show that $ \cos(A+B)=\cos(A)\cos(B)-\sin(A)\sin(B)\\ \text{ if } AB=BA $
the question gives a hint to use: $ \sin(A)=\frac{1}{2i}(e^{iA}-e^{-iA})\\ \cos(A)=\frac{1}{2}(e^{iA}+e^{-iA}) $
show that $ \cos(A+B)=\cos(A)\cos(B)-\sin(A)\sin(B)\\ \text{ if } AB=BA $
the question gives a hint to use: $ \sin(A)=\frac{1}{2i}(e^{iA}-e^{-iA})\\ \cos(A)=\frac{1}{2}(e^{iA}+e^{-iA}) $
Using the hint, and we'd like to apply the identity $e^{A+B}=e^Ae^B$ to get $\cos(A+B)=1/2(e^{i(A+B)}+e^{-i(A+B)})=1/2(e^{iA}e^{iB}+e^{-iA}e^{-iB})=$ $1/4[(e^{iA}e^{iB}+e^{-iA}e^{-iB}+e^{iA}e^{-iB}+e^{-iA}e^{iB})+(e^{iA}e^{iB}+e^{-iA}e^{-iB}-e^{iA}e^{-iB}-e^{-iA}e^{iB})]=$ $=\cos(A)\cos(B)-\sin(A)\sin(B)$ So all we've got to prove is that identity when $AB=BA$. This is done as follows:
Observe that in the power series expansion $I+A+B+1/2!(A+B)^2+1/3!(A+B)^3+...$ of $e^{A+B}$, if we expand out the powers of $A+B$ there are only a finite number of terms of any fixed degree $n$, where $n$ is the sum of the power of $A$ and the power of $B$. Similarly, in the product of power series $e^Ae^B=(I+A+(1/2!)A^2+...)(I+B+(1/2!)B^2+...)$ we can't get any more terms of degree $n$ once we're multiplying terms of degree $n+1$ or higher from either multiplicand.
So verifying $e^{A+B}=e^Ae^B$ reduces to finite verifications that the part of each power series of degree $n$ equals that part of the other. For instance, the degree 0 parts are both $I$, since in the product the only two matrices I can multiply to get $I$ are $I$ from the left and $I$ from the right. Let's look at a higher degree, say, 3. We have $(1/3!)(A+B)^3=(1/3!)(A^3+AB^2+BAB+B^2A+A^2B+ABA+BA^2+B^3)$ while the degree-3 part of $e^Ae^B$ is $(1/3!)IB^3+(1/2!)AB^2+(1/2!)A^2B+(1/3!)A^3I$ Now we see why the hypothesis $AB=BA$ matters: in general these two expressions aren't equal at all! But using commutation we can collect, for instance, $AB^2,BAB,$ and $B^2A$ all together, and we see that in fact the two power series do agree on their degree-3 parts.
To carry out the proof for general $n$ is essentially just to point out that since $A$ and $B$ commute, the standard binomial theorem applies for $(A+B)^n$, and that in the expansion of $e^Ae^B$ we get the binomial coefficients.
$ \cos(A+B)=\frac{1}{2}(e^{i(A+B)}+e^{-i(A+B)})\\ $ and $ \cos(A)\cos(B)=\frac{1}{4}(e^{i(A+B)}+e^{i(A-B)}+e^{i(B-A)}+e^{-i(A+B)})\\ $ and $ \sin(A)\sin(B)=\frac{-1}{4}(e^{i(A+B)}-e^{i(A-B)}-e^{i(B-A)}+e^{-i(A+B)})\\ $ so $ \therefore \cos(A)\cos(B)-\sin(A)\sin(B)=\frac{1}{2}e^{i(A+B)}+\frac{1}{2}e^{-i(A+B)} $