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8ceb081ffe
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8ceb081ffe | ||
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8d4ee4cc4e | ||
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7d9b4bc6bf | ||
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e26690d0d0 |
+2
-59
@@ -1,61 +1,4 @@
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# ---> C
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# Prerequisites
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*.d
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# Object files
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mnist
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runTests
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*.o
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*.ko
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*.obj
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*.elf
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# Linker output
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*.ilk
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*.map
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*.exp
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# Precompiled Headers
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*.gch
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*.pch
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# Libraries
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*.lib
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*.la
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*.lo
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# Shared objects (inc. Windows DLLs)
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*.dll
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*.so
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*.so.*
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*.dylib
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# Executables
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*.exe
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*.out
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*.app
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*.i*86
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*.x86_64
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*.hex
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Startcode/mnist
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Startcode/runTests
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# Debug files
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*.dSYM/
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*.su
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*.idb
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*.pdb
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# Kernel Module Compile Results
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*.mod*
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*.cmd
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.tmp_versions/
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modules.order
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Module.symvers
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Mkfile.old
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dkms.conf
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# IDE folders
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.vscode/
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.idea/
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# macOS
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.DS_Store
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@@ -1,22 +0,0 @@
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include "imageInput.h"
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#define BUFFER_SIZE 100
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#define FILE_HEADER_STRING "__info2_image_file_format__"
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// TODO Implementieren Sie geeignete Hilfsfunktionen für das Lesen der Bildserie aus einer Datei
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// TODO Vervollständigen Sie die Funktion readImages unter Benutzung Ihrer Hilfsfunktionen
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GrayScaleImageSeries *readImages(const char *path)
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{
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GrayScaleImageSeries *series = NULL;
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return series;
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}
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// TODO Vervollständigen Sie die Funktion clearSeries, welche eine Bildserie vollständig aus dem Speicher freigibt
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void clearSeries(GrayScaleImageSeries *series)
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{
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}
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@@ -1,23 +0,0 @@
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#ifndef IMAGEINPUT_H
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#define IMAGEINPUT_H
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typedef unsigned char GrayScalePixelType;
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typedef struct
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{
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GrayScalePixelType *buffer;
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unsigned int width;
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unsigned int height;
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} GrayScaleImage;
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typedef struct
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{
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GrayScaleImage *images;
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unsigned char *labels;
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unsigned int count;
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} GrayScaleImageSeries;
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GrayScaleImageSeries *readImages(const char *path);
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void clearSeries(GrayScaleImageSeries *series);
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#endif
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@@ -1,35 +0,0 @@
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#include <stdlib.h>
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#include <string.h>
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#include "matrix.h"
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// TODO Matrix-Funktionen implementieren
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Matrix createMatrix(unsigned int rows, unsigned int cols)
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{
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}
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void clearMatrix(Matrix *matrix)
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{
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}
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void setMatrixAt(MatrixType value, Matrix matrix, unsigned int rowIdx, unsigned int colIdx)
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{
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}
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MatrixType getMatrixAt(const Matrix matrix, unsigned int rowIdx, unsigned int colIdx)
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{
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}
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Matrix add(const Matrix matrix1, const Matrix matrix2)
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{
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}
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Matrix multiply(const Matrix matrix1, const Matrix matrix2)
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{
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}
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+180
@@ -0,0 +1,180 @@
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include "imageInput.h"
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#define BUFFER_SIZE 100
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#define FILE_HEADER_STRING "__info2_image_file_format__"
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// TODO Implementieren Sie geeignete Hilfsfunktionen für das Lesen der Bildserie aus einer Datei
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// TODO Vervollständigen Sie die Funktion readImages unter Benutzung Ihrer Hilfsfunktionen
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static int checkFileHeader(FILE *file)
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{
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char buffer[BUFFER_SIZE];
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int length = strlen(FILE_HEADER_STRING);
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// Prüfen ob fread erfolgreich war
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if (fread(buffer, sizeof(char), length, file) != length) {
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return 0; // Lesefehler
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}
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buffer[length] = '\0';
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if (strcmp(buffer, FILE_HEADER_STRING) == 0) {
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return 1;
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} else {
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return 0;
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}
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}
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static int readDimensions(FILE *file, unsigned short * count, unsigned short *width, unsigned short *height)
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{
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// Anzahl lesen
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if (fread(count, sizeof(unsigned short), 1, file) != 1) {
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return 0;
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}
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// Breite lesen
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if (fread(width, sizeof(unsigned short), 1, file) != 1) {
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return 0;
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}
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// Höhe lesen
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if (fread(height, sizeof(unsigned short), 1, file) != 1) {
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return 0;
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}
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return 1; // Alles ok
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}
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static int readSingleImage(FILE *file, GrayScaleImage *image, unsigned char *label, unsigned short width, unsigned short height)
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{
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// Schritt 1: Gesamtzahl Pixel berechnen
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int totalPixels = width * height;
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// Schritt 2: Speicher allokieren
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image->buffer = (unsigned char *)malloc(totalPixels * sizeof(unsigned char));
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if (image->buffer == NULL) {
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return 0; // Fehler: kein Speicher verfügbar
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}
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// Schritt 3: Breite und Höhe setzen
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image->width = width;
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image->height = height;
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// Schritt 4: Pixel lesen
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if (fread(image->buffer, sizeof(unsigned char), totalPixels, file) != totalPixels) {
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free(image->buffer); // Aufräumen!
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return 0; // Fehler beim Lesen
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}
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// Schritt 5: Label lesen
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if (fread(label, sizeof(unsigned char), 1, file) != 1) {
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free(image->buffer); // Aufräumen!
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return 0; // Fehler beim Lesen
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}
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return 1; // Erfolg!
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}
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GrayScaleImageSeries *readImages(const char *path)
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{
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// Schritt 1: Datei öffnen
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FILE *file = fopen(path, "rb");
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if (file == NULL) {
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return NULL;
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}
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// Schritt 2: Header prüfen
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if (!checkFileHeader(file)) {
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fclose(file);
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return NULL;
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}
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// Schritt 3: Dimensionen lesen
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unsigned short count, width, height;
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if (!readDimensions(file, &count, &width, &height)) {
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fclose(file);
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return NULL;
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}
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// Schritt 4: Speicher für die Serie allokieren
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GrayScaleImageSeries *series = (GrayScaleImageSeries *)malloc(sizeof(GrayScaleImageSeries));
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if (series == NULL) {
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fclose(file);
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return NULL;
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}
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// Schritt 5: Speicher für das images-Array allokieren
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series->images = (GrayScaleImage *)malloc(count * sizeof(GrayScaleImage));
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if (series->images == NULL) {
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free(series);
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fclose(file);
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return NULL;
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}
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// Schritt 6: Speicher für das labels-Array allokieren
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series->labels = (unsigned char *)malloc(count * sizeof(unsigned char));
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if (series->labels == NULL) {
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free(series->images);
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free(series);
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fclose(file);
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return NULL;
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}
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// Schritt 7: count setzen
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series->count = count;
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// Schritt 8: Alle Bilder in einer Schleife einlesen
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for (int i = 0; i < count; i++) {
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if (!readSingleImage(file, &series->images[i], &series->labels[i], width, height)) {
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// Bei Fehler: Aufräumen!
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for (int j = 0; j < i; j++) {
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free(series->images[j].buffer);
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}
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free(series->images);
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free(series->labels);
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free(series);
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fclose(file);
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return NULL;
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}
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}
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// Schritt 9: Datei schließen
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fclose(file);
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// Schritt 10: Fertige Serie zurückgeben
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return series;
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}
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// TODO Vervollständigen Sie die Funktion clearSeries, welche eine Bildserie vollständig aus dem Speicher freigibt
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void clearSeries(GrayScaleImageSeries *series)
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{
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// Schritt 0: Prüfen ob series überhaupt existiert
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if (series == NULL) {
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return; // Nichts zu tun
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}
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// Schritt 1: Alle Pixel-Buffer freigeben (für jedes Bild)
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if (series->images != NULL) {
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for (int i = 0; i < series->count; i++) {
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if (series->images[i].buffer != NULL) {
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free(series->images[i].buffer); // ← Buffer von Bild i freigeben
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}
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}
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}
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// Schritt 2: Das images-Array freigeben
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if (series->images != NULL) {
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free(series->images);
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}
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// Schritt 3: Das labels-Array freigeben
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if (series->labels != NULL) {
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free(series->labels);
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}
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// Schritt 4: Die Serie-Struktur selbst freigeben
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free(series);
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}
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@@ -0,0 +1,23 @@
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#ifndef IMAGEINPUT_H
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#define IMAGEINPUT_H
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typedef unsigned char GrayScalePixelType;
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typedef struct
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{
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GrayScalePixelType *buffer; // Breite in Pixeln
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unsigned int width; // Höhe in Pixeln
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unsigned int height; // Die Pixelwerte (0-255)
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} GrayScaleImage; // EIN Bild
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typedef struct
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{
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GrayScaleImage *images; // Array von Bildern
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unsigned char *labels; // Array von Labels (welche Ziffer?)
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unsigned int count; // Wie viele Bilder ?
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} GrayScaleImageSeries; // Sammlung der Bilder
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GrayScaleImageSeries *readImages(const char *path);
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void clearSeries(GrayScaleImageSeries *series);
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#endif
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@@ -0,0 +1,173 @@
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#include <stdlib.h>
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#include <string.h>
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#include <stdio.h>
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#include "matrix.h"
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// TODO Matrix-Funktionen implementieren
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Matrix createMatrix(unsigned int rows, unsigned int cols)
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{
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Matrix m;
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m.rows = rows;
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m.cols = cols;
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m.buffer = (MatrixType*)malloc(sizeof(MatrixType) * rows * cols);
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// Prüfe auf ungültige Dimensionen
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if (rows == 0 || cols == 0) {
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m.rows = 0;
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m.cols = 0;
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m.buffer = NULL;
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return m;
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}
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if (m.buffer == NULL){
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fprintf(stderr, "Error: Memory allocation failed in createMatrix!.\n");
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m.rows = 0;
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m.cols = 0;
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return m;
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}
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for (unsigned int i = 0; i < rows * cols; i++){
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m.buffer[i] = 0.0f;
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}
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return m;
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}
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void clearMatrix(Matrix *matrix)
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{
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if (matrix == NULL) {
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return;
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}
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// Speicher freigeben falls vorhanden
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if (matrix->buffer != NULL) {
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free(matrix->buffer);
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matrix->buffer = NULL;
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}
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// Dimensionen zurücksetzen
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matrix->rows = 0;
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matrix->cols = 0;
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}
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void setMatrixAt(MatrixType value, Matrix matrix, unsigned int rowIdx, unsigned int colIdx)
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{
|
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if (rowIdx >= matrix.rows || colIdx >= matrix.cols) {
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fprintf(stderr, "Error: setMatrixAt index out of bounds.\n");
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return;
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}
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matrix.buffer[rowIdx * matrix.cols + colIdx] = value;
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}
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MatrixType getMatrixAt(const Matrix matrix, unsigned int rowIdx, unsigned int colIdx)
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{
|
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if (rowIdx >= matrix.rows || colIdx >= matrix.cols) {
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fprintf(stderr, "Error: getMatrixAt index out of bounds.\n");
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return UNDEFINED_MATRIX_VALUE;
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}
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return matrix.buffer[rowIdx * matrix.cols + colIdx];
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}
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Matrix add(const Matrix matrix1, const Matrix matrix2)
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{
|
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Matrix result;
|
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|
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// Fall 1: Normale elementweise Addition (gleiche Dimensionen)
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if (matrix1.rows == matrix2.rows && matrix1.cols == matrix2.cols) {
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result = createMatrix(matrix1.rows, matrix1.cols);
|
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if (result.buffer == NULL) {
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return result;
|
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}
|
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for (unsigned int i = 0; i < matrix1.rows; i++) {
|
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for (unsigned int j = 0; j < matrix1.cols; j++) {
|
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setMatrixAt(
|
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getMatrixAt(matrix1, i, j) + getMatrixAt(matrix2, i, j),
|
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result,
|
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i, j
|
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);
|
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}
|
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}
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return result;
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}
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// Fall 2: Broadcasting - matrix2 ist Spaltenvektor (cols=1)
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else if (matrix1.rows == matrix2.rows && matrix2.cols == 1) {
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result = createMatrix(matrix1.rows, matrix1.cols);
|
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if (result.buffer == NULL) {
|
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return result;
|
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}
|
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|
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for (unsigned int i = 0; i < matrix1.rows; i++) {
|
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for (unsigned int j = 0; j < matrix1.cols; j++) {
|
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// matrix2 hat nur 1 Spalte (Index 0), wird über alle Spalten verteilt
|
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setMatrixAt(
|
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getMatrixAt(matrix1, i, j) + getMatrixAt(matrix2, i, 0),
|
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result,
|
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i, j
|
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);
|
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}
|
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}
|
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return result;
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}
|
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|
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// Fall 3: Broadcasting - matrix1 ist Spaltenvektor (cols=1)
|
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else if (matrix2.rows == matrix1.rows && matrix1.cols == 1) {
|
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result = createMatrix(matrix2.rows, matrix2.cols);
|
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if (result.buffer == NULL) {
|
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return result;
|
||||
}
|
||||
|
||||
for (unsigned int i = 0; i < matrix2.rows; i++) {
|
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for (unsigned int j = 0; j < matrix2.cols; j++) {
|
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// matrix1 hat nur 1 Spalte (Index 0), wird über alle Spalten verteilt
|
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setMatrixAt(
|
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getMatrixAt(matrix1, i, 0) + getMatrixAt(matrix2, i, j),
|
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result,
|
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i, j
|
||||
);
|
||||
}
|
||||
}
|
||||
return result;
|
||||
}
|
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// Fall 4: Ungültige Dimensionen
|
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else {
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fprintf(stderr, "Error: Matrix dimensions do not match for addition.\n");
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Matrix empty = {0, 0, NULL};
|
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return empty;
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}
|
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}
|
||||
|
||||
|
||||
|
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Matrix multiply(const Matrix matrix1, const Matrix matrix2)
|
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{
|
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if (matrix1.cols != matrix2.rows) {
|
||||
fprintf(stderr, "Error: Invalid matrix dimensions for multiplication.\n");
|
||||
Matrix empty = {0, 0, NULL};
|
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return empty;
|
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}
|
||||
|
||||
Matrix result = createMatrix(matrix1.rows, matrix2.cols);
|
||||
if (result.buffer == NULL) {
|
||||
return result;
|
||||
}
|
||||
|
||||
for (unsigned int i = 0; i < matrix1.rows; i++) {
|
||||
for (unsigned int j = 0; j < matrix2.cols; j++) {
|
||||
MatrixType sum = 0.0f;
|
||||
|
||||
for (unsigned int k = 0; k < matrix1.cols; k++) {
|
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sum += getMatrixAt(matrix1, i, k) * getMatrixAt(matrix2, k, j);
|
||||
}
|
||||
|
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setMatrixAt(sum, result, i, j);
|
||||
}
|
||||
}
|
||||
|
||||
return result;
|
||||
}
|
||||
@@ -6,7 +6,12 @@
|
||||
typedef float MatrixType;
|
||||
|
||||
// TODO Matrixtyp definieren
|
||||
typedef struct{
|
||||
unsigned int rows;
|
||||
unsigned int cols;
|
||||
MatrixType* buffer;
|
||||
|
||||
} Matrix;
|
||||
|
||||
Matrix createMatrix(unsigned int rows, unsigned int cols);
|
||||
void clearMatrix(Matrix *matrix);
|
||||
@@ -164,7 +164,7 @@ void test_setMatrixAtFailsOnIndicesOutOfRange(void)
|
||||
Matrix matrixToTest = {.rows=2, .cols=3, .buffer=buffer};
|
||||
|
||||
setMatrixAt(-1, matrixToTest, 2, 3);
|
||||
TEST_ASSERT_EQUAL_FLOAT_ARRAY(expectedResults, matrixToTest.buffer, sizeof(buffer)/sizeof(MatrixType));
|
||||
TEST_ASSERT_EQUAL_FLOAT_ARRAY(expectedResults, matrixToTest.buffer, matrixToTest.cols * matrixToTest.rows);
|
||||
}
|
||||
|
||||
void setUp(void) {
|
||||
@@ -170,7 +170,7 @@ NeuralNetwork loadModel(const char *path)
|
||||
|
||||
static Matrix imageBatchToMatrixOfImageVectors(const GrayScaleImage images[], unsigned int count)
|
||||
{
|
||||
Matrix matrix = {NULL, 0, 0};
|
||||
Matrix matrix = {0, 0, NULL}; //hier evtl Null auf int casten?
|
||||
|
||||
if(count > 0 && images != NULL)
|
||||
{
|
||||
@@ -8,7 +8,42 @@
|
||||
|
||||
static void prepareNeuralNetworkFile(const char *path, const NeuralNetwork nn)
|
||||
{
|
||||
// TODO
|
||||
FILE *file = fopen(path, "wb");
|
||||
|
||||
if (file == NULL) {
|
||||
return;
|
||||
}
|
||||
|
||||
// 1. Header schreiben
|
||||
const char *fileTag = "__info2_neural_network_file_format__";
|
||||
fwrite(fileTag, sizeof(char), strlen(fileTag), file);
|
||||
|
||||
// 2. Alle Schichten schreiben
|
||||
for (unsigned int i = 0; i < nn.numberOfLayers; i++) {
|
||||
// NUR bei der ERSTEN Schicht: Input-Dimension schreiben
|
||||
if (i == 0) {
|
||||
int inputDim = nn.layers[i].weights.cols;
|
||||
fwrite(&inputDim, sizeof(int), 1, file);
|
||||
}
|
||||
|
||||
// Output-Dimension (= Anzahl Zeilen der Gewichtsmatrix)
|
||||
int outputDim = nn.layers[i].weights.rows;
|
||||
fwrite(&outputDim, sizeof(int), 1, file);
|
||||
|
||||
// Gewichtsmatrix schreiben (alle Werte)
|
||||
int weightCount = nn.layers[i].weights.rows * nn.layers[i].weights.cols;
|
||||
fwrite(nn.layers[i].weights.buffer, sizeof(MatrixType), weightCount, file);
|
||||
|
||||
// Bias-Matrix schreiben (alle Werte)
|
||||
int biasCount = nn.layers[i].biases.rows * nn.layers[i].biases.cols;
|
||||
fwrite(nn.layers[i].biases.buffer, sizeof(MatrixType), biasCount, file);
|
||||
}
|
||||
|
||||
// 3. Terminator schreiben (outputDimension = 0 zum Stoppen)
|
||||
int terminator = 0;
|
||||
fwrite(&terminator, sizeof(int), 1, file);
|
||||
|
||||
fclose(file);
|
||||
}
|
||||
|
||||
void test_loadModelReturnsCorrectNumberOfLayers(void)
|
||||
Reference in New Issue
Block a user