Any easier/quicker/more correct solutions to this problem (1 Viewer)

calamebe · Sep 3, 2015

I have a question that I feel i worked out rather weirdly, so I was hoping there was an easier way to do these types of questions. I will post the question and my solution.

Question:

My solution:

http://m.imgur.com/Ej5ZhAt

My solution is correct by the way, just looking for other methods.

dan964 · Sep 3, 2015

there is a simpler method
1. This polynomial is of degree 2, so there is only 2 roots.

2. A+2i and A-2i are the only two roots of the equation because
firstly Im(root) = 2 and the conjugate root theorem applies as the coefficients of the polynomial are real

3. Noting that sum of roots = -6, this gives the real part (A) as A=-3.

Therefore, roots are -3+2i and -3-2i
This is much neater and quicker.

Product of the roots then follows (3+2i)(3-2i) = 13.

Integrand's proof is virtually identical but a 'wee' bit clearer/elegant.

InteGrand · Sep 3, 2015

calamebe said:
I have a question that I feel i worked out rather weirdly, so I was hoping there was an easier way to do these types of questions. I will post the question and my solution.

Question:

View attachment 32358

My solution:

http://m.imgur.com/Ej5ZhAt

My solution is correct by the way, just looking for other methods.

$Since $k$ is real, the conjugate root theorem applies, so the two zeros of the quadratic will be $\alpha = a+2i$ and $\beta=\bar{\alpha}= a-2i$, where $a$ is some real number. We need to find the value of $a$. Using sum of roots, $\alpha + \bar{\alpha} = -6\Rightarrow 2a=-6\Rightarrow a = -3$. Hence the two roots are $-3\pm 2i$. Using product of roots, $k=\alpha \bar{\alpha}=|\alpha|^2 = 3^2 + 2^2 = 9 + 4 \Longleftrightarrow k= 13$.$

InteGrand · Sep 3, 2015

dan964 said:
there is a simpler method
1. This polynomial is of degree 2, so there is only 2 roots.

2. k+2i and k-2i are the only two roots of the equation because
firstly Im(root) = 2 and the conjugate theorem applies as the coefficients of the polynomial are real

3. Using sum of roots = -6, gives the real part as follows:
2k=-6
k=-3

Therefore, roots are -3+2i and -3-2i
This is much neater and quicker

$We should not use the symbol $k$ to represent $\Re(\alpha)$, as $k$ is something else in the question.$

calamebe · Sep 3, 2015

Oh wow thanks a lot guys. That theorem slipped my mind, probably as it had the k at the end, I'll keep that in mind for later, thanks.

dan964 · Sep 3, 2015

InteGrand said:
$We should not use the symbol $k$ to represent $\Re(\alpha)$, as $k$ is something else in the question.$

already fixed (at time of when I spotted your post)

Any easier/quicker/more correct solutions to this problem (1 Viewer)

calamebe

Active Member

dan964

what

InteGrand

Well-Known Member