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FPGA implementation of artificial Neural Network for forest fire detection in wireless Sensor Network

机译:无线传感器网络中森林火灾检测人工神经网络的FPGA实现

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Remote Sensor Network (WSN) screens dynamic environment that progressions quickly after some time and is utilized by outer components. In WSN, the sensor hubs are to screen the natural parameters, for example, carbon monoxide, stickiness, smoke etc. The aim is to identify firestorm in forest and by predicting the firestorm in forest the sensing ability of the sensor node becomes limited which leads to delay in the alert signal or fail to report and it is difficult to deduce the occurrence of fire. In order to overcome the above problem a Feed forward Neural Network (FNN) was proposed which gives the prediction of firestorm when it occurs without any delay. The neural systems have low power with higher accuracy and it decreases the few bogus recognition of firestorm in timberland. This model recognizes the flame fire with higher accuracy and it controls the alarm delay. FNN is composed with a few hubs N, and made an examination with single and numerous concealed layers to anticipate the higher accuracy. The recreation consequence of the proposed framework is checked and is actualized utilizing Virtex-5 and the RTL schematic was planned utilizing Xilinx ISE 14.6.
机译:远程传感器网络(WSN)屏幕在一段时间后快速进展的动态环境,并由外部组件使用。在WSN中,传感器集线器是筛选自然参数,例如,一氧化碳,粘性,烟雾等。目的是识别森林中的Firestorm,并且通过预测森林中的Firestorm传感器节点的感测能力导致延迟警报信号或未能报告,很难推断出火灾的发生。为了克服上述问题,提出了一种饲料前进神经网络(FNN),其在没有任何延迟的情况下发生时提供了对Firestorm的预测。神经系统具有较低的功率,精度更高,降低了Timberland的Firestorm的少数虚假识别。该模型以更高的精度识别火焰火灾,并控制警报延迟。 FNN由几个集线器N组成,并用单个和许多隐藏层进行检查,以预测更高的准确性。检查所提出的框架的娱乐后果,并利用Virtex-5实现,利用Xilinx ISE 14.6计划进行RTL示意图。

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