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Hikaru Inoue
Publication Activity (10 Years)
Years Active: 2011-2022
Publications (10 Years): 14
Top Topics
Data Assimilation
Finite Element
Parallel Computing
High Order
Top Venues
SC
Int. J. High Perform. Comput. Appl.
PASC
BMC Bioinform.
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Publications
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Tsuyoshi Ichimura
,
Kohei Fujita
,
Ryota Kusakabe
,
Kentaro Koyama
,
Sota Murakami
,
Yuma Kikuchi
,
Takane Hori
,
Muneo Hori
,
Hikaru Inoue
,
Takafumi Nose
,
Takahiro Kawashima
,
Maddegedara Lalith
Extreme Scale Earthquake Simulation with Uncertainty Quantification.
SC
(2022)
Tsuyoshi Ichimura
,
Kohei Fujita
,
Kentaro Koyama
,
Ryota Kusakabe
,
Yuma Kikuchi
,
Takane Hori
,
Muneo Hori
,
Lalith Maddegedara
,
Noriyuki Ohi
,
Tatsuo Nishiki
,
Hikaru Inoue
,
Kazuo Minami
,
Seiya Nishizawa
,
Miwako Tsuji
,
Naonori Ueda
152K-computer-node parallel scalable implicit solver for dynamic nonlinear earthquake simulation.
HPC Asia
(2022)
Tsuyoshi Ichimura
,
Kohei Fujita
,
Kentaro Koyama
,
Yuma Kikuchi
,
Ryota Kusakabe
,
Kazuo Minami
,
Hikaru Inoue
,
Seiya Nishizawa
,
Miwako Tsuji
,
Tatsuo Nishiki
,
Muneo Hori
,
Lalith Maddegedara
,
Naonori Ueda
Fast scalable implicit solver with convergence of equation-based modeling and data-driven learning: earthquake city simulation on low-order unstructured finite element.
PASC
(2021)
Jaewoon Jung
,
Chigusa Kobayashi
,
Kento Kasahara
,
Cheng Tan
,
Akiyoshi Kuroda
,
Kazuo Minami
,
Shigeru Ishiduki
,
Tatsuo Nishiki
,
Hikaru Inoue
,
Yutaka Ishikawa
,
Michael Feig
,
Yuji Sugita
New parallel computing algorithm of molecular dynamics for extremely huge scale biological systems.
J. Comput. Chem.
42 (4) (2021)
Kohei Fujita
,
Kentaro Koyama
,
Kazuo Minami
,
Hikaru Inoue
,
Seiya Nishizawa
,
Miwako Tsuji
,
Tatsuo Nishiki
,
Tsuyoshi Ichimura
,
Muneo Hori
,
Lalith Maddegedara
High-fidelity nonlinear low-order unstructured implicit finite-element seismic simulation of important structures by accelerated element-by-element method.
J. Comput. Sci.
49 (2021)
Hisashi Yashiro
,
Koji Terasaki
,
Yuta Kawai
,
Shuhei Kudo
,
Takemasa Miyoshi
,
Toshiyuki Imamura
,
Kazuo Minami
,
Hikaru Inoue
,
Tatsuo Nishiki
,
Takayuki Saji
,
Masaki Satoh
,
Hirofumi Tomita
A 1024-member ensemble data assimilation with 3.5-km mesh global weather simulations.
SC
(2020)
Satoshi Ito
,
Masaaki Yadome
,
Tatsuo Nishiki
,
Shigeru Ishiduki
,
Hikaru Inoue
,
Rui Yamaguchi
,
Satoru Miyano
Virtual Grid Engine: a simulated grid engine environment for large-scale supercomputers.
BMC Bioinform.
(16) (2019)
Lalith Maddegedara
,
Amit Gill
,
Sebastian Poledna
,
Muneo Hori
,
Hikaru Inoue
,
Tomoyuki Noda
,
Toda Koyo
,
Tsuyoshi Ichimura
Distributed Memory Parallel Implementation of Agent-Based Economic Models.
ICCS (2)
(2019)
Satoshi Ito
,
Masaaki Yadome
,
Tatsuo Nishiki
,
Shigeru Ishiduki
,
Hikaru Inoue
,
Rui Yamaguchi
,
Satoru Miyano
Virtual Grid Engine: Accelerating thousands of omics sample analyses using large-scale supercomputers.
BIBM
(2018)
Tsuyoshi Ichimura
,
Kohei Fujita
,
Masashi Horikoshi
,
Larry Meadows
,
Kengo Nakajima
,
Takuma Yamaguchi
,
Kentaro Koyama
,
Hikaru Inoue
,
Akira Naruse
,
Keisuke Katsushima
,
Muneo Hori
,
Lalith Maddegedara
A Fast Scalable Implicit Solver with Concentrated Computation for Nonlinear Time-Evolution Problems on Low-Order Unstructured Finite Elements.
IPDPS
(2018)
Kohei Fujita
,
Tsuyoshi Ichimura
,
Kentaro Koyama
,
Hikaru Inoue
,
Muneo Hori
,
Lalith Maddegedara
Fast and Scalable Low-Order Implicit Unstructured Finite-Element Solver for Earth's Crust Deformation Problem.
PASC
(2017)
Kazuto Ando
,
Mamoru Hyodo
,
Toshitaka Baba
,
Takane Hori
,
Toshihiro Kato
,
Masaru Watanabe
,
Shin'ichi Ichikawa
,
Hisakuni Kitahara
,
Hitoshi Uehara
,
Hikaru Inoue
Parallel-algorithm extension for tsunami and earthquake-cycle simulators for massively parallel execution on the K computer.
Int. J. High Perform. Comput. Appl.
30 (4) (2016)
Takayuki Muranushi
,
Seiya Nishizawa
,
Hirofumi Tomita
,
Keigo Nitadori
,
Masaki Iwasawa
,
Yutaka Maruyama
,
Hisashi Yashiro
,
Yoshifumi Nakamura
,
Hideyuki Hotta
,
Junichiro Makino
,
Natsuki Hosono
,
Hikaru Inoue
Automatic generation of efficient codes from mathematical descriptions of stencil computation.
FHPC@ICFP
(2016)
Takayuki Muranushi
,
Hideyuki Hotta
,
Junichiro Makino
,
Seiya Nishizawa
,
Hirofumi Tomita
,
Keigo Nitadori
,
Masaki Iwasawa
,
Natsuki Hosono
,
Yutaka Maruyama
,
Hikaru Inoue
,
Hisashi Yashiro
,
Yoshifumi Nakamura
Simulations of below-ground dynamics of fungi: 1.184 pflops attained by automated generation and autotuning of temporal blocking codes.
SC
(2016)
Yukihiro Hasegawa
,
Jun-ichi Iwata
,
Miwako Tsuji
,
Daisuke Takahashi
,
Atsushi Oshiyama
,
Kazuo Minami
,
Taisuke Boku
,
Hikaru Inoue
,
Yoshito Kitazawa
,
Ikuo Miyoshi
,
Mitsuo Yokokawa
Performance evaluation of ultra-large-scale first-principles electronic structure calculation code on the K computer.
Int. J. High Perform. Comput. Appl.
28 (3) (2014)
Yasuhiro Idomura
,
Motoki Nakata
,
Susumu Yamada
,
Masahiko Machida
,
Toshiyuki Imamura
,
Tomohiko Watanabe
,
Masanori Nunami
,
Hikaru Inoue
,
Shigenobu Tsutsumi
,
Ikuo Miyoshi
,
Naoyuki Shida
Communication-overlap techniques for improved strong scaling of gyrokinetic Eulerian code beyond 100k cores on the K-computer.
Int. J. High Perform. Comput. Appl.
28 (1) (2014)
Yasuhiro Idomura
,
Motoki Nakata
,
Susumu Yamada
,
Masahiko Machida
,
Toshiyuki Imamura
,
Tomohiko Watanabe
,
Masanori Nunami
,
Hikaru Inoue
,
Shigenobu Tsutsumi
,
Ikuo Miyoshi
,
Naoyuki Shida
Abstract: Communication Overlap Techniques for Improved Strong Scaling of Gyrokinetic Eulerian Code beyond 100k Cores on the K-Computer.
SC Companion
(2012)
Yasuhiro Idomura
,
Motoki Nakata
,
Susumu Yamada
,
Masahiko Machida
,
Toshiyuki Imamura
,
Tomohiko Watanabe
,
Masanori Nunami
,
Hikaru Inoue
,
Shigenobu Tsutsumi
,
Ikuo Miyoshi
,
Naoyuki Shida
Poster: Communication Overlap Techniques for Improved Strong Scaling of Gyrokinetic Eulerian Code beyond 100k Cores on the K-Computer.
SC Companion
(2012)
Yukihiro Hasegawa
,
Jun-ichi Iwata
,
Miwako Tsuji
,
Daisuke Takahashi
,
Atsushi Oshiyama
,
Kazuo Minami
,
Taisuke Boku
,
Fumiyoshi Shoji
,
Atsuya Uno
,
Motoyoshi Kurokawa
,
Hikaru Inoue
,
Ikuo Miyoshi
,
Mitsuo Yokokawa
First-principles calculations of electron states of a silicon nanowire with 100, 000 atoms on the K computer.
SC
(2011)