Journal of Computer Applications ›› 2026, Vol. 46 ›› Issue (2): 354-360.DOI: 10.11772/j.issn.1001-9081.2025020238
• Artificial intelligence • Previous Articles
Jindong HE1,2, Yuxuan JI1, Tianci CHEN1, Hengming XU3, Ji GENG1, Mingsheng CAO1(
), Yuanning LIANG4
Received:2025-03-20
Revised:2025-04-22
Accepted:2025-04-28
Online:2025-05-16
Published:2026-02-10
Contact:
Mingsheng CAO
About author:HE Jindong, born in 1982, Ph. D. candidate, senior engineer. His research interests include network security.Supported by:
何金栋1,2, 及宇轩1, 陈天赐1, 许恒铭3, 耿技1, 曹明生1(
), 梁员宁4
通讯作者:
曹明生
作者简介:何金栋(1982—),男,福建福州人,正高级工程师,博士研究生,主要研究方向:网络安全基金资助:CLC Number:
Jindong HE, Yuxuan JI, Tianci CHEN, Hengming XU, Ji GENG, Mingsheng CAO, Yuanning LIANG. Entity discovery method for non-intelligent sensors by integrating knowledge graph and large models[J]. Journal of Computer Applications, 2026, 46(2): 354-360.
何金栋, 及宇轩, 陈天赐, 许恒铭, 耿技, 曹明生, 梁员宁. 基于知识图谱和大模型的非智能传感器的实体发现方法[J]. 《计算机应用》唯一官方网站, 2026, 46(2): 354-360.
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URL: https://www.joca.cn/EN/10.11772/j.issn.1001-9081.2025020238
| 方法 | F1分数 | 精确率 | 召回率 | 准确率 |
|---|---|---|---|---|
| SVM | 0.758 | 0.818 | 0.718 | 0.718 |
| KNN | 0.445 | 0.824 | 0.312 | 0.343 |
| DT | 0.765 | 0.812 | 0.719 | 0.735 |
| RF | 0.788 | 0.852 | 0.733 | 0.742 |
| HGAT | 0.868 | 0.873 | 0.852 | 0.876 |
| fastGTN | 0.860 | 0.876 | 0.845 | 0.862 |
| MAGNN | 0.858 | 0.869 | 0.848 | 0.872 |
| 本文方法 | 0.947 | 0.961 | 0.934 | 0.962 |
Tab. 1 Performance comparison of experimental methods
| 方法 | F1分数 | 精确率 | 召回率 | 准确率 |
|---|---|---|---|---|
| SVM | 0.758 | 0.818 | 0.718 | 0.718 |
| KNN | 0.445 | 0.824 | 0.312 | 0.343 |
| DT | 0.765 | 0.812 | 0.719 | 0.735 |
| RF | 0.788 | 0.852 | 0.733 | 0.742 |
| HGAT | 0.868 | 0.873 | 0.852 | 0.876 |
| fastGTN | 0.860 | 0.876 | 0.845 | 0.862 |
| MAGNN | 0.858 | 0.869 | 0.848 | 0.872 |
| 本文方法 | 0.947 | 0.961 | 0.934 | 0.962 |
| 参数 | 值 |
|---|---|
| epoch | 13 |
| cutoff_len | 2 048 |
| learning_rate | 5E-5 |
| batch_size | 1 |
| gradient_accumulation | 4/8 |
Tab. 2 Parameter setting
| 参数 | 值 |
|---|---|
| epoch | 13 |
| cutoff_len | 2 048 |
| learning_rate | 5E-5 |
| batch_size | 1 |
| gradient_accumulation | 4/8 |
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