Robust Current Sensing in Rectangular Conductors: Elliptical Hall-Effect Sensor Array Optimized via Bio-Inspired GWO-BP Neural Network
Abstract
:Highlights
- A novel bio-inspired strategy: the integration of an elliptical Hall sensor array with a hybrid GWO-enhanced neural network achieves a robust suppression of mechanical deformation-induced errors (65.07%, 45.74%, and 76.15% for X/Y/Z deviations).
- A space-efficient design: the elliptical sensor configuration reduces the installation footprint by 72.4% compared to conventional circular arrays while maintaining a high accuracy under extreme deformations (±8 mm displacement, ±15° tilt).
- Critical for compact applications: enables precise current sensing in space-constrained systems, such as electric vehicle powertrains and miniaturized inverters, addressing the challenges of high-density power electronics.
- Algorithm–hardware synergy: bridges bio-inspired optimization and adaptive sensing hardware, offering a systematic framework for mitigating mechanical interference in real-world industrial settings.
Abstract
1. Introduction
2. Design of Elliptical Hall-Effect Sensor Arrays
2.1. Elliptical Array Configuration
2.2. Theoretical Calculation
2.2.1. Operating Principle of Magnetic Sensor Array-Based Current Sensing
2.2.2. Current Measurement Principle for Rectangular Conductors
2.3. Simulation Setup
- Conductor Properties: rectangular copper busbar with an electrical conductivity of σ = 5.998 × 107 S/m and a density of ρ = 8960 kg/m3;
- Ambient Medium: non-conductive air (σ = 0 S/m);
- Probe Placement: Hall element positions equipped with magnetic flux density probes;
- Mesh Strategy: adaptive mesh refinement prioritizing boundary layers near the conductor edges.
3. GWO-BP-Based Error Optimization Algorithm
3.1. Parameter Initialization
3.2. Current Inversion Model
3.3. Estimation of Conductor Eccentricity and Tilt Parameters
3.3.1. Grey Wolf Optimizer (GWO)
3.3.2. GWO-BP Conductor State Parameter Estimation Model
4. Experimental Design and Validation
4.1. Experimental Platform
4.2. Performance Evaluation of Conductor State Estimation Models
4.3. Experimental Results and Analysis
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
GWO | Grey Wolf Optimizer |
EV | electric vehicle |
AR | aspect ratio |
UCSL | uniform curve segment length |
MAE | Mean Absolute Error |
MSE | Mean Squared Error |
MAPE | Mean Absolute Percentage Error |
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(26.94, 4.40, 0) | 145.79° | |
(5.57, 9.83, 0) | 176.38° | |
(−16.59, 8.33, 0) | 192.58° | |
(−26.94, −4.40, 0) | 325.79° | |
(−5.56, −9.83, 0) | 356.38° | |
(16.59, −8.33, 0) | 12.58° |
Estimated Parameters | Estimation Algorithms | Evaluation Indicators | ||
---|---|---|---|---|
MAE | MSE | MAPE | ||
BP | 0.2272 | 0.0771 | 0.8419% | |
GWO-BP | 0.0498 | 0.0041 | 1.0411% | |
BP | 0.0619 | 0.0043 | 5.2646% | |
GWO-BP | 0.0146 | 0.0004 | 1.0621% | |
BP | 0.0124 | 0.0003 | 10.3490% | |
GWO-BP | 0.0037 | 0.0001 | 2.8585% | |
BP | 0.0071 | 0.0002 | 3.9567% | |
GWO-BP | 0.0028 | 0.0001 | 0.8626% | |
BP | 0.0143 | 0.0005 | 2.2479% | |
GWO-BP | 0.0029 | 0.0001 | 0.4173% |
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Tang, Y.; Lu, J.; Shen, Y. Robust Current Sensing in Rectangular Conductors: Elliptical Hall-Effect Sensor Array Optimized via Bio-Inspired GWO-BP Neural Network. Sensors 2025, 25, 3116. https://doi.org/10.3390/s25103116
Tang Y, Lu J, Shen Y. Robust Current Sensing in Rectangular Conductors: Elliptical Hall-Effect Sensor Array Optimized via Bio-Inspired GWO-BP Neural Network. Sensors. 2025; 25(10):3116. https://doi.org/10.3390/s25103116
Chicago/Turabian StyleTang, Yue, Jiajia Lu, and Yue Shen. 2025. "Robust Current Sensing in Rectangular Conductors: Elliptical Hall-Effect Sensor Array Optimized via Bio-Inspired GWO-BP Neural Network" Sensors 25, no. 10: 3116. https://doi.org/10.3390/s25103116
APA StyleTang, Y., Lu, J., & Shen, Y. (2025). Robust Current Sensing in Rectangular Conductors: Elliptical Hall-Effect Sensor Array Optimized via Bio-Inspired GWO-BP Neural Network. Sensors, 25(10), 3116. https://doi.org/10.3390/s25103116