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While compiling the following code i am not getting an syntax error but not all results. The point of the program is to check a string sequence, find some specific substrings in it and print a resulting string having the substring and 19 characters following it. Print each time those strings occurs and every resulting string.

here is the code..

x=raw_input('GET STRING:: ');
m=len(x);
k=0;
while(k<m):
    if('AAT'in x or 'AAC' in x or 'AAG' in x):
        start = x.find('AAT') or x.find('AAC') or x.find('AAG')
        end=start+19
        print x[start:end]

When I'm inputting a string like ATGGAATCTTGTGATTGCATTGACACGCCATGCCCTGGTGAAGAACTCTTAGTGAAATATCAGTATATCT. It only searches for AAT and prints the resulting substring but not AAG and AAC. Can anyone help me implement the operator???

share|improve this question
3  
When the match is not found, find returns -1 which is not a falsey value. – Waleed Khan Feb 21 '13 at 12:42
    
where is k ???? – Arpit Feb 21 '13 at 12:44
3  
You use k but don't give it a value. – f p Feb 21 '13 at 12:44
    
The semicolons in your code are completely unneccessary - you only need then if you want to execute multiple statements in one line, e.g. print(1); print(2) – l4mpi Feb 21 '13 at 13:06
    
@l4mpi its an old habit.. Tend to give semi colons everywhere – Sam Fisher Feb 21 '13 at 13:41

In your example, it's probably better to use a regular expression.

>>> text = 'ATGGAATCTTGTGATTGCATTGACACGCCATGCCCTGGTGAAGAACTCTTAGTGAAATATCAGTATATCT'
>>> re.search('(?:AA[TCG])(.{19})', text).group(1)
'CTTGTGATTGCATTGACAC'

You could change to re.findall if multiple matches are desired from the string. (But this won't work too well if you want over lapping matches (ie, your string of 3 appears again in the 19).

share|improve this answer
    
I want to print all the matches not just one – Sam Fisher Feb 21 '13 at 13:18
    
@SamFisher is this output you want ideone.com/U70n4y – Arpit Feb 21 '13 at 13:24
    
@arpit Your output contains more than 22 chars... – Sam Fisher Feb 21 '13 at 13:38
    
@SamFisher Check the link again. EXAct 22 chars. – Arpit Feb 21 '13 at 13:43
    
@arpit But did not detect overlapping substring. Anyways thanks for your help i did it with re.search as said above. – Sam Fisher Feb 21 '13 at 13:47

search for the first occurrence starting from k

mystring=raw_input('GET STRING:: ')
m=len(mystring)
k=0
while(k<m):
   x=mystring[k:]
   start=min(x.find('AAT'),x.find('AAC'),x.find('AAG'))
   end=min(start+19,m)
   print x[start:end]
   k+=start+1
share|improve this answer
    
I did this and It gives an infinite loop with same results – Sam Fisher Feb 21 '13 at 13:08
    
@olivier: last line should be: k = k + end (because end is the position relative to k) – Klas Lindbäck Feb 21 '13 at 13:13
    
@KlasLindbäck It worked.. Thanks!!! – Sam Fisher Feb 21 '13 at 13:30
    
@KlasLindbäck But this code doesn't take overlapping matches.. – Sam Fisher Feb 21 '13 at 13:39
    
If you want overlapping matches, just change the last line to: k = k + start + 1 – Klas Lindbäck Feb 21 '13 at 14:23

You should set start to the minimum non-negative value of the three find statements.

share|improve this answer
    
i just posted a part of the total code.. k is assigned 0.. I want the program to look up those 3 sub strings and print the resulting 19 char string each time the program find one of those 3 substring.. – Sam Fisher Feb 21 '13 at 12:55
    
olivier has posted a solution implemented according to my answer. It should work provided k is updated correctly. – Klas Lindbäck Feb 21 '13 at 13:20

You can handle overlapping matches with regular expressions that use lookahead assertions together with a capturing group:

>>> import re
>>> regex = re.compile("(?=(AA[TCG].{19}))")
>>> regex.findall("ATGGAATCTTGTGATTGCATTGACACGCCATGCCCTGGTGAAGAACTCTTAGTGAAATATCAGTATATCT")
['AATCTTGTGATTGCATTGACAC', 'AAGAACTCTTAGTGAAATATCA', 'AACTCTTAGTGAAATATCAGTA']
>>>
share|improve this answer

How about this:

import re

str= "ATGGAATCTTGTGATTGCATTGACACGCCATGCCCTGGTGAAGAACTCTTAGTGAAATATCAGTATATCT"
alist = ['AAT','AAC','AAG']
newlist= [re.findall(e,str) for e in alist] 
Output: [['AAT','AAT'],['AAC'],['AAG']]. 

Here a bit heavier with indexes:

import re
astr= "ATGGAATCTTGTGATTGCATTGACACGCCATGCCCTGGTGAAGAACTCTTAGTGAAATATCAGTATATCT"
def find_triple_base(astr, nth_sub):
    return [(m.end(), m.group(), astr[m.end(0):m.end(0)+nth_sub]) for m in re.finditer(r'AA[TCG]', astr)]
for e in find_triple_base(astr, 19): print(e)
Output:
(7, 'AAT', 'CTTGTGATTGCATTGACAC')
(43, 'AAG', 'AACTCTTAGTGAAATATCA')
(46, 'AAC', 'TCTTAGTGAAATATCAGTA')
(58, 'AAT', 'ATCAGTATATCT')

What it does: findall finds all occurences of your base triples (alist) you'd like to find and generates a new list with 3 lists with base triples eg [['AAT','AAT'],['AAC'],['AAG']]. It's straight forward to print this out.

I hope this helps!

share|improve this answer
    
re.findall doesn't takes the overlapping substrings into consideration – Sam Fisher Feb 21 '13 at 13:56
    
What does that exactly mean? i.e. in the given string there are two occurences of AAT, both were found. What substrings are you looking for? Just to clear that :) – SaCry Feb 21 '13 at 14:16

Have a look on this : http://ideone.com/U70n4y

Code:

x=raw_input('GET STRING:: ');
m=len(x);
k=0
if('AAT'in x ):
    start = x.find('AAT')
    end=start+19
    print x[start:end]

elif('AAC' in x ):
    start = x.find('AAC')
    end=start+19
    print x[start:end]

elif('AAG' in x):
    start = x.find('AAG')
    end=start+19
    print x[start:end]

Edit : try this regexp code

import re
y=r"(?:AA[TCG]).{19}"
x=raw_input('GET STRING:: ');
l= re.findall(y,x)
for x in l:
    print x
    print len(x)

http://ideone.com/U70n4y

share|improve this answer
    
@downvoter comments are welcome. – Arpit Feb 21 '13 at 12:58
    
I'm not sure this is what OP actually wants (the 'elif' part instead of successive ifs), and even if it is, your code is horrible and should really use a loop. – l4mpi Feb 21 '13 at 12:59
    
@l4mpi actually he doesn't say about k. but after reading his comments. i made the appropriate correction. – Arpit Feb 21 '13 at 13:02
    
@arpit k is 0 as ive said and I would like to use a loop because what ive given is just a part of the program. THere are calculations later on which cannot be implemented like this – Sam Fisher Feb 21 '13 at 13:10
    
@SamFisher i'm answering the problem you asked in ques. if you want the suggestion for searching in this string then the ans differ. change your ques. title according to your real problem. – Arpit Feb 21 '13 at 13:19

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