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Modelling approaches in biomechanics

机译:生物力学建模方法

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摘要

Conceptual, physical and mathematical models have all proved useful in biomechanics. Conceptual models, which have been used only occasionally, clarify a point without having to be constructed physically or analysed mathematically. Some physical models are designed to demonstrate a proposed mechanism, for example the folding mechanisms of insect wings. Others have been used to check the conclusions of mathematical modelling. However, others facilitate observations that would be difficult to make on real organisms, for example on the flow of air around the wings of small insects. Mathematical models have been used more often than physical ones. Some of them are predictive, designed for example to calculate the effects of anatomical changes on jumping performance, or the pattern of flow in a 3D assembly of semicircular canals. Others seek an optimum, for example the best possible technique for a high jump. A few have been used in inverse optimization studies, which search for variables that are optimized by observed patterns of behaviour. Mathematical models range from the extreme simplicity of some models of walking and running, to the complexity of models that represent numerous body segments and muscles, or elaborate bone shapes. The simpler the model, the clearer it is which of its features is essential to the calculated effect. [References: 41]
机译:概念,物理和数学模型都已证明对生物力学有用。仅偶尔使用的概念模型可以阐明一个要点,而无需进行物理构造或数学分析。设计了一些物理模型来演示提出的机制,例如昆虫翅膀的折叠机制。其他人已被用来检查数学建模的结论。但是,其他方法则有助于观察难以在真实生物上进行的观察,例如在小昆虫翅膀周围的空气流动方面。数学模型的使用比物理模型更多。其中一些是预测性的,例如用于计算解剖学变化对跳跃性能的影响,或者用于计算半圆形管的3D组件中的流动模式。其他人则寻求最佳方案,例如跳高的最佳技术。逆向优化研究中使用了一些方法,这些方法通过观察行为模式来优化变量。数学模型的范围从某些步行和跑步模型的极度简单性到代表众多身体部位和肌肉或复杂骨骼形状的模型的复杂性。模型越简单,就清楚哪个功能对计算的效果至关重要。 [参考:41]

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