mirror of
https://github.com/glouw/tinn
synced 2024-11-21 22:11:21 +03:00
161 lines
3.8 KiB
C
161 lines
3.8 KiB
C
#include "Tinn.h"
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#include <stdio.h>
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#include <stdlib.h>
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#include <math.h>
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// Error function.
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static float err(float a, float b)
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{
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return 0.5f * powf(a - b, 2.0f);
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}
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// Partial derivative of error function.
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static float pderr(float a, float b)
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{
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return a - b;
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}
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// Total error.
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static float terr(const float* tg, const float* o, int size)
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{
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float sum = 0.0f;
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for(int i = 0; i < size; i++)
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sum += err(tg[i], o[i]);
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return sum;
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}
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// Activation function.
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static float act(float a)
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{
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return 1.0f / (1.0f + expf(-a));
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}
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// Partial derivative of activation function.
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static float pdact(float a)
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{
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return a * (1.0f - a);
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}
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// Floating point random from 0.0 - 1.0.
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static float frand()
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{
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return rand() / (float) RAND_MAX;
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}
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// Back propagation.
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static void backwards(const Tinn t, const float* in, const float* tg, float rate)
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{
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for(int i = 0; i < t.nhid; i++)
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{
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float sum = 0.0f;
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// Calculate total error change with respect to output.
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for(int j = 0; j < t.nops; j++)
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{
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float a = pderr(t.o[j], tg[j]);
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float b = pdact(t.o[j]);
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sum += a * b * t.x[j * t.nhid + i];
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// Correct weights in hidden to output layer.
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t.x[j * t.nhid + i] -= rate * a * b * t.h[i];
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}
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// Correct weights in input to hidden layer.
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for(int j = 0; j < t.nips; j++)
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t.w[i * t.nips + j] -= rate * sum * pdact(t.h[i]) * in[j];
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}
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}
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// Forward propagation.
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static void forewards(const Tinn t, const float* in)
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{
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// Calculate hidden layer neuron values.
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for(int i = 0; i < t.nhid; i++)
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{
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float sum = 0.0f;
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for(int j = 0; j < t.nips; j++)
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sum += in[j] * t.w[i * t.nips + j];
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t.h[i] = act(sum + t.b[0]);
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}
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// Calculate output layer neuron values.
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for(int i = 0; i < t.nops; i++)
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{
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float sum = 0.0f;
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for(int j = 0; j < t.nhid; j++)
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sum += t.h[j] * t.x[i * t.nhid + j];
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t.o[i] = act(sum + t.b[1]);
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}
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}
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// Randomizes weights and biases.
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static void twrand(const Tinn t)
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{
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for(int i = 0; i < t.nw; i++) t.w[i] = frand() - 0.5f;
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for(int i = 0; i < t.nb; i++) t.b[i] = frand() - 0.5f;
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}
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float* xpredict(const Tinn t, const float* in)
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{
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forewards(t, in);
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return t.o;
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}
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float xttrain(const Tinn t, const float* in, const float* tg, float rate)
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{
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forewards(t, in);
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backwards(t, in, tg, rate);
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return terr(tg, t.o, t.nops);
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}
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Tinn xtbuild(int nips, int nhid, int nops)
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{
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Tinn t;
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// Tinn only supports one hidden layer so there are two biases.
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t.nb = 2;
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t.nw = nhid * (nips + nops);
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t.w = (float*) calloc(t.nw, sizeof(*t.w));
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t.x = t.w + nhid * nips;
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t.b = (float*) calloc(t.nb, sizeof(*t.b));
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t.h = (float*) calloc(nhid, sizeof(*t.h));
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t.o = (float*) calloc(nops, sizeof(*t.o));
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t.nips = nips;
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t.nhid = nhid;
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t.nops = nops;
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twrand(t);
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return t;
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}
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void xtsave(const Tinn t, const char* path)
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{
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FILE* file = fopen(path, "w");
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// Header.
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fprintf(file, "%d %d %d\n", t.nips, t.nhid, t.nops);
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// Biases and weights.
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for(int i = 0; i < t.nb; i++) fprintf(file, "%f\n", (double) t.b[i]);
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for(int i = 0; i < t.nw; i++) fprintf(file, "%f\n", (double) t.w[i]);
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fclose(file);
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}
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Tinn xtload(const char* path)
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{
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FILE* file = fopen(path, "r");
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int nips = 0;
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int nhid = 0;
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int nops = 0;
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// Header.
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fscanf(file, "%d %d %d\n", &nips, &nhid, &nops);
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// A new tinn is returned.
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Tinn t = xtbuild(nips, nhid, nips);
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// Biases and weights.
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for(int i = 0; i < t.nb; i++) fscanf(file, "%f\n", &t.b[i]);
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for(int i = 0; i < t.nw; i++) fscanf(file, "%f\n", &t.w[i]);
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fclose(file);
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return t;
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}
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void xtfree(const Tinn t)
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{
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free(t.w);
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free(t.b);
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free(t.h);
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free(t.o);
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}
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