Author Topic: Methods unit 1 and 2 question (Read 796 times) Tweet Share

MNM101 · « **on:** February 10, 2014, 05:39:56 pm »

So today I was in class the teacher was explaining about completing the square but the thing is the way he was trying to teach it to us it just didn't stick in my head, I couldn't grasp it, so I was wondering if someone could give me a clear explanation on how to approach a question asking me to complete the square. 😬😬

b^3 · « **Reply #1 on:** February 10, 2014, 07:03:19 pm »

If say you have the expression $y=x^{2}+4x+1$ , we can't try and factorise it normally. So what we'll try to do is 'complete the square', that is we'll add in a term that allows us to nicely factor a perfect square, but to keep the expression the same on both sides we will also need to take away this term. Then we aim to have a perfect square and another negative term which we can then us DOPS (different of perfect squares) on to get two nice factors.

So if we had $x^{2}+4x$ what do we need to add to get a nice perfect square? We need to add a $4$ , as this will allow us to factorise it into $(x+2)^{2}$ . Now there's a general rule for this, we add a constant that is the coefficient on the $x$ term, half it and then square it. So in this case that is $\frac{4}{2}=2$ , then square it, but remember to keep both sides balanced we also need to subtract it away again. So we have
$\begin{alignedat}{1}x^{2}+4x+1 & =x^{2}+4x+\left(2\right)^{2}-\left(2\right)^{2}+1 \\ & =\left(x+2\right)^{2}-3 \end{alignedat}$
The term that ends up added to the $x$ term inside the bracket will be what we go to square, in this case $2$ .
Now we can use DOPS on what we obtain, as we have a negative in front of the constant left over, so we'll have $(a+b)(a-b)$ where $a$ is the square root of our first term, $\sqrt{(x+2)^{2}}=x+2$ , and $b$ is the square root of our second term, $\sqrt{3}$ .
$\begin{alignedat}{1}\left(x+2\right)^{2}-3 & =\left(x+2+\sqrt{3}\right)\left(x+2-\sqrt{3}\right)\end{alignedat}$

Now we should also note that this only works if the coefficient on the $x^{2}$ term is $1$ , so sometimes we'll need to take that factor out first, then try to complete the square.

Let's try a more general example, let's try and complete the square, then factorise $y=ax^{2}+bx+c$ .
Since the coefficient on the $x^{2}$ term is $a$ and not $1$ , we need to take a factor of $a$ out of the expression.
$\begin{alignedat}{1}y & =ax^{2}+bx+c \\ & =a\left(x^{2}+\frac{b}{a}x+\frac{c}{a}\right) \end{alignedat}$
Now we need to add and subtract the square of half of the coefficient on the $x$ term.
$\begin{alignedat}{1}y & =ax^{2}+bx+c \\ & =a\left(x^{2}+\left(\frac{b}{a}\right)x+\frac{c}{a}\right) \\ & =a\left(x^{2}+\left(\frac{b}{a}\right)x+\left(\frac{b}{2a}\right)^{2}-\left(\frac{b}{2a}\right)^{2}+\frac{c}{a}\right) \end{alignedat}$
Then we can now factorise the first three terms of the expression.
$\begin{alignedat}{1}y & =ax^{2}+bx+c \\ & =a\left(x^{2}+\left(\frac{b}{a}\right)x+\frac{c}{a}\right) \\ & =a\left(x^{2}+\left(\frac{b}{a}\right)x+\left(\frac{b}{2a}\right)^{2}-\left(\frac{b}{2a}\right)^{2}+\frac{c}{a}\right) \\ & =a\left(\left(x+\frac{b}{2a}\right)^{2}-\frac{b^{2}}{4a^{2}}+\frac{4ac^{2}}{4a^{2}}\right) \\ & =a\left(\left(x+\frac{b}{2a}\right)^{2}-\frac{b^{2}-4ac}{4a^{2}}\right) \end{alignedat}$
Now finally we can use DOPS to get our two factors.
$\begin{alignedat}{1}y & =ax^{2}+bx+c \\ & =a\left(x^{2}+\left(\frac{b}{a}\right)x+\frac{c}{a}\right) \\ & =a\left(x^{2}+\left(\frac{b}{a}\right)x+\left(\frac{b}{2a}\right)^{2}-\left(\frac{b}{2a}\right)^{2}+\frac{c}{a}\right) \\ & =a\left(\left(x+\frac{b}{2a}\right)^{2}-\frac{b^{2}}{4a^{2}}+\frac{4ac^{2}}{4a^{2}}\right) \\ & =a\left(\left(x+\frac{b}{2a}\right)^{2}-\frac{b^{2}-4ac}{4a^{2}}\right) \\ & =a\left(x+\frac{b}{2a}+\frac{\sqrt{b^{2}-4ac}}{2a}\right)\left(x+\frac{b}{2a}-\frac{\sqrt{b^{2}-4ac}}{2a}\right) \end{alignedat}$
Now if we were to solve for this to be equal to zero (to find $x$ intercepts), then what do we get? Does it look familar?
$\begin{alignedat}{1}a\left(x+\frac{b}{2a}+\frac{\sqrt{b^{2}-4ac}}{2a}\right)\left(x+\frac{b}{2a}-\frac{\sqrt{b^{2}-4ac}}{2a}\right) & =0 \\ x & =-\frac{b\pm\sqrt{b^{2}-4ac}}{2a} \end{alignedat}$
That's right, we end up with the quadratic formula popping out

Anyways, hope that helps clear it up a little bit

EDIT: To summarise it step-by-step.
1. Take a factor out of the whole expression to make the coefficient on the $x^{2}$ term to be $1$ .
2. Add and Subtract the square of half of the coefficient on the $x$ term to the expression, write this inbetween the $x$ term and the constant term.
3. Factorise the perfect square formed from the first three terms, this will normally be $x$ plus (if the coefficient on the $x$ is positive) or minus (if the coefficient on the $x$ term is negative) the constant we added previously, all squared. Simplify the leftover constants.
4. Make sure the leftover constants give a negative constant, otherwise we cannot use DOPS and get stuck here with no solutions.
5. Use DOPS to find the two factors, the first will be what we had inside the square from the first factorisation plus the square root of left over constant term (not including the negative), the second factor will be the same except we have a minus instead of a plus between the two pairs.

EDIT2: Try completing the square on $y=2x^{2}-4x-6$ .

working

$\begin{alignedat}{1}y & =2x^{2}-4x-6 \\ & =2\left(x^{2}-2x-3\right) \\ & =2\left(x^{2}-2x+\left(1\right)^{2}-\left(1\right)^{2}-3\right) \\ & =2\left(\left(x-1\right)^{2}-4\right) \\ & =2\left(x-1-2\right)\left(x-1+2\right) \\ & =2\left(x-3\right)\left(x+1\right) \end{alignedat}$

MNM101 · « **Reply #2 on:** February 11, 2014, 08:41:56 pm »

Quote from: b^3 on February 10, 2014, 07:03:19 pm

Spoiler
If say you have the expression $y=x^{2}+4x+1$ , we can't try and factorise it normally. So what we'll try to do is 'complete the square', that is we'll add in a term that allows us to nicely factor a perfect square, but to keep the expression the same on both sides we will also need to take away this term. Then we aim to have a perfect square and another negative term which we can then us DOPS (different of perfect squares) on to get two nice factors.

So if we had $x^{2}+4x$ what do we need to add to get a nice perfect square? We need to add a $4$ , as this will allow us to factorise it into $(x+2)^{2}$ . Now there's a general rule for this, we add a constant that is the coefficient on the $x$ term, half it and then square it. So in this case that is $\frac{4}{2}=2$ , then square it, but remember to keep both sides balanced we also need to subtract it away again. So we have
$\begin{alignedat}{1}x^{2}+4x+1 & =x^{2}+4x+\left(2\right)^{2}-\left(2\right)^{2}+1 \\ & =\left(x+2\right)^{2}-3 \end{alignedat}$
The term that ends up added to the $x$ term inside the bracket will be what we go to square, in this case $2$ .
Now we can use DOPS on what we obtain, as we have a negative in front of the constant left over, so we'll have $(a+b)(a-b)$ where $a$ is the square root of our first term, $\sqrt{(x+2)^{2}}=x+2$ , and $b$ is the square root of our second term, $\sqrt{3}$ .
$\begin{alignedat}{1}\left(x+2\right)^{2}-3 & =\left(x+2+\sqrt{3}\right)\left(x+2-\sqrt{3}\right)\end{alignedat}$

Now we should also note that this only works if the coefficient on the $x^{2}$ term is $1$ , so sometimes we'll need to take that factor out first, then try to complete the square.

Let's try a more general example, let's try and complete the square, then factorise $y=ax^{2}+bx+c$ .
Since the coefficient on the $x^{2}$ term is $a$ and not $1$ , we need to take a factor of $a$ out of the expression.
$\begin{alignedat}{1}y & =ax^{2}+bx+c \\ & =a\left(x^{2}+\frac{b}{a}x+\frac{c}{a}\right) \end{alignedat}$
Now we need to add and subtract the square of half of the coefficient on the $x$ term.
$\begin{alignedat}{1}y & =ax^{2}+bx+c \\ & =a\left(x^{2}+\left(\frac{b}{a}\right)x+\frac{c}{a}\right) \\ & =a\left(x^{2}+\left(\frac{b}{a}\right)x+\left(\frac{b}{2a}\right)^{2}-\left(\frac{b}{2a}\right)^{2}+\frac{c}{a}\right) \end{alignedat}$
Then we can now factorise the first three terms of the expression.
$\begin{alignedat}{1}y & =ax^{2}+bx+c \\ & =a\left(x^{2}+\left(\frac{b}{a}\right)x+\frac{c}{a}\right) \\ & =a\left(x^{2}+\left(\frac{b}{a}\right)x+\left(\frac{b}{2a}\right)^{2}-\left(\frac{b}{2a}\right)^{2}+\frac{c}{a}\right) \\ & =a\left(\left(x+\frac{b}{2a}\right)^{2}-\frac{b^{2}}{4a^{2}}+\frac{4ac^{2}}{4a^{2}}\right) \\ & =a\left(\left(x+\frac{b}{2a}\right)^{2}-\frac{b^{2}-4ac}{4a^{2}}\right) \end{alignedat}$
Now finally we can use DOPS to get our two factors.
$\begin{alignedat}{1}y & =ax^{2}+bx+c \\ & =a\left(x^{2}+\left(\frac{b}{a}\right)x+\frac{c}{a}\right) \\ & =a\left(x^{2}+\left(\frac{b}{a}\right)x+\left(\frac{b}{2a}\right)^{2}-\left(\frac{b}{2a}\right)^{2}+\frac{c}{a}\right) \\ & =a\left(\left(x+\frac{b}{2a}\right)^{2}-\frac{b^{2}}{4a^{2}}+\frac{4ac^{2}}{4a^{2}}\right) \\ & =a\left(\left(x+\frac{b}{2a}\right)^{2}-\frac{b^{2}-4ac}{4a^{2}}\right) \\ & =a\left(x+\frac{b}{2a}+\frac{\sqrt{b^{2}-4ac}}{2a}\right)\left(x+\frac{b}{2a}-\frac{\sqrt{b^{2}-4ac}}{2a}\right) \end{alignedat}$
Now if we were to solve for this to be equal to zero (to find $x$ intercepts), then what do we get? Does it look familar?
$\begin{alignedat}{1}a\left(x+\frac{b}{2a}+\frac{\sqrt{b^{2}-4ac}}{2a}\right)\left(x+\frac{b}{2a}-\frac{\sqrt{b^{2}-4ac}}{2a}\right) & =0 \\ x & =-\frac{b\pm\sqrt{b^{2}-4ac}}{2a} \end{alignedat}$
That's right, we end up with the quadratic formula popping out

Anyways, hope that helps clear it up a little bit
EDIT: To summarise it step-by-step.
1. Take a factor out of the whole expression to make the coefficient on the $x^{2}$ term to be $1$ .
2. Add and Subtract the square of half of the coefficient on the $x$ term to the expression, write this inbetween the $x$ term and the constant term.
3. Factorise the perfect square formed from the first three terms, this will normally be $x$ plus (if the coefficient on the $x$ is positive) or minus (if the coefficient on the $x$ term is negative) the constant we added previously, all squared. Simplify the leftover constants.
4. Make sure the leftover constants give a negative constant, otherwise we cannot use DOPS and get stuck here with no solutions.
5. Use DOPS to find the two factors, the first will be what we had inside the square from the first factorisation plus the square root of left over constant term (not including the negative), the second factor will be the same except we have a minus instead of a plus between the two pairs.
EDIT2: Try completing the square on $y=2x^{2}-4x-6$ .
working
$\begin{alignedat}{1}y & =2x^{2}-4x-6 \\ & =2\left(x^{2}-2x-3\right) \\ & =2\left(x^{2}-2x+\left(1\right)^{2}-\left(1\right)^{2}-3\right) \\ & =2\left(\left(x-1\right)^{2}-4\right) \\ & =2\left(x-1-2\right)\left(x-1+2\right) \\ & =2\left(x-3\right)\left(x+1\right) \end{alignedat}$

Thank you!!!!!!

Mod Edit: Getting rid of the massive quote - Phy124

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Author Topic: Methods unit 1 and 2 question (Read 796 times) Tweet Share

MNM101

Methods unit 1 and 2 question

b^3

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MNM101

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