Question #c6810

1 Answer
Oct 1, 2017

#y_n=(d^ny)/dx^n=2n(2n-1)(2n-2)...(n+1)x^(n)#

Explanation:

#y=x^(2n)#
First Derivative
#y_1=dy/dx=2nx^(2n-1)#

Second Derivative
#y_2=(d^2y)/dx^2=2n(2n-1)x^(2n-2)#

Hence
#n^"th"# derivative
#y_n=(d^ny)/dx^n=2n(2n-1)(2n-2)...(2n-(n-1))x^(2n-(n)#
#y_n=(d^ny)/dx^n=2n(2n-1)(2n-2)...(n+1)x^(n)#