Please use this identifier to cite or link to this item: https://repository.sustech.edu/handle/123456789/26681
Title: Comparison Between Gross Errors Detection Methods in Surveying Measurements
Authors: Mohammed Haidar, Khalid Ali
Mohamed Ibrahim, Ahmed
Keywords: gross error,
statistical test
data snooping
redundancy,
quality control
Issue Date: 10-Oct-2021
Publisher: Sudan University of Science and Technology
Citation: Mohammed Haidar Khalid Ali, Ahmed Mohamed Ibrahim, Comparison Between Gross Errors Detection Methods in Surveying Measurements Khalid Ali Mohammed Haidar, Ahmed Mohamed Ibrahim- Journal of Engineering and Computer Sciences (ECS) .- Vol .22 , no,1.- 2021.- article
Abstract: The least squares estimation method is commonly used to process measurements. In practice, redundant measurements are carried out to ensure quality control and to check for errors that could affect the results. Therefore, an insurance of the quality of these measurements is an important issue. Measurement errors of collected data have different levels of influence due to their number, measured accuracy and redundancy. The aim of this paper is to examine the detection of gross error capabilities in vertical control networks using three methods; Global Test, Data Snooping and Tau Test to compare the effectiveness of these three methods. With the least squares’ method, if there are gross errors in the observations, the sizes of the corresponding residuals may not always be larger than for other residuals that do not have gross errors. This makes it difficult to find (detect) it. Therefore, it is not certain that serious errors should be detected by just examining the magnitudes of the residuals alone. These methods are used in conjunction with developed programs to calculate critical values for the distributions (in real time) rather than look for these in statistical tables. The main conclusion reached is that the tau (τ) statistic is the most sensitive to the presence gross error detection; therefore, it is the one recommended to be used in gross error detection.
URI: http://repository.sustech.edu/handle/123456789/26681
Appears in Collections:Volume 22 No. 1

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