If n∑r=0(nCr−1nCr+ nCr−1)3=2524, then the value of n is – InterviewSolution

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1.	If n∑r=0(nCr−1nCr+ nCr−1)3=2524, then the value of n is
Answer» If $n \sum r = 0 {(\frac{^{n} C_{r - 1}}{^{n} C_{r} +^{n} C_{r - 1}})}^{3} = \frac{25}{24},$ then the value of $n$ is

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