Chi-Wang Shu

Active 1987–2026

Also published as
Chi‐Wang Shu
347
Papers
64,979
Citations
95
h-index
243
i10-index

Citations

Citations per year for Chi-Wang Shu1986: 1 citations1988: 4 citations1989: 12 citations1990: 10 citations1991: 5 citations1992: 1 citations1993: 8 citations1994: 20 citations1995: 20 citations1996: 19 citations1997: 59 citations1998: 107 citations1999: 150 citations2000: 132 citations2001: 156 citations2002: 227 citations2003: 296 citations2004: 219 citations2005: 532 citations2006: 514 citations2007: 591 citations2008: 606 citations2009: 641 citations2010: 764 citations2011: 862 citations2012: 723 citations2013: 1,080 citations2014: 979 citations2015: 1,050 citations2016: 1,368 citations2017: 1,335 citations2018: 1,476 citations2019: 1,574 citations2020: 1,764 citations2021: 1,883 citations2022: 1,804 citations2023: 1,571 citations2024: 1,865 citations2025: 1,753 citations2026: 835 citations2027: 10 citations1987: no citations, so this year is not shown

Citation sources

Countries

World map of the countries and regions citing this authorUnited States: 3,168 citing papers, 30.1% of this breakdownChina: 2,102 citing papers, 20% of this breakdownGermany: 711 citing papers, 6.7% of this breakdownFrance: 673 citing papers, 6.4% of this breakdownItaly: 451 citing papers, 4.3% of this breakdownUnited Kingdom: 367 citing papers, 3.5% of this breakdownSpain: 356 citing papers, 3.4% of this breakdownCanada: 218 citing papers, 2.1% of this breakdownHong Kong: 194 citing papers, 1.8% of this breakdownSwitzerland: 185 citing papers, 1.8% of this breakdownIndia: 172 citing papers, 1.6% of this breakdownSouth Korea: 166 citing papers, 1.6% of this breakdown
0%30.1%Other 16.7%

Fields

  • Engineering67.4%
  • Mathematics12.8%
  • Computer Science6.2%
  • Physics and Astronomy5.7%
  • Materials Science1.9%
  • Earth and Planetary Sciences1.7%
  • Other4.3%

Topics

  • Computational Fluid Dynamics and Aerodynamics17.9%
  • Advanced Numerical Methods in Computational Mathematics14.6%
  • Fluid Dynamics and Turbulent Flows8%
  • Numerical methods for differential equations5.7%
  • Gas Dynamics and Kinetic Theory5%
  • Differential Equations and Numerical Methods3.1%
  • Other45.7%

Coauthors

All papers

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  1. Efficient Implementation of Weighted ENO Schemes

    Authors: , - Journal of Computational Physics 1996 cited by 6,450

  2. Efficient implementation of essentially non-oscillatory shock-capturing schemes

    Authors: , - Journal of Computational Physics 1988 cited by 4,727

  3. Strong Stability-Preserving High-Order Time Discretization Methods

    Authors: , , - SIAM Review, SIAM Rev. 2001 cited by 2,529

  4. The Runge–Kutta Discontinuous Galerkin Method for Conservation Laws V

    Authors: , - Journal of Computational Physics 1998 cited by 2,202

  5. On positivity-preserving high order discontinuous Galerkin schemes for compressible Euler equations on rectangular meshes

    Authors: , - Journal of Computational Physics, J. Comput. Phys. 2010 cited by 706

  6. On maximum-principle-satisfying high order schemes for scalar conservation laws

    Authors: , - Journal of Computational Physics, J. Comput. Phys. 2010 cited by 621

  7. Total variation diminishing Runge-Kutta schemes

    Authors: , - Mathematics of Computation, Math. Comput. 1998 cited by 2,493

  8. Efficient implementation of essentially non-oscillatory shock-capturing schemes, II

    Authors: , - Journal of Computational Physics 1989 cited by 4,856

  9. The Local Discontinuous Galerkin Method for Time-Dependent Convection-Diffusion Systems

    Authors: , - SIAM Journal on Numerical Analysis 1998 cited by 2,376

  10. TVB Runge-Kutta local projection discontinuous Galerkin finite element method for conservation laws III: One-dimensional systems

    Authors: , , - Journal of Computational Physics 1989 cited by 1,480

  11. High Order Weighted Essentially Nonoscillatory Schemes for Convection Dominated Problems

    Authors: - SIAM Review, SIAM Rev. 2009 cited by 949

  12. Essentially non-oscillatory and weighted essentially non-oscillatory schemes for hyperbolic conservation laws

    Authors: - Lecture notes in mathematics 1998 cited by 1,910

  13. A new type of multi-resolution WENO schemes with increasingly higher order of accuracy

    Authors: , - Journal of Computational Physics, J. Comput. Phys. 2018 cited by 214

  14. TVB Runge-Kutta local projection discontinuous Galerkin finite element method for conservation laws. II. General framework

    Authors: , - Mathematics of Computation 1989 cited by 1,901

  15. Weighted Essentially Non-oscillatory Schemes on Triangular Meshes

    Authors: , - Journal of Computational Physics 1999 cited by 820

  16. The Runge-Kutta local projection P^1-discontinuous-Galerkin finite element method for scalar conservation laws

    Authors: , - ESAIM Mathematical Modelling and Numerical Analysis 1991 cited by 622

  17. Strong Stability Preserving Runge-Kutta and Multistep Time Discretizations

    Authors: , , - WORLD SCIENTIFIC eBooks 2011 cited by 434

  18. Entropy stable high order discontinuous Galerkin methods with suitable quadrature rules for hyperbolic conservation laws

    Authors: , - Journal of Computational Physics, J. Comput. Phys. 2017 cited by 235

  19. Hermite WENO schemes and their application as limiters for Runge–Kutta discontinuous Galerkin method: one-dimensional case

    Authors: , - Journal of Computational Physics 2003 cited by 454

  20. On the Gibbs Phenomenon and Its Resolution

    Authors: , - SIAM Review, SIAM Rev. 1997 cited by 846

  21. Runge-Kutta Discontinuous Galerkin Method Using WENO Limiters

    Authors: , - SIAM Journal on Scientific Computing, SIAM J. Sci. Comput. 2005 cited by 450

  22. Essentially non-oscillatory and weighted essentially non-oscillatory schemes

    Authors: - Acta Numerica, Acta Numer. 2020 cited by 190

  23. Monotonicity Preserving Weighted Essentially Non-oscillatory Schemes with Increasingly High Order of Accuracy

    Authors: , - Journal of Computational Physics 2000 cited by 1,287

  24. Positivity-preserving method for high-order conservative schemes solving compressible Euler equations

    Authors: , , - Journal of Computational Physics, J. Comput. Phys. 2013 cited by 246