Synergy as a warning sign of transitions: The case of the two-dimensional Ising model
D. Marinazzo, L. Angelini, M. Pellicoro, and S. Stramaglia
Phys. Rev. E 99, 040101(R) (2019) - Published 19 April, 2019
Danh-Tai Hoang, Junghyo Jo, and Vipul Periwal
Phys. Rev. E 99, 042114 (2019) - Published 10 April, 2019
Complex systems, for example in biology or social science, can be viewed as networks of interacting nodes whose behavior can only be partially observed. The challenge is to understand the system’s dynamics based on this partial information. This paper presents a method to estimate the network structure based on the limited available data.
Kalinga Pavan T. Silva, Tahir I. Yusufaly, Prithiviraj Chellamuthu, and James Q. Boedicker
Phys. Rev. E 99, 042409 (2019) - Published 19 April, 2019
In a model biological system composed of bacteria that exchange signals with each other and bacteria that degrade the signals, the authors find a strong dependence of the communication on the concentration of degrader bacteria. The breakdown of the communication network shows behavior that agrees well with that expected for a percolation transition.
Jose Negrete, Jr. and Andrew C. Oates
Phys. Rev. E 99, 042417 (2019) - Published 25 April, 2019
Biological systems show a high degree of precision during development and tissue morphogenesis by creating beautiful fine-grained patterns. The authors propose a model that is analytically solvable, able to reproduce the observed phenomenology, and generates testable predictions.
Mahmoud Fakih, Jean-Yves Delenne, Farhang Radjai, and Thierry Fourcaud
Phys. Rev. E 99, 042903 (2019) - Published 15 April, 2019
The growth of plant roots in soil is just one example of the importance of mechanosensing in biology. In this paper the authors study this process and show how the reaction forces depend on the granular properties of soil and the bending stiffness of the root.
Michael Berhanu, Adrien Guérin, Sylvain Courrech du Pont, Fiona Raoult, Rémi Perrier, and Chloé Michaut
Phys. Rev. E 99, 043102 (2019) - Published 4 April, 2019
Pumping a viscous fluid underneath an elastic sheet will cause the sheet to bulge upward. The liquid pressure is balanced by the sheet’s elasticity as well as gravity. The authors’ experiment shows reasonable agreement with two different theories, and may provide a model for the formation of magma intrusions between layers of rock.
Wolfram Barfuss, Jonathan F. Donges, and Jürgen Kurths
Phys. Rev. E 99, 043305 (2019) - Published 10 April, 2019
Reinforcement learning is a way for an artificial intelligence system to learn by trial and error. This paper presents a deterministic limit of such a learning method, in an environment that changes in time. The method is applied to three well-known learning algorithms.
D. Marinazzo, L. Angelini, M. Pellicoro, and S. Stramaglia
Phys. Rev. E 99, 040101(R) (2019) - Published 19 April, 2019
Pawan Kumar, J. M. Cruz, and P. Parmananda
Phys. Rev. E 99, 040201(R) (2019) - Published 22 April, 2019
Alessandro Loppini, Simonetta Filippi, and H. Eugene Stanley
Phys. Rev. E 99, 040301(R) (2019) - Published 2 April, 2019
Alexandr Malijevský
Phys. Rev. E 99, 040801(R) (2019) - Published 29 April, 2019
Aghil Abed Zadeh, Jonathan Barés, and Robert P. Behringer
Phys. Rev. E 99, 040901(R) (2019) - Published 25 April, 2019
Xiang Fan, P. H. Diamond, and L. Chacón
Phys. Rev. E 99, 041201(R) (2019) - Published 29 April, 2019
Yahui Zhan and Bernie D. Shizgal
Phys. Rev. E 99, 042101 (2019) - Published 1 April, 2019
Chen Wang, Dazhi Xu, Huan Liu, and Xianlong Gao
Phys. Rev. E 99, 042102 (2019) - Published 1 April, 2019
Stella Seah, Stefan Nimmrichter, and Valerio Scarani
Phys. Rev. E 99, 042103 (2019) - Published 2 April, 2019
Jörn Börjes, Hendrik Schawe, and Alexander K. Hartmann
Phys. Rev. E 99, 042104 (2019) - Published 2 April, 2019
G. Francica, J. Goold, and F. Plastina
Phys. Rev. E 99, 042105 (2019) - Published 4 April, 2019
Go Sato, Makiko Konoshima, Takuya Ohwa, Hirotaka Tamura, and Jun Ohkubo
Phys. Rev. E 99, 042106 (2019) - Published 4 April, 2019
Aleksei A. Sokolov, Anton M. Krivtsov, Wolfgang H. Müller, and Elena N. Vilchevskaya
Phys. Rev. E 99, 042107 (2019) - Published 4 April, 2019
Enrique Rodríguez-Fernández and Rodolfo Cuerno
Phys. Rev. E 99, 042108 (2019) - Published 5 April, 2019
Federico Ricci-Tersenghi, Guilhem Semerjian, and Lenka Zdeborová
Phys. Rev. E 99, 042109 (2019) - Published 5 April, 2019
Aklima Khanam, Jonathan A. D. Wattis, and M. Kamrul Hassan
Phys. Rev. E 99, 042110 (2019) - Published 5 April, 2019
Fabio D. A. Aarão Reis and Vaughan R. Voller
Phys. Rev. E 99, 042111 (2019) - Published 8 April, 2019
Jean-François Muzy
Phys. Rev. E 99, 042113 (2019) - Published 10 April, 2019
Danh-Tai Hoang, Junghyo Jo, and Vipul Periwal
Phys. Rev. E 99, 042114 (2019) - Published 10 April, 2019
Complex systems, for example in biology or social science, can be viewed as networks of interacting nodes whose behavior can only be partially observed. The challenge is to understand the system’s dynamics based on this partial information. This paper presents a method to estimate the network structure based on the limited available data.
Elan Stopnitzky, Susanne Still, Thomas E. Ouldridge, and Lee Altenberg
Phys. Rev. E 99, 042115 (2019) - Published 11 April, 2019
Ryusuke Hamazaki and Masahito Ueda
Phys. Rev. E 99, 042116 (2019) - Published 11 April, 2019
Onofre Rojas, Jozef Strečka, Marcelo Leite Lyra, and Sergio Martins de Souza
Phys. Rev. E 99, 042117 (2019) - Published 12 April, 2019
Robert Holyst, Anna Maciołek, Yirui Zhang, Marek Litniewski, Piotr Knychała, Maciej Kasprzak, and Michał Banaszak
Phys. Rev. E 99, 042118 (2019) - Published 15 April, 2019
Chloé Barré, Gregory Page, Julian Talbot, and Pascal Viot
Phys. Rev. E 99, 042119 (2019) - Published 15 April, 2019
M. N. Najafi and Z. Moghadam
Phys. Rev. E 99, 042120 (2019) - Published 15 April, 2019
Cahit Kargı, M. Tahir Naseem, Tomáš Opatrný, Özgür E. Müstecaplıoğlu, and Gershon Kurizki
Phys. Rev. E 99, 042121 (2019) - Published 16 April, 2019
Annalisa Fierro, Antonio Coniglio, and Marco Zannetti
Phys. Rev. E 99, 042122 (2019) - Published 16 April, 2019
Chi Ho Yeung
Phys. Rev. E 99, 042123 (2019) - Published 17 April, 2019
F. Cagnetta, M. R. Evans, and D. Marenduzzo
Phys. Rev. E 99, 042124 (2019) - Published 17 April, 2019
Yao Chen, Xudong Wang, and Weihua Deng
Phys. Rev. E 99, 042125 (2019) - Published 18 April, 2019
Piotr Garbaczewski and Vladimir Stephanovich
Phys. Rev. E 99, 042126 (2019) - Published 18 April, 2019
Changran Liu and Hai Wang
Phys. Rev. E 99, 042127 (2019) - Published 19 April, 2019
Hyun-Myung Chun, Lukas P. Fischer, and Udo Seifert
Phys. Rev. E 99, 042128 (2019) - Published 19 April, 2019
Josey Stevens and Sebastian Deffner
Phys. Rev. E 99, 042129 (2019) - Published 19 April, 2019
Erik Aurell and Federica Montana
Phys. Rev. E 99, 042130 (2019) - Published 19 April, 2019
A. J. Ramirez-Pastor, P. M. Centres, E. E. Vogel, and J. F. Valdés
Phys. Rev. E 99, 042131 (2019) - Published 19 April, 2019
Tomer Asida, Eli Livne, and Baruch Meerson
Phys. Rev. E 99, 042132 (2019) - Published 22 April, 2019
Mobolaji Williams
Phys. Rev. E 99, 042133 (2019) - Published 22 April, 2019
Jordan M. Horowitz and Mehran Kardar
Phys. Rev. E 99, 042134 (2019) - Published 22 April, 2019
Gonzalo Manzano, Ralph Silva, and Juan M. R. Parrondo
Phys. Rev. E 99, 042135 (2019) - Published 23 April, 2019
Mathijs Janssen and Markus Bier
Phys. Rev. E 99, 042136 (2019) - Published 24 April, 2019
Sergio A. Cannas and Daniel A. Stariolo
Phys. Rev. E 99, 042137 (2019) - Published 24 April, 2019
N. Leibovich and E. Barkai
Phys. Rev. E 99, 042138 (2019) - Published 24 April, 2019
Laura Foini and Jorge Kurchan
Phys. Rev. E 99, 042139 (2019) - Published 24 April, 2019
Wenlong Wang, Rogelio Díaz-Méndez, Mats Wallin, Jack Lidmar, and Egor Babaev
Phys. Rev. E 99, 042140 (2019) - Published 25 April, 2019
Denner S. Vieira, Jesus M. E. Riveros, Max Jauregui, and Renio S. Mendes
Phys. Rev. E 99, 042141 (2019) - Published 25 April, 2019
Juzar Thingna, Massimiliano Esposito, and Felipe Barra
Phys. Rev. E 99, 042142 (2019) - Published 26 April, 2019
Bohdan Slavko, Kirill Glavatskiy, and Mikhail Prokopenko
Phys. Rev. E 99, 042143 (2019) - Published 26 April, 2019
Shuai Yang, Liujun Xu, and Jiping Huang
Phys. Rev. E 99, 042144 (2019) - Published 29 April, 2019
Angsar Manatuly, Wolfgang Niedenzu, Ricardo Román-Ancheyta, Barış Çakmak, Özgür E. Müstecaplıoğlu, and Gershon Kurizki
Phys. Rev. E 99, 042145 (2019) - Published 29 April, 2019
M. N. Gonzaga, C. E. Fiore, and M. M. de Oliveira
Phys. Rev. E 99, 042146 (2019) - Published 29 April, 2019
Adrien Wohrer
Phys. Rev. E 99, 042147 (2019) - Published 29 April, 2019
Roberto da Silva and Eduardo V. Stock
Phys. Rev. E 99, 042148 (2019) - Published 29 April, 2019
Aleksander Weron, Joanna Janczura, Ewa Boryczka, Titiwat Sungkaworn, and Davide Calebiro
Phys. Rev. E 99, 042149 (2019) - Published 30 April, 2019
Pengcheng Hou, Sheng Fang, Junfeng Wang, Hao Hu, and Youjin Deng
Phys. Rev. E 99, 042150 (2019) - Published 30 April, 2019
E. Jurčišinová and M. Jurčišin
Phys. Rev. E 99, 042151 (2019) - Published 30 April, 2019
Fabio Miceli, Marco Baldovin, and Angelo Vulpiani
Phys. Rev. E 99, 042152 (2019) - Published 30 April, 2019
Wen-Lei Zhao, Jiaozi Wang, Xiaohui Wang, and Peiqing Tong
Phys. Rev. E 99, 042201 (2019) - Published 3 April, 2019
Zheng Liu, Joshua Leong, Stefan Nimmrichter, and Valerio Scarani
Phys. Rev. E 99, 042202 (2019) - Published 4 April, 2019
Tongfeng Weng, Huijie Yang, Changgui Gu, Jie Zhang, and Michael Small
Phys. Rev. E 99, 042203 (2019) - Published 5 April, 2019
Roman Belousov, Florian Berger, and A. J. Hudspeth
Phys. Rev. E 99, 042204 (2019) - Published 5 April, 2019
M. V. Komissarova, V. F. Marchenko, and P. Yu. Shestakov
Phys. Rev. E 99, 042205 (2019) - Published 8 April, 2019
Weijian Jiao and Stefano Gonella
Phys. Rev. E 99, 042206 (2019) - Published 10 April, 2019
Sebastian Eydam, Igor Franović, and Matthias Wolfrum
Phys. Rev. E 99, 042207 (2019) - Published 12 April, 2019
Patrick Louodop, Robert Tchitnga, Fernando F. Fagundes, Michaux Kountchou, V. Kamdoun Tamba, Carlos L. Pando L., and Hilda A. Cerdeira
Phys. Rev. E 99, 042208 (2019) - Published 18 April, 2019
Vikash Pandey
Phys. Rev. E 99, 042209 (2019) - Published 18 April, 2019
Jingfang Fan, Dong Zhou, Louis M. Shekhtman, Avi Shapira, Rami Hofstetter, Warner Marzocchi, Yosef Ashkenazy, and Shlomo Havlin
Phys. Rev. E 99, 042210 (2019) - Published 19 April, 2019
David Barral, Kamel Bencheikh, Peter J. Olver, Nadia Belabas, and Juan Ariel Levenson
Phys. Rev. E 99, 042211 (2019) - Published 19 April, 2019
David Diego, Kristian Agasøster Haaga, and Bjarte Hannisdal
Phys. Rev. E 99, 042212 (2019) - Published 19 April, 2019
Markus Firmbach, Felix Fritzsch, Roland Ketzmerick, and Arnd Bäcker
Phys. Rev. E 99, 042213 (2019) - Published 19 April, 2019
Gabriel G. Carlo, Leonardo Ermann, and Alejandro M.F. Rivas
Phys. Rev. E 99, 042214 (2019) - Published 22 April, 2019
Eduard O. Yakupov, Andrey A. Polezhaev, Vladimir V. Gubernov, and Taisia P. Miroshnichenko
Phys. Rev. E 99, 042215 (2019) - Published 25 April, 2019
Henrik tom Wörden, Ulrich Parlitz, and Stefan Luther
Phys. Rev. E 99, 042216 (2019) - Published 29 April, 2019
Arūnas Tamaševičius, Skaidra Bumelienė, and Elena Adomaitienė
Phys. Rev. E 99, 042217 (2019) - Published 30 April, 2019
Aditya Tandon, Aiiad Albeshri, Vijey Thayananthan, Wadee Alhalabi, and Santo Fortunato
Phys. Rev. E 99, 042301 (2019) - Published 1 April, 2019
Giacomo Rapisardi, Alex Arenas, Guido Caldarelli, and Giulio Cimini
Phys. Rev. E 99, 042302 (2019) - Published 3 April, 2019
Didier A. Vega-Oliveros, J. A. Méndez-Bermúdez, and Francisco A. Rodrigues
Phys. Rev. E 99, 042303 (2019) - Published 10 April, 2019
Mahdi Hajihashemi and Keivan Aghababaei Samani
Phys. Rev. E 99, 042304 (2019) - Published 12 April, 2019
Huawei Fan, Yafeng Wang, Kai Yang, and Xingang Wang
Phys. Rev. E 99, 042305 (2019) - Published 16 April, 2019
George T. Cantwell and M. E. J. Newman
Phys. Rev. E 99, 042306 (2019) - Published 16 April, 2019
Argha Mondal, Sanjeev Kumar Sharma, Ranjit Kumar Upadhyay, M. A. Aziz-Alaoui, Prosenjit Kundu, and Chittaranjan Hens
Phys. Rev. E 99, 042307 (2019) - Published 17 April, 2019
Ido Tishby, Ofer Biham, Eytan Katzav, and Reimer Kühn
Phys. Rev. E 99, 042308 (2019) - Published 17 April, 2019
M. E. J. Newman, Xiao Zhang, and Raj Rao Nadakuditi
Phys. Rev. E 99, 042309 (2019) - Published 18 April, 2019
Mateusz Wilinski, Piero Mazzarisi, Daniele Tantari, and Fabrizio Lillo
Phys. Rev. E 99, 042310 (2019) - Published 23 April, 2019
Zhaoyang Zhang, Yang Chen, Yuanyuan Mi, and Gang Hu
Phys. Rev. E 99, 042311 (2019) - Published 30 April, 2019
Yiqin Liang, Renlong Yang, Yifan Guo, Chongming Jiang, Lizhi Liu, Yanzi Wan, and Yuanzhi Shao
Phys. Rev. E 99, 042401 (2019) - Published 2 April, 2019
Tim Herfurth and Tatjana Tchumatchenko
Phys. Rev. E 99, 042402 (2019) - Published 2 April, 2019
Takuro Shimaya and Kazumasa A. Takeuchi
Phys. Rev. E 99, 042403 (2019) - Published 12 April, 2019
J. N. MacLaurin and P. A. Robinson
Phys. Rev. E 99, 042404 (2019) - Published 15 April, 2019
Nisha Gupta, Abhishek Chaudhuri, and Debasish Chaudhuri
Phys. Rev. E 99, 042405 (2019) - Published 15 April, 2019
Avik Mondal, Chantal Nguyen, Xiao Ma, Ahmed E. Elbanna, and Jean M. Carlson
Phys. Rev. E 99, 042406 (2019) - Published 18 April, 2019
P. A. Robinson
Phys. Rev. E 99, 042407 (2019) - Published 18 April, 2019
V. P. Shkilev
Phys. Rev. E 99, 042408 (2019) - Published 18 April, 2019
Kalinga Pavan T. Silva, Tahir I. Yusufaly, Prithiviraj Chellamuthu, and James Q. Boedicker
Phys. Rev. E 99, 042409 (2019) - Published 19 April, 2019
In a model biological system composed of bacteria that exchange signals with each other and bacteria that degrade the signals, the authors find a strong dependence of the communication on the concentration of degrader bacteria. The breakdown of the communication network shows behavior that agrees well with that expected for a percolation transition.
Dionysios Georgiadis and Didier Sornette
Phys. Rev. E 99, 042410 (2019) - Published 19 April, 2019
Wei-Xiang Chew, Kazunari Kaizu, Masaki Watabe, Sithi V. Muniandy, Koichi Takahashi, and Satya N. V. Arjunan
Phys. Rev. E 99, 042411 (2019) - Published 19 April, 2019
Sadjad Arzash, Jordan L. Shivers, Albert J. Licup, Abhinav Sharma, and Fred C. MacKintosh
Phys. Rev. E 99, 042412 (2019) - Published 22 April, 2019
Reinaldo García-García, Arthur Genthon, and David Lacoste
Phys. Rev. E 99, 042413 (2019) - Published 22 April, 2019
Stéphanie Portet, Cécile Leduc, Sandrine Etienne-Manneville, and John Dallon
Phys. Rev. E 99, 042414 (2019) - Published 22 April, 2019
Hideyuki Miyahara
Phys. Rev. E 99, 042415 (2019) - Published 22 April, 2019
Jakub Jędrak, Maciej Kwiatkowski, and Anna Ochab-Marcinek
Phys. Rev. E 99, 042416 (2019) - Published 24 April, 2019
Jose Negrete, Jr. and Andrew C. Oates
Phys. Rev. E 99, 042417 (2019) - Published 25 April, 2019
Biological systems show a high degree of precision during development and tissue morphogenesis by creating beautiful fine-grained patterns. The authors propose a model that is analytically solvable, able to reproduce the observed phenomenology, and generates testable predictions.
Hibiki Itoga, Ryota Morikawa, Tsuyoshi Ueta, Takeshi Miyakawa, Yuno Natsume, and Masako Takasu
Phys. Rev. E 99, 042418 (2019) - Published 25 April, 2019
Wolfram Pönisch, Christoph A. Weber, and Vasily Zaburdaev
Phys. Rev. E 99, 042419 (2019) - Published 30 April, 2019
Valentin M. Slepukhin, Maximilian J. Grill, Kei W. Müller, Wolfgang A. Wall, and Alex J. Levine
Phys. Rev. E 99, 042501 (2019) - Published 1 April, 2019
Eduard Benet, Hongtian Zhu, and Franck J. Vernerey
Phys. Rev. E 99, 042502 (2019) - Published 17 April, 2019
D. McDermott, Y. Yang, C. J. Olson Reichhardt, and C. Reichhardt
Phys. Rev. E 99, 042601 (2019) - Published 2 April, 2019
U. Gasser, A. Scotti, and A. Fernandez-Nieves
Phys. Rev. E 99, 042602 (2019) - Published 3 April, 2019
Edilio Lázaro-Lázaro, Jorge Adrián Perera-Burgos, Patrick Laermann, Tatjana Sentjabrskaja, Gabriel Pérez-Ángel, Marco Laurati, Stefan U. Egelhaaf, Magdaleno Medina-Noyola, Thomas Voigtmann, Ramón Castañeda-Priego, and Luis Fernando Elizondo-Aguilera
Phys. Rev. E 99, 042603 (2019) - Published 5 April, 2019
Rijan Maharjan and Eric Brown
Phys. Rev. E 99, 042604 (2019) - Published 8 April, 2019
M. Belovs, M. Brics, and A. Cēbers
Phys. Rev. E 99, 042605 (2019) - Published 10 April, 2019
N. Rojas
Phys. Rev. E 99, 042606 (2019) - Published 11 April, 2019
Paolo Sibani and Carsten Svaneborg
Phys. Rev. E 99, 042607 (2019) - Published 17 April, 2019
Wei-Shan Chiang, Jin-Hong Chen, and Yun Liu
Phys. Rev. E 99, 042801 (2019) - Published 9 April, 2019
Anderson J. Pereira, Sidiney G. Alves, and Silvio C. Ferreira
Phys. Rev. E 99, 042802 (2019) - Published 19 April, 2019
P. Salgado Sánchez, Y. A. Gaponenko, J. Porter, and V. Shevtsova
Phys. Rev. E 99, 042803 (2019) - Published 26 April, 2019
Alexandr Malijevský, Andrew O. Parry, and Martin Pospíšil
Phys. Rev. E 99, 042804 (2019) - Published 30 April, 2019
M. Nascimento, B. Chencarek, A. M. Souza, R. S. Sarthour, B. Coutinho, M. D. Correia, and I. S. Oliveira
Phys. Rev. E 99, 042901 (2019) - Published 3 April, 2019
Javier Brum, Jean Luc Gennisson, Mathias Fink, Arnaud Tourin, and Xiaoping Jia
Phys. Rev. E 99, 042902 (2019) - Published 15 April, 2019
Mahmoud Fakih, Jean-Yves Delenne, Farhang Radjai, and Thierry Fourcaud
Phys. Rev. E 99, 042903 (2019) - Published 15 April, 2019
The growth of plant roots in soil is just one example of the importance of mechanosensing in biology. In this paper the authors study this process and show how the reaction forces depend on the granular properties of soil and the bending stiffness of the root.
E. Nucci, A. Armanini, and M. Larcher
Phys. Rev. E 99, 042904 (2019) - Published 19 April, 2019
Leonardo Gordillo and Edgar Knobloch
Phys. Rev. E 99, 043001 (2019) - Published 17 April, 2019
Julien Chopin and Romildo T. D. Filho
Phys. Rev. E 99, 043002 (2019) - Published 26 April, 2019
Youchuang Chao and Zijing Ding
Phys. Rev. E 99, 043101 (2019) - Published 2 April, 2019
Michael Berhanu, Adrien Guérin, Sylvain Courrech du Pont, Fiona Raoult, Rémi Perrier, and Chloé Michaut
Phys. Rev. E 99, 043102 (2019) - Published 4 April, 2019
Pumping a viscous fluid underneath an elastic sheet will cause the sheet to bulge upward. The liquid pressure is balanced by the sheet’s elasticity as well as gravity. The authors’ experiment shows reasonable agreement with two different theories, and may provide a model for the formation of magma intrusions between layers of rock.
Chad T. Wilson, Timothy L. Hall, Eric Johnsen, Lauren Mancia, Mauro Rodriguez, Jonathan E. Lundt, Tim Colonius, David L. Henann, Christian Franck, Zhen Xu, and Jonathan R. Sukovich
Phys. Rev. E 99, 043103 (2019) - Published 10 April, 2019
Magnus Vartdal and Andreas N. Osnes
Phys. Rev. E 99, 043104 (2019) - Published 16 April, 2019
Pablo D. Ravazzoli, Ingrith Cuellar, Alejandro G. González, and Javier A. Diez
Phys. Rev. E 99, 043105 (2019) - Published 16 April, 2019
Qingming Dong and Amalendu Sau
Phys. Rev. E 99, 043106 (2019) - Published 18 April, 2019
Indrajit Chakraborty
Phys. Rev. E 99, 043107 (2019) - Published 23 April, 2019
Lingxin Zhang, Jing Zhang, and Jian Deng
Phys. Rev. E 99, 043108 (2019) - Published 24 April, 2019
Seyed Aliakbar Mirmohammadi, Mohammadreza Behi, Yixiang Gan, and Luming Shen
Phys. Rev. E 99, 043109 (2019) - Published 26 April, 2019
Makoto Iima, Naoto Yokoyama, and Kei Senda
Phys. Rev. E 99, 043110 (2019) - Published 29 April, 2019
V. F. Kovalev and V. Yu. Bychenkov
Phys. Rev. E 99, 043201 (2019) - Published 2 April, 2019
Y. Zaporozhets, V. Mintsev, V. Fortov, H. Reinholz, G. Röpke, S. Rosmej, and Y. A. Omarbakiyeva
Phys. Rev. E 99, 043202 (2019) - Published 3 April, 2019
M. L. Shmatov
Phys. Rev. E 99, 043203 (2019) - Published 8 April, 2019
Giulia Cozzani, A. Retinò, F. Califano, A. Alexandrova, O. Le Contel, Y. Khotyaintsev, A. Vaivads, H. S. Fu, F. Catapano, H. Breuillard, N. Ahmadi, P.-A. Lindqvist, R. E. Ergun, R. B. Torbert, B. L. Giles, C. T. Russell, R. Nakamura, S. Fuselier, B. H. Mauk, T. Moore, and J. L. Burch
Phys. Rev. E 99, 043204 (2019) - Published 9 April, 2019
Shikha Bhadoria and Naveen Kumar
Phys. Rev. E 99, 043205 (2019) - Published 29 April, 2019
Erico L. Rempel, Tiago F. P. Gomes, Suzana S. A. Silva, and Abraham C.-L. Chian
Phys. Rev. E 99, 043206 (2019) - Published 29 April, 2019
Ze Lei, Werner Krauth, and A. C. Maggs
Phys. Rev. E 99, 043301 (2019) - Published 2 April, 2019
Zeren Yang (杨泽人), Chengwen Zhong (钟诚文), and Congshan Zhuo (卓丛山)
Phys. Rev. E 99, 043302 (2019) - Published 3 April, 2019
Max E. Sorantin, Delia M. Fugger, Antonius Dorda, Wolfgang von der Linden, and Enrico Arrigoni
Phys. Rev. E 99, 043303 (2019) - Published 4 April, 2019
Lachlan J. Gibson, Shu Zhang, Alexander B. Stilgoe, Timo A. Nieminen, and Halina Rubinsztein-Dunlop
Phys. Rev. E 99, 043304 (2019) - Published 8 April, 2019
Wolfram Barfuss, Jonathan F. Donges, and Jürgen Kurths
Phys. Rev. E 99, 043305 (2019) - Published 10 April, 2019
Reinforcement learning is a way for an artificial intelligence system to learn by trial and error. This paper presents a deterministic limit of such a learning method, in an environment that changes in time. The method is applied to three well-known learning algorithms.
Andrew J. Ochoa, Darryl C. Jacob, Salvatore Mandrà, and Helmut G. Katzgraber
Phys. Rev. E 99, 043306 (2019) - Published 15 April, 2019
Xin Xu, Qianshi Wei, Huaping Li, Yuzhang Wang, Yuguo Chen, and Ying Jiang
Phys. Rev. E 99, 043307 (2019) - Published 22 April, 2019
Song Sub Lee and Beom Jun Kim
Phys. Rev. E 99, 043308 (2019) - Published 24 April, 2019
Evangelos Marakis, Matthias C. Velsink, Lars J. Corbijn van Willenswaard, Ravitej Uppu, and Pepijn W. H. Pinkse
Phys. Rev. E 99, 043309 (2019) - Published 25 April, 2019
Chunhua Zhang, Zhaoli Guo, and Hong Liang
Phys. Rev. E 99, 043310 (2019) - Published 30 April, 2019
B. B. L. Witte, G. Röpke, P. Neumayer, M. French, P. Sperling, V. Recoules, S. H. Glenzer, and R. Redmer
Phys. Rev. E 99, 047201 (2019) - Published 24 April, 2019
Carlos Olivares and Celia Anteneodo
Phys. Rev. E 99, 049901 (2019) - Published 17 April, 2019