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How do I open a file that is an Excel file for reading in Python?

I've opened text files, for example, sometextfile.txt with the reading command. How do I do that for an Excel file?

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1  
Which version of Excel? If you can limit yourself to opening Excel files created by Ecel 2007 or 2010, you should be able to parse much or all of the file as XML. –  Adam Crossland Jul 13 '10 at 16:30
    
IT's excel 2003 :( –  novak Jul 13 '10 at 17:00

3 Answers 3

Try the xlrd library.

[Edit] - from what I can see from your comment, something like the snippet below might do the trick. I'm assuming here that you're just searching one column for the word 'john', but you could add more or make this into a more generic function.

from xlrd import open_workbook

book = open_workbook('simple.xls',on_demand=True)
for name in book.sheet_names():
    if name.endswith('2'):
        sheet = book.sheet_by_name(name)

        # Attempt to find a matching row (search the first column for 'john')
        rowIndex = -1
        for cell in sheet.col(0): # 
            if 'john' in cell.value:
                break

        # If we found the row, print it
        if row != -1:
            cells = sheet.row(row)
            for cell in cells:
                print cell.value

        book.unload_sheet(name) 
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I think this might be what I want it to do : from xlrd import open_workbook book = open_workbook('simple.xls',on_demand=True) for name in book.sheet_names(): if name.endswith('2'): sheet = book.sheet_by_name(name) print sheet.cell_value(0,0) book.unload_sheet(name) large_files.py but I dont want it to use endwith i want it to find and print lines that contain a particlar name...like i want it to print the line of the huge excel sheet that contains john's data and not bob's. help? –  novak Jul 13 '10 at 17:04
    
I'd suggest you post this as a seperate question and put the code in a code block. –  Jon Cage Jul 13 '10 at 23:27
    
This is the second question of a series of related questions; in the 3rd question it is revealed that the real excel file is allegedly 1.5 GB and the computer's memory is described as "not enough" ... see stackoverflow.com/questions/3241039/… –  John Machin Jul 14 '10 at 0:33

This isn't as straightforward as opening a plain text file and will require some sort of external module since nothing is built-in to do this. Here are some options:

http://www.python-excel.org/

If possible, you may want to consider exporting the excel spreadsheet as a CSV file and then using the built-in python csv module to read it:

http://docs.python.org/library/csv.html

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Ok I don't really understand the CSV stuff how do I have python open up my excel file as a csv module? I have a program that does what I want for txt files and I want it to do the same thing for this excel file...which is the best way to go? Can you elaborate on this please? –  novak Jul 13 '10 at 17:00
    
Either you can use a 3rd party python module like xlrd, or save your excel file a CSV file, instead of a normal Excel file. I think the point you are missing is that an excel file has no resemblance to a plain text file. Open the Excel document in notepad and you will see what I mean. You either need to save the file in a plain-text format such as CSV (comma-separated values), which is easier to read with python, or install and use a 3rd party module that can parse an Excel file for you. –  Donald Miner Jul 13 '10 at 17:06
    
The problem I'm having is the file is really really large. How can I save the file as a CSV format if I cannot completely open the file? –  novak Jul 13 '10 at 17:12
    
@novak: Your problem is that your file is 1.5GB and your computer's memory is "not enough" ... –  John Machin Jul 13 '10 at 22:13

you can use pandas package as well....

import pandas as pd
xl = pd.ExcelFile(path + filename)
xl.sheet_names

>>> [u'Sheet1', u'Sheet2', u'Sheet3']

df = xl.parse("Sheet1")
df.head()

df.head() will print first 5 rows of your Excel file

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This is ideal when working with many sheets. –  Myles Baker Feb 26 at 13:06

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