16 research outputs found
Point Cloud-based Proactive Link Quality Prediction for Millimeter-wave Communications
This study demonstrates the feasibility of point cloud-based proactive link
quality prediction for millimeter-wave (mmWave) communications. Previous
studies have proposed machine learning-based methods to predict received signal
strength for future time periods using time series of depth images to mitigate
the line-of-sight (LOS) path blockage by pedestrians in mmWave communication.
However, these image-based methods have limited applicability due to privacy
concerns as camera images may contain sensitive information. This study
proposes a point cloud-based method for mmWave link quality prediction and
demonstrates its feasibility through experiments. Point clouds represent
three-dimensional (3D) spaces as a set of points and are sparser and less
likely to contain sensitive information than camera images. Additionally, point
clouds provide 3D position and motion information, which is necessary for
understanding the radio propagation environment involving pedestrians. This
study designs the mmWave link quality prediction method and conducts realistic
indoor experiments, where the link quality fluctuates significantly due to
human blockage, using commercially available IEEE 802.11ad-based 60 GHz
wireless LAN devices and Kinect v2 RGB-D camera and Velodyne VLP-16 light
detection and ranging (LiDAR) for point cloud acquisition. The experimental
results showed that our proposed method can predict future large attenuation of
mmWave received signal strength and throughput induced by the LOS path blockage
by pedestrians with comparable or superior accuracy to image-based prediction
methods. Hence, our point cloud-based method can serve as a viable alternative
to image-based methods.Comment: Submitted to IEEE Transactions on Machine Learning in Communications
and Networkin
Spatial Domain Resource Sharing for Overlapping Cells in Indoor Environment
As microcell wireless systems become more widespread, intercell interference among the access points will increase due to the limited frequency resource. In the overlapping cell scenario, radio resources should be shared by multiple cells. Although time and frequency resource sharing has been described in many papers, there is no detailed report on dynamic spatial resource sharing among multiple cells for microcell wireless systems. Thus, we present the effectiveness of spatial resource sharing among two access points. We introduce two scenarios based on the zero forcing method; one is the primary-secondary AP scenario and the other is the cooperative AP scenario. To evaluate the transmission performance of spatial resource sharing, channel matrices are measured in an indoor environment. The simulation results using the measured channel matrices show the potential of spatial resource sharing
Experimental Results of Network-Assisted Interference Suppression Scheme Using Adaptive Beam-Tilt Switching
This paper introduces a network-assisted interference suppression scheme using beam-tilt switching per frame for wireless local area network systems and its effectiveness in an actual indoor environment. In the proposed scheme, two access points simultaneously transmit to their own desired station by adjusting angle of beam-tilt including transmit power assisted from network server for the improvement of system throughput. In the conventional researches, it is widely known that beam-tilt is effective for ICI suppression in the outdoor scenario. However, the indoor effectiveness of beam-tilt for ICI suppression has not yet been indicated from the experimental evaluation. Thus, this paper indicates the effectiveness of the proposed scheme by analyzing multiple-input multiple-output channel matrices from experimental measurements in an office environment. The experimental results clearly show that the proposed scheme offers higher system throughput than the conventional scheme using just transmit power control
広帯域MIMOシステムにおける空間リソース制御法の研究
京都大学0048新制・課程博士博士(情報学)甲第15692号情博第404号新制||情||73(附属図書館)28229京都大学大学院情報学研究科通信情報システム専攻(主査)教授 守倉 正博, 教授 吉田 進, 教授 酒井 英昭学位規則第4条第1項該当Doctor of InformaticsKyoto UniversityDA
Game-theoretic analysis of multibandwidth channel selection by coordinated APs in WLANs
As the demand for high-throughput communications in wireless LANs (WLAN) increases, the need for expanding channel bandwidth also increases. However, the use of wider band channels results in a decrease in the number of available channels because the total available bandwidth for WLAN is limited. Therefore, if multiple access points (APs) are in proximity and the cells overlap, it is difficult for each AP to use an orthogonal channel and competition increases between APs using the same channel. Coordination of APs is one promising approach; however, it is impractical to control all APs in WLAN systems. To cope with this problem, we proposed to analyze throughput performances of a multibandwidth channel selection by the coordinating APs at Nash equilibria, which can be considered as operating points for independent channel selection by APs. To clarify the effect of coordinating APs, we assume a simple scenario where the cells of three or more APs overlap, and each AP can select multibandwidth channels to maximize their own throughput. Through game-theoretic analysis, we find that the coordinated APs are able to select channels more effectively than if each AP independently selects channels. Consequently, the total throughput of the coordinated APs at Nash equilibria is significantly improved