FORECASTING MODELS THE VOLUME OF OVERDUE DEBT ON LOANS

Dynamics of debt on loans is important characteristic of the development of the real sector of the economy. Growth of arrears indicates negative trend of the economic development of the real sector of the economy. In connection with the above monitoring and forecasting of the volume of the overdue d...

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Main Authors: N. N. Karabutov, V. G. Feklin
Format: Article
Language:Russian
Published: Government of the Russian Federation, Financial University 2017-10-01
Series:Финансы: теория и практика
Subjects:
Online Access:https://financetp.fa.ru/jour/article/view/177
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author N. N. Karabutov
V. G. Feklin
author_facet N. N. Karabutov
V. G. Feklin
author_sort N. N. Karabutov
collection DOAJ
description Dynamics of debt on loans is important characteristic of the development of the real sector of the economy. Growth of arrears indicates negative trend of the economic development of the real sector of the economy. In connection with the above monitoring and forecasting of the volume of the overdue debt has a very importance in the conditions of economic instability. We used the Official statistics of the Central Bank of the Russian Federation to show a steady decline in the share of overdue debt in the period from January 2011 to December 2013, and the change of this trend in the beginning of 2014. Greatest growth of overdue debts since the beginning of 2015, which was a manifestation of the crisis phenomena in the Russian economy.In this article we constructed models for predicting the volume of overdue debt on loans to legal entities and individual entrepreneurs. There was evaluated the predictive properties of the constructed models and showed the advantage of the use of the identification approach to the choice of model structure.
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spelling doaj.art-4382692e6f89459fba696133d3ee41092023-03-13T07:49:25ZrusGovernment of the Russian Federation, Financial UniversityФинансы: теория и практика2587-56712587-70892017-10-010411612110.26794/2587-5671-2015-0-4-116-121214FORECASTING MODELS THE VOLUME OF OVERDUE DEBT ON LOANSN. N. Karabutov0V. G. Feklin1Московский государственный технический университет радиотехники, электроники и автоматикиФинансовый университетDynamics of debt on loans is important characteristic of the development of the real sector of the economy. Growth of arrears indicates negative trend of the economic development of the real sector of the economy. In connection with the above monitoring and forecasting of the volume of the overdue debt has a very importance in the conditions of economic instability. We used the Official statistics of the Central Bank of the Russian Federation to show a steady decline in the share of overdue debt in the period from January 2011 to December 2013, and the change of this trend in the beginning of 2014. Greatest growth of overdue debts since the beginning of 2015, which was a manifestation of the crisis phenomena in the Russian economy.In this article we constructed models for predicting the volume of overdue debt on loans to legal entities and individual entrepreneurs. There was evaluated the predictive properties of the constructed models and showed the advantage of the use of the identification approach to the choice of model structure.https://financetp.fa.ru/jour/article/view/177кредитпросроченная задолженностьпараметрическая идентификациярегрессионная мо- дельлаговые переменныепрогнозирование
spellingShingle N. N. Karabutov
V. G. Feklin
FORECASTING MODELS THE VOLUME OF OVERDUE DEBT ON LOANS
Финансы: теория и практика
кредит
просроченная задолженность
параметрическая идентификация
регрессионная мо- дель
лаговые переменные
прогнозирование
title FORECASTING MODELS THE VOLUME OF OVERDUE DEBT ON LOANS
title_full FORECASTING MODELS THE VOLUME OF OVERDUE DEBT ON LOANS
title_fullStr FORECASTING MODELS THE VOLUME OF OVERDUE DEBT ON LOANS
title_full_unstemmed FORECASTING MODELS THE VOLUME OF OVERDUE DEBT ON LOANS
title_short FORECASTING MODELS THE VOLUME OF OVERDUE DEBT ON LOANS
title_sort forecasting models the volume of overdue debt on loans
topic кредит
просроченная задолженность
параметрическая идентификация
регрессионная мо- дель
лаговые переменные
прогнозирование
url https://financetp.fa.ru/jour/article/view/177
work_keys_str_mv AT nnkarabutov forecastingmodelsthevolumeofoverduedebtonloans
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