What is the Python equivalent to R's read.csv() function, and the data.frame it returns?

Is there a similar data structure in Python?

  • 3
    Did you look at the Python docs at all? There is a module dedicated to CSV. – Marcin Jul 12 '12 at 17:00
  • 3
    The csv module is not a complete answer to the question, as it contains no equivalent datastructure. – mhermans Jul 12 '12 at 17:04
  • Python has a the csv module to read .csv, but it doesn't have a native table type. You can use a list of lists, list of dicts, or any collection/collection, collection/iterator or iterator/collection type combo, or a third party's matrix type element like numpy/scipy's matrix. The ideal type will probably be application dependent. – Nisan.H Jul 12 '12 at 17:08
  • 8
    The python library pandas enables data.frame-like capability – Andrie Jul 12 '12 at 17:09
  • See stackoverflow.com/questions/3195982/… for one of the options Nisan.H mentions. – naught101 Jul 30 '12 at 3:51

Your have two elements in your question, (1) reading/writing CSV and (2) an equivalent data structure to the R data.frame that results from reading in a CSV-file.

For the first part, there is the csv module in the standard library.

For the second part, the standard library is lacking a equivalent tabular data structure with the flexibility of the the R data.frame. You have two options, depending on the complexity of the operations you will be doing afterwards:

  • 2
    I would only add that if you're a long time R user, you'll likely really, really want a "complete" analogue to data frames, in which case pandas is very unlikely to be overkill. – joran Jul 12 '12 at 17:39
  • 1
    Pandas is the best choice for data-frame-like functionality. – BrenBarn Jul 12 '12 at 17:40
  • Thanks, I'll have a look at pandas. – N. McA. Jul 12 '12 at 17:46
  • 1
    +1 for Pandas. It gives a very R like syntax (especially if you use data.table) that makes the transition much more gentle. – Justin Jul 12 '12 at 18:00

Is this not enough to sate your hunger?

import StringIO
import csv

f = StringIO.StringIO("""a,b,c

r = csv.reader(f, delimiter=',')
print [x for x in r]


[['a', 'b', 'c'], ['1', '2', '3'], ['4', '5', '6']]

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