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Intelligent data processing of an ultrasonic sensor system for pattern recognition improvements

机译:用于模式识别改进的超声波传感器系统的智能数据处理

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Though conventional time-of-flight ultrasonic sensor systems are popular due to the advantages of low cost and simplicity, the usage of the sensors is rather narrowly restricted within object detection and distance readings. There is a strong need to enlarge the amount of environmental information for mobile applications to provide intelligent autonomy. Wide sectors of such neighboring object recognition problems can be satisfactorily handled with coarse vision data such as sonar maps instead of accurate laser or optic measurements. For the usage of object pattern recognition, ultrasonic senors have inherent shortcomings of poor directionality and specularity which result in low spatial resolution and indistinctiveness of object patterns. To resolve these problems an array of increased number of sensor elements has been used for large objects. In this paper we propose a method of sensor array system with improved recognition capability using electronic circuits accompanying the sensor array and neuro-fuzzy processing of data fusion. The circuit changes transmitter output voltages of array elements in several steps. Relying upon the known sensor characteristics, a set of different return signals from neighboring senors is manipulated to provide an enhanced pattern recognition in the aspects of inclination angle, size and shift as well as distance of objects. The results show improved resolution of the measurements for smaller targets.
机译:虽然传统的飞行时间超声波传感器系统由于成本低的优点而流行,但传感器的使用相当狭窄地限制在物体检测和距离读数内。强烈需要扩大移动应用程序的环境信息量,以提供智能自主权。可以满足诸如Sonar地图的粗视觉数据,而不是精确的激光或光学测量,可以令人满意地处理这种相邻对象识别问题的广泛扇区。为了使用对象模式识别,超声群体具有差的方向性和镜面的固有缺点,这导致了低空间分辨率和物体模式的模糊不清。为了解决这些问题,可以用于大量的传感器元件数量增加数组。在本文中,我们提出了一种传感器阵列系统的方法,所述传感器阵列系统利用传感器阵列的电子电路和数据融合的神经模糊处理来提高识别能力。电路在几个步骤中改变数组元素的变送器输出电压。依赖于已知的传感器特性,操纵来自相邻参考者的一组不同的返回信号,以在倾斜角度,尺寸和换档的各个方面提供增强的图案识别以及物体的距离。结果表明,对较小目标进行测量的改进分辨率。

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