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Let $f$ be a one-to-one function whose inverse function is $f^{-1}(x)=x^5+2x^3+3x+1$.

Compute the value of $x_0$ such that $f(x_0)=1$. I am confused as to what this question is asking me, particularly since I don't understand the subscript under the $x$ variable.

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    Your first sentence is not a sentence. Format your question with $\LaTeX$. I see neither a variable $x$ nor a subscript. Did you draw that graph?2012-05-08
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    There is a subscript under the x variable, identical to the knott symbol. I am not sure how to format that symbol in2012-05-08
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    Kurt, I deleted the image: it was misbehaving, and now that you've added the description of $f^{-1}$, it's not needed. Is the inverse function still correct?2012-05-08
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    the subscript variable 'x' means another variable, it is a little bit confusing, you should write it as $f^{-1}(y)=x^5+...$2012-05-08
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    Kurt, the subscript on $x_0$ doesn't really mean much, it's just trying to distinguish $x_0$ from the variable $x$. $x_0$ is a value that satisfies $f(x_0)=1$2012-05-08
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    @Yimin: No, writing $f^{-1}(y)=x^5+\dots$ would be absolutely wrong. It's fine as it is.2012-05-08
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    @BrianM.Scott I see. Thx.2012-05-08

3 Answers 3

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One way to find the inverse of an equation is to reverse the variables $x$ and $y$ (this corresponds to reflection over the line $y=x$) and then solve the resulting equation for $y$. In this case, you don't need to actually find the inverse, just compute a specific value. If we have $$ y=x^5+2x^3+3x+1 $$ then we can write the inverse as $$ x=y^5+2y^3+3y+1 $$ Since this second equation is the inverse of the inverse, it is the original equation $f(x)$. We want to find the $x_0$ such that $f(x_0)=1$. By the identification of $y$ with the function, all we have to do to find $x_0$ is plug in $y=1$.

EDIT: Brian's answer is exactly what I've done, only written with better notation. Use that since it makes that relationships much clearer than hiding it behind another variable $y$.

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The point of the question is to see whether you understand how $f$ and $f^{-1}$ are related to each other: $$f\big(f^{-1}(x)\big)=x\;,\tag{1}$$ and $$f^{-1}\big(f(x)\big)=x\tag{2}$$ for any $x$. You want to find an $x_0$ such that $f(x_0)=1$. If $f(x_0)=1$, then $$f^{-1}\big(f(x_0)\big)=f^{-1}(1)\;.$$ Now use $(2)$ the formula for $f^{-1}$ that you've been given, and you'll have your $x_0$.

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    Thank you, that greatly clarifies it for me.2012-05-08
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$f^{-1}(x)=x^5+2x^3+3x+1$.

$f(f^{-1}(x))=f(x^5+2x^3+3x+1)$.

$f(f^{-1}(x))=x$ as function property enter image description here

$x=f(x^5+2x^3+3x+1)$.

$f(x^5+2x^3+3x+1)=x$

$f(x_0)=1$

You can see that $x=1$ so $x_0=x^5+2x^3+3x+1$

$x_0=1^5+2.1^3+3.1+1=7$