All ISEE Upper Level Quantitative Resources
Example Questions
Example Question #1 : Equations
A company makes toy boats. Their monthly fixed costs are $1500. The variable costs are $50 per boat. They sell boats for $75 a piece. How many boats must be sold each month to break even?
75
60
100
50
60
The break-even point is where the costs equal the revenues
Fixed Costs + Variable Costs = Revenues
1500 + 50x = 75x
Solving for x results in x = 60 boats sold each month to break even.
Example Question #2 : Equations
Sally sells cars for a living. She has a monthly salary of $1,000 and a commission of $500 for each car sold. How much money would she make if she sold seven cars in a month?
$5,500
$4,500
$4,000
$5,000
$4,500
The commission she gets for selling seven cars is $500 * 7 = $3,500 and added to the salary of $1,000 yields $4,500 for the month.
Example Question #3 : Equations
Solve the following system of equations: x – y = 5 and 2x + y = 4.
What is the sum of x and y?
9
6
5
1
1
Add the two equations to get 3x = 9, so x = 3. Substitute the value of x into one of the equations to find the value of y; therefore x = 3 and y = –2, so their sum is 1.
Example Question #4 : Equations
If x = 1/3 and y = 1/2, find the value of 2x + 3y.
13/6
1
2
6/5
13/6
Substitute the values of x and y into the given expression:
2(1/3) + 3(1/2)
= 2/3 + 3/2
= 4/6 + 9/6
= 13/6
Example Question #2 : Equations
For what value(s) of is the expression undefined?
The expression is defined for all real values of
The expression is undefined for and
The expression is undefined for
The expression is undefined for
The expression is undefined for and
The expression is defined for all real values of
The expression is undefined for exactly those values of which yield a denominator of 0 - that is, for which
However, for all real ,
,
and, subsequently,
meaning the denominator is always positive. Therefore, the expression is defined for all real values of .
Example Question #3 : Equations
Albert has thirteen bills in his wallet, each one a five-dollar bill or a ten-dollar bill. What is the fewest number of ten-dollar bills that he can have and have more than $100.
Let be the number of ten-dollar bills Albert has; then he has five-dollar bills.
He then has dollars in his wallet, which must be greater than $100. Set up and solve an inequality:
Therefore, the lowest whole number of ten-dollar bills that Albert can have is eight.
Example Question #4 : Equations
Solve for :
Expand both products, the left using distribution, the right using the binomial square pattern:
Note that the quadratic terms can be eliminated, yielding a linear equation.
Example Question #8 : Equations
Solve for :
The equation has no solution.
The equation has no solution.
This identically false statement alerts us to the fact that the original equation has no solution.
Example Question #9 : Equations
First, rewrite the quadratic equation in standard form by FOILing out the product on the left, then collecting all of the terms on the left side:
Use the method to split the middle term into two terms; we want the coefficients to have a sum of 1 and a product of . These numbers are , so we do the following:
Set each expression equal to 0 and solve:
or
The solution set is .
Example Question #10 : Equations
Solve for :
First, rewrite the quadratic equation in standard form by distributing the through the product on the left, then collecting all of the terms on the left side:
Use the method to factor the quadratic expression ; we are looking to split the linear term by finding two integers whose sum is 7 and whose product is . These integers are , so:
Set each expression equal to 0 and solve:
or
The solution set is .
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