Health Psychology
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SCImago
Q1
WOS
Q1
Impact factor
3.1
SJR
1.150
CiteScore
4.9
Categories
Medicine (miscellaneous)
Psychiatry and Mental Health
Applied Psychology
Areas
Medicine
Psychology
Years of issue
1984-2025
journal names
Health Psychology
HEALTH PSYCHOL
Top-3 citing journals

Annals of Behavioral Medicine
(2889 citations)

Psychology and Health
(2813 citations)

PLoS ONE
(2327 citations)
Top-3 organizations

University of California, Los Angeles
(77 publications)

University of North Carolina at Chapel Hill
(68 publications)

Harvard University
(61 publications)

Harvard University
(6 publications)

University of North Carolina at Chapel Hill
(6 publications)

Virginia Tech
(6 publications)
Top-3 countries
Most cited in 5 years
Found
Publications found: 1063
Q1

The asymptotic behavior of the reciprocal sum of generalized Fibonacci numbers
Li H., Yang K., Yuan P.
<p>Let $ \left(u_n\right)_{n\geq0} $ be the special Lucas $ u $-sequence defined by</p><p><disp-formula> <label/> <tex-math id="FE1"> \begin{document}$ u_{n+2} = Au_{n+1}-Bu_n,\quad u_0 = 0,\, u_1 = 1, $\end{document} </tex-math></disp-formula></p><p>where $ n\geq0 $, $ B = \pm1 $, and $ A $ is an integer such that $ A^2-4B &gt; 0 $. Let</p><p><disp-formula> <label/> <tex-math id="FE2"> \begin{document}$ a_k = \frac{1}{u_{mk}^s},\,\frac{1}{u_{mk}+u_{mk+l}},\,\frac{1}{\sum\nolimits_{i = 0}^l u_{mk+i}},\,\frac{1}{u_{mk}u_{mk+2l}},\,\frac{1}{u_{mk}u_{mk+2l-1}},\,\frac{1}{u_{mk}+C}, $\end{document} </tex-math></disp-formula></p><p>where $ m, \, l $ are positive integers, $ s = 1, 2, 3, 4 $, and $ C $ is any constant. The aim of this paper is to find a form $ g_n $ such that</p><p><disp-formula> <label/> <tex-math id="FE3"> \begin{document}$ \underset{n\to\infty}{\lim}\left(\left(\sum\limits_{k = n}^\infty a_k\right)^{-1}-g_n\right) = 0. $\end{document} </tex-math></disp-formula></p><p>For example, we show that</p><p><disp-formula> <label/> <tex-math id="FE4"> \begin{document}$ \underset{n\to\infty}{\lim}\left(\left( \sum\limits_{k = n}^\infty \frac{1}{u_{mk}}\right)^{-1}-\left(u_{mn}-u_{m(n-1)}\right)\right) = 0. $\end{document} </tex-math></disp-formula></p>
Q1

Analysis of a reaction-diffusion AIDS model with media coverage and population heterogeneity
Zhang X., Zheng T., Luo Y., Liu P.
<p>Considering the influence of population heterogeneity, media coverage and spatial diffusion on disease transmission, this paper investigated an acquired immunodeficiency syndrome (AIDS) reaction-diffusion model with nonlinear incidence rates and media coverage. First, we discussed the positivity and boundedness of system solutions. Then, the basic reproduction number $ \mathcal{R}_0 $ was calculated, and the disease-free equilibrium (DFE), denoted as $ E^0 $, was locally and globally asymptotically stable when $ \mathcal{R}_0 &lt; 1 $. Further, there existed a unique endemic equilibrium (EE), denoted as $ E^* $, which was locally and globally asymptotically stable when $ \mathcal{R}_0 &gt; 1 $ and certain additional conditions were satisfied. In addition, we showed that the disease was uniformly persistent. Finally, the visualization results of the numerical simulations illustrated that: The media coverage was shown to mitigate the AIDS transmission burden in the population by lowering the infection peak and the time required to reach it; a higher awareness conversion rate can effectively reduce the basic reproduction number $ \mathcal{R}_0 $ to curb the spread of AIDS.</p>
Q1

The Crossover strategy integrated Secretary Bird Optimization Algorithm and its application in engineering design problems
Mai X., Zhong Y., Li L.
<p>An improved metaheuristic algorithm called the Crossover strategy integrated Secretary Bird Optimization Algorithm (CSBOA) is proposed in this work for solving real optimization problems. This improved algorithm integrated logistic-tent chaotic mapping initialization, an improved differential mutation operator, and crossover strategies with the Secretary Bird Optimization Algorithm (SBOA) for a better quality solution and faster convergence. To evaluate the performance of CSBOA, two sets of a standard benchmark set, CEC2017 and CEC2022, were applied first. The Wilcoxon rank sum test and Friedman test were also used to statistically compare the proposed CSBOA algorithm with seven common metaheuristics. The comparisons demonstrated that CSBOA is more competitive than other metaheuristic algorithms on most benchmark functions. Additionally, the performance of CSBOA was validated for two challenging engineering design case studies. Comparative results showed that CSBOA provides more accurate solutions than the SBOA and the other seven algorithms, suggesting viability in dealing with real global optimization problems.</p>
Q1

Mechanism- and data-driven algorithms of electrical energy consumption accounting and prediction for medium and heavy plate rolling
Guo Q., Zhou Z., Li J., Jing F.
<p>Energy consumption accounting and prediction in the medium and thick plate rolling process are crucial for controlling costs, improving production efficiency, optimizing equipment management, and enhancing the market competitiveness of enterprises. Starting from the perspective of integrating process mechanism and industrial big data, we overcame the difficulties brought by complex and highly nonlinear coupling of process variables, proposed a rolling power consumption accounting algorithm based on time slicing method, and gave a calculation method for the additional power consumption of the main motor for rough rolling and finishing rolling (auxiliary system power consumption, power loss, main motor power consumption deviation); with the help of SIMS model, forward recursion, and reverse recursion pass rolling force estimation strategies are proposed, and the rated power consumption of the main motor was predicted. Furthermore, a random forest regression model of additional power consumption based on data was established, and then a prediction algorithm for the comprehensive power consumption of billet rolling was given. Experiments showed the effectiveness of the proposed method.</p>
Q1

On exponential decay properties of solutions of the (3 + 1)-dimensional modified Zakharov-Kuznetsov equation
Chong G., He J.
<p>We study here the special decay properties of real solutions to the initial value problem associated with the (3 + 1)-dimensional modified Zakharov-Kuznetsov equation. More precisely, we prove the properties of exponential decay of order $ 3/2 $ above the plane $ x+y+z = 0 $ as time evolves. This property is related with the persistence properties of the solution flow in weighted Sobolev spaces and sharp unique continuation properties of solutions to this problem.</p>
Q1

Maximum principle preserving the unconditionally stable method for the Allen–Cahn equation with a high-order potential
Kim J.
<p>We have presented a maximum principle preserving the unconditionally stable scheme for the Allen–Cahn (AC) equation with a high-order polynomial potential. The proposed method ensures the preservation of the maximum principle, a critical characteristic for accurately modeling phase transitions and maintaining physical consistency in simulations. The proposed method uses an operator splitting technique, a numerical approach that decomposes a complex problem into simpler subproblems, solved sequentially, to improve computational efficiency and stability. The operator splitting method applied to the AC equation yields one nonlinear equation and several linear equations. To solve the nonlinear equation, we applied the frozen coefficient method, which approximates variable coefficients in differential equations by treating them as constants within small regions, simplifies the problem, and enables more efficient numerical solutions. For several linear equations, which are diffusion equations, we applied a fully implicit finite difference scheme to obtain unconditional stability. By using these methods, we achieved unconditional stability for the AC equation. To validate the superior performance of the developed algorithm, we performed computational tests. Computational experiments demonstrated its unconditional stability, particularly in handling high-order polynomial potentials. Furthermore, we highlighted a distinctive feature of the AC equation in modeling phase separation under noisy data conditions.</p>
Q1

The Crossover strategy integrated Secretary Bird Optimization Algorithm and its application in engineering design problems
Mai X., Zhong Y., Li L.
<p>An improved metaheuristic algorithm called the Crossover strategy integrated Secretary Bird Optimization Algorithm (CSBOA) is proposed in this work for solving real optimization problems. This improved algorithm integrated logistic-tent chaotic mapping initialization, an improved differential mutation operator, and crossover strategies with the Secretary Bird Optimization Algorithm (SBOA) for a better quality solution and faster convergence. To evaluate the performance of CSBOA, two sets of a standard benchmark set, CEC2017 and CEC2022, were applied first. The Wilcoxon rank sum test and Friedman test were also used to statistically compare the proposed CSBOA algorithm with seven common metaheuristics. The comparisons demonstrated that CSBOA is more competitive than other metaheuristic algorithms on most benchmark functions. Additionally, the performance of CSBOA was validated for two challenging engineering design case studies. Comparative results showed that CSBOA provides more accurate solutions than the SBOA and the other seven algorithms, suggesting viability in dealing with real global optimization problems.</p>
Q1

The asymptotic behavior of the reciprocal sum of generalized Fibonacci numbers
Li H., Yang K., Yuan P.
<p>Let $ \left(u_n\right)_{n\geq0} $ be the special Lucas $ u $-sequence defined by</p><p><disp-formula> <label/> <tex-math id="FE1"> \begin{document}$ u_{n+2} = Au_{n+1}-Bu_n,\quad u_0 = 0,\, u_1 = 1, $\end{document} </tex-math></disp-formula></p><p>where $ n\geq0 $, $ B = \pm1 $, and $ A $ is an integer such that $ A^2-4B &gt; 0 $. Let</p><p><disp-formula> <label/> <tex-math id="FE2"> \begin{document}$ a_k = \frac{1}{u_{mk}^s},\,\frac{1}{u_{mk}+u_{mk+l}},\,\frac{1}{\sum\nolimits_{i = 0}^l u_{mk+i}},\,\frac{1}{u_{mk}u_{mk+2l}},\,\frac{1}{u_{mk}u_{mk+2l-1}},\,\frac{1}{u_{mk}+C}, $\end{document} </tex-math></disp-formula></p><p>where $ m, \, l $ are positive integers, $ s = 1, 2, 3, 4 $, and $ C $ is any constant. The aim of this paper is to find a form $ g_n $ such that</p><p><disp-formula> <label/> <tex-math id="FE3"> \begin{document}$ \underset{n\to\infty}{\lim}\left(\left(\sum\limits_{k = n}^\infty a_k\right)^{-1}-g_n\right) = 0. $\end{document} </tex-math></disp-formula></p><p>For example, we show that</p><p><disp-formula> <label/> <tex-math id="FE4"> \begin{document}$ \underset{n\to\infty}{\lim}\left(\left( \sum\limits_{k = n}^\infty \frac{1}{u_{mk}}\right)^{-1}-\left(u_{mn}-u_{m(n-1)}\right)\right) = 0. $\end{document} </tex-math></disp-formula></p>
Q1

Algebraic Schouten solitons associated to the Bott connection on three-dimensional Lorentzian Lie groups
Jiang J.
<p>In this paper, I define and classify the algebraic Schouten solitons associated with the Bott connection on three-dimensional Lorentzian Lie groups with three different distributions.</p>
Q1

Uncertainty prediction of wind speed based on improved multi-strategy hybrid models
Xu X., Ma S., Huang C.
<p>Accurate interval prediction of wind speed plays a vital role in ensuring the efficiency and stability of wind power generation. Due to insufficient traditional wind speed interval prediction methods for mining nonlinear features, in this paper, a novel interval prediction method was proposed by combining improved wavelet threshold and deep learning (BiTCN-BiGRU) with the nutcracker optimization algorithm (NOA). First, NOA was used to optimize the wavelet transform (WT) and BiTCN-BiGRU. Second, we applied NOA-WT to smooth the wind speed data. Then, to capture nonlinear features of time series, phase space reconstruction (PSR) was utilized to identify chaotic characteristics of the processed data. Finally, the NOA-BiTCN-BiGRU model was built to perform wind speed interval prediction. Under the same hyperparameters and network structure settings, a comparison with other deep learning methods showed that the prediction interval coverage probability (PICP) and prediction interval mean width (PIMW) of NOA-WT-BiTCN-BiGRU model achieves the best balance, with good prediction accuracy and generalization performance. This research can provide reference and guidance for nonlinear time-series interval prediction in the real world.</p>
Q1

An energy-preserving exponential scheme with scalar auxiliary variable approach for the nonlinear Dirac equations
Wang H., Liu Y., Cheng X.
<p>In this work, an energy-preserving scheme is proposed for the nonlinear Dirac equation by combining the exponential time differencing method with the scalar auxiliary variable (SAV) approach. First, the original equations can be transformed into the equivalent systems by utilizing the SAV technique. Then the exponential time integrator method is applied for discretizing the temporal derivative, and the standard central difference scheme is used for approximating the spatial derivative for the equivalent one. Finally, the reformulated systems, the semi-discrete spatial scheme, and the fully-discrete, linearly implicit exponential scheme are proven to be energy conserving. The numerical experiments confirm the theoretical results.</p>
Q1

$ \alpha $-robust error analysis of two nonuniform schemes for Caputo-Hadamard fractional reaction sub-diffusion problems
Ye X., Liu X., Lyu T., Liu C.
<p>In this paper, we focused on the Caputo-Hadamard fractional reaction sub-diffusion equations. By using the nonuniform L1 scheme and nonuniform Alikhanov scheme in the temporal domain, we formulated two efficient numerical schemes, where the second order difference method was used in the spatial dimension. Furthermore, we derived the stability and convergence of these proposed schemes. Remarkably, both derived numerical methods exhibited $ \alpha $-robustness, that is, it remained valid when $ \alpha\rightarrow 1^- $. Numerical experiments were given to demonstrate the theoretical statements.</p>
Q1

Mechanism- and data-driven algorithms of electrical energy consumption accounting and prediction for medium and heavy plate rolling
Guo Q., Zhou Z., Li J., Jing F.
<p>Energy consumption accounting and prediction in the medium and thick plate rolling process are crucial for controlling costs, improving production efficiency, optimizing equipment management, and enhancing the market competitiveness of enterprises. Starting from the perspective of integrating process mechanism and industrial big data, we overcame the difficulties brought by complex and highly nonlinear coupling of process variables, proposed a rolling power consumption accounting algorithm based on time slicing method, and gave a calculation method for the additional power consumption of the main motor for rough rolling and finishing rolling (auxiliary system power consumption, power loss, main motor power consumption deviation); with the help of SIMS model, forward recursion, and reverse recursion pass rolling force estimation strategies are proposed, and the rated power consumption of the main motor was predicted. Furthermore, a random forest regression model of additional power consumption based on data was established, and then a prediction algorithm for the comprehensive power consumption of billet rolling was given. Experiments showed the effectiveness of the proposed method.</p>
Q1

Optimal control of production and maintenance: A cost-efficient approach through inventory and preventive strategies
Bounkhel M., Tadj L.
<p>Using an optimal control framework, the optimization of production and maintenance processes is investigated in this paper. We focused on analyzing system behavior, managing costs, and controlling quality. Differential equations are utilized to model the relationship between inventory level, production, and maintenance strategies. A cost function is built combining different cost elements, and the optimal production and maintenance rates were obtained. A sensitivity analysis is performed to assess the impact of different parameters on the total cost and on the optimal solution. The key findings demonstrated that higher initial inventory levels significantly decreased long-term costs and improved production efficiency. The optimal preventive maintenance strategy emphasized the importance of early investments in quality and maintenance, leading to sustained operational stability.</p>
Q1

Comment on: "Solving the conformable Huxley equation using the complex method" [Electron. Res. Arch., 31 (2023), 1303–1322]
Ye F., Zhang X., Jiang C., Zeng B.
<p>Using the complex method, Guoqiang Dang and Qiyou Liu [Guoqiang Dang, Qiyou Liu, Electron. Res. Arch., 31 (2023), 1303–1322] have found some exact solutions of the conformable Huxley equation. In this comment, we first demonstrate that the elliptic function solutions and rational function solutions do not satisfy the complex conformable Huxley equation. Finally, all exact solutions of the conformable Huxley equation are given by us.</p>
Top-100
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Brieflands
50 citations, 0.02%
|
|
EDP Sciences
48 citations, 0.02%
|
|
European Society of Traumatic Stress Studies (ESTSS)
48 citations, 0.02%
|
|
MIT Press
47 citations, 0.02%
|
|
Society for Judgment and Decision Making
46 citations, 0.02%
|
|
Academy of Management
45 citations, 0.02%
|
|
AOSIS
42 citations, 0.02%
|
|
Diabetes Technology Society
41 citations, 0.02%
|
|
National Recreation and Park Association
41 citations, 0.02%
|
|
John Benjamins Publishing Company
40 citations, 0.02%
|
|
Institute for Operations Research and the Management Sciences (INFORMS)
39 citations, 0.02%
|
|
Environmental Health Perspectives
38 citations, 0.02%
|
|
AACN Publishing
37 citations, 0.02%
|
|
Moffitt Cancer Center
36 citations, 0.02%
|
|
Leibniz Institute for Psychology (ZPID)
36 citations, 0.02%
|
|
Korean Society of Nursing Science
35 citations, 0.01%
|
|
Moscow State University of Psychology and Education
34 citations, 0.01%
|
|
Departamento de Psicologia, Universidade de Brasilia
33 citations, 0.01%
|
|
National Institute for Health and Care Research (NIHR)
33 citations, 0.01%
|
|
Impact Journals
32 citations, 0.01%
|
|
Royal College of General Practitioners
32 citations, 0.01%
|
|
Show all (70 more) | |
5000
10000
15000
20000
25000
30000
35000
40000
45000
50000
|
Publishing organizations
10
20
30
40
50
60
70
80
|
|
University of California, Los Angeles
77 publications, 1.69%
|
|
University of North Carolina at Chapel Hill
68 publications, 1.49%
|
|
Harvard University
61 publications, 1.34%
|
|
University of Michigan
59 publications, 1.3%
|
|
Brown University
58 publications, 1.28%
|
|
University of Minnesota
50 publications, 1.1%
|
|
Yale University
46 publications, 1.01%
|
|
Pennsylvania State University
46 publications, 1.01%
|
|
Arizona State University
46 publications, 1.01%
|
|
University of California, San Francisco
46 publications, 1.01%
|
|
Northwestern University
45 publications, 0.99%
|
|
University of Washington
43 publications, 0.95%
|
|
University of Utah
43 publications, 0.95%
|
|
University of California, San Diego
42 publications, 0.92%
|
|
Carnegie Mellon University
40 publications, 0.88%
|
|
Stanford University
40 publications, 0.88%
|
|
National Cancer Institute
40 publications, 0.88%
|
|
University College London
37 publications, 0.81%
|
|
Columbia University
37 publications, 0.81%
|
|
University of Southern California
35 publications, 0.77%
|
|
University of Connecticut
35 publications, 0.77%
|
|
University of British Columbia
33 publications, 0.73%
|
|
University of Miami
33 publications, 0.73%
|
|
San Diego State University
31 publications, 0.68%
|
|
University of Sheffield
31 publications, 0.68%
|
|
Johns Hopkins University
29 publications, 0.64%
|
|
Duke University Hospital
28 publications, 0.62%
|
|
Ohio State University
28 publications, 0.62%
|
|
Wayne State University
28 publications, 0.62%
|
|
University of Pennsylvania
28 publications, 0.62%
|
|
Maastricht University
27 publications, 0.59%
|
|
University of Wisconsin–Madison
27 publications, 0.59%
|
|
University of Florida
27 publications, 0.59%
|
|
University of Leeds
26 publications, 0.57%
|
|
University at Buffalo, State University of New York
25 publications, 0.55%
|
|
King's College London
24 publications, 0.53%
|
|
Rutgers, The State University of New Jersey
24 publications, 0.53%
|
|
University of California, Irvine
23 publications, 0.51%
|
|
Emory University
22 publications, 0.48%
|
|
University of Texas MD Anderson Cancer Center
22 publications, 0.48%
|
|
University of Colorado Boulder
22 publications, 0.48%
|
|
University of Auckland
21 publications, 0.46%
|
|
University of South Florida
21 publications, 0.46%
|
|
University of Illinois at Chicago
20 publications, 0.44%
|
|
Duke University
20 publications, 0.44%
|
|
University of Illinois Urbana-Champaign
20 publications, 0.44%
|
|
University of Alabama at Birmingham
20 publications, 0.44%
|
|
Florida State University
18 publications, 0.4%
|
|
Iowa State University
18 publications, 0.4%
|
|
Vanderbilt University
18 publications, 0.4%
|
|
Washington University in St. Louis
17 publications, 0.37%
|
|
University of Rochester
17 publications, 0.37%
|
|
University of California, Merced
16 publications, 0.35%
|
|
University Medical Center Groningen
16 publications, 0.35%
|
|
Université Laval
16 publications, 0.35%
|
|
University of Sussex
16 publications, 0.35%
|
|
University of Houston
16 publications, 0.35%
|
|
Virginia Tech
15 publications, 0.33%
|
|
University of Texas at Austin
15 publications, 0.33%
|
|
Icahn School of Medicine at Mount Sinai
15 publications, 0.33%
|
|
Fred Hutchinson Cancer Center
15 publications, 0.33%
|
|
Cornell University
14 publications, 0.31%
|
|
New York University
14 publications, 0.31%
|
|
Massachusetts General Hospital
14 publications, 0.31%
|
|
University of Toronto
14 publications, 0.31%
|
|
University of Helsinki
13 publications, 0.29%
|
|
Stony Brook University
13 publications, 0.29%
|
|
University of Queensland
13 publications, 0.29%
|
|
Syracuse University
13 publications, 0.29%
|
|
Rush University Medical Center
13 publications, 0.29%
|
|
University of Chicago
13 publications, 0.29%
|
|
McGill University
13 publications, 0.29%
|
|
Virginia Commonwealth University
13 publications, 0.29%
|
|
Fox Chase Cancer Center
13 publications, 0.29%
|
|
Cincinnati Children's Hospital Medical Center
13 publications, 0.29%
|
|
Radboud University Nijmegen
12 publications, 0.26%
|
|
University of Manchester
12 publications, 0.26%
|
|
Boston University
12 publications, 0.26%
|
|
University of Arizona
12 publications, 0.26%
|
|
Memorial Sloan Kettering Cancer Center
12 publications, 0.26%
|
|
University of Amsterdam
12 publications, 0.26%
|
|
University of Texas Southwestern Medical Center
12 publications, 0.26%
|
|
Indiana University Bloomington
12 publications, 0.26%
|
|
Georgetown University
11 publications, 0.24%
|
|
Newcastle University
11 publications, 0.24%
|
|
Max Planck Institute for Human Development
11 publications, 0.24%
|
|
Tilburg University
11 publications, 0.24%
|
|
Utrecht University
11 publications, 0.24%
|
|
University of Kentucky
11 publications, 0.24%
|
|
University of Stirling
11 publications, 0.24%
|
|
University of Nottingham
10 publications, 0.22%
|
|
Michigan State University
10 publications, 0.22%
|
|
University of Tasmania
10 publications, 0.22%
|
|
Oregon Health & Science University
10 publications, 0.22%
|
|
University of California, Riverside
10 publications, 0.22%
|
|
University of Aberdeen
10 publications, 0.22%
|
|
University of Maryland, Baltimore County
10 publications, 0.22%
|
|
University of Ottawa
10 publications, 0.22%
|
|
University of Rhode Island
10 publications, 0.22%
|
|
H. Lee Moffitt Cancer Center & Research Institute
10 publications, 0.22%
|
|
Show all (70 more) | |
10
20
30
40
50
60
70
80
|
Publishing organizations in 5 years
1
2
3
4
5
6
|
|
Virginia Tech
6 publications, 0.72%
|
|
Harvard University
6 publications, 0.72%
|
|
University of North Carolina at Chapel Hill
6 publications, 0.72%
|
|
Brown University
5 publications, 0.6%
|
|
University of Colorado Boulder
5 publications, 0.6%
|
|
University of Southern California
4 publications, 0.48%
|
|
University of California, Los Angeles
4 publications, 0.48%
|
|
University of Utah
4 publications, 0.48%
|
|
National Cancer Institute
4 publications, 0.48%
|
|
Yale University
3 publications, 0.36%
|
|
University of Washington
3 publications, 0.36%
|
|
Ohio State University
3 publications, 0.36%
|
|
University of California, San Francisco
3 publications, 0.36%
|
|
Wayne State University
3 publications, 0.36%
|
|
University of Michigan
3 publications, 0.36%
|
|
University of Minnesota
3 publications, 0.36%
|
|
Children's National Hospital
3 publications, 0.36%
|
|
Huntsman Cancer Institute
3 publications, 0.36%
|
|
Université du Québec à Trois-Rivières
3 publications, 0.36%
|
|
Tel Aviv University
2 publications, 0.24%
|
|
Eindhoven University of Technology
2 publications, 0.24%
|
|
University College London
2 publications, 0.24%
|
|
University of Liverpool
2 publications, 0.24%
|
|
Florida State University
2 publications, 0.24%
|
|
Michigan State University
2 publications, 0.24%
|
|
Carnegie Mellon University
2 publications, 0.24%
|
|
Johns Hopkins University
2 publications, 0.24%
|
|
Pennsylvania State University
2 publications, 0.24%
|
|
Georgetown University Medical Center
2 publications, 0.24%
|
|
Arizona State University
2 publications, 0.24%
|
|
University of California, Berkeley
2 publications, 0.24%
|
|
University at Buffalo, State University of New York
2 publications, 0.24%
|
|
University of California, Merced
2 publications, 0.24%
|
|
Georgia State University
2 publications, 0.24%
|
|
Icahn School of Medicine at Mount Sinai
2 publications, 0.24%
|
|
University of Amsterdam
2 publications, 0.24%
|
|
University of Leeds
2 publications, 0.24%
|
|
Virginia Commonwealth University
2 publications, 0.24%
|
|
University of Texas Southwestern Medical Center
2 publications, 0.24%
|
|
Medical College of Wisconsin
2 publications, 0.24%
|
|
University of Wisconsin–Madison
2 publications, 0.24%
|
|
University of Pennsylvania
2 publications, 0.24%
|
|
University of Kentucky
2 publications, 0.24%
|
|
Cincinnati Children's Hospital Medical Center
2 publications, 0.24%
|
|
University of Colorado Anschutz Medical Campus
2 publications, 0.24%
|
|
Indiana University School of Medicine
2 publications, 0.24%
|
|
Seattle Children's Hospital
2 publications, 0.24%
|
|
University of Alabama at Birmingham
2 publications, 0.24%
|
|
University of Connecticut
2 publications, 0.24%
|
|
University of York
2 publications, 0.24%
|
|
University of Bath
2 publications, 0.24%
|
|
Université du Québec à Montréal
2 publications, 0.24%
|
|
Islamic Azad University, Science and Research Branch
1 publication, 0.12%
|
|
Radboud University Nijmegen
1 publication, 0.12%
|
|
University of Haifa
1 publication, 0.12%
|
|
University Hospital of Zürich
1 publication, 0.12%
|
|
University of Zurich
1 publication, 0.12%
|
|
University of Lausanne
1 publication, 0.12%
|
|
University of Geneva
1 publication, 0.12%
|
|
Academic College of Tel Aviv-Yafo
1 publication, 0.12%
|
|
University of Bologna
1 publication, 0.12%
|
|
University of Lucerne
1 publication, 0.12%
|
|
University of Applied Sciences Northwestern Switzerland
1 publication, 0.12%
|
|
Maastricht University
1 publication, 0.12%
|
|
University of Manchester
1 publication, 0.12%
|
|
Massachusetts Institute of Technology
1 publication, 0.12%
|
|
Kingston University
1 publication, 0.12%
|
|
Drexel University
1 publication, 0.12%
|
|
University of Birmingham
1 publication, 0.12%
|
|
Victoria University of Wellington
1 publication, 0.12%
|
|
University of Melbourne
1 publication, 0.12%
|
|
Deakin University
1 publication, 0.12%
|
|
Griffith University
1 publication, 0.12%
|
|
Cancer Council Victoria
1 publication, 0.12%
|
|
Stanford University
1 publication, 0.12%
|
|
Columbia University Irving Medical Center
1 publication, 0.12%
|
|
Columbia University
1 publication, 0.12%
|
|
Boston University
1 publication, 0.12%
|
|
Dalhousie University
1 publication, 0.12%
|
|
Seoul National University
1 publication, 0.12%
|
|
Northwestern University
1 publication, 0.12%
|
|
Education University of Hong Kong
1 publication, 0.12%
|
|
University of Hong Kong
1 publication, 0.12%
|
|
University of Illinois at Chicago
1 publication, 0.12%
|
|
Oregon State University
1 publication, 0.12%
|
|
Oregon Health & Science University
1 publication, 0.12%
|
|
Duke University
1 publication, 0.12%
|
|
Ohio State University Comprehensive Cancer Center – Arthur G. James Cancer Hospital and Richard J. Solove Research Institute
1 publication, 0.12%
|
|
University of California, San Diego Medical Center
1 publication, 0.12%
|
|
University of California, San Diego
1 publication, 0.12%
|
|
Northern Arizona University
1 publication, 0.12%
|
|
University of California, Irvine
1 publication, 0.12%
|
|
University of California, Riverside
1 publication, 0.12%
|
|
Loyola University Chicago
1 publication, 0.12%
|
|
University of Chicago
1 publication, 0.12%
|
|
Southern Methodist University
1 publication, 0.12%
|
|
University of Texas at Austin
1 publication, 0.12%
|
|
University of Texas at Dallas
1 publication, 0.12%
|
|
Ohio University
1 publication, 0.12%
|
|
Autonomous University of Madrid
1 publication, 0.12%
|
|
Show all (70 more) | |
1
2
3
4
5
6
|
Publishing countries
200
400
600
800
1000
1200
1400
1600
1800
2000
|
|
USA
|
USA, 1801, 39.59%
USA
1801 publications, 39.59%
|
United Kingdom
|
United Kingdom, 261, 5.74%
United Kingdom
261 publications, 5.74%
|
Canada
|
Canada, 171, 3.76%
Canada
171 publications, 3.76%
|
Netherlands
|
Netherlands, 108, 2.37%
Netherlands
108 publications, 2.37%
|
Australia
|
Australia, 93, 2.04%
Australia
93 publications, 2.04%
|
Germany
|
Germany, 74, 1.63%
Germany
74 publications, 1.63%
|
Italy
|
Italy, 43, 0.95%
Italy
43 publications, 0.95%
|
New Zealand
|
New Zealand, 29, 0.64%
New Zealand
29 publications, 0.64%
|
Israel
|
Israel, 23, 0.51%
Israel
23 publications, 0.51%
|
China
|
China, 21, 0.46%
China
21 publications, 0.46%
|
Finland
|
Finland, 20, 0.44%
Finland
20 publications, 0.44%
|
Switzerland
|
Switzerland, 17, 0.37%
Switzerland
17 publications, 0.37%
|
Belgium
|
Belgium, 16, 0.35%
Belgium
16 publications, 0.35%
|
Republic of Korea
|
Republic of Korea, 16, 0.35%
Republic of Korea
16 publications, 0.35%
|
France
|
France, 15, 0.33%
France
15 publications, 0.33%
|
Turkey
|
Turkey, 10, 0.22%
Turkey
10 publications, 0.22%
|
Ireland
|
Ireland, 8, 0.18%
Ireland
8 publications, 0.18%
|
Sweden
|
Sweden, 8, 0.18%
Sweden
8 publications, 0.18%
|
Denmark
|
Denmark, 7, 0.15%
Denmark
7 publications, 0.15%
|
Mexico
|
Mexico, 6, 0.13%
Mexico
6 publications, 0.13%
|
South Africa
|
South Africa, 6, 0.13%
South Africa
6 publications, 0.13%
|
Russia
|
Russia, 5, 0.11%
Russia
5 publications, 0.11%
|
Spain
|
Spain, 5, 0.11%
Spain
5 publications, 0.11%
|
Norway
|
Norway, 5, 0.11%
Norway
5 publications, 0.11%
|
Japan
|
Japan, 5, 0.11%
Japan
5 publications, 0.11%
|
Austria
|
Austria, 4, 0.09%
Austria
4 publications, 0.09%
|
Poland
|
Poland, 4, 0.09%
Poland
4 publications, 0.09%
|
USSR
|
USSR, 4, 0.09%
USSR
4 publications, 0.09%
|
Portugal
|
Portugal, 3, 0.07%
Portugal
3 publications, 0.07%
|
Greece
|
Greece, 3, 0.07%
Greece
3 publications, 0.07%
|
Luxembourg
|
Luxembourg, 3, 0.07%
Luxembourg
3 publications, 0.07%
|
Iran
|
Iran, 2, 0.04%
Iran
2 publications, 0.04%
|
Iceland
|
Iceland, 2, 0.04%
Iceland
2 publications, 0.04%
|
Yemen
|
Yemen, 2, 0.04%
Yemen
2 publications, 0.04%
|
Romania
|
Romania, 2, 0.04%
Romania
2 publications, 0.04%
|
Thailand
|
Thailand, 2, 0.04%
Thailand
2 publications, 0.04%
|
Montenegro
|
Montenegro, 2, 0.04%
Montenegro
2 publications, 0.04%
|
Estonia
|
Estonia, 1, 0.02%
Estonia
1 publication, 0.02%
|
Algeria
|
Algeria, 1, 0.02%
Algeria
1 publication, 0.02%
|
Afghanistan
|
Afghanistan, 1, 0.02%
Afghanistan
1 publication, 0.02%
|
Brazil
|
Brazil, 1, 0.02%
Brazil
1 publication, 0.02%
|
Hungary
|
Hungary, 1, 0.02%
Hungary
1 publication, 0.02%
|
Indonesia
|
Indonesia, 1, 0.02%
Indonesia
1 publication, 0.02%
|
Cameroon
|
Cameroon, 1, 0.02%
Cameroon
1 publication, 0.02%
|
Panama
|
Panama, 1, 0.02%
Panama
1 publication, 0.02%
|
Singapore
|
Singapore, 1, 0.02%
Singapore
1 publication, 0.02%
|
Turkmenistan
|
Turkmenistan, 1, 0.02%
Turkmenistan
1 publication, 0.02%
|
Philippines
|
Philippines, 1, 0.02%
Philippines
1 publication, 0.02%
|
Sri Lanka
|
Sri Lanka, 1, 0.02%
Sri Lanka
1 publication, 0.02%
|
Show all (19 more) | |
200
400
600
800
1000
1200
1400
1600
1800
2000
|
Publishing countries in 5 years
20
40
60
80
100
120
|
|
USA
|
USA, 101, 12.15%
USA
101 publications, 12.15%
|
United Kingdom
|
United Kingdom, 12, 1.44%
United Kingdom
12 publications, 1.44%
|
Italy
|
Italy, 11, 1.32%
Italy
11 publications, 1.32%
|
Canada
|
Canada, 9, 1.08%
Canada
9 publications, 1.08%
|
Netherlands
|
Netherlands, 8, 0.96%
Netherlands
8 publications, 0.96%
|
Germany
|
Germany, 6, 0.72%
Germany
6 publications, 0.72%
|
Republic of Korea
|
Republic of Korea, 5, 0.6%
Republic of Korea
5 publications, 0.6%
|
Australia
|
Australia, 4, 0.48%
Australia
4 publications, 0.48%
|
Israel
|
Israel, 3, 0.36%
Israel
3 publications, 0.36%
|
Switzerland
|
Switzerland, 3, 0.36%
Switzerland
3 publications, 0.36%
|
Ireland
|
Ireland, 2, 0.24%
Ireland
2 publications, 0.24%
|
Spain
|
Spain, 2, 0.24%
Spain
2 publications, 0.24%
|
France
|
France, 1, 0.12%
France
1 publication, 0.12%
|
China
|
China, 1, 0.12%
China
1 publication, 0.12%
|
Portugal
|
Portugal, 1, 0.12%
Portugal
1 publication, 0.12%
|
Algeria
|
Algeria, 1, 0.12%
Algeria
1 publication, 0.12%
|
Iran
|
Iran, 1, 0.12%
Iran
1 publication, 0.12%
|
New Zealand
|
New Zealand, 1, 0.12%
New Zealand
1 publication, 0.12%
|
Panama
|
Panama, 1, 0.12%
Panama
1 publication, 0.12%
|
Poland
|
Poland, 1, 0.12%
Poland
1 publication, 0.12%
|
Philippines
|
Philippines, 1, 0.12%
Philippines
1 publication, 0.12%
|
20
40
60
80
100
120
|
3 profile journal articles
Pauly Theresa
50 publications,
508 citations
h-index: 13
1 profile journal article
Carlew Anne
19 publications,
328 citations
h-index: 6
1 profile journal article
Mehnert-Theuerkauf Anja

University Hospital Leipzig
373 publications,
11 799 citations
h-index: 57