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Either I forgot or never did learn to do it well. I need to solve the following system:

$9a+3b+c=0$ $25a-5b+c=0$ $a-b+c=12$

Google shows me this page with some instructions: http://www.jcoffman.com/Algebra2/ch3_6.htm, I decided to follow them.

The first one, is "add the first equation with the third one, this will eliminate an x-term". So I assume that, in my context, this will eliminate at least one term when I try it.

Adding the first with the third one: $9a+3b+c=0$ $a-b+c=12$ I get: $10a-2b+2c$ Aw... No term was removed. So something's not well.

Either my system is wrong or I am not following the instructions well. If you want to know where my system comes from, it is from the following question:

Determine the quadratic function such that $f(3) = 0$, $f(-5) = 0$ and $f(-1)=12$.

If I'm not mistaken, this involves solving the system I got above.

Can you tell me what did I do wrong following those instructions? I'm not really looking for the solution - instead, I'd prefer to understand how to do this.

4 Answers 4

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I will answer your question

How to solve systems of three [linear] equations?

Don't necessarily take such instructions literally: what you refer to (adding the first equation to the third) was probably correct for the example used in the particular problem demonstrated.

Essentially, solving a system of linear equations (aka Gaussian Elimination) is just like using elementary row operations in matrices, except you have the variables. But how you proceed depends on the coefficients:

$9a+3b+c=0\tag{1}$ $25a-5b+c=0\tag{2}$ $a-b+c=12\tag{3}$

To get you started:

Add $-9(3)$ to $(1)$: that eliminates $a$...

$\;\;-9a + 9 b - 9c = -108$
$+\; 9a + 3b + c = 0$
$= 0\; + 12b - 8c = -108$
$= 3b - 2c = -26\quad\quad\quad\quad (R_1)$

From here you can solve for for $b$ in terms of $c$, then back-substitute, etc.

Or, you can eliminate, say, $c$ altogether to solve for $b$:

For example, you can use $-25(\text{equation }\;3) + (\text{equation}\;2)$ to get a second equation without the $a$ variable...

$-25a + 25b - 25c = 300$
$+\; 25a - 5b + \;\;c = \;\;0$
$= 0\;\;20b - 24c = 300$
$= 5b - 6c = 75\quad\quad\quad\quad (R_2)$

Now continue the process using $3(R_1)+(R_2)$ to get rid of the $c$-term...

Then back substitute to solve for $b$, and then using $b, c$ solve for $a$.

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    RHS should be -108, I believe. Need to multiply both sides of $(3)$ by $-9$.2012-12-07
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I will answer your question

Determine the quadratic function such that $f(3) = 0$, $f(-5) = 0$ and $f(-1) = 12$.

Any quadratic polynomial will have only two roots. From the question, you know that the only two roots are $3$ and $-5$. Hence, we have $f(x) = a(x-3)(x+5)$ In addition, we are given thaat $f(-1) = 12$. This implies $a(-4)(4) = 12 \implies a = -\dfrac34$ Hence, $f(x) = -\dfrac34 (x-3)(x+5) = \dfrac34(3-x)(x+5)$ To solve by your method, subtract equation $3$ from $1$ and $3$ from $2$ to eliminate $c$. If we do this, we then get that $8a+4b = -12$ $24a-4b = -12$ Add the above two equations to get $32a = - 24 \implies a = - \dfrac34$ We have $8a+4b = -12 \implies 4b = - 12 +6 = -6 \implies b = - \dfrac32$. Now that we have values for $a$ and $b$ plug it in any of the three original equations you had to get that $c = \dfrac{45}4$.

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@Marvis' answer is the best way to go about getting that quadratic, but to answer "how do I solve this system of linear equations", the answer is: you can do other operations besides adding two equations to each other. In particular, you can add a multiple of one equation to another. So, if you wanted to eliminate $a$ from the first equation, you could multiply the third equation by $-9$ then add it to the first: $ \begin{align*} -9(a-b+c)&=-9\cdot 12\\ + (9a+3b+c)&=0\\ \Rightarrow -9a+9a+9b+3b-9c+c&=-9\cdot 12 \end{align*} $

The first equation would then read:

$ 12b-8c=-108 $

From here you could put $b$ in terms of $c$, and substitute, etc. This process is called Gaussian elimination. There are lots of good YouTube videos on the subject as well.

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Another solution is using Matrix. You are three variable, $a $, $b$ and $c$. $ 9a+3b+c=0\\ 25a−5b+c=0\\ a−b+c=12 $ These three equations are equivalent to Matrix Production in form $A.X=b$, $A$ like this: $ \begin{bmatrix} 9 & 3 & 1\\ 25 & -5 & 1 \\ 1 & -1 & 1 \end{bmatrix} \begin{bmatrix} a\\ b\\ c \end{bmatrix} = \begin{bmatrix} 0\\ 0\\ 12 \end{bmatrix} $ that $ A = \begin{bmatrix} 9 & 3 & 1\\ 25 & -5 & 1 \\ 1 & -1 & 1 \end{bmatrix}, X = \begin{bmatrix} a\\ b\\ c \end{bmatrix}, b = \begin{bmatrix} 0\\ 0\\ 12 \end{bmatrix} $

now if $det(A)\neq 0$ (Determinant of matrix $A$), the system has a unique solution given by: $ X=A^{-1}.b $ because: $ \begin{align} & A.X=b \\ &\Rightarrow A^{-1}.A.X=A^{-1}.b\\ &\Rightarrow I.X=A^{-1}.b\\ &\Rightarrow X=A^{-1}.b \end{align} $ if you calculate Inversion of $A$: A^{-1} = \begin{bmatrix} 1/32 & 1/32 & -1/16 \\ 3/16 & -1/16 & -1/8 \\ 5/32 & -3/32 & 15/16 \end{bmatrix} so X = \begin{bmatrix} 1/32 & 1/32 & -1/16 \\ 3/16 & -1/16 & -1/8 \\ 5/32 & -3/32 & 15/16 \end{bmatrix} \begin{bmatrix} 0\\ 0\\ 12 \end{bmatrix} Another way is Gaussian Elimination.