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I am looking for something like range, but one that will allow me to specify the start and the end value, along with how many numbers I need in the collection which I want to use in a similar fashion range is used in for loops.

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3  
no. Use numpy.linspace –  JBernardo Dec 28 '11 at 4:55
    
I would like to use other libraries but since this is the python integration of a 3rd party software, adding new libraries is very painful. –  Joan Venge Dec 28 '11 at 4:57
    
Like the R function seq(from,to,length) and its docpage –  smci Mar 12 '13 at 9:41

4 Answers 4

up vote 3 down vote accepted

No, there is no built-in function to do what you want. But, you can always define your own range:

def my_range(start, end, how_many):
    incr = float(end - start)/how_many
    return [start + i*incr for i in range(how_many)]

And you can using in a for-loop in the same way you would use range:

>>> for i in my_range(0, 1, 10):
...     print i
... 
0.0
0.1
0.2
0.3
0.4
0.5
0.6
0.7
0.8
0.9

EDIT: If you want both start and end to be part of the result, your my_range function would be:

def my_range(start, end, how_many):
    incr = float(end - start)/(how_many - 1)
    return [start + i*incr for i in range(how_many-1)] + [end]

And in your for-loop:

>>> for i in my_range(0, 1, 10):
...   print i
... 
0.0
0.111111111111
0.222222222222
0.333333333333
0.444444444444
0.555555555556
0.666666666667
0.777777777778
0.888888888889
1
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Thanks but in my case, I need both the stand and the end to be in the sequence. –  Joan Venge Dec 28 '11 at 5:09
1  
@JoanVenge, I've edited my answer –  juliomalegria Dec 28 '11 at 5:16
    
Thanks Julio, that's sweet. –  Joan Venge Dec 28 '11 at 5:17

Python doesn't have a floating point range function but you can simulate one easily with a list comprehension:

>>> lo = 2.0
>>> hi = 12.0
>>> n = 20
>>> [(hi - lo) / n * i + lo for i in range(n)]
[2.0, 2.5, 3.0, 3.5, 4.0, 4.5, 5.0, 5.5, 6.0, 6.5, 7.0, 7.5, 8.0, 8.5, 9.0, 9.5, 10.0, 10.5, 11.0, 11.5]

Note, in numeric applications, people typically want to include both endpoints rather than have a half-open interval like Python's built-in range() function. If you need both end-points you can easily add that by changing range(n) to range(n+1).

Also, consider using numpy which has tools like arange() and linspace() already built in.

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Thanks, can you please show me how I can do that that I can use in a for loop? –  Joan Venge Dec 28 '11 at 4:56
    
Thanks for the example, can it also include hi as the last element? –  Joan Venge Dec 28 '11 at 4:59
    
@Joan that conflicts with range's behavior, so I would generally avoid that. –  Matt Ball Dec 28 '11 at 5:02
2  
@JoanVenge Edited the answer to show how to include both end-points by changing range(n) to range(n+1). –  Raymond Hettinger Dec 28 '11 at 5:07
1  
Thanks Rayman, that should work fine then. –  Joan Venge Dec 28 '11 at 5:08

You can still use range, you know. You just need to start out big, then divide:

for x in range(100):
    print x/100.0

If you want to include the endpoint:

for x in range(101):
    print x/100.0
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This is what I am doing now, but figured there might be a nitfy method that does this. –  Joan Venge Dec 28 '11 at 5:00
    
may be you can make it more generic, with low, high and count. –  Pavan Yalamanchili Dec 28 '11 at 5:00
    
@Pavan of course that's possible. –  Matt Ball Dec 28 '11 at 5:01
    
Actually I can't use this either, as this also doesn't include 100 in the sequence ): –  Joan Venge Dec 28 '11 at 5:05
1  
@Joan easy peasy, see my edit. Just add 1. –  Matt Ball Dec 28 '11 at 5:08

There is a special function in numpy to do this: linspace. Ofcourse you will have to install numpy first. You can find more about it here.

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That numpy function is very cool indeed. –  Joan Venge Dec 28 '11 at 5:00

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