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I need some advice (not the answer).

My current assignment requires that I check (int first, int second...int fifth), for duplicate numbers using int pick.

User is to enter 2 numbers (one number is a range from 1-100 and the second number is 1-6), then i randomize the output by using the information they provide

Example Num1 = 49 Num2 = 3 Output: 4, 40, 30.

I need a way to check if "pick" (the random number generated), does not duplicate against int first, int second and so on.

I can use a bunch of if statements to validate pick vs first, second etc. I'd like not to do this as it is way to much code. I was wondering if there is a way that I could use a loop to do this?

Any advice would be appreciated, this is homework, but I'm not looking for the answer just a hint or advice.

I can post some code i have if need be.

#include <stdio.h>
#include <stdlib.h>
#include <time.h>



int validate(int low, int high) {
    int flag = 0, number = 0;
    do 
    {
        scanf(" %d", &number);
        if (number <= low || number > high) 
        {
            printf("INVALID! Must enter a value between %d and %d: ", low, high);
        }
        else {
            flag = 1;
        }
    } while(flag == 0);
    return number;
}

int getRand(int max) {
    int number, i;
    number = rand() % max + 1;
    return number;
}
int validatePick(int pick, int first, int second, int third, int fourth, int fifth) {
    int valid;

    do {
        if (pick 

}
void prnt(int qty, int first, int second, int third, int fourth, int fifth, int sixth);
int sort2(int *n1, int *n2);


main () {
    int num1, num2, count = 0;
    int pick, first = second = third = fourth = fifth = 0;

    printf("LOTTERY GENERATOR\n");
    printf("Enter the maximum value between 1 and 100: ");
    num1 = validate(1,100);
    printf("Enter quantity of numbers to pick, between 1 and 6: ");
    num2 = validate(1, 6);

    srand(time(NULL));
    printf("Picks: %c", ' ');
    while (count < num2) {
        getRand(num1);

        count++;
    }
}
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closed as not constructive by Pascal Cuoq, Mike, Jonathan Leffler, finnw, bmargulies Nov 2 '12 at 19:58

As it currently stands, this question is not a good fit for our Q&A format. We expect answers to be supported by facts, references, or expertise, but this question will likely solicit debate, arguments, polling, or extended discussion. If you feel that this question can be improved and possibly reopened, visit the help center for guidance.If this question can be reworded to fit the rules in the help center, please edit the question.

2  
why not put the numbers into an array, so that you can check in a loop? –  Vlad Nov 1 '12 at 13:31
1  
I am not sure how advance your class is. But one of the most efficient ways to do this would be to use a data structure such as a sorted B or B* tree. Then you can just iterate through the tree until you find or don't find your number. –  CoffeeMuncher Nov 1 '12 at 13:33
    
Not that advanced at the moment. I have to write this program without arrays 1st, for bonus marks I can use arrays (i have to resubmit it). If i could use arrays it would be a hell of a lot easier. I may be over thinking this. –  Luca Tenuta Nov 1 '12 at 13:34
1  
I'd probably recommend a simple hash table with a really basic hash function line x mod n. It's just a lot easier to make a hash table than a B tree for a homework assignment. –  Geoff Montee Nov 1 '12 at 13:35
    
Correct me if I am wrong, but you're always checking your generated number against input Num1 and Num2 or are you checking the generated number against every previous generated number? –  CoffeeMuncher Nov 1 '12 at 13:37

1 Answer 1

You can create a basic hash table to store your numbers and check for duplicates pretty easily.

typedef struct HashElement
{
    int data;
    HashElement* next;
} HashElement;

typedef struct HashTable
{
    int size;
    HashElement** table;
} HashTable;

HashTable* allocateHashTable(int size)
{
    HashElement** table = malloc(sizeof(HashElement*) * size);

    for (int count = 0; count < size; count++)
    {
        table[count] = NULL;
    }

    HashTable* hashTable = malloc(sizeof(HashTable));

    hashTable->size = size;
    hashTable->table = table;

    return hashTable;
}

HashElement* allocateHashElement(int value)
{
    HashElement* element = malloc(sizeof(HashElement));

    element->data = value;
    element->next = NULL;

    return element;
}

void freeHashTable(HashTable* hashTable)
{
    //to do
}

void freeHashElement(HashElement* element)
{
    //to do
}

void insertValue(HashTable* hashTable, int value)
{
    //to do
}

int hash(int value, int size)
{
    return value % size;
}

int elementExists(HashTable* hashTable, int value)
{
    int index = hash(value, hashTable->size);

    HashElement* current = hashTable->table[index];

    while (current != NULL)
    {
        if (current->data == value)
            return 1;

        current = current->next;
    }

    return 0;
}

Edit 1:

You could add your 5 numbers or whatever to the hash table, and change your function to this:

int validatePick(int pick, HashTable* hashTable) {
    return (elementExists(hashTable, pick) : 0 ? 1); 
}

Although, a hash table may be overkill if you only have 5 elements. It seems like a simple array would suffice, but you mentioned that arrays are forbidden.

Edit 2:

So:

  1. Arrays are forbidden.
  2. Data structures are too complex.
  3. Want to minimize code.

So, if you just dont want a bunch of big if blocks...

int validatePick(int pick, int one, int two, int three, int four, int five) {
    return ((pick == one) : 0 ?
        ((pick == two)    : 0 ?
        ((pick == three)  : 0 ?
        ((pick == four)   : 0 ?
        ((pick == five)   : 0 ? 1))))); 
}
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