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I used the reduce function to multiply all the elements of a list as follows.

l = [1,2,3,4,5]
reduce(lambda x,y:x*y,l) #returns 120

Now, suppose I have a list, l = [1,'apple',2,'apple','apple'], and I want to count how many times the word "apple" appears in the list. Is this possible using reduce?

I'm aware I can use l.count('apple'), but I want to know if a reduce solution is possible.

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1  
Yes, but it's not pretty. –  Rafe Kettler Aug 21 '11 at 17:14
    
Thanks for the reply.Can u give an example please ? –  Jill Aug 21 '11 at 17:15
4  
One thing's for certain: if you want to ask a homework-related reduce question, you should call yourself Jill and not James (stackoverflow.com/questions/7139168/…). Jill gets 5 answers, James gets -5 votes.. and yes, I recognize this one's genuinely written in a better way. Is simply funny, is all. –  DSM Aug 21 '11 at 17:21
    
ha! that is awesome (and depressing, and hopelessly predictable). i promise i just turned on the computer... –  andrew cooke Aug 21 '11 at 17:24
    
@DSM: It's also not the same question. –  sepp2k Aug 21 '11 at 17:30

6 Answers 6

Yes it is:

reduce(lambda x,y: x + (y == 'apple'), l, 0)

But as you mentioned yourself, there is no need to use reduce here. It is likely that it will be slower than any other counting method and the intention is not immediately clear.

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>>> l
[1, 'apple', 2, 'apple', 'apple']
>>> reduce(lambda x, y: x + (1 if y == 'apple' else 0), l, 0)
3
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>>> l = [1,'apple',2,'apple','apple']
>>> reduce(lambda s, i: s+1 if i == "apple" else s, l, 0)
3

You can simplify s+1 if i == "apple" else s part to just s + (i == "apple"), but I think implicit bool => int conversions are cryptic. But using reduce for this job is cryptic anyway :).

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This is easiest using an initializer (the extra 0 at the end of the call to reduce), so you only need to convert the second argument:

reduce(lambda x, y: x + (1 if y=='apple' else 0), [1,'apple',2,'apple','apple'], 0)

Or you can reduce something that has been transformed by a map into 0 and 1:

reduce(lambda x, y: x+y, map(lambda x: 1 if x=='apple' else 0,  [1,'apple',2,'apple','apple']))

But there are lots of ways to make this more natural:

  • use list comprehensions rather than reduce
  • use the operators package instead of defining your own function for addition
  • user itertools

(And the counter suggestion above is really cool - I don't think I even knew that existed.)

A simpler (but not very efficient) approach would be:

len([x for x in [1,'apple',2,'apple','apple'] if x=='apple'])
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If you use a "real" function instead of a lambda function solutions to problems like this usually become much clearer:

def count_apples(acc, v):
   if v == 'apple':
      return acc+1
   else:
      return acc

l = [1,'apple',2,'apple','apple']
print reduce(count_apples, l, 0)
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from operator import mul
from time import clock

n= 10000

li = [1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20]

te = clock()
for i in xrange(n):
    x = reduce(mul,li)
print clock()-te


te = clock()
for i in xrange(n):
    y = reduce(lambda a,b: a*b,li)
print clock()-te


print x==y

result

0.0616016840129
0.124420003101
True

.

li = [1,78,2,2,12,45,1,2,8,1,2,5,4,2]


te = clock()
for i in xrange(n):
    x = li.count(2)
print clock()-te

te = clock()
for i in xrange(n):
    y = sum(1 for a in li if a==2)
print clock()-te

te = clock()
for i in xrange(n):
    z = len([a for a in li if a==2])
print clock()-te

print x==y==z

produces

0.0110332458455
0.0428308625817
0.0518741907142
True
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1  
Hey eyquem. These timings are interesting, but the question wasn't about performance, it was about how "count" could be implemented with reduce. You should only post something as an answer if it specifically addresses the question. I know this was too big to put in a comment, but that simply means it's not a good fit for this site. –  agf Aug 21 '11 at 19:21

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