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if I want maximum value, I can just write max(List), but what if I also need the index of the maximum value?

I can write something like this:

maximum=0
for i,value in enumerate(List):
    if value>maximum:
        maximum=value
        index=i

But it looks tedious to me.

And if I write:

List.index(max(List))

Then it will pass list two times.

Is there a better way?

share|improve this question
    
What do you mean by "it will pass list two times"? List.index(max(List)) works for me. –  mwcz May 31 '11 at 21:03
5  
@mwc: It will iterate the list once to determine the maximum value, then iterate it a second time to find the index of that value. –  delnan May 31 '11 at 21:04
    
Wouldn't list.index() be problematic if there are duplicated max values? –  Logan Yang Feb 5 at 0:14

2 Answers 2

up vote 42 down vote accepted

There are many options, for example:

index, value = max(enumerate(my_list), key=operator.itemgetter(1))
share|improve this answer
    
This is exactly what I had in mind. –  g.d.d.c May 31 '11 at 21:03
    
Ah, I have seen this in other places, but I thought that it will return just one value, not a tuple. –  Sunny88 May 31 '11 at 21:09
    
@Sunny88: The key function is only used to decide which element is maximal. The elements are not changed. –  Sven Marnach May 31 '11 at 21:12

I think the accepted answer is great, but why don't you do it explicitly? I feel more people would understand your code, and that is in agreement with PEP 8:

max_value = max(my_list)
max_index = my_list.index(max_value)

This method is also about three times faster than the accepted answer:

import random
from datetime import datetime
import operator

def explicit(l):
    max_val = max(l)
    max_idx = l.index(max_val)
    return max_idx, max_val

def implicit(l):
    max_idx, max_val = max(enumerate(l), key=operator.itemgetter(1))
    return max_idx, max_val

if __name__ == "__main__":
    from timeit import Timer
    t = Timer("explicit(l)", "from __main__ import explicit, implicit; "
          "import random; import operator;"
          "l = [random.random() for _ in xrange(100)]")
    print "Explicit: %.2f usec/pass" % (1000000 * t.timeit(number=100000)/100000)

    t = Timer("implicit(l)", "from __main__ import explicit, implicit; "
          "import random; import operator;"
          "l = [random.random() for _ in xrange(100)]")
    print "Implicit: %.2f usec/pass" % (1000000 * t.timeit(number=100000)/100000)

Results as they run in my computer:

Explicit: 8.07 usec/pass
Implicit: 22.86 usec/pass

Other set:

Explicit: 6.80 usec/pass
Implicit: 19.01 usec/pass
share|improve this answer
2  
+1 for the detailed answer with timing info –  Daenyth Jun 1 '11 at 0:07
1  
Didn't expect it to be faster. It is faster even when I replace l with "l = [random.random() for _ in xrange(10000000)]+[2]", which guarantees that last element is the largest. –  Sunny88 Jun 1 '11 at 4:39
5  
@Sunny88: For a simple list of numbers, the simple approach is faster. If you are after performance in this case, I'd suggest to use numpy.argmax(), which is another 30 times faster on my machine. If the list contains more complicated objects than mere numbers, the approach in my answer can become faster. Wnother advantage of that approach is that it can be used for arbitrary iterators, not only for lists. –  Sven Marnach Jun 1 '11 at 15:51
1  
@Sven-Marnach I just checked. numpy.argmax is by far the slowest method, and it gives the wrong answer, if the array contains strings instead of floats or integers. –  tommy.carstensen Sep 8 '13 at 23:47
1  
Wouldn't list.index() be problematic if there are duplicated max values? –  Logan Yang Feb 5 at 0:15

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