HomeSearchInternational Journal for Uncertainty Quantification

International Journal for Uncertainty Quantification

Begell House Inc. · United States · Est. 2010

ISSN2152-5080eISSN2152-5099
SJR Q1WOS SCIEScopus / SJR
Impact Factor & Quartile · Web of Science (JCR)

✓ Indexed in the Web of Science Core Collection (SCIE) — Clarivate publishes an official Journal Impact Factor and JCR quartile for this journal.

See the official Impact Factor & quartile on the journal’s page ↗

The Impact Factor & JCR quartile are licensed by Clarivate — we link you to the official source instead of reprinting a number that can go out of date. Open metrics below: SCImago Q1. Source: Clarivate Journal Citation Reports.

📊 Standing in its field
Where this journal ranks among others in the same subject area.
Q1
SJR · Scopus
Top 25% in field
Clarivate’s JCR quartile is a separate ranking and may differ
SJR Scorei
0.834
H-Indexi
39
SNIPi
0.673
Total Worksi
530
Total Citationsi
6,660
2yr Mean Citednessi
0.93
Open Impact Factor alternative

Aims & Scope

The International Journal for Uncertainty Quantification disseminates information of permanent interest in the areas of analysis, modeling, design and control of complex systems in the presence of uncertainty. The journal seeks to emphasize methods that cross stochastic analysis, statistical modeling and scientific computing. Systems of interest are governed by differential equations possibly with multiscale features. Topics of particular interest include representation of uncertainty, propagation of uncertainty across scales, resolving the curse of dimensionality, long-time integration for stochastic PDEs, data-driven approaches for constructing stochastic models, validation, verification and uncertainty quantification for predictive computational science, and visualization of uncertainty in high-dimensional spaces. Bayesian computation and machine learning techniques are also of interest for example in the context of stochastic multiscale systems, for model selection/classification, and decision making. Reports addressing the dynamic coupling of modern experiments and modeling approaches towards predictive science are particularly encouraged. Applications of uncertainty quantification in all areas of physical and biological sciences are appropriate.

General Information

Country / RegionUnited States
Primary LanguageEnglish
1st Year Published2010
Annual Volume~ 30 articles / year
StatusActive (last: 2026)
Total Publications530
Publisher OrgBegell House
Visit Journal Website

Submission Info

Peer Review
OA License
OA Rate

Ethics & Quality

COPE Member✗ No
OASPA Member✗ No
Not on Predatory Lists✓ Yes

Think.Check.Submit Compliance

6/11 · 55%
Do you know the journal / publisher?
Begell House Inc.
Does the journal have a website?
✓ Linked
Is the ISSN verified?
2152-5080 / 2152-5099
Indexed in a trusted database?
WoS, Scopus
Peer review process documented?
N/A
Follows ethical publishing standards (COPE)?
N/A
Not on predatory/blacklists?
✓ Clean
Long-term digital preservation?
N/A
Plagiarism detection in place?
N/A
Listed in DOAJ (verified OA)?
N/A
Primary language documented?
English

A twelfth criterion — whether APC fees are clearly disclosed — is not scored here; it is left out of the total rather than counted as a failure. Publication charges appear in the metrics card above.

Based on the Think.Check.Submit framework by DOAJ, COPE & OASPA. All data from verified open sources.

Publication & Citation Trend

Articles published
Citations received
37
145
2019
48
478
2020
36
161
2021
30
215
2022
34
124
2023
33
70
2024
22
6
2025
14
0
2026

Source: OpenAlex · Each year’s green bar = citations earned by that year’s papers, counted to date — so recent years look lower simply because their papers haven’t had time to be cited yet.

SJR Quartile by Discipline

Scimago ranks this journal separately in each subject category — its quartile can differ by discipline.

Control and OptimizationQ1
Discrete Mathematics and CombinatoricsQ1
Modeling and SimulationQ1
Statistics and ProbabilityQ2

Subject Classification

Web of Science Categories

Engineering, MultidisciplinaryMathematics, Interdisciplinary Applications

Scopus Categories

Discrete Mathematics and CombinatoricsControl and OptimizationStatistics and ProbabilityModeling and Simulation

Research Topics (OpenAlex)

Probabilistic and Robust Engineering DesignAdvanced Multi-Objective Optimization AlgorithmsModel Reduction and Neural NetworksGaussian Processes and Bayesian InferenceStructural Health Monitoring TechniquesMulti-Criteria Decision MakingFault Detection and Control SystemsWind and Air Flow StudiesOptimal Experimental Design MethodsSimulation Techniques and Applications

Frequently asked questions about International Journal for Uncertainty Quantification

Is International Journal for Uncertainty Quantification a predatory journal?

PubScope has no integrity flags on record for International Journal for Uncertainty Quantification: it is indexed in Web of Science, Scopus, and is not on DOAJ's withdrawn list. Indexing is a transparency signal, not a guarantee — always confirm fit and policies before submitting.

What is the impact factor of International Journal for Uncertainty Quantification?

International Journal for Uncertainty Quantification is indexed in the Web of Science Core Collection, so Clarivate publishes an official Journal Impact Factor for it (since the 2023 Journal Citation Reports, every Core Collection journal — including Arts & Humanities and Emerging Sources titles — receives one). PubScope links to Clarivate's official source rather than reprinting the number, which can be out of date. Its open 2-year mean citedness is 0.93.

Is International Journal for Uncertainty Quantification indexed in Scopus and Web of Science?

International Journal for Uncertainty Quantification is indexed in Web of Science, Scopus.

What is the aims and scope of International Journal for Uncertainty Quantification?

The International Journal for Uncertainty Quantification disseminates information of permanent interest in the areas of analysis, modeling, design and control of complex systems in the presence of uncertainty. The journal seeks to emphasize methods that cross stochastic analysis, statistical modeling and scientific computing. Systems of interest are governed by differential equations possibly with multiscale features. Topics of particular interest include representation of uncertainty, propagation of uncertainty across scales, resolving the curse of dimensionality, long-time integration for st

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Data updated: 2026-05-22 · Sources: SJR, DOAJ, OpenAlex, WoS, Crossref