Reinforcement learning 2021 2022 — различия между версиями

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'''Lecture and seminar 16.11'''
 
'''Lecture and seminar 16.11'''
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*[https://www.dropbox.com/s/wc951vseud1q1p2/Seminar_09_11_RL.pdf?dl=0 '''Seminar 09.11'''], [https://www.dropbox.com/s/2h83vbjgew1inen/Seminar_1_RL.mp4?dl=0 '''Seminar 09.11, Video'''],
  
 
==Homeworks ==
 
==Homeworks ==
 +
*[https://www.dropbox.com/s/k2at9lixvshpcbw/HW_1_RL_2021.pdf?dl=0 '''Homework №1, deadline 14.12.2021, 23:59'''],
  
 
== Projects ==
 
== Projects ==

Версия 14:51, 5 декабря 2021

Lecturers and Seminarists

Lecturer Alexey Naumov [anaumov@hse.ru] T924
Lecturer Denis Belomestny [dbelomestny@hse.ru] T924
Seminarist Sergey Samsonov [svsamsonov@hse.ru] T926
Seminarist Maxim Kaledin [mkaledin@hse.ru] T926

About the course

This page contains materials for Mathematical Foundations of Reinforcement learning course in 2021/2022 year, optional one for 2nd year Master students of the Math of Machine Learning program (HSE and Skoltech).

Grading

The final grade consists of 2 components (each is non-negative real number from 0 to 10, without any intermediate rounding) :

  • OHW for the hometasks
  • OProject for the course project

The formula for the final grade is

  • OFinal = 0.5*OHW + 0.5*OProject

with the usual (arithmetical) rounding rule.

Table with grades

Lectures

Seminars


Recommended literature

Lecture and seminar 09.11

Lecture and seminar 16.11

Homeworks

Projects