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I have 1M numbers:N[], and 1 single number n, now I want to find in those 1M numbers that are similar to that single number, say an area of [n-10, n+10]. what's the best way in python to do this? Do I have to sort the 1M number and do an iteration?

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What do you mean "similar"? – Dominic Bou-Samra Apr 2 '10 at 3:48
not exactly the same, but in the area of [n-10, n+10] – yasein Apr 2 '10 at 3:55

3 Answers 3

up vote 3 down vote accepted

[x for x in N if n - 10 <= x <= n + 10]

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will this do an whole 1M number iteration? – yasein Apr 2 '10 at 3:55
Yes, it's still a loop behind the scenes. – Ismail Badawi Apr 2 '10 at 4:02
results=[x for x in numbers if x >= n-10 and x <= n+10]
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results=[(i, x) for i, x in enumerate(numbers) if x >= n-10 and x <= n+10] if you want to keep track of the indices of the similar numbers. – Mike DeSimone Apr 2 '10 at 3:55
Python supports chained comparison operators like n - 10 <= x <= n + 10 – Mike Graham Apr 2 '10 at 4:03

Another solution:

is_close_to_n = lambda x: n-10 <= x <= n+10
result = filter(is_close_to_n, N)

Generalizing a bit:

def is_close_to(n):
    f = lambda x: n-10 <= x <= n+10
    return f

result12 = filter(is_close_to(12), N)
result123 = filter(is_close_to(123), N)

Do not sort. Sorting is, in general, O(n log n); brute-force searching is O(n).

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Thanks, What if I have those numbers sorted? Is there a O(log n) and simple solution for this? like do a binary search? Do python have some thing like "self defined compare function"? – yasein Apr 2 '10 at 4:08
If the list is already sorted, you can use binary search to find the index i1 of the first element >=n-10. Then proceed forward (in a while loop) to find the index i2 of the first element >n+10. N[i1:i2] should then be what you're loking for. What do you mean by "self defined compare function"? – Federico A. Ramponi Apr 2 '10 at 4:13
I mean if have a library function like this binary_search(N,n,cmp=mycompare) def mycompare(x,n): if n-10<x<n+10: return true else return false – yasein Apr 2 '10 at 4:31
bisect module might also also help, if they're sorted. – Gregg Lind Apr 2 '10 at 22:39

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