Show One-One Function on Finite Set is Onto
📺 Video Explanation
📝 Question
Let:
\[ A=\{1,2,3\} \]
Show that if:
\[ f:A\to A \]
is one-one, then \(f\) must be onto.
✅ Solution
Set \(A\) has:
\[ 3 \] elements.
🔹 One-One Property
If function is one-one:
- Different inputs have different outputs.
So images of:
\[ 1,2,3 \]
must all be distinct.
🔹 Since Codomain Also Has 3 Elements
Codomain:
\[ A=\{1,2,3\} \]
also has exactly 3 elements.
If three distinct outputs are chosen from a set of three elements, all elements must be used.
So:
range = codomain.
Hence:
✔ Function is onto.
🎯 Final Answer
\[ \boxed{\text{Every one-one function }f:A\to A\text{ is onto}} \]
🚀 Exam Shortcut
- Finite set + same number of elements
- Injection automatically gives surjection
- Very important finite set theorem