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I found this script which generates a row in a table.
I additionally want it to alter the name-field of the row it generates, because the data of each newly generated row is needed to be saved into a database later.
However clicking only creates a row without renaming the name-field of that row.


I have cut all neccessarry code snippets into these brackets here. It should be copy-pasteable-working.

echo '<html><head>';
echo '<title>Adding rows</title>';
//the Java-script part which generates the new rows 
//(i guess the "row-name"-manipulation must be embedded here, i just don't get how :-( )
echo 
'<SCRIPT language="javascript">
      function addRowEntry(tableID){
          var table = document.getElementById(tableID);
          var rowCount = table.rows.length;
          var row = table.insertRow(rowCount);
          var colCount = table.rows[0].cells.length;
          for(var i=0; i<colCount; i++) {
              var newcell = row.insertCell(i);
              newcell.innerHTML = table.rows[0].cells[i].innerHTML;
          }
      }
</SCRIPT>';
echo '</head>';
//the body-part which contains the button with the "onclick"-call on that function
echo '<body>';
//the form which on submit should pass all those created rows into the $_POST-Variables
echo '<form action="passToEvaluationScript.php" method="POST">';
//the button with the "onClick"-call
echo "<input type='button' value='add row entry' onClick=addRowEntry('myTable')>";
//the table which get the additional row
echo '<table id="myTable">';
echo '<tr>';
echo '<td>';
//this element should actually be renamed each click
//e.g. 10 consecutive clicks should create 10 of these "drop-down-boxes"
//each named country1, country2, ........ country10 respectively
echo '<SELECT name="country">
        <OPTION value="in">India</OPTION>
        <OPTION value="de">Germany</OPTION>
        <OPTION value="fr">France</OPTION>
        <OPTION value="us">United States</OPTION>
        <OPTION value="ch">Switzerland</OPTION>
      </SELECT>';
echo '</td>';
echo '</tr>';
echo '</table>';
echo '<input type="submit">';
echo '</form>';
echo '</body>';
echo '</html>';

share|improve this question
up vote 1 down vote accepted

This one will work even with other <select> elements on the page:

<SCRIPT language="javascript">
  function addRowEntry(tableID){
      var table = document.getElementById(tableID);
      var rowCount = table.rows.length;

      // create a row element
      var row = document.createElement("tr");
      // add the row to the table
      table.appendChild(row);

      var colCount = table.rows[0].cells.length;
      for(var i=0; i<colCount; i++) {
          var newcell = row.insertCell(i);
          newcell.innerHTML = table.rows[0].cells[i].innerHTML;
      }
     // get the select element
     var dropdown = row.getElementsByTagName("select")[0];
     // get the current total of dropdowns in the table
     var total = table.getElementsByTagName("select").length;

     // set the name
     dropdown.setAttribute("name", "country" + total);
  }
</SCRIPT>
share|improve this answer
    
ASAP i will try this also out and then decide which solution suited me best, and then flag the thread as solved – kiltek Mar 8 '12 at 15:02
    
used this one, i even added textfields per row with incrementing appended values, thx – kiltek Mar 15 '12 at 10:05

If you want to add a new select element on the new row with the value from the previous select you could try something like this:

<SCRIPT language="javascript">
      function addRowEntry(tableID){
        var table = document.getElementById(tableID);
        var rowCount = table.rows.length;
        var row = table.insertRow(rowCount);
        var colCount = table.rows[0].cells.length;
        for(var i=0; i<colCount; i++) {
            var newcell = row.insertCell(i);
            newcell.innerHTML = table.rows[0].cells[i].innerHTML;
        }
        document.getElementsByTagName('select')[document.getElementsByTagName('select').length - 1].setAttribute('name','country'+document.getElementsByTagName('select').length);
      }
</SCRIPT>

If this is not what you are looking for let me know. Thanks

share|improve this answer
    
as soon as i can i will test and try out your snippet – kiltek Mar 7 '12 at 13:58
    
Sry, did not read carefully the first time. Should work now. – Vali D Mar 7 '12 at 14:02

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