SOLUTION: How many different four-digit numbers can be formed using the digits 1, 1, 9, and 9?

Question 255054: How many different four-digit numbers can be formed using the digits 1, 1, 9, and 9?
Found 2 solutions by CharlesG2, Theo:
Answer by CharlesG2(834) (Show Source): You can put this solution on YOUR website!
How many different four-digit numbers can be formed using the digits 1, 1, 9, and 9?
1199
1919
1991
9119
9191
9911
combination formula, or the number of ways to combine k items from a set of n:

there are 4 numbers so n=4
there are only 2 different numbers we are actually choosing so k=2

Answer by Theo(13342) (Show Source): You can put this solution on YOUR website!
should be equal to (4!)/(2!*2!) = (4*3*2*1)/(2*1*2*1) = 6

let's see what they would be:

1199
9911
1919
9191
1991
9119

this winds up being a permutation with some of the elements being the same.

formula for a permutation is n!

if x of the n are the same, then the formula becomes n!/x!

if, in addition to x being the same, y are also the same, then the formula becomes n!/(x!*y!)

in your problem, n was equal to 4.
x was equal to 2 because you had 2 ones.
y was also equal to 2 because you had 2 nines.

n!/(x!*y^1) became 4!/(2!*2!)

to see what the difference is, look at 3 letters (a,b,c)

how many ways can they be formed?

3! = 3*2*1 = 6 ways because each of the letters is different.

they are:

abc
acb
bac
bca
cab
cba

take the same 3 letters and make 2 of them the same.

let's assume a and b become the same letter d.

you would then have ddc

how many ways can they be formed.

we have n = 3 and x = 2 and our formula is n!/x! = 3!/2! = 3

the number of ways they can be formed is 3 as follows:

ddc
dcd
cdd

please keep in mind that we are talking about permutations here, and not combinations.

with permutations, order is important. the same elements in a different order are a different set.

with combinations, order is not important. each set has to have different elements in it.

take the set of abc.

with combinations, this forms one set. the same 3 elements can only be used once regardless of what order they are in the set.

with permutations, this forms 6 sets. the same 3 elements can be used 6 times in a different order each time.

the number of combinations possible would be 1.
the numer of permutations possible would be 6.

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