maths help (1 Viewer)

fullonoob

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if f(x) = x^n, find :
(n)
f (x)

the n is like f'(x)
Also
(k)
f (x)
explain please:eek:
 
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Trebla

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I assume you mean the n-th deriviative of f(x) = xn?
f'(x) = nxn - 1
f''(x) = n(n - 1)xn - 2
f(3)(x) = n(n - 1)(n - 2)xn - 3
.
.
.
f(k)(x) = n(n - 1)(n - 2)......(n - k + 1)xn - k
.
.
.
f(n)(x) = n(n - 1)(n - 2)......3.2.xn - n
= n!

Notice the pattern of correlation between the last bracket and the index of x with the order of the derivative.
 

fullonoob

fail engrish? unpossible!
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Trebla said:
I assume you mean the n-th deriviative of f(x) = xn?
f'(x) = nxn - 1
f''(x) = n(n - 1)xn - 2
f(3)(x) = n(n - 1)(n - 2)xn - 3
.
.
.
f(k)(x) = n(n - 1)(n - 2)......(n - k + 1)xn - k
.
.
.
f(n)(x) = n(n - 1)(n - 2)......3.2.xn - n
= n!

Notice the pattern of correlation between the last bracket and the index of x with the order of the derivative.
the ans for my second question is:
n(n-1)(n-2)...(n-k+1)x^n-k = (n!/(n-k)!) x^n-k
explain please
 

tommykins

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is that k multiplied by k! ?

k.k! = k!(k+1-1) = k!(k+1) - k! = (k+1)! - k!
 

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