Scaling Neural Program Synthesis with Distribution-Based Search

Author:

Fijalkow Nathanaël,Lagarde Guillaume,Matricon Théo,Ellis Kevin,Ohlmann Pierre,Potta Akarsh Nayan

Abstract

We consider the problem of automatically constructing computer programs from input-output examples. We investigate how to augment probabilistic and neural program synthesis methods with new search algorithms, proposing a framework called distribution-based search. Within this framework, we introduce two new search algorithms: Heap Search, an enumerative method, and SQRT Sampling, a probabilistic method. We prove certain optimality guarantees for both methods, show how they integrate with probabilistic and neural techniques, and demonstrate how they can operate at scale across parallel compute environments. Collectively these findings offer theoretical and applied studies of search algorithms for program synthesis that integrate with recent developments in machine-learned program synthesizers.

Publisher

Association for the Advancement of Artificial Intelligence (AAAI)

Subject

General Medicine

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. NeuroSynt: A Neuro-symbolic Portfolio Solver for Reactive Synthesis;Lecture Notes in Computer Science;2024

2. Program synthesis algorithm based on context consistency heuristic;International Journal of Machine Learning and Cybernetics;2023-08-01

3. WikiCoder: Learning to Write Knowledge-Powered Code;Model Checking Software;2023

4. DeepSynth: Scaling Neural Program Synthesis with Distribution-based Search;Journal of Open Source Software;2022-10-16

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