Page 82 - 《武汉大学学报(信息科学版)》2025年第9期
P. 82
1810 武 汉 大 学 学 报 (信 息 科 学 版) 2025 年 9 月
42(1):68-80.
参 考 文 献
LI Yanni, LI Peng, WU Xiao, et al. Tempo-Spa⁃
[1] 郎芹, 牛振国, 洪孝琪, 等 . 青藏高原湿地遥感监 tial Variation of Wetlands at the Yellow River Mouth
and Its Control Factors[J]. Marine Geology & Qua⁃
测与变化分析[J]. 武汉大学学报(信息科学版),
ternary Geology, 2022, 42(1):68-80.
2021, 46(2): 230-237.
[8] 张磊,宫兆宁,王启为,等 . Sentinel-2 影像多特征优
LANG Qin, NIU Zhenguo, HONG Xiaoqi, et al.
选 的 黄 河 三 角 洲 湿 地 信 息 提 取[J]. 遥 感 学 报 ,
Remote Sensing Monitoring and Change Analysis of
Wetlands in the Tibetan Plateau[J]. Geomatics and 2019,23(2):313-326.
Information Science of Wuhan University, 2021, 46 ZHANG Lei, GONG Zhaoning, WANG Qiwei, et
(2): 230-237. al. Wetland Mapping of Yellow River Delta Wet⁃
[2] 李鹏,黎达辉,李振洪,等 . 黄河三角洲地区 GF-3 lands Based on Multi-Feature Optimization of Senti⁃
雷达数据与 Sentinel-2 多光谱数据湿地协同分类研 nel-2 Images[J]. Journal of Remote Sensing, 2019,
究[J]. 武汉大学学报(信息科学版),2019,44(11): 23(2): 313–326.
1641-1649. [9] 宗影,李玉凤,刘红玉 . 基于面向对象随机森林方法
的滨海湿地植被分类研究[J]. 南京师范大学学报
LI Peng, LI Dahui, LI Zhenhong, et al. Wetland
Classification Through Integration of GF-3 SAR (工程技术版),2021,21(4):47-55.
and Sentinel-2B Multispectral Data over the Yellow ZONG Ying, LI Yufeng, LIU Hongyu. A Study of
River Delta[J]. Geomatics and Information Science Coastal Wetland Vegetation Classification Based on
Object-Oriented Random Forest Method[J]. Jour⁃
of Wuhan University, 2019,44(11):1641-1649.
[3] 王仁卿, 张煜涵, 孙淑霞, 等 . 黄河三角洲植被研 nal of Nanjing Normal University (Engineering and
究回顾与展望[J]. 山东大学学报(理学版), 2021, Technology Edition), 2021,21(4):47-55.
56(10): 135-148. [10] ZHANG C, GONG Z N, QIU H C, et al. Map⁃
WANG Renqing, ZHANG Yuhan, SUN Shuxia, et ping Typical Salt-Marsh Species in the Yellow
al. Review and Prospect of Vegetation Research in the River Delta Wetland Supported by Temporal-Spa⁃
Yellow River Delta [J]. Journal of Shandong Uni⁃ tial-Spectral Multidimensional Features[J]. Science
versity (Natural Science), 2021, 56(10):135-148. of the Total Environment, 2021, 783: 147061.
[4] 邹雨函,李雪,张馨,等 . 黄河口新生湿地植物群落组 [11] LIU Q S, HUANG C, LI H. Mapping Plant Com⁃
成和结构[J]. 生态学杂志,2024,43(11):3240-3245. munities Within Quasi-Circular Vegetation Patches
ZOU Yuhan, LI Xue, ZHANG Xin, et al. Plant Using Tasseled Cap Brightness, Greenness, and Top⁃
Community Composition and Structure of the Na⁃ soil Grain Size Index Derived from GF-1 Imagery[J].
scent Wetlands of the Yellow River Estuary.[J]. Chi⁃ Earth Science Informatics, 2021, 14(2): 975-984.
nese Journal of Ecology, 2024, 43(11): 3240-3245. [12] 韩月, 柯樱海, 王展鹏, 等 . 资源一号 02D 卫星高
[5] 谢春华, 张帅影, 崔丽珍, 等 . 黄河三角洲地物遥 光谱数据黄河三角洲湿地景观分类[J]. 遥感学报,
感 分 类 研 究 进 展 与 趋 势[J]. 科 学 技 术 与 工 程 , 2023,27(6):1387-1399.
2022, 22(33): 14571-14583. HAN Yue,KE Yinghai,WANG Zhanpeng, et al.
XIE Chunhua, ZHANG Shuaiying, CUI Lizhen, et Classification of the Yellow River Delta Wet⁃
al. Progress and Trend of Remote Sensing Classifi⁃ land Landscape Based on ZY-1 02D Hyperspectral
cation of Land Cover in the Yellow River Delta[J]. Imagery [J]. National Remote Sensing Bulletin,
Science Technology and Engineering, 2022, 22 2023, 27(6): 1387-1399.
(33): 14571-14583. [13] TU C R, LI P, LI Z H, et al. Synergetic Classifica⁃
[6] 张晨宇, 陈沈良, 李鹏, 等 . 现行黄河口保护区典 tion of Coastal Wetlands over the Yellow River Del⁃
型 湿 地 植 被 时 空 动 态 遥 感 监 测[J]. 海 洋 学 报 , ta with GF-3 Full-Polarization SAR and Zhuhai-1
2022, 44(1): 125-136. OHS Hyperspectral Remote Sensing[J]. Remote
ZHANG Chenyu, CHEN Shenliang, LI Peng, et Sensing, 2021, 13(21): 4444.
al. Spatiotemporal Dynamic Remote Sensing Moni⁃ [14] 李岩舟, 何艳洲, 覃锋, 等 . 基于卷积神经网络的
toring of Typical Wetland Vegetation in the Current 互花米草识别研究[J]. 中国农机化学报, 2023, 44
Huanghe River Estuary Reserve[J]. Haiyang Xue⁃ (4): 159-166.
bao, 2022, 44(1): 125-136. LI Yanzhou, HE Yanzhou, QIN Feng, et al. Identi⁃
[7] 李燕妮,李鹏,吴晓,等 . 黄河口湿地时空变化过程 fication of Spartina Alterniflora Based on Convolu⁃
及其主控因素[J]. 海洋地质与第四纪地质,2022, tional Neural Network[J]. Journal of Chinese Agri⁃

