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The Scaling Properties of Implicit Deductive Reasoning in Transformers

May 5, 2026
Authors: Enrico Vompa, Tanel Tammet
cs.AI

Abstract

We investigate the scaling properties of implicit deductive reasoning over Horn clauses in depth-bounded Transformers. By systematically decorrelating provability from spurious features and enforcing algorithmic alignment, we find that in sufficiently deep models with a bidirectional prefix mask, implicit reasoning approaches explicit CoT performance across graph topologies and problem widths, though CoT remains necessary for depth extrapolation.

PDF22May 9, 2026