Cauchy riemann equations and constant functions

reb659
Messages
64
Reaction score
0

Homework Statement



Let f(z) be analytic on the set H. Let the modulus of f(z) be constant. Does f need be constant also? Explain.

Homework Equations



Cauchy riemann equations

Hint: Prove If f and f* are both analytic on D, then f is constant.

The Attempt at a Solution



I think f need be constant.
Let f*=conjugate operator

Let f = U+iV Then f* = U-iV
Since F is analytic we can use CR equations and we get
1) Ux = Vy
and
2) Uy = -Vx .
Applying CR to f* gives
3) Ux = -Vy
and
4) Uy = Vx

1) and 3) imply Vy = -Vy and 2) and 4) imply Vx = -Vx.
But the only function that can equal its negative is zero, and thus Vx = Vy = 0, and so V = constant.
Likewise, the same argument for Ux and Uy gives Ux = Uy = 0 and so U = a constant. And both U and V constant implies that f is constant. So we have the hint proven. Let f = u+iv. We’re given |f| = c.

Stuck.
 
Last edited:
Physics news on Phys.org
Hint: f times f* is |f|^2 which is a constant.
 
But what about the function f(z)=z=x+iy? Isn't that function analytic on the say, unit disk with a constant modulus but f is not constant?
 
reb659 said:
But what about the function f(z)=z=x+iy? Isn't that function analytic on the say, unit disk with a constant modulus but f is not constant?

If you mean the unit disk, it doesn't have constant modulus. If you mean the unit circle, yes, it does. They should have stated assumptions on the domain H. Let's say it needs to be open and connected.
 
Ah yes, I meant unit circle. I was thinking the domain would need to have restrictions because I thought I proved it yet found a counterexample at the same time. But for the original problem:

Let f=U + iV. We have |f|=c for some constant c. |z|^2=zz*, so we have |f|^2=c^2 which implies f*=c^2/f. f is analytic by assumption and constants are always analytic over any D, so by the above hint I proved f must be constant.
 
reb659 said:
Ah yes, I meant unit circle. I was thinking the domain would need to have restrictions because I thought I proved it yet found a counterexample at the same time. But for the original problem:

Let f=U + iV. We have |f|=c for some constant c. |z|^2=zz*, so we have |f|^2=c^2 which implies f*=c^2/f. f is analytic by assumption and constants are always analytic over any D, so by the above hint I proved f must be constant.

Sure, that's it.
 

Similar threads

  • · Replies 5 ·
Replies
5
Views
3K
  • · Replies 7 ·
Replies
7
Views
2K
  • · Replies 11 ·
Replies
11
Views
2K
  • · Replies 27 ·
Replies
27
Views
3K
Replies
2
Views
2K
  • · Replies 3 ·
Replies
3
Views
3K
  • · Replies 4 ·
Replies
4
Views
2K
Replies
20
Views
5K
  • · Replies 19 ·
Replies
19
Views
2K
  • · Replies 5 ·
Replies
5
Views
3K