7

when i try os.system("open " + 'myfile.xlsx')
i get the output '0'

similarly, trying
os.system("start excel.exe myfilepath")
gives the result 32512

I have imported os and system, and I'm on mac. How can I change this so it does actually launch that excel file? And out of curiosity, what do the numbers it prints out mean?

Thanks!

1
  • Those are exit codes. 0 means success, and any other number means failure. Often the man page for a program will tell you a list of the failure codes and what they mean. – zondo Mar 11 '16 at 12:58
7

If you only want to open the excel application you could use subprocess:

import subprocess
subprocess.check_call(['open', '-a', 'Microsoft Excel'])

You can also use os and open a specific file:

import os
os.system("open -a 'path/Microsoft Excel.app' 'path/file.xlsx'")

If you on other hand want to open an excel file within python and modify it there's a number of packages to use as xlsxwriter, xlutils and openpyxl where the latter is prefered by me.

Another note, if you're on mac the excel application isn't .exe

3
  • What does the a parameter do? Thank you. – Moondra Jul 26 '17 at 20:36
  • 1
    Just a heads up! xlsxwriter can overwrite your Excel files while OpenPyxl will not. The best way is to copy the file in another folder. – user2083957 Oct 2 '18 at 17:44
  • In mac, os.system("open -a 'Microsoft Excel' 'path/file.xlsx'") and this works too: subprocess.check_call(['open', '-a', 'Microsoft Excel','path/file.xlsx']) – Javiar Sandra Jan 4 at 19:15
6

Just these two lines

import os
os.system("start EXCEL.EXE file.xlsx")

Provided that file.xlsx is in the current directory.

3
  • 1
    A tweak: for filenames with embedded blanks enclose the entire parameter with SINGLE quotes and put DOUBLE quotes around the file name (e.g. ' start EXCEL.EXE " C:/temp/new file.csv " '. The extra spaces don't hurt and can prevent parameters from being "merged" when the command is run. BTW on Python 3.x (and possibly 2.x) you should use '/' as the file separator, never "\" - even on Windows. Python will do the conversion so you don't need to use double backslashes in paths (necessary to prevent the first character from being interpreted as a control character, e.g "\n" = line feed). – user1459519 Nov 21 '18 at 20:39
  • Thanks for the addition user1459519 it was helpfull. – Ahmed Adewale Dec 27 '18 at 20:13
  • 1
    Worth noting os.system('start excel.exe file.xlsx') will open file with same name from your documents folder and os.system('start "excel.exe" "file.xlsx"') (note the extra quotes) will open file from same folder as code is in. Testing this on my end I am not sure y this happens but probably an important distinction. – Mike - SMT Nov 4 '19 at 19:20
3
import os

os.startfile(dirpath + '\\' + 'filename.xlsx')
1
  • 3
    While this code may solve the question, including an explanation of how and why this solves the problem would really help to improve the quality of your post, and probably result in more up-votes. Remember that you are answering the question for readers in the future, not just the person asking now. Please edit your answer to add explanations and give an indication of what limitations and assumptions apply. – Adriaan Sep 25 '20 at 10:07
2

I don't know about Mac OS, but if Windows Operating System is the case and provided the Microsoft Windows is properly installed, then consider using :

import os
os.system('start "excel" "C:\\path\\to\\myfile.xlsx"')

double-quotation is important for excel and C:\\path\\to\\myfile.xlsx ( where C just denotes the letter for the partition within the file system, might be replaced by D,E ..etc. ), and single-quotation is needed for the whole string within the os.system().

1

On Windows 10, this works for me:

import os
full_path_to_file = "C:\blah\blah\filename.xlsx"
os.system(full_path_to_file)

Copy-pasting any full path to a file in the command prompt (or passing it to os.system()) seems to work as long as you have permission to open the file. I suppose this only works when Excel is selected as default application for the .xlsx extention.

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