cs.AI updates on arXiv.org 10月23日 12:12
AI辅助分布式系统策略设计
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本文研究利用大型语言模型进行随机代码生成和领域特定模拟器中的确定性验证相结合的AI驱动分布式系统策略设计方法。以Bauplan运行时和Eudoxia开源模拟器为案例,将调度器设计视为迭代生成和验证循环,并报告了通过多种模型实现的吞吐量提升。

arXiv:2510.18897v1 Announce Type: cross Abstract: We explore AI-driven distributed-systems policy design by combining stochastic code generation from large language models (LLMs) with deterministic verification in a domain-specific simulator. Using a Function-as-a-Service runtime (Bauplan) and its open-source simulator (Eudoxia) as a case study, we frame scheduler design as an iterative generate-and-verify loop: an LLM proposes a Python policy, the simulator evaluates it on standardized traces, and structured feedback steers subsequent generations. This setup preserves interpretability while enabling targeted search over a large design space. We detail the system architecture and report preliminary results on throughput improvements across multiple models. Beyond early gains, we discuss the limits of the current setup and outline next steps; in particular, we conjecture that AI will be crucial for scaling this methodology by helping to bootstrap new simulators.

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AI 分布式系统 策略设计 模拟器 吞吐量提升
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