Stanford Root

Schedule

Stanford Root

Schedule

ENGR 155B

Linear Algebra and Partial Differential Equations for Engineers (CME 104)

UNITS:5
GRADING:Letter or Credit/No Credit
LEVEL:Undergrad
GER:WAY-FR

Linear algebra: systems of algebraic equations, Gaussian elimination, undetermined and overdetermined systems, coupled systems of ordinary differential equations, LU factorization, eigensystem analysis, normal modes. Linear independence, vector spaces, subspaces and basis. Numerical analysis applied to structural equilibrium problems, electrical networks, and dynamic systems. Fourier series with applications, partial differential equations arising in science and engineering, analytical solutions of partial differential equations. Applications in heat and mass transport, mechanical vibration and acoustic waves, transmission lines, and fluid mechanics. Numerical methods for solution of partial differential equations: iterative techniques, stability and convergence, time advancement, implicit methods, von Neumann stability analysis. Examples and applications drawn from a variety of engineering fields. Prerequisite: CME 102/ENGR 155A.

Syllabus for selected term:
View Spring 2027 Syllabus

Sections

1 Term
Lecture 1Open
ID: 1818
0 / 45 enrolled
DAYS:Tuesday, Thursday
TIME:5:30 PM – 7:20 PM
LOCATION:TBD
INSTRUCTOR:
Roger, Alexandre, Fadl, Mustafa, Khayms, Vadim
5units

ENGR 155B: Linear Algebra and Partial Differential Equations for Engineers (CME 104)

5 units · Letter or Credit/No Credit · GER: WAY-FR

Linear algebra: systems of algebraic equations, Gaussian elimination, undetermined and overdetermined systems, coupled systems of ordinary differential equations, LU factorization, eigensystem analysis, normal modes. Linear independence, vector spaces, subspaces and basis. Numerical analysis applied to structural equilibrium problems, electrical networks, and dynamic systems. Fourier series with applications, partial differential equations arising in science and engineering, analytical solutions of partial differential equations. Applications in heat and mass transport, mechanical vibration and acoustic waves, transmission lines, and fluid mechanics. Numerical methods for solution of partial differential equations: iterative techniques, stability and convergence, time advancement, implicit methods, von Neumann stability analysis. Examples and applications drawn from a variety of engineering fields. Prerequisite: CME102/ENGR155A.

Offered in Spring 2027 at Stanford University.

Spring 2027 sections

  • Lecture — Tuesday Thursday 5:30 PM – 7:20 PM — Roger, Alexandre, Fadl, Mustafa, Khayms, Vadim (Undergrad)

More ENGR courses

  • ENGR 140B: Leadership of Technology Ventures
  • ENGR 140C: Leadership of Technology Ventures
  • ENGR 145: Technology Entrepreneurship (ENGR 145S)
  • ENGR 148: Principled Entrepreneurial Decisions (ENGR 248)
  • ENGR 154: Vector Calculus for Engineers (CME 100)
  • ENGR 155A: Ordinary Differential Equations for Engineers (CME 102)
  • ENGR 155C: Introduction to Probability and Statistics for Engineers (CME 106)
  • ENGR 159Q: Japanese Companies and Japanese Society (MATSCI 159Q)
  • ENGR 180: Designing Black Experiences (AFRICAAM 180D)
  • ENGR 193: Develop Your Leadership Toolkit: Aim High, Embrace Uncertainty, and Achieve Impact
  • ENGR 199: Special Studies in Engineering
  • ENGR 199A: Additional Calculus for Engineers

All ENGR courses · All departments