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Пороговое агрегирование вероятностных ранжировок
С. 3958–3962.
In book
Podinovskiy V. V., Nelyubin A. P. [б.и.], 2024.
Erlygin L., Zholobov V., Baklanova V. et al., , in: 2023 IEEE International Conference on Data Mining Workshops (ICDMW) 1–4 December 2023, Shanghai, China.: Shanghai: IEEE Computer Society, 2023. P. 1247–1258.
Machine learning models play a vital role in time series forecasting. These models, however, often overlook an important element: point uncertainty estimates. Incorporating these estimates is crucial for effective risk management, informed model selection, and decision-making.To address this issue, our research introduces a method for uncertainty estimation. We employ a surrogate Gaussian process regression model. ...
Added: March 20, 2024
Ismagilov R. S., Filippova L., Вестник Московского государственного технического университета им. Н.Э. Баумана. Серия Естественные науки 2017 № 2 С. 12–21
The study examines the problem of approximate integration of multivariable functions. These functions are taken from a space with Gaussian measure. According to it, we calculated the average value of the integral standard deviation from theintegral sum. The paper gives the vanishing order for the standard deviation depending on the parameters that define the integral ...
Added: June 5, 2017
Aleskerov F. T., Boriskova A. M., Pislyakov V. et al., / NRU Higher School of Economics. Series SOC "Sociology". 2016.
An analysis of journals’ rankings based on five commonly used bibliometric indicators (impact factor, article influence score, SNIP, SJR, and H-index) has been conducted. It is shown that despite the high correlation, these single-indicator-based rankings are not identical. Therefore, new approach to ranking academic journals is proposed based on the aggregation of single bibliometric indicators ...
Added: February 19, 2016
Aleskerov F. T., Vladimir V. Pislyakov, Timur V. Vitkup, / NRU Higher School of Economics. Series WP BRP "Economics/EC". 2014. No. 73.
An analysis of journal rankings based on five commonly used bibliometric indicators (impact factor, article influence score, Source Normalized Impact per Paper, SCImago Journal Rank, and the Hirsch index) has been conducted. It is shown that despite a high correlation, these single indicator-based rankings are not identical. Therefore, a new approach to ranking academic journals ...
Added: March 6, 2015