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I read last year that xlrd was being updated to be able to read xlsx files (Excel 2007, 2010). Is there any news on this development, or the use of other Python utilities?

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6  
xlrd now supports .xlsx files directly (see @TankorSmash's answer). Its open_workbook function loads either .xls or .xlsx (it will figure it out, you don't have to tell it which is which). –  John Y Nov 14 '12 at 15:46

7 Answers 7

Eric Gazoni has written openpyxl which reads/writes xlsx files More details available from his blog and the code repository for any Python coders wanting to try it

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3  
And Heikki Junes made a Python 3 port of this, available at bitbucket.org/hjunes/openpyxl. –  Daniel 'Dang' Griffith Oct 16 '12 at 13:43
    
openpyxl is really slow. I ran some benchmarks and found out that openpyxl takes more than twice as long as xlrd to read an Excel file. –  Zenadix Sep 26 at 16:05

A bit late to the party, but xlrd now natively supports xlsx. I updated from 0.6.0 to 0.8.0 using pip install xlrd --upgrade in the command prompt (WindowsKey + R then cmd) and now it reads xlsx without any issue.

http://pypi.python.org/pypi/xlrd

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4  
or easy_install -U xlrd –  khan Feb 9 '13 at 1:16
    
As far as readme suggests, it's only for reading - not writing. –  chhantyal Aug 19 at 11:27
import openpyxl as px
import numpy as np

W = px.load_workbook('filename.xlsx', use_iterators = True)
p = W.get_sheet_by_name(name = 'Sheet1')

a=[]

for row in p.iter_rows():
    for k in row:
        a.append(k.internal_value)

# convert list a to matrix (for example 5*6)
aa= np.resize(a, [5, 6])

# save matrix aa as xlsx file
WW=px.Workbook()
pp=WW.get_active_sheet()
pp.title='NEW_DATA'

f={'A':0,'B':1,'C':2,'D':3,'E':4,'F':5}

#insert values in six columns
for (i,j) in f.items():
    for k in np.arange(1,len(aa)+1):
        pp.cell('%s%d'%(i,k)).value=aa[k-1][j]

WW.save('newfilname.xlsx')
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This example was close but didn't quite work for me. This did -- openpyxl.readthedocs.org/en/latest/… –  James Errico Jan 25 at 3:25

Here's a very very rough implementation using just the standard library.

def xlsx(fname):
    import zipfile
    from xml.etree.ElementTree import iterparse
    z = zipfile.ZipFile(fname)
    strings = [el.text for e, el in iterparse(z.open('xl/sharedStrings.xml')) if el.tag.endswith('}t')]
    rows = []
    row = {}
    value = ''
    for e, el in iterparse(z.open('xl/worksheets/sheet1.xml')):
        if el.tag.endswith('}v'): # <v>84</v>
            value = el.text
        if el.tag.endswith('}c'): # <c r="A3" t="s"><v>84</v></c>
            if el.attrib.get('t') == 's':
                value = strings[int(value)]
            letter = el.attrib['r'] # AZ22
            while letter[-1].isdigit():
                letter = letter[:-1]
            row[letter] = value
            value = ''
        if el.tag.endswith('}row'):
            rows.append(row)
            row = {}
    return rows
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This works great! It creates a row that has {'A','value of column', 'B', 'value of column'} etc... I'd like to later on access the value of the column by the column name instead of it's letter. Any thoughts on this? so instead of for row in rows: name=row['A'] ... it would be for row in rows: name=row['name']. I hope that makes sense. –  teewuane Mar 28 at 17:57

Reading XLSX files is pretty simple, actually.

They're ZIP archives with certain XML documents with fixed names.

You can -- without too much code -- open the ZIP archive, parse the relevant XML documents, and process the relevant bits of data.

Here are some hints: http://slott-softwarearchitect.blogspot.com/2010/10/xlsm-and-xlsx-files-finally-reaching.html

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5  
old formats no longer undocumented. New fmts not fully doc'd -- eg. cell ID ("Z99") and row id ("99") are stated to be optional in the "standard" --- reverse engineering still req'd to check what Excel actually accepts. Deceptively simple; you must not have had any dates or datetimes in your xlsx files :-) –  John Machin Dec 7 '10 at 6:13

Support for reading basic data (open_workbook(..., formatting_info=False)) from Excel 2007 .xlsx and .xlsm files is in alpha test at the moment. See previous postings in this group (search for "excel 2007 xlsx").

From the forum Regarding xlrd support for excel

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Yes thank you for the great subroutine!

I have updated it to allow the rows hash to use the column names as the index instead of letters, if a header row is specified.

readXlsx( "mysheet.xlsx", sheet = 1, header = True )

def readXlsx( fileName, **args ):

    import zipfile
    from xml.etree.ElementTree import iterparse

    if "sheet" in args:
       sheet=args["sheet"]
    else:
       sheet=1
    if "header" in args:
       isHeader=args["header"]
    else:
       isHeader=False

    rows   = []
    row    = {}
    header = {}
    z      = zipfile.ZipFile( fileName )

    # Get shared strings
    strings = [ el.text for e, el
                        in  iterparse( z.open( 'xl/sharedStrings.xml' ) )
                        if el.tag.endswith( '}t' )
                        ]
    value = '' 

    # Open specified worksheet
    for e, el in iterparse( z.open( 'xl/worksheets/sheet%d.xml'%( sheet ) ) ):
       # get value or index to shared strings
       if el.tag.endswith( '}v' ):                                   # <v>84</v>
           value = el.text
       if el.tag.endswith( '}c' ):                                   # <c r="A3" t="s"><v>84</v></c>

           # If value is a shared string, use value as an index
           if el.attrib.get( 't' ) == 's':
               value = strings[int( value )]

           # split the row/col information so that the row leter(s) can be separate
           letter = el.attrib['r']                                   # AZ22
           while letter[-1].isdigit():
               letter = letter[:-1]

           # if it is the first row, then create a header hash for the names
           # that COULD be used
           if rows ==[]:
               header[letter]=value
           else:
               if value != '':

                   # if there is a header row, use the first row's names as the row hash index
                   if isHeader == True and letter in header:
                       row[header[letter]] = value
                   else:
                       row[letter] = value

           value = ''
       if el.tag.endswith('}row'):
           rows.append(row)
           row = {}
    z.close()
    return rows
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