论文标题
基于磁场的手跟踪
Magnetic Field Based Hand Tracking
论文作者
论文摘要
基于传感器的3D手跟踪仍然具有挑战性,尽管过去几十年来对不同的传感方式进行了大量探索。这项工作描述了一种新型诱导磁场的3D手跟踪系统的设计,实现和评估,旨在解决现有方法的缺点并提供替代解决方案。该系统由一组用于磁场生成的发射机组成,用于场强的接收器以及用于同步的Zigbee单元。更详细地,发射机通过注册序列生成振荡磁场,接收器通过定制的三轴线圈感知诱导磁场的强度,该磁场的强度为LC振荡器,具有相同的振荡频率,因此当接收器位于生成磁场的场中时,诱导电流显示出诱导的电流。探索了五种方案,以评估针对发射机部署的手工跟踪所提出的系统的性能:“在白板前”,“桌子上方”,“在架子前和架子前”,“在腰部和胸部的前面”和“腰间”。真实范围的多材料方法用于计算3D空间中手的坐标。与商业超声定位系统收集的地面真相相比,呈现的磁场系统显示出约10厘米的稳健精度,而发射器既部署式和腰部和胸部前),这表明3D手跟踪中提出的感应模式的可行性。
Sensor-based 3D hand tracking is still challenging despite the massive exploration of different sensing modalities in the past decades. This work describes the design, implementation, and evaluation of a novel induced magnetic field-based 3D hand tracking system, aiming to address the shortcomings of existing approaches and supply an alternative solution. This system is composed of a set of transmitters for the magnetic field generation, a receiver for field strength sensing, and the Zigbee units for synchronization. In more detail, the transmitters generate the oscillating magnetic fields with a registered sequence, the receiver senses the strength of the induced magnetic field by a customized three axes coil, which is configured as the LC oscillator with the same oscillating frequency so that an induced current shows up when the receiver is located in the field of the generated magnetic field. Five scenarios are explored to evaluate the performance of the proposed system in hand tracking regarding the transmitters deployment: "in front of a whiteboard", "above a table", "in front of and in a shelf", "in front of the waist and chest", and "around the waist". The true-range multilateration method is used to calculate the coordinates of the hand in 3D space. Compared with the ground truth collected by a commercial ultrasound positioning system, the presented magnetic field-based system shows a robust accuracy of around ten centimeters with the transmitters deployed both off-body and on-body(in front of waist and chest), which indicates the feasibility of the proposed sensing modality in 3D hand tracking.