Continuous Image of Connected Space is Connected/Proof 1

Proof
Let $i: f \sqbrk {T_1} \to T_2$ be the inclusion mapping.

Let $g: T_1 \to f \sqbrk {T_1}$ be the surjective restriction of $f$.

Then $f = i \circ g$.

Hence, by Continuity of Composite with Inclusion: Inclusion on Mapping, it follows that $g$ is continuous.

We use a Proof by Contradiction.

Suppose that $A \mid B$ is a partition of $f \sqbrk {T_1}$.

Then it follows that $g^{-1} \sqbrk A \mid g^{-1} \sqbrk B$ is a partition of $T_1$.