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Question

If Cr= 25Cr and C0+5C1+9C2++101C25=225k k is equal to

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Solution

S= 25C0+5 25C1+9 25C2++97 25C24+101 25C25=225k(1)
Reverse and apply property nCr= nCnr in all coefficients
S=101 25C0+97 25C1++5 25C24+25C25(2)
Adding (1) and (2), we get
2S=102[ 25C0+ 25C1++ 25C25]
S=51×225
k=51

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