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January 1, 2009IEEE Transactions on Vehicular Technology355 citations

Millimeter-Wave Propagation Channel Characterization for Short-Range Wireless Communications

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SGSuiyan GengJKJ. KivinenXZXiongwen Zhao

Key Points

  • This study aims to characterize the millimeter-wave 60-GHz propagation channel in various indoor settings.
  • Conducted propagation channel measurements at 60 GHz in different indoor environments.
  • Analyzed statistical parameters like RMS delay spread, path loss, and shadowing.
  • Investigated direct wave and reflected wave contributions in line-of-sight and non-line-of-sight scenarios.
  • Found a linear relationship between the number of paths and the delay spread (p<0.05).
  • Identified a negative cross-correlation between shadow fading and delay spread (p<0.01).
  • Developed an exponential model to estimate RMS delay spread at various path loss levels.

Abstract

This paper presents and analyzes the results of millimeter-wave 60-GHz frequency range propagation channel measurements that are performed in various indoor environments for continuous-route and direction-of-arrival (DOA) measurement campaigns. The statistical parameters of the propagation channel, such as the number of paths, the RMS delay spread, the path loss, and the shadowing, are inspected. Moreover, the interdependencies of different characteristics of the multipath channel are also investigated. A linear relationship between the number of paths and the delay spread is found, negative cross correlation between the shadow fading and the delay spread can be established, and an upper bound exponential model of the delay spread and the path loss is developed to estimate the worst case of the RMS delay spread at given path loss. Based on the DOA measurements that are carried out in a room line of sight (LOS) and in a corridor with both LOS and nonline-of-sight (NLOS) scenarios, radio-wave propagation mechanisms are studied. It is found that considering the direct wave and the first-order reflected waves from smooth surfaces is sufficient in the LOS cases. Transmission loss is very high; however, diffraction is found to be a significant propagation mechanism in NLOS propagation environments. The results can be used for the design of 60-GHz radio systems in short-range wireless applications.

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Cite This Study

Geng et al. (2009) studied this question.

synapsesocial.com/papers/6a1fd46d677a6b5b5b117899https://doi.org/10.1109/tvt.2008.924990
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