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在垂直跳跃期间,系统功率估计中的测量偏差。

Measurement bias in estimates of system power during a vertical jump.

机构信息

Department of Strength and Conditioning, Australian Institute of Sport, Bruce, Australia.

Research Institute of Sport and Exercise, University of Canberra, Bruce, Australia.

出版信息

Sports Biomech. 2022 Feb;21(2):226-238. doi: 10.1080/14763141.2019.1649715. Epub 2019 Oct 1.

Abstract

This investigation sought to quantify the level of measurement agreement in system force, velocity and power values derived across three commonly applied assessment techniques during a countermovement jump (CMJ). Twenty-five male national representative athletes completed three CMJs under unloaded (0%) and loaded (40%) jump conditions. Associated values of force, velocity and power were captured simultaneously from either a linear optical encoder (LOE) or force plate (FP) and then compared to the gold-standard reference values derived from a combined force plate and three-dimensional motion capture system (FPMC). The LOE significantly ( < 0.001) overestimated and failed to meet the minimum level of relatedness (<0.80) for measures of peak velocity, peak force, peak power and mean power across both conditions compared to the FPMC reference values. A reduction in measurement dispersion and bias was, however, evident during the loaded condition. The FP significantly ( < 0.05) underestimated mean and peak power across both conditions, yet measurement bias and dispersion remained consistent. These findings highlight a disparity in measurement agreement in force, velocity and power values across alternative assessment techniques and loads. Such variance in measurement agreement will uniquely alter derived force-velocity profiles, and thus the prescription of training loads to maximise system power during unrestricted CMJs.

摘要

本研究旨在量化在反跳(CMJ)过程中三种常用评估技术所得到的系统力、速度和功率值的测量一致性水平。25 名男性国家代表运动员在无负载(0%)和负载(40%)跳条件下完成了三次 CMJ。线性光学编码器(LOE)或力板(FP)同时捕获相关的力、速度和功率值,然后与源自组合力板和三维运动捕捉系统(FPMC)的黄金标准参考值进行比较。与 FPMC 参考值相比,LOE 在两个条件下均显著(<0.001)高估且未能达到最小相关性(<0.80),无法测量峰值速度、峰值力、峰值功率和平均功率。然而,在加载条件下,测量分散度和偏差减小。FP 在两个条件下均显著(<0.05)低估平均和峰值功率,但测量偏差和分散度保持一致。这些发现突显了替代评估技术和负载下的力、速度和功率值的测量一致性存在差异。这种测量一致性的差异将独特地改变得出的力-速度曲线,从而改变为最大限度地提高不受限制的 CMJ 系统功率而规定的训练负荷。

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