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Question

A man X has 7 friends, 4 of them are ladies and 3 are men. His wife Y also has 7 friends, 3 of them are ladies and 4 are men. Assume X and Y have no common friend. Number of ways in which X & Y together can throw a party inviting 3 ladies and 3 men, so that 3 friends of each of X and Y are in this party, is ?

A
485
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B
468
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C
469
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D
484
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Solution

The correct option is A 485
Given, X has 7 friends, 4 of them are ladies and 3 are men while Y has 7 friends, 3 of them are ladies and 4 are men.
Total number of required ways
3C3×4C0×4C0×3C3+3C2×4C1×4C1×3C2+3C1×4C2×4C2×3C1+3C0×4C3×4C3×3C0=1+144+324+16=485

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