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I have another PHP question for you. I have a class that is supposed to go into a database and find labels which will be used in the main program file. When I try to connect to my database, it seems to not like the fact that I'm using a function to set the value of a variable (I am guessing that's why I has the "unexpected (" error)

Here is the class:

class lblFinder
        {
            //declarations
                private $dbConnection=mysql_connect("localhost", "root", "");
                private $dbName="matecalculator";

                private $cmd="";
                private $size=0;
            //end of declarations

            public function setSize($shape)
            {
                if($dbConnection===false)
                {
                    echo "<p>Something went wrong.</p><p> Error Code:".mysql_errno().": ".mysql_error()."</p>";
                }
                else
                {
                    if(mysql_select_db($this->dbName,$this->dbConnection))
                    {
                        $cmd="SELECT COUNT(varID) FROM tblVariables WHERE shapeID IN(SELECT shapeID FROM tblShapes WHERE shapeName= '".$shape."')";
                        $qryResults=mysql_query($this->cmd,$dbConnection);

                        //get results
                        while (($Row = mysql_fetch_row($QueryResult)) !== FALSE)
                        {
                            $size=$Row[0];
                        }

                        mysql_free_result($qryResults);
                    }
                    else
                    {
                        echo "<p>Something went wrong.</p><p> Error Code:".mysql_errno().": ".mysql_error()."</p>";
                    }
                }
            }

            public function getSize()
            {
                return $this->size;
            }

            public function setLabels($shape)
            {
                //declarations
                    $l=array();
                //end of declarations

                $this->cmd="SELECT varDesc FROM tblVariables WHERE shapeID IN(SELECT shapeID FROM tblShapes WHERE shapeName= '".$shape."')";
                $qryResults=mysql_query($cmd,$dbConnection);

                $i=0;
                if(($Row = mysql_fetch_row($QueryResult)) !== FALSE)
                {
                    $l[i]=$Row[0];
                    $i++;
                }
                mysql_free_result($qryResults);
                return l;
            }
        }

I use a test file to pass dummy values to the application. The relevant code is as follows:

        $arr=array();
        $lf=new lblFinder;
        $lf->setSize("Round");
        echo "Size=".$lf->getSize();
        $arr=$lf->setLabels("Round");
        $i=0;
        foreach($arr AS $label)
        {
            echo "Label $i is $label";
        }

I know that "Round" is a valid value in my DB. I also know that my logic works, because I built this exact app in ASP.NET, and it worked (unfortunately the client didn't tell us asp wouldn't work until after it was written...so I need to use PHP)

The functioning ASP code is as follows

 public class lblFinder
 {
private static string connectionString;
private MySqlConnection con;
private MySqlCommand cmd;
private MySqlDataReader reader;
private int size;
private int i = 0;

public lblFinder(string connStr, MySqlConnection connection, MySqlCommand c, MySqlDataReader r)
{
    connectionString = connStr;
    con = connection;
    reader = r;
    cmd = c;
    cmd.Connection = con;
}

public void setSize(string shapeName)
{
    cmd.CommandText = "SELECT COUNT(varID) FROM tblVariables WHERE shapeID IN(SELECT shapeID FROM tblShapes WHERE shapeName= '" + shapeName + "')";
    reader = cmd.ExecuteReader();
    if (reader.Read())
    {
        size = reader.GetInt32(0);
    }
    reader.Close();
}

public int getSize()
{
    return size;
}

public string[] setLabels(string[] l, string shapeName)
{
    i = 0;

    cmd.CommandText = "SELECT varDesc FROM tblVariables WHERE shapeID IN(SELECT shapeID FROM tblShapes WHERE shapeName= '" + shapeName + "')";
    reader = cmd.ExecuteReader();

    while (reader.Read())
    {
        l[i] = reader.GetString("varDesc");
        i++;
    }
    reader.Close();

    return l;
}
}
share|improve this question
2  
Too much code. We don't need to see .NET code for a PHP error. On which line number does it report the error? – Michael Berkowski Mar 13 '12 at 19:42
    
So where exactly does the error occur? What line? – paulsm4 Mar 13 '12 at 19:42
1  
Can you post the actual error message? It should tell you a line number, have a look at (and around) that line. You may have missed a }, ), or ;. – Rocket Hazmat Mar 13 '12 at 19:44
    
$lf=new lblFinder(); ? – John V. Mar 13 '12 at 19:44
    
Line 15: private $dbConnection=mysql_connect("localhost", "root", ""); – Cityonhill93 Mar 13 '12 at 19:45
up vote 4 down vote accepted

In your variable declaration, you cannot call a function.

private $dbConnection=mysql_connect("localhost", "root", "");

Instead, use a constructor:

private $dbConnection;
function __construct() {
  $this->dbConnection=mysql_connect("localhost", "root", "");
}
share|improve this answer
    
Figured it was something technical like that. Thanks! – Cityonhill93 Mar 13 '12 at 19:49
    
So now it is saying that $dbConnection is an undefined variable (This is leading to a whole slew of other errors. I suspect if we find this one, it should fix the rest) – Cityonhill93 Mar 13 '12 at 23:44

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