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A new computational approach to reduce the signal from continuously recording gravimeters for the effect of atmospheric temperature

机译:一种新的计算方法,可减少连续记录重力仪的信号对大气温度的影响

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摘要

The experience of several authors has shown that continuous measurements of the gravity field, accomplished through spring devices, are strongly affected by changes of the ambient temperature. The apparent, temperature-driven, gravity changes can be up to one order of magnitude higher than the expected changes of the gravity field. Since these effects are frequency-dependent and instrument-related, they must be removed through non-linear techniques and in a case-by-case fashion. Past studies have demonstrated the effectiveness of a Neuro-Fuzzy algorithm as a tool to reduce continuous gravity sequences for the effect of external temperature changes. In the present work, an upgraded version of this previously employed algorithm is tested against the signal from a gravimeter, which was installed in two different sites over consecutive 96-day and 163-day periods. The better performance of the new algorithm with respect to the previous one is proven. Besides, inferences about the site and/or seasonal dependence of the model structure are reported. (c) 2006 Elsevier B.V. All rights reserved.
机译:几位作者的经验表明,通过弹簧装置完成的重力场的连续测量受环境温度变化的强烈影响。温度驱动下的表观重力变化可能比重力场的预期变化高出一个数量级。由于这些效应与频率有关且与乐器有关,因此必须通过非线性技术并根据具体情况将其消除。过去的研究已经证明了神经模糊算法作为减少连续重力序列以应对外部温度变化影响的工具的有效性。在当前的工作中,针对重力仪的信号测试了该先前采用的算法的升级版本,该重力仪在连续的96天和163天的时间内安装在两个不同的位置。与以前的算法相比,新算法的性能更好。此外,报告了关于模型结构的位置和/或季节依赖性的推论。 (c)2006 Elsevier B.V.保留所有权利。

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