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dlcp2023:proceedings [11/10/2023 10:31] admindlcp2023:proceedings [18/01/2024 16:16] (current) admin
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 ====== Proceedings ====== ====== Proceedings ======
 +
 +**//Jan. 18, 2024//**
 +
 +{{:dlcp2023:final-green.png?100|}} \\ 
 +Вышел номер Вестника МГУ с трудами конференции: [[https://link.springer.com/journal/11972/volumes-and-issues/78-1/supplement]]
 +
 +
 +----
  
 The proceedings of the DLCP2023 conference will be published as a special issue of the journal [[http://vmu.phys.msu.ru/recent|Moscow University Physics Bulletin]] in 2023 in both electronic and paper form. The journal is published in English by [[https://www.springer.com/journal/11972|Springer]] and indexed in the databases [[https://www.webofscience.com|WoS]] and [[https://www.scopus.com|Scopus]] and is included in the Russian index [[https://elibrary.ru/projects/rsci/rsci.pdf|RCSI]] too. The proceedings of the DLCP2023 conference will be published as a special issue of the journal [[http://vmu.phys.msu.ru/recent|Moscow University Physics Bulletin]] in 2023 in both electronic and paper form. The journal is published in English by [[https://www.springer.com/journal/11972|Springer]] and indexed in the databases [[https://www.webofscience.com|WoS]] and [[https://www.scopus.com|Scopus]] and is included in the Russian index [[https://elibrary.ru/projects/rsci/rsci.pdf|RCSI]] too.
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 After blind peer review, all accepted papers will be published in the conference proceedings.  After blind peer review, all accepted papers will be published in the conference proceedings. 
  
-{{:new3.png?48|}}+
 Notification of paper acceptance — <del>September 11, 2023</del> -> <del>September 25, 2023</del> -> <del>September 29, 2023</del>-> **October 05, 2023** Notification of paper acceptance — <del>September 11, 2023</del> -> <del>September 25, 2023</del> -> <del>September 29, 2023</del>-> **October 05, 2023**
  
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 More details can be found at [[http://vmu.phys.msu.ru/recent|journal website]]. More details can be found at [[http://vmu.phys.msu.ru/recent|journal website]].
 +
 +===== Current status =====
 +{{:new3.png?48|}} //Nov.20, 2023//
 +  * Авторам разосланы гранки. Окончательная версия должна поступить в редакцию не позднее **4 декабря 2023г.**
 +  * В конце ноября будут разосланы верстки для окончательной правки.
 +  * DOI статей должны быть известны в начале декабря.
 +  * Желающие могут получить письмо из издательства о принятии статьи в печать. Для этого надо написать мне запрос по электроной почте [[kryukov@theory.sinp.msu.ru]].
 +  * Тексты статей на сайте издательства будут доступны в январе 2024г.
  
  
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 <color red>//**Отправляя статью в сборник трудов авторы дают согласие на ее открытую публикацию в журнале и несут полную ответственность за ее содержание.**//</color> <color red>//**Отправляя статью в сборник трудов авторы дают согласие на ее открытую публикацию в журнале и несут полную ответственность за ее содержание.**//</color>
  
-==== Plenary Reports ====+===== Plenary Reports =====
  
 | **M.I.Petrovskiy**. DEEP LEARNING METHODS FOR THE TASKS OF CREATING "DIGITAL TWINS" FOR TECHNOLOGICAL PROCESSES    || | **M.I.Petrovskiy**. DEEP LEARNING METHODS FOR THE TASKS OF CREATING "DIGITAL TWINS" FOR TECHNOLOGICAL PROCESSES    ||
  
  
-==== Track 1. Machine Learning in Fundamental Physics ====+===== Track 1. Machine Learning in Fundamental Physics =====
  
 | **Ju.Dubenskaya**. Generating Synthetic Images of Gamma-Ray Events for Imaging Atmospheric Cherenkov Telescopes Using Conditional Generative Adversarial Networks || | **Ju.Dubenskaya**. Generating Synthetic Images of Gamma-Ray Events for Imaging Atmospheric Cherenkov Telescopes Using Conditional Generative Adversarial Networks ||
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 | **A.D.Zaborenko**. Novelty Detection Neural Networks for Model-Independent New Physics Search  || | **A.D.Zaborenko**. Novelty Detection Neural Networks for Model-Independent New Physics Search  ||
  
-==== Track 2. Machine Learning in Natural Sciences ====+===== Track 2. Machine Learning in Natural Sciences =====
  
 | **M.Borisov**. Estimating cloud base height from all-sky imagery using artificial neural networks  || | **M.Borisov**. Estimating cloud base height from all-sky imagery using artificial neural networks  ||
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 | **A.V. Vorobev**. Machine learning for diagnostics of space weather effects in the Arctic region  || | **A.V. Vorobev**. Machine learning for diagnostics of space weather effects in the Arctic region  ||
  
-==== Track 3. Modern Machine Learning Methods ====+===== Track 3. Modern Machine Learning Methods =====
  
 | **N.Y.Bykov** / Methods for a Partial Differential Equation Discovery: Application to Physical and Engineering Problems  || | **N.Y.Bykov** / Methods for a Partial Differential Equation Discovery: Application to Physical and Engineering Problems  ||
dlcp2023/proceedings.1697009464.txt.gz · Last modified: 11/10/2023 10:31 by admin