Prove that .^(n)C_(0) + .^(n)C_(5) + .^(n)C_(10) + "….." = (2^(n))/(5) (1+2cos^(n)'(pi)/(5)cos'(npi)/(5)+2cos'(pi)/(5)cos'(2npi)/(5)).

Prove that .^(n)C_(0) + .^(n)C_(5) + .^(n)C_(10) + "….." = (2^(n))/

1.	Prove that .^(n)C_(0) + .^(n)C_(5) + .^(n)C_(10) + "….." = (2^(n))/(5) (1+2cos^(n)'(pi)/(5)cos'(npi)/(5)+2cos'(pi)/(5)cos'(2npi)/(5)).
Answer» Solution :Here JUMP in the series is `'5'`. So, we use fifth roots of unity. `(1+x)^(n) = .^(n)C_(0) + .^(n)C_(1)x + .^(n)C_(2)x^(2)+.^(n)C_(3)x^(3)+"..."+.^(n)Cx^(n)` Now, we put `x = 1, alpha, alpha^(2), alpha^(3), alpha^(4)` where `alpha = cos 'a(2pi)/(5)+ISIN'(2pi)/(5)`. Puttingthese values and then adding,we get `(1+1)^(n) + (1+alpha)^(n) + (1+alpha^(2))^(n) + (1+alpha^(3))^(n) +(1+alpha^(4))^(n)` `= 5(.^(n)C_(0) + .^(n)C_(10) + "....")` `:. 5(.^(n)C_(0)+.^(n)C_(5) +.^(n)C_(10)+".....")` `= 2^(n)+(1+alpha)^(n)+(1+bar(alpha))^(n)+(1+alpha^(2))^(n)+(1+bar(alpha^(2)))^(n)` `=2^(n)+2Re(1+cos'(2pi)/(5)+isin'(2pi)/(5))^(n)+2Re(1+cos'(4PI)/(5)+isin'(4pi)/(5))^(n)` `= 2^(n) + 2Re(2cos^(2) '(pi)/(5)i2sin'(pi)/(5)cos'(pi)/(5))^(n) + 2Re(2cos^(2)'(2pi)/(5)+i2sin'(2pi)/(5)cos'(2pi)/(5))^(n)` `=2^(n)+2xx2^(n)cos^(n)'(pi)/(5)cos'(npi)/(5)+2xx2^(n)cos^(n)'(2pi)/(5) cos'(2npi)/(5)` `:. (.^(n)C_(0)+.^(n)C_(5)+.^(n)C_(10)+"......")` ` = (2^(n))/(5)(1+2cos^(n)'(pi)/(5)cos'(npi)/(5)+2cos^(n)'(2pi)/(5)cos'(2npi)/(5))`

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Prove that .^(n)C_(0) + .^(n)C_(5) + .^(n)C_(10) + "….." = (2^(n))/(5) (1+2cos^(n)'(pi)/(5)cos'(npi)/(5)+2cos'(pi)/(5)cos'(2npi)/(5)).

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