Enabling globally unique sensor ID with dual-interface RF tag

J. Mitsugi, H. Hada, T. Inaba, Katsumasa Ihara, Goushi Kojima, Tomonori Kondo
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引用次数: 8

Abstract

In any sensor information system, unique identification (ID) of each sensor is indispensable. Usual practices to secure uniqueness of sensor ID is to use MAC or network address or to use a proprietary ID in application layer. In pervasive computing era, it is desirable to uniquely identify a sensor with a URN regardless of types of network to which the sensor is connected. This paper proposes to embed a dual interface RF tag, which records a globally unique ID, EPC (Electronic Product Code), used in business transactions, to sensor microcontroller(MCU). The dual interface RF tag allows us to access its tag data either via RF interface and a baseband interface. This enables a sensor MCU to use EPC to uniquely identify the sensor for its whole product lifecycle. Since EPC have been only accessed through the RF interface, we developed a modified UPnP to automatically discover EPC enabled sensors through the baseband interface for various access networks. Taking advantage of the existing network RFID architecture, we can search services related to an EPC in a form of URL and also can publish and subscribe sensor data service with a standardized web service interface. This paper reports a hardware implementation of dual interface RF tag with a ZigBee transceiver. Timing requirement of RFID protocol to access RF tag's memory can be met by a software control of off-the-shelf MCU GPIO. A 96 bits EPC stored in an dual interface RF tag can be retrieved in 12.3 msec. For the automatic device discovery of an EPC enabled sensor attached to a ZigBee network, a modified UPnP is also developed. The proposal is implemented in a working prototype with 49 sensors which geographically dispersed in 3 locations which can continuously collect 181 sensor data for various applications. We also evaluated the minimum time interval to publish sensor data to find 300 msec is the shortest interval in our implementation. This interval is dominated by the communications capacity between sensor MCU and on-board transceiver chip.
启用双接口射频标签的全局唯一传感器ID
在任何传感器信息系统中,每个传感器的唯一标识都是必不可少的。通常的做法是使用MAC或网络地址或在应用层使用专有的ID来保证传感器ID的唯一性。在普适计算时代,无论传感器所连接的网络类型如何,都希望用URN唯一地标识传感器。本文提出将一个双接口射频标签嵌入到传感器微控制器(MCU)中,该标签记录一个全球唯一的ID, EPC(电子产品代码),用于商业交易。双接口射频标签允许我们通过射频接口和基带接口访问其标签数据。这使得传感器MCU能够在其整个产品生命周期中使用EPC来唯一识别传感器。由于EPC只能通过射频接口访问,我们开发了一个改进的UPnP,通过各种接入网的基带接口自动发现EPC启用的传感器。利用现有的网络RFID体系结构,我们可以以URL的形式搜索与EPC相关的服务,也可以通过标准化的web服务接口发布和订阅传感器数据服务。本文报道了一种带ZigBee收发器的双接口射频标签的硬件实现。通过对现有单片机GPIO的软件控制,可以满足RFID协议访问射频标签存储器的时序要求。存储在双接口射频标签中的96位EPC可以在12.3毫秒内检索到。针对ZigBee网络中支持EPC的传感器自动发现设备的问题,本文还提出了一种改进的UPnP。该建议在一个具有49个传感器的工作原型中实现,这些传感器分布在3个位置,可以连续收集181个传感器数据,用于各种应用。我们还评估了发布传感器数据的最小时间间隔,发现300毫秒是我们实现中的最短时间间隔。这个区间主要由传感器MCU和板载收发芯片之间的通信能力决定。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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