Congestion-free routing on quantum chips
Mithilesh Kumar, Yusuf Tahir, Varun Daiya, Sanjana Mattaparthi, Aarav Shaurya

TL;DR
This paper introduces a swap-free routing framework for quantum chips using spectral qudits to reduce congestion and overhead in nonlocal quantum gate implementation.
Contribution
It proposes a novel spectral qudit routing algebra that enables congestion relief and efficient multi-control operations without moving the computational state.
Findings
Exact congestion relief requires local Hilbert-space expansion.
Routing primitives are reduced from 3L to 2L+1 for nonlocal operations.
Simulations confirm correctness and reduced crosstalk in quantum circuits.
Abstract
Limited connectivity makes nonlocal quantum gates expensive on near-neighbor hardware, where compilation typically relies on SWAP transport, inheriting both depth overhead and path congestion. We present a swap-free routing framework in which higher levels of a qudit act as orthogonal spectral buses that transport control information without moving the computational state. We show that exact congestion relief in nearest-neighbor architectures requires local Hilbert-space expansion. In this model, a nonlocal operation over a path of length requires logical routing primitives, compared to the baseline. Overlapping routes remain distinguishable through bus labels encoded in the same physical qudits. This routing algebra extends to Boolean fan-in at a common target: multiple controls arriving on distinct buses trigger a local unitary based on an arbitrary Boolean function of…
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