171

I have a list 'a'

a= [(1,2),(1,4),(3,5),(5,7)]

I need to find all the tuples for a particular number. say for 1 it will be

result = [(1,2),(1,4)]

How do I do that?

10 Answers 10

283

If you just want the first number to match you can do it like this:

[item for item in a if item[0] == 1]

If you are just searching for tuples with 1 in them:

[item for item in a if 1 in item]
0
149

There is actually a clever way to do this that is useful for any list of tuples where the size of each tuple is 2: you can convert your list into a single dictionary.

For example,

test = [("hi", 1), ("there", 2)]
test = dict(test)
print test["hi"] # prints 1
6
  • 14
    How do you apply this to Bruce's problem? Jan 29 '14 at 8:10
  • 7
    Good answer (though possibly not for this question). Worked well for me to determine if a value was in a list of choice tuples (eg; if "hi" in test)
    – MagicLAMP
    Nov 4 '15 at 0:10
  • 13
    It doesn't really answer the question, as MagicLAMP suggests. Specifically, dict(X) converts X into a dictionary where the last tuple of any common first element, is the value that is used. In the example of the OP, this would return (1,4) as opposed to both (1,2) and (1,4).
    – BBischof
    Jun 12 '16 at 0:51
  • This may not answer the question above, but this is exactly what I'm looking for.
    – justin
    Jan 29 '21 at 5:16
  • Love it, thank you for sharing.
    – Sun Bee
    Dec 16 '21 at 1:21
26

Read up on List Comprehensions

[ (x,y) for x, y in a if x  == 1 ]

Also read up up generator functions and the yield statement.

def filter_value( someList, value ):
    for x, y in someList:
        if x == value :
            yield x,y

result= list( filter_value( a, 1 ) )
1
  • 1
    if x == 1 should be if x == value
    – sambha
    Apr 20 '15 at 15:35
11
[tup for tup in a if tup[0] == 1]
9
for item in a:
   if 1 in item:
       print item
7

The filter function can also provide an interesting solution:

result = list(filter(lambda x: x.count(1) > 0, a))

which searches the tuples in the list a for any occurrences of 1. If the search is limited to the first element, the solution can be modified into:

result = list(filter(lambda x: x[0] == 1, a))
2

Using filter function:

>>> def get_values(iterables, key_to_find):
return list(filter(lambda x:key_to_find in x, iterables)) >>> a = [(1,2),(1,4),(3,5),(5,7)] >>> get_values(a, 1) >>> [(1, 2), (1, 4)]
2
>>> [i for i in a if 1 in i]

[(1, 2), (1, 4)]

1
  • While correct, how is this different from [item for item in a if 1 in item] in the accepted answer posted 8 years earlier? Also note this will also match (2, 1) and (4, 1).
    – Arjan
    Sep 14 '20 at 15:36
2

Or takewhile, ( addition to this, example of more values is shown ):

>>> a= [(1,2),(1,4),(3,5),(5,7),(0,2)]
>>> import itertools
>>> list(itertools.takewhile(lambda x: x[0]==1,a))
[(1, 2), (1, 4)]
>>> 

if unsorted, like:

>>> a= [(1,2),(3,5),(1,4),(5,7)]
>>> import itertools
>>> list(itertools.takewhile(lambda x: x[0]==1,sorted(a,key=lambda x: x[0]==1)))
[(1, 2), (1, 4)]
>>> 
0

if you want to search tuple for any number which is present in tuple then you can use

a= [(1,2),(1,4),(3,5),(5,7)]
i=1
result=[]
for j in a:
    if i in j:
        result.append(j)

print(result)

You can also use if i==j[0] or i==j[index] if you want to search a number in particular index

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