54 CHAPTER 2 • COMPLEX FUNCTIONS
y !<z> = z^2 v
........ ........................ -........ -.. .. ....
.... .. ..
,..... .. .........- --+----+ x --.+---!---• II
·. .......... .. .. , .........
...................................... ..
Figure 2.4 The function f(z) = z^2 is not one-to-one.equation w = I (z) and "solve" for z as a function of w. Doing so produces an
inverse function z = g ( w) where the following equations hold:
g (! (z)) = z for all z E A, and
I (g(w)) = w for all w E B. (2-3)
Conversely, if w = f ( z) and z = g ( w) are functions that map A into B
and B into A, respectively, and Equations (2-3) hold, then I maps the set A
one-to-one and onto the set B.
Further, if I is a one-to-one mapping from D onto T and if A is a subset
of D , then I is a one-to-one mapping from A onto its image B. We can also
show that if ( = I (z) is a one-to-one mapping from A onto Band w = g (() is a
one-to-one mapping from B onto S, then the composite mapping w = g (! (z))
is a one-to-one mapping from A onto S.
We usually indicate the inverse of I by the symbol J-^1. If the domains of I
and 1-^1 are A and B, respectively, we can rewrite Equations (2-3) as1-^1 (! (z)) = z for all z EA, and
I (f-^1 (w)) = w for all w EB.
Also, for zo EA and wo EB,wo = I (zo) iff 1-^1 (wo) = zo.
(2-4)(2-5)- EXAMPLE 2.6 If w = I (z) = iz for any complex number z, find 1-^1 (w).
Solution We can easily show I is one-to-one and onto the entire complex
plane. We solve for z, given w = I (z) = iz, to get z = T = -iw. By Equations
(2-5), this result implies that 1-^1 (w) = -iw for all complex numbers w.
Remark 2.2 Once we have specified 1-^1 (w) = -iw for all complex numbers
w, we note that there is nothing magical about the symbol w. We could just as
easily write 1-^1 (z) = -iz for all complex numbers z. •