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I have a problem with this query and drop down box:

$ziua = "SELECT DISTINCT DAYOFMONTH(ziua) FROM rapoarte"; 

$ziuaResult = mysql_query($ziua);

Populating the drop down box :

echo"<td>Selectati Ziua:</td>    
<td><select name='ziua'>     
<option value='---'>---</option>";

while($ziuaRow = mysql_fetch_array($ziuaResult)) 
{    
    $ziua1 = $ziuaRow['ziua'];     
    echo "<option value='$ziua1'>$ziua1</option>";
}

For an reason unknown to me, the drop down box is populated, but no values are shown. (there are 2-3 empty options)

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Link to same part one of this question: stackoverflow.com/questions/4088045/… –  kevtrout Nov 4 '10 at 17:10

2 Answers 2

up vote 1 down vote accepted

That happens because there is no such column ziua in your query. Use alias in the query SELECT DISTINCT DAYOFMONTH(ziua) as dm FROM rapoarte and then $ziua1 = $ziuaRow['dm']; or access result by integer index $ziua1 = $ziuaRow[0];

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the query works fine. i've tested it in mysql and had no problems. i have a column named ziua. –  sebastian Nov 4 '10 at 15:51
1  
But your query has DISTINCT DAYOFMONTH(ziua) , not ziua. So in result set this column doesn't appear as ziua, but as something like [DISTINCT DAYOFMONTH(ziua)]. So you cannot access it using name ziua –  a1ex07 Nov 4 '10 at 15:54
    
Use alias or access it by int index. –  a1ex07 Nov 4 '10 at 15:55
    
thaks, that sloved it! the correct way is $_POST['DAYOFMONTH(ziua)'] –  sebastian Nov 4 '10 at 16:00

The problem is that the field name is not correct. I have tried that as well. It will give you the reult.

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