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Estimation of Worker Fruit-Picking Rates with an Instrumented Picking Bag

机译:估计工人水果采摘速率与仪表采摘袋

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Estimating and recording a worker's picking rate during tree fruit harvesting can provide useful information for better workforce management, orchard platform crew management, and generation of yield maps (in combination with position). A commercial picking bag was instrumented to estimate harvested fruit weight in real-time. All electronics were placed inside an enclosure that was placed between the bag and its shoulder straps, without hindering picking motions. The electronics included two load cells to measure the forces exerted on the straps by the bag and fruits, an Arduino microcontroller, signal conditioning circuits, data storage, wireless communication components, and inertial sensors. Software was developedfor data acquisition, filtering,transmission, and storage. Two calibration models were developed to estimate fruit weight. One model (model 2) used inertial sensor data to compensate for the picking bag's angle with respect to gravity direction, while the other model (model 1) did not.Dynamic calibration experiments were performed over the entire weight range of the bag (0 to 20 kg) with reference objects of known weight (baseballs and fresh apples). The weight was divided into three ranges: light load (<8 kg), medium load (8 to 13 kg), and heavy load (>13 kg). Results showed that model 1 performed slightly better in the light load range, but model 2 was superior in the medium and heavy load ranges, presumably due to bag angle compensation. The best root mean squared error over theentire range was achieved by model 2 and was 0.36 kg (1.8% of bag capacity). In an application case study, two bags were used by workers harvesting from a platform in a commercial apple orchard. From the data, the pickers' harvesting speeds were estimated, and the fruit yield distribution was calculatedfor one side of a tree row.
机译:在树木果实采摘期间估计和记录工人的采摘率可以为更好的劳动力管理、果园平台人员管理和产量图的生成(结合位置)提供有用的信息。一个商业采摘袋被用来实时估计收获的果实重量。所有电子产品都被放置在一个外壳内,该外壳位于袋子和肩带之间,不会妨碍拾取动作。电子设备包括两个称重传感器,用于测量袋子和水果施加在皮带上的力,一个Arduino微控制器,信号调节电路,数据存储,无线通信组件和惯性传感器。为数据采集、过滤、传输和存储开发了软件。开发了两个校准模型来估计果实重量。一个模型(模型2)使用惯性传感器数据来补偿分拣袋相对于重力方向的角度,而另一个模型(模型1)没有。使用已知重量的参考物体(棒球和新鲜苹果),在袋子的整个重量范围(0至20 kg)内进行动态校准实验。体重分为三个范围:轻负荷(<8公斤)、中等负荷(8至13公斤)和重负荷(>13公斤)。结果表明,模型1在轻载范围内表现稍好,但模型2在中载和重载范围内表现更优,这可能是由于行李角度补偿。整个范围内的最佳均方根误差由模型2实现,为0.36 kg(袋容量的1.8%)。在一个应用案例研究中,工人们在一个商业苹果园的平台上收割时使用了两个袋子。根据这些数据,估计了采摘者的采摘速度,并计算了一排树一侧的果实产量分布。

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