Discretization (Mathematics)

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Information for Authority record

Name (Hebrew)
בידוד (מתמטיקה)
Name (Latin)
Discretization (Mathematics)
Name (Arabic)
التحول إلى أعداد صحيحة (الرياضيات)
See Also From tracing topical name
Differential equations Numerical solutions
MARC
MARC

Other Identifiers

Wikidata: Q17007827
Library of congress: sh2016001385
Sources of Information
  • Work cat: McGregor, D. Compatible Discretizations for Maxwell's Equations with General Constitutive Laws, 2016.
  • Mcgraw Hill Dictionary Of Scientific And Technical Terms, 2003:(Discretization: A procedure in the numerical solution of partial differential equations in which the domain of the independent variable is subdivided into cells or elements and the equations are expressed in discrete form at each point by finite difference, finite volume, or finite element methods)
  • Stetter, H. Analysis of discretization methods for ordinary differential equations, 1973.
  • Gekeler, E. Discretization methods for stable initial value problems, 1984.
  • Rektorys, K. The method of discretization in time and partial differential equations, 1982.
  • Suris, Y. The problem of integrable discretization : Hamiltonian approach, 2003.
  • Wohlmuth, B. Discretization methods and iterative solvers based on domain decomposition, 2001.

Wikipedia description:

In applied mathematics, discretization is the process of transferring continuous functions, models, variables, and equations into discrete counterparts. This process is usually carried out as a first step toward making them suitable for numerical evaluation and implementation on digital computers. Dichotomization is the special case of discretization in which the number of discrete classes is 2, which can approximate a continuous variable as a binary variable (creating a dichotomy for modeling purposes, as in binary classification). Discretization is also related to discrete mathematics, and is an important component of granular computing. In this context, discretization may also refer to modification of variable or category granularity, as when multiple discrete variables are aggregated or multiple discrete categories fused. Whenever continuous data is discretized, there is always some amount of discretization error. The goal is to reduce the amount to a level considered negligible for the modeling purposes at hand. The terms discretization and quantization often have the same denotation but not always identical connotations. (Specifically, the two terms share a semantic field.) The same is true of discretization error and quantization error. Mathematical methods relating to discretization include the Euler–Maruyama method and the zero-order hold.

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