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I am using this code to export selected data from MySQL to CSV using PHP, I am facing a little problem that when data exported to the csv file it looks like below:

First line in its correct place, but starting from the second row data shifts to the right one space, if I open the csv file in Excel, I can see the most left cell after the first row is empty.

parts   destination 
===================     
1   9.71504E+11 
1   9.71504E+11
1   96656587662
1   9.71504E+11

This is my code :

$values =mysql_query( "SELECT parts,destination from log");

$rown = 0;
$row = array();
$row[] = 'parts';
$row[] = 'destination'."\n";
$data .= join(',', $row)."\n";

while( $row_select = mysql_fetch_assoc($values) ) {
  if($rown++==0)
    $row = array();

  $row[] = $row_select['parts'];
  $row[] = $row_select['destination']."\n";
}
$data .= join(',', $row)."\n";

$filename = $file."_".date("Y-m-d_H-i",time());
header("Content-type: text/csv");
header("Content-disposition: csv" . date("Y-m-d") . ".csv");
header( "Content-disposition: filename=".$filename.".csv");
print $data;
exit();

Would you please help?

Regards,

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1  
are you sure if its skipping a cell ? or it may be due to alignment of the cells in excel ? –  Arfeen Apr 25 '12 at 12:10
    
Thanks for your reply. Yes, it is skipping a cell! –  alkhader Apr 25 '12 at 12:12
    
When I open the csv file in notepad it looks like this: parts,destination1,971504324,1,971503324324,1,9665623423,1,9715034234 there is no space between destination and "1" for the first row –  alkhader Apr 25 '12 at 12:20
    
The problem is the comma after the destination values. See my answer. –  ChrisPatrick Apr 25 '12 at 12:21
2  
please, please, please fputcsv() will solve many potential problems with writing CSV files, and it's built into PHP already –  Mark Baker Apr 25 '12 at 12:25

3 Answers 3

up vote 1 down vote accepted

The problem is in the following line

$data .= join(',', $row)."\n";

You're concatenating all the elements in $row with commas. So the destination of one row is concatenated with the parts of the next row with a comma in between, so you get something like this:

$data = $row_select['parts'] . ',' . $row_select['destination']."\n" . ',' . $row_select['parts'] etc...

The comma after the newline creates an empty cell at the beginning of the row.

UPDATE It should work with the following

while( $row_select = mysql_fetch_assoc($values)){
$row = array();
$row[] = $row_select['parts'];
$row[] = $row_select['destination']."\n";
$data .= join(',', $row);
}
share|improve this answer
1  
it will generate a syntax error Parser error "')' expected in function call (join)." –  alkhader Apr 25 '12 at 12:23
1  
Missed a semicolon, fixed it now. –  ChrisPatrick Apr 25 '12 at 12:24
    
The syntax error generated from this line $data .= join(',' $row) there should be a comma between the ',' and $row –  alkhader Apr 25 '12 at 12:43
    
Oops, of course there should. Thanks. –  ChrisPatrick Apr 25 '12 at 12:44

First line in its correct place, but starting from the second row data shifts to the right one space, if I open the csv file in Excel, I can see the most left cell after the first row is empty.

I've found out the hard way that writing CSV is more complex than one would imagine. Take, for example, escaping the values so that the delimiter is properly escaped inside values. I've created a simple class that utilises fwritecsv( ) instead of trying to render CSV myself:

EDIT: I've changed the example to your usage scenario.

<?php
/**
 * Simple class to write CSV files with.
 * 
 * @author Berry Langerak <berry@ayavo.nl>
 */
class CsvWriter {
    /**
     * The delimiter used. Default is semi-colon, because Microsoft Excel is an asshole.
     * 
     * @var string
     */
    protected $delimiter = ";";

    /**
     * Enclose values in the following character, if necessary.
     * 
     * @var string
     */
    protected $enclosure = '"';

    /**
     * Constructs the CsvWriter.
     */
    public function __construct( ) {
        $this->buffer = fopen( 'php://temp', 'w+' );
    }

    /**
     * Writes the values of $line to the CSV file.
     * 
     * @param array $line 
     * @return CsvWriter $this
     */
    public function write( array $line ) {
        fputcsv( $this->buffer, $line, $this->delimiter, $this->enclosure );
        return $this;
    }

    /**
     * Returns the parsed CSV.
     * 
     * @return string
     */
    public function output( ) {
        rewind( $this->buffer );
        $output = $this->readBuffer( );
        fclose( $this->buffer );

        return $output;
    }

    /**
     * Reads the buffer.
     * @return type 
     */
    protected function readBuffer( ) {
        $output = '';
        while( ( $line = fgets( $this->buffer ) ) !== false ) {
            $output .= $line;
        }
        return $output;
    }
}


/**
 * Example usage, in your scenario:
 */
$values = mysql_query( "SELECT parts,destination from log" );

$csv = new CsvWriter( );
$csv->write( array( 'parts', 'destination' ) ); // write header.

while( $line = mysql_fetch_assoc( $values ) ) {
    $csv->write( $line );
}

$filename = $file."_".date("Y-m-d_H-i",time());
header("Content-type: text/csv");
header("Content-disposition: csv" . date("Y-m-d") . ".csv");
header( "Content-disposition: filename=".$filename.".csv");

print $csv->output( );

exit();
share|improve this answer
    
Thanks Berry ^_^ –  alkhader Apr 25 '12 at 12:44

Like @ChrisPatrick points out, the line

$data .= join(',', $row)."\n";

is causing the problem, you should move this to inside the while loop and then you'll get rid of the cell skipping.

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