Finding Taylor Polynomial of Degree 4 for f(x)=sqrt(x) About a=4

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Homework Help Overview

The discussion revolves around finding the Taylor polynomial of degree 4 for the function f(x) = √x, specifically expanded about the point a = 4. Participants are examining the process of differentiation and the application of the Taylor series formula.

Discussion Character

  • Exploratory, Mathematical reasoning, Assumption checking

Approaches and Questions Raised

  • The original poster attempts to differentiate the function and evaluate the derivatives at the point a = 4. Some participants question the correctness of the derivatives calculated, suggesting a review of the differentiation process. Others emphasize the importance of plugging values into the Taylor series formula correctly.

Discussion Status

The discussion is ongoing, with participants providing guidance on the differentiation and Taylor series application. There is a focus on ensuring the derivatives are accurate before proceeding with the series expansion. Multiple interpretations of the differentiation steps are being explored.

Contextual Notes

Participants note potential errors in the differentiation process and emphasize the need to check assumptions regarding the derivatives before continuing with the Taylor polynomial calculation.

meganlz09
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I need to find the Taylor polynomial of degree 4 expanded about a=4 for the function f(x)=squareroot of (x)=x^(1/2)

This is what I've started with but I'm not sure how to proceed and if I even started correctly:
f'(x)(-1/2)x^(-1/2)=1/2sqrt(x)
f"(x)=(-1/4)x^(-3/2)=-1/4x^3/2
f"'(x)=(3/8)x^(-3)=3/8sqrt(x)
f""(x)=(-9/8)x^(-4)
and then i just plug 4 in for x

any explanation toward the correct answer would be great,thanks
 
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it's

P(x) = f(x) + (x-a)*f'(a) + 1/2! * (x-a)^2 * f''(a) + ... +1/4! * (x-a)^4 * f''''(x)

so you need to plug in a and f(a),.. values

and
if f(x) = (x)^1/2
then f'(x) = 1/2(x)^-0.5 .. (your differentiation seems wrong)
 
Well now just plug into the taylor series...

f(x) = f(4) + f'(4)(x-4)+f''(4)(x-4)^2/2!+f'''(4)(x-4)^3/3!+...

Hope this helps...
 
However, you may want to check those derivatives again before proceeding, especially the last two.
 
Billygoat said:
Well now just plug into the taylor series...

f(x) = f(4) + f'(4)(x-4)+f''(4)(x-4)^2/2!+f'''(4)(x-4)^3/3!+...

Hope this helps...

dont forget to divide by 0!, 1!, 2!, 3!,... accordingly
 

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