- #1
marksman95
- 16
- 2
Hi all.
Sorry about creating this new threat despite existing some others on the same topic.
I have a problem in understanding a very specific step in the mentioned proof.
Let me take the proof given in this link as our guide.
My problem is just at the ending. When it says:
"The region of integration for this last iterated integral is the wedge-shaped region in the (t, τ) plane shown in Figure 12.28. We reverse the order of integration in the integral to get:"
$$F(s)G(s) = \int_0^\infty \left[ \int_0^t f(t)·g(\tau-t)·e^{-st}\; \mathrm{d}\tau\right]\; \mathrm{d}t$$
I don't understand how this reversion gives these limits of integration. How do we get from
$$F(s)G(s) = \int_0^\infty \left[ \int_\tau^\infty f(t)·g(\tau-t)·e^{-st}\; \mathrm{d}t\right]\; \mathrm{d}\tau$$
to there?
Thanks.
Sorry about creating this new threat despite existing some others on the same topic.
I have a problem in understanding a very specific step in the mentioned proof.
Let me take the proof given in this link as our guide.
My problem is just at the ending. When it says:
"The region of integration for this last iterated integral is the wedge-shaped region in the (t, τ) plane shown in Figure 12.28. We reverse the order of integration in the integral to get:"
$$F(s)G(s) = \int_0^\infty \left[ \int_0^t f(t)·g(\tau-t)·e^{-st}\; \mathrm{d}\tau\right]\; \mathrm{d}t$$
I don't understand how this reversion gives these limits of integration. How do we get from
$$F(s)G(s) = \int_0^\infty \left[ \int_\tau^\infty f(t)·g(\tau-t)·e^{-st}\; \mathrm{d}t\right]\; \mathrm{d}\tau$$
to there?
Thanks.
