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Who can tell me how to use Taylor formula and say some practical usage?
f(x)= f(x .)+f '(x .)(x-x .)+f ' '(x .)/2! (x-x.)^2,+f'''(x.)/3! (x-x.)^3+……+f(n)(x.)/n! (x-x.)^n+Rn
Where rn = f (n+1) (ξ)/(n+1)! (x-X.) (n+ 1), where ξ is between x and x, and this remainder is called Lagrange remainder.
(Note: f(n) (x.) is the nth derivative of f (x.), not the product of f (n) and x. )
Prove: We know that f(x)=f(x.)+f'(x.)(x-x.)+α (the finite increment theorem derived from Lagrange's mean value theorem is lim δ x→ 0f (x.+δ x)-f (x.) = f' (x.) δ x), where the error is. Therefore, we need a polynomial that is accurate enough to estimate the error:
p(x)=a0+a 1(x-x.)+a2(x-x.)^2+……+an(x-x.)^n
To approximate the function f(x) and write the specific expression of its error f(x)-P(x). Let the function P(x) satisfy p (x.) = f (x x.), p' (x.) = f' (x.), p' (x.) = f'. P'(x.)=A 1,a 1 = f '(x .); P''(x.)=2! A2,A2=f''(x.)/2! ……P(n)(x.)=n! An,An=f(n)(x.)/n! So far, the coefficients of many terms have been found, which are: p (x) = f (x.)+f' (x.) (x-x.)+f'' (x.)/2! (x-x.)^2+……+f(n)(x.)/n! (x-x.)^n.
Next, you need the wrong concrete expression. Let Rn(x)=f(x)-P(x), so Rn(x.)=f(x.)-P(x.)=0. So we can get rn (X.) = rn' (X.) =...= rn (n) (X.) = 0. According to Cauchy mean value theorem, we can get rn (. -0 = rn' (ξ1)/(n+1) (ξ1-x.) n (note: (x.-x.) (n+ 1) = 0). Continue to use Cauchy mean value theorem, Rn '(ξ 1)-Rn '(x .)/(n+ 1)(ξ 1-x .)n-0 = Rn ' '(9582)/n(n+)Rn(x)/(x-x .)(n+ 1)= Rn(n+ 1)(ξ)/(n+ 1) N+65438 is used continuously, where ξ is between X. But Rn (n+1) (x) = f (n+1) (x)-p (n+1) (x), because P (n) (x Ann, n! An is a constant, so P(n+ 1)(x)=0, then rn (n+1) (x) = f (n+1) (x). To sum up, the remainder Rn (x) = f (n+ 1). (x-X.) (n+ 1)。 Generally speaking, when expanding a function, it is for the need of calculation, so X often takes a fixed value, and then Rn(x) can also be written as Rn.
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