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I should write a function min_in_list(munbers), which takes a list of numbers and returns the smallest one. NOTE: built-in function min is NOT allowed!

def min_in_list(numbers):
    the_smallest = [n for n in numbers if n < n+1]
    return the_smallest

What's wrong?

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What don't you like about it? Does it not run? Does it get an exception? Does it produce the wrong answer? Please provide details if you're going to ask us to help with your homework. Details matter. It shows you're learning. – S.Lott Oct 24 '10 at 15:37
3  
What's wrong with what you have is that n is always less than n + 1 (how could it not be?), so you will get the entire list. – kindall Oct 24 '10 at 15:43
    
Did you try it? Here is how it works: >>> min_in_list([1,2,3,4,5]) outputs [1, 2, 3, 4, 5] – Gusto Oct 24 '10 at 15:52
2  
@Gusto: "Did you try it?". No. That's your job. Please update the question with details. Please update the question to say (1) what you want and (2) what you're getting that you don't like. Details matter. Please update your question with the details. – S.Lott Oct 24 '10 at 16:03
    
Your solution won't work because n is always smaller than n + 1! – rubik Oct 24 '10 at 16:35
up vote 1 down vote accepted
def min_of_two(x, y):
    if x >= y: return x
    else: return y

def min_in_list(numbers):
    return reduce(min_of_two, numbers)

You have to produce 1 number from list, not just another list. And this is work for reduce function (of course, you can implement it without reduce, but by analogy with it).

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Exactly what I need! – Gusto Oct 24 '10 at 16:03
    
@Gusto: yes, but how will you explain to your teacher how you reached that solution? – tzot Oct 24 '10 at 16:18
    
@ ΤΖΩΤΖΙΟΥ I don't have to explain anything - this is a preparation to the exam, and not a 'homework' as it is. – Gusto Oct 24 '10 at 16:27

Here you go. This is almost certainly about as simple as you could make it. You don't even have to give me credit when you turn the assignment in.

import itertools
import functools
import operator

def min(seq, keyfun=operator.gt):
    lt = lambda n: functools.partial(keyfun, n)

    for i in seq:
        lti = lt(i)
        try:
            next(itertools.ifilter(lti, seq))
        except:
            return i
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too long and too complicated – Gusto Oct 24 '10 at 16:05
min = lambda n: return reduce(lambda x,y: (x>y) and return x or return y,n)

Never been tested, use at your own risk.

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