If g o f = idA and f o g = idB, then g = f^-1 proof?

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Homework Help Overview

The discussion revolves around proving that if two functions, f and g, satisfy the conditions g o f = idA and f o g = idB, then g is the inverse of f. The context is set within the framework of functions between two sets A and B.

Discussion Character

  • Exploratory, Assumption checking

Approaches and Questions Raised

  • Participants discuss the need to demonstrate the relationship between elements of sets A and B through the composition of functions f and g. There are attempts to establish the implications of the given conditions on the invertibility of f and the nature of g.

Discussion Status

Some participants are exploring the necessary conditions for a function to be invertible, specifically questioning whether f is one-to-one and onto. There is an ongoing examination of the implications of the provided conditions without reaching a consensus on the proof.

Contextual Notes

Participants note the lack of specification regarding the properties of the functions f and g, particularly whether f is one-to-one and onto, which are crucial for establishing the existence of an inverse.

Norm850
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Hey guys,

I need to prove: Suppose A and B are sets, and f and g are functions with f: A -> B and g: B -> A. If g o f = idA and f o g = idB, then f is invertible and g = f^-1.

So far I have understood why g must be the inverse of f, but I do not know how to prove it.

Thanks!
 
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Take an arbitrary element a in A and b in B and show that they relate via composition of both functions.
 
Hint: f(a) = b, g(b) = a
 
tazzzdo said:
Take an arbitrary element a in A and b in B and show that they relate via composition of both functions.

Okay, not really sure how to do that but here's my attempt:

Suppose g o f = idA,
then dom(g o f) = dom(idA) = A
and (g o f)(a) = g(f(a)) = idA(a) = a.

Suppose f o g = idB,
then dom(f o g) = dom(idB) = B
and (f o g)(b) = f(g(b)) = idB(b) = b.
 
A function is only invertible if it's 1 - 1 and onto. Is this the case? You didn't specify.
 
tazzzdo said:
A function is only invertible if it's 1 - 1 and onto. Is this the case? You didn't specify.

So what I have is sufficient for g=f^-1? But first I need to show that f^-1 exists?
 

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