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19da93680c
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19da93680c | ||
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da5a1d9cba | ||
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4825bbab43 | ||
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95af97bef7 |
@@ -36,14 +36,14 @@ $(program_obj_filesobj_files): %.o: %.c
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# Unit Tests
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# --------------------------
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unitTests:
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echo "needs to be implemented"
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$(CC) $(FLAGS) $^ -o test_stack test_stack.c stack.c -Wall && ./test_stack
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# --------------------------
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# Clean
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# --------------------------
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clean:
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ifeq ($(OS),Windows_NT)
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del /f *.o doble
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del /f *.o doble test_stack
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else
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rm -f *.o doble
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rm -f *.o doble test_stack
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endif
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@@ -5,11 +5,11 @@
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#include "numbers.h"
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#include "bintree.h"
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//TODO: getDuplicate und createNumbers implementieren
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// TODO: getDuplicate und createNumbers implementieren
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/* * * Erzeugen eines Arrays mit der vom Nutzer eingegebenen Anzahl an Zufallszahlen.
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* Sicherstellen, dass beim Befüllen keine Duplikate entstehen.
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* Duplizieren eines zufälligen Eintrags im Array.
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* in `getDuplicate()`: Sortieren des Arrays und Erkennen der doppelten Zahl durch Vergleich benachbarter Elemente. */
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* Sicherstellen, dass beim Befüllen keine Duplikate entstehen.
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* Duplizieren eines zufälligen Eintrags im Array.
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* in `getDuplicate()`: Sortieren des Arrays und Erkennen der doppelten Zahl durch Vergleich benachbarter Elemente. */
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// Returns len random numbers between 1 and 2x len in random order which are all different, except for two entries.
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// Returns NULL on errors. Use your implementation of the binary search tree to check for possible duplicates while
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@@ -17,10 +17,41 @@
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unsigned int *createNumbers(unsigned int len)
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{
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int n;
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printf("Wie viele Zufallszahlen sollen erstellt werden? ");
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scanf("%d", &n);
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int array[n];
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srand(time(NULL)); // Zufallsgenerator initialisieren
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for (int i = 0; i < n; i++)
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{
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int zahl;
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char vorhanden;
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do
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{
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vorhanden = 0;
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zahl = rand() % n; // Zufallszahl zwischen 1 und 100
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// Prüfen, ob Zahl schon im Array existiert
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for (int j = 0; j < i; j++)
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{
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if (array[j] == zahl)
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{
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vorhanden = 1;
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break;
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}
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}
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} while (vorhanden); // solange wiederholen, bis Zahl einzigartig ist
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array[i] = zahl;
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}
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return 0;
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}
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// Returns only the only number in numbers which is present twice. Returns zero on errors.
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unsigned int getDuplicate(const unsigned int numbers[], unsigned int len)
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{
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}
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@@ -10,24 +10,67 @@
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// Pushes data as pointer onto the stack.
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StackNode *push(StackNode *stack, void *data)
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{
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// Speicher für den neuen Knoten allokieren
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StackNode *newNode = (StackNode *)malloc(sizeof(StackNode));
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// Prüfen, ob die Allokierung erfolgreich war
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if (newNode == NULL)
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{
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return stack; // Unveränderter Stack bei Fehler
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}
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// Neuen Knoten initialisieren
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newNode->data = data;
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newNode->next = stack; // Zeigt auf die aktuelle Spitze des Stacks
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// Neuen Knoten als neue Spitze des Stacks zurückgeben
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return newNode;
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}
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// Deletes the top element of the stack (latest added element) and releases its memory. (Pointer to data has to be
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// freed by caller.)
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StackNode *pop(StackNode *stack)
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{
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// Prüfen, ob der Stack leer ist
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if (stack == NULL)
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{
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return NULL;
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}
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// Zeiger auf den nächsten Knoten speichern (wird zur neuen Spitze)
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StackNode *newTop = stack->next;
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// Aktuellen obersten Knoten freigeben (aber NICHT die Daten - Verantwortung des Aufrufers)
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free(stack);
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// Neue Spitze des Stacks zurückgeben
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return newTop;
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}
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// Returns the data of the top element.
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void *top(StackNode *stack)
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{
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// Prüfen, ob der Stack leer ist
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if (stack == NULL)
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{
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return NULL;
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}
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// Datenzeiger des obersten Knotens zurückgeben
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return stack->data;
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}
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// Clears stack and releases all memory.
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void clearStack(StackNode *stack)
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{
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StackNode *current = stack;
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StackNode *next;
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// Durch alle Knoten iterieren und freigeben
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while (current != NULL)
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{
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next = current->next; // Nächsten Knoten speichern
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free(current); // Aktuellen Knoten freigeben (aber NICHT die Daten)
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current = next; // Zum nächsten Knoten weitergehen
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}
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}
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@@ -8,6 +8,13 @@ The latest element is taken from the stack. */
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#include <stdlib.h>
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//TODO: passenden Datentyp als struct anlegen
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typedef struct StackNode
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{
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void *data;
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struct StackNode *next;
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struct StackNode *prev;
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}StackNode;
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// Pushes data as pointer onto the stack.
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StackNode *push(StackNode *stack, void *data);
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+187
@@ -0,0 +1,187 @@
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#include <stdio.h>
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#include <stdlib.h>
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#include <assert.h>
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#include "stack.h"
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// Hilfsfunktion: Gibt "PASSED" oder "FAILED" aus
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void printTestResult(const char *testName, int passed)
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{
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if (passed)
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{
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printf("[PASSED] %s\n", testName);
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}
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else
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{
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printf("[FAILED] %s\n", testName);
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}
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}
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// Test 1: Leerer Stack
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void test_emptyStack()
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{
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StackNode *stack = NULL;
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// Top auf leerem Stack sollte NULL zurückgeben
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void *result = top(stack);
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printTestResult("Test 1: top() auf leerem Stack", result == NULL);
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// Pop auf leerem Stack sollte NULL zurückgeben
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stack = pop(stack);
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printTestResult("Test 1: pop() auf leerem Stack", stack == NULL);
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}
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// Test 2: Push und Top
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void test_pushAndTop()
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{
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StackNode *stack = NULL;
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// Integer-Werte allokieren
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int *val1 = (int *)malloc(sizeof(int));
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*val1 = 42;
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// Wert auf den Stack legen
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stack = push(stack, val1);
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// Obersten Wert abrufen
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int *topVal = (int *)top(stack);
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int passed = (topVal != NULL && *topVal == 42);
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printTestResult("Test 2: push() und top()", passed);
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// Aufräumen
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free(val1);
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clearStack(stack);
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}
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//Test 3 mehrmaliges pushen
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void test_multiplePush()
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{
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StackNode *stack = NULL;
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//Speicher für Werte allokieren
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int *val1 = (int *) malloc(sizeof(int));
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int *val2 = (int *) malloc(sizeof(int));
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int *val3 = (int *) malloc(sizeof(int));
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*val1 = 10;
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*val2 = 20;
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*val3 = 30;
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//Testwerte auf den Stack legen
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stack = push(stack, val1);
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stack = push(stack, val2);
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stack = push(stack, val3);
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// Oberster Wert sollte 30 sein (LIFO)
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int *topVal = (int *)top(stack);
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int passed = (topVal != NULL && *topVal == 30);
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printTestResult("Test 3: Mehrfache push() - LIFO-Prinzip", passed);
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// Aufräumen
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free(val1);
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free(val2);
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free(val3);
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clearStack(stack);
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}
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// Test 4: Push und Pop
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void test_pushAndPop()
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{
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StackNode *stack = NULL;
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// Drei Werte auf den Stack legen
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int *val1 = (int *)malloc(sizeof(int));
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int *val2 = (int *)malloc(sizeof(int));
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int *val3 = (int *)malloc(sizeof(int));
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*val1 = 100;
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*val2 = 200;
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*val3 = 300;
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stack = push(stack, val1);
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stack = push(stack, val2);
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stack = push(stack, val3);
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// Oberster Wert: 300
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int *topVal1 = (int *)top(stack);
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int test1 = (topVal1 != NULL && *topVal1 == 300);
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// Pop - neuer oberster Wert: 200
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stack = pop(stack);
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int *topVal2 = (int *)top(stack);
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int test2 = (topVal2 != NULL && *topVal2 == 200);
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// Pop - neuer oberster Wert: 100
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stack = pop(stack);
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int *topVal3 = (int *)top(stack);
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int test3 = (topVal3 != NULL && *topVal3 == 100);
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// Pop - Stack sollte leer sein
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stack = pop(stack);
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int test4 = (stack == NULL);
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int passed = test1 && test2 && test3 && test4;
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printTestResult("Test 4: push() und pop() - Korrekte Reihenfolge", passed);
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// Aufräumen
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free(val1);
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free(val2);
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free(val3);
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}
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// Test 5: ClearStack
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void test_clearStack()
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{
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StackNode *stack = NULL;
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// Mehrere Werte auf den Stack legen
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int *val1 = (int *)malloc(sizeof(int));
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int *val2 = (int *)malloc(sizeof(int));
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int *val3 = (int *)malloc(sizeof(int));
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int *val4 = (int *)malloc(sizeof(int));
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int *val5 = (int *)malloc(sizeof(int));
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*val1 = 1;
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*val2 = 2;
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*val3 = 3;
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*val4 = 4;
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*val5 = 5;
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stack = push(stack, val1);
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stack = push(stack, val2);
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stack = push(stack, val3);
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stack = push(stack, val4);
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stack = push(stack, val5);
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// Stack löschen
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clearStack(stack);
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stack = NULL; // Nach clearStack ist der Stack leer
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printTestResult("Test 5: clearStack() - Alle Knoten freigegeben", 1);
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// Daten müssen manuell freigegeben werden (Verantwortung des Aufrufers)
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free(val1);
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free(val2);
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free(val3);
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free(val4);
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free(val5);
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}
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int main()
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{
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printf("=== Stack Unit-Tests ===\n\n");
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test_emptyStack();
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test_pushAndTop();
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test_multiplePush();
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test_pushAndPop();
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test_clearStack();
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/*test_stressTest();*/
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printf("\n=== Alle Tests abgeschlossen ===\n");
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printf("\nCode-Review: Speicherverwaltung\n");
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printf("--------------------------------\n");
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printf("✓ Aufrufer gibt Daten frei, Stack-Funktionen geben Knoten frei\n");
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return 0;
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}
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Reference in New Issue
Block a user