Large-scale rainfall monitoring abnormal site screening method

A rainfall monitoring, large-scale technology, applied in the field of meteorology and hydrology, can solve the problems of difficult to guarantee data quality, lack of measurement, difficulty in station operation and maintenance, etc., to improve calculation efficiency and accuracy, improve accuracy and stability, Improve search efficiency

Active Publication Date: 2022-03-25
CHINA INST OF WATER RESOURCES & HYDROPOWER RES
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Problems solved by technology

However, due to the low construction standards of some measuring stations, the operation and maintenance of measuring stations located in hilly areas is difficult, and the data quality is difficult to be guaranteed. There are often situations such as taking large numbers, missing measurements, and missing measurements, and the problems of measuring stations have a strong influence Randomness, it is impractical to completely abandon a station
[0003] In order to effectively use the monitoring data of the stations, it is necessary to find out the stations with accurate monitoring data in different periods from many rainfall monitoring stations and eliminate the stations with problematic data quality. However, most of the current identification methods are highly subjective and misjudge The possibility is very high, and there are great risks in the application of business. First, it is difficult to identify abnormal sites. Second, it is easy to mistake the correct site for abnormal site, which is contrary to the original intention of carrying out abnormal site identification.

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  • Large-scale rainfall monitoring abnormal site screening method
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  • Large-scale rainfall monitoring abnormal site screening method

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Embodiment Construction

[0051] The technical scheme adopted in the present invention is based on methods such as Hampel method, Grubbs criterion, surrounding station analysis method and radar-assisted verification, and establishes a progressive abnormal station screening system, and through K-d tree (K-dimension tree) Advanced data structures and parallel computing methods improve computing efficiency and provide reliable methods for identifying abnormalities in large-scale rainfall monitoring data and making full use of effective information from rainfall monitoring stations.

[0052] A large-scale rainfall monitoring abnormal site screening method, comprising the following steps:

[0053] Step 1. Use the Hampel method to preliminarily determine the reference station based on the annual rainfall observation data;

[0054] Step 2, using the Grubbs criterion to judge the reference station again;

[0055] Step 3. After the reference station is determined, the surrounding station analysis method is use...

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Abstract

The invention relates to a large-scale rainfall monitoring abnormal site screening method. The method comprises the following steps of 1, preliminarily judging a base station based on annual sequence rainfall observation data by adopting a Hampel method; 2, judging the base station again by adopting the Grubbs criterion; 3, after the base station is determined, a surrounding observation station analysis method is adopted to judge abnormal stations based on hourly rainfall monitoring data; and step 4, performing radar-assisted verification on the abnormal site. According to the method, anomaly identification and rapid processing of large-scale rainfall monitoring station data can be realized, the anomaly identification rate is up to 95% or above, and an accurate and reliable basis is provided for rainstorm flood risk prompting and early warning.

Description

technical field [0001] The invention relates to a large-scale rainfall monitoring abnormal station screening method, which belongs to the field of meteorology and hydrology, and is mainly used for providing accurate and reliable rainfall monitoring information for rainstorm and flood risk warning and early warning. Background technique [0002] Rainfall monitoring is an important part of hydrological monitoring, and it is the eyes, ears and staff of storm flood disaster prevention. Since the 21st century, water conservancy departments have increased their support for the construction of automatic monitoring stations, especially through the construction of mountain torrent disaster prevention and control projects, the number of automatic monitoring stations for mountain torrent disasters in the country has reached 132,000, and the average density of automatic rainfall station networks is 38km 2 / station, which is 22 times that of 2006 (6000 stations), the minimum flood report...

Claims

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Application Information

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Patent Type & Authority Applications(China)
IPC IPC(8): G01W1/14
CPCG01W1/14Y02A50/00Y02A90/10Y02A10/40
Inventor 田济扬刘荣华刘含影
Owner CHINA INST OF WATER RESOURCES & HYDROPOWER RES
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