Calculus Chapter 2 Study Guide
If a rock is thrown upward on the planet Mars with a velocity of 10m/s, its height in meters t seconds later is given by y=10t-1.86t²; find the average velocity over the given time intervals: [1,2], [1,1.5]
(10(2)-1.86(2)²) - (10(1)-1.86(1)²)/2-1 = 4.42; (10(1.5)-1.86(1.5)²)-(10(1)-1.86(1)²)/1.5-1 = 5.35
limh->0 ((2+h)³-8)/h
0/0 when plug in 0; (2+h)(2+h)(2+h); simplify down and get limh->0 (h²+6h+12)=12
limx->4 (x²-4x)/(x²-3x-4)
0/0 when plug in 4; x(x-4)/(x-4)(x+4); limx->4 x/x+1 = 4/5
limx->0 (1/t - 1/t²+t)
0/0, do more, multiple 1/t by t+1/t+1; get 1
limx->2 √4u+1 - 3/u-2
0/0, do more, multiply bu √4u+1 + 3; get 2/3
limx->1 t⁴-1/t³-1
0/0, do more; different of cubes (SOAP); (t-1)(t²+1+1); get 2
limx->0 (√x+4 - 2/x)
0/0, do more; limx->0 (√x+4 -2/x)(√x+4 -2/x)/(√x+4 -2/x); limx->0 1/(√x+4 - 2) = 1/4
limx->-4 √x²+9 - 5/x+4
0/0, multiply by √x²+9 + 5/√x²+9 + 5; get -8/√5 + 5
limh->0 (3+h)⁻¹ - 3⁻¹/h
0/0; 1/(3+h)(-3)+h; -1/9
Limx->0 (sin3x/x) =
1
Explain why discontinuous at the given number a and graph: {x^2 -x/x^2-1 if x does not equal 1 {1 if x-1
1) f(1)=1; 2) limx->1 f(x) = 1/2; 3) limx->1f(x) does not equal f(1); therefore, f(x) is discontinuous at x=1
Use intermediate value theorem to show that there is a root of the given equation in the specified interval: x^4+x-3=0, (1,2)
1) f(x) is a polynomial which is continuous on (-infinity, +infinity); 2) f(1) = -1<0, f(2) =15>0; therefore, there is a c on the interval (1,2) such that f(c)=0
limx->0⁺ (1/x-1/|x|)
1/x - 1/x x>0 1/x - 1/-x x<0 0, x>0 2/x, x<0; lim=0
f(x) = {x+2, x≥3 {-x+7, x<3 limx->1f(x) =
6; if at 3, check both sides
If g is continuous at a and f is continuous at g(a), then the composite function f of g given by (f of g)(x)= f(g(x)) is continuous at
A
When are functions continuous
A function is continuous at a number a if limx->a f(x) = f(a)
Show that limx->0 |x| = 0
Always split absolute value; f(x) = |x| = {x, x≥0 - right {-x, x<0 - left limx->0⁻ f(x) = -0=0 limx->0⁺ f(x) = 0
Direct substitution property
Any polynomial is continuous everywhere (-infinity, +infinity); any rational function is continuous wherever it is defined; that is, it is continuous on its domain
Limit
Approaching from both sides
Where is the function discontinuous: f(x) = [[x]]
At all integers, removable; {x|xEZ
Where is the function discontinuous: f(x) = {x²-x-2 if x≠2 {1 if x=2
At x-2, removable; actual point and then limit defined at open interval
Where is the function discontinuous: f(x) = {1/x² if x≠0 {1 if x=0
At x=0, infinite; do the three steps, limit exists and f(a) exists but don't equal each other
Where is the function discontinuous and what type: f(x) = x²-x-2/x-2
At x=2, removable; hole at 2; 3 steps
Why is it called a removable function?
Because the discontinuity cane removed by redefining f at a single number (where the hole is)
limf(x)x->2
Both sides must equal same number to get both
limx->-2 2-|x|/2+x
Check from right and left; 2-x/2+x x≥0, (2+x)/(2+x) x<0; get 1; check both sides because constant/0
Explain why discontinuous at a and sketch graph. F(x) = {x+2 if x<0 {e^x if 0 is less than or = to x less than or = to q {2-x if x>1
Discontinuous at x=0, x=1 overall because jumps; continuous at x=1 from right, x=0 from right, x=-2 from left
If f is defined near a (defined on an open interval containing a), we say that f is______at a if f is not_____at a
Discontinuous; continuous
0/0
Do more
3 steps to see if continuous
F(a) is defined (a is in the domain of f); limx->a f(x) exists; limx->a f(x) = f(a)
If f is continuous at b and limx->a g(x)=b, then limx->af(g(x)) =
F(b); limx->af(g(x))=f(limx->ag(x))
If f and g are continuous at a and c is a constant, the what else is continuous at a
F+g; f-g; cf; fog; f/g (if g(a) does not equal 0)
limf(x)x->2⁻
From the left
limf(x)x->2⁺
From the right
Suppose that a ball is dropped from the upper observation deck of the CN Tower in Toronto, 450m above the ground. Find the velocity of the ball after 5 seconds
Galileo's law (s(t)=4.9t²); t=5, single instant of time, no time interval, so find points closest to tangent line, approximate, use t=5.1; m=4.9(5.1)²-4.9(5)²/.01 = 49.49m/s; do that for a couple of different numbers (5.1, 5.05, 5.01, 5.001); about 40 - likely instantaneous velocity
Continuity in geometry
Graph with no break in it; draw without removing pen from paper
Find limx->1 g(x) where: g(x) = {x+1 if x≠1 {π if x=1
Hole at (1,2); point at (1,π); graph; limit = 2 (see from graph)
Estimate the value of limx->0 (√t²+9 - 3/t²)
Hole at 0; plug in 0, get 0/0, do more; limt->0 (√t²+9 - 3/t²)(√t²+9 +3)/(√t²+9 + 3); get 1/6 when simplify and plug in 0; limt->0 (1/√t²+9 + 3) = 1/6
Derivative
How to find the slope of that one point, tangent line
Direct substitution property of limits
If f is a polynomial or a rational function and a is in the domain of f, then limx->a f(x) = f(a)
A function is continuous on an interval if
It is continuous at every number in the interval
3 types of discontinuity
Jump discontinuity: point and then undefined point at same x value, limit is DNE; removable discontinuity: there is a single point and function with undefined point, limit exists, f(a) exists but limx->a f(x) ≠ f(a); infinite discontinuity: there is a point and infinity, limit exists at some infinity, f(a) exists at actual value, limx-a f(x) ≠ f(a)
Power law of limits
Limx->a [f(x)]ⁿ = [limx->a f(x)]ⁿ
4 times when to check both sides
Limx->a f(x) on a graph; limx->a f(x) when your substitute gives you a constant over 0; piecewise functions; absolute value
limt->0 (1/t√1+t - 1/t)
Multiply 1/t by √1+t/√1+t; simplify and get -1/2
limx->16 4-√x/16x-x²
Multiply by 4+√x/4+√x; simply and get 1/128
Find an equation of the tangent line to the parabola y=x² at the point P(1,1)
Need 2nd point; (x,x²) (y=x²); m=x²-1/x-1; m=2, y-1=2(x+1)
Does limx->3 [[x]] exist?
No; limits for integers for greatest integer function don't work, but in between integers yes; number line: 2, 3, 4; for left, always round down to 2, and for right, always round down to 3 so doesn't exist
Is the graph of tangent continuous?
No; vertical asymptotes; infinite discontinuities at +- pi/2, +- 3pi/2, +- 5pi/2
limx->-1 x²-4x/x²-2x-4
Plug in -1 and get undefined, check both sides; VA at x=-1, check both sides; number line (-2, -1, 0); plug in -2 for form left and get ∞, plug in 0 for from right and get -∞; DNE
Evaluate: limx->-2 (x³+2x²-1/5-3x)
Plug in -2; in domain, so don't have to do more; limx->-2 (x³+2x²-1/5-3x) = -1/11
Find limx->1 (x²-1/x-1)
Plug in 0, get 0/0, do more; limx->1 (x+1)(x-1)/(x-1); limx->1 (x+1) = 2
Guess the value of limx->0 (sinx/x)
Plug in 0, get 0/0, do more; squeeze theorem, limx->0(sinx/x)=1; limθ->0 (sinθ/θ) = 1
limx->-1 2x³+3x+1/x²-2x-3
Plug in 01 and get 0/0; do more and get 1/4
Evaluate: limx->5 (2x²-3x+4)
Plug in 5; 2(5)²-3(5)+4; limx->5 (2x²-3x+4) = 39
How to make the function continuous: f(x) = {x²-x-2 if x≠2 {1 if x=2
Removable discontinuity; f(2) = 3; make y = 3 (or something), fill in the hole
Sketch graph of function that satisfies all conditions: limx->0 f(x)=1, limx->3⁻f(x)=2, limx->3+f(x)=2, f(0)=-1, f(3)=1
See 2.2 homework; just graph what it says to
Are trigonometric functions continuous at every number in their domain?
Sin, cosine but not tangent
How define f(2) in order to make f continuous: f(x) = x^3-8/x^2-4
Solve and get 3 after simplify; f(x) = {x^3-8/x^2-4 if x does not equal 2 {3 if x=2 Fill in the hole (removable discontinuity) at f(2) = 3
limx->3 (2x+|x-3|)
Split; f(x) = 2x + |x-3| = {2x+x-3, x-3≥0 {2x+ -(x-3), x-3<0 Simply and get 6
Prove that limx->0 |x|/x does not exist
Split; {x/x, x>0 {-x/x, x<0 limx->0⁻ f(x) = -1; limx->0⁺ f(x) = 1; DNE
Intermediate value theorem = verbatim and know graph
Suppose that f is continuous on the closed interval [a,b] and let N be any number between f(a) and f(b), where f(a) does not equal f(b). Then there exists a number c in (a,b) such that f(c) = N
A continuous process is one that
Takes place gradually, without interruption or abrupt change
Why is it called a jump discontinuity?
The function jumps from one value to another
Constant multiple law of limits
The limit of a constant times a function is the constant times the limit of the function
Difference law of limits
The limit of a difference is the difference of the limits
Product law of limits
The limit of a product is the product of the limits
Quotient law of limits
The limit of a quotient is the quotient of the limits (provided that the limit of the denominator is not 0)
Sum law of limits
The limit of a sum is the sum of the limits
limf(x)x->a = L
The limit of f(x) as x approaches a equals L
Limx->0 (sin9x/x)
Times 9/9; get sin9x/9x = 9(1)=9
Rule about limits and plugging in
When can plug in and fits in domain, plug in
Are polynomials continuous at every number in their domain?
Yes
Is the graph of cosine continuous?
Yes
Is the graph of sine continuous?
Yes
Are rational functions continuous at every number in their domain?
Yes except where domain = 0
Are root functions continuous at every number in their domain?
Yes unless square root of a negative number
Are physical phenomena usually continuous? Example
Yes; displacement or velocity of a vehicle varies continuously with time as does a person's height; but discontinuities occur with electric currents
Can there be another point at the same value of a
Yes; hole in graph at actual L; not what = to, so disregard with limit
Intermediate value theorem - can f(c) = 0, what values of a and b for this
Yes; y value of a must be negative and y value of b positive
limx x->a =
a
limx->a xⁿ =
aⁿ
limx->a c =
c
limx->a [cf(x)] =
climx->a f(x)
limx->0.5⁻ 2x-1/|2x³-x²|
f(x) = {2x-1/x²(2x-1), 2x-1>0 {2x-1/-x²(2x+1), 2x-1<0 Simplify and get limx->0.5⁻ 1/x² = -4
limx->-2 [f(x)+5g(x)]
limx->-2 f(x) + 5limx->-2 g(x)
lim(x-1/x²-1)x->1
limx->1 (x-1/(x+1)(x-1)); hole at 1, fine with limits; limx->1 (1/x+1) = 1/2; plug in 1, undefined 0/0 -> do something else; (1,1/2); simplify further
Find the limit of g(x) when x-> 1 g(x) = {x-1/x²-1 if x≠1 {2 if x=1
limx->1g(x)=1/2; g(1)=2; make graph
How to find limit of f(x)=x²-x+2
limx->2 f(x) = 4; look at table of values and see what y approaches from both sides of 2
f(x) = {√x-4 if x>4 {8-2x if x<4 Determine whether limx->4 f(x) exists
limx->4⁻ f(x) = 0 (8-2(4) =0) Limx->4⁺ f(x)=0 (√4-4 = 0) limx->4 f(x) = 0
limx->a [f(x) + g(x)] =
limx->a f(x) + limx->a g(x)
limx->a [f(x) - g(x)] =
limx->a f(x) - limx->a g(x)
limx->a [f(x)g(x)] =
limx->a f(x) × limx->a g(x)
limx->a f(x)/g(x) =
limx->a f(x)/limx->a g(x) if limx->ag(x) ≠0
Root law of limits
limx->a ⁿ√f(x) = ⁿ√limx->a f(x)
limx->0 tan3x/tan5x
limx->af(x)/limx->ag(x); limx->0 sin3x/cos3x / sin5x/cos5x; limx->0 sin3x/limx->0cos3x / limx->0 sin5x/limx->0cos5x; plug in 0, cos of 0=1, so cos cancel out; limx->0 sin3x x 3x/3x / limx->0sin5x x 5x/5x; limx->0 3xsin3x/3x / limx->0 5xsin5x/5x; 3(1)/5(1) = 3/5
A function f is continuous from the right at a number a if:
limx->a⁺ f(x) = f(a)
A function f is continuous from the left at a if
limx->a⁻ f(x) = f(a)
limh->0 1/(x+h)² - 1/x²/h
x²-(x+h)²/(x+h)²x² x 1/h; -2/x³
limx->a ⁿ√x =
ⁿ√a
