A Composable Just-In-Time Programming Framework with LLMs and FBP
July 31, 2023 Β· Declared Dead Β· π IEEE Conference on High Performance Extreme Computing
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Authors
Andy Vidan, Lars H. Fiedler
arXiv ID
2308.00204
Category
cs.SE: Software Engineering
Citations
4
Venue
IEEE Conference on High Performance Extreme Computing
Last Checked
4 months ago
Abstract
This paper introduces a computing framework that combines Flow-Based Programming (FBP) and Large Language Models (LLMs) to enable Just-In-Time Programming (JITP). JITP empowers users, regardless of their programming expertise, to actively participate in the development and automation process by leveraging their task-time algorithmic insights. By seamlessly integrating LLMs into the FBP workflow, the framework allows users to request and generate code in real-time, enabling dynamic code execution within a flow-based program. The paper explores the motivations, principles, and benefits of JITP, showcasing its potential in automating tasks, orchestrating data workflows, and accelerating software development. Through a fully implemented JITP framework using the Composable platform, we explore several examples and use cases to illustrate the benefits of the framework in data engineering, data science and software development. The results demonstrate how the fusion of FBP and LLMs creates a powerful and user-centric computing paradigm.
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