1

I have read on several SO threads that it is possible to update two databases using an INNER JOIN update query but I am unable to get it to work, it just throws error:

Fatal error: Uncaught exception 'PDOException' with message 'SQLSTATE[23000]: Integrity constraint violation: 1052 Column 'category' in field list is ambiguous' in C:\xampp\htdocs\update.php:79 Stack trace: #0 C:\xampp\htdocs\update.php(79): PDOStatement->execute(Array) #1 {main} thrown in C:\xampp\htdocs\update.php on line 79

LINE 79: $result = $stmt->execute($prepare);

if (isset($_POST['update'])) {
    $category = isset($_POST['category']) ? $_POST['category'] : null;
    $manufactuer = isset($_POST['manufactuer']) ? $_POST['manufactuer'] : null;
    $model = isset($_POST['model']) ? $_POST['model'] : null;
    $serial = isset($_POST['serial']) ? $_POST['serial'] : null;
    $itemcondition = isset($_POST['itemcondition']) ? $_POST['itemcondition'] : null;
    $locationb = isset($_POST['locationb']) ? $_POST['locationb'] : null;
    $locationr = isset($_POST['locationr']) ? $_POST['locationr'] : null;
    $comments = isset($_POST['comments']) ? $_POST['comments'] : null;
    $purchased = isset($_POST['purchased']) ? $_POST['purchased'] : null;
    $retired = isset($_POST['retired']) ? $_POST['retired'] : null;
    $stolen = isset($_POST['stolen']) ? $_POST['stolen'] : null;

    $sql_part = array();
    $prepare = array();
    if ($category){
        $sql_part[] = 'category = :category';
        $prepare[':category'] = $category;
    }
    if($manufactuer){
        $sql_part[] = 'manufactuer = :manufactuer';
        $prepare[':manufactuer'] = $manufactuer;
    }
    if($model){
        $sql_part[] = 'model = :model';
        $prepare[':model'] = $model;
    }
    if($serial){
        $sql_part[] = 'serial = :serial';
        $prepare[':serial'] = $serial;
    }
    if($itemcondition){
        $sql_part[] = 'itemcondition = :itemcondition';
        $prepare[':itemcondition'] = $itemcondition;
    }
    if($locationb){
        $sql_part[] = 'locationb = :locationb';
        $prepare[':locationb'] = $locationb;
    }
    if($locationr){
        $sql_part[] = 'locationr = :locationr';
        $prepare[':locationr'] = $locationr;
    }
    if($comments){
        $sql_part[] = 'comments = :comments';
        $prepare[':comments'] = $comments;
    }
    if($purchased){
        $sql_part[] = 'purchased = :purchased';
        $prepare[':purchased'] = $purchased;
    }
    if($retired){
        $sql_part[] = 'retired = :retired';
        $prepare[':retired'] = $retired;
    }
    if($stolen){
        $sql_part[] = 'stolen = :stolen';
        $prepare[':stolen'] = $stolen;
    }
    $prepare[':barcode'] = $barcode;

    if(count($sql_part)){
        $sql = 'UPDATE assets a INNER JOIN assets_history b ON (a.barcode = b.barcode) SET ';
        $sql .= implode(', ', $sql_part);
        $sql .= ' WHERE a.barcode = :barcode AND b.barcode = :barcode';

        $stmt = $conn->prepare($sql);

        if($stmt){
            $result = $stmt->execute($prepare);
            $count = $stmt->rowCount();
            header('Location: ./usearch.php');
            exit;
        }
    }
}

This is the database structure, in case it's needed:

  `barcode` int(6) UNSIGNED ZEROFILL NOT NULL
  `category` text NOT NULL
  `manufactuer` text NOT NULL
  `model` varchar(255) NOT NULL
  `serial` varchar(255) NOT NULL
  `itemcondition` text NOT NULL
  `locationb` text NOT NULL
  `locationr` text NOT NULL,
  `comments` varchar(255) NOT NULL
  `purchased` varchar(30) NOT NULL
  `retired` varchar(30) NOT NULL
  `stolen` varchar(30) NOT NULL

Is there a better way to do it or am I missing something stupid.

I've also just seen the possibility of relating the two table's columns in PHPMyAdmin but not tried yet. The two tables are identical, one will just keep all updates made to records.

I've had no luck with these articles, one of them is the basis of my code.

MySQL UPDATE syntax with multiple tables using WHERE clause

MySql update two tables at once

How to update two tables in one statement in SQL Server 2005?

MySQL, update multiple tables with one query

1

Use table name with column category its present in both table

if ($category){
    $sql_part[] = 'assets.category = :category';
    $prepare[':category'] = $category;
}
  • The error remains the same – Sauced Apples Jun 28 '16 at 12:13
  • Please confirm the line no 79 in update.php & echo the $sql to debug purpose & post the sql here – Dipanwita Kundu Jun 28 '16 at 12:20
  • Both tables have the same fields. Changing all the SQL Parts to assets. solves the issue but it only updates the assets table and not assets_history table – Sauced Apples Jun 28 '16 at 12:26
  • You should also add for assets_history along with assets – Niklesh Raut Jun 28 '16 at 12:27
  • Can you edit your answer to show best practice please? – Sauced Apples Jun 28 '16 at 12:28
1

It seems to me 'assets' & 'assets_history' both has 'category' field. So update your code: (replace by your exact table_name either 'assets' or 'assets_history'

if ($category){
        $sql_part[] = '<TABLE_NAME>.category = :category';
        $prepare[':category'] = $category;
    }
  • The error remains the same – Sauced Apples Jun 28 '16 at 12:13
1

You have to append the table name or its alias to avoid confusion like this

if ($category){
        $sql_part[] = 'a.category = :category';
        $prepare[':category'] = $category;
    }
    if($manufactuer){
        $sql_part[] = 'a.manufactuer = :manufactuer';
        $prepare[':manufactuer'] = $manufactuer;
    }
    if($model){
        $sql_part[] = 'a.model = :model';
        $prepare[':model'] = $model;
    }
    if($serial){
        $sql_part[] = 'a.serial = :serial';
        $prepare[':serial'] = $serial;
    }
    if($itemcondition){
        $sql_part[] = 'a.itemcondition = :itemcondition';
        $prepare[':itemcondition'] = $itemcondition;
    }
    if($locationb){
        $sql_part[] = 'a.locationb = :locationb';
        $prepare[':locationb'] = $locationb;
    }
    if($locationr){
        $sql_part[] = 'a.locationr = :locationr';
        $prepare[':locationr'] = $locationr;
    }
    if($comments){
        $sql_part[] = 'a.comments = :comments';
        $prepare[':comments'] = $comments;
    }
    if($purchased){
        $sql_part[] = 'a.purchased = :purchased';
        $prepare[':purchased'] = $purchased;
    }
    if($retired){
        $sql_part[] = 'a.retired = :retired';
        $prepare[':retired'] = $retired;
    }
    if($stolen){
        $sql_part[] = 'a.stolen = :stolen';
        $prepare[':stolen'] = $stolen;
    }
    $prepare[':barcode'] = $barcode;

EDIT: You can also do this to update all the columns

$columns = array('category','manufactuer','model','serial','itemcondition','locationb','locationr','comments','purchased','retired','stolen');
$sql_part = array();
foreach($columns as $column){
        $sql_part[] = 'a.'.$column.' = :'.$column;
        $sql_part[] = 'b.'.$column.' = :'.$column;
        $prepare[':'.$column] = '$'.$column;

}

This will save you several lines of code

  • Would that also need to be done for b.etc.. on them all too? As the tables are identical – Sauced Apples Jun 28 '16 at 12:12
  • sorry forgot to also say that I had done this and it removes the error stated in the question but only updates assets and not assets_history. – Sauced Apples Jun 28 '16 at 12:16

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