Study on Information Extraction of Water Bodyin Plain RiverNetwork Area Based on Multi-temporalGF-1 Image

High-accuracy extraction of water body information is the base of and the key to the study of the regional water resources utilization. In order to solve the mixture of pixels such as the towns, shadow and bare earth in the extraction of remote sensing information of water body in Plain River Networ...

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Main Authors: LIAO Yubing, ZHOU Feng
Format: Article
Language:zho
Published: Editorial Office of Pearl River 2020-01-01
Series:Renmin Zhujiang
Subjects:
Online Access:http://www.renminzhujiang.cn/thesisDetails#10.3969/j.issn.1001-9235.2020.01.007
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author LIAO Yubing
ZHOU Feng
author_facet LIAO Yubing
ZHOU Feng
author_sort LIAO Yubing
collection DOAJ
description High-accuracy extraction of water body information is the base of and the key to the study of the regional water resources utilization. In order to solve the mixture of pixels such as the towns, shadow and bare earth in the extraction of remote sensing information of water body in Plain River Network Area, based onmulti-temporal GF-1 image, this paper proposes a decision tree model combining the Normalized Differential Vegetation Index (NDVI), Normalized Differential Water Index (NDWI), and near-infrared albedo for water body information extraction, and conducts a study taking the typical plain atthe lower reaches of Yangtze and Huai River.The results show that compared with other methods including single-band threshold and Shadow Water Index (SWI), the multi-temporalspectral information in newly proposed method can effectively eliminate the mixture of pixels such as the towns, shadow and the bare earth, improve the extraction accuracy of smaller water bodies with an overall accuracy of 93% and a Kappa coefficient of 0.85,and reasonably show a spatial distribution of water surface rate with a declining trend from West to East, which could provide a reference for the information extraction of water body in other plains as well.
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institution Kabale University
issn 1001-9235
language zho
publishDate 2020-01-01
publisher Editorial Office of Pearl River
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spelling doaj-art-1c3cc65e6e284aaa8d57bbba46ea09c82025-01-15T02:31:10ZzhoEditorial Office of Pearl RiverRenmin Zhujiang1001-92352020-01-014147651662Study on Information Extraction of Water Bodyin Plain RiverNetwork Area Based on Multi-temporalGF-1 ImageLIAO YubingZHOU FengHigh-accuracy extraction of water body information is the base of and the key to the study of the regional water resources utilization. In order to solve the mixture of pixels such as the towns, shadow and bare earth in the extraction of remote sensing information of water body in Plain River Network Area, based onmulti-temporal GF-1 image, this paper proposes a decision tree model combining the Normalized Differential Vegetation Index (NDVI), Normalized Differential Water Index (NDWI), and near-infrared albedo for water body information extraction, and conducts a study taking the typical plain atthe lower reaches of Yangtze and Huai River.The results show that compared with other methods including single-band threshold and Shadow Water Index (SWI), the multi-temporalspectral information in newly proposed method can effectively eliminate the mixture of pixels such as the towns, shadow and the bare earth, improve the extraction accuracy of smaller water bodies with an overall accuracy of 93% and a Kappa coefficient of 0.85,and reasonably show a spatial distribution of water surface rate with a declining trend from West to East, which could provide a reference for the information extraction of water body in other plains as well.http://www.renminzhujiang.cn/thesisDetails#10.3969/j.issn.1001-9235.2020.01.007GF-1extraction of water body informationdecision treeplain river network area
spellingShingle LIAO Yubing
ZHOU Feng
Study on Information Extraction of Water Bodyin Plain RiverNetwork Area Based on Multi-temporalGF-1 Image
Renmin Zhujiang
GF-1
extraction of water body information
decision tree
plain river network area
title Study on Information Extraction of Water Bodyin Plain RiverNetwork Area Based on Multi-temporalGF-1 Image
title_full Study on Information Extraction of Water Bodyin Plain RiverNetwork Area Based on Multi-temporalGF-1 Image
title_fullStr Study on Information Extraction of Water Bodyin Plain RiverNetwork Area Based on Multi-temporalGF-1 Image
title_full_unstemmed Study on Information Extraction of Water Bodyin Plain RiverNetwork Area Based on Multi-temporalGF-1 Image
title_short Study on Information Extraction of Water Bodyin Plain RiverNetwork Area Based on Multi-temporalGF-1 Image
title_sort study on information extraction of water bodyin plain rivernetwork area based on multi temporalgf 1 image
topic GF-1
extraction of water body information
decision tree
plain river network area
url http://www.renminzhujiang.cn/thesisDetails#10.3969/j.issn.1001-9235.2020.01.007
work_keys_str_mv AT liaoyubing studyoninformationextractionofwaterbodyinplainrivernetworkareabasedonmultitemporalgf1image
AT zhoufeng studyoninformationextractionofwaterbodyinplainrivernetworkareabasedonmultitemporalgf1image