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.

Hi I know this have been asked previously but I am still having a hard time figuring it out. I can find max value, I can find average but I just cant seem to find the min. I know there is a way to find max and min in a loop but right now I can only find the max.

def large(s)
    sum=0
    n=0
    for number in s:
        if number>n:
        n=number 
    return n 

is there a way to find the min value using this function?

share|improve this question
add comment

7 Answers

You can use Python's built-in sum(), min(), and max() functions for this kind of analysis.

However, if you're wanting to do it all in one pass or just want to learn how to write it yourself, then the process is 1) iterate over the input and 2) keep track of the cumulative sum, the minimum value seen so far, and the maximum value seen so far:

def stats(iterable):
    '''Return a tuple of the minimum, average, and maximum values

        >>> stats([20, 50, 30, 40])
        (20, 35.0, 50)

    '''
    it = iter(iterable)
    first = next(it)     # Raises an exception if the input is empty
    minimum = maximum = cumsum = first
    n = 1
    for x in it:
        n += 1
        cumsum += x
        if x < minimum:
            minimum = x
        if x > maximum:
            maximum = x
    average = cumsum / float(n)
    return minimum, average, maximum

if __name__ == '__main__':
    import doctest
    print doctest.testmod()

The code has one other nuance. It uses the first value from the input iterable as the starting value for the minimum, maximum, and cumulative sum. This is preferred over creating a positive or negative infinity value as initial values for the maximum and minimum. FWIW, Python's own builtin functions are written this way.

share|improve this answer
    
stats throws an exception if the list is empty. Although that doesn't seem to be a problem for Python programmers (that's the "pythonic" way), it still bothers me a bit. Personally, I prefer to handle special cases and return a meaningful result, since passing an empty list is not an exceptional condition per se. A matter of style. –  Óscar López Dec 10 '11 at 21:46
    
@ÓscarLópez Python's own min and max raise a ValueError when fed an empty list ("errors should not pass silently"), but if it bothers you, it's not hard to add a default value with something like first = next(it, default_value). –  Raymond Hettinger Dec 10 '11 at 21:56
add comment

Finding the minimum takes the same algorithm as finding the maximum, but with the comparison reversed. < becomes > and vice versa. Initialize the minimum to the largest value possible, which is float("inf"), or to the first element of the list.

FYI, Python has a builtin min function for this purpose.

share|improve this answer
2  
This will work. A more sophisticated approach will capture the initial value as the starting point rather than using an infinity value to start with :-) –  Raymond Hettinger Dec 10 '11 at 19:54
add comment

You must set n to a very high number (higher than any of the expected) or to take one from the list to start comparison:

def large(s)
    n = s.pop()
    for number in s:
        if number < n:
            n = number 
    return n 

Obviously you have already max and min for this purpose.

share|improve this answer
    
This is a nice example that avoids infinity values. See the stats() example for how to do it without requiring a list input. –  Raymond Hettinger Dec 10 '11 at 20:55
    
@RaymondHettinger thanks, yes I see the iterator pattern. Also very useful for reading files when getting text headers or to analyze line structure is needed before starting iterating the thing. –  joaquin Dec 10 '11 at 22:24
add comment

A straightforward solution:

def minimum(lst):
    n = float('+inf')
    for num in lst:
        if num < n:
            n = num
    return n

Explanation: first, you initialize n (the minimum number) to a very large value, in such a way that any other number will be smaller than it - for example, the infinite value. It's an initialization trick, in case the list is empty, it will return infinite, meaning with that that the list was empty and it didn't contain a minimum value.

After that, we iterate over all the values in the list, checking each one to see if it is smaller than the value we assumed to be the minimum. If a new minimum is found, we update the value of n.

At the end, we return the minimum value found.

share|improve this answer
    
See the stats example for a more robust way to do this without infinity values. –  Raymond Hettinger Dec 10 '11 at 20:54
    
@RaymondHettinger the reason I initialized n in a special value (infinity in my case) is to take into account the special case when the list is empty. Your code throws an exception for an empty list, mine returns a special value - it's a matter of style –  Óscar López Dec 10 '11 at 21:41
add comment

Why not just replace large with small and > with <? Also, you might not want to initialize n to 0 if you're looking for the smallest value. Your large function only works for lists of positive numbers. Also, you're missing a ":" after your def line.

def small(s):
    if len(s)==0: return None
    n = s[0]
    for number in s[1:]:
        if n < number:
            n=number 
    return n 

This handles empty lists by returning None.

share|improve this answer
add comment

Using this function to find minimum is

min=-large(-s)

The logic is just to find maximum of the negative list , which gives the minimum value

share|improve this answer
add comment

You can use same function with iteration just instead of n=0 use n=L[0]

def min(L): n=L[0] for x in L: if x

share|improve this answer
add comment

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.