Eibenberger Karin, Eibenberger Bernhard, Rucci Michele
Annu Int Conf IEEE Eng Med Biol Soc. 2016 Aug;2016:247-250. doi: 10.1109/EMBC.2016.7590686.
The precise measurement of eye movements is important for investigating vision, oculomotor control and vestibular function. The magnetic scleral search coil technique is one of the most precise measurement techniques for recording eye movements with very high spatial (≈ 1 arcmin) and temporal (>kHz) resolution. The technique is based on measuring voltage induced in a search coil through a large magnetic field. This search coil is embedded in a contact lens worn by a human subject. The measured voltage is in direct relationship to the orientation of the eye in space. This requires a magnetic field with a high homogeneity in the center, since otherwise the field inhomogeneity would give the false impression of a rotation of the eye due to a translational movement of the head. To circumvent this problem, a bite bar typically restricts head movement to a minimum. However, the need often emerges to precisely record eye movements under natural viewing conditions. To this end, one needs a uniform magnetic field that is uniform over a large area. In this paper, we present the numerical and finite element simulations of the magnetic flux density of different coil geometries that could be used for search coil recordings. Based on the results, we built a 2.2 × 2.2 × 2.2 meter coil frame with a set of 3 × 4 coils to generate a 3D magnetic field and compared the measured flux density with our simulation results. In agreement with simulation results, the system yields a highly uniform field enabling high-resolution recordings of eye movements.
精确测量眼球运动对于研究视觉、眼球运动控制和前庭功能至关重要。磁巩膜搜索线圈技术是用于记录眼球运动的最精确测量技术之一,具有非常高的空间分辨率(约1角分)和时间分辨率(>kHz)。该技术基于通过大磁场测量搜索线圈中感应的电压。这个搜索线圈嵌入在人类受试者佩戴的隐形眼镜中。测量的电压与眼球在空间中的方向直接相关。这需要中心具有高度均匀性的磁场,因为否则磁场不均匀会由于头部的平移运动而给人以眼球旋转的错误印象。为了规避这个问题,通常使用咬杆将头部运动限制到最小。然而,经常需要在自然观看条件下精确记录眼球运动。为此,需要一个在大面积上均匀的均匀磁场。在本文中,我们展示了可用于搜索线圈记录的不同线圈几何形状的磁通密度的数值和有限元模拟。基于这些结果,我们构建了一个2.2×2.2×2.2米的线圈框架,带有一组3×4个线圈以产生三维磁场,并将测量的磁通密度与我们的模拟结果进行比较。与模拟结果一致,该系统产生高度均匀的磁场,能够对眼球运动进行高分辨率记录。