Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

The question is too long and complicated to put in the title so i'll try to describe it here:

A loop prompts for 4 options (1,2,3,q) and if you enter 1, you input an account # in accounts[MAX] array. If the total index # of accounts is greater than 10 then it no longer accepts input but if accounts[5] and accounts[11] have the same account # (both are 1400) then it continues to accept it. How can I check if the 2 accounts are the same and if they are to allow input to be entered?

my code so far:

do
{
    printf ("Options Available: \n");
    printf ("\n 1 - Enter a transaction");
    printf ("\n 2 - View the general journal");
    printf ("\n 3 - View the balance sheet");
    printf ("\n q - Quit the program\n");

    printf ("\nPlease enter 1, 2, 3 or q: ");

    option = validateoption();

    if (option == '1' && totalinput >= MAXtrans)
        printf (" **Maximum number of transactions have been entered\n\n");

    if (option == '1')
    {
        printf ("\nEnter an account number (between 1000 and 3999): ");
        accounts[i] = validateaccount();
        printf ("\n");

        printf ("Enter d (debit) or c (credit): ");
        debcred[i] = validatedebcred();
        printf ("\n");

        printf ("Enter transaction amount: ");
        amount[i] = validateamount();
        printf ("\n");

        printf ("\n");

        i++;
        totalinput++;

    }

    if (option == '2')
        journal(accounts, debcred, amount, &totalinput);

    if (option == '3')
        balancesheet(accounts, debcred, amount, &totalinput);

} while (option != 'q');

So in accounts[i] if there are 10 accounts entered then it no longer accepts more accounts but if I enter account # 1400 and account[3] or w.e also has the account # of 1400 then it accepts that input because they are the same account and the total number of accounts is still the same.

My validate account function:

long validateaccount() {  // VALIDATE INPUT FOR ACCOUNT # IN TRANSACTION FUNCTION

    int keeptrying = 1, rc;
    long i;
    char after;

    do
    {
        rc = scanf ("%ld%c", &i, &after);

        if (rc == 0)
        {
            printf (" **Invalid input try again: ");
            clear();
        }
        else if (after != '\n')
        {
            printf (" **Trailing characters try again: ");
            clear();
        }
        else if (i < 1000 || i > 3999)
        {
            printf (" **Invalid input try again: ");
        }
        else
        {
                keeptrying = 0;
        }

    } while (keeptrying == 1);

    return i;

}

EDIT: Here is a sample output of what it should show hopefully thats more clear?

Options available:

1 - Enter a transaction 2 - View the general journal 3 - View the balance sheet q - Quit the program

Please enter 1, 2, 3, or q: 1

Enter an account number (between 1000 and 3999) : 3999

Enter d (debit) or c (credit): d

Enter transaction amount: 10000

Options available:

1 - Enter a transaction 2 - View the general journal 3 - View the balance sheet q - Quit the program

Please enter 1, 2, 3, or q: 1

Enter an account number (between 1000 and 3999) : 3998 **Maximum number of accounts has been entered

Options available:

1 - Enter a transaction 2 - View the general journal 3 - View the balance sheet q - Quit the program

Please enter 1, 2, 3, or q: 1

Enter an account number (between 1000 and 3999) : 3999

Enter d (debit) or c (credit): c

Enter transaction amount: 1000


so what happens is 3999 account # is entered first, and then 3998 is entered after but after the 3999 was entered the maximum number of accounts was filled up (10 accounts or accounts[10]) but after 3998 was entered, account # 3999 was entered again and the program accepted that input. If it still isn't clear i'll try and explain more!

share|improve this question
1  
"greater than 10 then it no longer accepts input but if accounts[5] and accounts[11] have the same account # (both are 1400)" Sorry I don't understand, because you can only store one element by array slot. –  Alberto Bonsanto Nov 20 '12 at 0:46
    
Your question is not clear. If this is an assignment please copy the question. –  Eli Algranti Nov 20 '12 at 0:47
    
I edited the original comment to show what the output looks like!if you need me to be more clear just ask and ill try and deliver! –  user1808190 Nov 20 '12 at 0:52
    
AlbertoBonsanto what i mean is that accounts[5] and accounts[11] have the VALUE of 1400, does that make sense? –  user1808190 Nov 20 '12 at 0:58
    
No only the option is a char, and its a char because it only stores 1,2,3,q. accounts[max] is a long so it holds a number value –  user1808190 Nov 20 '12 at 1:23
show 3 more comments

1 Answer

If i represents the number of accounts inputted (note that I don't know if you managed correctly the wrong states), j represents the position for the element, thinking that long int variables are stored in the array account, and I will assume that you want to add an update for the state.

So in accounts[i] if there are 10 accounts entered then it no longer accepts more accounts but if I enter account # 1400 and account[3] or w.e also has the account # of 1400 then it accepts that input because they are the same account and the total number of accounts is still the same.

if ( option == '1' )
{
    long int j;

    /* k represents position */
    int k;

    printf ("\nEnter an account number (between 1000 and 3999): ");

    /* If is the last try and the account is inside the array let's update it. */
    /* Pass by reference k. */
    if( ( i == 10 ) && ( isAccount( validateaccount(), &k ) == 1 ) ){ 
        accounts[ k ] = validateaccount();
        printf ("\n");

        printf ("Enter d (debit) or c (credit): ");
        debcred[ k ] = validatedebcred();
        printf ("\n");

        printf ("Enter transaction amount: ");
        amount[ k ] = validateamount();
        printf ("\n");
        printf ("\n");

        i++;
    }

    /* Pass by reference k. */
    else if( ( i == 10 ) && ( isAccount( validateaccount(), &k ) == 0 ) ){

        printf (" Your input isn't allowed cause the account is not in the list. \n");

    }

    else{
        accounts[ i ] = validateaccount();
        printf ("\n");

        printf ("Enter d (debit) or c (credit): ");
        debcred[ i ] = validatedebcred();
        printf ("\n");

        printf ("Enter transaction amount: ");
        amount[ i ] = validateamount();
        printf ("\n");
        printf ("\n");

        i++;
    }
}


/* I will think your array is a global variable, let's use a pass by reference function. */
int isAccount( long int a, int * k )
{
    int result = 0;
    int counter, j;

    for( counter = 0; counter < 11; counter++ ){
        if( accounts[ counter ] == a ){
            * k = counter;
            return 1;
        } 
    }
    return 0;
}

PD: you can use structsIt would have been 10x easier.

share|improve this answer
    
Not exactly sure what this is doing? Could you explain what each section does? –  user1808190 Nov 20 '12 at 3:32
    
Specifically "if( ( i == 10 ) && ( isAccount( validateaccount(), &k ) == 1 ) ){ " and "else if( ( i == 10 ) && ( isAccount( validateaccount(), &k ) == 0 ) ){ " "int isAccount( long int a, int * k )" functions! –  user1808190 Nov 20 '12 at 3:37
    
If you will enter a 10 value, and the account you entered is inside the list of accounts ( isAccount( validateaccount(), &k ) ) then you can update the account, in the case that you enter a 10 value and the account is not in the list ignore the input –  Alberto Bonsanto Nov 20 '12 at 10:00
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.