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I'm learning how to properly script prepared statements, and I'm stuck, unable to insert data entry. I spent several hours, looking at various tutorials and sample code, but I can't figure out why the following does not work:

$data1 = 0;
$data2 = "pumpkin";
$data3 = "cake";
$data4 = "orange";
$data5 = "sweet";
$stmt = $mysqli->stmt_init();
// Here I have a few SELECT queries that checks if $data2 and/or $data3 is already taken
$query = "INSERT INTO ". $mytable . " SET data1=?, data2=?, data3=?, data4=?, data5=?";
if ($stmt->prepare($query)) {
    $stmt->bind_param("issss", $data1, $data2, $data3, $data4, $data5);
    $stmt->execute() or trigger_error($mysqli->error); // added per Your Common Sense's suggestion
    //$stmt->bind_result($data1, $data2, $data3, $data4, $data5);
    $stmt->close();
    $mysqli->close();
} else {
    echo $mysqli->error; // edited per Yogesh Suthar's suggestion
    $stmt->close();
    $mysqli->close();
}

I get Warning: mysqli_stmt::bind_result(): Number of bind variables doesn't match number of fields in prepared statement on $stmt->bind_result line.

What am I doing wrong? I would very much appreciate any and all help.

Edit: I have the following on top with $db_user, $db_password, $db_dbname properly defined:

$mysqli = new mysqli('localhost', $db_user, $db_password, $db_dbname);

RESOLVED:

With the error checking code supplied by Yogesh Suthar and Your Common Sense, I was able to learn that I did not supply key data. $data2 and $data3 are unique and required data, and I thought I was supplying them because I had a few prepared statements that queries these data fields and check to see if $data2 and/or $data3 are already taken. The script is written as such that the INSERT statement will not be triggered if $data2 and/or $data3 are already taken. It turns out that the SELECT queries I was doing wiped out the variables $data2 and $data3, and by the time INSERT statement came up, they were null. After I edited the SELECT statements so that $data2 and $data3 will remain intact, it solved the problem. The INSERT statement is now successfully executed. (And the code above executes perfectly fine without any error.)

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1  
There is no result on insert statements. –  datasage Feb 19 '13 at 5:52
    
@datasage, I have removed the bind_result line, but I am still unable to insert a new row of data to the table. What am I doing wrong? –  Naomi Feb 19 '13 at 5:57
1  
The query format is wrong, you seem to be combining and update query with an insert query. Insert into table (col1,col2,...) Values (?,?,...) –  datasage Feb 19 '13 at 5:59
1  
@datasage This query is perfect. We can use in this way also. –  Yogesh Suthar Feb 19 '13 at 6:00
    
is this table for educational puropse? Nor column names nor inserted data looks suitable for the one row but more like for the column –  Your Common Sense Feb 19 '13 at 6:20

2 Answers 2

up vote 0 down vote accepted

Remove this line, because you are firing INSERT query and it returns number of rows affected. You have to use bind_result only for SELECT query.

$stmt->bind_result($data1, $data2, $data3, $data4, $data5);

use this

echo $mysqli->error;

instead of

echo "failed";
share|improve this answer
    
Thank you for the answer. I commented out the bind_result line, and it no longer gives me error warning. However, the insert isn't happening, and no new data entry is made to the database. What am I doing wrong? –  Naomi Feb 19 '13 at 5:56
    
@Naomi Can you explain what this line do $mysqli->stmt_init()? –  Yogesh Suthar Feb 19 '13 at 6:03
    
I don't actually know what $mysqli->stmt_init() does. I was looking at the following tutorial to get me started on converting procedural php statements to prepared statements, and I thought it would just do its job. Tutorial 1 –  Naomi Feb 19 '13 at 6:07
    
@Naomi your code is perfect.:) but i don't know why it is not working. You can refer this link stackoverflow.com/questions/6658722/… –  Yogesh Suthar Feb 19 '13 at 6:09
1  
Thank you, @Yogesh Suther. I will take a look at the link you've posted. If you have any other suggestion, please post more. It feels like I need lots of help until I can start running again. –  Naomi Feb 19 '13 at 6:15

if data is not inserted then there was an error.
So you have to ask mysql for this error

$stmt->execute() or trigger_error($mysqli->error);

so, you will be notified of the certain error and there will be no need for guesswork.

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Thank you for this code. This also helped! –  Naomi Feb 19 '13 at 7:07

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