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I cannot tweak this for it to only respond to a value between 1 and 100. I know its somthing simple, but cannot find anything through searching that works.

while True:
    Mynumber = raw_input('Enter number of random points')
    if Mynumber == '0 < 100':
            print 'number choosen'
            Mynumber = int(Mynumber)
            break
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2 Answers 2

up vote 12 down vote accepted
if 1 <= my_number <= 100:

Or, since you are grabbing from raw_input and have to convert to int from unknown string first:

try:
    my_number = int(raw_number)
except ValueError:
    print "%s not an integer value." % raw_number
else:
    if 1 <= raw_number <= 100:

Though on further analysis, it looks like you are trying to do:

base_prompt = 'Enter number of random points'
user_input = raw_input(base_prompt)
while True:
    try:
        input_number = int(user_input)
    except ValueError:
        user_input = raw_input('%s not an interger\n%s' % (user_input, base_prompt))
    else:
        if 1 <= input_number <= 100:
            break
        else:
            user_input = raw_input('%d out of range (1 to 100)\n%s' % (input_number, base_prompt))
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5  
Don't forget to make my_number an integer before doing this test :) –  mgilson Jan 9 '13 at 21:53
    
@mgilson Answered the question, then solved the unasked problems. :) –  Silas Ray Jan 9 '13 at 21:59
    
To my defense, there isn't actually a question mark in that question ... :-p –  mgilson Jan 9 '13 at 22:00
    
I am struggling to make this work. Any more advice on this? –  DGraham Jan 9 '13 at 22:04
2  
@TomStork Don't forget to mark it as accepted then ;) –  Jeff Jan 9 '13 at 22:20

If you're on Python 3.x, the following also works:

if int(my_number) in range(1, 101):
    # ...

The caveat is that the end point of a range is exclusive, so it probably reads less intuitively than chained operators.

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2  
It works in Python 2 too, it's just that range() produces a list in that case, and materializing that list and searching it costs more than using ethe python 3 range() type. –  Martijn Pieters Jan 9 '13 at 21:57
    
And is incredibly inefficient... –  Silas Ray Jan 9 '13 at 21:58
    
@sr2222: Martijn Pieters's comment explains why it's inefficient in py2 (and why it isn't in py3). –  abarnert Jan 9 '13 at 22:46
    
@abarnert I think he edited it since I posted that to add more info. You are correct in that hte current version makes my comment pretty redundant... –  Silas Ray Jan 9 '13 at 22:50
    
Or in python 2, use if int(my_number) in xrange(1, 101): –  Eric Jan 9 '13 at 23:02

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