Papers › Efficient multi-prompt evaluation of LLMs

Efficient multi-prompt evaluation of LLMs

27 May 2024arXiv:2405.17202archive 2025-07-28

Felipe Maia Polo, Ronald Xu, Lucas Weber, Mírian Silva, Onkar Bhardwaj, Leshem Choshen, Allysson Flavio Melo de Oliveira, Yuekai Sun, Mikhail Yurochkin

Most popular benchmarks for comparing LLMs rely on a limited set of prompt templates, which may not fully capture the LLMs' abilities and can affect the reproducibility of results on leaderboards. Many recent works empirically verify prompt sensitivity and advocate for changes in LLM evaluation. In this paper, we consider the problem of estimating the performance distribution across many prompt variants instead of finding a single prompt to evaluate with. We introduce PromptEval, a method for estimating performance across a large set of prompts borrowing strength across prompts and examples to produce accurate estimates under practical evaluation budgets. The resulting distribution can be used to obtain performance quantiles to construct various robust performance metrics (e.g., top 95% quantile or median). We prove that PromptEval consistently estimates the performance distribution and demonstrate its efficacy empirically on three prominent LLM benchmarks: MMLU, BIG-bench Hard, and LMentry; for example, PromptEval can accurately estimate performance quantiles across 100 prompt templates on MMLU with a budget equivalent to two single-prompt evaluations. Moreover, we show how PromptEval can be useful in LLM-as-a-judge and best prompt identification applications.

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flatten felipemaiapolo/prompteval/prompteval/dist_evaluation.py official repository ran · honoured contract MIT (permissive) · aa8b6cfacbbfd0f8 · report
get_directories_in_folder felipemaiapolo/prompteval/prompteval/create_data.py official repository ran · our draft was wrong MIT (permissive) · 808a0054b649c466 · report
GenXY felipemaiapolo/prompteval/prompteval/methods.py official repository ran · fixture could not drive it MIT (permissive) · 1bed3809eeec1bf1 · report
LogReg felipemaiapolo/prompteval/prompteval/methods.py official repository ran MIT (permissive) · f37960114012a563 · report
LogisticRegression felipemaiapolo/prompteval/prompteval/methods.py official repository ran MIT (permissive) · 534991b054c80301 · report
StratSample felipemaiapolo/prompteval/prompteval/methods.py official repository ran · our draft was wrong fingerprinted MIT (permissive) · 6f7ca6882da0e53c · report
sigmoid felipemaiapolo/prompteval/prompteval/methods.py official repository ran · honoured contract fingerprinted MIT (permissive) · d4621865e9ec9367 · report
ExtendedRaschModel felipemaiapolo/prompteval/prompteval/methods.py official repository unverified MIT (permissive) · 3415f35b7e297bed · report
PromptEval felipemaiapolo/prompteval/prompteval/methods.py official repository unverified MIT (permissive) · b7aa2a9fc0568d91 · report

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