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Lower Bounds in Algebraic Complexity via Symmetry and Homomorphism Polynomials

  • University of Cambridge

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Abstract

Valiant's conjecture from 1979 asserts that the circuit complexity classes VP and VNP are distinct, meaning that the permanent does not admit polynomial-size algebraic circuits. As it is the case in many branches of complexity theory, the unconditional separation of these complexity classes seems elusive. In stark contrast, the symmetric analogue of Valiant's conjecture has been proven by Dawar and Wilsenach (ICALP 2020): the permanent does not admit symmetric algebraic circuits of polynomial size, while the determinant does. Symmetric algebraic circuits are both a powerful computational model and amenable to proving unconditional lower bounds.

In this paper, we develop a symmetric algebraic complexity theory by introducing symmetric analogues of the complexity classes VP, VBP, and VF called symVP, symVS, and symVF. They comprise polynomials that admit symmetric algebraic circuits, skew circuits, and formulas, respectively, of polynomial orbit size. Having defined these classes, we show unconditionally that symVF ⊊ symVS ⊊ symVP.
To that end, we characterise the polynomials in symVF and symVS as those that can be written as linear combinations of homomorphism polynomials for patterns of bounded treedepth and pathwidth, respectively. This extends a previous characterisation by Dawar, Pago, and Seppelt (ITCS 2026) of symVP. The separation follows via model-theoretic techniques and the theory of homomorphism indistinguishability.

Although symVS and symVP admit strong lower bounds, we are able to show that these complexity classes are rather powerful: They contain homomorphism polynomials which are VBP- and VP-complete, respectively. Vastly generalising previous results, we give general graph-theoretic criteria for homomorphism polynomials and their linear combinations to be VBP-, VP-, or VNP-complete. These conditional lower bounds drastically enlarge the realm of natural polynomials known to be complete for VNP, VP, or VBP. Under the assumption VFPT ≠ VW, we precisely identify the homomorphism polynomials that lie in VP as those whose patterns have bounded treewidth and thereby resolve an open problem posed by Saurabh (2016).
OriginalsprogEngelsk
TitelSTOC '26: Proceedings of the 58th Annual ACM Symposium on Theory of Computing
Antal sider10
ForlagAssociation for Computing Machinery
Publikationsdato9 jun. 2026
Sider631-640
ISBN (Trykt)9798400725364
ISBN (Elektronisk) 979-8-4007-2536-4
DOI
StatusUdgivet - 9 jun. 2026
BegivenhedSTOC '26: 58th Annual ACM Symposium on Theory of Computing - Hilton Salt Lake City Center, Salt Lake City, USA
Varighed: 22 jun. 202627 jun. 2026
Konferencens nummer: 58
https://acm-stoc.org/stoc2026/

Konference

KonferenceSTOC '26: 58th Annual ACM Symposium on Theory of Computing
Nummer58
LokationHilton Salt Lake City Center
Land/OmrådeUSA
BySalt Lake City
Periode22/06/202627/06/2026
Internetadresse
NavnProceedings of the Annual ACM Symposium on Theory of Computing

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