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Ensemble-Instruct: Generating Instruction-Tuning Data with a Heterogeneous Mixture of LMs (2310.13961v1)

Published 21 Oct 2023 in cs.CL and cs.AI

Abstract: Using in-context learning (ICL) for data generation, techniques such as Self-Instruct (Wang et al., 2023) or the follow-up Alpaca (Taori et al., 2023) can train strong conversational agents with only a small amount of human supervision. One limitation of these approaches is that they resort to very LLMs (around 175B parameters) that are also proprietary and non-public. Here we explore the application of such techniques to LLMs that are much smaller (around 10B--40B parameters) and have permissive licenses. We find the Self-Instruct approach to be less effective at these sizes and propose new ICL methods that draw on two main ideas: (a) Categorization and simplification of the ICL templates to make prompt learning easier for the LM, and (b) Ensembling over multiple LM outputs to help select high-quality synthetic examples. Our algorithm leverages the 175 Self-Instruct seed tasks and employs separate pipelines for instructions that require an input and instructions that do not. Empirical investigations with different LMs show that: (1) Our proposed method yields higher-quality instruction tuning data than Self-Instruct, (2) It improves performances of both vanilla and instruction-tuned LMs by significant margins, and (3) Smaller instruction-tuned LMs generate more useful outputs than their larger un-tuned counterparts. Our codebase is available at https://github.com/IBM/ensemble-instruct.

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Authors (7)
  1. Young-Suk Lee (17 papers)
  2. Md Arafat Sultan (25 papers)
  3. Yousef El-Kurdi (6 papers)
  4. Tahira Naseem Asim Munawar (1 paper)
  5. Radu Florian (54 papers)
  6. Salim Roukos (41 papers)
  7. Ramón Fernandez Astudillo (29 papers)
Citations (4)
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