Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

We have a large raw data file that we would like to trim to a specified size. I am experienced in .net c#, however would like to do this in python to simplify things and out of interest.

How would I go about getting the first N lines of a text file in python? Will the OS being used have any effect on the implementation?

Thanks :)

share|improve this question

8 Answers 8

up vote 35 down vote accepted
with open("datafile") as myfile:
    head = [next(myfile) for x in xrange(N)]
print head

Here's another way

from itertools import islice
with open("datafile") as myfile:
    head = list(islice(myfile, N))
print head
share|improve this answer
    
Thanks, that is very helpful indeed. What is the difference between the two? (in terms of performance, required libraries, compatibility etc)? –  Russell Nov 20 '09 at 0:34
    
I expect the performance to be similar, maybe the first to be slightly faster. But the first one won't work if the file doesn't have at least N lines. You are best to measure the performance against some typical data you will be using it with. –  gnibbler Nov 20 '09 at 0:47
    
The with statement works on Python 2.6, and requires an extra import statement on 2.5. For 2.4 or earlier, you'd need to rewrite the code with a try...except block. Stylistically, I prefer the first option, although as mentioned the second is more robust for short files. –  Alasdair Nov 20 '09 at 1:21
    
islice is probably faster as it is implemented in C. –  chrispy Nov 20 '09 at 6:45
5  
Have in mind that if the files have less then N lines this will raise StopIteration exception that you must handle –  Ilian Iliev Jan 25 '12 at 12:44

Starting at Python 2.6, you can take advantage of more sophisticated functions in the IO base clase. So the top rated answer above can be rewritten as:

    with open("datafile") as myfile:
       head = myfile.readlines(N)
    print head

(You don't have to worry about your file having less than N lines since no StopIteration exception is thrown.)

share|improve this answer
10  
According to the docs N is the number of bytes to read, not the number of lines. –  Mark Mikofski Jun 18 '13 at 17:41
2  
N is the number of bytes! –  qed Jun 1 at 14:19
N=10
f=open("file")
for i in range(N):
    line=f.next().strip()
    print line
f.close()
share|improve this answer
3  
I cringe whenever I see f = open("file") without exception handling to close the file. The Pythonic way to handle files is with a context manager, i.e. using the with statement. This is covered in the input output Python tutorial. "It is good practice to use the with keyword when dealing with file objects. This has the advantage that the file is properly closed after its suite finishes, even if an exception is raised on the way." –  Mark Mikofski Jun 18 '13 at 17:33

There is no specific method to read number of lines exposed by file object.

I guess the easiest way would be following:

lines =[]
with open(file_name) as f:
    lines.extend(f.readline() for i in xrange(N))
share|improve this answer
    
This is something I had actually intended. Though, I though of adding each line to list. Thank you. –  artdanil Nov 20 '09 at 2:11

If you want something that obviously (without looking up esoteric stuff in manuals) works without imports and try/except and works on a fair range of Python 2.x versions (2.2 to 2.6):

def headn(file_name, n):
    """Like *x head -N command"""
    result = []
    nlines = 0
    assert n >= 1
    for line in open(file_name):
        result.append(line)
        nlines += 1
        if nlines >= n:
            break
    return result

if __name__ == "__main__":
    import sys
    rval = headn(sys.argv[1], int(sys.argv[2]))
    print rval
    print len(rval)
share|improve this answer
    
+1 for providing yet another possibility. thanks –  André Terra Jun 3 '11 at 14:45

Based on gnibbler top voted answer (Nov 20 '09 at 0:27): this class add head() and tail() method to file object.

class File(file):
    def head(self, lines_2find=1):
        self.seek(0)                            #Rewind file
        return [self.next() for x in xrange(lines_2find)]

    def tail(self, lines_2find=1):  
        self.seek(0, 2)                         #go to end of file
        bytes_in_file = self.tell()             
        lines_found, total_bytes_scanned = 0, 0
        while (lines_2find+1 > lines_found and
               bytes_in_file > total_bytes_scanned): 
            byte_block = min(1024, bytes_in_file-total_bytes_scanned)
            self.seek(-(byte_block+total_bytes_scanned), 2)
            total_bytes_scanned += byte_block
            lines_found += self.read(1024).count('\n')
        self.seek(-total_bytes_scanned, 2)
        line_list = list(self.readlines())
        return line_list[-lines_2find:]

Usage:

f = File('path/to/file', 'r')
f.head(3)
f.tail(3)
share|improve this answer

most convinient way on my own:

LINE_COUNT = 3
print [s for (i, s) in enumerate(open('test.txt')) if i < LINE_COUNT]

Solution based on List Comprehension The function open() supports an iteration interface. The enumerate() covers open() and return tuples (index, item), then we check that we're inside an accepted range (if i < LINE_COUNT) and then simply print the result.

Enjoy the Python. ;)

share|improve this answer

If you want to have the first lines in a list, the simple thing is to use .readlines() . E.g. for the first 5 lines:

with open("pathofmyfileandfileandname") as myfile:
    firstNlines=myfile.readlines[0:5] #put here the interval you want
print firstNlines
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.