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C# Network.BindInputLayer方法代码示例

本文整理汇总了C#中Network.BindInputLayer方法的典型用法代码示例。如果您正苦于以下问题:C# Network.BindInputLayer方法的具体用法?C# Network.BindInputLayer怎么用?C# Network.BindInputLayer使用的例子?那么恭喜您, 这里精选的方法代码示例或许可以为您提供帮助。您也可以进一步了解该方法所在Network的用法示例。


在下文中一共展示了Network.BindInputLayer方法的2个代码示例,这些例子默认根据受欢迎程度排序。您可以为喜欢或者感觉有用的代码点赞,您的评价将有助于系统推荐出更棒的C#代码示例。

示例1: BuildNetwork

        public void BuildNetwork()
        {
            _network = new Network(_node);

            _network.AddLayer(4); //Hidden layer with 2 neurons
            _network.AddLayer(1); //Output layer with 1 neuron

            _network.BindInputLayer(_input); //Bind Input Data
            _network.BindTraining(_desired); //Bind desired output data

            _network.AutoLinkFeedforward(); //Create synapses between the layers for typical feedforward networks.
        }
开发者ID:sagarbatchu,项目名称:rssilocalizer,代码行数:12,代码来源:Backend.cs

示例2: RunDemo

        public void RunDemo()
        {
            Console.WriteLine("### BASIC BOUND DEMO ###");

            //Prepare you're input and training data
            //to bind to the network
            double[] input = new double[] {-5d,5d,-5d};
            double[] training = new double[] {-1,1};

            //Initialize the network manager.
            //This constructor also creates the first
            //network layer (Inputlayer).
            Network network = new Network();

            //Bind your input array (to the already
            //existing input layer)
            network.BindInputLayer(input);
            //Add the hidden layer with 4 neurons.
            network.AddLayer(4);
            //Add the output layer with 2 neurons.
            network.AddLayer(2);
            //bind your training array to the output layer.
            //Always do this AFTER creating the layers.
            network.BindTraining(training);

            //Connect the neurons together using synapses.
            //This is the easiest way to do it; I'll discuss
            //other ways in more detail in another demo.
            network.AutoLinkFeedforward();

            //Propagate the network using the bound input data.
            //Internally, this is a two round process, to
            //correctly handle feedbacks
            network.CalculateFeedforward();
            //Collect the network output and print it.
            App.PrintArray(network.CollectOutput());

            //Train the current pattern using Backpropagation (one step)!
            network.TrainCurrentPattern(false,true);
            //Print the output; the difference to (-1,1) should be
            //smaller this time!
            App.PrintArray(network.CollectOutput());

            //Same one more time:
            network.TrainCurrentPattern(false,true);
            App.PrintArray(network.CollectOutput());

            //Train another pattern:
            Console.WriteLine("# new pattern:");
            input[0] = 5d;
            input[1] = -5d;
            training[0] = 1;
            //calculate ...
            network.CalculateFeedforward();
            App.PrintArray(network.CollectOutput());
            //... and train it one time
            network.TrainCurrentPattern(false,true);
            App.PrintArray(network.CollectOutput());

            //what about the old pattern now?
            Console.WriteLine("# the old pattern again:");
            input[0] = -5d;
            input[1] = 5d;
            training[0] = -1;
            network.CalculateFeedforward();
            App.PrintArray(network.CollectOutput());

            Console.WriteLine("=== COMPLETE ===");
            Console.WriteLine();
        }
开发者ID:sagarbatchu,项目名称:rssilocalizer,代码行数:70,代码来源:BasicBoundDemo.cs


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