Showing posts with label self-organization. Show all posts
Showing posts with label self-organization. Show all posts

Tuesday, 6 June 2023

Complexity in Dynamic Academic Systems from Topology and Genetic Grammars | Chapter 13 | Research Highlights in Language, Literature and Education Vol. 6

 This affiliate sheds a new light on the hypothetical foundations of the main contemporary drives towards the adequacy of the education-learning process to the excellent changes of our society. An academic environment can progress from chaos to stabilised states, and this hypothetical study will present and also discuss a turbulent simulation model that addresses this. This study will determine a consistent institution for new methodological initiatives that support shifts in the usual paradigm of instruction and learning.The study was planned from the classical literature on disorganized systems accompanying some original hypothetical implementations.This study is based on the configuration of a DAS toy model by way of computational simulations carried out on a practically built haphazard academic environment. The individuals were top-secret by profiles of orderly abilities represented by twofold strings outlining a topology. Such the earth's features fixed the type of the strings and their transcriptions to unit of the mathematical system system. To imitate the evolution of bureaucracy, three differential equations were numerically linked in convolution, individual of which fashioned reference to those strings transfered into decimal signs. The simulations were run using the Maple and R programming languages.Simulations displayed attractors for different occasion intervals of redundancies. For wide ranges of individual propensities to cultivate the six abilities illustrated in the work it was noticed that the dissimilarities of individual profiles induced attractors accompanying narrow boundaries. Growing the number of things, this tendency was uphold.   The study displayed simulations of academic systems containing professors and researchers communicating in a stable environment, emphasize how these structures could change from chaotic configurations to stability and produce clear attractors.

Author(s) Details:

Nilo Serpa,
Centro Universitário ICESP, Brasília,Brazil.

Marcelo Alcântara,
Centro Universitário ICESP, Brasília,Brazil.

Emilly Moura da Cruz,
GAUGE-F Scientific Researches, Brazil.

Please see the link here: https://stm.bookpi.org/RHLLE-V6/article/view/10809

Tuesday, 1 February 2022

Study of the Impact of the Light-Matter-Interaction on the Human Herpesviruses: A Quantum Field Approach | Chapter 08 | Innovations in Science and Technology Vol. 2

 The viruses HSV-1, HSV-2, and HHV-3 are regarded special members of the family of human herpesviruses (members of the Herpesviridae). This work explains three self-organized processes of molecules infected by the family of human herpesviruses (members of the Herpesviridae) (varicella zoster). These three types of viruses have two noticeable consequences. To begin with, they are dormant and viable, and most people are unaware that they are infected. Viruses, on the other hand, resurface decades later. The result is shingles, which can last for months or even years. Dermatomes on the thoracic and face areas are another effect of this herpes family (e.g. shut down of eyes or injury of the cornea). The effect of light on this virus family is according to their geographical location. They live in the main sensory neurons of one of the PNS's dorsal root ganglions. The photoreaction occurs only if the humans are infected when they are contracted to non-infected people. Second, the laser paradigm, which is a well-known model of self-organization, describes the light-matter interaction. This paradigm is used to investigate two photo-sensitive mechanisms in malignant molecules infected with herpes viruses. The first step entails the reawakening of dormant virus-encoded growth factors, as well as the resurrection of carcinogenic polypeptides derived from the suppressor gene. An electron is transferred from the ground state to an exited state by a light field in this type of activation (laser model). The laser model's second application focuses on phototransduction, with a focus on the signal transduction of second messengers that activate transcription factors. As a result, the laser model is thought to be relevant to both types of operations. Because this technique does not merely apply pure mathematical assessments, but also incorporates the explicit influence of damping effects and the impact of fluctuating forces, all computations in this contribution are done in the framework of the quantum theory of fields. A third simplified transduction process (convention) is also offered, which provides the general framework of the translation of one molecule into another. Four focal points are used to highlight the study's stated goals. First, the development of the dynamics of herpesvirus proliferation, which involves the threshold at which latent malignant proteins become active molecules. The equations of motion, on the other hand, describe the coherent propagation of wave solutions, which spread out far faster than particle solutions (classical view). Third, understanding the cellular and neurological quantum processes that occur during the proliferation of malignant proteins allows unique quantum sensors to identify cancer very early. Fourth, on the basis of such quantitative descriptions, innovative quantum detectors with extremely high susceptibility, such as magnetic fields (MRT), will be built.


Author(S) Details

Paul Levi
Institute for Parallel and Distributed Systems (IPVS), Faculty for Informatics, Electrical Engineering and Information Technology, University Stuttgart, Germany.

View Book:- https://stm.bookpi.org/IST-V2/article/view/5428