Strengthening Recursive Constructions for Zero-Error Shannon Capacity
cs.IT, cs.LG, math.CO, math.IT
Submitted: 2026-08-31
Updated: 2026-08-31
Code: https://github.com/spectra-research/shannon-capacity-lean
License: http://creativecommons.org/licenses/by/4.0/
The gist: The exact Shannon capacity is unknown for every odd cycle beyond the five-cycle C 5, making odd cycles a central open problem in zero-error information theory.
Terminology
Abstract
The exact Shannon capacity is unknown for every odd cycle beyond the five-cycle C 5, making odd cycles a central open problem in zero-error information theory. Improving the known lower bounds requires constructing large independent sets in strong powers of these graphs. Recent AI-assisted work has produced a rapid sequence of improvements: building on the construction of Itty et al., Gao developed a recursive product construction for combining structured independent sets, and Buys, Polak, and Zuiddam (BPZ) subsequently strengthened this through a richer recursion framework. We continue this line of AI-assisted exploration and introduce a heterogeneous refinement of these constructions. The central observation is that the usefulness of an intermediate construction depends not only on the size of its current main independent set, but also on the auxiliary structure it carries into subsequent recursion. Consequently, different parts of that auxiliary structure need not use the same independent set, and different occurrences in a recursion need not use the same intermediate representation. We formalize this for Gao's binary product and derive explicit propagation rules showing how heterogeneous choices strengthen the resulting gadget while leaving its current code size unchanged, then extend the principle to the more general BPZ framework, tailoring constructions to the distinct roles they play within the recursion. Applying these refinements to the seven-cycle C 7, we obtain an independent set in C 7 500 yielding Θ(C 7) 3.25883262, improving the best known lower bound. Beyond the numerical gain, the results illustrate a general principle for recursive zero-error constructions: intermediate structures with the same dimension and current code size can have different downstream value depending on where and how they are used in the recursion.
Sources
- Improved lower bounds for the Shannon capacity of odd cycles
- A Recursive Construction Improving the Lower Bound on the Shannon Capacity of $C_7$
- Lean-verified lower bounds for the Shannon capacity of odd cycles
Related papers
- Clipped Affine Policy: Low-Complexity Near-Optimal Online Power Control for Energy Harvesting Communications over Fading Channels
- Discrepancy for Random Linear Codes
- A New Approach to Code Smoothing Bounds
- Contextual Memory-Enhanced Source Coding for Low-SNR Communications
- Symmetry-Enforced Quadratic Approximate-Degradability Bounds for Noisy Landau-Streater Channels
- Anonymous Shamir's Secret Sharing via Reed-Solomon Codes Against Permutations, Insertions, and Deletions