What is the vertex form of $y=1/3x^2 - 2/3x +1/6$ ?

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Answer 1 · 2016-03-14T17:49:53

$color(red)(y=1/3(x-1)^2-1/6)$

Given: $" "y=1/3x^2-2/3x+1/6$ ..........................(1)

Write as: $" "y=1/3(x^2-2x)+1/6$

What we are about to do will introduce an error. Compensate for this error by adding a constant

Let $k$ be a constant

$y=1/3(x^2-2x)+k+1/6$

$1/2$ the coefficient of $x$

$y=1/3(x^2-x)+k+1/6$

'Get rid' of the single $x$ leaving its coefficient of 1

$y=1/3(x^2-1)+k+1/6$

Move the index (power) of 2 to outside the brackets

$y=1/3(x-1)^2+k+1/6$ ...........................(2)

$color(brown)("This is your basic form. Now we need to find "k)$

'~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Consider the form $1/3(?-1)^2$ . It produces the error of

$1/3xx(-1)^2 = +1/3$

To 'get rid' of this error we make $k=-1/3$

So equation (2) becomes

$y=1/3(x-1)^2 -1/3+1/6" "...........................(2_a)$
'~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~

$color(red)(y=1/3(x-1)^2-1/6)$

Tony B

What is the vertex form of y=1/3x^2 - 2/3x +1/6y=1/3x^2 - 2/3x +1/6 ?