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The idea of crack length identification based on the multi-dimensional strain around the crack is proposed in this paper. A finite element model of offshore platform with initial crack is built. Multi-scale strain data and corresponding crack length are used as feature input and output for the machine learning model respectively. The crack length is predicted by gradient boosting regression tree (GBRT) model. Test results show that the value of MSE and R2 can reach 0.0006 and 0.9991, respectively. At the same time, the model is proved to have good anti-interference to noise., authors=LI Yang1,2 , SU Xin1,3 , DAI Tongtong4 , ZHANG Qi1 , HUANG Yi1 , JIA Ziguang3 , authorsList=LI Yang, SU Xin, DAI Tongtong, ZHANG Qi, HUANG Yi, JIA Ziguang, authorCompany=1. School of Naval Architecture and Ocean Engineering, Dalian University of Technology, Dalian 116024, China; 2. China National Offshore Oil Corporation, Beijing 100010, China; 3. 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科技导报
| 专题:海洋工程装备智能化 2024, 42(13): 27-35
基于GBRT模型的海洋平台结构裂纹扩展识别
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李阳1,2 , 苏馨1,3 , 代彤彤4 , 张崎1 , 黄一1 , 贾子光3
作者信息
1. 大连理工大学船舶工程学院, 大连 116024; 2. 中国海洋石油集团有限公司, 北京 100010; 3. 大连理工大学化工海洋与生命学院, 盘锦 124221; 4. 华北电力大学(保定)机械工程系, 保定 071003
Crack extension identification of ocean platform structure by gradient boosting regression tree
Affiliations
出版时间: 2024-07-13
doi: 10.3981/j.issn.1000-7857.2023.09.01363
文章导航
某海洋平台在多次维修中发现在生活楼与甲板连接的角隅处的裂纹有扩展现象,提出了根据裂纹周边多维应变进行裂纹长度识别的思想。搭建了含有初始裂纹的海洋平台有限元模型,以多维应变数据和对应裂纹长度分别作为机器学习模型特征输入与输出,通过梯度回归提升树(GBRT)模型对裂纹长度进行预测。测试结果表明,该模型对裂纹长度预测MSE(均方误差)值可达0.0006,R 2 可达0.9991,且该模型对噪声有良好的抗干扰性。
海洋平台
/
裂纹扩展
/
机器学习
/
GBRT算法
After many times of maintenance of an offshore platform it is found that there is crack propagation at the corner which connects the living building to the deck. The idea of crack length identification based on the multi-dimensional strain around the crack is proposed in this paper. A finite element model of offshore platform with initial crack is built. Multi-scale strain data and corresponding crack length are used as feature input and output for the machine learning model respectively. The crack length is predicted by gradient boosting regression tree (GBRT) model. Test results show that the value of MSE and R2 can reach 0.0006 and 0.9991, respectively. At the same time, the model is proved to have good anti-interference to noise.
ocean platform
/
crack extension
/
machine learning
/
gradient boosting regression tree
李阳, 苏馨, 代彤彤, 张崎, 黄一, 贾子光.
基于GBRT模型的海洋平台结构裂纹扩展识别.
科技导报,
2024
, 42
(13)
: 27
-35
.
DOI: 10.3981/j.issn.1000-7857.2023.09.01363
LI Yang, SU Xin, DAI Tongtong, ZHANG Qi, HUANG Yi, JIA Ziguang.
Crack extension identification of ocean platform structure by gradient boosting regression tree[J].
Science & Technology Review ,
2024
, 42
(13)
: 27
-35
.
DOI: 10.3981/j.issn.1000-7857.2023.09.01363
2024年第42卷第13期
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文章信息
doi: 10.3981/j.issn.1000-7857.2023.09.01363
接收时间:2023-04-06
首发时间:2024-08-01
出版时间:2024-07-13
收稿日期:2023-04-06
修回日期:2023-08-02
https://castjournals.cast.org.cn/joweb/kjdb/CN/10.3981/j.issn.1000-7857.2023.09.01363
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2种不同金属材料的力学参数
科 Family 属数 Number of genus 种数 Number of species 占总种数比例 Percentage of total species (%) 属 Genus 种数 Number of species 占总种数比例 Percentage of total species (%) 鹅膏菌科Amanitaceae 2 11 5.26 鹅膏菌属 Amanita 10 4.78 小菇科 Mycenaceae 2 12 5.74 丝盖伞属 Inocybe 5 2.39 多孔菌科 Polyporaceae 8 14 6.70 蜡蘑属 Laccaria 5 2.39 红菇科 Russulaceae 3 23 11.00 小皮伞属 Marasmius 6 2.87 小菇属 Mycena 11 5.26 光柄菇属 Pluteus 5 2.39 红菇属 Russula 17 8.13 栓菌属 Trametes 5 2.39
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