Lightning Return Stroke Positioning Method Based on CWT Narrowband Feature Extraction
Abstract
:1. Introduction
2. Methods
2.1. Fundamental Theories of CWT
2.2. Lightning Positioning by the TOA Method
2.3. Extraction of Arrival Times of Lightning Pulses by CWT
2.4. Sites and Data
2.4.1. Practical Measured Data
2.4.2. Simulation Data
3. Results
3.1. Horizontal Positioning Results of Simulation Data
3.2. Horizontal Positioning Results of Practical Artificially Triggered Lightning Data
4. Discussion
4.1. Effects of Three Electric Field Components for Positioning Accuracy on Peak Method
4.2. Effects of Three Electric Field Components for Positioning Accuracy on CWT Method
4.3. Effects of Current Waveform Profile on Positioning Accuracy
4.3.1. Effects of Current Waveform Profile on Positioning Accuracy of Peak Value Method
4.3.2. Effects of Current Waveform Profile on Positioning Accuracy of CWT Method
4.4. Wavelet Frequency Selection
4.5. Comparison of Location Results for Multiple Return Strokes Induced by an Artificial Triggering Lightning
4.6. Comparison of Location Results for Multiple Return Strokes Induced by a Cloud-to-Ground (CG) Lightning Flash
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Performance | Unit | Value |
---|---|---|
Number of sites | — | 6 |
Distance between sites | km | 10~30 |
Time constant | ms | 1 |
Sampling frequency | MHz | 5 |
Resolution of data acquisition card | bit | 12 |
Record length | ms | 1/10 |
GPS timing accuracy | ns | ≤50 |
VLF/LF receiver 3 dB bandwidth | kHz | 0.2~800 |
RS | Positioning Results (Km) | Mean Coordinate (Km) | Mean Error (m) | |||
---|---|---|---|---|---|---|
CWT Method | Peak Value Method | CWT Method | Peak Value Method | CWT Method | Peak Value Method | |
RS1 | −16.1650, −4.9355 | −16.6037, −4.7725 | −15.9983, −4.8880 | −16.0886, −4.8715 | 90.0 | 185.9 |
RS2 | 16.0092, −4.8754 | −16.1584, −4.8453 | ||||
RS3 | 16.0169, −4.8178 | −16.1200, −4.7619 | ||||
RS4 | 15.9229, −4.8925 | −15.7873, −4.9580 | ||||
RS5 | 16.1832, −4.8994 | −16.0444, −4.9033 | ||||
RS6 | 15.9564, −4.8898 | −16.3285, −4.8354 | ||||
RS7 | 15.8381, −4.9095 | −15.9642, −4.9205 | ||||
RS8 | 15.9518, −4.8291 | −15.9564, −4.8898 | ||||
RS9 | 15.9835, −4.9417 | −15.9217, −4.9227 | ||||
RS10 | 15.9564, −4.8898 | −16.0014, −4.9056 |
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Shen, J.; Gong, J.; Zhou, D. Lightning Return Stroke Positioning Method Based on CWT Narrowband Feature Extraction. Atmosphere 2025, 16, 302. https://doi.org/10.3390/atmos16030302
Shen J, Gong J, Zhou D. Lightning Return Stroke Positioning Method Based on CWT Narrowband Feature Extraction. Atmosphere. 2025; 16(3):302. https://doi.org/10.3390/atmos16030302
Chicago/Turabian StyleShen, Jinxing, Jiancheng Gong, and Dong Zhou. 2025. "Lightning Return Stroke Positioning Method Based on CWT Narrowband Feature Extraction" Atmosphere 16, no. 3: 302. https://doi.org/10.3390/atmos16030302
APA StyleShen, J., Gong, J., & Zhou, D. (2025). Lightning Return Stroke Positioning Method Based on CWT Narrowband Feature Extraction. Atmosphere, 16(3), 302. https://doi.org/10.3390/atmos16030302