A tensor model for the calibration of air-coupled ultrasonic sensor arrays in 3D imaging

Fuente: arXiv
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Autori principali: Müller, Raphael, Allevato, Gianni, Rutsch, Matthias, Haugwitz, Christoph, Liu, Tianyi, Kupnik, Mario, Pesavento, Marius
Natura: Preprint
Pubblicazione: 2024
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author Müller, Raphael
Allevato, Gianni
Rutsch, Matthias
Haugwitz, Christoph
Liu, Tianyi
Kupnik, Mario
Pesavento, Marius
author_facet Müller, Raphael
Allevato, Gianni
Rutsch, Matthias
Haugwitz, Christoph
Liu, Tianyi
Kupnik, Mario
Pesavento, Marius
contents Arrays of ultrasonic sensors are capable of 3D imaging in air and an affordable supplement to other sensing modalities, such as radar, lidar, and camera, i.e. in heterogeneous sensing systems. However, manufacturing tolerances of air-coupled ultrasonic sensors may lead to amplitude and phase deviations. Together with artifacts from imperfect knowledge of the array geometry, there are numerous factors that can impair the imaging performance of an array. We propose a reference-based calibration method to overcome possible limitations. First, we introduce a novel tensor signal model to capture the characteristics of piezoelectric ultrasonic transducers (PUTs) and the underlying multidimensional nature of a multiple-input multiple-output (MIMO) sensor array. Second, we formulate and solve an optimization problem based on this model to obtain the calibrated parameters of the array. Third, we assess both our model and the commonly used analytic model using real data from a 3D imaging experiment. The experiment reveals that our array response model we learned with calibration data yields an imaging performance similar to that of the analytic array model, which requires perfect array geometry information.
format Preprint
id arxiv_https___arxiv_org_abs_2406_14355
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle A tensor model for the calibration of air-coupled ultrasonic sensor arrays in 3D imaging
Müller, Raphael
Allevato, Gianni
Rutsch, Matthias
Haugwitz, Christoph
Liu, Tianyi
Kupnik, Mario
Pesavento, Marius
Signal Processing
Arrays of ultrasonic sensors are capable of 3D imaging in air and an affordable supplement to other sensing modalities, such as radar, lidar, and camera, i.e. in heterogeneous sensing systems. However, manufacturing tolerances of air-coupled ultrasonic sensors may lead to amplitude and phase deviations. Together with artifacts from imperfect knowledge of the array geometry, there are numerous factors that can impair the imaging performance of an array. We propose a reference-based calibration method to overcome possible limitations. First, we introduce a novel tensor signal model to capture the characteristics of piezoelectric ultrasonic transducers (PUTs) and the underlying multidimensional nature of a multiple-input multiple-output (MIMO) sensor array. Second, we formulate and solve an optimization problem based on this model to obtain the calibrated parameters of the array. Third, we assess both our model and the commonly used analytic model using real data from a 3D imaging experiment. The experiment reveals that our array response model we learned with calibration data yields an imaging performance similar to that of the analytic array model, which requires perfect array geometry information.
title A tensor model for the calibration of air-coupled ultrasonic sensor arrays in 3D imaging
topic Signal Processing
url https://arxiv.org/abs/2406.14355