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September 11, 2026
How to Assess Students Knowledge in the Age of AI
A researcher at HSE University has proposed a flowchart to help lecturers decide how to assess students who use artificial intelligence. It shows where the use of AI should be restricted and where it can be incorporated into the learning process. The article has been published in IT Professional.
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Application of Kalman Filter with alpha-stable distibution

P. 419–427.
Mozgunov P.

In this paper we consider the behavior of Kalman Filter state estimates in the case of distribution with heavy tails .The simulated linear state space models with Gaussian measurement noises were used. Gaussian noises in state equation are replaced by components with alpha-stable distribution with different parameters alpha and beta. We consider the case when "all parameters are known" and two methods of parameters estimation are compared: the maximum likelihood estimator (MLE) and the expectation- maximization algorithm (EM). It was shown that in cases of large deviation from Gaussian distribution the total error of states estimation rises dramatically. We conjecture that it can be explained by underestimation of the state equation noises covariance matrix that can be taken into account through the EM parameters estimation and ignored in the case of ML estimation.

Language: English
Full text
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Keywords: EM-алгоритмEM-algorithmKalman filterфильтр КалманаAlpha-stable distibutionHeavy-tailed distibutionsАльфа-устойчивое распределениеРаспределение с тяжелыми хвостами
Publication based on the results of:
Стохастические и функционально-аналитические методы в исследовании сложных динамических процессов в экономике (2014)

In book

COMPSTAT 2014. 21st International Conference on Computational Statistics hosting the 5th IASC World Conference. Geneva, Switzerland, August 19–22, 2014. Book of Abstracts
Geneva: [б.и.], 2014.
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