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WEB-Based Intelligent Diagnosis System for Cotton Diseases Control

机译:基于Web的棉疾病控制智能诊断系统

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Diseases control is always an issue in cotton production, the timely detection and effective control of diseases depend on, in most cases, an effective diagnosis system. Based on the distribution of cotton diseases in the main yielding areas of China in recent years, the main species and characters of cotton diseases were listed classified in the study and a database was established for this purpose. BP neural network as a decision-making system was used to establish an intelligent diagnosis model. Based on the model, a WEB-based Intelligent Diagnosis System for Cotton Diseases Control was developed. An experiment scheme was designed for the system test, in which 80 samples, including 8 main species of diseases, 10 samples in each sort were included. The result showed the rate of correctness that system could identify the symptom was 89.5% in average, and the average running time for a diagnosis was 900ms.
机译:疾病控制始终是棉花生产问题,及时检测和有效控制疾病依赖于,在大多数情况下,有效的诊断系统。基于近年来中国主要产量区棉疾病分布的基础,棉疾病的主要种类和特征在研究中归类,为此目的建立了一个数据库。 BP神经网络作为决策系统用于建立智能诊断模型。基于该模型,开发了一种基于网络智能诊断系统的棉疾病控制。设计了一个实验方案用于系统测试,其中80个样本,包括8种主要疾病,每种类型的10种样品。结果表明,系统可以识别症状的正确率平均为89.5%,诊断的平均运行时间为900ms。

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