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This is one thing I can't understand. I'm using a function which fetches records from the database. And if that record doesn't exist. It performs an insert query. I even echoed out to ensure that those 2 parameters contains something. And it really contain something. What I can't understand is that it doesn't perform the insert query. I also tested the insert query below on another script which doesn't use function. And it worked.

function fetch_customer($cust, $credit){

$getcnum=query_database("SELECT Cust_Name, CUSID FROM customer_credit WHERE Cust_Name='$cust'","onstor",$link);

if(mysql_num_rows($getcnum)==0){
    $fullname=explode(",", $cust);
    $lname= $fullname[0];
    $fname= $fullname[1];


    query_database("INSERT INTO customer_credit(Cust_Name, CREDIT) VALUES('$cust','$credit')",'onstor' ,$link);

    echo "customer: ".$cust."<br/>";

    echo "credit: ".$credit;
    query_database("INSERT INTO customer_table(CLNAME, CFNAME) VALUES('$lname', '$fname')",'onstor',$link);

}

Then I would call the function later on.

fetch_customer($customer, $custcred);

Where do I start if I want to debug this one?

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Where does your $link come from ? if it's defined out of the function it may be the problem :) –  Tsadiq Mar 4 '11 at 15:53
    
What does 'query_database' do? –  cusimar9 Mar 4 '11 at 15:53
    
whats this query_database ? ,if you want to query or insert it should be mysql_query –  sush Mar 4 '11 at 15:53
    
the code for your query_database function may help –  krtek Mar 4 '11 at 15:53
    
Show us query_database code –  Parkyprg Mar 4 '11 at 15:55
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5 Answers

up vote 2 down vote accepted

I'm thinking that your insert queries aren't working because, to wit, there is no query_database function defined (unless it's one that you've defined yourself).

The function that (I believe) you are looking for is mysql_query.

Here's a link to the docs: mysql_query

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seems like the problem is with using functions. I have an include statement which contains the function query_database. And I think the function cannot see the include. That's why it doesn't work. But thanks –  user225269 Mar 4 '11 at 16:05
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Are you sure that it goes into the if statement? mysql_num_rows($getcnum)==0 echo mysql_num_rows($getcnum) and see how many rows contains, I have also notice the single quotes into 'onstor' , could that be a problem in your function?

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It's hard to answer without seeing the query_database() function. I'm not sure why you're doing that instead of just using mysql_query("INSERT INTO...") or whatever. It's possible that your query_database() function isn't returning the proper query variable.

The only thing I can tell you is that in the code above, you're missing a closing bracket. The if statement is closed, but the function isn't. That might be the problem.

Good luck.

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Here is php code to query mysql

function fetch_customer($cust, $credit){


    $link = mysql_connect( 'localhost' , 'username' , 'password' );

    mysql_select_db( 'onstor' , $link ); 

    $getcnum=mysql_query("SELECT Cust_Name, CUSID FROM customer_credit WHERE Cust_Name='$cust'");

        if(mysql_num_rows($getcnum)==0){
            $fullname=explode(",", $cust);
            $lname= $fullname[0];
            $fname= $fullname[1];


            mysq_query("INSERT INTO customer_credit(Cust_Name, CREDIT) VALUES('$cust','$credit')");

            echo "customer: ".$cust."<br/>";

            echo "credit: ".$credit;
            mysql_query("INSERT INTO customer_table(CLNAME, CFNAME) VALUES('$lname', '$fname')");

        }
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$link = mysql_connect( 'localhost' , 'username' , 'password' ); here you have the link. Previously, you didn't have any link. You were passing undefined var as second parameter –  Tsadiq Mar 4 '11 at 16:10
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You are passing the $link to the database in your query_database($sql, $db, $link), but it is not defined anywhere. So it must be a global variable, that you forget to declare. So, declare $link as being global:

function fetch_customer($cust, $credit)
{
     global $link;
     // rest of your function
} 
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