Imaginay Nos (2 Viewers)

untouchablecuz · Jan 25, 2010

untouchablecuz said:
$\\Z=\sqrt\frac{1+z}{1-z}\Rightarrow z=\frac{Z^2-1}{Z^2+1}\\$If $z $ lies on the circle $x^2+y^2=1, $ then, $|z|=1\\\therefore |z|=\left|\frac{Z^2-1}{Z^2+1}\right|=1\Rightarrow |Z^2-1|=|Z^2+1|\\$

not 100% sure how to proceed

$\\Z=\sqrt\frac{1+z}{1-z}\Rightarrow z=\frac{Z^2-1}{Z^2+1}\\$If $z $ lies on the circle $x^2+y^2=1, $ then, $|z|=1\\\therefore |z|=\left|\frac{Z^2-1}{Z^2+1}\right|=1\Rightarrow |Z^2-1|=|Z^2+1|\\$Let $Z=a+ib,\\\sqrt{(a^2-b^2-1)^2+(2ab)^2}=\sqrt{(a^2-b^2+1)^2+(2ab)^2}\\(a^2-b^2-1)^2=(a^2-b^2+1)^2\\(a^2-b^2)^2-2(a^2-b^2)+1=(a^2-b^2)^2+2(a^2-b^2)+1\\a^2=b^2\Rightarrow a=\pm b $ which are perpendicular lines$\\\ $Hence the points representing $Z $ form an orthogonal line pair$$

revised edition

hey lukybear, ill answer you later (sorry), i've got to go now

cyl123 · Jan 25, 2010

Lukybear said:
Absolutely rite. Can i just ask, i did it just graphically. I was like: the locus of that was

The locus of 1/z-3 was a circle of same centre but with radius 1/3. Hence 1/z-3 + 17/3 equals to a locus of (x-3-17/3)^2 + y^2 = 1/9

Where did i go wrong with that method?

actually i think you are right but you just got confused
The locus of 1/(z-3) was a circle of same centre so 1/(z-3) + 17/3 equals to a locus of (x-17/3)^2+y^2=1/9. (51/9=17/3)
This is because every point 1/(z-3) on the circle shifts right by 17/3, so logically the centre of the circle should shift the same amount

Alternate method

|z-3|=3
|1/(z-3)|=1/3
Thus |Z-17/3|=1/3 and hence the locus of Q is a circle with centre 17/3 and 1/3

Lukybear · Jan 25, 2010

Coroneous Khorne.

Lukybear · Jan 25, 2010

cyl123 said:
actually i think you are right but you just got confused
The locus of 1/(z-3) was a circle of same centre so 1/(z-3) + 17/3 equals to a locus of (x-17/3)^2+y^2=1/9. (51/9=17/3)
This is because every point 1/(z-3) on the circle shifts right by 17/3, so logically the centre of the circle should shift the same amount

Alternate method

|z-3|=3
|1/(z-3)|=1/3
Thus |Z-17/3|=1/3 and hence the locus of Q is a circle with centre 17/3 and 1/3

I do feel very glad that I am right for the first time. But could you please expand on that?

|z-3|=3 has centre of (3,0) no? not (0,0) If it was shifted by 17/3, it would be z- (17/3 +3)? I am slow to get things so...

cutemouse · Jan 25, 2010

Lukybear said:
Which chapter? Its not in Imaginary thats a for sure.

1st chapter.

Lukybear · Jan 25, 2010

jm01 said:
1st chapter.

I think the one i posted was it? Is it in the supplement book?

untouchablecuz · Jan 25, 2010

cyl123 said:
actually i think you are right but you just got confused
The locus of 1/(z-3) was a circle of same centre so 1/(z-3) + 17/3 equals to a locus of (x-17/3)^2+y^2=1/9. (51/9=17/3)
This is because every point 1/(z-3) on the circle shifts right by 17/3, so logically the centre of the circle should shift the same amount

Alternate method

|z-3|=3
|1/(z-3)|=1/3
Thus |Z-17/3|=1/3 and hence the locus of Q is a circle with centre 17/3 and 1/3

g-g-g-g-g-g-g-geniusssssssssssssssssss

Lukybear · Jan 25, 2010

untouchablecuz said:
g-g-g-g-g-g-g-geniusssssssssssssssssss

i dont getttt itttt....

why is it -17/3 and not -3-17/3??

untouchablecuz · Jan 25, 2010

Lukybear said:
I think the one i posted was it? Is it in the supplement book?

polynomial division should be in Polynomials

it works in exactly the same way as division with real factors

e.g.

$x^3-0x^2+2x+1=0$

divide by x-3

divide by x-(1+i)

letting x-(1+i)=(x-a) and THEN dividing may be of help to you conceptually

khorne · Jan 26, 2010

Lukybear said:
i dont getttt itttt....

why is it -17/3 and not -3-17/3??

As stated:

|z-3| = 3

|1/z-3| = 1/3

|Z| = |1/z-3| + 17/3

i.e |Z - 17/3| = 1/3

Additionally, while you may already know, these problems are no longer in the syllabus.

Lukybear · Jan 26, 2010

khorne said:
As stated:

|z-3| = 3

|1/z-3| = 1/3

|Z| = |1/z-3| + 17/3

i.e |Z - 17/3| = 1/3

Additionally, while you may already know, these problems are no longer in the syllabus.

O reali? Thats fantastic. Ive been having trouble with them for so long...

O thxs Khorne. I do get it now.

Anyhow, it is good practice tho.

khorne · Jan 26, 2010

Actually, according to the syllabus itself:

The student is able to:
• given equations Re(z) = c, Im(z) = k (c, k real), sketch lines parallel to the
appropriate axis
• given an equation | z – z1 | = | z – z2 |, sketch the corresponding line
• given equations | z | = R, | z – z1 | = R, sketch the corresponding circles
• given equations arg z = q, arg(z – z1) = q, sketch the corresponding rays
• sketch regions associated with any of the above curves (eg the region
corresponding to those z satisfying the inequality (| z – z1 | ² R)
• give a geometrical description of any such curves or regions
• sketch and describe geometrically the intersection and/or union of such
regions
• sketch and give a geometrical description of other simple curves and regions.
Topic 2: Complex Numbers
Applications, Implications and Considerations
• Typical curves and regions are those defined by simple equations or inequalities,
such as
Im(z) = 4, | z – 2 – 3i | = | z – i |, | z – 3 + 4i | = 5, Re(z) > 2,
0 < arg z < ¹/2, 0 ² Im(z) ² 4.
• Simple intersections, such as the region common to | z | = 1 and
0 ² arg z ² ¹/4, and corresponding unions, need be done.
• Examples need only involve replacing z by z = x + iy in relations such as
2 | z | = z + + 4, z + > 0, | z2 – ( )2| < 4. They need not include discussion of
curves such as w = z-i/z+i, where z lies on a unit circle.

So you see, it's pretty simple stuff.
z i
-
+
z z z
31

cyl123 · Jan 26, 2010

khorne said:
As stated:

|z-3| = 3

|1/z-3| = 1/3

|Z| = |1/z-3| + 17/3

i.e |Z - 17/3| = 1/3

Additionally, while you may already know, these problems are no longer in the syllabus.

Um not quite right

Z=1/(z-3)+17/3 does not imply |Z|=|1/(z-3)|+17/3.... think triangle inequality...

rather Z-17/3=1/(z-3) --->|Z-17/3|=1/3

Explanation:
Instead of considering z, consider the complex number m=1/(z-3).
|z-3|=3 implies |1/(z-3)|=1/3, which implies |m|=1/3, so it means for any given z on the circle, the point m will lie on another circle centred at the origin with radius 1/3. Now noting Z=1/(z-3)+17/3, or Z=m+17/3, which means for any m on the circle stated above, Z is that point shifted 17/3 to the right. So every point on the circle centred at the origin with radius 1/3 is shifted to the right by 17/3 to obtain Q, so logically the centre of that circle should be shifted to the right by 17/3 to obtain the centre for the locus of Q.

Lukybear · Jan 27, 2010

Hmm thxs guys

Lukybear · Jan 27, 2010

Help with this complex Trig:

$\text{using }\\cos5\Theta = 1 \text{ and } 16x^{5} - 20x^{3} + 5x -1 = 0\\ \text{show that } cos\frac{(\pi)}{2} - cos\frac{2\pi}{5} = \frac{1}{2}$

Lukybear · Jan 27, 2010

1 more:

Solve the equation

$sin5\theta =1 \text{for} 0<\theta<2\pi, \text{ and hence show that the roots of the equation }\\ 16x^2+16x^3-4x^2-4x+1=0 are x=sin\frac{(4r+1)\pi}{10} \text{,where r=0,2,3,4.}\\ \text{determine the exact value of } sin\frac{\pi}{10}sin\frac{3\pi}{10}$

Lukybear · Jan 27, 2010

Also just generally, when conducting complex trig, where root is in the form of

$\frac{k\pi}{4},\\ \text{k=0,1,2,.... }$

and the equation is cubed

is it enough to say, k=0,1,2 since only first 3 root are distinct?

Lukybear · Jan 27, 2010

khorne said:
Actually, according to the syllabus itself:

The student is able to:
• given equations Re(z) = c, Im(z) = k (c, k real), sketch lines parallel to the
appropriate axis
• given an equation | z – z1 | = | z – z2 |, sketch the corresponding line
• given equations | z | = R, | z – z1 | = R, sketch the corresponding circles
• given equations arg z = q, arg(z – z1) = q, sketch the corresponding rays
• sketch regions associated with any of the above curves (eg the region
corresponding to those z satisfying the inequality (| z – z1 | ² R)
• give a geometrical description of any such curves or regions
• sketch and describe geometrically the intersection and/or union of such
regions
• sketch and give a geometrical description of other simple curves and regions.
Topic 2: Complex Numbers
Applications, Implications and Considerations
• Typical curves and regions are those defined by simple equations or inequalities,
such as
Im(z) = 4, | z – 2 – 3i | = | z – i |, | z – 3 + 4i | = 5, Re(z) > 2,
0 < arg z < ¹/2, 0 ² Im(z) ² 4.
• Simple intersections, such as the region common to | z | = 1 and
0 ² arg z ² ¹/4, and corresponding unions, need be done.
• Examples need only involve replacing z by z = x + iy in relations such as
2 | z | = z + + 4, z + > 0, | z2 – ( )2| < 4. They need not include discussion of
curves such as w = z-i/z+i, where z lies on a unit circle.

So you see, it's pretty simple stuff.
z i
-
+
z z z
31

Yeah... but some one told me complex is a tool for later chapters. But i do know your absoulutely rite and thxs for warning me.

ninetypercent · Jan 28, 2010

can i assume that you mean cos(pi/5) - cos(2pi/5) = 0.5??

$5\Theta = 2\pi k\\ \Theta = \frac{2\pi k}{5}\\16x^5 - 20x^3 + 5x =1\\ 16x^5 - 20x^3 + 5x = cos5\Theta \\ x = cos\frac{2\pi k}{5}= 1, cos\frac{2\pi}{5}, cos\frac{4\pi}{5}, cos\frac{6\pi}{5}, cos\frac{8\pi}{5}$
note that $cos\frac{2\pi}{5} =cos\frac{8\pi}{5}, cos\frac{4\pi}{5} =cos\frac{6\pi}{5}$
$2cos\frac{2\pi}{5}+2cos\frac{6\pi}{5}+1 = 0$ from sum of roots
$cos\frac{2\pi}{5}+ cos\frac{6\pi}{5}=\frac{-1}{2}\\-cos\frac{2\pi}{5}-cos\frac{6\pi}{5}=\frac{1}{2}\\ cos\frac{\pi}{5} - cos\frac{2\pi}{5} = \frac{1}{2}$
because $cos\frac{6\pi}{5}= -cos\frac{\pi}{5}$

ninetypercent · Jan 28, 2010

for second one,
$x = sin\frac{\pi}{10}, sin\frac{9\pi}{10}, sin\frac{13\pi}{10}, sin\frac{17\pi}{10}\\$
note that $sin\frac{\pi}{10}= sin\frac{9\pi}{10}, sin\frac{13\pi}{10} =sin\frac{17\pi}{10}$

using product of roots

$sin^2\frac{\pi}{10}sin^2\frac{17\pi}{10} = \frac{1}{16}$
sin(3pi/10) = -sin(17pi/10)
$sin^2\frac{\pi}{10}sin^2\frac{3\pi}{10} = \frac{1}{16}$
$sin\frac{\pi}{10}sin\frac{3\pi}{10}= \frac{1}{4}$

which appears to be true on my calculator

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