I have a file consisting of words, one word on each line. The file looks like this:

aaa
bob
fff
err
ddd
fff
err

I want to count the frequency of the pair of words which occur one after the other.

For example,

aaa,bob: 1
bob,fff:1
fff,err:2

and so on. I have tried this

f=open(file,'r')
content=f.readlines()
f.close()
dic={}
it=iter(content)
for line in content:
    print line, next(line);
    dic.update({[line,next(line)]: 1})

I got the error:

TypeError: str object is not an iterator

I then tried using an iterator:

it=iter(content)
for x in it:
    print x, next(x);

Got the same error again. Please help!

  • 3
    What do you think next(thing) does? It doesn't mean "the thing that comes after thing". – user2357112 Sep 12 '16 at 21:35
  • Aside: One solution is: pprint.pprint(collections.Counter(zip(content[0:],content[1:])).most_common()) – Robᵩ Sep 12 '16 at 21:38
  • @user2357112 : Thats what i thought next was! What does next do? The python doc says: 'Retrieve the next item from the iterator by calling its next() method. If default is given, it is returned if the iterator is exhausted, otherwise StopIteration is raised. – rowana Sep 12 '16 at 21:56
  • @rowana: Did you see how the argument is called "iterator"? It takes an iterator as an argument, not one of the elements retrieved from the iterator, and it retrieves the iterator's next item. (This advances the state of the iterator, so the next next call or for iteration for that iterator will go to the item after that.) I suppose the next question is, what do you think an iterator is? line is not an iterator. – user2357112 Sep 12 '16 at 22:01
  • @user2357112, Got it now! Thank you! – rowana Sep 12 '16 at 22:03
up vote 6 down vote accepted

You just need to keep track of the previous line, a file object returns it own iterator so you don't need the iter or readlines at all, call next once at the very start to creating a variable prev then just keep updating prev in the loop:

from collections import defaultdict

d = defaultdict(int)

with open("in.txt") as f:
    prev = next(f).strip()
    for line in map(str.strip,f): # python2 use itertools.imap
        d[prev, line] += 1
        prev = line

Which would give you:

defaultdict(<type 'int'>, {('aaa', 'bob'): 1, ('fff', 'err'): 2, ('err', 'ddd'): 1, ('bob', 'fff'): 1, ('ddd', 'fff'): 1})
  • 1
    This is a great example of how to use an iterator. Think of next kind of like [].pop(): it returns the next value but also removes it from the iterator. One great use of that is a pseudo-reduce like this: get the initial value, then loop over the rest. – Tore Eschliman Sep 13 '16 at 13:31

line, like all strs, is an iterable, which means it has an __iter__ method. But next works with iterators, which have a __next__ method (in Python 2 it's a next method). When the interpreter executes next(line), it attempts to call line.__next__. Since line does not have a __next__ method it raises TypeError: str object is not an iterator.

Since line is an iterable and has an __iter__ method, we can set it = iter(line). it is an iterator with a __next__ method, and next(it) returns the next character in line. But you are looking for the next line in the file, so try something like:

from collections import defaultdict

dic = defaultdict(int)
with open('file.txt') as f:
    content = f.readlines()
    for i in range(len(content) - 1):
        key = content[i].rstrip() + ',' + content[i+1].rstrip()
        dic[key] += 1

for k,v in dic.items():
    print(k,':',v)

Output (file.txt as in OP)

err,ddd : 1
ddd,fff : 1
aaa,bob : 1
fff,err : 2
bob,fff : 1
from collections import Counter
with open(file, 'r') as f:
    content = f.readlines()
result = Counter((a, b) for a, b in zip(content[0:-1], content[1:]))

That will be a dictionary whose keys are the line pairs (in order) and whose values are the number of times that pair occurred.

As others said, line is a string and thus cannot be used with the next() method. Also you can't use a list as a key for the dictionary because they are hashable. You can use a tuple instead. A simple solution:

f=open(file,'r')
content=f.readlines()
f.close()

dic={}

for i in range(len(content)-1):
    print(content[i], content[i+1])
    try:
        dic[(content[i], content[i+1])] += 1
    except KeyError:
        dic[(content[i], content[i+1])] = 1

Also notice that by using readlines() you also keep the '\n' of each line. You might want to strip it off first:

    content = []
    with open(file,'r') as f:
        for line in f:
            content.append(line.strip('\n'))

You can use a 2 line deque and a Counter:

from collections import Counter, deque

lc=Counter()
d=deque(maxlen=2)
with open(fn) as f:
    d.append(next(f))
    for line in f:
        d.append(line)
        lc+=Counter(["{},{}".format(*[e.rstrip() for e in d])])

>>> lc
Counter({'fff,err': 2, 'ddd,fff': 1, 'bob,fff': 1, 'aaa,bob': 1, 'err,ddd': 1})

You can also use a regex with a capturing look ahead:

with open(fn) as f:
    lc=Counter((m.group(1)+','+m.group(2),) for m in re.finditer(r"(\w+)\n(?=(\w+))", f.read()))
  • May I ask why the down vote? – dawg Sep 15 '16 at 14:32

As others mentioned, you can't use next on a line which is an string. You can use itertools.tee to create two independent iterator from your file object, then use collections.Counter and zip to create a counter object from the pairs of lines

from itertools import tee
from collections import Counter
with open('test.txt') as f:
    # f = (line.rstrip() for line in f) # if you don't want the trailing new lines 
    f, ne = tee(f)
    next(ne)
    print(Counter(zip(f, ne)))

note that since file object is contain the lines with new-line at their trailing, if you don't want that you can strip the lines.

Your value x holds a string 'ddd/ccc/etc'. it has not next. next() belongs to the iterator and it used to get next element from the iterator. The correct way to call it is it.next()

it=iter(content)
for x in it:
    print x, it.next();

But you will get an exception after you finish to consume all elements in the iterator. So, you need to catch StopIteration exception.

for x in it:
    try:
        line, next_line = x, it.next()
        # do your count logic overhere
    except StopIteration:
        break

dic.update({[line,next_line]: 1}) does not work. You will skip possible combinations.

  • 1
    Shouldn't it be next(it)? – Pavel Gurkov Sep 12 '16 at 21:39
  • @PavelGurkov it.next() works as well. – levi Sep 12 '16 at 21:40
  • @levi, Thank you. It worked perfectly. Sadly I don't have enough credits to up vote. When I do, I will! – rowana Sep 12 '16 at 21:59
  • @rowana but you mark the answer as correct. – levi Sep 12 '16 at 22:06
  • I think you mean it.__next__() :) – Craig Burgler Sep 12 '16 at 22:43

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