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The JavaScript below works great in Internet Explorer, but doesnt work in FireFox.

It gets hung up at "NewField is undefined" which would be the line:

for (var i=0;i<NewField.length;i++)

That is the loop that will rename the form fields on that table row.

Here is where you can see the entire page http://www.sorenwinslow.com/CloneRowTest.asp

function CloneRows(TableRowId)
{
var NumRows = document.forms["TestForm"].NumRows.value;
NumRows++;
document.forms["TestForm"].NumRows.value = NumRows;
var RowToClone = document.getElementById(TableRowId);
var NewTableRow = RowToClone.cloneNode(true);
NewTableRow.id = TableRowId + NumRows ;
NewTableRow.style.display = "table-row";
var NewField = NewTableRow.all;
for (var i=0;i<NewField.length;i++)
{
    var theName = NewField[i].name;
    if (theName)
    {
        NewField[i].name = theName + NumRows;
    }
}
var insertHere = document.getElementById(TableRowId);
insertHere.parentNode.insertBefore(NewTableRow,insertHere);
}
share|improve this question

1 Answer 1

up vote 3 down vote accepted

.all does generally not exist, only document.all, but it isn't even standard. Internet Explorer has some custom properties but you should not rely on them. You probably want .children:

var NewField = NewTableRow.children;

or .cells:

var NewField = NewTableRow.cells;
share|improve this answer
    
+1 Although (assuming this is an actual table) I'd suggest NewTableRow.cells instead of .children since FF doesn't support .children until FF 3.5. –  user113716 Aug 23 '11 at 17:22
    
@patrick dw: I wasn't aware of that, thanks. –  pimvdb Aug 23 '11 at 17:24
    
To replicate ElementNode.children, you can just loop through the childNodes and filter out any node that isn't nodeType == 1. In this case, Pat's dead on. The DOM Table API is massive and certainly useful. –  user1385191 Aug 23 '11 at 17:28
    
'NewTableRow.cells' works. However, how do I access the '<input>' elements inside each cell? '.all' (in I.E) accesses all the elements on that table row and I rename them according to the row count. –  Soren Aug 23 '11 at 19:14
    
@Soren: If they are in turn children of the children, you can probably iterate over NewField and during each iteration, iterate over NewField[i].children (or childNodes). –  pimvdb Aug 23 '11 at 19:16

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