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Can some one please help me with this?

How many 10 digit phone numbers have at least one of each odd digit?

$1,3,5,7,9 = 5!*10^5$

I hope this is right. Or did I double count?

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    But of course, ten digit $p$hone numbers as they a$p$$p$ear in the US have more constraints, such as not beginning with 0 or 911 and a whole slew of similar restrictions (which may be getting fewer, as new area codes come into existence). But then we are of course out of the realm of mathematics …2012-02-22

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Note that "$1,3,5,7,9 = 5!\times 10^5$" is nonsense as written. I don't know what the left hand side is supposed to be, but $5!\times 10^5$ is not equal to $9$, and is not equal to the sequence of the five odd numbers $1$, $3$, $5$, $7$, and $9$.

And the count is completely off, as many have mentioned.

One possibility is to use inclusion-exclusion: there are $10^{10}$ possible phone numbers; how many have no $9$s in it? $9^{10}$; same for numbers with no $7$s, no $5$s, no $3$'s, or no $1$s. So one first approximation is $10^{10} - \binom{5}{1}9^{10}.$

However, we are double counting the numbers that have no $9$s and no $7$s, the ones that have no $9$s and no $5$s, etc. There are $8^{10}$ of each of the $\binom{5}{2}=10$ pairs of odd digits. So we adjust by adding those back in, $10^{10}-\binom{5}{1}9^{10} + \binom{5}{2}8^{10}.$

But now we are off with those that are missing three of the odd numbers; we took them out three times with $\binom{5}{1}9^{10}$, but we then added them back three times with $\binom{5}{2}8^{10}$; we need to take them out again. So we get $10^{10}-\binom{5}{1}9^{10} + \binom{5}{2}8^{10} - \binom{5}{3}7^{10}.$

But now we are off with the numbers that are missing four of the odd numbers: we took them out four times with $\binom{5}{1}9^{10}$; we added them back in six (that is $\binom{4}{2}$) times with $\binom{5}{2}8^{10}$; then we took them out four times (that is, $\binom{4}{3}$) with $\binom{5}{3}7^{10}$. So we need to add them back in, with $\binom{5}{4}6^{10}$, so we get $10^{10} - \binom{5}{1}9^{10} + \binom{5}{2}8^{10} - \binom{5}{3}7^{10} + \binom{5}{4}6^{10}.$ But now, what about those numbers that fail to contain all of the odd digits? We counted them five times in the $\binom{5}{1}9^{10}$ summand, so we took them out five times; then we added them back in $\binom{5}{2}=10$ times in the summand $\binom{5}{2}8^{10}$; then we took them out $10$ times in $\binom{5}{3}7^{10}$; and then we added them back in five times with $\binom{5}{4}6^{10}$. In total, we've took them out zero times; we need them out, so we need to subtract $\binom{5}{5}5^{10}$. So, finally, we get $10^{10} - \binom{5}{1}9^{10} + \binom{5}{2}8^{10} - \binom{5}{3}7^{10} + \binom{5}{4}6^{10} - \binom{5}{5}5^{10}$ telephone numbers which contain each of $1$, $3$, $5$, $7$, and $9$ at least once.

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    Is it not possible to subtract from $10^{10}$ the number of phone numbers with no odd numbers. There are $10^5$ such numbers. So, the final answer is $10^{10}-10^5$. Is this wrong?2015-10-13