What is the equation of the line normal to $f(x)=(x+1)^2$ at $x=-1$ ?

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What is the equation of the line normal to $f(x)=(x+1)^2$ at $x=-1$ ?

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Answer 1 · 2016-01-17T14:54:30

$:.x=-1$

Explanation:

The slope $m_n=-1/m_(x_0)$

$m_(x_0)=f'(x_0)$

and the generic line equation is:

$(y-y_0)=m_n(x-x_0)$

with $y_0=f(x_0)$

We have to find $f'(x)$ using the Chain Rule

$f'(x)=2(x+1)^(2-1)*1=2(x+1)$

$f'(x_0)=f'(-1)=2(-1+1)=0$

$:.x_0=-1$ it's a critical point of $f(x)$

$m_n=-1/m_(x_0)=-1/0 =>cancel EE$

then in $x_0$ the normal line has no slope and it's

$x=x_0$

$:.x=-1$

Alternatively:

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

It's a parabola with two cincident real roots.

The roots are $x=-1=x_0$

Then the vertex of the parabola it's $V(-1,0)$ . The vertex it's a local min (because if we rewrite $f(x)$ as $y=ax^2+bx+c$ we have $a>0$ ), where $f'(x)=0$ . The tangent line it's $y=0$ therefore the normal it's $x=-1$

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What is the equation of the line normal to $f(x)=(x+1)^2$ at $x=-1$ ?

1 Answer

Explanation:

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What is the equation of the line normal to $f(x)=(x+1)^2$ at $x=-1$ ?