地下矿山协同地理定位:一种利用时空多样性的新型指纹定位技术

Shehadi Dayekh, S. Affes, N. Kandil, C. Nerguizian
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引用次数: 13

摘要

地下窄脉矿山的室内环境复杂,需要复杂的定位技术来维持基本的安全措施。传统的定位系统在室外通道中使用三角定位技术,而指纹定位技术主要用于矿井等更复杂的室内环境。基于通道脉冲响应(CIR)的指纹定位技术与人工神经网络(ann)相结合是地下矿山准曲线拓扑研究的主要技术之一。本文在协作记忆辅助方法中创新了一种基于ir的定位技术,该技术利用了所收集指纹的时间(来自不同的时间实例)和空间(来自不同的空间位置)多样性。在巷道型窄脉矿山空间范围内引入记忆型特征的协同定位技术,显著提高了定位系统的准确性、精密度和鲁棒性。协作记忆辅助技术能够在90%的时间内以小于25厘米的精度定位发射器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cooperative geo-location in underground mines: A novel fingerprint positioning technique exploiting spatio-temporal diversity
Underground narrow-vein mines result in complex indoor scenarios which require sophisticated localization techniques to maintain basic security measures. While some traditional localization systems use the triangulation techniques for outdoor channels, fingerprint positioning techniques are mostly used in more complex indoor environments like mines. One of the techniques exploited in the quasi-curvilinear topology of underground mines is the Channel Impulse Response (CIR) based fingerprint positioning combined with Artificial Neural Networks (ANNs). This article innovates a CIR-based positioning technique within a cooperative memory-assisted approach that exploits both the temporal (from different time instances) and spatial (from different space positions) diversities of the collected fingerprints. Introducing memory-type signatures in a cooperative localization technique within the spatial confinements of the tunnel-shaped narrow-vein mines significantly increases the accuracy, precision and robustness of the localization system. The cooperative memory-assisted technique is capable of localizing a transmitter with an accuracy of less than 25 cm 90% of the time.
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