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.

For some reason, in PHP, the implode function is returning an extra field from $tmpTblRow at the end of it's returned string and causes a MySQL error.

MySQL statement is generated from:

$sqll = sprintf(
    "INSERT INTO $sqlToTbl (%s) VALUES ('%s')", 
    $sqlToCols, 
    implode("','", array_values($tmpTblRow))
);

$tmpTblRow is the assocative array:

[lineItem] => null
[partID] => 1
[partNumber] => tr2-mod2-0001
[serialNumber] => 
[partDescription] => mob176wertyu
[quantity] => 10
[price] => 500
[warranty] => 
[dateRequired] => 2055-11-11
[note] => 
[discount] => 
[isProcessed] => 1
[parameter] => 
[isPrivate] => 
[processedByUserID] => 1
[processedDate] => 2013-02-04
[extPrice] => 0
[parentID] => 36
[isToAct] => 1
[userID] => 0
[type] => 
[dateGenerated] => 2013-02-04 10:53:12
[unitType] =>  

$sqll VALUE RETURNS:

INSERT INTO tblOrdersItems 
    ( lineItem, partID , partNumber , serialNumber, partDescription , quantity, 
      price , warranty  , dateRequired , note , discount, isProcessed, parameter,
      isPrivate, processedByUserID, processedDate, extPrice, parentID, isToAct, 
      userID, type, dateGenerated, unitType) 
VALUES 
    ( 'null', '1', 'tr2-mod2-0001', '', 'mob176wertyu', '10', '500', '', 
      '2055-11-11', '', '', '1', '', '', '1', '2013-02-04', '0', '36', '1', '0', 
      '', '2013-02-04 10:53:12', '', '1' )

The return error is: "Column count doesn't match value count at row 1"

Notice the extra 1 at the end of the string $sqll. Can anyone explain why and how to fix this?

edit... var_dump for $tmpTblRow returns:

array(23) {
  ["lineItem"]=>
  string(4) "null"
  ["partID"]=>
  string(1) "1"
  ["partNumber"]=>
  string(13) "tr2-mod2-0001"
  ["serialNumber"]=>
  string(0) ""
  ["partDescription"]=>
  string(12) "mob176wertyu"
  ["quantity"]=>
  string(2) "10"
  ["price"]=>
  string(3) "500"
  ["warranty"]=>
  NULL
  ["dateRequired"]=>
  string(10) "2055-11-11"
  ["note"]=>
  NULL
  ["discount"]=>
  NULL
  ["isProcessed"]=>
  string(1) "1"
  ["parameter"]=>
  NULL
  ["isPrivate"]=>
  NULL
  ["processedByUserID"]=>
  string(1) "1"
  ["processedDate"]=>
  string(10) "2013-02-04"
  ["extPrice"]=>
  string(1) "0"
  ["parentID"]=>
  string(2) "36"
  ["isToAct"]=>
  string(1) "1"
  ["userID"]=>
  string(1) "0"
  ["type"]=>
  string(0) ""
  ["dateGenerated"]=>
  string(19) "2013-02-04 10:53:12"
  ["unitType"]=>
  string(0) ""
}  

... and the full code is this:

$q = "SELECT $sqlFromCols FROM $sqlFromTbl $sqlFromWhere";
$result1 = $conn->query(stripslashes($q)) ;
    if (!$result1) die($conn->error.">>none<< 1");

    echo $q."||";


echo "<br/>start>";
while($tmpTblRow = $result1->fetch_array(MYSQL_ASSOC) )
{


     var_dump ($tmpTblRow);
     echo "<br/>end|";
     echo "<br/>";
    $tmpTblRow[$sqlFromIDcol] = $newID;

    $sqll = sprintf("INSERT INTO $sqlToTbl (%s) VALUES ('%s')", $sqlFromCols, implode("','",array_values($tmpTblRow)));


    echo $sqll."||";

     $result = $conn->query(stripslashes($sqll)) ;
    if (!$result) die($conn->error.">>none<< while");


    $q = "UPDATE $sqlToTbl SET $change WHERE $sqlToIDcol = $newID";
        $q = stripslashes($q);

    $result = $conn->query(stripslashes($q)) ;
    if (!$result) die($conn->error.">>none<< update");

        //mysql_query($q);
        //echo $q."||<br>";



    $newID = $newID+1;


}
share|improve this question

closed as too localized by PeeHaa, tereško, Orbling, Shog9 Feb 11 '13 at 1:55

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
scan the array first to make sure all the required values are there with acceptable values –  Aaron W. Feb 4 '13 at 19:41
    
[lineItem] => null [partID] => 1 [partNumber] => tr2-mod2-0001 [serialNumber] => [partDescription] => mob176wertyu [quantity] => 10 [price] => 500 [warranty] => [dateRequired] => 2055-11-11 [note] => [discount] => [isProcessed] => 1 [parameter] => [isPrivate] => [processedByUserID] => 1 [processedDate] => 2013-02-04 [extPrice] => 0 [parentID] => 36 [isToAct] => 1 [userID] => 0 [type] => [dateGenerated] => 2013-02-04 10:53:12 [unitType] => ... yehp, all there, -1 –  needInsight Feb 4 '13 at 19:43
    
@user2040763 why did you re-write all the same values from above in a comment? Was there a purpose to that madness? –  War10ck Feb 4 '13 at 19:50
    
yes, because i already showed that to be case.. can anyone actually answer the question? –  needInsight Feb 4 '13 at 20:02

1 Answer 1

up vote 0 down vote accepted

If I let this code run:

$tmpTblRow = array(
    'lineItem' => null,
    'partID' => 1,
    'partNumber' => 'tr2-mod2-0001',
    'serialNumber' => '',
    'partDescription' => 'mob176wertyu',
    'quantity' => 10,
    'price' => 500,
    'warranty' => '',
    'dateRequired' => '2055-11-11',
    'note' => '',
    'discount' => '',
    'isProcessed' => 1,
    'parameter' => '',
    'isPrivate' => '',
    'processedByUserID' => 1,
    'processedDate' => '2013-02-04',
    'extPrice' => 0,
    'parentID' => 36,
    'isToAct' => 1,
    'userID' => 0,
    'type' => '',
    'dateGenerated' => '2013-02-04 10:53:12',
    'unitType' => '',
);

$sqlToCols = "col, col, col";

$sqll = sprintf(
    "INSERT INTO $sqlToTbl (%s) VALUES ('%s')",
    $sqlToCols,
    implode("','", array_values($tmpTblRow))
);

var_dump($sqll);

I get the result:

string(183) "INSERT INTO  (col, col, col) VALUES ('','1','tr2-mod2-0001','','mob176wertyu','10','500','','2055-11-11','','','1','','','1','2013-02-04','0','36','1','0','','2013-02-04 10:53:12','')"

As you can see, there is no 1 at the end. This can only mean one thing: You did not dump the right array when debugging.

share|improve this answer
    
thank you Sven and others for helping with my formatting of question. I hope someone can figure this out though, it really has me stumped –  needInsight Feb 4 '13 at 20:51
    
$tmpTblRow = $result1->fetch_array(MYSQL_ASSOC) is the dump....$sqll = sprintf("INSERT INTO $sqlToTbl (%s) VALUES ('%s')", $sqlToCols, implode("','",array_values($tmpTblRow))); is the string. Its IS the same $tmpTblRow –  needInsight Feb 4 '13 at 20:53
    
This cannot be. var_dump($tmpTblRow) is a dump. What is it's output? –  Sven Feb 4 '13 at 20:56
    
print_r ($tmpTblRow); ... was the debug statement used, not litterally var_dump –  needInsight Feb 4 '13 at 20:58
1  
Ok, here we are: $tmpTblRow[$sqlFromIDcol] = $newID; You are adding an array field after your dump! Q.E.D. –  Sven Feb 4 '13 at 21:26

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