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>>> sum((1, 2, 3, 4, 5, 6, 7))
28
>>> 28/7
4.0
>>> sum((1,2,3,4,5,6,7,8,9,10,11,12,13,14))
105
>>> 105/7
15.0
>>>

How do I automate this sum and division using a loop maybe?

Edit: Maybe I wasn't clear - I want a loop to keep doing the sum (of multiples of 7, eg 1-7, 1-14, 1-21 etc..) until it reaches x (x is the user input)

Okay, figured it out:

def sum_and_div_of_multiples_of_7(x):
  y = 7
  while (y <= x):
    mof7 = range(1,y)
    print ('mof7 is', mof7)

    total = sum(mof7)
    print ('total =', total)

    div = total/7
    print ('div =', int(div), '\n')

    y = y+7     # increase y

x = 70
sum_and_div_of_multiples_of_7(x)
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1  
It seems a little late in the semester for a problem this easy to be homework, but it doesn't seem like a real-world problem, either. –  Craig Trader Nov 17 '09 at 7:24
    
@Chris: I deleted my comment on your comment as I saw yours was deleted ... no again your comment to my deleted one ... maybe some confusion for later historians. –  Kai Huppmann Nov 17 '09 at 7:34
    
@craig: Just started learning programming, but can't construct loops just yet. :) –  Nimbuz Nov 17 '09 at 7:41
    
@kai - Let's just delete our comments and then send new comments at each other telling each other about the deletions. I'm in a silly mood right now. –  Chris Lutz Nov 17 '09 at 7:52
    
so what is x, the sum or the quotient, that is in the first example, is x = 28 or 4? –  Fifth-Edition Nov 17 '09 at 7:53
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5 Answers

up vote 0 down vote accepted
def sumdiv7(limit):
    for i in range(limit):
        result = sum(range(i*7)) / 7
        print "For", i, ", sumdiv = ", result

Example:

>>> sumdiv7(4)
For 0 , sumdiv =  0
For 1 , sumdiv =  3
For 2 , sumdiv =  13
For 3 , sumdiv =  30

The trick is very simple, you want to sum multiples of 7,

To get the ith multiple of 7, it's just i*7

range is a python function to get a list of numbers from 0 to x

sum sums a list.

Just put these pieces together

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The direct answer:

def sum_to_number_divided_by_seven(i):
  return sum(range(i+1)) / 7

The more efficient answer:

def sum_to_number_divided_by_seven(i):
  return (i*(i+1))/14
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+1 for math knowledge! –  Chris Lutz Nov 17 '09 at 7:22
    
Though after some testing, it appears that the second solution has some overflow issues. Passing 3800000, for example, produces different results between the two algorithms. –  BJ Homer Nov 17 '09 at 7:24
    
Erm..maybe I wasn't clear: I want a loop to keep doing the sum (of multiples of 7, eg 1-7, 1-14, 1-21) unless it reaches x (x is the user input) –  Nimbuz Nov 17 '09 at 7:36
    
@Nimbuz - No, that wasn't clear, because most humans can't extrapolate a pattern from two points. Usually 3 or so points of data are required before the relationship becomes clear. –  Chris Lutz Nov 17 '09 at 7:51
    
but, sum(range(i)) sums the values (assuming i is 7 for example), 0 through 6, not 1 through 7 as i assume you would mean.. sum(range(1,8) on the other hand sums the values 1-7 –  Fifth-Edition Nov 17 '09 at 7:52
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I'm not sure what you want, but maybe it is something like:

sum(range(x*7+1))/7
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My version:

def sum_of_nums_divided_by_7(num):
    return reduce(lambda x, y: x+y, range(num)) / 7
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too "clever", and what's that reduce & lambda mess? sum already does it. –  hasenj Nov 17 '09 at 8:12
    
I just tried to show a brief demo on how functional approach could be used. I agree that pythons in built function sum does that easily. :) –  aatifh Nov 17 '09 at 8:20
1  
@neo, it's better and clearer to use operator.add in place of the lambda function –  gnibbler Nov 17 '09 at 8:30
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if i understand your problem correctly. You want to be able to accept user input - x, and then sum values 1-7 then devide by 7, if the qoutient is higher than x stop there, otherwise continue to sum up 1-14, devide by 7 and check that quotient - and continute in multiples of 7?

My easy sollution is

x = input('user input - enter your value here')
y = 0
i = 1
while(x > y):
    q = sum(range(1, i*7+1))
    y = q/7
    print y
    i+=1

print "userinput:  %d" % (x)
print "iterations:  %d" %(i)
print "end value: %d" %(y)
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