[1] 杜雯翠, 江河. 《长江经济带生态环境保护规划》内涵与实质分析[J]. 环境保护, 2017, 45(17): 51-56. doi: 10.14026/j.cnki.0253-9705.2017.17.026
[2] DI Z, CHANG M, GUO P K, et al. Using real-time data and unsupervised machine learning techniques to study large-scale spatio–temporal characteristics of wastewater discharges and their infuence on surface water quality in the Yangtze River Basin[J]. Water, 2019, 11: 1268. doi: 10.3390/w11061268
[3] 刘柏音, 王维, 刘孝富, 等. 长江流域水环境监测与智慧化管理策略[J]. 中国环境监测, 2022, 38(1): 222-229.
[4] 吴琦. 《长江经济带发展规划纲要》正式印发[J]. 中国商界, 2016(10): 67.
[5] 王依, 杜雯翠, 秋婕. 对进一步推进《长江经济带生态环境保护规划》实施的再思考[J]. 中国环境管理, 2019, 11(4): 86-92. doi: 10.16868/j.cnki.1674-6252.2019.04.086
[6] 中华人民共和国长江保护法[N]. 人民日报, 2020-12-30(013).
[7] 姚瑞华, 王东, 孙宏亮, 等. 长江流域水问题基本态势与防控策略[J]. 环境保护, 2017, 45(19): 46-48. doi: 10.14026/j.cnki.0253-9705.2017.19.011
[8] 刘媛, 谢玲娴, 饶和平. 河长制背景下长江流域分行政区入河污染物总量水质水量同步监测计量研究[J]. 黄冈师范学院学报, 2021, 41(6): 1-8. doi: 10.3969/j.issn.2096-7020.2021.06.001
[9] 朱广伟, 许海, 朱梦圆, 等. 三十年来长江中下游湖泊富营养化状况变迁及其影响因素[J]. 湖泊科学, 2019, 31(6): 1510-1524. doi: 10.18307/2019.0622
[10] 李建. 粪便处理和农业利用与血吸虫病在长江流域的流行: 1905~1949[J]. 长沙电力学院学报(自然科学版), 2006, 21(4): 140-143.
[11] 罗曼. 长江流域部分地区饮用水中二甲基亚硝胺现状及其健康风险评估[D]. 北京: 中国疾病预防控制中心, 2020.
[12] ZHANG J, GUO Q J, DU C J, et al. Quantifying the effect of anthropogenic activities on water quality change in theYangtze River from 1981 to 2019[J]. Journal of Cleaner Production, 2022, 363: 132415. doi: 10.1016/j.jclepro.2022.132415
[13] CHAI Y F, LI Y T, YANG Y P, et al. Influence of climate variability and reservoir operation on streamflow in the Yangtze River[J]. Scientific Reports, 2019, 9: 5060. doi: 10.1038/s41598-019-41583-6
[14] HUANG F, ZHANG N, MA X R, et al. Multiple changes in the hydrologic regime of the Yangtze River and the possible impact of reservoirs[J]. Water, 2016, 8(9): 408. doi: 10.3390/w8090408
[15] 刘文文. 中线工程运行下汉江中下游水质时空变异性研究及污染等级推估[D]. 武汉: 中国地质大学, 2019.
[16] NIU X J, GENG J J, WANG X R, et al. Temporal and spatial distributions of phosphine in Taihu Lake, China.[J]. The Science of the total environment, 2004, 323(1/2/3): 169-178.
[17] LAZNIK M, STÅLNACKE P, GRIMVALL, et al. Riverine input of nutrients to the Gulf of Riga-temporal and spatial variation[J]. Journal of Marine Systems, 1999, 23(1): 11-25.
[18] SMETI E M, GOLFINOPOULOS S K. Characterization of the quality of a surface water resource by multivariate statistical analysis[J]. Analytical Letters, 2016, 49(7): 1032-1039. doi: 10.1080/00032719.2015.1045585
[19] SINGH K P, MALIK A, MOHAN D, et al. Multivariate statistical techniques for the evaluation of spatial and temporal variations in water quality of Gomti River (India)—a case study[J]. Water Research, 2004, 38(18): 3980-3992. doi: 10.1016/j.watres.2004.06.011
[20] LIU L, DONG Y, KONG M, et al. Insights into the long-term pollution trends and sources contributions in Lake Taihu, China using multi-statistic analyses models[J]. Chemosphere, 2019, 242: 125272.
[21] ZHANG H, LI H, YU H, et al. Water quality assessment and pollution source apportionment using multi-statistic and APCS-MLR modeling techniques in Min River Basin, China[J]. Environmental Science and Pollution Research, 2020, 27(2): 41987-42000.
[22] DENG C N, LIU L S, LI H S, et al. A data-driven framework for spatiotemporal characteristics, complexity dynamics, and environmental risk evaluation of river water quality[J]. Science of The Total Environment, 2021, 785: 147134. doi: 10.1016/j.scitotenv.2021.147134
[23] 程兵芬, 张远, 夏瑞, 等. 汉江中下游水质时空变异与驱动因素识别[J]. 环境科学, 2021, 42(9): 4211-4221. doi: 10.13227/j.hjkx.202012074
[24] 王敦球, 武力, 刘慧莹, 等. 湘江永州流域水质时空规律及污染源解析[J]. 桂林理工大学学报, 2021, 41(1): 165-173. doi: 10.3969/j.issn.1674-9057.2021.01.021
[25] 后希康, 张凯, 段平洲, 等. 基于APCS-MLR模型的沱河流域污染来源解析[J]. 环境科学研究, 2021, 34(10): 2350-2357. doi: 10.13198/j.issn.1001-6929.2021.05.30
[26] 殷雪妍, 严广寒, 汪星, 等. 不同水质评价方法在通江湖泊中的适用性——以洞庭湖为例[J]. 环境工程技术学报, 2023, 13(03): 1070-1078.
[27] 谢慧钰, 胡梅, 嵇晓燕, 等. 2011~2019年鄱阳湖水质演化特征及主要污染因子解析[J]. 环境科学, 2022, 43(12): 5585-5597.
[28] DUAN W L, HE B, CHEN Y N, et al. Identification of long-term trends and seasonality in high-frequency water quality data from the Yangtze River basin, China[J]. Plos One, 2018, 13(2): e0188889. doi: 10.1371/journal.pone.0188889
[29] 陈善荣, 何立环, 张凤英, 等. 2016—2019年长江流域水质时空分布特征[J]. 环境科学研究, 2020, 33(5): 1100-1108. doi: 10.13198/j.issn.1001-6929.2020.04.03
[30] LIU S S, FU R, LIU Y, et al. Spatiotemporal variations of water quality and their driving forces in the Yangtze RiverBasin, China, from 2008 to 2020 based on multi-statistical analyses[J]. Environmental Science and Pollution Research, 2022, 29(46): 69388-69401. doi: 10.1007/s11356-022-20667-3
[31] YAO L Q, XU J R, ZHANG L N, et al. Temporal-spatial decomposition computing of regional water intensity for Yangtze River Economic Zone in China based on LMDI model[J]. Sustainable Computing, 2019, 21(MAR.): 119-128.
[32] CHENG L, OPPERMAN J J, TICKNER D, et al. Managing the Three Gorges Dam to Implement Environmental Flows in the Yangtze River[J]. Frontiers in Environmental Science, 2018, 6: 64. doi: 10.3389/fenvs.2018.00064
[33] 赵紫涵, 宋贵生, 赵亮. 秦皇岛外海夏季溶解氧与pH的变化特征分析[J]. 海洋学报, 2020, 42(10): 144-154.
[34] 雷沛, 王超, 张洪, 等. 重庆市重污染次级河流伏牛溪水污染控制与水质改善[J]. 环境工程学报, 2019, 13(1): 95-108. doi: 10.12030/j.cjee.201712099
[35] YOU Q H, FANG N, LIU L L, et al. Effects of land use, topography, climate and socio-economic factors on geographical variation pattern of inland surface water quality in China[J]. PloS One, 2019, 14(6): e0217840. doi: 10.1371/journal.pone.0217840
[36] 邱文婷, 罗镭, 刘孝富, 等. “十三五”期间长江干流沿程水质变化规律[J]. 环境影响评价, 2021, 43(6): 1-9. doi: 10.14068/j.ceia.2021.06.001
[37] 陈国玲. 滇池流域沉水植物对水体氨氮浓度指示作用的研究[D]. 昆明: 云南师范大学, 2017.
[38] 武慧敏, 吕爱锋, 张文翔. 巴音河流域水文干旱对气象干旱的响应[J]. 南水北调与水利科技(中英文), 2022, 20(3): 459-467.
[39] LIU L L, DONG Y C, KONG M, et al. Insights into the long-term pollution trends and sources contributions in Lake Taihu, China using multi-statistic analyses models[J]. Chemosphere, 2020, 242(Mara): 125272.1-125272.10.
[40] 张双圣,刘喜坤,强静,等. 徐州市云龙湖水质评价及污染原因分析[J].水资源保护[J]. 水资源保护, 2017, 33(3): 52-58.
[41] RICHA C, SAUMEN B, BODHADITYA D, et al. High nitrate content in the surface water of Balipara, North Brahmaputra river basin, Sonitpur district, Assam, India: a multivariate approach[J]. Current Science:A Fortnightly Journal of Research, 2016, 110(7): 1350-1360.
[42] 杜展鹏, 王明净, 严长安, 等. 基于绝对主成分-多元线性回归的滇池污染源解析[J]. 环境科学学报, 2020, 40(3): 1130-1137. doi: 10.13671/j.hjkxxb.2019.0358
[43] 叶章蕊. 南平市河流水质时空变异性及综合评价研究[D]. 福州: 福州大学, 2016.
[44] SHAPIRO S S, WILK M B. An analysis of variance test for normality (complete samples)[J]. Biometrika, 1975, 67(3): 215-216.
[45] 国家环境保护总局科技标准司. 地表水环境质量标准: GB 3838-2002[S]. 北京, 国家环境保护总局; 国家质量监督检验检疫总局, 2002.
[46] 杨海毅. 水库pH值异常偏高成因分析及治理与保护探析[J]. 资源节约与环保, 2022(4): 122-125. doi: 10.3969/j.issn.1673-2251.2022.04.033
[47] TANG W Z, PEI Y S, ZHENG H, et al. Twenty years of China's water pollution control: Experiences and challenges[J]. Chemosphere, 2022, 295: 133875.1-133875.9.
[48] PAN X D, TANG L, FENG J J, et al. Experimental research on the degradation coefficient of ammonia nitrogen under different hydrodynamic conditions.[J]. Bulletin of environmental contamination and toxicology, 2020, 104(2): 288-292. doi: 10.1007/s00128-019-02781-0
[49] 景朝霞,夏军,张翔,等. 汉江中下游干流水质状况时空分布特征及变化规律[J]. 环境科学研究, 2019, 32(1): 104-115.
[50] XU J, YIN K D, LEE J H W, et al. Long-term and seasonal changes in nutrients, phytoplankton biomass, and dissolved oxygen in deep bay, Hong Kong[J]. Estuaries and Coasts, 2010, 33(2): 399-416. doi: 10.1007/s12237-009-9213-5
[51] 潘向忠, 高玉蓉, 李佳, 等. 钱塘江杭州段水体中溶解氧现状及其影响因素[J]. 环境保护科学, 2011, 37(4): 13-16. doi: 10.3969/j.issn.1004-6216.2011.04.005
[52] 郭建宁, 卢少勇, 金相灿, 等. 低溶解氧状态下河网区不同类型沉积物的氮释放规律[J]. 环境科学学报, 2010, 30(3): 614-620. doi: 10.13671/j.hjkxxb.2010.03.018
[53] 赵晏慧, 李韬, 黄波, 等. 2016-2020年长江中游典型湖泊水质和富营养化演变特征及其驱动因素[J]. 湖泊科学, 2022, 34(5): 1441-1451. doi: 10.18307/2022.0503
[54] 陈前, 唐文忠, 许妍, 等. 基于溶解氧和耗氧污染物变化的长江流域水质改善过程分析(2008—2018年)[J]. 环境工程学报, 2023, 17(1): 279-287. doi: 10.12030/j.cjee.202210039
[55] 孙家政, 姜红, 孙百兵. 基于显微共聚焦拉曼技术对三种食源性致病菌的快速鉴别研究[J]. 化学通报, 2022, 85(11): 1393-1396.
[56] 陈浩, 靖争, 倪智伟, 等. 基于主成分-聚类分析的南水北调中线干渠水质时空分异规律[J]. 长江科学院院报, 2022, 39(7): 36-44. doi: 10.11988/ckyyb.20210272
[57] 徐华山, 赵同谦, 孟红旗, 等. 河岸带地下水理化指标变化及与洪水的响应关系研究[J]. 环境科学, 2011, 32(3): 632-640. doi: 10.13227/j.hjkx.2011.03.005
[58] 牛宇琛, 孔进, 王薇, 等. 库坝和土地利用状况对河流水质的影响[J]. 南京林业大学学报(自然科学版), 2018, 42(5): 107-112.
[59] 董妍兰, 孙德智, 邱斌. 长江流域四川区域城市水生态环境问题解析及治理对策[J]. 环境工程技术学报, 2023, 13(1): 10-18. doi: 10.12153/j.issn.1674-991X.20210701