Automated Author ProfileWang, Quanfeng
Technical University of Munich0009-0009-3099-461x
Wang, Quanfeng
Current S-Index
Sum of Dataset Indices for all datasets
Average Dataset Index per Dataset
Average Dataset Index per dataset
Total Datasets
Total datasets for this author
Average FAIR Score
Average FAIR Score per dataset
Total Citations
Total citations to the author's datasets
Total Mentions
Total mentions of the author's datasets
S-Index Interpretation
The S-Index (Sharing Index) is a comprehensive metric that represents the cumulative impact of all your datasets. It is calculated as the sum of Dataset Index scores across all your claimed datasets.
What it means:
- A higher S-index indicates greater overall impact of your datasets relative to typical datasets in their fields of research
- The S-Index grows as you add more datasets or as existing datasets gain more citations and mentions
- It provides a single number to track your research data impact over time
Current S-Index: 1.8 (sum of 4 datasets Dataset Index scores)
More information here.
S-Index Over Time
Cumulative Citations Over Time
Cumulative Mentions Over Time
Datasets
TUM_HFT_WiFi_Mannequins_DATASET.zip contains measurements from a planar office scanner system installed on a side wall of a typical office room, at the Chair of High-Frequency Engineering, Technical University of Munich. Two video files and a PowerPoint presentation illustrating the measurement campaign are provided. Overall, there are 68 different measurements belonging to different arrangements of plastic/wooden mannequins covered with zinc-aluminum spray which are placed and moved within the office.mannequin_[Filename*].mat: Continuous wave measurement data from a planar scanner. The data is stored in MATLAB data format. The transmission and reflection coefficients between a fixed transmit antenna and a moving (on the planar scanner) antenna, both vertically polarized, are measured for various arrangements of mannequins within a typical office environment.Β freqs [21x1]: frequencies of measurementsS11 [162x80x21]: complex-valued reflection coefficient for each measurement location and frequencyS21 [162x80x21]: complex-valued transmission value for each measurement location and frequencyX/Y [162x80]: π₯- and π¦-location of the measurement samples
Authors
- Paulus, Alexander H. ;
- Wang, Quanfeng ;
- Eibert, Thomas F.
TUM_HFT_WiFi_Mannequins_DATASET.zip contains measurements from a planar office scanner system installed on a side wall of a typical office room, at the Chair of High-Frequency Engineering, Technical University of Munich. Two video files and a PowerPoint presentation illustrating the measurement campaign are provided. Overall, there are 68 different measurements belonging to different arrangements of plastic/wooden mannequins covered with zinc-aluminum spray which are placed and moved within the office.mannequin_[Filename*].mat: Continuous wave measurement data from a planar scanner. The data is stored in MATLAB data format. The transmission and reflection coefficients between a fixed transmit antenna and a moving (on the planar scanner) antenna, both vertically polarized, are measured for various arrangements of mannequins within a typical office environment.Β freqs [21x1]: frequencies of measurementsS11 [162x80x21]: complex-valued reflection coefficient for each measurement location and frequencyS21 [162x80x21]: complex-valued transmission value for each measurement location and frequencyX/Y [162x80]: π₯- and π¦-location of the measurement samples
Authors
- Paulus, Alexander H. ;
- Wang, Quanfeng ;
- Eibert, Thomas F.
Four distinct datasets are provided for microwave imaging purposes.Ray-tracing_human_body.zip contains the ray-tracing simulation results for a male body model, while Ray-tracing_human_body_ground.zip includes the same simulation with an additional ground plane. The detailed data files and formats are as follows:[Filename*].obj: Wavefront .obj file, 3D model used for ray tracing simulation.[Filename*]EM.mat: containing ray-tracing results, specifying the received electric fields at each receiver induced by transmitters at each frequency. It contains the following arraysfreq : simulation frequenciesresults : a vector of structures, each containing the attributes {βEβ, βfreqβ}. The length of the vector corresponds to the length of βfreqβ, and each βEβ is a 3-dimensional array of size (num_of_Tx, num_of_Rx, 3). This array stores the π₯-, π¦-, and π§-components of the electric fields at each receiver induced by transmitters.tx : π₯-, π¦- and π§-coordinates of each transmitter with a size of (3, num_of_Tx)rx : π₯-, π¦- and π§-coordinates of each receive with a size of (3, num_of_Rx)aimg[Filename*].mat: MATLAB imaging data generated by the back-projection algorithm, where in particularaimg.X : π₯-positions of the imaging domainaimg.Y : π¦-positions of the imaging domainaimg.Z : π§-positions of the imaging domainaimg.fieldnames : names of the included different Cartesian vector components of the imaged sources, e.g., aimg.fieldnames = {βπ₯β, βπ¦β, βπ§β}aimg.x : π₯-polarization of the polarimetric imaging resultsaimg.y : π¦-polarization of the polarimetric imaging resultsaimg.z : π§-polarization of the polarimetric imaging resultsFEKO_Simulations.zip includes two full-wave simulations conducted with FEKO. One simulation features three perfectly electrically conducting (PEC) spheres illuminated by a Hertzian dipole, while the other involves a PEC plate illuminated by a horn antenna.[Filename*].efe: ASCII file containing simulated near-field data from the full wave simulation data FEKO, where the key parameters such as frequencies, measured positions, real and imaginary components of the electric fields are included.aimg_[Filename*].mat: MATLAB imaging data generated by the algorithm introduced in [1], [2], and HOLDEN Deliverable D3.2, where in particularaimg.X : π₯-positions of the imaging domainaimg.Y : π¦-positions of the imaging domainaimg.Z : π§-positions of the imaging domainaimg.fieldnames : names of the included different Cartesian vector components of the imaged sources, e.g., aimg.fieldnames = {βπ₯β, βπ¦β, βπ§β}aimg.x : π₯-polarization of the polarimetric imaging resultsaimg.y : π¦-polarization of the polarimetric imaging resultsaimg.z : π§-polarization of the polarimetric imaging resultsMeasurements_UAV_AnechoicChamber.zip provides measurements of a UAV collected at the Chair of High-Frequency Engineering, Technical University of Munich.[Filename*].nsiascii : containing near-field measurement data, typically S12 or S21 parameters in dual-polarization from a vector network analyzer (VNA). The frequency information is embedded in the filename, e.g., 6000000000.nsiascii indicates a frequency of 6 GHz. Other parameters, such as probe positions, VNA setups, as well as the amplitude and phase of the measured signals, are also included in this file.aimg_[Filename*].mat: MATLAB imaging data generated by the algorithm introduced in [1], [2], and HOLDEN Deliverable D3.2, where in particularaimg.X : π₯-positions of the imaging domainaimg.Y : π¦-positions of the imaging domainaimg.Z : π§-positions of the imaging domainaimg.fieldnames : names of the included different Cartesian vector components of the imaged sources, e.g., aimg.fieldnames = {βπ₯β, βπ¦β, βπ§β}aimg.x : π₯-polarization of the polarimetric imaging resultsaimg.y : π¦-polarization of the polarimetric imaging resultsaimg.z : π§-polarization of the polarimetric imaging resultsTUM_HFT_WiFi_Mannequins_DATASET.zip contains three measurements from a planar office scanner system installed on a side wall of a typical office room, also at the Chair of High-Frequency Engineering, Technical University of Munich. One video file and one PowerPoint presentation illustrating the measurement campaign are provided. The three different measurements belong to three different arrangements of plastic/wooden mannequins covered with zinc-aluminum spray, where either none one or two mannequins are present within the office.mannequin_[Filename*].mat: Continuous wave measurement data from a planar scanner. The data is stored in MATLAB data format. The transmission and reflection coefficients between a fixed transmit antenna and a moving (on the planar scanner) antenna, both vertically polarized, are measured for various arrangements of mannequins within a typical office environment.Β freqs [21x1]: frequencies of measurementsS11 [162x80x21]: complex-valued reflection coefficient for each measurement location and frequencyS21 [162x80x21]: complex-valued transmission value for each measurement location and frequencyX/Y [162x80]: π₯- and π¦-location of the measurement samplesΒ More detailed descriptions of the dataset can be found in HOLDEN Deliverable D3.3. The ray-tracing simulation framework and the holography imaging method are introduced in Deliverables D3.1 and D3.2, respectively.Part of the data and results are found in:[1] Q. Wang and T. F. Eibert, βMicrowave imaging of electromagnetic wave absorbers in an antenna measurement chamber,β in IEEE Int. Symp. Antennas Propag., Jul. 2024, pp. 1139β1140.[2] Q. Wang, M. M. Saurer, and T. F. Eibert, β3D near-field passive radar imaging utilizing phase corrected frequency domain inverse source reconstructions,β IEEE Trans. Antennas Propag., submitted, also to TechRxiv.
Authors
- Wang, Quanfeng ;
- Paulus, Alexander H. ;
- Na, Han ;
- Saurer, Matthias M. ;
- Eibert, Thomas F.
Four distinct datasets are provided for microwave imaging purposes.Ray-tracing_human_body.zip contains the ray-tracing simulation results for a male body model, while Ray-tracing_human_body_ground.zip includes the same simulation with an additional ground plane. The detailed data files and formats are as follows:[Filename*].obj: Wavefront .obj file, 3D model used for ray tracing simulation.[Filename*]EM.mat: containing ray-tracing results, specifying the received electric fields at each receiver induced by transmitters at each frequency. It contains the following arraysfreq : simulation frequenciesresults : a vector of structures, each containing the attributes {βEβ, βfreqβ}. The length of the vector corresponds to the length of βfreqβ, and each βEβ is a 3-dimensional array of size (num_of_Tx, num_of_Rx, 3). This array stores the π₯-, π¦-, and π§-components of the electric fields at each receiver induced by transmitters.tx : π₯-, π¦- and π§-coordinates of each transmitter with a size of (3, num_of_Tx)rx : π₯-, π¦- and π§-coordinates of each receive with a size of (3, num_of_Rx)aimg[Filename*].mat: MATLAB imaging data generated by the back-projection algorithm, where in particularaimg.X : π₯-positions of the imaging domainaimg.Y : π¦-positions of the imaging domainaimg.Z : π§-positions of the imaging domainaimg.fieldnames : names of the included different Cartesian vector components of the imaged sources, e.g., aimg.fieldnames = {βπ₯β, βπ¦β, βπ§β}aimg.x : π₯-polarization of the polarimetric imaging resultsaimg.y : π¦-polarization of the polarimetric imaging resultsaimg.z : π§-polarization of the polarimetric imaging resultsFEKO_Simulations.zip includes two full-wave simulations conducted with FEKO. One simulation features three perfectly electrically conducting (PEC) spheres illuminated by a Hertzian dipole, while the other involves a PEC plate illuminated by a horn antenna.[Filename*].efe: ASCII file containing simulated near-field data from the full wave simulation data FEKO, where the key parameters such as frequencies, measured positions, real and imaginary components of the electric fields are included.aimg_[Filename*].mat: MATLAB imaging data generated by the algorithm introduced in [1], [2], and HOLDEN Deliverable D3.2, where in particularaimg.X : π₯-positions of the imaging domainaimg.Y : π¦-positions of the imaging domainaimg.Z : π§-positions of the imaging domainaimg.fieldnames : names of the included different Cartesian vector components of the imaged sources, e.g., aimg.fieldnames = {βπ₯β, βπ¦β, βπ§β}aimg.x : π₯-polarization of the polarimetric imaging resultsaimg.y : π¦-polarization of the polarimetric imaging resultsaimg.z : π§-polarization of the polarimetric imaging resultsMeasurements_UAV_AnechoicChamber.zip provides measurements of a UAV collected at the Chair of High-Frequency Engineering, Technical University of Munich.[Filename*].nsiascii : containing near-field measurement data, typically S12 or S21 parameters in dual-polarization from a vector network analyzer (VNA). The frequency information is embedded in the filename, e.g., 6000000000.nsiascii indicates a frequency of 6 GHz. Other parameters, such as probe positions, VNA setups, as well as the amplitude and phase of the measured signals, are also included in this file.aimg_[Filename*].mat: MATLAB imaging data generated by the algorithm introduced in [1], [2], and HOLDEN Deliverable D3.2, where in particularaimg.X : π₯-positions of the imaging domainaimg.Y : π¦-positions of the imaging domainaimg.Z : π§-positions of the imaging domainaimg.fieldnames : names of the included different Cartesian vector components of the imaged sources, e.g., aimg.fieldnames = {βπ₯β, βπ¦β, βπ§β}aimg.x : π₯-polarization of the polarimetric imaging resultsaimg.y : π¦-polarization of the polarimetric imaging resultsaimg.z : π§-polarization of the polarimetric imaging resultsTUM_HFT_WiFi_Mannequins_DATASET.zip contains three measurements from a planar office scanner system installed on a side wall of a typical office room, also at the Chair of High-Frequency Engineering, Technical University of Munich. One video file and one PowerPoint presentation illustrating the measurement campaign are provided. The three different measurements belong to three different arrangements of plastic/wooden mannequins covered with zinc-aluminum spray, where either none one or two mannequins are present within the office.mannequin_[Filename*].mat: Continuous wave measurement data from a planar scanner. The data is stored in MATLAB data format. The transmission and reflection coefficients between a fixed transmit antenna and a moving (on the planar scanner) antenna, both vertically polarized, are measured for various arrangements of mannequins within a typical office environment.Β freqs [21x1]: frequencies of measurementsS11 [162x80x21]: complex-valued reflection coefficient for each measurement location and frequencyS21 [162x80x21]: complex-valued transmission value for each measurement location and frequencyX/Y [162x80]: π₯- and π¦-location of the measurement samplesΒ More detailed descriptions of the dataset can be found in HOLDEN Deliverable D3.3. The ray-tracing simulation framework and the holography imaging method are introduced in Deliverables D3.1 and D3.2, respectively.Part of the data and results are found in:[1] Q. Wang and T. F. Eibert, βMicrowave imaging of electromagnetic wave absorbers in an antenna measurement chamber,β in IEEE Int. Symp. Antennas Propag., Jul. 2024, pp. 1139β1140.[2] Q. Wang, M. M. Saurer, and T. F. Eibert, β3D near-field passive radar imaging utilizing phase corrected frequency domain inverse source reconstructions,β IEEE Trans. Antennas Propag., submitted, also to TechRxiv.
Authors
- Wang, Quanfeng ;
- Paulus, Alexander H. ;
- Na, Han ;
- Saurer, Matthias M. ;
- Eibert, Thomas F.