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Complex dynamics is a branch of mathematics that studies the behavior of dynamical systems in the context of complex numbers. It typically involves the iteration of complex functions, particularly polynomials and rational functions, and explores the patterns and structures that emerge from these iterations. Key concepts in complex dynamics include: 1. **Iteration**: Complex dynamics often focuses on iterating a function, meaning applying the function repeatedly.
Arithmetic dynamics is a field of mathematics that combines elements of number theory and dynamical systems. It primarily studies the behavior of sequences of numbers defined by iterative processes, especially those arising from polynomial or rational functions.
A vortex (plural: vortices) is a flow pattern characterized by a rotating, swirling motion of fluid (which can be gas or liquid) around an axis. Vortices can occur in many different contexts, including in nature, engineering, and physics. Some key characteristics of vortices include: 1. **Rotation**: The fluid moves in a circular or spiral path around a central core or axis. The speed and direction of rotation can vary.
Topological dynamics is a branch of mathematics that studies the behavior of dynamical systems through the lens of topology. It focuses on how systems evolve over time while considering the global structure of the space in which they reside. The central objects of study in topological dynamics are often continuous functions on topological spaces that model the evolution of a system.
Thermodynamics is a branch of physics that deals with the relationships between heat, work, temperature, and energy. It encompasses the study of how energy is transferred and transformed, and how these processes influence matter, particularly in terms of its macroscopic properties and behavior. Thermodynamics is governed by four fundamental laws: 1. **Zeroth Law of Thermodynamics**: This law establishes the concept of temperature and thermal equilibrium.
Thermodynamic systems refer to a specific portion of the physical universe that is being studied, with precise boundaries separating it from its surroundings. In thermodynamics, understanding systems is crucial as it allows for the analysis of energy interactions, phase changes, work, and heat transfer. There are three main types of thermodynamic systems: 1. **Open System**: An open system can exchange both energy and matter with its surroundings.
In dynamical systems, "theorems" refer to established results that describe the behavior of systems over time under certain conditions. Dynamical systems are mathematical models used to describe the evolution of points in a given space according to specific rules, often represented by differential equations or discrete mappings.
Self-organization refers to a process in which a system spontaneously organizes itself without external direction or intervention. This phenomenon occurs in various fields, including biology, physics, chemistry, social sciences, and computer science. Key characteristics of self-organization include: 1. **Complex Interactions**: Individual components of the system interact in simple ways, leading to complex group behavior or structures.
Pinned article: Introduction to the OurBigBook Project
Welcome to the OurBigBook Project! Our goal is to create the perfect publishing platform for STEM subjects, and get university-level students to write the best free STEM tutorials ever.
Everyone is welcome to create an account and play with the site: ourbigbook.com/go/register. We belive that students themselves can write amazing tutorials, but teachers are welcome too. You can write about anything you want, it doesn't have to be STEM or even educational. Silly test content is very welcome and you won't be penalized in any way. Just keep it legal!
Intro to OurBigBook
. Source. We have two killer features:
- topics: topics group articles by different users with the same title, e.g. here is the topic for the "Fundamental Theorem of Calculus" ourbigbook.com/go/topic/fundamental-theorem-of-calculusArticles of different users are sorted by upvote within each article page. This feature is a bit like:
- a Wikipedia where each user can have their own version of each article
- a Q&A website like Stack Overflow, where multiple people can give their views on a given topic, and the best ones are sorted by upvote. Except you don't need to wait for someone to ask first, and any topic goes, no matter how narrow or broad
This feature makes it possible for readers to find better explanations of any topic created by other writers. And it allows writers to create an explanation in a place that readers might actually find it.Figure 1. Screenshot of the "Derivative" topic page. View it live at: ourbigbook.com/go/topic/derivativeVideo 2. OurBigBook Web topics demo. Source. - local editing: you can store all your personal knowledge base content locally in a plaintext markup format that can be edited locally and published either:This way you can be sure that even if OurBigBook.com were to go down one day (which we have no plans to do as it is quite cheap to host!), your content will still be perfectly readable as a static site.
- to OurBigBook.com to get awesome multi-user features like topics and likes
- as HTML files to a static website, which you can host yourself for free on many external providers like GitHub Pages, and remain in full control
Figure 2. You can publish local OurBigBook lightweight markup files to either OurBigBook.com or as a static website.Figure 3. Visual Studio Code extension installation.Figure 5. . You can also edit articles on the Web editor without installing anything locally. Video 3. Edit locally and publish demo. Source. This shows editing OurBigBook Markup and publishing it using the Visual Studio Code extension. - Infinitely deep tables of contents:
All our software is open source and hosted at: github.com/ourbigbook/ourbigbook
Further documentation can be found at: docs.ourbigbook.com
Feel free to reach our to us for any help or suggestions: docs.ourbigbook.com/#contact





