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基于DPNA-CASREL的柑橘病虫害实体关系联合抽取方法

吴叶兰 于宛莹 秦晴 廉小亲 于重重 吴静珠

农业机械学报2026,Vol.57Issue(5):398-406,9.
农业机械学报2026,Vol.57Issue(5):398-406,9.DOI:10.6041/j.issn.1000-1298.2026.05.037

基于DPNA-CASREL的柑橘病虫害实体关系联合抽取方法

Joint Entity-relation Extraction Method for Citrus Diseases and Pests Based on DPNA-CASREL

吴叶兰 1于宛莹 1秦晴 1廉小亲 1于重重 1吴静珠1

作者信息

  • 1. 北京工商大学计算机与人工智能学院,北京 100048
  • 折叠

摘要

Abstract

Aiming at the problems of overlapping triples,the difficulty in extracting nested entities and complex entities in the text data within the field of citrus diseases and pests,a joint extraction method for citrus diseases and pests entity relationships based on dual-pointer network annotation-cascade binary tagging framework for relational triple extraction(DPNA-CASREL)was proposed.By combining the pre-training model robustly optimized BERT pre-training approach with whole word masking and extended training data(RoBERTa-wwm-ext)with the bi-directional long short-term memory(BiLSTM)to construct an encoder,multi-dimensional vector encodings of the text were obtained.According to the semantic characteristics of citrus diseases and pests,a decoding network with dual-pointer network annotation was designed.The multi-level-pointer-network annotation method was introduced in decoding the head entity,and a complex entity labeling strategy was adopted in the decoding network of the tail entity to enhance the model's extraction performance for complex entities.By adopting a complex entity labeling strategy in the tail entity decoding network,the synchronous extraction of entity relationship triples was realized,and the problems of overlapping triples and nested entities were solved.Experimental results on a self-built citrus diseases and pests dataset showed that the precision,recall,and F1-score of the DPNA-CASREL model reached 82.12%,81.97%,and 82.05%,respectively,which was superior to those of other models.Compared with CASREL,the F1-score of the nested and complex entity extraction were improved by 8.16 percentage points and 6.58 percentage points,respectively.This method can effectively solve the problems of entity nesting and unclear entity boundaries.It can provide a basis for citrus diseases and pests knowledge-graph construction and other downstream tasks.

关键词

柑橘病虫害/实体关系联合抽取/双重指针网络标注/嵌套实体/复杂实体

Key words

citrus diseases and pests/joint entity-relation extraction/dual-pointer network annotation/nested entities/complex entities

分类

信息技术与安全科学

引用本文复制引用

吴叶兰,于宛莹,秦晴,廉小亲,于重重,吴静珠..基于DPNA-CASREL的柑橘病虫害实体关系联合抽取方法[J].农业机械学报,2026,57(5):398-406,9.

基金项目

国家重点研发计划项目(2023YFD2101001) (2023YFD2101001)

农业机械学报

1000-1298

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