A gentleman invites a party of $m + n (m \neq n)$ friends to a dinner and places $m$ at one table $T_{1}$ and $n$ at another table $T_{2}$ , the table being around. If not all people shall have the same neighbour in any two arrangement, then the number of ways in which he can arrange the guest, is

\frac{(m + n)!}{4 m n}

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\frac{1}{2} \frac{(m + n)!}{m n}

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2 \frac{(m + n)!}{m n}

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N o n e

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Solution

The correct options are
A $\frac{(m + n)!}{4 m n}$
D $N o n e$
There are $(m + n)$ friends out of which $m$ sit at one table and $n$ at one table $=^{m + n} C_{m},$ rest can be selected in $1$ way.

$m$ can be rearranged in $(m - 1)!$ ways $a n d$ $n$ people in $(n - 1)!$

Also given in each arrangement not all will have same neighbour.

Clockwise $a n d$ anticlockwise is considered same.

$\Rightarrow$ Total $=^{m + n} C_{m} \times \frac{(m - 1)!}{2} \times \frac{(n - 1)!}{2} = \frac{(m + n)!}{4 m n}$

Hence, the answer is $\frac{(m + n)!}{4 m n} .$

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