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Key Functions In Neural Network Training Ppt

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Presenting Key Functions in Neural Network. These slides are 100 percent made in PowerPoint and are compatible with all screen types and monitors. They also support Google Slides. Premium Customer Support available. Suitable for use by managers, employees, and organizations. These slides are easily customizable. You can edit the color, text, icon, and font size to suit your requirements.

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Content of this Powerpoint Presentation

Slide 1

This slide gives an introduction to activation function in a neural network and discusses its importance. The activation function is used to calculate a weighted total and then add bias to it to determine whether a neuron should be activated or not.

Slide 2

This slide illustrates Threshold Function which is a type of Activation Function in a neural network. This function has only two possible outputs: either 0 or 1. They're generally employed when only two kinds of data are to be classified.

Slide 3

This slide depicts Sigmoid Function which is a type of activation function. The range of values for the sigmoid function is 0 to 1. This function is primarily employed in the output layer because it is from this node that we obtain the anticipated value

Slide 4

This slide illustrates Rectifier or ReLU function which is a type of activation function. Relu (Rectified Linear Units) is primarily employed in hidden layers of a Neural Network due to its rectified nature. Relu is a half-rectified function starting at the bottom. It moves continuously up to a certain point and then increases to its maximum after a certain period

Slide 5

This slide depicts Hyperbolic Tangent Function which is a type of activation function. The Tanh function is an upgraded version of the sigmoid function that includes a range of values from -1 to 1. Tanh has a sigmoid curve form, although with a distinct range of values. The benefit is that, depending on their projections, both negative and positive outcomes are plotted separately.

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