FV = PV(1+r)^n "And" Any point that touches the y-axis .Negative A(n) = A(n - 1)___, for n>1 & A(1) = ___ Add the exponents Output The first number of an ordered pair All y values the function cover on a graph Multiplying Polynomials The lowest point in a graph f(n) = a * r^n- 1 f(b) - f(a) ----------- b - a I=PRT The second number of an ordered pair Subtracting Polynomials Positive Goes down from left to right Function "Per" __<x<__ f(n) = an + b Adding polynomials f(x) FV = PV(1+r)^n "And" Any point that touches the y-axis .Negative A(n) = A(n - 1)___, for n>1 & A(1) = ___ Add the exponents Output The first number of an ordered pair All y values the function cover on a graph Multiplying Polynomials The lowest point in a graph f(n) = a * r^n- 1 f(b) - f(a) ----------- b - a I=PRT The second number of an ordered pair Subtracting Polynomials Positive Goes down from left to right Function "Per" __<x<__ f(n) = an + b Adding polynomials f(x)
(Print) Use this randomly generated list as your call list when playing the game. There is no need to say the BINGO column name. Place some kind of mark (like an X, a checkmark, a dot, tally mark, etc) on each cell as you announce it, to keep track. You can also cut out each item, place them in a bag and pull words from the bag.
FV = PV(1+r)^n
"And"
Any point that touches the y-axis
.Negative
A(n) = A(n - 1)___, for n>1 & A(1) = ___
Add the exponents
Output
The first number of an ordered pair
All y values the function cover on a graph
Multiplying
Polynomials
The lowest point in a graph
f(n) =
a * r^n-1
f(b) - f(a)
-----------
b - a
I=PRT
The second number of an ordered pair
Subtracting
Polynomials
Positive
Goes down from left to right
Function
"Per"
__<x<__
f(n) = an + b
Adding polynomials
f(x)