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Compile by Training: Turning Natural-Language Specifications into Local Neural Functions

arXiv · AI, language, vision and robotics · article · Sep 3, 2026 · UTC

Many recurring text functions are easy to describe but difficult to implement with rules, while calling a large remote model for every input introduces repeated cost, latency, and dependency on a provider. We present compile by training, which turns a natural-language specification into a reusable neural function. At compile time, teacher models generate task-specific examples that are used to train a small adapter for a compact interpreter. The resulting function runs without the teachers and can be stored, versioned, and composed like ordinary software. On FuzzyBench-Hard, a subset on which

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Evidence & attribution

First collected: 2026-09-21T04:31:57.454Z. This is not the publication date.