Situational Awareness Assisted MmWave Vehicular Beam Training
收藏IEEE2019-04-02 更新2026-04-17 收录
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https://ieee-dataport.org/documents/situational-awareness-assisted-mmwave-vehicular-beam-training
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Data and codes for journal paperMmWave Vehicular Beam Training with Situational Awareness Using Machine Learningsubmitted to IEEE Access.The code assumes Python 3.The datasetWe simulate and collect the data in Ray tracing simulation in an urban canyon. An example is given in Fig. 2 and Fig. 3 in the paper. The dataset includes the features (defined situational awareness vector of a certain receiver) and the beam RSRP for different beam pairs used. DFT beam codebook is deployed at the transmitter and receiver.Noisy situational awareness featuresIn the paper, we consider several different sources of noise for situational awareness. We include the dataset with localization error, different connecting rates, and different location reporting frequencies.Channel statistics with UPAs of different sizesThe dataset includes the channel information with 4x4, 4x8, 16X16 UPA deployed.To limit the size of data which includes 16^4 = 65536 beam RSRP of over 100K samples, we only include the information of the top 100 beams (including the beam power and the beam pair index) in the data. The beam index file can be found in beam_index_nx_XXX_ny_XXX. csv and the corresponding beam RSRP is in channel_power_nx_XXX_ny_XXX.csv.Due to the size limit of uploaded data in github, the data can be retrieved fromGoogle Drivethrough the following link.https://drive.google.com/drive/u/0/folders/1v8TmiMa2ATYmFxn2nB9sGDS5e3UcCk_B
提供机构:
THE UNIVERSITY OF TEXAS AT AUSTIN
创建时间:
2019-04-02



