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Programming Unikernels in the Large via Functor Driven Development

2019/05/07 by Gabriel Radanne, Radanne, Gabriel, Thomas Gazagnaire +14
Computer Science · #Compiler #Computer science #Dependency (UML) #Distributed computing #Distributed systems and fault tolerance #Executable #FOS: Computer and information sciences #Metaprogramming #Modular design #Operating Systems (cs.OS) #Parallel Computing and Optimization Techniques #Process (computing) #Programming Languages (cs.PL) #Programming language #Security and Verification in Computing #Set (abstract data type) #Software engineering #State (computer science) #cs.OS #cs.PL

paper · pdf · doi:10.48550/arxiv.1905.02529

arxiv created 2019/05/07 · openalex publication_date 2019/05/07 · arxiv updated 2019/05/08 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/06

Abstract

Compiling applications as unikernels allows them to be tailored to diverse execution environments. Dependency on a monolithic operating system is replaced with linkage against libraries that provide specific services. Doing so in practice has revealed a major barrier: managing the configuration matrix across heterogenous execution targets. A realistic unikernel application depends on hundreds of libraries, each of which may place different demands on the different target execution platforms (e.g.,~cryptographic acceleration). We propose a modular approach to structuring large scale codebases that cleanly separates configuration, application and operating system logic. Our implementation is built on the \mirage unikernel framework, using the \ocaml language's powerful abstraction and metaprogramming facilities. Leveraging modules allows us to build many components independently, with only loose coupling through a set of standardised signatures. Components can be parameterized by other components and composed. Our approach accounts for state, dependency ordering, and error management, and our usage over the years has demonstrated significant efficiency benefits by leveraging compiler features such as global link-time optimisation during the configuration process. We describe our application architecture and experiences via some practical applications of our approach, and discuss how library development in \mirage can facilitate adoption in other unikernel frameworks and programming languages.

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