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Angular variables are introduced in rotational dynamics. Comparing the definitions of angular variables with the definitions of linear kinematic variables, it is seen that there is a mapping of the linear variables to the rotational ones. Linear displacement, velocity, and acceleration have their equivalents in rotational motion, which are angular displacement, angular velocity, and angular acceleration. Similar to the rotational variables, a mapping exists from Newton's second law of motion...
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State-space representation is a powerful tool for simulating physical systems on digital computers, necessitating the conversion of the transfer function into state-space form. Consider an nth-order linear differential equation with constant coefficients, like those encountered in an RLC circuit. The state variables are selected as the output and its n−1 derivatives. Differentiating these variables and substituting them back into the original equation produces the state equations.
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The conversion of state-space representation to a transfer function is a fundamental process in system analysis. It provides a method for transitioning from a time-domain description to a frequency-domain representation, which is crucial for simplifying the analysis and design of control systems.
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Updated: Jan 25, 2026

The Participant-Reported Implementation Update and Score PRIUS: A Novel Method for Capturing Implementation-Related Data Over Time
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Publisher Correction: A space-time tradeoff for implementing a function with master equation dynamics.

David H Wolpert1,2, Artemy Kolchinsky3, Jeremy A Owen4

  • 1Santa Fe Institute, 1399 Hyde Park Road, Santa Fe, NM, 87501, USA. dhw@santafe.edu.

Nature Communications
|May 3, 2019
PubMed
Summary
This summary is machine-generated.

An error in supplementary information references has been corrected. The updated HTML now accurately links to theorems, definitions, and lemmas in the main article for improved clarity.

Area of Science:

  • Scientific Publishing
  • Academic Communication

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