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ej0cl6 avatar

ej0cl6/TextEE

0
View on GitHub↗
60 星标·19 分支·Python·Apache-2.0·5 次浏览khhuang.me/TextEE↗

TextEE

Updates | Datasets | Models | Environment | Running | Results | Website | Paper

Features

  • Evaluation and Benchmarking - Benchmark and reevaluation framework for event extraction tasks.
  • Event Extraction - Benchmark and reevaluation framework for event extraction tasks.
  • In Context Learning - Benchmark and evaluation framework for event extraction tasks.

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常见问题解答

ej0cl6/textee 是做什么的?

Updates | Datasets | Models | Environment | Running | Results | Website | Paper

ej0cl6/textee 的主要功能有哪些?

ej0cl6/textee 的主要功能包括:Evaluation and Benchmarking, Event Extraction, In Context Learning。

ej0cl6/textee 有哪些开源替代品?

ej0cl6/textee 的开源替代品包括: zjunlp/deepke — DeepKE is a knowledge extraction toolkit and framework designed to transform unstructured text into structured… xingyaoww/code4struct — Official repo for paper Code4Struct: Code Generation for Few-Shot Structured Prediction from Natural Language. zhaoyuesun/phee-with-chatgpt — Code for "Leveraging ChatGPT in Pharmacovigilance Event Extraction: An Empirical Study" (EACL 2024). mayubo2333/llm-ie — This is the implementation of filter-then-rerank pipeline in Large Language Model Is Not a Good Few-shot Information… recommenders-team/recommenders — This project is a recommendation system framework designed for building, evaluating, and operationalizing personalized… alirezadir/machine-learning-interviews — This project is a comprehensive machine learning interview guide and technical study resource designed for individuals…

TextEE 的开源替代方案

相似的开源项目,按与 TextEE 的功能重合度排序。
  • xingyaoww/code4structxingyaoww 的头像

    xingyaoww/code4struct

    43在 GitHub 上查看↗

    Official repo for paper Code4Struct: Code Generation for Few-Shot Structured Prediction from Natural Language.

    HTML
    在 GitHub 上查看↗43
  • zhaoyuesun/phee-with-chatgptZhaoyueSun 的头像

    ZhaoyueSun/phee-with-chatgpt

    2在 GitHub 上查看↗

    Code for "Leveraging ChatGPT in Pharmacovigilance Event Extraction: An Empirical Study" (EACL 2024).

    Python
    在 GitHub 上查看↗2
  • mayubo2333/llm-iemayubo2333 的头像

    mayubo2333/LLM-IE

    47在 GitHub 上查看↗

    This is the implementation of filter-then-rerank pipeline in Large Language Model Is Not a Good Few-shot Information Extractor, but a Good Reranker for Hard Samples!. EMNLP'2023 (Findings).

    Python
    在 GitHub 上查看↗47
  • zjunlp/deepkezjunlp 的头像

    zjunlp/DeepKE

    4,433在 GitHub 上查看↗

    DeepKE is a knowledge extraction toolkit and framework designed to transform unstructured text into structured knowledge graphs. It provides a pipeline for identifying and classifying named entities, semantic relations, and events, converting raw datasets into structured triples. The project utilizes large language models as tool callers through a standardized context protocol to drive automated data extraction processes. It supports schema-driven extraction across multiple domains and bilingual text, employing joint entity and relation extraction to identify components in a single structured

    Python
    在 GitHub 上查看↗4,433
查看 TextEE 的所有 30 个替代方案→