14

I am trying to copy a sheet, default_sheet, into a new sheet new_sheet in the same workbook.

I did managed to create a new sheet and to copy the values from default sheet. How can I also copy the style of each cell into the new_sheet cells?

new_sheet = workbook.create_sheet()
new_sheet.title = sheetName
default_sheet = workbook.get_sheet_by_name('default')
new_sheet = workbook.get_sheet_by_name(sheetName)
for row in default_sheet.rows:
    col_idx = float(default_sheet.get_highest_column())
starting_col = chr(65 + int(col_idx))
for row in default_sheet.rows:
    for cell in row:
        new_sheet[cell.get_coordinate()] = cell.value
        <copy also style of each cell>

I am at the moment using openpyxl 1.8.2, but i have in mind to switch to 1.8.5.

One solution is with copy:

from copy import copy, deepcopy

new_sheet._styles[cell.get_coordinate()] = copy(
        default_sheet._styles[cell.get_coordinate()])
  • I found a way with copy, but i am not sure if it is the best way and it doesn't copy everything like width/height of a cell! – FotisK Apr 28 '14 at 6:58
  • Yes, you need to use copy. Each worksheet keeps a dictionary of cell styles which can be copied. But really you want to try using the 1.9 branch which has a much cleaner interface for this kind of thing. – Charlie Clark Apr 28 '14 at 18:39
18

As of openpyxl 2.5.4, python 3.4: (subtle changes over the older version below)

new_sheet = workbook.create_sheet(sheetName)
default_sheet = workbook['default']

from copy import copy

for row in default_sheet.rows:
    for cell in row:
        new_cell = new_sheet.cell(row=cell.row, column=cell.col_idx,
                value= cell.value)
        if cell.has_style:
            new_cell.font = copy(cell.font)
            new_cell.border = copy(cell.border)
            new_cell.fill = copy(cell.fill)
            new_cell.number_format = copy(cell.number_format)
            new_cell.protection = copy(cell.protection)
            new_cell.alignment = copy(cell.alignment)

For openpyxl 2.1

new_sheet = workbook.create_sheet(sheetName)
default_sheet = workbook['default']

for row in default_sheet.rows:
    for cell in row:
        new_cell = new_sheet.cell(row=cell.row_idx,
                   col=cell.col_idx, value= cell.value)
        if cell.has_style:
            new_cell.font = cell.font
            new_cell.border = cell.border
            new_cell.fill = cell.fill
            new_cell.number_format = cell.number_format
            new_cell.protection = cell.protection
            new_cell.alignment = cell.alignment
  • 5
    I'm using openpyxl 2.4.1, cell.font or cell.border is an instance of StyleProxy, if save workbook with that type, you will get an exception. You must copy it to new cell, like this: new_cell.font = copy(cell.font) – dawncold Jan 21 '17 at 14:51
  • 1
    THANK YOU dawncold, was wondering why I was getting a "non hashable type" error. – otocan Aug 18 '17 at 10:49
  • In 2.5.3, fill, protection and alignment must also be copied. – Jorge Leitao May 13 '18 at 4:26
  • Edited to add slight modifications needed with recent openpyxl, including changes mentioned by everyone. Some changes in cell attributes too. Thanks a bunch Charlie Clark, that formed the basis of what I needed to merge xlsx files. – p_barill Jun 19 '18 at 15:13
  • Worth noting that workbooks have had a copy_worksheet method for a while now and this copy styles for you. – Charlie Clark Jul 2 '18 at 14:27
6

The StyleableObject implementation stores styles in a single list, _style, and style properties on a cell are actually getters and setters to this array. You can implement the copy for each style individually but this will be slow, especially if you're doing it in a busy inner loop like I was.

If you're willing to dig into private class attributes there is a much faster way to clone styles:

if cell.has_style:
    new_cell._style = copy(cell._style)

FWIW this is how the optimized WorksheetCopy class does it in the _copy_cells method.

  • NamedStyles make much more sense if you wish to use the same style in multiple cells. – Charlie Clark Jul 12 '18 at 13:57
  • Nice code. Exactly what I need for the moment. But indeed, in some cases NamedStyles might be a better approach – Jean-Francois T. Feb 28 at 16:06
  • Thanks for the single line answer – Vineesh TP Sep 10 at 18:30
3

May be this is the convenient way for most.

    from openpyxl import load_workbook
    from openpyxl import Workbook
    read_from = load_workbook('path/to/file.xlsx')
    read_sheet = read_from.active
    write_to = Workbook()
    write_sheet = write_to.active
    write_sheet['A1'] = read_sheet['A1'].value
    write_sheet['A1'].style = read_sheet['A1'].style
    write_to.save('save/to/file.xlsx')
  • 1
    That is not all styles, this answer is better, but copy must be used. – dawncold Jan 21 '17 at 15:01

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