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@N8python
Last active November 30, 2020 00:45
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6 parameter model. Learns xor blazing fast.
const data = [
[
[0, 0], 1
],
[
[0, 1], 0
],
[
[1, 0], 0
],
[
[1, 1], 1
]
];
const sigmoid = x => 1 / (1 + Math.exp(-x));
const sigmoid_ = x => sigmoid(x) * (1 - sigmoid(x));
const randWeight = () => Math.random() * 2 - 1;
let m0 = randWeight();
let m1 = randWeight();
let b0 = randWeight();
let a = randWeight();
let b = randWeight();
let c = randWeight();
const learningRate = 0.01;
for (let iteration = 0; iteration < 100000; iteration++) {
const m0nudges = [];
const m1nudges = [];
const b0nudges = [];
const anudges = [];
const bnudges = [];
const cnudges = [];
data.forEach(([
[x0, x1], y
]) => {
const W = m0 * x0 + m1 * x1 + b0;
const X = a * W ** 2 + b * W + c;
const Z = sigmoid(X);
const C = ((Z - y) ** 2) / 2;
m0nudges.push((Z - y) * sigmoid_(X) * (2 * a * W + b) * x0);
m1nudges.push((Z - y) * sigmoid_(X) * (2 * a * W + b) * x1);
b0nudges.push((Z - y) * sigmoid_(X) * (2 * a * W + b));
anudges.push((Z - y) * sigmoid_(X) * W ** 2);
bnudges.push((Z - y) * sigmoid_(X) * W);
cnudges.push((Z - y) * sigmoid_(X));
});
m0 += -R.mean(m0nudges) * learningRate;
m1 += -R.mean(m1nudges) * learningRate;
b0 += -R.mean(b0nudges) * learningRate;
a += -R.mean(anudges) * learningRate;
b += -R.mean(bnudges) * learningRate;
c += -R.mean(cnudges) * learningRate;
}
function runModel(x0, x1) {
const W = m0 * x0 + m1 * x1 + b0;
const X = a * W ** 2 + b * W + c;
const Z = sigmoid(X);
return Z;
}
console.log(runModel(0, 0));
console.log(runModel(0, 1));
console.log(runModel(1, 0));
console.log(runModel(1, 1));
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