I am trying to solve:
Let $f: \mathbb{R}^{+} \to \mathbb{C}^{\times}$ be the map $f(x) = e^{ix}$. Prove that $f$ is a homomorphism, and determine its kernel and image.
Here is my attempt.
Given $x,y \in \mathbb{R}$, we have \begin{align*} f(x+y) = e^{i(x+y)} = e^{ix + iy} = e^{ix} e^{iy} = f(x) f(y), \end{align*} so $f$ is a homomorphism. I claim that $\mathrm{ker}(\varphi) = \{2\pi k \mid k \in \mathbb{Z}\}$. Indeed, we have: \begin{align*} x \in \mathrm{ker}(f) & \iff f(x) = 1 \\ & \iff e^{ix} = 1 \\ & \iff \cos(x) + i \sin x = 1 \\ & \iff \cos x = 1, \; \sin x = 0 \\ & \iff x = 2\pi k, \; k \in \mathbb{Z} \end{align*} Finally, I claim that $\mathrm{Im}(f) = S^1 = \{z \in \mathbb{C} \mid |z| = 1\}$. We have: \begin{align*} z \in \mathrm{Im}(f) & \iff \exists x \in \mathbb{R}, \; f(x) = e^{ix} = z \\ & \iff |z| = 1 \\ & \iff z \in S^1 \end{align*}
How does this look?
