Glosario de Dinámica de Sistemas
Este es el Glosario de Dinámica del Sistema compilado por David N. Ford y aceptado por Yaman Barlas. Fue publicado el 7 de noviembre de 2019 aquí: https://doi.org/10.1002/sdr.1641.
Introducción
Como un diccionario de enfoque limitado, este glosario define términos de uso común que son centrales para la Dinámica de Sistemas tradicional y algunos términos más generales que tienen significados especiales o importancia particular dentro de la dinámica del sistema. No se incluyen los términos generales que no tienen significados especiales en la Dinámica de Sistemas, los términos específicos de la aplicación y los términos específicos del software. Se remite al lector a la literatura relevante para esas definiciones, así como a descripciones detalladas, explicaciones y ejemplos de los términos incluidos aquí.
Haga clic en el concepto para ver la descripción completa (en Inglés).
Concept | Description |
|---|---|
Loop dominance | A characteristic of feedback systems in which a loop is strong enough to determine the behavior mode of a part of the system. In a system with multiple loops, the mathematical relations, magnitudes and algebraic signs of variables determine what kind of behavior is dominant in any time period. |
Loop polarity | See feedback loop polarity. |
Material delay | A continuous delay that captures the time delay in the flow of conserved material through a process. |
Mental model | A relatively enduring and accessible, but limited, internal conceptual representation of a system (historical, existing, or projected) whose structure is analogous to the perceived structure of that system. Mental models represent the relationships and assumptions about a system held in a person's mind. |
Model boundary | See boundary. |
Model credibility (validity) | How well a model represents a given problem; a model's suitability for a particular purpose. A model is credible/valid if it can accomplish what is expected of it, as demonstrated by structure and behavior tests. |
Model justification (validation) | The process of developing confidence in a model's credibility and usefulness, performed with tests of model structure similarity to actual structures, simulated behaviors that reflect the behaviors of the system modeled, and ultimately impacts of the model suggestions on actual systems and problems. |
Negative feedback | Feedback that works against deviations from a goal. In isolation or if dominant, negative feedback generates goal‐seeking behavior. |
Nonlinear relationship | A causal relationship between two variables in which the change in the impacted variable is not directly proportional to the change in the impacting variable. |
Open‐loop thinking | Approaching a problem with an exogenous perspective, without applying the importance of feedback (endogenous structure). |
Oscillation | Behavior exhibited by a second‐order or a higher‐order system in which the stock value increases and decreases cyclically over time. Three types of oscillation are sustained, where the amplitude stays constant; expanding, where the amplitude increases; and dampened, where the amplitude decreases. |
Overshoot and collapse | A behavior mode in which a system variable increases beyond the equilibrium condition, often destroying its ability to sustain itself, and then collapses to lower equilibrium conditions. See growth with overshoot. |
Referencias:
-
Argos Press. System dynamics applications: System dynamics glossary. Available: http://www.systemdynamicsapplications.com/glossary/ [4 September 2019]. Google Scholar
-
Doyle J, Ford DN. 1998. Mental model concepts for system dynamics research. System Dynamics Review 14( 1): 3– 29. Wiley Online Library Web of Science®Google Scholar
-
Lannon C. The vocabulary of systems thinking: A pocket guide. Systems thinker. Available: https://thesystemsthinker.com/the-vocabulary-of-systems-thinking-a-pocket-guide/ [4 September 2019]. Google Scholar
-
Road Maps Glossary. D‐memo D‐4498. Available: https://ocw.mit.edu/courses/sloan-school-of-management/15-988-system-dynamics-self-study-fall-1998-spring-1999/readings/glossary.pdf [4 September 2019]. Google Scholar
-
Sterman J. 2000. Business dynamics: systems thinking and modeling for a complex world. McGraw‐Hill: New York. Google Scholar
-
System Dynamics. Finding and resolving the root causes of the sustainability problem. Thwink.org. Available: https://www.thwink.org/sustain/glossary/SystemDynamics.htm [4 September 2019]. Google Scholar
-
Yearworth M. 2014. A brief introduction to system dynamics modeling. http://www.grounded.systems/wp-content/uploads/2015/02/SD-Introduction-MY-241014.pdfGoogle Scholar
