Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

What is the best (and fastest) way, in Python 2.7.x, to check if a string (or any other data type) exists in a nested tuple?

For example:

RECIPES = (
    ('apple', 'sugar', 'extreme_Force'),
    ('banana', 'syrup', 'magical_ends'),
    ('caramel', 'chocolate', 'pancake_MONSTER'),
    ('banana',('someAnother','banana'))
)

This tuples needs to be checked if banana appears in any of the nested tuple and return the location index, in this case 1,0.

Also, the tuples could be nested to any depth.

share|improve this question
    
When you say "fastest", how many items are likely to be in each tuple (how many in the top-level RECIPES and how many ingredients on average)? – dbr Sep 18 '12 at 19:07
3  
i guess the location is 1,0? – Ashwini Chaudhary Sep 18 '12 at 19:08
1  
What do you mean by nested to any depth? Your example is a flat list - you should provide a data structure and desired return value for nested recipes if you want a solution to work with it. – Dave Sep 18 '12 at 19:11
3  
@Dave -- This isn't flat, nor it it a list. It is a tuple which contains tuples. – mgilson Sep 18 '12 at 19:11
    
Could you elaborate on the nested part? When a tuple contains other tuples, does it only contain tuples or also strings? – Martijn Pieters Sep 18 '12 at 19:20
up vote 7 down vote accepted

Recursive multi-location indexing:

import sys
from collections import Sequence,defaultdict

#making code python3-compatible
if sys.version_info[0] == 3:
    basestring = str

def buildLocator(tree):
    locator = defaultdict(list)
    def fillLocator(tree, locator,location):
        for index,item in enumerate(tree):            
            if isinstance(item,basestring):
                locator[item].append(location+(index,))
            elif isinstance(item,Sequence):
                fillLocator(item,locator, location+(index,))
    fillLocator(tree,locator,())
    return locator

RECIPES = (
    ('apple', 'sugar', 'extreme_Force'),
    ('banana', 'syrup', 'magical_ends'),
    ('caramel', 'chocolate', 'pancake_MONSTER'),
    ('banana',('someAnother','banana'))
)
locator = buildLocator(RECIPES)

print(locator['banana'])

prints

[(1, 0), (3, 0), (3, 1, 1)]
share|improve this answer
3  
Better use basestring since this is tagged as python2.7 – mgilson Sep 18 '12 at 19:27
    
@mgilson Thanks for remark. Updated. – Odomontois Sep 18 '12 at 19:38
    
And I thought I was the only one to put superfluous if sys.version_info[0] >= 3 to keep backward compatibility :) – mgilson Sep 18 '12 at 19:40

A generator could do this nicely if you only need the first match:

def find_location(text):
    try:
        return next((i, j) 
            for i, t in enumerate(RECIPES)
            for j, v in enumerate(t)
            if v == text)
    except StopIteration:
        return (None, None)  # not found

Usage:

>>> find_location('banana')
(1, 0)
>>> find_location('apple')
(0, 0)
>>> find_location('chocolate')
(2, 1)
>>> find_location('spam')
(None, None)

Note that the first value is the index into the overal RECIPES sequence, the second is the index into the individual tuple; RECIPES[1][0] == 'banana'

share|improve this answer
    
This is awesome and clean. But the multi location solution was the desired one. :) Thanks! – Nandeep Mali Sep 18 '12 at 20:08

use a for-loop to find if the item exists or not, and break the loop as soon as it is found.

In [48]: RECIPES = (
   ....:     ('apple', 'sugar', 'extreme_Force'),
   ....:     ('banana', 'syrup', 'magical_ends'),
   ....:     ('caramel', 'chocolate', 'pancake_MONSTER'),
   ....: )

In [49]: for i,x in enumerate(RECIPES):
   ....:     if 'banana' in x:
   ....:         print i,x.index('banana')
   ....:         break
   ....:         
   ....:         
1 0
share|improve this answer
1  
You search each row twice; first with an in test, then with .index(). – Martijn Pieters Sep 18 '12 at 19:15
    
This also only works if the recipes are nested 1 level deep. For arbitrary nesting, you need a good bit more work. – mgilson Sep 18 '12 at 19:20
    
@MartijnPieters, true but it may still be fast since I'm sure both in and index are highly optimized. It would be interesting to compare to your solution. – Mark Ransom Sep 18 '12 at 19:22
    
@MarkRansom -- You can get around checking twice by trying index and then catching the ValueError that occurs if the value isn't found ... Of course, except can be expensive, so that might not make it faster ... – mgilson Sep 18 '12 at 19:23
    
@mgilson I was about to write the same thing only(try-except). – Ashwini Chaudhary Sep 18 '12 at 19:24

Why not try numpy?

import numpy as np
RECIPES = (
    ('apple', 'sugar', 'extreme_Force'),
    ('banana', 'syrup', 'magical_ends'),
    ('caramel', 'chocolate', 'pancake_MONSTER'),
)
np_recipes = np.array(recipes)
indices = zip(*np.where( np_recipes == 'banana' ) ) #[(1, 0)]

This works for your example because the data is nicely ordered. I suppose it should be noted that this won't work for arbitrary nestedness as you've asked (but I'll leave it here in case someone else finds this with a similar, more constrained question).

share|improve this answer
    
This is neat. But the data is slightly arbitrary here. I'll gist it for future reference though. You could create a question and answer it yourself for reference. – Nandeep Mali Sep 18 '12 at 19:32

This will find the first occurance recursively:

RECIPES = (
    ('apple', 'sugar', 'extreme_Force'),
    ('banana', 'syrup', 'magical_ends'),
    ('caramel', 'chocolate', 'pancake_MONSTER'),
)

def find_str(seq, s):
    for idx, item in enumerate(seq):
        if hasattr(item, "__iter__"):
            r = find_str(item, s)
            if r is not None:
                 return [idx]+r
        elif item == s:
            return [idx]

print find_str(RECIPES, "banana") # prints [1, 0] 
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.