Main Overview Notes: MIT 8.01 Classical Mechanics, Fall 2016 View the complete course: Instructor: Dr. Staircase diagrams are great for visualizing what happens with discrete-time 1-d dynamical systems.

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MIT 8.01 Classical Mechanics, Fall 2016 View the complete course: Instructor: Dr. This is part of a series of short simulations without audio on applied dynamical systems...) We've seen that an inverted This is part of a series of short simulations without audio on applied dynamical systems...) This simple simulation of rigid-rod ...

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This is part of a series of short simulations without audio on applied dynamical systems...) This simple simulation of rigid-rod ... Staircase diagrams are great for visualizing what happens with discrete-time 1-d dynamical systems.

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  • This is part of a series of short simulations without audio on applied dynamical systems...) We've seen that an inverted
  • This is part of a series of short simulations without audio on applied dynamical systems...) This simple simulation of rigid-rod ...
  • One good physical example of a saddle node bifurcation occurs with a damped
  • Staircase diagrams are great for visualizing what happens with discrete-time 1-d dynamical systems.

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Helpful Image Notes

AppDynSys : Pendula : Stable & Unstable Equilibria
AppDynSys : Staircase Diagrams : Stable & Unstable Equilibria
AppDynSys : 2D Flows : Linear Equilibrium Types
Stable, Unstable, and Neutral Equilibrium
AppDynSys : Pendula : Inverted, Shaken, & Stabilized
Autonomous Equations, Equilibrium Solutions, and Stability
Evolutionarily Stable Nash Equilibrium (vs. Unstable)
AppDynSys : Bifurcation Examples : Torqued Pendulum
Stable and Unstable Equilibrium - The Cone
25.2 Stable and Unstable Equilibrium Points
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Check Follow-Up Notes
AppDynSys : Pendula : Stable & Unstable Equilibria

AppDynSys : Pendula : Stable & Unstable Equilibria

This is part of a series of short simulations without audio on applied dynamical systems...) This simple simulation of rigid-rod ...

AppDynSys : Staircase Diagrams : Stable & Unstable Equilibria

AppDynSys : Staircase Diagrams : Stable & Unstable Equilibria

Staircase diagrams are great for visualizing what happens with discrete-time 1-d dynamical systems. In particular, you can see ...

AppDynSys : 2D Flows : Linear Equilibrium Types

AppDynSys : 2D Flows : Linear Equilibrium Types

In 2D continuous time, linear systems can have certain types of

Stable, Unstable, and Neutral Equilibrium

Stable, Unstable, and Neutral Equilibrium

Read more details and related context about Stable, Unstable, and Neutral Equilibrium.

AppDynSys : Pendula : Inverted, Shaken, & Stabilized

AppDynSys : Pendula : Inverted, Shaken, & Stabilized

This is part of a series of short simulations without audio on applied dynamical systems...) We've seen that an inverted

Autonomous Equations, Equilibrium Solutions, and Stability

Autonomous Equations, Equilibrium Solutions, and Stability

Read more details and related context about Autonomous Equations, Equilibrium Solutions, and Stability.

Evolutionarily Stable Nash Equilibrium (vs. Unstable)

Evolutionarily Stable Nash Equilibrium (vs. Unstable)

Read more details and related context about Evolutionarily Stable Nash Equilibrium (vs. Unstable).

AppDynSys : Bifurcation Examples : Torqued Pendulum

AppDynSys : Bifurcation Examples : Torqued Pendulum

One good physical example of a saddle node bifurcation occurs with a damped

Stable and Unstable Equilibrium - The Cone

Stable and Unstable Equilibrium - The Cone

Read more details and related context about Stable and Unstable Equilibrium - The Cone.

25.2 Stable and Unstable Equilibrium Points

25.2 Stable and Unstable Equilibrium Points

MIT 8.01 Classical Mechanics, Fall 2016 View the complete course: Instructor: Dr. Peter Dourmashkin ...