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The only difference that I know between randrange and randint is that randrange([start], stop[, step]) you can use the step and random.randrange(0,1) will not consider the last item, while randint(0,1) returns a choice inclusive of the last item.

So, I can't find a reason for explain why randrange(0,1) doesn't return 0 or 1, why exist randint(0, 1) and randrange(0, 2) instead of a randrange(0, 1) who returns 0 or 1?

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Related: stackoverflow.com/questions/2568783/… –  kennytm Aug 22 '10 at 8:00
    
You have two values you want to return and 2-0=2 (2 not included in range). count of range(a,b) is always b-a and often clearest way to write the range is range(a,a+count) –  Tony Veijalainen Aug 22 '10 at 13:22

3 Answers 3

up vote 21 down vote accepted

The docs on randrange say:

random.randrange([start], stop[, step])

Return a randomly selected element from range(start, stop, step). This is equivalent to choice(range(start, stop, step)), but doesn’t actually build a range object.

And range(start, stop) returns [start, start+step, ..., stop-1], not [start, start+step, ..., stop]. As for why... zero-based counting rules and range(n) should return n elements, I suppose. Most useful for getting a random index, I suppose.

While randint is documented as:

random.randint(a, b)

Return a random integer N such that a <= N <= b. Alias for randrange(a, b+1)

So randint is for when you have the maximum and minimum value for the random number you want.

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The docs don't seem to say anything about randint being an alias for randrange(a, b + 1). Is this actually the case? Should the latter be used instead of randint seeing how it'll be the same under the hood? Is there extra overhead in calling randint? –  Whymarrh Sep 18 '12 at 19:24
    
@Whymarrh This post is two years out of date. I couldn't find the piece of text I quoted either, but I'm pretty sure I did not make it up. As for choosing between the two, randint is simpler and more intuitive, hence I'd recommend it whenever it applies I don't think there is a measurable performance difference, and I am strongly opposed to caring about these things. Use whatever is clearer. If a single additional function call would hurt you, you shouldn't be using Python. Or most libraries in any language, for that matter. –  delnan Sep 18 '12 at 19:29
    
I didn't mean to imply that the statement was fabricated. I am new to the language and am simply curious. (I assume that the docs have also changed over two years.) I thank you for your response, randint is clearer and makes more sense intuitively. –  Whymarrh Sep 18 '12 at 19:36

https://github.com/python/cpython/blob/master/Lib/random.py#L214:

    def randint(self, a, b):
        """Return random integer in range [a, b], including both end points.
        """

        return self.randrange(a, b+1)
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The difference between the two of them is that randint can only be used when you know both interval limits. If you only know the first limit of the interval randint will return an error. In this case you can use randrange with only one interval and it will work. Try run the following code for filling the screen with random triangles:

import random
from tkinter import *

tk = Tk()
canvas = Canvas(tk, width=400, height=400)
canvas.pack()

def random_triangle(l1,l2,l3,l4,l5,l6):
  x1 = random.randrange(l1)
  y1 = random.randrange(l2)
  x2 = x1 + random.randrange(l3)
  y2 = y1 + random.randrange(l4)
  x3 = x2 + random.randrange(l5)
  y3 = y2 + random.randrange(l6)
  canvas.create_polygon(x1,y1,x2,y2,x3,y3)

for x in range(0, 100):
  random_triangle(300,400,200,500,400,100)

Try running again the above code with the randint function. You will see that you will get an error message.

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