Created
April 3, 2016 11:43
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type Weight = Float | |
type Bias = Float | |
-- type Neuron = Bias -> [Weight] -> [Float] -> Float | |
-- Artificial neuron, given some activation function f. | |
-- A neuron is simply a function from a vector of weights, and a vector of values, to an activation value. | |
neuron :: (Float -> Float) -> Bias -> [Weight] -> [Float] -> Float | |
--neuron :: (Float -> Float) -> Neuron | |
neuron f b ws xs = f (sum (zipWith (*) ws xs) + b) | |
-- A perceptron is a neuron with the activation function being the step function (a simple threshold). | |
perceptron :: Bias -> [Weight] -> [Float] -> Float | |
--perceptron :: Neuron | |
perceptron = neuron (\z -> if z > 0 then 1 else 0) | |
sigmoid :: Float -> Float | |
sigmoid z = 1 / (1 + exp (-z)) | |
-- A sigmoid neurdon is a neuron with the activation function being the sigmoid function, resulting in a smoother, | |
-- more continuous version of the perceptron, allowing more minute changes in the bias or weights to result | |
-- in small changes in the output. | |
sigmoidN :: Bias -> [Weight] -> [Float] -> Float | |
--sigmoidN :: Neuron | |
sigmoidN = neuron sigmoid | |
-- OR gate | |
or_p = perceptron 0 [1, 1] | |
-- AND gate | |
and_p = perceptron (-1) [1, 1] |
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