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I. Kovács

Northwestern University · US
🔎 Find collaborators in Aerospace Engineering · Materials Chemistry →
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Area of research
Aerospace Engineering · Materials Chemistry
Research interest
Research interests include Aluminum Alloy Microstructure Properties, Microstructure and mechanical properties, Aluminum Alloys Composites Properties, and Bioinformatics and Genomic Networks.
h-index
41
citations
9,231
works
343
NIH funding
primary concept
Physics
email

Recent publications

Bacterial Motility Patterns Vary Smoothly with Spatial Confinement and Disorder
PRX Life 2026cited by 2position: contributordoi
Activity propagation with Hebbian learning
Communications Physics 2026cited by 0position: contributordoi
Universal shape-dependence of quantum entanglement in disordered magnets
New Journal of Physics 2026cited by 0position: contributordoi
Combined topological and spatial constraints are required to capture the structure of neural connectomes.
2025cited by 6position: contributordoi
Path Percolation in Quantum Communication Networks.
2025cited by 1position: contributordoi
Social balance in directed networks
Communications Physics 2025cited by 0position: contributordoi
scDrugPrio: a framework for the analysis of single-cell transcriptomics to address multiple problems in precision medicine in immune-mediated inflammatory diseases
Genome Medicine 2024cited by 14position: middledoi
Unveiling universal aspects of the cellular anatomy of the brain
Communications Physics 2024cited by 13position: contributordoi
Nematode Extracellular Protein Interactome Expands Connections between Signaling Pathways
2024cited by 12position: contributordoi
scDrugPrio: a framework for the analysis of single-cell transcriptomics to address multiple problems in precision medicine in immune-mediated inflammatory diseases.
2024cited by 6position: contributordoi
Proper network randomization is key to assessing social balance.
2024cited by 3position: contributordoi
Quantum entanglement in the multicritical disordered Ising model
Physical Review B 2024cited by 2position: contributordoi
Neuroscience Needs Network Science
Journal of Neuroscience 2023cited by 90position: middledoi
Next-generation large-scale binary protein interaction network for Drosophila melanogaster
Nature Communications 2023cited by 42position: middledoi
Next-generation large-scale binary protein interaction network for Drosophila melanogaster.
2023cited by 33position: contributordoi
Complex quantum network models from spin clusters
Communications Physics 2023cited by 11position: contributordoi
A positive statistical benchmark to assess network agreement.
2023cited by 3position: contributordoi
Random Ising chain in transverse and longitudinal fields: Strong disorder RG study
Condensed Matter Physics 2023cited by 3position: contributordoi
Cluster tomography in percolation
Physical Review Research 2023cited by 3position: contributordoi
Quantum multicritical point in the two- and three-dimensional random transverse-field Ising model
Physical Review Research 2022cited by 9position: contributordoi
Computational Inference of Synaptic Polarities in Neuronal Networks.
2022cited by 3position: contributordoi
Multipartite entanglement in the random Ising chain
Physical Review B 2022cited by 3position: contributordoi
A positive statistical benchmark to assess network agreement
2022cited by 0position: contributordoi
Next-generation large-scale binary protein interaction network for <i>Drosophila</i>
2022cited by 0position: contributordoi
Extreme statistics of the excitations in the random transverse Ising chain
Physical Review Research 2021cited by 7position: contributordoi
Binary interactome models of inner- versus outer-complexome organisation
2021cited by 6position: contributordoi
A reference map of the human binary protein interactome
Nature 2020cited by 1,304position: middledoi
A reference map of the human binary protein interactome.
2020cited by 994position: contributordoi
Uncovering the genetic blueprint of the <i>C. elegans</i> nervous system.
2020cited by 31position: contributordoi
Population boundary across an environmental gradient: Effects of quenched disorder
Physical Review Research 2020cited by 3position: contributordoi

Grants

No grants ingested yet.

Frequent collaborators

· 27 papers (2020–2026)Dae‐Kyum Kim · Roswell Park Comprehensive Cancer Center4 papers (2019–2023)David E. Hill · Knoxville College3 papers (2021–2023)Michael A Calderwood · Brigham and Women's Hospital3 papers (2021–2023) · 3 papers (2021–2023)Frederick P Roth · University of Milano-Bicocca3 papers (2021–2023)Bingjie Hao · Northwestern University3 papers (2023–2024)Helen S. Ansell · Emory University3 papers (2022–2024) · 3 papers (2021–2023)Róbert Juhász · HUN-REN Wigner Research Centre for Physics3 papers (2020–2026)Albert-Ĺaszló Barabási · Brigham and Women's Hospital2 papers (2019–2023)Norbert Perrimon · Harvard University2 papers (2022–2023)Dániel L. Barabási · Harvard University2 papers (2020–2020)F. Iglói · University of Szeged2 papers (2021–2023) · 2 papers (2022–2023)Tong Hao · Affiliated Hospital of Guizhou Medical University2 papers (2021–2023)Stephanie E Mohr · Roche (Switzerland)2 papers (2022–2023)Albert-László Barabási · Dana-Farber Cancer Institute2 papers (2020–2020)Joel S Bader · Sidney Kimmel Comprehensive Cancer Center2 papers (2022–2023)Hong-Wen Tang · Howard Hughes Medical Institute2 papers (2022–2023)
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