Time-dependent moments from the heat equation and the transport equation (continued from last week)
Professor Raúl Curto
We present a new connection between the classical theory of full and truncated moment problems and the theory of partial differential equations, as follows. For the classical heat equation \partial_t u = \nu Delta u, with initial data u_0 in S(R^n)$, we first compute the moments $s_\alpha(t) of the unique solution u \in S(R^n). These moments are polynomials
in the time variable, of degree comparable to \alpha, and with coefficients satisfying a recursive relation. This allows us to define the polynomials for any sequence, and prove that they preserve some of the features of the heat kernel.
In the case of moment sequences, the polynomials trace a curve (which we call the heat curve) which remains in the moment cone for positive time, but may wander outside the moment cone for negative time. This provides a description of the boundary points of the moment cone which are also moment sequences. We also study how the determinacy of a moment sequence behaves along the heat curve. Next, we consider the transport equation partial_t u = ax cdot nabla u$, and conduct a similar analysis. Along the way we incorporate several illustrating examples. We show that while partial_t u = nu Delta u + ax cdot nabla u has no explicit solution, the time-dependent moments can be explicitly calculated.
The talk is based on joint work with Philipp di Dio (University of Konstanz, Germany).
To participate in this event virtually via Zoom, go to https://uiowa.zoom.us/j/95316149275.