complex no. (1 Viewer)

juantheron · Dec 10, 2013

$Let $z_{1}, z_{2}, z_{3}$ be complex numbers of unit modulus such that$

$\left|z_{1}-z_{2}\right|^2+\left|z_{1}-z_{3}\right|^2 = 4.$

$Then $\left|z_{1}+z_{3}\right|$ is equal to$

iEatOysters · Dec 10, 2013

Do you have the answer? I think I got it... But I think it's wrong.

wagig · Dec 10, 2013

My answer's root 2 haha, let me know if it's right and i'll show how i got it

rumbleroar · Dec 10, 2013

I got root 2 as well

HeroicPandas · Dec 10, 2013

Did u guys use circle geometry (with root of unity) and pythagoras?

rumbleroar · Dec 10, 2013

^ Yea pretty much
I think you can also use isosceles triangles?

HeroicPandas · Dec 10, 2013

rumbleroar said:
^ Yea pretty much
I think you can also use isosceles triangles?

ok cool, yeh i used isos triangle too

wagig · Dec 10, 2013

I did it a weird way i'm pretty sure,
I used vectors, cos rule ( $c^2 = a^2+b^2-2abcosC$ ) and algebra manipulation

blootomarto · Dec 18, 2013

What is the method of solving this?

braintic · Dec 21, 2013

juantheron said:
$Let $z_{1}, z_{2}, z_{3}$ be complex numbers of unit modulus such that$

$\left|z_{1}-z_{2}\right|^2+\left|z_{1}-z_{3}\right|^2 = 4.$

$Then $\left|z_{1}+z_{3}\right|$ is equal to$

There is something wrong with this question.

Let z1=1, z2=1, z3=-1.
These satisfy the first requirement that they all have unit modulus.
$Also $\left|z_{1}-z_{2}\right|^2+\left|z_{1}-z_{3}\right|^2 = $\left|1-1\right|^2+\left|1-(-1)\right|^2=4.$
So it satisfies the second requirement.
$And $\left|z_{1}+z_{3}\right|=0.$

Now let z1=1, z2=i, z3=i.
Again the two requirements are met (you can check), but this time the answer is sqrt 2.

In fact I made a Geogebra construction, and you can get an infinite number of answers.

I think the question might be correct if you had asked for the MAXIMUM value of $$ $\left|z_{1}+z_{3}\right|$

Drongoski · Dec 21, 2013

0 < |z₁ + z₃| < 2 ??

cineti970128 · Dec 21, 2013

blootomarto said:
What is the method of solving this?

Draw a circle with three point A, B, C representing z1, z2, z3.
By inspecting the formula, angle at A is 90. Hence using the semi circle angle property, BC must be a diameter through the origin.
Since z1 can b anywhere, so by inspecting the modulus |z1+z3| formed by adding z1 and z3 , hence > 0 and <2. I don't know how others got root 2.

dunjaaa · Dec 22, 2013

Yeah I got the same ^

Triage · Dec 22, 2013

braintic said:
There is something wrong with this question.

Let z1=1, z2=1, z3=-1.
These satisfy the first requirement that they all have unit modulus.
$Also $\left|z_{1}-z_{2}\right|^2+\left|z_{1}-z_{3}\right|^2 = $\left|1-1\right|^2+\left|1-(-1)\right|^2=4.$
So it satisfies the second requirement.
$And $\left|z_{1}+z_{3}\right|=0.$

Now let z1=1, z2=i, z3=i.
Again the two requirements are met (you can check), but this time the answer is sqrt 2.

In fact I made a Geogebra construction, and you can get an infinite number of answers.

I think the question might be correct if you had asked for the MAXIMUM value of $$ $\left|z_{1}+z_{3}\right|$

|z1 - z2| doesn't equal |z1|-|z2|. I don't think something is wrong with the question.

RealiseNothing · Dec 22, 2013

Triage said:
|z1 - z2| doesn't equal |z1|-|z2|. I don't think something is wrong with the question.

I don't see where he has used this?

Triage · Dec 22, 2013

RealiseNothing said:
I don't see where he has used this?

|z1-z2|^2 = |1-1|^2

I think that is a nonsense regardless

RealiseNothing · Dec 22, 2013

Triage said:
|z1-z2|^2 = |1-1|^2

I think that is a nonsense regardless

Nah everything he did was correct.

braintic · Dec 22, 2013

Triage said:
|z1-z2|^2 = |1-1|^2

I think that is a nonsense regardless

Not sure what it is you don't get, but all I've done is replace z1 by 1 and z2 by 1. Simple substitution. If you think year 7 substitution is nonsense, well ... what can I say.

Perhaps you could show me where I said that |z1 - z2| equals |z1|-|z2| .

And 'nonsense' is a non-countable noun, so it can't be preceded by 'a' unless you want to use it as an adjective for a countable noun.

Triage · Dec 22, 2013

braintic said:
Not sure what it is you don't get, but all I've done is replace z1 by 1 and z2 by 1. Simple substitution. If you think year 7 substitution is nonsense, well ... what can I say.

Perhaps you could show me where I said that |z1 - z2| equals |z1|-|z2| .

And 'nonsense' is a non-countable noun, so it can't be preceded by 'a' unless you want to use it as an adjective for a countable noun.

Sorry, my bad, I overlooked the substitution and thought you were just substituting in the modulus of z1 and z2. Seriously honest mistake of mine, nt trying to attack you in any way.

alficio · Dec 23, 2013

cineti970128 said:
Draw a circle with three point A, B, C representing z1, z2, z3.
By inspecting the formula, angle at A is 90. Hence using the semi circle angle property, BC must be a diameter through the origin.
Since z1 can b anywhere, so by inspecting the modulus |z1+z3| formed by adding z1 and z3 , hence > 0 and <2. I don't know how others got root 2.

Just wondering isn't it possible that A isn't 90 degrees?

complex no. (1 Viewer)

Active Member

Member

Member

Survivor of the HSC

Heroic!

Survivor of the HSC

Heroic!

Member

New Member

Well-Known Member

Well-Known Member

Member

Active Member

Member

what is that?It is Cowpea

Member

what is that?It is Cowpea

Well-Known Member

Member

New Member

Users Who Are Viewing This Thread (Users: 0, Guests: 1)