遇见数据集

MMRefine

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arXiv2025-09-30 收录
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该数据集是一个旨在评估多模态大型语言模型(MLLMs)在六种不同错误场景下的错误修正能力的基准测试。它将错误分为六类,并提供了关于MLLMs修正性能的深入见解。该基准测试涵盖了多种MLLMs,包括闭源和开源模型,其任务重点是MLLMs中的错误检测与纠正。

This dataset is a benchmark designed to evaluate the error correction capabilities of multimodal large language models (MLLMs) across six distinct error scenarios. It categorizes errors into six classes and provides in-depth insights into the correction performance of MLLMs. This benchmark covers a variety of MLLMs, including both closed-source and open-source models, with its task focusing on error detection and correction in MLLMs.

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