010?
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
2005 2015
tangent line
secant line
Big Ideas Instantaneous Rates of Change
Rates of Change
How fast is the population growing in the year 2010?
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
2005 2015
tangent line
secant line
Big Ideas Instantaneous Rates of Change
Rates of Change
How fast is the population growing in the year 2010?
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
2005 2015
tangent line
secant line
Big Ideas Instantaneous Rates of Change
Rates of Change
How fast is the population growing in the year 2010?
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
2005 2015
tangent line
secant line
Big Ideas Instantaneous Rates of Change
Rates of Change
How fast is the population growing in the year 2010?
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
2005 2015
tangent line
secant line
Big Ideas Instantaneous Rates of Change
Rates of Change
How fast is the population growing in the year 2010?
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
2005 2015
tangent line
secant line
Big Ideas Instantaneous Rates of Change
Rates of Change
How fast is the population growing in the year 2010?
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
2005 2015
tangent line
secant line
Big Ideas Instantaneous Rates of Change
Rates of Change
How fast is the population growing in the year 2010?
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
2005 2015
tangent line
secant line
Big Ideas Instantaneous Rates of Change
Rates of Change
How fast is the population growing in the year 2010?
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
2005 2015
tangent line
secant line
Big Ideas Instantaneous Rates of Change
Rates of Change
How fast is the population growing in the year 2010?
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
2005 2015
tangent line
secant line
Big Ideas Instantaneous Rates of Change
Rates of Change
How fast is the population growing in the year 2010?
x
y
1990 2000 2010 2020
0.1 mil
0.9 mil
2.5 mil
4.9 mil P(x)
2005 2015
tangent line
secant line
Big Ideas Instantaneous Rates of Change
Definition
The secant line to the curve y = f (x) through points R and Q is a line that passesthrough R and Q.
We call the slope of the secant line the average rate of change of f (x) from R to Q.
R
P
Qtangent line
secant line
Definition
The tangent line to the curve y = f (x) at point P is a line that
• passes through P and
• has the same slope as f (x) at P.
We call the slope of the tangent line the instantaneous rate of change of f (x) at P.
Big Ideas Instantaneous Rates of Change
Definition
The secant line to the curve y = f (x) through points R and Q is a line that passesthrough R and Q.
We call the slope of the secant line the average rate of change of f (x) from R to Q.
R
P
Q
tangent line
secant line
Definition
The tangent line to the curve y = f (x) at point P is a line that
• passes through P and
• has the same slope as f (x) at P.
We call the slope of the tangent line the instantaneous rate of change of f (x) at P.
Big Ideas Instantaneous Rates of Change
Definition
The secant line to the curve y = f (x) through points R and Q is a line that passesthrough R and Q.
We call the slope of the secant line the average rate of change of f (x) from R to Q.
R
P
Q
tangent line
secant line
Definition
The tangent line to the curve y = f (x) at point P is a line that
• passes through P and
• has the same slope as f (x) at P.
We call the slope of the tangent line the instantaneous rate of change of f (x) at P.
Big Ideas Instantaneous Rates of Change
Definition
The secant line to the curve y = f (x) through points R and Q is a line that passesthrough R and Q.We call the slope of the secant line the average rate of change of f (x) from R to Q.
R
P
Q
tangent line
secant line
Definition
The tangent line to the curve y = f (x) at point P is a line that
• passes through P and
• has the same slope as f (x) at P.
We call the slope of the tangent line the instantaneous rate of change of f (x) at P.
Big Ideas Instantaneous Rates of Change
Definition
The secant line to the curve y = f (x) through points R and Q is a line that passesthrough R and Q.We call the slope of the secant line the average rate of change of f (x) from R to Q.
R
P
Q
tangent line
secant line
Definition
The tangent line to the curve y = f (x) at point P is a line that
• passes through P and
• has the same slope as f (x) at P.
We call the slope of the tangent line the instantaneous rate of change of f (x) at P.
Big Ideas Instantaneous Rates of Change
Definition
The secant line to the curve y = f (x) through points R and Q is a line that passesthrough R and Q.We call the slope of the secant line the average rate of change of f (x) from R to Q.
R
P
Q
tangent line
secant line
Definition
The tangent line to the curve y = f (x) at point P is a line that
• passes through P and
• has the same slope as f (x) at P.
We call the slope of the tangent line the instantaneous rate of change of f (x) at P.
Big Ideas Instantaneous Rates of Change
Definition
The secant line to the curve y = f (x) through points R and Q is a line that passesthrough R and Q.We call the slope of the secant line the average rate of change of f (x) from R to Q.
R
P
Qtangent line
secant line
Definition
The tangent line to the curve y = f (x) at point P is a line that
• passes through P and
• has the same slope as f (x) at P.
We call the slope of the tangent line the instantaneous rate of change of f (x) at P.
Big Ideas Instantaneous Rates of Change
Definition
The secant line to the curve y = f (x) through points R and Q is a line that passesthrough R and Q.We call the slope of the secant line the average rate of change of f (x) from R to Q.
R
P
Qtangent line
secant line
Definition
The tangent line to the curve y = f (x) at point P is a line that
• passes through P and
• has the same slope as f (x) at P.
We call the slope of the tangent line the instantaneous rate of change of f (x) at P.
Limits 1.1-1.2 Drawing Tangents and a First Limit
On the graph below, draw the secant lineto the curve through points P and Q.
x
y
P
Q
On the graph below, draw the tangentline to the curve at point P.
x
y
P
Limits 1.1-1.2 Drawing Tangents and a First Limit
On the graph below, draw the secant lineto the curve through points P and Q.
x
y
P
Q
On the graph below, draw the tangentline to the curve at point P.
x
y
P
Limits 1.1-1.2 Drawing Tangents and a First Limit
On the graph below, draw the secant lineto the curve through points P and Q.
x
y
P
Q
On the graph below, draw the tangentline to the curve at point P.
x
y
P
Limits 1.1-1.2 Drawing Tangents and a First Limit
t
time
ykm
fro
mh
om
ey = s(t)
8:00 8:30
8:07
0
3
6
1/2 hour
6
8:25
A. secant line to y = s(t) from t = 8 : 00 to
B. slope of the secant line to y = s(t) from t = 8 : 00 to
C. tangent line to y = s(t) at
D. slope of the tangent line to y = s(t) at
Limits 1.1-1.2 Drawing Tangents and a First Limit
t
time
ykm
fro
mh
om
ey = s(t)
8:00 8:308:07
0
3
6
1/2 hour
6
8:25
A. secant line to y = s(t) from t = 8 : 00 to
B. slope of the secant line to y = s(t) from t = 8 : 00 to
C. tangent line to y = s(t) at
D. slope of the tangent line to y = s(t) at
Limits 1.1-1.2 Drawing Tangents and a First Limit
t
time
ykm
fro
mh
om
ey = s(t)
8:00 8:30
8:07
0
3
6
1/2 hour
6
8:25
It takes me half an hour to bike 6 km. So, 12 kph represents the:
A. secant line to y = s(t) from t = 8 : 00 to t = 8 : 30
B. slope of the secant line to y = s(t) from t = 8 : 00 to t = 8 : 30
C. tangent line to y = s(t) at t = 8 : 30
D. slope of the tangent line to y = s(t) at t = 8 : 30
Limits 1.1-1.2 Drawing Tangents and a First Limit
t
time
ykm
fro
mh
om
ey = s(t)
8:00 8:30
8:07
0
3
6
1/2 hour
6
8:25
It takes me half an hour to bike 6 km. So, 12 kph represents the:
A. secant line to y = s(t) from t = 8 : 00 to t = 8 : 30
B. slope of the secant line to y = s(t) from t = 8 : 00 to t = 8 : 30
C. tangent line to y = s(t) at t = 8 : 30
D. slope of the tangent line to y = s(t) at t = 8 : 30
Limits 1.1-1.2 Drawing Tangents and a First Limit
t
time
ykm
fro
mh
om
ey = s(t)
8:00 8:30
8:07
0
3
6
1/2 hour
6
8:25
It takes me half an hour to bike 6 km. So, 12 kph represents the:
A. secant line to y = s(t) from t = 8 : 00 to t = 8 : 30
B. slope of the secant line to y = s(t) from t = 8 : 00 to t = 8 : 30
C. tangent line to y = s(t) at t = 8 : 30
D. slope of the tangent line to y = s(t) at t = 8 : 30
Limits 1.1-1.2 Drawing Tangents and a First Limit
t
time
ykm
fro
mh
om
ey = s(t)
8:00 8:30
8:07
0
3
61/2 hour
6
8:25
It takes me half an hour to bike 6 km. So, 12 kph represents the:
A. secant line to y = s(t) from t = 8 : 00 to t = 8 : 30
B. slope of the secant line to y = s(t) from t = 8 : 00 to t = 8 : 30
C. tangent line to y = s(t) at t = 8 : 30
D. slope of the tangent line to y = s(t) at t = 8 : 30
Limits 1.1-1.2 Drawing Tangents and a First Limit
t
time
ykm
fro
mh
om
ey = s(t)
8:00 8:30
8:07
0
3
61/2 hour
6
8:25
It takes me half an hour to bike 6 km. So, 12 kph represents the:
A. secant line to y = s(t) from t = 8 : 00 to t = 8 : 30
B. slope of the secant line to y = s(t) from t = 8 : 00 to t = 8 : 30
C. tangent line to y = s(t) at t = 8 : 30
D. slope of the tangent line to y = s(t) at t = 8 : 30
Limits 1.1-1.2 Drawing Tangents and a First Limit
t
time
ykm
fro
mh
om
ey = s(t)
8:00 8:30
8:07
0
3
61/2 hour
6
8:25
It takes me half an hour to bike 6 km. So, 12 kph represents the:
A. secant line to y = s(t) from t = 8 : 00 to t = 8 : 30
B. slope of the secant line to y = s(t) from t = 8 : 00 to t = 8 : 30
C. tangent line to y = s(t) at t = 8 : 30
D. slope of the tangent line to y = s(t) at t = 8 : 30
Limits 1.1-1.2 Drawing Tangents and a First Limit
t
time
ykm
fro
mh
om
ey = s(t)
8:00 8:30
8:07
0
3
6
1/2 hour
6
8:25
When I pedal up Crescent Rd at 8:25, the speedometer on my bike tells me I’m going5kph. This corresponds to the:
A. secant line to y = s(t) from t = 8 : 00 to t = 8 : 25
B. slope of the secant line to y = s(t) from t = 8 : 00 to t = 8 : 25
C. tangent line to y = s(t) at t = 8 : 25
D. slope of the tangent line to y = s(t) at t = 8 : 25
Limits 1.1-1.2 Drawing Tangents and a First Limit
t
time
ykm
fro
mh
om
ey = s(t)
8:00 8:30
8:07
0
3
6
1/2 hour
6
8:25
When I pedal up Crescent Rd at 8:25, the speedometer on my bike tells me I’m going5kph. This corresponds to the:
A. secant line to y = s(t) from t = 8 : 00 to t = 8 : 25
B. slope of the secant line to y = s(t) from t = 8 : 00 to t = 8 : 25
C. tangent line to y = s(t) at t = 8 : 25
D. slope of the tangent line to y = s(t) at t = 8 : 25
Limits 1.1-1.2 Drawing Tangents and a First Limit
t
time
ykm
fro
mh
om
ey = s(t)
8:00 8:30
8:07
0
3
6
1/2 hour
6
8:25
When I pedal up Crescent Rd at 8:25, the speedometer on my bike tells me I’m going5kph. This corresponds to the:
A. secant line to y = s(t) from t = 8 : 00 to t = 8 : 25
B. slope of the secant line to y = s(t) from t = 8 : 00 to t = 8 : 25
C. tangent line to y = s(t) at t = 8 : 25
D. slope of the tangent line to y = s(t) at t = 8 : 25
Limits 1.1-1.2 Drawing Tangents and a First Limit
t
time
ykm
fro
mh
om
ey = s(t)
8:00 8:30
8:07
0
3
6
1/2 hour
6
8:25
When I pedal up Crescent Rd at 8:25, the speedometer on my bike tells me I’m going5kph. This corresponds to the:
A. secant line to y = s(t) from t = 8 : 00 to t = 8 : 25
B. slope of the secant line to y = s(t) from t = 8 : 00 to t = 8 : 25
C. tangent line to y = s(t) at t = 8 : 25
D. slope of the tangent line to y = s(t) at t = 8 : 25
Limits 1.1-1.2 Drawing Tangents and a First Limit
Suppose the distance from the ground s (in meters) of a helium-filled balloon at time tover a 10-second interval is given by s(t) = t2, graphed below. Try to estimate how fastthe balloon is rising when t = 5.
t
yy = s(t)
1
10
2
20
3
30
4
40
5
50
6
60
7
70
8
80
9
90
10
100
One way:Estimate the slope of thetangent line to the curveat t = 5.
Another way:Calculate average rate of changefor intervals around 5that get smaller and smaller.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Suppose the distance from the ground s (in meters) of a helium-filled balloon at time tover a 10-second interval is given by s(t) = t2, graphed below. Try to estimate how fastthe balloon is rising when t = 5.
t
yy = s(t)
1
10
2
20
3
30
4
40
5
50
6
60
7
70
8
80
9
90
10
100
One way:Estimate the slope of thetangent line to the curveat t = 5.
Another way:Calculate average rate of changefor intervals around 5that get smaller and smaller.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Suppose the distance from the ground s (in meters) of a helium-filled balloon at time tover a 10-second interval is given by s(t) = t2, graphed below. Try to estimate how fastthe balloon is rising when t = 5.
t
yy = s(t)
1
10
2
20
3
30
4
40
5
50
6
60
7
70
8
80
9
90
10
100
One way:Estimate the slope of thetangent line to the curveat t = 5.
Another way:Calculate average rate of changefor intervals around 5that get smaller and smaller.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Suppose the distance from the ground s (in meters) of a helium-filled balloon at time tover a 10-second interval is given by s(t) = t2, graphed below. Try to estimate how fastthe balloon is rising when t = 5.
t
yy = s(t)
1
10
2
20
3
30
4
40
5
50
6
60
7
70
8
80
9
90
10
100
One way:Estimate the slope of thetangent line to the curveat t = 5.
Another way:Calculate average rate of changefor intervals around 5that get smaller and smaller.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Suppose the distance from the ground s (in meters) of a helium-filled balloon at time tover a 10-second interval is given by s(t) = t2, graphed below. Try to estimate how fastthe balloon is rising when t = 5.
t
yy = s(t)
1
10
2
20
3
30
4
40
5
50
6
60
7
70
8
80
9
90
10
100
One way:Estimate the slope of thetangent line to the curveat t = 5.
Another way:Calculate average rate of changefor intervals around 5that get smaller and smaller.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Suppose the distance from the ground s (in meters) of a helium-filled balloon at time tover a 10-second interval is given by s(t) = t2, graphed below. Try to estimate how fastthe balloon is rising when t = 5.
t
yy = s(t)
1
10
2
20
3
30
4
40
5
50
6
60
7
70
8
80
9
90
10
100
One way:Estimate the slope of thetangent line to the curveat t = 5.
Another way:Calculate average rate of changefor intervals around 5that get smaller and smaller.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Suppose the distance from the ground s (in meters) of a helium-filled balloon at time tover a 10-second interval is given by s(t) = t2, graphed below. Try to estimate how fastthe balloon is rising when t = 5.
t
yy = s(t)
1
10
2
20
3
30
4
40
5
50
6
60
7
70
8
80
9
90
10
100
One way:Estimate the slope of thetangent line to the curveat t = 5.
Another way:Calculate average rate of changefor intervals around 5that get smaller and smaller.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Suppose the distance from the ground s (in meters) of a helium-filled balloon at time tover a 10-second interval is given by s(t) = t2, graphed below. Try to estimate how fastthe balloon is rising when t = 5.
t
yy = s(t)
1
10
2
20
3
30
4
40
5
50
6
60
7
70
8
80
9
90
10
100
One way:Estimate the slope of thetangent line to the curveat t = 5.
Another way:Calculate average rate of changefor intervals around 5that get smaller and smaller.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Let’s look for an algebraic way of determining the velocity of the balloon when t = 5.
t
y
y = s(t) = t2
5
h
5 + h
Limits 1.1-1.2 Drawing Tangents and a First Limit
Let’s look for an algebraic way of determining the velocity of the balloon when t = 5.
t
y
y = s(t) = t2
5
h
5 + h
Suppose the interval [5, ] has length h. What is the right endpoint of the interval?
Limits 1.1-1.2 Drawing Tangents and a First Limit
Let’s look for an algebraic way of determining the velocity of the balloon when t = 5.
t
y
y = s(t) = t2
5
h
5 + h
Write the equation for the average (vertical) velocity from t = 5 to t = 5 + h.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Let’s look for an algebraic way of determining the velocity of the balloon when t = 5.
t
y
y = s(t) = t2
5
h
5 + h
Write the equation for the average (vertical) velocity from t = 5 to t = 5 + h.
vel =∆ height
∆ time=
s(5 + h)− s(5)
(5 + h)− 5=
(5 + h)2 − 52
h
Limits 1.1-1.2 Drawing Tangents and a First Limit
Let’s look for an algebraic way of determining the velocity of the balloon when t = 5.
t
y
y = s(t) = t2
5
h
5 + h
Write the equation for the average (vertical) velocity from t = 5 to t = 5 + h.
vel =∆ height
∆ time=
s(5 + h)− s(5)
(5 + h)− 5=
(5 + h)2 − 52
h
What happens to the equation above when h is very, very small?
Limits 1.1-1.2 Drawing Tangents and a First Limit
Let’s look for an algebraic way of determining the velocity of the balloon when t = 5.
t
y
y = s(t) = t2
5
h
5 + h
What do you think is the slope of the tangent line to the graph when t = 5?
Limits 1.1-1.2 Drawing Tangents and a First Limit
Limit Notation
Average Velocity, t = 5 to t = 5 + h:
∆s
∆t=
s(5 + h)− s(5)
h
=(5 + h)2 − 52
h
= 10 + h when h 6= 0
When h is very small,Vel ≈ 10
We write:limh→0
(10 + h)︸ ︷︷ ︸function
= 10
“The limit as h goes to 0 of (10 + h) is 10.”As h gets extremely close to 0, (10 + h) gets extremely close to 10.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Limit Notation
Average Velocity, t = 5 to t = 5 + h:
∆s
∆t=
s(5 + h)− s(5)
h
=(5 + h)2 − 52
h
= 10 + h when h 6= 0
When h is very small,Vel ≈ 10
We write:limh→0
(10 + h)︸ ︷︷ ︸function
= 10
“The limit as h goes to 0 of (10 + h) is 10.”As h gets extremely close to 0, (10 + h) gets extremely close to 10.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Limit Notation
Average Velocity, t = 5 to t = 5 + h:
∆s
∆t=
s(5 + h)− s(5)
h
=(5 + h)2 − 52
h
= 10 + h when h 6= 0
When h is very small,Vel ≈ 10
We write:limh→0
(10 + h)︸ ︷︷ ︸function
= 10
“The limit as h goes to 0 of (10 + h) is 10.”As h gets extremely close to 0, (10 + h) gets extremely close to 10.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Limit Notation
Average Velocity, t = 5 to t = 5 + h:
∆s
∆t=
s(5 + h)− s(5)
h
=(5 + h)2 − 52
h
= 10 + h when h 6= 0
When h is very small,
Vel ≈ 10
We write:limh→0
(10 + h)︸ ︷︷ ︸function
= 10
“The limit as h goes to 0 of (10 + h) is 10.”As h gets extremely close to 0, (10 + h) gets extremely close to 10.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Limit Notation
Average Velocity, t = 5 to t = 5 + h:
∆s
∆t=
s(5 + h)− s(5)
h
=(5 + h)2 − 52
h
= 10 + h when h 6= 0
When h is very small,Vel ≈ 10
We write:limh→0
(10 + h)︸ ︷︷ ︸function
= 10
“The limit as h goes to 0 of (10 + h) is 10.”As h gets extremely close to 0, (10 + h) gets extremely close to 10.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Limit Notation
Average Velocity, t = 5 to t = 5 + h:
∆s
∆t=
s(5 + h)− s(5)
h
=(5 + h)2 − 52
h
= 10 + h when h 6= 0
When h is very small,Vel ≈ 10
We write:limh→0
(10 + h) = 10
We write:limh→0
(10 + h)︸ ︷︷ ︸function
= 10
“The limit as h goes to 0 of (10 + h) is 10.”
As h gets extremely close to 0, (10 + h) gets extremely close to 10.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Limit Notation
Average Velocity, t = 5 to t = 5 + h:
∆s
∆t=
s(5 + h)− s(5)
h
=(5 + h)2 − 52
h
= 10 + h when h 6= 0
When h is very small,Vel ≈ 10
We write:limh→0︸︷︷︸
limit as h goes to 0
(10 + h) = 10
We write:limh→0
(10 + h)︸ ︷︷ ︸function
= 10
“The limit as h goes to 0 of (10 + h) is 10.”
As h gets extremely close to 0, (10 + h) gets extremely close to 10.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Limit Notation
Average Velocity, t = 5 to t = 5 + h:
∆s
∆t=
s(5 + h)− s(5)
h
=(5 + h)2 − 52
h
= 10 + h when h 6= 0
When h is very small,Vel ≈ 10
We write:limh→0
(10 + h)︸ ︷︷ ︸function
= 10
“The limit as h goes to 0 of (10 + h) is 10.”
As h gets extremely close to 0, (10 + h) gets extremely close to 10.
Limits 1.1-1.2 Drawing Tangents and a First Limit
Limit Notation
Average Velocity, t = 5 to t = 5 + h:
∆s
∆t=
s(5 + h)− s(5)
h
=(5 + h)2 − 52
h
= 10 + h when h 6= 0
When h is very small,Vel ≈ 10
We write:limh→0
(10 + h)︸ ︷︷ ︸function
= 10
“The limit as h goes to 0 of (10 + h) is 10.”As h gets extremely close to 0, (10 + h) gets extremely close to 10.
Limits 1.3 The Limit of a Function
Definition
limx→a
f (x) = L
where a and L are real numbersWe read the above as “the limit as x goes to a of f (x) is L.”Its meaning is: as x gets very close to (but not equal to) a, f (x) gets very close to L.
We DESPERATELY NEED limits to find slopes of tangent lines.
Slope of secant line:∆y
∆x, ∆x 6= 0.
Slope of tangent line: can’t do the same way.
If the position of an object at time t is given by s(t), then its instantaneous velocity is
given by limh→0
s(t + h)− s(t)
h.
Limits 1.3 The Limit of a Function
Definition
limx→a
f (x) = L
where a and L are real numbersWe read the above as “the limit as x goes to a of f (x) is L.”Its meaning is: as x gets very close to (but not equal to) a, f (x) gets very close to L.
We DESPERATELY NEED limits to find slopes of tangent lines.
Slope of secant line:∆y
∆x, ∆x 6= 0.
Slope of tangent line: can’t do the same way.
If the position of an object at time t is given by s(t), then its instantaneous velocity is
given by limh→0
s(t + h)− s(t)
h.
Limits 1.3 The Limit of a Function
Definition
limx→a
f (x) = L
where a and L are real numbersWe read the above as “the limit as x goes to a of f (x) is L.”Its meaning is: as x gets very close to (but not equal to) a, f (x) gets very close to L.
We DESPERATELY NEED limits to find slopes of tangent lines.
Slope of secant line:∆y
∆x, ∆x 6= 0.
Slope of tangent line: can’t do the same way.
If the position of an object at time t is given by s(t), then its instantaneous velocity is
given by limh→0
s(t + h)− s(t)
h.
Limits 1.3 The Limit of a Function
Definition
limx→a
f (x) = L
where a and L are real numbersWe read the above as “the limit as x goes to a of f (x) is L.”Its meaning is: as x gets very close to (but not equal to) a, f (x) gets very close to L.
We DESPERATELY NEED limits to find slopes of tangent lines.
Slope of secant line:∆y
∆x, ∆x 6= 0.
Slope of tangent line: can’t do the same way.
If the position of an object at time t is given by s(t), then its instantaneous velocity is
given by limh→0
s(t + h)− s(t)
h.
Limits 1.3 The Limit of a Function
Definition
limx→a
f (x) = L
where a and L are real numbersWe read the above as “the limit as x goes to a of f (x) is L.”Its meaning is: as x gets very close to (but not equal to) a, f (x) gets very close to L.
We DESPERATELY NEED limits to find slopes of tangent lines.
Slope of secant line:∆y
∆x, ∆x 6= 0.
Slope of tangent line: can’t do the same way.
If the position of an object at time t is given by s(t), then its instantaneous velocity is
given by limh→0
s(t + h)− s(t)
h.
Limits 1.3 The Limit of a Function
Definition
limx→a
f (x) = L
where a and L are real numbersWe read the above as “the limit as x goes to a of f (x) is L.”Its meaning is: as x gets very close to (but not equal to) a, f (x) gets very close to L.
We DESPERATELY NEED limits to find slopes of tangent lines.
Slope of secant line:∆y
∆x, ∆x 6= 0.
Slope of tangent line: can’t do the same way.
If the position of an object at time t is given by s(t), then its instantaneous velocity is
given by limh→0
s(t + h)− s(t)
h.
Limits 1.3 The Limit of a Function
Definition
limx→a
f (x) = L
where a and L are real numbersWe read the above as “the limit as x goes to a of f (x) is L.”Its meaning is: as x gets very close to (but not equal to) a, f (x) gets very close to L.
We DESPERATELY NEED limits to find slopes of tangent lines.
Slope of secant line:∆y
∆x, ∆x 6= 0.
Slope of tangent line: can’t do the same way.
If the position of an object at time t is given by s(t), then its instantaneous velocity is
given by limh→0
s(t + h)− s(t)
h.
Limits 1.3 The Limit of a Function
Definition
limx→a
f (x) = L
where a and L are real numbersWe read the above as “the limit as x goes to a of f (x) is L.”Its meaning is: as x gets very close to (but not equal to) a, f (x) gets very close to L.
We DESPERATELY NEED limits to find slopes of tangent lines.
Slope of secant line:∆y
∆x, ∆x 6= 0.
Slope of tangent line: can’t do the same way.
If the position of an object at time t is given by s(t), then its instantaneous velocity is
given by limh→0
s(t + h)− s(t)
h.
Limits 1.3 The Limit of a Function
Definition
limx→a
f (x) = L
where a and L are real numbersWe read the above as “the limit as x goes to a of f (x) is L.”Its meaning is: as x gets very close to (but not equal to) a, f (x) gets very close to L.
We DESPERATELY NEED limits to find slopes of tangent lines.
Slope of secant line:∆y
∆x, ∆x 6= 0.
Slope of tangent line: can’t do the same way.
If the position of an object at time t is given by s(t), then its instantaneous velocity is
given by limh→0
s(t + h)− s(t)
h.
Limits 1.3 The Limit of a Function
Definition
limx→a
f (x) = L
where a and L are real numbersWe read the above as “the limit as x goes to a of f (x) is L.”Its meaning is: as x gets very close to (but not equal to) a, f (x) gets very close to L.
We DESPERATELY NEED limits to find slopes of tangent lines.
Slope of secant line:∆y
∆x, ∆x 6= 0.
Slope of tangent line: can’t do the same way.
If the position of an object at time t is given by s(t), then its instantaneous velocity is
given by limh→0
s(t + h)− s(t)
h.
Limits 1.3 The Limit of a Function
Definition
limx→a
f (x) = L
where a and L are real numbersWe read the above as “the limit as x goes to a of f (x) is L.”Its meaning is: as x gets very close to (but not equal to) a, f (x) gets very close to L.
We DESPERATELY NEED limits to find slopes of tangent lines.
Slope of secant line:∆y
∆x, ∆x 6= 0.
Slope of tangent line: can’t do the same way.
If the position of an object at time t is given by s(t), then its instantaneous velocity is
given by limh→0
s(t + h)− s(t)
h.
Limits 1.3 The Limit of a Function
Definition
limx→a
f (x) = L
where a and L are real numbersWe read the above as “the limit as x goes to a of f (x) is L.”Its meaning is: as x gets very close to (but not equal to) a, f (x) gets very close to L.
We DESPERATELY NEED limits to find slopes of tangent lines.
Slope of secant line:∆y
∆x, ∆x 6= 0.
Slope of tangent line: can’t do the same way.
If the position of an object at time t is given by s(t), then its instantaneous velocity is
given by limh→0
s(t + h)− s(t)
h.
Limits 1.3 The Limit of a Function
Definition
limx→a
f (x) = L
where a and L are real numbersWe read the above as “the limit as x goes to a of f (x) is L.”Its meaning is: as x gets very close to (but not equal to) a, f (x) gets very close to L.
We DESPERATELY NEED limits to find slopes of tangent lines.
Slope of secant line:∆y
∆x, ∆x 6= 0.
Slope of tangent line: can’t do the same way.
If the position of an object at time t is given by s(t), then its instantaneous velocity is
given by limh→0
s(t + h)− s(t)
h.
Limits 1.3 The Limit of a Function
Definition
limx→a
f (x) = L
where a and L are real numbersWe read the above as “the limit as x goes to a of f (x) is L.”Its meaning is: as x gets very close to (but not equal to) a, f (x) gets very close to L.
We DESPERATELY NEED limits to find slopes of tangent lines.
Slope of secant line:∆y
∆x, ∆x 6= 0.
Slope of tangent line: can’t do the same way.
If the position of an object at time t is given by s(t), then its instantaneous velocity is
given by limh→0
s(t + h)− s(t)
h.
Limits 1.3 The Limit of a Function
Let f (x) =x3 + x2 − x − 1
x − 1.
We want to evaluate limx→1
f (x).
DNE (can’t divide by zero)
limx→1
f (x) = 4
Limits 1.3 The Limit of a Function
Let f (x) =x3 + x2 − x − 1
x − 1.
We want to evaluate limx→1
f (x).
What is f (1)?
DNE (can’t divide by zero)
limx→1
f (x) = 4
Limits 1.3 The Limit of a Function
Let f (x) =x3 + x2 − x − 1
x − 1.
We want to evaluate limx→1
f (x).
What is f (1)? DNE (can’t divide by zero)
limx→1
f (x) = 4
Limits 1.3 The Limit of a Function
Let f (x) =x3 + x2 − x − 1
x − 1.
We want to evaluate limx→1
f (x).
What is f (1)? DNE (can’t divide by zero)Use the table below to guess lim
x→1f (x)
x f (x)0.9 3.610.99 3.96010.999 3.996000.9999 3.999601.1 4.411.01 4.04011.001 4.004001.0001 4.00040
limx→1
f (x) = 4
Limits 1.3 The Limit of a Function
Let f (x) =x3 + x2 − x − 1
x − 1.
We want to evaluate limx→1
f (x).
What is f (1)? DNE (can’t divide by zero)Use the table below to guess lim
x→1f (x)
x f (x)0.9 3.610.99 3.96010.999 3.996000.9999 3.999601.1 4.411.01 4.04011.001 4.004001.0001 4.00040
limx→1
f (x) = 4
Limits 1.3 The Limit of a Function
f (x) =
x if x < 31 if x = 3
x − 1 if x > 3
x
y
y = f (x)
0 1 2 3 4 5 60
1
2
3
4
5
What do you think should be the value of limx→3
f (x)?
DNE
Evaluate: limx→3−
f (x)︸ ︷︷ ︸from the left
= 3
limx→3+
f (x)︸ ︷︷ ︸from the right
= 2
Limits 1.3 The Limit of a Function
f (x) =
x if x < 31 if x = 3
x − 1 if x > 3
x
y
y = f (x)
0 1 2 3 4 5 60
1
2
3
4
5
What do you think should be the value of limx→3
f (x)? DNE
Evaluate: limx→3−
f (x)︸ ︷︷ ︸from the left
= 3
limx→3+
f (x)︸ ︷︷ ︸from the right
= 2
Limits 1.3 The Limit of a Function
f (x) =
x if x < 31 if x = 3
x − 1 if x > 3
x
y
y = f (x)
0 1 2 3 4 5 60
1
2
3
4
5
What do you think should be the value of limx→3
f (x)? DNE
Evaluate: limx→3−
f (x)︸ ︷︷ ︸from the left
= 3
limx→3+
f (x)︸ ︷︷ ︸from the right
= 2
Limits 1.3 The Limit of a Function
f (x) =
x if x < 31 if x = 3
x − 1 if x > 3
x
y
y = f (x)
0 1 2 3 4 5 60
1
2
3
4
5
What do you think should be the value of limx→3
f (x)? DNE
Evaluate: limx→3−
f (x)︸ ︷︷ ︸from the left
= 3 limx→3+
f (x)︸ ︷︷ ︸from the right
= 2
Limits 1.3 The Limit of a Function
f (x) =
x if x < 31 if x = 3
x − 1 if x > 3
x
y
y = f (x)
0 1 2 3 4 5 60
1
2
3
4
5
What do you think should be the value of limx→3
f (x)? DNE
Evaluate: limx→3−
f (x)︸ ︷︷ ︸from the left
= 3 limx→3+
f (x)︸ ︷︷ ︸from the right
= 2
Limits 1.3 The Limit of a Function
Definition
The limit as x goes to a from the left of f (x) is written
limx→a−
f (x)
We only consider values of x that are less than a.
Definition
The limit as x goes to a from the right of f (x) is written
limx→a+
f (x)
We only consider values of x that are greater than a.
Theorem
In order for limx→a
f (x) to exist, both one-sided limits must exist and be equal.
Limits 1.3 The Limit of a Function
Definition
The limit as x goes to a from the left of f (x) is written
limx→a−
f (x)
We only consider values of x that are less than a.
Definition
The limit as x goes to a from the right of f (x) is written
limx→a+
f (x)
We only consider values of x that are greater than a.
Theorem
In order for limx→a
f (x) to exist, both one-sided limits must exist and be equal.
Limits 1.3 The Limit of a Function
Consider the function f (x) =1
(x − 1)2.
For what value of x is f (x) not defined?
Limits 1.3 The Limit of a Function
Consider the function f (x) =1
(x − 1)2.
Based on the graph below, what would you like to write for:
limx→1
f (x) =
∞
x
yy = f (x)
0
1
2
3
4
5
6
−2 −1 0 1 2 3 4 5 6
Limits 1.3 The Limit of a Function
Consider the function f (x) =1
(x − 1)2.
Based on the graph below, what would you like to write for:
limx→1
f (x) =∞
x
yy = f (x)
0
1
2
3
4
5
6
−2 −1 0 1 2 3 4 5 6
Limits 1.3 The Limit of a Function
Consider the function f (x) =1
(x − 1)2.
Based on the graph below, what would you like to write for:
limx→1
f (x) =∞
x
yy = f (x)
0
1
2
3
4
5
6
−2 −1 0 1 2 3 4 5 6
THIS LIMIT DOES NOT EXIST
THIS LIMIT DOES NOT EXIST
THIS LIMIT DOES NOT EXIST
Limits 1.3 The Limit of a Function
Let f (x) = sin
(1
x
). Graphed by Google:
Limits 1.3 The Limit of a Function
Let f (x) = sin
(1
x
). Graphed by Google:
To understand why it looks this way, first evaluate: limx→0+
1
x=
∞
Limits 1.3 The Limit of a Function
Let f (x) = sin
(1
x
). Graphed by Google:
To understand why it looks this way, first evaluate: limx→0+
1
x= ∞
Now, what should the graph of f (x) look like when x is near 0?
Limits 1.3 The Limit of a Function
Let f (x) = sin
(1
x
). Graphed by Google:
What is limx→0
f (x)?
DNE. This is sometimes called “infinite wiggling”
Limits 1.3 The Limit of a Function
Let f (x) = sin
(1
x
). Graphed by Google:
What is limx→0
f (x)? DNE. This is sometimes called “infinite wiggling”
Limits 1.3 The Limit of a Function
Let f (x) = sin
(1
x
). Graphed by Google:
What is limx→0
f (x)? DNE. This is sometimes called “infinite wiggling”
Does a limit exist for other points?
Limits 1.3 The Limit of a Function
Suppose f (x) = log(x).
x
y
−4
−2
2
−2 0 2 4 6 8
Where is f (x) defined, and where is it not defined?
What can you say about the limit of f (x) near 0?
limx→0+
log(x) = −∞
Limits 1.3 The Limit of a Function
Suppose f (x) = log(x).
x
y
−4
−2
2
−2 0 2 4 6 8
Where is f (x) defined, and where is it not defined?
What can you say about the limit of f (x) near 0? limx→0+
log(x) = −∞
Limits 1.3 The Limit of a Function
f (x) =
{x2 x 6= 12 x = 1
x
y
y = f (x)
−2 −1 1 2
1
2
3
4
What is limx→1
f (x)?
A. limx→1
f (x) = 2
B. limx→1
f (x) = 1
C. limx→1
f (x) DNE
D. none of the above
Limits 1.3 The Limit of a Function
f (x) =
{x2 x 6= 12 x = 1
x
y
y = f (x)
−2 −1 1 2
1
2
3
4
What is limx→1
f (x)?
A. limx→1
f (x) = 2
B. limx→1
f (x) = 1
C. limx→1
f (x) DNE
D. none of the above
Limits 1.3 The Limit of a Function
f (x) =
{x2 x 6= 12 x = 1
x
y
y = f (x)
−2 −1 1 2
1
2
3
4
What is limx→1
f (x)?
A. limx→1
f (x) = 2
B. limx→1
f (x) = 1
C. limx→1
f (x) DNE
D. none of the above
Limits 1.3 The Limit of a Function
f (x) =
{4 x ≤ 0x2 x > 0
x
y
y = f (x)
−2 −1 1 2
1
2
3
4
What is limx→0
f (x)?
A. limx→0
f (x) = 4
B. limx→0
f (x) = 0
C. limx→0
f (x) =
{4 x ≤ 00 x > 0
D. none of the above
limx→0
f (x) DNE
limx→0−
f (x) = 4
“the limit as x approaches 0from the left is 4”
limx→0+
f (x) = 0
“the limit as x approaches 0from the right is 0”
Limits 1.3 The Limit of a Function
f (x) =
{4 x ≤ 0x2 x > 0
x
y
y = f (x)
−2 −1 1 2
1
2
3
4
What is limx→0
f (x)?
A. limx→0
f (x) = 4
B. limx→0
f (x) = 0
C. limx→0
f (x) =
{4 x ≤ 00 x > 0
D. none of the above
limx→0
f (x) DNE
limx→0−
f (x) = 4
“the limit as x approaches 0from the left is 4”
limx→0+
f (x) = 0
“the limit as x approaches 0from the right is 0”
Limits 1.3 The Limit of a Function
f (x) =
{4 x ≤ 0x2 x > 0
x
y
y = f (x)
−2 −1 1 2
1
2
3
4
What is limx→0
f (x)?
A. limx→0
f (x) = 4
B. limx→0
f (x) = 0
C. limx→0
f (x) =
{4 x ≤ 00 x > 0
D. none of the above
limx→0
f (x) DNE
limx→0−
f (x) = 4
“the limit as x approaches 0from the left is 4”
limx→0+
f (x) = 0
“the limit as x approaches 0from the right is 0”
Limits 1.3 The Limit of a Function
f (x) =
{4 x ≤ 0x2 x > 0
x
y
y = f (x)
−2 −1 1 2
1
2
3
4
What is limx→0
f (x)?
A. limx→0
f (x) = 4
B. limx→0
f (x) = 0
C. limx→0
f (x) =
{4 x ≤ 00 x > 0
D. none of the abovelimx→0
f (x) DNE
limx→0−
f (x) = 4
“the limit as x approaches 0from the left is 4”
limx→0+
f (x) = 0
“the limit as x approaches 0from the right is 0”
Limits 1.3 The Limit of a Function
f (x) =
{4 x ≤ 0x2 x > 0
x
y
y = f (x)
−2 −1 1 2
1
2
3
4
What is limx→0
f (x)?
A. limx→0
f (x) = 4
B. limx→0
f (x) = 0
C. limx→0
f (x) =
{4 x ≤ 00 x > 0
D. none of the abovelimx→0
f (x) DNE
limx→0−
f (x) = 4
“the limit as x approaches 0from the left is 4”
limx→0+
f (x) = 0
“the limit as x approaches 0from the right is 0”
Limits 1.3 The Limit of a Function
f (x) =
{4 x ≤ 0x2 x > 0
x
y
y = f (x)
−2 −1 1 2
1
2
3
4
What is limx→0
f (x)?
A. limx→0
f (x) = 4
B. limx→0
f (x) = 0
C. limx→0
f (x) =
{4 x ≤ 00 x > 0
D. none of the abovelimx→0
f (x) DNE
limx→0−
f (x) = 4
“the limit as x approaches 0from the left is 4”
limx→0+
f (x) = 0
“the limit as x approaches 0from the right is 0”
Limits 1.3 The Limit of a Function
Suppose limx→3−
f (x) = 1 and limx→3+
f (x) = 1.5. Does limx→3
f (x) exist?
A. Yes, certainly, because the limits from both sides exist.
B. No, never, because the limit from the left is not the same as the limit from the right.
C. Can’t tell. For some functions is might exist, for others not.
Suppose limx→3−
f (x) = 22 = limx→3+
f (x). Does limx→3
f (x) exist?
A. Yes, certainly, because the limits from both sides exist and are equal to each other.
B. No, never, because we only talk about one-sided limits when the actual limit doesn’texist.
C. Can’t tell. We need to know the value of the function at x = 3.
Limits 1.3 The Limit of a Function
Suppose limx→3−
f (x) = 1 and limx→3+
f (x) = 1.5. Does limx→3
f (x) exist?
A. Yes, certainly, because the limits from both sides exist.
B. No, never, because the limit from the left is not the same as the limit from the right.
C. Can’t tell. For some functions is might exist, for others not.
Suppose limx→3−
f (x) = 22 = limx→3+
f (x). Does limx→3
f (x) exist?
A. Yes, certainly, because the limits from both sides exist and are equal to each other.
B. No, never, because we only talk about one-sided limits when the actual limit doesn’texist.
C. Can’t tell. We need to know the value of the function at x = 3.
Limits 1.3 The Limit of a Function
Suppose limx→3−
f (x) = 1 and limx→3+
f (x) = 1.5. Does limx→3
f (x) exist?
A. Yes, certainly, because the limits from both sides exist.
B. No, never, because the limit from the left is not the same as the limit from the right.
C. Can’t tell. For some functions is might exist, for others not.
Suppose limx→3−
f (x) = 22 = limx→3+
f (x). Does limx→3
f (x) exist?
A. Yes, certainly, because the limits from both sides exist and are equal to each other.
B. No, never, because we only talk about one-sided limits when the actual limit doesn’texist.
C. Can’t tell. We need to know the value of the function at x = 3.
Limits 1.3 The Limit of a Function
Suppose limx→3−
f (x) = 1 and limx→3+
f (x) = 1.5. Does limx→3
f (x) exist?
A. Yes, certainly, because the limits from both sides exist.
B. No, never, because the limit from the left is not the same as the limit from the right.
C. Can’t tell. For some functions is might exist, for others not.
Suppose limx→3−
f (x) = 22 = limx→3+
f (x). Does limx→3
f (x) exist?
A. Yes, certainly, because the limits from both sides exist and are equal to each other.
B. No, never, because we only talk about one-sided limits when the actual limit doesn’texist.
C. Can’t tell. We need to know the value of the function at x = 3.
Limits 1.3 The Limit of a Function
Suppose limx→3−
f (x) = 1 and limx→3+
f (x) = 1.5. Does limx→3
f (x) exist?
A. Yes, certainly, because the limits from both sides exist.
B. No, never, because the limit from the left is not the same as the limit from the right.
C. Can’t tell. For some functions is might exist, for others not.
Suppose limx→3−
f (x) = 22 = limx→3+
f (x). Does limx→3
f (x) exist?
A. Yes, certainly, because the limits from both sides exist and are equal to each other.
B. No, never, because we only talk about one-sided limits when the actual limit doesn’texist.
C. Can’t tell. We need to know the value of the function at x = 3.
Limits 1.3 The Limit of a Function
Suppose limx→3−
f (x) = 1 and limx→3+
f (x) = 1.5. Does limx→3
f (x) exist?
A. Yes, certainly, because the limits from both sides exist.
B. No, never, because the limit from the left is not the same as the limit from the right.
C. Can’t tell. For some functions is might exist, for others not.
Suppose limx→3−
f (x) = 22 = limx→3+
f (x). Does limx→3
f (x) exist?
A. Yes, certainly, because the limits from both sides exist and are equal to each other.
B. No, never, because we only talk about one-sided limits when the actual limit doesn’texist.
C. Can’t tell. We need to know the value of the function at x = 3.
Limits 1.4 Calculating Limits with Limit Laws
Calculating Limits in Simple Situations
Direct Substitution
If f (x) is a polynomial or rational function, and a is in the domain of f , then:
limx→a
f (x) = f (a).
Limits 1.4 Calculating Limits with Limit Laws
Calculating Limits in Simple Situations
Direct Substitution
If f (x) is a polynomial or rational function, and a is in the domain of f , then:
limx→a
f (x) = f (a).
Calculate: limx→3
(x2 − 9
x + 3
)
=
(32 − 9
3 + 3
)=
0
6= 0
Calculate: limx→3
(x2 − 9
x − 3
)
Can’t do it the same way: 3 not in domain
Limits 1.4 Calculating Limits with Limit Laws
Calculating Limits in Simple Situations
Direct Substitution
If f (x) is a polynomial or rational function, and a is in the domain of f , then:
limx→a
f (x) = f (a).
Calculate: limx→3
(x2 − 9
x + 3
)=
(32 − 9
3 + 3
)=
0
6= 0
Calculate: limx→3
(x2 − 9
x − 3
)
Can’t do it the same way: 3 not in domain
Limits 1.4 Calculating Limits with Limit Laws
Calculating Limits in Simple Situations
Direct Substitution
If f (x) is a polynomial or rational function, and a is in the domain of f , then:
limx→a
f (x) = f (a).
Calculate: limx→3
(x2 − 9
x + 3
)=
(32 − 9
3 + 3
)=
0
6= 0
Calculate: limx→3
(x2 − 9
x − 3
)
Can’t do it the same way: 3 not in domain
Limits 1.4 Calculating Limits with Limit Laws
Calculating Limits in Simple Situations
Direct Substitution
If f (x) is a polynomial or rational function, and a is in the domain of f , then:
limx→a
f (x) = f (a).
Calculate: limx→3
(x2 − 9
x + 3
)=
(32 − 9
3 + 3
)=
0
6= 0
Calculate: limx→3
(x2 − 9
x − 3
)Can’t do it the same way: 3 not in domain
Limits 1.4 Calculating Limits with Limit Laws
Calculating Limits in Simple Situations
Direct Substitution
If f (x) is a polynomial or rational function, and a is in the domain of f , then:
limx→a
f (x) = f (a).
Algebra with Limits
Suppose limx→a
f (x) = F and limx→a
g(x) = G , where F and G are both real numbers. Then:
- limx→a
(f (x) + g(x)) = F + G
- limx→a
(f (x)− g(x)) = F − G
- limx→a
(f (x)g(x)) = FG
- limx→a
(f (x)/g(x)) = F/G PROVIDED G 6= 0
Limits 1.4 Calculating Limits with Limit Laws
Calculating Limits in Simple Situations
Direct Substitution
Algebra with Limits
Suppose limx→a
f (x) = F and limx→a
g(x) = G , where F and G are both real numbers. Then:
- limx→a
(f (x) + g(x)) = F + G
- limx→a
(f (x)− g(x)) = F − G
- limx→a
(f (x)g(x)) = FG
- limx→a
(f (x)/g(x)) = F/G PROVIDED G 6= 0
Calculate: limx→1
[2x + 4
x + 2+ 13
(x + 5
3x
)(x2
2x − 1
)]
Limits 1.4 Calculating Limits with Limit Laws
Calculating Limits in Simple Situations
Direct Substitution
Algebra with Limits
Calculate: limx→1
[2x + 4
x + 2+ 13
(x + 5
3x
)(x2
2x − 1
)]
= limx→1
(2x + 4
2x + 2
)+(
limx→1
13)(
limx→1
x + 5
3x
)(x2
2x − 1
)
=
(2(1) + 4
2(1) + 2
)+ (13)
((1) + 5
3(1)
)(12
2(1)− 1
)
= (2) + 13(2)(1) = 28
Limits 1.4 Calculating Limits with Limit Laws
Calculating Limits in Simple Situations
Direct Substitution
Algebra with Limits
Calculate: limx→1
[2x + 4
x + 2+ 13
(x + 5
3x
)(x2
2x − 1
)]
= limx→1
(2x + 4
2x + 2
)+(
limx→1
13)(
limx→1
x + 5
3x
)(x2
2x − 1
)
=
(2(1) + 4
2(1) + 2
)+ (13)
((1) + 5
3(1)
)(12
2(1)− 1
)
= (2) + 13(2)(1) = 28
Limits 1.4 Calculating Limits with Limit Laws
Calculating Limits in Simple Situations
Direct Substitution
Algebra with Limits
Calculate: limx→1
[2x + 4
x + 2+ 13
(x + 5
3x
)(x2
2x − 1
)]
= limx→1
(2x + 4
2x + 2
)+(
limx→1
13)(
limx→1
x + 5
3x
)(x2
2x − 1
)
=
(2(1) + 4
2(1) + 2
)+ (13)
((1) + 5
3(1)
)(12
2(1)− 1
)
= (2) + 13(2)(1) = 28
Limits 1.4 Calculating Limits with Limit Laws
Powers and Roots of Limits
Which of the following gives a real number?
A. 41/2
= 2
B. (−4)1/2
=√−4
C. 4−1/2
= 12
D. (−4)−1/2
= 1√−4
Powers of Limits
If n is a positive integer, and limx→a
f (x) = F (where F is a real number), then:
limx→a
(f (x))n = F n.
Furthermore,limx→a
(f (x))1/n = F 1/n
UNLESS n is even and F is negative.
Limits 1.4 Calculating Limits with Limit Laws
Powers and Roots of Limits
Which of the following gives a real number?
A. 41/2 = 2 B. (−4)1/2
=√−4
C. 4−1/2
= 12
D. (−4)−1/2
= 1√−4
Powers of Limits
If n is a positive integer, and limx→a
f (x) = F (where F is a real number), then:
limx→a
(f (x))n = F n.
Furthermore,limx→a
(f (x))1/n = F 1/n
UNLESS n is even and F is negative.
Limits 1.4 Calculating Limits with Limit Laws
Powers and Roots of Limits
Which of the following gives a real number?
A. 41/2 = 2 B. (−4)1/2=√−4 C. 4−1/2
= 12
D. (−4)−1/2
= 1√−4
Powers of Limits
If n is a positive integer, and limx→a
f (x) = F (where F is a real number), then:
limx→a
(f (x))n = F n.
Furthermore,limx→a
(f (x))1/n = F 1/n
UNLESS n is even and F is negative.
Limits 1.4 Calculating Limits with Limit Laws
Powers and Roots of Limits
Which of the following gives a real number?
A. 41/2 = 2 B. (−4)1/2=√−4 C. 4−1/2 = 1
2D. (−4)−1/2
= 1√−4
Powers of Limits
If n is a positive integer, and limx→a
f (x) = F (where F is a real number), then:
limx→a
(f (x))n = F n.
Furthermore,limx→a
(f (x))1/n = F 1/n
UNLESS n is even and F is negative.
Limits 1.4 Calculating Limits with Limit Laws
Powers and Roots of Limits
Which of the following gives a real number?
A. 41/2 = 2 B. (−4)1/2=√−4 C. 4−1/2 = 1
2D. (−4)−1/2 = 1√
−4
Powers of Limits
If n is a positive integer, and limx→a
f (x) = F (where F is a real number), then:
limx→a
(f (x))n = F n.
Furthermore,limx→a
(f (x))1/n = F 1/n
UNLESS n is even and F is negative.
Limits 1.4 Calculating Limits with Limit Laws
Powers and Roots of Limits
Which of the following gives a real number?
A. 41/2 = 2 B. (−4)1/2=√−4 C. 4−1/2 = 1
2D. (−4)−1/2 = 1√
−4
A. 81/3
= 2
B. (−8)1/3
= −2
C. 8−1/3
= 12
D. (−8)−1/3
= 1−2
Powers of Limits
If n is a positive integer, and limx→a
f (x) = F (where F is a real number), then:
limx→a
(f (x))n = F n.
Furthermore,limx→a
(f (x))1/n = F 1/n
UNLESS n is even and F is negative.
Limits 1.4 Calculating Limits with Limit Laws
Powers and Roots of Limits
Which of the following gives a real number?
A. 41/2 = 2 B. (−4)1/2=√−4 C. 4−1/2 = 1
2D. (−4)−1/2 = 1√
−4
A. 81/3 = 2 B. (−8)1/3
= −2
C. 8−1/3
= 12
D. (−8)−1/3
= 1−2
Powers of Limits
If n is a positive integer, and limx→a
f (x) = F (where F is a real number), then:
limx→a
(f (x))n = F n.
Furthermore,limx→a
(f (x))1/n = F 1/n
UNLESS n is even and F is negative.
Limits 1.4 Calculating Limits with Limit Laws
Powers and Roots of Limits
Which of the following gives a real number?
A. 41/2 = 2 B. (−4)1/2=√−4 C. 4−1/2 = 1
2D. (−4)−1/2 = 1√
−4
A. 81/3 = 2 B. (−8)1/3= −2 C. 8−1/3
= 12
D. (−8)−1/3
= 1−2
Powers of Limits
If n is a positive integer, and limx→a
f (x) = F (where F is a real number), then:
limx→a
(f (x))n = F n.
Furthermore,limx→a
(f (x))1/n = F 1/n
UNLESS n is even and F is negative.
Limits 1.4 Calculating Limits with Limit Laws
Powers and Roots of Limits
Which of the following gives a real number?
A. 41/2 = 2 B. (−4)1/2=√−4 C. 4−1/2 = 1
2D. (−4)−1/2 = 1√
−4
A. 81/3 = 2 B. (−8)1/3= −2 C. 8−1/3 = 12
D. (−8)−1/3
= 1−2
Powers of Limits
If n is a positive integer, and limx→a
f (x) = F (where F is a real number), then:
limx→a
(f (x))n = F n.
Furthermore,limx→a
(f (x))1/n = F 1/n
UNLESS n is even and F is negative.
Limits 1.4 Calculating Limits with Limit Laws
Powers and Roots of Limits
Which of the following gives a real number?
A. 41/2 = 2 B. (−4)1/2=√−4 C. 4−1/2 = 1
2D. (−4)−1/2 = 1√
−4
A. 81/3 = 2 B. (−8)1/3= −2 C. 8−1/3 = 12
D. (−8)−1/3 = 1−2
Powers of Limits
If n is a positive integer, and limx→a
f (x) = F (where F is a real number), then:
limx→a
(f (x))n = F n.
Furthermore,limx→a
(f (x))1/n = F 1/n
UNLESS n is even and F is negative.
Limits 1.4 Calculating Limits with Limit Laws
Powers and Roots of Limits
Which of the following gives a real number?
A. 41/2 = 2 B. (−4)1/2=√−4 C. 4−1/2 = 1
2D. (−4)−1/2 = 1√
−4
A. 81/3 = 2 B. (−8)1/3= −2 C. 8−1/3 = 12
D. (−8)−1/3 = 1−2
Powers of Limits
If n is a positive integer, and limx→a
f (x) = F (where F is a real number), then:
limx→a
(f (x))n = F n.
Furthermore,limx→a
(f (x))1/n = F 1/n
UNLESS n is even and F is negative.
Limits 1.4 Calculating Limits with Limit Laws
Powers and Roots of Limits
Powers of Limits
If n is a positive integer, and limx→a
f (x) = F (where F is a real number), then:
limx→a
(f (x))n = F n.
Furthermore,limx→a
(f (x))1/n = F 1/n
UNLESS n is even and F is negative.
limx→4
(x + 5)1/2
=[
limx→4
(x + 5)]1/2
= 91/2 = 3
Limits 1.4 Calculating Limits with Limit Laws
Powers and Roots of Limits
Powers of Limits
If n is a positive integer, and limx→a
f (x) = F (where F is a real number), then:
limx→a
(f (x))n = F n.
Furthermore,limx→a
(f (x))1/n = F 1/n
UNLESS n is even and F is negative.
limx→4
(x + 5)1/2 =[
limx→4
(x + 5)]1/2
= 91/2 = 3
Limits 1.4 Calculating Limits with Limit Laws
Powers and Roots of Limits
Powers of Limits
If n is a positive integer, and limx→a
f (x) = F (where F is a real number), then:
limx→a
(f (x))n = F n.
Furthermore,limx→a
(f (x))1/n = F 1/n
UNLESS n is even and F is negative.
limx→4
(x + 5)1/2 =[
limx→4
(x + 5)]1/2
= 91/2
= 3
Limits 1.4 Calculating Limits with Limit Laws
Powers and Roots of Limits
Powers of Limits
If n is a positive integer, and limx→a
f (x) = F (where F is a real number), then:
limx→a
(f (x))n = F n.
Furthermore,limx→a
(f (x))1/n = F 1/n
UNLESS n is even and F is negative.
limx→4
(x + 5)1/2 =[
limx→4
(x + 5)]1/2
= 91/2 = 3
Limits 1.4 Calculating Limits with Limit Laws
Cautionary Tales
limx→0
(5 + x)2 − 25
x
→ 0
0; NEED ANOTHER WAY
limx→3
(x − 6
3
)1/8
→ 8√−1; DANGER DANGER
limx→0
32
x→ 32
0; THIS EXPRESSION IS MEANINGLESS
limx→5
(x2 + 2
)1/3
= (52 + 2)1/3 = 3√
27 = 3
Limits 1.4 Calculating Limits with Limit Laws
Cautionary Tales
limx→0
(5 + x)2 − 25
x→ 0
0; NEED ANOTHER WAY
limx→3
(x − 6
3
)1/8
→ 8√−1; DANGER DANGER
limx→0
32
x→ 32
0; THIS EXPRESSION IS MEANINGLESS
limx→5
(x2 + 2
)1/3
= (52 + 2)1/3 = 3√
27 = 3
Limits 1.4 Calculating Limits with Limit Laws
Cautionary Tales
limx→0
(5 + x)2 − 25
x→ 0
0; NEED ANOTHER WAY
limx→3
(x − 6
3
)1/8
→ 8√−1; DANGER DANGER
limx→0
32
x→ 32
0; THIS EXPRESSION IS MEANINGLESS
limx→5
(x2 + 2
)1/3
= (52 + 2)1/3 = 3√
27 = 3
Limits 1.4 Calculating Limits with Limit Laws
Cautionary Tales
limx→0
(5 + x)2 − 25
x→ 0
0; NEED ANOTHER WAY
limx→3
(x − 6
3
)1/8
→ 8√−1; DANGER DANGER
limx→0
32
x→ 32
0; THIS EXPRESSION IS MEANINGLESS
limx→5
(x2 + 2
)1/3
= (52 + 2)1/3 = 3√
27 = 3
Limits 1.4 Calculating Limits with Limit Laws
Cautionary Tales
limx→0
(5 + x)2 − 25
x→ 0
0; NEED ANOTHER WAY
limx→3
(x − 6
3
)1/8
→ 8√−1; DANGER DANGER
limx→0
32
x
→ 32
0; THIS EXPRESSION IS MEANINGLESS
limx→5
(x2 + 2
)1/3
= (52 + 2)1/3 = 3√
27 = 3
Limits 1.4 Calculating Limits with Limit Laws
Cautionary Tales
limx→0
(5 + x)2 − 25
x→ 0
0; NEED ANOTHER WAY
limx→3
(x − 6
3
)1/8
→ 8√−1; DANGER DANGER
limx→0
32
x→ 32
0; THIS EXPRESSION IS MEANINGLESS
limx→5
(x2 + 2
)1/3
= (52 + 2)1/3 = 3√
27 = 3
Limits 1.4 Calculating Limits with Limit Laws
Cautionary Tales
limx→0
(5 + x)2 − 25
x→ 0
0; NEED ANOTHER WAY
limx→3
(x − 6
3
)1/8
→ 8√−1; DANGER DANGER
limx→0
32
x→ 32
0; THIS EXPRESSION IS MEANINGLESS
limx→5
(x2 + 2
)1/3
= (52 + 2)1/3 = 3√
27 = 3
Limits 1.4 Calculating Limits with Limit Laws
Cautionary Tales
limx→0
(5 + x)2 − 25
x→ 0
0; NEED ANOTHER WAY
limx→3
(x − 6
3
)1/8
→ 8√−1; DANGER DANGER
limx→0
32
x→ 32
0; THIS EXPRESSION IS MEANINGLESS
limx→5
(x2 + 2
)1/3
= (52 + 2)1/3 = 3√
27 = 3
Limits 1.4 Calculating Limits with Limit Laws
Functions that Differ at a Single Point
Suppose limx→a
g(x) exists, and f (x) = g(x)
when x is close to a (but not necessarily equal to a).
Then limx→a
f (x) = limx→a
g(x).
x
y
f (x)
g(x)
a
Evaluate limx→1
x3 + x2 − x − 1
x − 1.
x3 + x2 − x − 1
x − 1=
(x + 1)2(x − 1)
x − 1
= (x + 1)2 whenever x 6= 1
So, limx→1
x3 + x2 − x − 1
x − 1= lim
x→1(x + 1)2 = 4
Limits 1.4 Calculating Limits with Limit Laws
Functions that Differ at a Single Point
Suppose limx→a
g(x) exists, and f (x) = g(x)
when x is close to a (but not necessarily equal to a).
Then limx→a
f (x) = limx→a
g(x).
Evaluate limx→1
x3 + x2 − x − 1
x − 1.
x3 + x2 − x − 1
x − 1=
(x + 1)2(x − 1)
x − 1
= (x + 1)2 whenever x 6= 1
So, limx→1
x3 + x2 − x − 1
x − 1= lim
x→1(x + 1)2 = 4
Limits 1.4 Calculating Limits with Limit Laws
Functions that Differ at a Single Point
Suppose limx→a
g(x) exists, and f (x) = g(x)
when x is close to a (but not necessarily equal to a).
Then limx→a
f (x) = limx→a
g(x).
Evaluate limx→1
x3 + x2 − x − 1
x − 1.
x3 + x2 − x − 1
x − 1=
(x + 1)2(x − 1)
x − 1
= (x + 1)2 whenever x 6= 1
So, limx→1
x3 + x2 − x − 1
x − 1= lim
x→1(x + 1)2 = 4
Limits 1.4 Calculating Limits with Limit Laws
Functions that Differ at a Single Point
Suppose limx→a
g(x) exists, and f (x) = g(x)
when x is close to a (but not necessarily equal to a).
Then limx→a
f (x) = limx→a
g(x).
Evaluate limx→1
x3 + x2 − x − 1
x − 1.
x3 + x2 − x − 1
x − 1=
(x + 1)2(x − 1)
x − 1
= (x + 1)2 whenever x 6= 1
So, limx→1
x3 + x2 − x − 1
x − 1= lim
x→1(x + 1)2 = 4
Limits 1.4 Calculating Limits with Limit Laws
Evaluate limx→5
√x + 20−
√4x + 5
x − 5
√x + 20−
√4x + 5
x − 5=
√x + 20−
√4x + 5
x − 5
(√x + 20 +
√4x + 5√
x + 20 +√
4x + 5
)=
(x + 20)− (4x + 5)
(x − 5)(√x + 20 +
√4x + 5)
=−3x + 25
(x − 5)(√x + 20 +
√4x + 5)
=−3√
x + 20 +√
4x + 5
So,
limx→5
√x + 20−
√4x + 5
x − 5= lim
x→5
−3√x + 20 +
√4x + 5
=−3
√5 + 20 +
√4(5) + 5
=−3
10
Limits 1.4 Calculating Limits with Limit Laws
Evaluate limx→5
√x + 20−
√4x + 5
x − 5
√x + 20−
√4x + 5
x − 5=
√x + 20−
√4x + 5
x − 5
(√x + 20 +
√4x + 5√
x + 20 +√
4x + 5
)=
(x + 20)− (4x + 5)
(x − 5)(√x + 20 +
√4x + 5)
=−3x + 25
(x − 5)(√x + 20 +
√4x + 5)
=−3√
x + 20 +√
4x + 5
So,
limx→5
√x + 20−
√4x + 5
x − 5= lim
x→5
−3√x + 20 +
√4x + 5
=−3
√5 + 20 +
√4(5) + 5
=−3
10
Limits 1.4 Calculating Limits with Limit Laws
A Few Strategies for Calculating Limits
First, hope that you can directly substitute (plug in). If your function is made up of thesum, difference, product, quotient, or power of ploynomials, you can do this PROVIDEDthe function exists where you’re taking the limit.
limx→1
(√35 + x5 +
x − 3
x2
)3
=
(√35 + 15 +
1− 3
12
)3
= 64
If you have a function as described above and the point where you’re taking the limit isNOT in its domain, if you think the limit exists, try to simplify and cancel.
limx→0
x + 71x− 1
2x
= limx→0
x + 72
2x− 1
2x
= limx→0
x + 71
2x
= limx→0
2x(x + 7) = 0
Otherwise, you can try graphing the function, or making a table of values, to get a betterpicture of what is going on.
Limits 1.4 Calculating Limits with Limit Laws
A Few Strategies for Calculating Limits
First, hope that you can directly substitute (plug in). If your function is made up of thesum, difference, product, quotient, or power of ploynomials, you can do this PROVIDEDthe function exists where you’re taking the limit.
limx→1
(√35 + x5 +
x − 3
x2
)3
=
(√35 + 15 +
1− 3
12
)3
= 64
If you have a function as described above and the point where you’re taking the limit isNOT in its domain, if you think the limit exists, try to simplify and cancel.
limx→0
x + 71x− 1
2x
= limx→0
x + 72
2x− 1
2x
= limx→0
x + 71
2x
= limx→0
2x(x + 7) = 0
Otherwise, you can try graphing the function, or making a table of values, to get a betterpicture of what is going on.
Limits 1.4 Calculating Limits with Limit Laws
A Few Strategies for Calculating Limits
First, hope that you can directly substitute (plug in). If your function is made up of thesum, difference, product, quotient, or power of ploynomials, you can do this PROVIDEDthe function exists where you’re taking the limit.
limx→1
(√35 + x5 +
x − 3
x2
)3
=
(√35 + 15 +
1− 3
12
)3
= 64
If you have a function as described above and the point where you’re taking the limit isNOT in its domain, if you think the limit exists, try to simplify and cancel.
limx→0
x + 71x− 1
2x
= limx→0
x + 72
2x− 1
2x
= limx→0
x + 71
2x
= limx→0
2x(x + 7) = 0
Otherwise, you can try graphing the function, or making a table of values, to get a betterpicture of what is going on.
Limits 1.4 Calculating Limits with Limit Laws
A Few Strategies for Calculating Limits
First, hope that you can directly substitute (plug in). If your function is made up of thesum, difference, product, quotient, or power of ploynomials, you can do this PROVIDEDthe function exists where you’re taking the limit.
limx→1
(√35 + x5 +
x − 3
x2
)3
=
(√35 + 15 +
1− 3
12
)3
= 64
If you have a function as described above and the point where you’re taking the limit isNOT in its domain, if you think the limit exists, try to simplify and cancel.
limx→0
x + 71x− 1
2x
= limx→0
x + 72
2x− 1
2x
= limx→0
x + 71
2x
= limx→0
2x(x + 7) = 0
Otherwise, you can try graphing the function, or making a table of values, to get a betterpicture of what is going on.
Limits 1.4 Calculating Limits with Limit Laws
A Few Strategies for Calculating Limits
For the limit of a fraction where the numerator goes to a non-zero number, andthe denominator goes to zero, think about what division does, and figure out thesign.
limx→0
x − 1
x=
DNE
As x gets close to zero, the denominator gets very tiny, and the numberator is close to 1.Since a tiny, tiny , tiny number “goes into” 1 many, many, many times, the value ofx − 1
xwill get very large–but might be positive or negative depending on the sign of x .
limx→0−
x − 1
x=∞ and lim
x→0+
x − 1
x= −∞
limx→0
x − 1
x2=
−∞
limx→−4−
−3√x2 − 4
=
−∞
Limits 1.4 Calculating Limits with Limit Laws
A Few Strategies for Calculating Limits
For the limit of a fraction where the numerator goes to a non-zero number, andthe denominator goes to zero, think about what division does, and figure out thesign.
limx→0
x − 1
x=
DNE
As x gets close to zero, the denominator gets very tiny, and the numberator is close to 1.Since a tiny, tiny , tiny number “goes into” 1 many, many, many times, the value ofx − 1
xwill get very large–but might be positive or negative depending on the sign of x .
limx→0−
x − 1
x=∞ and lim
x→0+
x − 1
x= −∞
limx→0
x − 1
x2=
−∞
limx→−4−
−3√x2 − 4
=
−∞
Limits 1.4 Calculating Limits with Limit Laws
A Few Strategies for Calculating Limits
For the limit of a fraction where the numerator goes to a non-zero number, andthe denominator goes to zero, think about what division does, and figure out thesign.
limx→0
x − 1
x=
DNE
As x gets close to zero, the denominator gets very tiny, and the numberator is close to 1.Since a tiny, tiny , tiny number “goes into” 1 many, many, many times, the value ofx − 1
xwill get very large–but might be positive or negative depending on the sign of x .
limx→0−
x − 1
x=∞ and lim
x→0+
x − 1
x= −∞
limx→0
x − 1
x2=
−∞
limx→−4−
−3√x2 − 4
=
−∞
Limits 1.4 Calculating Limits with Limit Laws
A Few Strategies for Calculating Limits
For the limit of a fraction where the numerator goes to a non-zero number, andthe denominator goes to zero, think about what division does, and figure out thesign.
limx→0
x − 1
x=
DNE
As x gets close to zero, the denominator gets very tiny, and the numberator is close to 1.Since a tiny, tiny , tiny number “goes into” 1 many, many, many times, the value ofx − 1
xwill get very large–but might be positive or negative depending on the sign of x .
limx→0−
x − 1
x=∞
and limx→0+
x − 1
x= −∞
limx→0
x − 1
x2=
−∞
limx→−4−
−3√x2 − 4
=
−∞
Limits 1.4 Calculating Limits with Limit Laws
A Few Strategies for Calculating Limits
For the limit of a fraction where the numerator goes to a non-zero number, andthe denominator goes to zero, think about what division does, and figure out thesign.
limx→0
x − 1
x=
DNE
As x gets close to zero, the denominator gets very tiny, and the numberator is close to 1.Since a tiny, tiny , tiny number “goes into” 1 many, many, many times, the value ofx − 1
xwill get very large–but might be positive or negative depending on the sign of x .
limx→0−
x − 1
x=∞ and lim
x→0+
x − 1
x= −∞
limx→0
x − 1
x2=
−∞
limx→−4−
−3√x2 − 4
=
−∞
Limits 1.4 Calculating Limits with Limit Laws
A Few Strategies for Calculating Limits
For the limit of a fraction where the numerator goes to a non-zero number, andthe denominator goes to zero, think about what division does, and figure out thesign.
limx→0
x − 1
x= DNE
As x gets close to zero, the denominator gets very tiny, and the numberator is close to 1.Since a tiny, tiny , tiny number “goes into” 1 many, many, many times, the value ofx − 1
xwill get very large–but might be positive or negative depending on the sign of x .
limx→0−
x − 1
x=∞ and lim
x→0+
x − 1
x= −∞
limx→0
x − 1
x2=
−∞
limx→−4−
−3√x2 − 4
=
−∞
Limits 1.4 Calculating Limits with Limit Laws
A Few Strategies for Calculating Limits
For the limit of a fraction where the numerator goes to a non-zero number, andthe denominator goes to zero, think about what division does, and figure out thesign.
limx→0
x − 1
x= DNE
As x gets close to zero, the denominator gets very tiny, and the numberator is close to 1.Since a tiny, tiny , tiny number “goes into” 1 many, many, many times, the value ofx − 1
xwill get very large–but might be positive or negative depending on the sign of x .
limx→0−
x − 1
x=∞ and lim
x→0+
x − 1
x= −∞
limx→0
x − 1
x2=
−∞
limx→−4−
−3√x2 − 4
=
−∞
Limits 1.4 Calculating Limits with Limit Laws
A Few Strategies for Calculating Limits
For the limit of a fraction where the numerator goes to a non-zero number, andthe denominator goes to zero, think about what division does, and figure out thesign.
limx→0
x − 1
x= DNE
As x gets close to zero, the denominator gets very tiny, and the numberator is close to 1.Since a tiny, tiny , tiny number “goes into” 1 many, many, many times, the value ofx − 1
xwill get very large–but might be positive or negative depending on the sign of x .
limx→0−
x − 1
x=∞ and lim
x→0+
x − 1
x= −∞
limx→0
x − 1
x2= −∞
limx→−4−
−3√x2 − 4
=
−∞
Limits 1.4 Calculating Limits with Limit Laws
A Few Strategies for Calculating Limits
For the limit of a fraction where the numerator goes to a non-zero number, andthe denominator goes to zero, think about what division does, and figure out thesign.
limx→0
x − 1
x= DNE
As x gets close to zero, the denominator gets very tiny, and the numberator is close to 1.Since a tiny, tiny , tiny number “goes into” 1 many, many, many times, the value ofx − 1
xwill get very large–but might be positive or negative depending on the sign of x .
limx→0−
x − 1
x=∞ and lim
x→0+
x − 1
x= −∞
limx→0
x − 1
x2= −∞
limx→−4−
−3√x2 − 4
= −∞
Limits 1.4 Calculating Limits with Limit Laws
Suppose a lemonade stand diversifies to sell lemonade, raspberry juice, and raspberrylemonade. The prices of ingredients fluctuate, but the sale price of raspberry lemonade isalways between the sale prices of lemonade and raspberry juice. One day, as a promotion,the stand sells lemonade and raspberry juice each for $1 a cup. How much do they sellraspberry lemonade for on that day?
Always: lemonade ≤ raspberry lemonade ≤ raspberry juice
Today: lemonade = $1 = raspberry juice
So, today also raspberry lemonade = $1
Limits 1.4 Calculating Limits with Limit Laws
Suppose a lemonade stand diversifies to sell lemonade, raspberry juice, and raspberrylemonade. The prices of ingredients fluctuate, but the sale price of raspberry lemonade isalways between the sale prices of lemonade and raspberry juice. One day, as a promotion,the stand sells lemonade and raspberry juice each for $1 a cup. How much do they sellraspberry lemonade for on that day?
Always: lemonade ≤ raspberry lemonade ≤ raspberry juice
Today: lemonade = $1 = raspberry juice
So, today also raspberry lemonade = $1
Limits 1.4 Calculating Limits with Limit Laws
Suppose a lemonade stand diversifies to sell lemonade, raspberry juice, and raspberrylemonade. The prices of ingredients fluctuate, but the sale price of raspberry lemonade isalways between the sale prices of lemonade and raspberry juice. One day, as a promotion,the stand sells lemonade and raspberry juice each for $1 a cup. How much do they sellraspberry lemonade for on that day?
Always: lemonade ≤ raspberry lemonade ≤ raspberry juice
Today: lemonade = $1 = raspberry juice
So, today also raspberry lemonade = $1
Limits 1.4 Calculating Limits with Limit Laws
Suppose a lemonade stand diversifies to sell lemonade, raspberry juice, and raspberrylemonade. The prices of ingredients fluctuate, but the sale price of raspberry lemonade isalways between the sale prices of lemonade and raspberry juice. One day, as a promotion,the stand sells lemonade and raspberry juice each for $1 a cup. How much do they sellraspberry lemonade for on that day?
Always: lemonade ≤ raspberry lemonade ≤ raspberry juice
Today: lemonade = $1 = raspberry juice
So, today also raspberry lemonade = $1
Limits 1.4 Calculating Limits with Limit Laws
Squeeze Theorem
Suppose, when x is near (but not necessarily equal to) a, we have functions f (x), g(x),and h(x) so that
f (x) ≤ g(x) ≤ h(x)
and limx→a
f (x) = limx→a
h(x). Then limx→a
g(x) = limx→a
f (x).
limx→0
x2 sin
(1
x
)
Limits 1.4 Calculating Limits with Limit Laws
Squeeze Theorem
Suppose, when x is near (but not necessarily equal to) a, we have functions f (x), g(x),and h(x) so that
f (x) ≤ g(x) ≤ h(x)
and limx→a
f (x) = limx→a
h(x). Then limx→a
g(x) = limx→a
f (x).
limx→0
x2 sin
(1
x
)
Limits 1.4 Calculating Limits with Limit Laws
Evaluate:
limx→0
x2 sin
(1
x
)
x
y
y = x2
Limits 1.4 Calculating Limits with Limit Laws
Evaluate:
limx→0
x2 sin
(1
x
)
x
y
y = x2
Limits 1.4 Calculating Limits with Limit Laws
Evaluate:
limx→0
x2 sin
(1
x
)
x
y
y = x2
Limits 1.4 Calculating Limits with Limit Laws
Evaluate:
limx→0
x2 sin
(1
x
)
x
y
y = x2
Limits 1.4 Calculating Limits with Limit Laws
limx→0
x2 sin
(1
x
)
−1 ≤ sin
(1
x
)≤ 1
so −x2 ≤ x2 sin
(1
x
)≤ x2
and also limx→0−x2 = 0 = lim
x→0x2
Therefore, by the Squeeze Theorem, limx→0
x2 sin
(1
x
)= 0.
Squeeze Theorem
Suppose, when x is near (but not necessarily equal to) a, we have functions f (x), g(x),and h(x) so that
f (x) ≤ g(x) ≤ h(x)
and limx→a
f (x) = limx→a
h(x). Then limx→a
g(x) = limx→a
f (x).
Limits 1.4 Calculating Limits with Limit Laws
limx→0
x2 sin
(1
x
)
−1 ≤ sin
(1
x
)≤ 1
so −x2 ≤ x2 sin
(1
x
)≤ x2
and also limx→0−x2 = 0 = lim
x→0x2
Therefore, by the Squeeze Theorem, limx→0
x2 sin
(1
x
)= 0.
Squeeze Theorem
Suppose, when x is near (but not necessarily equal to) a, we have functions f (x), g(x),and h(x) so that
f (x) ≤ g(x) ≤ h(x)
and limx→a
f (x) = limx→a
h(x). Then limx→a
g(x) = limx→a
f (x).
Limits 1.4 Calculating Limits with Limit Laws
limx→0
x2 sin
(1
x
)
−1 ≤ sin
(1
x
)≤ 1
so −x2 ≤ x2 sin
(1
x
)≤ x2
and also limx→0−x2 = 0 = lim
x→0x2
Therefore, by the Squeeze Theorem, limx→0
x2 sin
(1
x
)= 0.
Squeeze Theorem
Suppose, when x is near (but not necessarily equal to) a, we have functions f (x), g(x),and h(x) so that
f (x) ≤ g(x) ≤ h(x)
and limx→a
f (x) = limx→a
h(x). Then limx→a
g(x) = limx→a
f (x).
Limits 1.4 Calculating Limits with Limit Laws
limx→0
x2 sin
(1
x
)
−1 ≤ sin
(1
x
)≤ 1
so −x2 ≤ x2 sin
(1
x
)≤ x2
and also limx→0−x2 = 0 = lim
x→0x2
Therefore, by the Squeeze Theorem, limx→0
x2 sin
(1
x
)= 0.
Squeeze Theorem
Suppose, when x is near (but not necessarily equal to) a, we have functions f (x), g(x),and h(x) so that
f (x) ≤ g(x) ≤ h(x)
and limx→a
f (x) = limx→a
h(x). Then limx→a
g(x) = limx→a
f (x).
Limits 1.5 Limits at Infinity
Limits at Infinity
End Behavior
We write:lim
x→∞f (x) = L
to express that, as x grows larger and larger, f (x) approaches L.Similarly, we write:
limx→−∞
f (x) = L
to express that, as x grows more and more strongly negative, f (x) approaches L.If L is a number, we call y = L a horizontal asymptote of f (x).
Limits 1.5 Limits at Infinity
Common Limits at Infinity
limx→∞
13 =
13
limx→−∞
13 =
13
limx→∞
1
x=
0
limx→−∞
1
x=
0
limx→∞
x2 =
∞
limx→−∞
x2 =
∞
limx→∞
x3 =
∞
limx→−∞
x3 =
−∞
limx→−∞
x5/3 =
−∞
limx→−∞
x2/3 =
∞
Limits 1.5 Limits at Infinity
Common Limits at Infinity
limx→∞
13 = 13
limx→−∞
13 = 13
limx→∞
1
x=
0
limx→−∞
1
x=
0
limx→∞
x2 =
∞
limx→−∞
x2 =
∞
limx→∞
x3 =
∞
limx→−∞
x3 =
−∞
limx→−∞
x5/3 =
−∞
limx→−∞
x2/3 =
∞
Limits 1.5 Limits at Infinity
Common Limits at Infinity
limx→∞
13 = 13
limx→−∞
13 = 13
limx→∞
1
x= 0
limx→−∞
1
x= 0
limx→∞
x2 =
∞
limx→−∞
x2 =
∞
limx→∞
x3 =
∞
limx→−∞
x3 =
−∞
limx→−∞
x5/3 =
−∞
limx→−∞
x2/3 =
∞
Limits 1.5 Limits at Infinity
Common Limits at Infinity
limx→∞
13 = 13
limx→−∞
13 = 13
limx→∞
1
x= 0
limx→−∞
1
x= 0
limx→∞
x2 =∞
limx→−∞
x2 =
∞
limx→∞
x3 =∞
limx→−∞
x3 =
−∞
limx→−∞
x5/3 =
−∞
limx→−∞
x2/3 =
∞
Limits 1.5 Limits at Infinity
Common Limits at Infinity
limx→∞
13 = 13
limx→−∞
13 = 13
limx→∞
1
x= 0
limx→−∞
1
x= 0
limx→∞
x2 =∞
limx→−∞
x2 =∞
limx→∞
x3 =∞
limx→−∞
x3 = −∞
limx→−∞
x5/3 =
−∞
limx→−∞
x2/3 =
∞
Limits 1.5 Limits at Infinity
Common Limits at Infinity
limx→∞
13 = 13
limx→−∞
13 = 13
limx→∞
1
x= 0
limx→−∞
1
x= 0
limx→∞
x2 =∞
limx→−∞
x2 =∞
limx→∞
x3 =∞
limx→−∞
x3 = −∞
limx→−∞
x5/3 = −∞
limx→−∞
x2/3 =
∞
Limits 1.5 Limits at Infinity
Common Limits at Infinity
limx→∞
13 = 13
limx→−∞
13 = 13
limx→∞
1
x= 0
limx→−∞
1
x= 0
limx→∞
x2 =∞
limx→−∞
x2 =∞
limx→∞
x3 =∞
limx→−∞
x3 = −∞
limx→−∞
x5/3 = −∞
limx→−∞
x2/3 =∞
Limits 1.5 Limits at Infinity
Arithmetic with Limits at Infinity
limx→∞
(x +
x2
10
)=
∞
limx→∞
(x − x2
10
)=
limx→∞
x(
1− x
10
)= −∞
limx→−∞
(x2 + x3 + x4
)=
limx→−∞
x4
(1
x2+
1
x+ 1
)
=∞
limx→−∞
(x + 13)(x2 + 13
)1/3
=
−∞
Limits 1.5 Limits at Infinity
Arithmetic with Limits at Infinity
limx→∞
(x +
x2
10
)=∞
limx→∞
(x − x2
10
)=
limx→∞
x(
1− x
10
)= −∞
limx→−∞
(x2 + x3 + x4
)=
limx→−∞
x4
(1
x2+
1
x+ 1
)
=∞
limx→−∞
(x + 13)(x2 + 13
)1/3
=
−∞
Limits 1.5 Limits at Infinity
Arithmetic with Limits at Infinity
limx→∞
(x +
x2
10
)=∞
limx→∞
(x − x2
10
)= lim
x→∞x(
1− x
10
)
= −∞
limx→−∞
(x2 + x3 + x4
)=
limx→−∞
x4
(1
x2+
1
x+ 1
)
=∞
limx→−∞
(x + 13)(x2 + 13
)1/3
=
−∞
Limits 1.5 Limits at Infinity
Arithmetic with Limits at Infinity
limx→∞
(x +
x2
10
)=∞
limx→∞
(x − x2
10
)= lim
x→∞x(
1− x
10
)= −∞
limx→−∞
(x2 + x3 + x4
)=
limx→−∞
x4
(1
x2+
1
x+ 1
)
=∞
limx→−∞
(x + 13)(x2 + 13
)1/3
=
−∞
Limits 1.5 Limits at Infinity
Arithmetic with Limits at Infinity
limx→∞
(x +
x2
10
)=∞
limx→∞
(x − x2
10
)= lim
x→∞x(
1− x
10
)= −∞
limx→−∞
(x2 + x3 + x4
)= lim
x→−∞x4
(1
x2+
1
x+ 1
)
=∞
limx→−∞
(x + 13)(x2 + 13
)1/3
=
−∞
Limits 1.5 Limits at Infinity
Arithmetic with Limits at Infinity
limx→∞
(x +
x2
10
)=∞
limx→∞
(x − x2
10
)= lim
x→∞x(
1− x
10
)= −∞
limx→−∞
(x2 + x3 + x4
)= lim
x→−∞x4
(1
x2+
1
x+ 1
)=∞
limx→−∞
(x + 13)(x2 + 13
)1/3
=
−∞
Limits 1.5 Limits at Infinity
Arithmetic with Limits at Infinity
limx→∞
(x +
x2
10
)=∞
limx→∞
(x − x2
10
)= lim
x→∞x(
1− x
10
)= −∞
limx→−∞
(x2 + x3 + x4
)= lim
x→−∞x4
(1
x2+
1
x+ 1
)=∞
limx→−∞
(x + 13)(x2 + 13
)1/3
= −∞
Limits 1.5 Limits at Infinity
Calculating Limits at Infinity
limx→∞
x2 + 2x + 1
x3
Trick: factor out largest power of denominator.
limx→∞
x2 + 2x + 1
x3= lim
x→∞
x2 + 2x + 1
x3
(1x3
1x3
)
= limx→∞
1x
+ 2x2 + 1
x3
1
Now, you can do algebra
=lim
x→∞
1
x+ lim
x→∞
2
x2+ lim
x→∞
1
x3
limx→∞
1
=0 + 0 + 0
1= 0
Limits 1.5 Limits at Infinity
Calculating Limits at Infinity
limx→∞
x2 + 2x + 1
x3
Trick: factor out largest power of denominator.
limx→∞
x2 + 2x + 1
x3= lim
x→∞
x2 + 2x + 1
x3
(1x3
1x3
)
= limx→∞
1x
+ 2x2 + 1
x3
1
Now, you can do algebra
=lim
x→∞
1
x+ lim
x→∞
2
x2+ lim
x→∞
1
x3
limx→∞
1
=0 + 0 + 0
1= 0
Limits 1.5 Limits at Infinity
Calculating Limits at Infinity
limx→∞
x2 + 2x + 1
x3
Trick: factor out largest power of denominator.
limx→∞
x2 + 2x + 1
x3= lim
x→∞
x2 + 2x + 1
x3
(1x3
1x3
)
= limx→∞
1x
+ 2x2 + 1
x3
1
Now, you can do algebra
=lim
x→∞
1
x+ lim
x→∞
2
x2+ lim
x→∞
1
x3
limx→∞
1
=0 + 0 + 0
1= 0
Limits 1.5 Limits at Infinity
Calculating Limits at Infinity
limx→−∞
(x7/3 − x5/3)
Again: factor out largest power of x .
(x7/3 − x5/3) = x7/3
(1− 1
x2/3
)lim
x→−∞x7/3 = −∞
limx→−∞
(1− 1
x2/3
)= 1
So, limx→−∞
(x7/3 − x5/3) = −∞
Limits 1.5 Limits at Infinity
Calculating Limits at Infinity
limx→−∞
(x7/3 − x5/3)
Again: factor out largest power of x .
(x7/3 − x5/3) = x7/3
(1− 1
x2/3
)lim
x→−∞x7/3 = −∞
limx→−∞
(1− 1
x2/3
)= 1
So, limx→−∞
(x7/3 − x5/3) = −∞
Limits 1.5 Limits at Infinity
Calculating Limits at Infinity
limx→−∞
(x7/3 − x5/3)
Again: factor out largest power of x .
(x7/3 − x5/3) = x7/3
(1− 1
x2/3
)lim
x→−∞x7/3 = −∞
limx→−∞
(1− 1
x2/3
)= 1
So, limx→−∞
(x7/3 − x5/3) = −∞
Limits 1.5 Limits at Infinity
Calculating Limits at Infinity
limx→−∞
(x7/3 − x5/3)
Again: factor out largest power of x .
(x7/3 − x5/3) = x7/3
(1− 1
x2/3
)lim
x→−∞x7/3 = −∞
limx→−∞
(1− 1
x2/3
)= 1
So, limx→−∞
(x7/3 − x5/3) = −∞
Limits 1.5 Limits at Infinity
Calculating Limits at Infinity
Suppose the height of a bouncing ball is given by h(t) = sin(t)+1t
, for t ≥ 1. Whathappens to the height over a long period of time?
0 ≤ sin(t) + 1
t≤ 2
t
limt→∞
0 = 0 = limt→∞
2
t
So, by the Squeeze Theorem,
limt→∞
sin(t) + 1
t= 0
Limits 1.5 Limits at Infinity
Calculating Limits at Infinity
Suppose the height of a bouncing ball is given by h(t) = sin(t)+1t
, for t ≥ 1. Whathappens to the height over a long period of time?
0 ≤ sin(t) + 1
t≤ 2
t
limt→∞
0 = 0 = limt→∞
2
t
So, by the Squeeze Theorem,
limt→∞
sin(t) + 1
t= 0
Limits 1.5 Limits at Infinity
Calculating Limits at Infinity
Suppose the height of a bouncing ball is given by h(t) = sin(t)+1t
, for t ≥ 1. Whathappens to the height over a long period of time?
0 ≤ sin(t) + 1
t≤ 2
t
limt→∞
0 = 0 = limt→∞
2
t
So, by the Squeeze Theorem,
limt→∞
sin(t) + 1
t= 0
Limits 1.5 Limits at Infinity
Tough One
limx→∞
√x4 + x2 + 1−
√x4 + 3x2
Multiply function by conjugate:
(√x4 + x2 + 1−
√x4 + 3x2
)(√x4 + x2 + 1 +√x4 + 3x2
√x4 + x2 + 1 +
√x4 + 3x2
)=
−2x2 + 1√x4 + x2 + 1 +
√x4 + 3x2
Factor out highest power: x2 (same as√x4)
−2x2 + 1√x4 + x2 + 1 +
√x4 + 3x2
(1/x2
1/√x4
)
=−2 + 1
x2√1 + 1
x2 + 1x4 +
√1 + 3
x2
limx→∞
−2 + 1x2√
1 + 1x2 + 1
x4 +√
1 + 3x2
=−2 + 0
√1 + 0 + 0 +
√1 + 0
=−2
2= −1
Limits 1.5 Limits at Infinity
Tough One
limx→∞
√x4 + x2 + 1−
√x4 + 3x2
Multiply function by conjugate:
(√x4 + x2 + 1−
√x4 + 3x2
)(√x4 + x2 + 1 +√x4 + 3x2
√x4 + x2 + 1 +
√x4 + 3x2
)=
−2x2 + 1√x4 + x2 + 1 +
√x4 + 3x2
Factor out highest power: x2 (same as√x4)
−2x2 + 1√x4 + x2 + 1 +
√x4 + 3x2
(1/x2
1/√x4
)
=−2 + 1
x2√1 + 1
x2 + 1x4 +
√1 + 3
x2
limx→∞
−2 + 1x2√
1 + 1x2 + 1
x4 +√
1 + 3x2
=−2 + 0
√1 + 0 + 0 +
√1 + 0
=−2
2= −1
Limits 1.5 Limits at Infinity
Tough One
limx→∞
√x4 + x2 + 1−
√x4 + 3x2
Multiply function by conjugate:
(√x4 + x2 + 1−
√x4 + 3x2
)(√x4 + x2 + 1 +√x4 + 3x2
√x4 + x2 + 1 +
√x4 + 3x2
)=
−2x2 + 1√x4 + x2 + 1 +
√x4 + 3x2
Factor out highest power: x2 (same as√x4)
−2x2 + 1√x4 + x2 + 1 +
√x4 + 3x2
(1/x2
1/√x4
)
=−2 + 1
x2√1 + 1
x2 + 1x4 +
√1 + 3
x2
limx→∞
−2 + 1x2√
1 + 1x2 + 1
x4 +√
1 + 3x2
=−2 + 0
√1 + 0 + 0 +
√1 + 0
=−2
2= −1
Limits 1.5 Limits at Infinity
Tough One
limx→∞
√x4 + x2 + 1−
√x4 + 3x2
Multiply function by conjugate:
(√x4 + x2 + 1−
√x4 + 3x2
)(√x4 + x2 + 1 +√x4 + 3x2
√x4 + x2 + 1 +
√x4 + 3x2
)=
−2x2 + 1√x4 + x2 + 1 +
√x4 + 3x2
Factor out highest power: x2 (same as√x4)
−2x2 + 1√x4 + x2 + 1 +
√x4 + 3x2
(1/x2
1/√x4
)
=−2 + 1
x2√1 + 1
x2 + 1x4 +
√1 + 3
x2
limx→∞
−2 + 1x2√
1 + 1x2 + 1
x4 +√
1 + 3x2
=−2 + 0
√1 + 0 + 0 +
√1 + 0
=−2
2= −1
Limits 1.5 Limits at Infinity
Evaluate limx→−∞
√3 + x2
3x
We factor out the largest power of the denominator, which is is x .
limx→−∞
√3 + x2
3x
(1/x
1/x
)= lim
x→−∞
√3+x2
x
3
When x < 0,√x2 = |x | = −x
= limx→−∞
1
3
√3 + x2
−√x2
= limx→−∞
−1
3
√3 + x2
x2
= limx→−∞
−1
3
√3
x2+ 1
= −1
3
Limits 1.5 Limits at Infinity
Evaluate limx→−∞
√3 + x2
3xWe factor out the largest power of the denominator, which is is x .
limx→−∞
√3 + x2
3x
(1/x
1/x
)= lim
x→−∞
√3+x2
x
3
When x < 0,√x2 = |x | = −x
= limx→−∞
1
3
√3 + x2
−√x2
= limx→−∞
−1
3
√3 + x2
x2
= limx→−∞
−1
3
√3
x2+ 1
= −1
3
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if limx→a
f (x) exists AND is equal to f (a).
A function f (x) is continuous from the left at a point a iflim
x→a−f (x) exists AND is equal to f (a).
f (x) =
{x2 sin
(1x
), x 6= 0
0 , x = 0
Is f (x) continuous at 0?
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if limx→a
f (x) exists AND is equal to f (a).
A function f (x) is continuous from the left at a point a iflim
x→a−f (x) exists AND is equal to f (a).
x
y
y = f (x)
−2 −1 1 2
1
2
3
4 Is f (x) continuous at 0?
Yes.
Is f (x) continuous at 1?
No.
This kind of discontinuity is calledremovable.
f (x) =
{x2 sin
(1x
), x 6= 0
0 , x = 0
Is f (x) continuous at 0?
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if limx→a
f (x) exists AND is equal to f (a).
A function f (x) is continuous from the left at a point a iflim
x→a−f (x) exists AND is equal to f (a).
x
y
y = f (x)
−2 −1 1 2
1
2
3
4 Is f (x) continuous at 0? Yes.Is f (x) continuous at 1?
No.
This kind of discontinuity is calledremovable.
f (x) =
{x2 sin
(1x
), x 6= 0
0 , x = 0
Is f (x) continuous at 0?
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if limx→a
f (x) exists AND is equal to f (a).
A function f (x) is continuous from the left at a point a iflim
x→a−f (x) exists AND is equal to f (a).
x
y
y = f (x)
−2 −1 1 2
1
2
3
4 Is f (x) continuous at 0? Yes.Is f (x) continuous at 1? No.
This kind of discontinuity is calledremovable.
f (x) =
{x2 sin
(1x
), x 6= 0
0 , x = 0
Is f (x) continuous at 0?
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if limx→a
f (x) exists AND is equal to f (a).
A function f (x) is continuous from the left at a point a iflim
x→a−f (x) exists AND is equal to f (a).
x
y
y = f (x)
−2 −1 1 2
1
2
3
4 Is f (x) continuous at 0? Yes.Is f (x) continuous at 1? No.
This kind of discontinuity is calledremovable.
f (x) =
{x2 sin
(1x
), x 6= 0
0 , x = 0
Is f (x) continuous at 0?
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if limx→a
f (x) exists AND is equal to f (a).
A function f (x) is continuous from the left at a point a iflim
x→a−f (x) exists AND is equal to f (a).
x
y y = f (x)
00
1
1
2
2
3
3
4
4
5
5
6
6 Is f (x) continuous at 3?
No.Is f (x) continuous from the left at 3?
Yes.
Is f (x) continuous from the right at 3?
No.
This kind of discontinuity is called ajump.
f (x) =
{x2 sin
(1x
), x 6= 0
0 , x = 0
Is f (x) continuous at 0?
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if limx→a
f (x) exists AND is equal to f (a).
A function f (x) is continuous from the left at a point a iflim
x→a−f (x) exists AND is equal to f (a).
x
y y = f (x)
00
1
1
2
2
3
3
4
4
5
5
6
6 Is f (x) continuous at 3? No.
Is f (x) continuous from the left at 3?
Yes.
Is f (x) continuous from the right at 3?
No.
This kind of discontinuity is called ajump.
f (x) =
{x2 sin
(1x
), x 6= 0
0 , x = 0
Is f (x) continuous at 0?
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if limx→a
f (x) exists AND is equal to f (a).
A function f (x) is continuous from the left at a point a iflim
x→a−f (x) exists AND is equal to f (a).
x
y y = f (x)
00
1
1
2
2
3
3
4
4
5
5
6
6 Is f (x) continuous at 3? No.
Is f (x) continuous from the left at 3?
Yes.
Is f (x) continuous from the right at 3?
No.
This kind of discontinuity is called ajump.
f (x) =
{x2 sin
(1x
), x 6= 0
0 , x = 0
Is f (x) continuous at 0?
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if limx→a
f (x) exists AND is equal to f (a).
A function f (x) is continuous from the left at a point a iflim
x→a−f (x) exists AND is equal to f (a).
x
y y = f (x)
00
1
1
2
2
3
3
4
4
5
5
6
6 Is f (x) continuous at 3? No.Is f (x) continuous from the left at 3?
Yes.
Is f (x) continuous from the right at 3?
No.
This kind of discontinuity is called ajump.
f (x) =
{x2 sin
(1x
), x 6= 0
0 , x = 0
Is f (x) continuous at 0?
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if limx→a
f (x) exists AND is equal to f (a).
A function f (x) is continuous from the left at a point a iflim
x→a−f (x) exists AND is equal to f (a).
x
y y = f (x)
00
1
1
2
2
3
3
4
4
5
5
6
6 Is f (x) continuous at 3? No.Is f (x) continuous from the left at 3?Yes.Is f (x) continuous from the right at 3?
No.
This kind of discontinuity is called ajump.
f (x) =
{x2 sin
(1x
), x 6= 0
0 , x = 0
Is f (x) continuous at 0?
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if limx→a
f (x) exists AND is equal to f (a).
A function f (x) is continuous from the left at a point a iflim
x→a−f (x) exists AND is equal to f (a).
x
y y = f (x)
00
1
1
2
2
3
3
4
4
5
5
6
6 Is f (x) continuous at 3? No.Is f (x) continuous from the left at 3?Yes.Is f (x) continuous from the right at 3?No.
This kind of discontinuity is called ajump.
f (x) =
{x2 sin
(1x
), x 6= 0
0 , x = 0
Is f (x) continuous at 0?
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if limx→a
f (x) exists AND is equal to f (a).
A function f (x) is continuous from the left at a point a iflim
x→a−f (x) exists AND is equal to f (a).
x
y y = f (x)
0
1
2
3
4
5
−2 −1 0 1 2 3 4 5 6
Since no one-sided limits exist at 1,there’s no hope for continuity.
This is called an infinite discontinuity.
f (x) =
{x2 sin
(1x
), x 6= 0
0 , x = 0
Is f (x) continuous at 0?
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if limx→a
f (x) exists AND is equal to f (a).
A function f (x) is continuous from the left at a point a iflim
x→a−f (x) exists AND is equal to f (a).
x
y y = f (x)
0
1
2
3
4
5
−2 −1 0 1 2 3 4 5 6
Since no one-sided limits exist at 1,there’s no hope for continuity.
This is called an infinite discontinuity.
f (x) =
{x2 sin
(1x
), x 6= 0
0 , x = 0
Is f (x) continuous at 0?
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if limx→a
f (x) exists AND is equal to f (a).
A function f (x) is continuous from the left at a point a iflim
x→a−f (x) exists AND is equal to f (a).
f (x) =
{x2 sin
(1x
), x 6= 0
0 , x = 0
Is f (x) continuous at 0?
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if
limx→a
f (x) = f (a)
Functions made by adding, subtracting, multiplying, dividing, and taking appropriatepowers of polynomials are continuous for every point in their domain.
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if
limx→a
f (x) = f (a)
Functions made by adding, subtracting, multiplying, dividing, and taking appropriatepowers of polynomials are continuous for every point in their domain.Example:
f (x) =x2
2x − 10−
(x2 + 2x − 1
x − 1+
5√
25− x − 1x
x + 2
)1/3
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if
limx→a
f (x) = f (a)
Functions made by adding, subtracting, multiplying, dividing, and taking appropriatepowers of polynomials are continuous for every point in their domain.Example:
f (x) =x2
2x − 10−
(x2 + 2x − 1
x − 1+
5√
25− x − 1x
x + 2
)1/3
f (x) is continuous at every point except 5, 1, 0, and −2.
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if
limx→a
f (x) = f (a)
Functions made by adding, subtracting, multiplying, dividing, and taking appropriatepowers of polynomials are continuous for every point in their domain.Example:
f (x) =x2
2x − 10−
(x2 + 2x − 1
x − 1+
5√
25− x − 1x
x + 2
)1/3
f (x) is continuous at every point except 5, 1, 0, and −2.A continuous function is continuous for every point in R.
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if
limx→a
f (x) = f (a)
Functions made by adding, subtracting, multiplying, dividing, and taking appropriatepowers of polynomials are continuous for every point in their domain.Example:
f (x) =x2
2x − 10−
(x2 + 2x − 1
x − 1+
5√
25− x − 1x
x + 2
)1/3
f (x) is continuous at every point except 5, 1, 0, and −2.A continuous function is continuous for every point in R.We say f (x) is continuous over (a, b) if it is continuous at every point in (a, b). So, f (x)is continuous over its domain, (−∞,−2) ∪ (−2, 0) ∪ (0, 1) ∪ (1, 5) ∪ (5,∞).
Limits 1.6 Continuity
Continuity
Definition
A function f (x) is continuous at a point a if
limx→a
f (x) = f (a)
Common Functions
Functions of the following types are continuous over their domains:
- polynomials and rationals
- roots and powers
- trig functions and their inverses
- exponential and logarithm
- The products, sums, differences, quotients, powers, and compositions of continuousfunctions
Limits 1.6 Continuity
Where is the following function continuous?
f (x) =
(sin x
(x − 2)(x + 3)+ e√
x
)3
Over its domain: [0, 2) ∪ (2,∞).
Lots of examples in notes.
Limits 1.6 Continuity
Where is the following function continuous?
f (x) =
(sin x
(x − 2)(x + 3)+ e√
x
)3
Over its domain: [0, 2) ∪ (2,∞).
Lots of examples in notes.
Limits 1.6 Continuity
Where is the following function continuous?
f (x) =
(sin x
(x − 2)(x + 3)+ e√
x
)3
Over its domain: [0, 2) ∪ (2,∞).
Lots of examples in notes.
Limits 1.6 Continuity
Continuity in Nature
Baby weight chart, 1909Source: http://gallery.nen.gov.uk/asset668105-.html
Limits 1.6 Continuity
Continuity in Nature
Graph of luminosity of a star over time, after star explodes.Data from 1987. Source:http://abyss.uoregon.edu/ ∼js/ast122/lectures/ lec18.html
Limits 1.6 Continuity
A Technical Point
Definition
A function f (x) is continuous on the closed interval [a, b] if:
f (x) is continuous over (a, b), and
f (x) is continuous form the left at
b
, and
f (x) is continuous form the right at
a
a b
Limits 1.6 Continuity
A Technical Point
Definition
A function f (x) is continuous on the closed interval [a, b] if:
f (x) is continuous over (a, b), and
f (x) is continuous form the left at
b
, and
f (x) is continuous form the right at
a
a b
Limits 1.6 Continuity
A Technical Point
Definition
A function f (x) is continuous on the closed interval [a, b] if:
f (x) is continuous over (a, b), and
f (x) is continuous form the left at b, and
f (x) is continuous form the right at
a
a b
Limits 1.6 Continuity
A Technical Point
Definition
A function f (x) is continuous on the closed interval [a, b] if:
f (x) is continuous over (a, b), and
f (x) is continuous form the left at b, and
f (x) is continuous form the right at a
a b
Limits 1.6 Continuity
Intermediate Value Theorem (IVT)
Theorem:
Let a < b and let f (x) be continuous over [a, b]. If y is any number between f (a) andf (b), then there exists c in (a, b) such that f (c) = y .
x
y
a b
f (a)
f (b)
y
c
y
c
Limits 1.6 Continuity
Intermediate Value Theorem (IVT)
Theorem:
Let a < b and let f (x) be continuous over [a, b]. If y is any number between f (a) andf (b), then there exists c in (a, b) such that f (c) = y .
x
y
a b
f (a)
f (b)
y
c
y
c
Limits 1.6 Continuity
Intermediate Value Theorem (IVT)
Theorem:
Let a < b and let f (x) be continuous over [a, b]. If y is any number between f (a) andf (b), then there exists c in (a, b) such that f (c) = y .
x
y
a b
f (a)
f (b)
y
c
y
c
Limits 1.6 Continuity
Intermediate Value Theorem (IVT)
Theorem:
Let a < b and let f (x) be continuous over [a, b]. If y is any number between f (a) andf (b), then there exists c in (a, b) such that f (c) = y .
x
y
a b
f (a)
f (b)
y
c
y
c
Limits 1.6 Continuity
Intermediate Value Theorem (IVT)
Theorem:
Let a < b and let f (x) be continuous over [a, b]. If y is any number between f (a) andf (b), then there exists c in (a, b) such that f (c) = y .
x
y
a b
f (a)
f (b)
y
c
y
c
Limits 1.6 Continuity
Intermediate Value Theorem (IVT)
Theorem:
Let a < b and let f (x) be continuous over [a, b]. If y is any number between f (a) andf (b), then there exists c in (a, b) such that f (c) = y .
x
y
a b
f (a)
f (b)
y
c
y
c
Limits 1.6 Continuity
Intermediate Value Theorem (IVT)
Theorem:
Let a < b and let f (x) be continuous over [a, b]. If y is any number between f (a) andf (b), then there exists c in (a, b) such that f (c) = y .
x
y
a b
f (a)
f (b)
y
c
y
c
Limits 1.6 Continuity
Intermediate Value Theorem (IVT)
Theorem:
Let a < b and let f (x) be continuous over [a, b]. If y is any number between f (a) andf (b), then there exists c in (a, b) such that f (c) = y .
Suppose your favorite number is 45.54. At noon, your car is parked, and at 1pm you’redriving 100kph. By the Intermediate Value Theorem, at some point between noon and1pm you were going exactly 45.54 kph.
Limits 1.6 Continuity
Using IVT to Find Roots: “Bisection Method”
Let f (x) = x5 − 2x4 + 2. Find any value x for which f (x) = 0.
Let’s find some points:
f (0) = 2 f (1) = 1 f (−1) = −1f (−.5) = 1.84375 f (−0.75) ≈ 1.1298 f (−.9) = 0.09731
f (−.95) ≈ −0.4
So, there has to be a root between and .We can say there is a root at approximately x = −0.9
Limits 1.6 Continuity
Using IVT to Find Roots: “Bisection Method”
Let f (x) = x5 − 2x4 + 2. Find any value x for which f (x) = 0.Let’s find some points:
f (0) = 2 f (1) = 1 f (−1) = −1f (−.5) = 1.84375 f (−0.75) ≈ 1.1298 f (−.9) = 0.09731
f (−.95) ≈ −0.4
x
y
−1
1
2
1−1 −.5−.75
−.9So, there has to be a root between and .
We can say there is a root at approximately x = −0.9
Limits 1.6 Continuity
Using IVT to Find Roots: “Bisection Method”
Let f (x) = x5 − 2x4 + 2. Find any value x for which f (x) = 0.Let’s find some points:
f (0) = 2
f (1) = 1 f (−1) = −1f (−.5) = 1.84375 f (−0.75) ≈ 1.1298 f (−.9) = 0.09731
f (−.95) ≈ −0.4
x
y
−1
1
2
1−1 −.5−.75
−.9So, there has to be a root between and .
We can say there is a root at approximately x = −0.9
Limits 1.6 Continuity
Using IVT to Find Roots: “Bisection Method”
Let f (x) = x5 − 2x4 + 2. Find any value x for which f (x) = 0.Let’s find some points:
f (0) = 2 f (1) = 1
f (−1) = −1f (−.5) = 1.84375 f (−0.75) ≈ 1.1298 f (−.9) = 0.09731
f (−.95) ≈ −0.4
x
y
−1
1
2
1
−1 −.5−.75
−.9So, there has to be a root between and .
We can say there is a root at approximately x = −0.9
Limits 1.6 Continuity
Using IVT to Find Roots: “Bisection Method”
Let f (x) = x5 − 2x4 + 2. Find any value x for which f (x) = 0.Let’s find some points:
f (0) = 2 f (1) = 1 f (−1) = −1
f (−.5) = 1.84375 f (−0.75) ≈ 1.1298 f (−.9) = 0.09731f (−.95) ≈ −0.4
x
y
−1
1
2
1−1
−.5−.75
−.9So, there has to be a root between and .
We can say there is a root at approximately x = −0.9
Limits 1.6 Continuity
Using IVT to Find Roots: “Bisection Method”
Let f (x) = x5 − 2x4 + 2. Find any value x for which f (x) = 0.Let’s find some points:
f (0) = 2 f (1) = 1 f (−1) = −1
f (−.5) = 1.84375 f (−0.75) ≈ 1.1298 f (−.9) = 0.09731f (−.95) ≈ −0.4
x
y
−1
1
2
1−1
−.5−.75
−.9
So, there has to be a root between x = −1 and x = 0 .
We can say there is a root at approximately x = −0.9
Limits 1.6 Continuity
Using IVT to Find Roots: “Bisection Method”
Let f (x) = x5 − 2x4 + 2. Find any value x for which f (x) = 0.Let’s find some points:
f (0) = 2 f (1) = 1 f (−1) = −1f (−.5) = 1.84375
f (−0.75) ≈ 1.1298 f (−.9) = 0.09731f (−.95) ≈ −0.4
x
y
−1
1
2
1−1 −.5
−.75
−.9
So, there has to be a root between x = −1 and x = 0 .
We can say there is a root at approximately x = −0.9
Limits 1.6 Continuity
Using IVT to Find Roots: “Bisection Method”
Let f (x) = x5 − 2x4 + 2. Find any value x for which f (x) = 0.Let’s find some points:
f (0) = 2 f (1) = 1 f (−1) = −1f (−.5) = 1.84375
f (−0.75) ≈ 1.1298 f (−.9) = 0.09731f (−.95) ≈ −0.4
x
y
−1
1
2
1−1 −.5
−.75
−.9
So, there has to be a root between x = −1 and x = −0.5 .
We can say there is a root at approximately x = −0.9
Limits 1.6 Continuity
Using IVT to Find Roots: “Bisection Method”
Let f (x) = x5 − 2x4 + 2. Find any value x for which f (x) = 0.Let’s find some points:
f (0) = 2 f (1) = 1 f (−1) = −1f (−.5) = 1.84375 f (−0.75) ≈ 1.1298
f (−.9) = 0.09731f (−.95) ≈ −0.4
x
y
−1
1
2
1−1 −.5−.75
−.9
So, there has to be a root between x = −1 and x = −0.5 .
We can say there is a root at approximately x = −0.9
Limits 1.6 Continuity
Using IVT to Find Roots: “Bisection Method”
Let f (x) = x5 − 2x4 + 2. Find any value x for which f (x) = 0.Let’s find some points:
f (0) = 2 f (1) = 1 f (−1) = −1f (−.5) = 1.84375 f (−0.75) ≈ 1.1298
f (−.9) = 0.09731f (−.95) ≈ −0.4
x
y
−1
1
2
1−1 −.5−.75
−.9
So, there has to be a root between x = −1 and x = −0.75 .
We can say there is a root at approximately x = −0.9
Limits 1.6 Continuity
Using IVT to Find Roots: “Bisection Method”
Let f (x) = x5 − 2x4 + 2. Find any value x for which f (x) = 0.Let’s find some points:
f (0) = 2 f (1) = 1 f (−1) = −1f (−.5) = 1.84375 f (−0.75) ≈ 1.1298 f (−.9) = 0.09731
f (−.95) ≈ −0.4
x
y
−1
1
2
1−1 −.5−.75
−.9So, there has to be a root between x = −1 and x = −0.75 .
We can say there is a root at approximately x = −0.9
Limits 1.6 Continuity
Using IVT to Find Roots: “Bisection Method”
Let f (x) = x5 − 2x4 + 2. Find any value x for which f (x) = 0.Let’s find some points:
f (0) = 2 f (1) = 1 f (−1) = −1f (−.5) = 1.84375 f (−0.75) ≈ 1.1298 f (−.9) = 0.09731
f (−.95) ≈ −0.4
x
y
−1
1
2
1−1 −.5−.75
−.9So, there has to be a root between x = −1 and x = −0.9 .
We can say there is a root at approximately x = −0.9
Limits 1.6 Continuity
Using IVT to Find Roots: “Bisection Method”
Let f (x) = x5 − 2x4 + 2. Find any value x for which f (x) = 0.Let’s find some points:
f (0) = 2 f (1) = 1 f (−1) = −1f (−.5) = 1.84375 f (−0.75) ≈ 1.1298 f (−.9) = 0.09731
f (−.95) ≈ −0.4
x
−0.92−0.94−0.96−0.98−1 −0.9
So, there has to be a root between x = −1 and x = −0.9 .
We can say there is a root at approximately x = −0.9
Limits 1.6 Continuity
Using IVT to Find Roots: “Bisection Method”
Let f (x) = x5 − 2x4 + 2. Find any value x for which f (x) = 0.Let’s find some points:
f (0) = 2 f (1) = 1 f (−1) = −1f (−.5) = 1.84375 f (−0.75) ≈ 1.1298 f (−.9) = 0.09731
f (−.95) ≈ −0.4
x
−0.92−0.94−0.96−0.98−1 −0.9
So, there has to be a root between x = −0.95 and x = −0.9 .
We can say there is a root at approximately x = −0.9
Limits 1.6 Continuity
Using IVT to Find Roots: “Bisection Method”
Let f (x) = x5 − 2x4 + 2. Find any value x for which f (x) = 0.Let’s find some points:
f (0) = 2 f (1) = 1 f (−1) = −1f (−.5) = 1.84375 f (−0.75) ≈ 1.1298 f (−.9) = 0.09731
f (−.95) ≈ −0.4
x
−0.92−0.94−0.96−0.98−1 −0.9
So, there has to be a root between x = −0.95 and x = −0.9 .We can say there is a root at approximately x = −0.9
Limits 1.6 Continuity
Don’t use a calculator for these problems: use values that you can easily calculate.Use the Intermediate Value Theorem to show that there exists some solution to theequation ln x · ex = 4 and give a reasonable interval where that solution might occur.
- The function f (x) = ln x · ex is continuous over its domain, which is (0,∞). Inparticular, then, it is continuous over the interval (1, e).
- f (1) = ln(1)e = 0 · e = 0 and f (e) = ln(e) · ee = ee . Since e > 2, we knowf (e) = ee > 22 = 4.
- Then 4 is between f (1) and f (e).- By the Intermediate Value Theorem, f (c) = 4 for some c in (1, e).
Use the Intermediate Value Theorem to give a reasonable interval where the following istrue: ex = sin(x)
We can rearrange this: let f (x) = ex − sin(x), and note f (x) has roots exactly when theabove equation is true.
- The function f (x) = ex − sin x is continuous over its domain, which is all realnumbers. In particular, then, it is continuous over the interval
(− 3π
2, e).
- f (0) = e0 − sin 0 = 1− 0 = 0 and
f(− 3π
2
)= e−
3π2 − sin
(−3π2
)= e−
3π2 − 1 < e0 − 1 = 1− 1 = 0.
- Then 0 is between f (0) and f(− 3π
2
).
- By the Intermediate Value Theorem, f (c) = 0 for some c in(− 3π
2, 0).
- Therefore, ec = sin c for some c in(− 3π
2, 0).
Is there any value of x so that sin x = cos(2x) + 14?
Yes, somewhere between 0 and π2
.
Limits 1.6 Continuity
Don’t use a calculator for these problems: use values that you can easily calculate.Use the Intermediate Value Theorem to show that there exists some solution to theequation ln x · ex = 4 and give a reasonable interval where that solution might occur.
- The function f (x) = ln x · ex is continuous over its domain, which is (0,∞). Inparticular, then, it is continuous over the interval (1, e).
- f (1) = ln(1)e = 0 · e = 0 and f (e) = ln(e) · ee = ee . Since e > 2, we knowf (e) = ee > 22 = 4.
- Then 4 is between f (1) and f (e).- By the Intermediate Value Theorem, f (c) = 4 for some c in (1, e).
Use the Intermediate Value Theorem to give a reasonable interval where the following istrue: ex = sin(x)
We can rearrange this: let f (x) = ex − sin(x), and note f (x) has roots exactly when theabove equation is true.
- The function f (x) = ex − sin x is continuous over its domain, which is all realnumbers. In particular, then, it is continuous over the interval
(− 3π
2, e).
- f (0) = e0 − sin 0 = 1− 0 = 0 and
f(− 3π
2
)= e−
3π2 − sin
(−3π2
)= e−
3π2 − 1 < e0 − 1 = 1− 1 = 0.
- Then 0 is between f (0) and f(− 3π
2
).
- By the Intermediate Value Theorem, f (c) = 0 for some c in(− 3π
2, 0).
- Therefore, ec = sin c for some c in(− 3π
2, 0).
Is there any value of x so that sin x = cos(2x) + 14?
Yes, somewhere between 0 and π2
.
Limits 1.6 Continuity
Don’t use a calculator for these problems: use values that you can easily calculate.Use the Intermediate Value Theorem to show that there exists some solution to theequation ln x · ex = 4 and give a reasonable interval where that solution might occur.
- The function f (x) = ln x · ex is continuous over its domain, which is (0,∞). Inparticular, then, it is continuous over the interval (1, e).
- f (1) = ln(1)e = 0 · e = 0 and f (e) = ln(e) · ee = ee . Since e > 2, we knowf (e) = ee > 22 = 4.
- Then 4 is between f (1) and f (e).- By the Intermediate Value Theorem, f (c) = 4 for some c in (1, e).
Use the Intermediate Value Theorem to give a reasonable interval where the following istrue: ex = sin(x)We can rearrange this: let f (x) = ex − sin(x), and note f (x) has roots exactly when theabove equation is true.
- The function f (x) = ex − sin x is continuous over its domain, which is all realnumbers. In particular, then, it is continuous over the interval
(− 3π
2, e).
- f (0) = e0 − sin 0 = 1− 0 = 0 and
f(− 3π
2
)= e−
3π2 − sin
(−3π2
)= e−
3π2 − 1 < e0 − 1 = 1− 1 = 0.
- Then 0 is between f (0) and f(− 3π
2
).
- By the Intermediate Value Theorem, f (c) = 0 for some c in(− 3π
2, 0).
- Therefore, ec = sin c for some c in(− 3π
2, 0).
Is there any value of x so that sin x = cos(2x) + 14?
Yes, somewhere between 0 and π2
.
Limits 1.6 Continuity
Don’t use a calculator for these problems: use values that you can easily calculate.Use the Intermediate Value Theorem to show that there exists some solution to theequation ln x · ex = 4 and give a reasonable interval where that solution might occur.
- The function f (x) = ln x · ex is continuous over its domain, which is (0,∞). Inparticular, then, it is continuous over the interval (1, e).
- f (1) = ln(1)e = 0 · e = 0 and f (e) = ln(e) · ee = ee . Since e > 2, we knowf (e) = ee > 22 = 4.
- Then 4 is between f (1) and f (e).- By the Intermediate Value Theorem, f (c) = 4 for some c in (1, e).
Use the Intermediate Value Theorem to give a reasonable interval where the following istrue: ex = sin(x)We can rearrange this: let f (x) = ex − sin(x), and note f (x) has roots exactly when theabove equation is true.
- The function f (x) = ex − sin x is continuous over its domain, which is all realnumbers. In particular, then, it is continuous over the interval
(− 3π
2, e).
- f (0) = e0 − sin 0 = 1− 0 = 0 and
f(− 3π
2
)= e−
3π2 − sin
(−3π2
)= e−
3π2 − 1 < e0 − 1 = 1− 1 = 0.
- Then 0 is between f (0) and f(− 3π
2
).
- By the Intermediate Value Theorem, f (c) = 0 for some c in(− 3π
2, 0).
- Therefore, ec = sin c for some c in(− 3π
2, 0).
Is there any value of x so that sin x = cos(2x) + 14?
Yes, somewhere between 0 and π2
.
Limits 1.6 Continuity
Is the following reasoning correct?
- f (x) = tan x is continuous over its domain, because it is a trigonometric function.
- In particular, f (x) is continuous over the interval[π4, 3π
4
].
FALSE
- f(π4
)= 1, and f
(3π4
)= −1.
- Since f(
3π4
)< 0 < f
(π4
), by the Intermediate Value Theorem, there exists some
number c in the interval(π4, 3π
4
)such that f (c) = 0.
x
yπ2
y = tan x
π4
3π4
1
−1
Limits 1.6 Continuity
Is the following reasoning correct?
- f (x) = tan x is continuous over its domain, because it is a trigonometric function.
- In particular, f (x) is continuous over the interval[π4, 3π
4
].
FALSE
- f(π4
)= 1, and f
(3π4
)= −1.
- Since f(
3π4
)< 0 < f
(π4
), by the Intermediate Value Theorem, there exists some
number c in the interval(π4, 3π
4
)such that f (c) = 0.
x
yπ2
y = tan x
π4
3π4
1
−1
Limits 1.6 Continuity
Is the following reasoning correct?
- f (x) = tan x is continuous over its domain, because it is a trigonometric function.
- In particular, f (x) is continuous over the interval[π4, 3π
4
]. FALSE
- f(π4
)= 1, and f
(3π4
)= −1.
- Since f(
3π4
)< 0 < f
(π4
), by the Intermediate Value Theorem, there exists some
number c in the interval(π4, 3π
4
)such that f (c) = 0.
x
yπ2
y = tan x
π4
3π4
1
−1
Limits 1.6 Continuity
Let’s Review
Limits 1.6 Continuity
Suppose f (x) is continuous at x = 1. Does f (x) have to be defined at x = 1?
Yes. Since f (x) is continuous at x = 1, limx→1
f (x) = f (1), so f (1) must exist.
Suppose f (x) is continuous at x = 1 and limx→1−
f (x) = 30.
True or false: limx→1+
f (x) = 30.
True. Since f (x) is continuous at x = 1, limx→1
f (x) = f (1), so limx→1
f (x) must exist. That
means both one-sided limits exist, and are equal to each other.
Suppose f (x) is continuous at x = 1 and f (1) = 22. What is limx→1
f (x)?
22 = f (1) = limx→1
f (x).
Suppose limx→1
f (x) = 2. Must it be true that f (1) = 2?
No. In order to determine the limit as x goes to 1, we ignore f (1). Perhaps every f (x) isnot defined at 1.
Limits 1.6 Continuity
Suppose f (x) is continuous at x = 1. Does f (x) have to be defined at x = 1?Yes. Since f (x) is continuous at x = 1, lim
x→1f (x) = f (1), so f (1) must exist.
Suppose f (x) is continuous at x = 1 and limx→1−
f (x) = 30.
True or false: limx→1+
f (x) = 30.
True. Since f (x) is continuous at x = 1, limx→1
f (x) = f (1), so limx→1
f (x) must exist. That
means both one-sided limits exist, and are equal to each other.
Suppose f (x) is continuous at x = 1 and f (1) = 22. What is limx→1
f (x)?
22 = f (1) = limx→1
f (x).
Suppose limx→1
f (x) = 2. Must it be true that f (1) = 2?
No. In order to determine the limit as x goes to 1, we ignore f (1). Perhaps every f (x) isnot defined at 1.
Limits 1.6 Continuity
Suppose f (x) is continuous at x = 1. Does f (x) have to be defined at x = 1?Yes. Since f (x) is continuous at x = 1, lim
x→1f (x) = f (1), so f (1) must exist.
Suppose f (x) is continuous at x = 1 and limx→1−
f (x) = 30.
True or false: limx→1+
f (x) = 30.
True. Since f (x) is continuous at x = 1, limx→1
f (x) = f (1), so limx→1
f (x) must exist. That
means both one-sided limits exist, and are equal to each other.
Suppose f (x) is continuous at x = 1 and f (1) = 22. What is limx→1
f (x)?
22 = f (1) = limx→1
f (x).
Suppose limx→1
f (x) = 2. Must it be true that f (1) = 2?
No. In order to determine the limit as x goes to 1, we ignore f (1). Perhaps every f (x) isnot defined at 1.
Limits 1.6 Continuity
Suppose f (x) is continuous at x = 1. Does f (x) have to be defined at x = 1?Yes. Since f (x) is continuous at x = 1, lim
x→1f (x) = f (1), so f (1) must exist.
Suppose f (x) is continuous at x = 1 and limx→1−
f (x) = 30.
True or false: limx→1+
f (x) = 30.
True. Since f (x) is continuous at x = 1, limx→1
f (x) = f (1), so limx→1
f (x) must exist. That
means both one-sided limits exist, and are equal to each other.
Suppose f (x) is continuous at x = 1 and f (1) = 22. What is limx→1
f (x)?
22 = f (1) = limx→1
f (x).
Suppose limx→1
f (x) = 2. Must it be true that f (1) = 2?
No. In order to determine the limit as x goes to 1, we ignore f (1). Perhaps every f (x) isnot defined at 1.
Limits 1.6 Continuity
Suppose f (x) is continuous at x = 1. Does f (x) have to be defined at x = 1?Yes. Since f (x) is continuous at x = 1, lim
x→1f (x) = f (1), so f (1) must exist.
Suppose f (x) is continuous at x = 1 and limx→1−
f (x) = 30.
True or false: limx→1+
f (x) = 30.
True. Since f (x) is continuous at x = 1, limx→1
f (x) = f (1), so limx→1
f (x) must exist. That
means both one-sided limits exist, and are equal to each other.
Suppose f (x) is continuous at x = 1 and f (1) = 22. What is limx→1
f (x)?
22 = f (1) = limx→1
f (x).
Suppose limx→1
f (x) = 2. Must it be true that f (1) = 2?
No. In order to determine the limit as x goes to 1, we ignore f (1). Perhaps every f (x) isnot defined at 1.
Limits 1.6 Continuity
Suppose f (x) is continuous at x = 1. Does f (x) have to be defined at x = 1?Yes. Since f (x) is continuous at x = 1, lim
x→1f (x) = f (1), so f (1) must exist.
Suppose f (x) is continuous at x = 1 and limx→1−
f (x) = 30.
True or false: limx→1+
f (x) = 30.
True. Since f (x) is continuous at x = 1, limx→1
f (x) = f (1), so limx→1
f (x) must exist. That
means both one-sided limits exist, and are equal to each other.
Suppose f (x) is continuous at x = 1 and f (1) = 22. What is limx→1
f (x)?
22 = f (1) = limx→1
f (x).
Suppose limx→1
f (x) = 2. Must it be true that f (1) = 2?
No. In order to determine the limit as x goes to 1, we ignore f (1). Perhaps every f (x) isnot defined at 1.
Limits 1.6 Continuity
Suppose f (x) is continuous at x = 1. Does f (x) have to be defined at x = 1?Yes. Since f (x) is continuous at x = 1, lim
x→1f (x) = f (1), so f (1) must exist.
Suppose f (x) is continuous at x = 1 and limx→1−
f (x) = 30.
True or false: limx→1+
f (x) = 30.
True. Since f (x) is continuous at x = 1, limx→1
f (x) = f (1), so limx→1
f (x) must exist. That
means both one-sided limits exist, and are equal to each other.
Suppose f (x) is continuous at x = 1 and f (1) = 22. What is limx→1
f (x)?
22 = f (1) = limx→1
f (x).
Suppose limx→1
f (x) = 2. Must it be true that f (1) = 2?
No. In order to determine the limit as x goes to 1, we ignore f (1). Perhaps every f (x) isnot defined at 1.
Limits 1.6 Continuity
Suppose f (x) is continuous at x = 1. Does f (x) have to be defined at x = 1?Yes. Since f (x) is continuous at x = 1, lim
x→1f (x) = f (1), so f (1) must exist.
Suppose f (x) is continuous at x = 1 and limx→1−
f (x) = 30.
True or false: limx→1+
f (x) = 30.
True. Since f (x) is continuous at x = 1, limx→1
f (x) = f (1), so limx→1
f (x) must exist. That
means both one-sided limits exist, and are equal to each other.
Suppose f (x) is continuous at x = 1 and f (1) = 22. What is limx→1
f (x)?
22 = f (1) = limx→1
f (x).
Suppose limx→1
f (x) = 2. Must it be true that f (1) = 2?
No. In order to determine the limit as x goes to 1, we ignore f (1). Perhaps every f (x) isnot defined at 1.
Limits 1.6 Continuity
f (x) =
{ax2 x ≥ 13x x < 1
For which value(s) of a is f (x) continuous?
We need ax2 = 3x when x = 1, so a = 3.
Limits 1.6 Continuity
f (x) =
{ax2 x ≥ 13x x < 1
For which value(s) of a is f (x) continuous?
We need ax2 = 3x when x = 1, so a = 3.
Limits 1.6 Continuity
f (x) =
{ √3x+3
x2−3x 6= ±
√3
a x = ±√
3
For which value(s) of a is f (x) continuous at x = −√
3?For which value(s) of a is f (x) continuous at x =
√3?
Limits 1.6 Continuity
f (x) =
{ √3x+3
x2−3x 6= ±
√3
a x = ±√
3
For which value(s) of a is f (x) continuous at x = −√
3?By the definition of continuity, if f (x) is continuous at x = −
√3, then
f (−√
3) = limx→−
√3f (x). Note f (−
√3) = a, and when x is close to (but not equal to)
−√
3, then f (x) =√
3x+3x2−3
.
f (−√
3) = limx→−
√3f (x)
a = limx→−
√3
√3x + 3
x2 − 3= lim
x→−√
3
√3(x +
√3)
(x +√
3)(x −√
3)
= limx→−
√3
√3
x −√
3=
√3
−√
3−√
3= −1
2
So we can use a = − 12
to make f (x) continuous at x = −√
3.
For which value(s) of a is f (x) continuous at x =√
3?
Limits 1.6 Continuity
f (x) =
{ √3x+3
x2−3x 6= ±
√3
a x = ±√
3
For which value(s) of a is f (x) continuous at x = −√
3?For which value(s) of a is f (x) continuous at x =
√3?
By the definition of continuity, if f (x) is continuous at x =√
3, then f (√
3) = limx→√
3f (x).
When x is close to (but not equal to)√
3, then f (x) =√
3x+3x2−3
. However, as x approaches√3, the denominator of this expression gets closer and closer to zero, while the top gets
closer and closer to 6. So, this limit does not exist. Therefore, no value of a will makef (x) continuous at x =
√3.
Derivatives
For the next batch of slides, seehttp://www.math.ubc.ca/~elyse/100/2016/Deriv_Conceptual.pdf
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