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dc.contributor.authorMammadov, R.-
dc.contributor.authorRahimova, E.-
dc.contributor.authorMammadov, G.-
dc.date.accessioned2021-11-05T12:01:56Z-
dc.date.available2021-11-05T12:01:56Z-
dc.date.issued2021-
dc.identifier.citationMammadov, R. Increasing the Reliability of Pattern Recognition by Analyzing the Distribution of Errors in Estimating the Measure of Proximity between Objects / Mammadov R., Rahimova E., Mammadov G. // Pattern Recognition and Information Processing (PRIP'2021) = Распознавание образов и обработка информации (2021) : Proceedings of the 15th International Conference, 21–24 Sept. 2021, Minsk, Belarus / United Institute of Informatics Problems of the National Academy of Sciences of Belarus. – Minsk, 2021. – P. 111–114.ru_RU
dc.identifier.urihttps://libeldoc.bsuir.by/handle/123456789/45836-
dc.description.abstractWhen recognizing similar or close objects in a report, the accuracy of the recognition is very low when the value of the measure of proximity between objects (MPBO) is close to the value of the error that occurs. modern algorithms are preferred instead of emprig dosturlar to improve accuracy in calculating the measure of proximity between objects. The algorithm proposed in previous research work is not effective, although it eliminates problems such as gross error, correlation coefficient, and the presence of a modular sign in formulas. Proposing a new methodology, range analysis was used instead of summarizing the results when calculating parameter values. The advantage of this system is distinguished by error reduction, more accurate recognition and efficiency. The given algorithm was modeled on a computer and the results were obtained. The processing of the results shows that, thanks to the proposed methodology, it is possible to significantly increase the accuracy of the calculation of the measure of the proximity between objects. At this time, it does not affect the running speed of the system.ru_RU
dc.language.isoenru_RU
dc.publisherUIIP NASBru_RU
dc.subjectматериалы конференцийru_RU
dc.subjectconference proceedingsru_RU
dc.subjectpattern recognitionru_RU
dc.subjectmeasurement errorsru_RU
dc.subjectinterval analysisru_RU
dc.subjectcorrelation coefficientru_RU
dc.subjectincrease of accuracyru_RU
dc.subjectre-measurementsru_RU
dc.titleIncreasing the Reliability of Pattern Recognition by Analyzing the Distribution of Errors in Estimating the Measure of Proximity between Objectsru_RU
dc.typeСтатьяru_RU
Appears in Collections:Pattern Recognition and Information Processing (PRIP'2021) = Распознавание образов и обработка информации (2021)

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