33

Given the following vector,

a = [1, 2, 3, 4, 5, 6, 7, 8, 9]

I need to identify the indices of "a" whose elements are >= than 4, like this:

idx = [3, 4, 5, 6, 7, 8] 

The info in "idx" will be used to delete the elements from another list X (X has the same number of elements that "a"):

del X[idx] #idx is used to delete these elements in X. But so far isn't working.

I heard that numpy might help. Any ideas? Thanks!

5
  • loops are a good place to start.
    – monkut
    Dec 5, 2012 at 6:23
  • Your idx example is wrong, there are only 9 elements in the list, and therefore 9 indices, 0-8.
    – Aesthete
    Dec 5, 2012 at 6:30
  • Your question is slightly contradicting with itself. Looks like you might have confused indices with elements(Your idx in fact is list of elements and you are asking list of indices). Also please tell what have you tried on your own before asking?
    – 0xc0de
    Dec 5, 2012 at 6:37
  • @0xc0de I think he/she just type the pesudo code here . Dec 5, 2012 at 6:44
  • 1
    Thanks for all the answers. Actually I failed to mention that I need to use idx as an index to remove the elements from another list, other than a... Dec 5, 2012 at 6:49

7 Answers 7

40
>>> [i for i,v in enumerate(a) if v > 4]
[4, 5, 6, 7, 8]

enumerate returns the index and value of each item in an array. So if the value v is greater than 4, include the index i in the new array.

Or you can just modify your list in place and exclude all values above 4.

>>> a[:] = [x for x in a if x<=4]
>>> a 
[1, 2, 3, 4]
19

OK, I understand what you mean and a Single line of Python will be enough:

using list comprehension

[ j for (i,j) in zip(a,x) if i >= 4 ]
# a will be the list compare to 4
# x another list with same length

Explanation:
>>> a
[1, 2, 3, 4, 5, 6, 7, 8, 9]
>>> x
['a', 'b', 'c', 'd', 'e', 'f', 'g', 'h', 'j']

Zip function will return a list of tuples

>>> zip(a,x)
[(1, 'a'), (2, 'b'), (3, 'c'), (4, 'd'), (5, 'e'), (6, 'f'), (7, 'g'), (8, 'h'), (9, 'j')]

List comprehension is a shortcut to loop an element over list which after "in", and evaluate the element with expression, then return the result to a list, also you can add condition on which result you want to return

>>> [expression(element) for **element** in **list** if condition ]

This code does nothing but return all pairs that zipped up.

>>> [(i,j) for (i,j) in zip(a,x)]
[(1, 'a'), (2, 'b'), (3, 'c'), (4, 'd'), (5, 'e'), (6, 'f'), (7, 'g'), (8, 'h'), (9, 'j')]

What we do is to add a condition on it by specify "if" follow by a boolean expression

>>> [(i,j) for (i,j) in zip(a,x) if i >= 4]
[(4, 'd'), (5, 'e'), (6, 'f'), (7, 'g'), (8, 'h'), (9, 'j')]

using Itertools

>>> [ _ for _ in itertools.compress(d, map(lambda x: x>=4,a)) ]
# a will be the list compare to 4
# d another list with same length

Use itertools.compress with single line in Python to finish close this task

>>> a = [1, 2, 3, 4, 5, 6, 7, 8, 9]
>>> d = ['a', 'b', 'c', 'd', 'e', 'f', 'g', 'h', 'j'] # another list with same length
>>> map(lambda x: x>=4, a)  # this will return a boolean list 
[False, False, False, True, True, True, True, True, True]


>>> import itertools
>>> itertools.compress(d, map(lambda x: x>4, a)) # magic here !
<itertools.compress object at 0xa1a764c>     # compress will match pair from list a and the boolean list, if item in boolean list is true, then item in list a will be remain ,else will be dropped
#below single line is enough to solve your problem
>>> [ _ for _ in itertools.compress(d, map(lambda x: x>=4,a)) ] # iterate the result.
['d', 'e', 'f', 'g', 'h', 'j']

Explanation for itertools.compress, I think this will be clear for your understanding:

>>> [ _ for _ in itertools.compress([1,2,3,4,5],[False,True,True,False,True]) ]
[2, 3, 5]
2
  • 1
    @OliverAmundsen this will be my final solution Dec 5, 2012 at 16:47
  • that worked! Thanks @ShawnZhang. Could briefly explain the logic of the "using list comprehension"? thx Dec 5, 2012 at 18:24
8
>>> import numpy as np
>>> a = np.array(range(1,10))
>>> indices = [i for i,v in enumerate(a >= 4) if v]
>>> indices
[3, 4, 5, 6, 7, 8]

>>> mask = a >= 4
>>> mask
array([False, False, False,  True,  True,  True,  True,  True,  True], dtype=boo
l)
>>> a[mask]
array([4, 5, 6, 7, 8, 9])
>>> np.setdiff1d(a,a[mask])
array([1, 2, 3])
8

The simplest in my eyes would be to use numpy

X[np.array(a)>4]#X needs to be np.array as well

Explanation: np.array converts a to an array.

np.array(a)>4 gives a bool array with all the elements that should be kept

And X is filtered by the bool array so only the elements where a is greater than 4 are selected (and the rest discarded)

7

I guess I came here a bit late (while things got easier using Numpy)..

import numpy as np

# Create your array
a = np.arange(1, 10)
# a = array([1, 2, 3, 4, 5, 6, 7, 8, 9])

# Get the indexes/indices of elements greater than 4 
idx = np.where(a > 4)[0]
# idx = array([4, 5, 6, 7, 8])

# Get the elements of the array that are greater than 4
elts = a[a > 4]
# elts = array([5, 6, 7, 8, 9])

# Convert idx(or elts) to a list
idx = list(idx)
#idx = [4, 5, 6, 7, 8]
1

using filter built-in function is fine

>>>a = [1, 2, 3, 4, 5, 6, 7, 8, 9]
>>>filter(lambda x : x < 4, a)
[1, 2, 3]

Explanation

filter(FUN, Iterable)

this expression will iterate all element from Iterable and supply to FUN function as argument, if return is True ,then the arugment will be append to a internal list

lambda x: x > 4

this means a anonymous function that will take a argument and test it if bigger than 4, and return True of False value

Your solution

if you are try to delete all elements larger than 4 ,then try blow

>>> a = [1, 2, 3, 4, 5, 6, 7, 8, 9]
>>> filter(lambda x: x<4 ,a)
[1, 2, 3]
7
  • And what happens when you call del a[9]?
    – Aesthete
    Dec 5, 2012 at 6:29
  • 1
    -1. You are returning list elements, not the indices. Although this works for the given list but it's not a correct answer.
    – 0xc0de
    Dec 5, 2012 at 6:32
  • @Aesthete length of a here is 9, a[9] means the 10th element of list.if del a[9], python will throw an index error Dec 5, 2012 at 6:34
  • @0xc0de hi,nice for your rigourism. but as context from the question , index return will be used to delete element in the list . I think what I written will be helpful and show pythonic way to close the ticket. Dec 5, 2012 at 6:37
  • @ShawnZhang: True. I think the question needs correction. Please edit your answer to reflect difference between what you think the questioner needs and what he is asking for so that I will cancel my -1 :).
    – 0xc0de
    Dec 5, 2012 at 6:42
0

looping is slow, using divide and conquer method. code in C++

// find index whose value is equal to or greater than "key" in an ordered vector.
// note: index may be equal to indices.size()
size_t StartIndex(const std::vector<int>& indices, int key)
{
    if (indices.empty() || key <= indices[0])
        return 0;

    if (key > indices.back())
        return indices.size();

    size_t st = 0;
    size_t end = indices.size() - 1;

    while (true)
    {
        if ((end - st) < 2)
            return (indices[st] < key) ? end : st;

        size_t mid = ((st + end) >> 1);  // (st + end) / 2

        if (indices[mid] == key)
            return mid;

        (indices[mid] < key ? st : end) = mid;
    }
}

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