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

I am working on some FASTA-like sequences (not FASTA, but something I have defined that's similar for some culled PDB from the PISCES server).

I have a question. I have a small no of sequences called nCatSeq, for which there are MULTIPLE nBasinSeq. I go through a large PDB file and I want to extract for each nCatSeq the corresponding nBasinSeq without redundancies in a dictionary. The code snippet that does this is given below.

nCatSeq=item[1][n]+item[1][n+1]+item[1][n+2]+item[1][n+3]
nBasinSeq=item[2][n]+item[2][n+1]+item[2][n+2]+item[2][n+3]
if nCatSeq not in potBasin:
    potBasin[nCatSeq]=nBasinSeq
else:   
    if nBasinSeq not in potBasin[nCatSeq]:
        potBasin[nCatSeq]=potBasin[nCatSeq],nBasinSeq
    else:
        pass

I get the following as the answer for one nCatSeq,

'4241': ((('VUVV', 'DDRV'), 'DDVG'), 'VUVV')

what I want however is :

'4241': ('VUVV', 'DDRV', 'DDVG', 'VUVV')

I don't want all the extra brackets due to the following command

potBasin[nCatSeq]=potBasin[nCatSeq],nBasinSeq 

(see above code snippet)

Is there a way to do this ?

share|improve this question
up vote 1 down vote accepted

You can add them as tuples:

if nCatSeq not in potBasin:
    potBasin[nCatSeq] = (nBasinSeq,)
else:
    if nBasinSeq not in potBasin[nCatSeq]:
        potBasin[nCatSeq] = potBasin[nCatSeq] + (nBasinSeq,)

That way, rather than:

(('VUVV', 'DDRV'), 'DDVG')
# you will get
('VUVV', 'DDRV', 'DDVG') # == ('VUVV', 'DDRV')+ ('DDVG',)
share|improve this answer
    
Thank you guys, Hayden--I used your suggestion and it seems to be just what I needed ! Thank you very much. – user1729355 Oct 8 '12 at 17:51

The problem is putting a comma to "append" an element just creates a new tuple every time. To solve this you use lists and append:

nCatSeq=item[1][n]+item[1][n+1]+item[1][n+2]+item[1][n+3]
nBasinSeq=item[2][n]+item[2][n+1]+item[2][n+2]+item[2][n+3]
if nCatSeq not in potBasin:
    potBasin[nCatSeq]=[nBasinSeq]
elif nBasinSeq not in potBasin[nCatSeq]:
        potBasin[nCatSeq].append(nBasinSeq)

Even better would be to instead of making potBasin a normal dictionary, replace it with a defaultdict. The code can then be simplified to:

# init stuff
from collections import defaultdict
potBasin = defaultdict(list)

# inside loop
nCatSeq=item[1][n]+item[1][n+1]+item[1][n+2]+item[1][n+3]
nBasinSeq=item[2][n]+item[2][n+1]+item[2][n+2]+item[2][n+3]
potBasin[nCatSeq].append(nBasinSeq)
share|improve this answer

Your question boils down to flattening a nested list and eliminating redundant entries:

def flatten(nested, answer=None):
    if answer is None:
        answer = []
    if nested == []:
        return answer
    else:
        n = nested[0]
        if is instance(n, tuple):
            return flatten(nested[1:], nested(n[0], answer))
        else:
            return flatten(nested[1:], answer+n[0])

So, with your nested dictionary:

for k in nested_dict:
    nested_dict[k] = tuple(flatten(nested_dict[k]))

if you want to eliminate duplicate entries:

for k in nested_dict:
    nested_dict[k] = tuple(set(flatten(nested_dict[k])))

Hope this helps

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.