The sequence g_n(t) is defined as g_{n+1}=y_0+\int_{t_0}^t f(s,g_{n}(s))\mathop{ds} where g_0(t)= y_0. Taking the limit as n\to \infty in the expression above yields \begin{align*} g(t)&= y_0 +\lim_{n\to \infty}\int_{t_0}^tf(s,g_n(s))\mathop{ds}\\ &=y_0 +\int_{t_0}^t f(s, \lim_{n\to \infty} g_n(s))\mathop{ds}\\ &= y_0 + \int_{t_0}^t f(s, g(s)) \mathop{ds} &= \end{align*} ...

With the help in the comments, I have solved the problem correctly, and checked it with Mathematica. I'll post my solution here, it might be useful to someone who might stumble upon this post. My ...

I just found out how to calculate this but since I've gone through all the trouble of typing the question, I might ass well post it anyway. Maybe it helps someone else. The answer can be found using CA^{t−1}B ...

Note that b_n=\dfrac{a_n+|a_n|}{2} \;\;(\geqslant 0), \\ c_n=\dfrac{a_n-|a_n|}{2} \;\;(\leqslant 0) and c_n=a_n-b_n. If \sum a_n converges (conditionally) and \sum b_n is convergent ...

These look right to me. Why did you doubt them?

Very nice! The only thing that I can add to this is that I would have dealt with u^4+v^4 in a way which is, I think, simpler than yours. Observe ...