Equation 3 · An Optical Fabric Turns Off-Package Memory Into an Extension of the Die
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Here BW is realized, measured random-access bandwidth in bytes per second — not a marketing peak, not a sequential-streaming figure, since random access is what most large-model inference and any pooled-memory workload actually demands — and P is the power, in watts, that a system actually draws to sustain that bandwidth, attributable specifically to the memory-and-fabric subsystem rather than the whole machine. An index above 1 means the optical, unified case delivers more usable bandwidth per unit of energy than wiring the same total capacity to the die’s edge the ordinary way — a real, measurable locality gain, not just a capacity or reach gain. An index at or below 1, once the fabric’s…
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Here BW is realized, measured random-access bandwidth in bytes per second — not a marketing peak, not a sequential-streaming figure, since random access is what most large-model inference and any pooled-memory workload actually demands — and P is the power, in watts, that a system actually draws to sustain that bandwidth, attributable specifically to the memory-and-fabric subsystem rather than the whole machine. An index above 1 means the optical, unified case delivers more usable bandwidth per unit of energy than wiring the same total capacity to the die’s edge the ordinary way — a real, measurable locality gain, not just a capacity or reach gain. An index at or below 1, once the fabric’s own fixed integration overhead — the extra lasers, the photonic-PIC yield cost, the switch silicon itself — is amortized across a realistic deployment scale, is the condition under which “extension of the die” collapses into a more expensive way to get the same joules-per-bit a conventional design already gets, dressed in a bigger address-space number.
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