Composable Building Blocks for Resilient Asynchronous Code
Frank Tip
Abstract
Asynchronous calls to a network service, database, or language model must cope with transient errors, slow or missing responses, throttling, and atomicity violations. We show how higher-order combinators solve such problems uniformly, including timeouts, retries, rate limiting, caching, reentrant locking, and cancellation. Every combinator maps an async function to another of the same type, so they share a uniform shape and compose by nesting into one expression that implements a program's whole resilience and concurrency policy, leaving its business logic untouched. The same design spans both of JavaScript's native async shapes, promise-returning and async-iterable-returning functions, with one vocabulary of concerns. Solutions exist across the ecosystem but are scattered over differently shaped libraries that are hard to combine. We present case studies where the combinators are used to harden real packages by adding missing resilience or concurrency control and replacing bespoke policy.
Create a lesson
Related papers
ProgramDistill: From Interactive Web Apps to Verifiable Reference-Guided SWE Tasks
Jeonghye Kim, Minseon Kim, Young Jin Kim et al.
Evaluating the Health of Open-Source Smart City Platforms
Rodrigo Bravo Simões, Fernando Brito e Abreu, Vasco Amaral
From Component Snapshots to Lifecycle Traces: Agent-Based Software Composition Analysis
Chaofan Li, Zhengduo Xue, Chengxiang Li et al.
A Study on the Impact of Natural Language Differences in Prompts on Automatic Code Generation Using LLMs
Haruka Tokumasu, Masanari Kondo, Alexander Serebrenik et al.
A Study of the Reliability of Agentic AI-Generated Programs
Ayesha Shafique, Barton P. MIller, Elisa R. Heymann
Relationally Guided Use Case Modeling with LLMs
Guangyu Wang, Bangqi Li, Ji Wu et al.