Lens · field · substrate · the frozen echo — the whole stack
The full stack.
The Jacobi lens sits on top and reads DOWN through the flat field onto the substrate. The excitron falls into the well and latches — freezes a weight. The lens reads that frozen point as a sharp echo; while the excitron is still falling, the read is blurred. The lens reads the memory, not the motion.
LIT — the well is measured curvature (κr²)SPEC — the latch/memristor is a proposed mechanism, illustrated on the real well — not a measured property of the model
stack (top→bottom): [ Jacobi lens — reads down │ field — flat "−" plane (anode) │ excitron — the mass │ substrate — basin well │ cathode — floor, weight freezes ]
drag = orbit · scroll = zoom
the fusion: the translucent sheet on top is the flat field (tangent / spacetime). the excitron's presence curves it into the well below — Wheeler's "mass tells space how to bend." the bottom of the well is the memristor's retained state. latch = write: the excitron falls, slows, and locks (teal→violet when latched). a small kick is restored — the weight is frozen, it snaps back. a hard kick exceeds the write threshold and it escapes to re-latch elsewhere. that's a memristor: persistent, re-writable, threshold-gated. honest: the well is real measured data; the latching dynamics are a proposed mechanism I'm illustrating, not something I measured in the transformer. it answers your earlier question — "what's stored in the gap" — with a candidate: a frozen weight. real WebGL, offline, fails loud.