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An object-oriented hybrid environment for integrating neural networks and experts systems

机译:面向对象的混合环境,用于整合神经网络和专家系统

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With the emerging realization that most complex real-world problems are difficult to solve by either symbolic or adaptive paradigms, there is great interest in combining the strengths of individual techniques (such as neural networks and expert systems), from these opposing forms of information processing. The object-oriented hybrid environment described allows the strengths of these contending processing paradigms to be combined for solving complex problems. The use of object-oriented methods brings with it many attributes and advantages for constructing hybrid systems. This approach allows each paradigm to be represented as an object, which can communicate with other paradigms via a message passing mechanism. The operation details of the neural-symbolic environment are illustrated and tested, with an application from the financial arena of profit trend analysis.
机译:随着新兴的实现,大多数复杂的真实问题难以通过符号或自适应范式难以解决,很兴趣与这些相反的信息处理形式相结合各个技术(例如神经网络和专家系统)的优势。描述的面向对象的混合环境允许这些竞争处理范例的强度组合以解决复杂问题。使用面向对象的方法带来了许多属性和优点,用于构建混合系统。该方法允许每个范例表示为对象,其可以通过消息传递机制与其他范例通信。说明和测试了神经象征性环境的操作细节,并从利润趋势分析的金融领域的应用程序进行了测试。

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