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I have a file that has sequence on line 2 and variable called tokenizer, which give me an old position value. I am trying to find the new position.. For example tokenizer for this line give me position 12, which is E by counting letters only until 12. So i need to figure out the new position by counting dashes...

---------------LL---NE--HVKTHTEEK---PF-ICTVCR-KS----------

This is what i have so far it still doesn't work.

with open(filename) as f:
    countletter = 0
    countdash = 0
    for line, line2 in itertools.izip_longest(f, f, fillvalue=''):
        tokenizer=line.split()[4]
        print tokenizer

        for i,character in enumerate(line2):

            for countletter <= tokenizer:

                if character != '-': 
                    countletter += 1
                if character == '-':
                    countdash +=1

my new position should be 32 for this example

share|improve this question
    
What does for countletter <= tokenizer: mean? –  Greg Hewgill Jul 30 '12 at 20:41
    
any reason you can't just iterate over the string? for c in line2 –  Wug Jul 30 '12 at 20:44
    
@GregHewgill the indent was wrong. but for count letter <= tokenizer.. i am trying to make the program count the dashes, once the program count letter and reaches 12.. it should stop and tell me how many dashes it count.. but right now i have syntax error on <= i don't know why –  Chad D Jul 30 '12 at 20:46
    
@Wug i can use c in line2 –  Chad D Jul 30 '12 at 20:48
    
I guess I'm just not following. Which part doesn't work? –  Wug Jul 30 '12 at 20:50

3 Answers 3

up vote 1 down vote accepted

First answer, edited by Chad D to make it 1-indexed (but incorrect):

def get_new_index(string, char_index):
    chars = 0
    for i, char in enumerate(string):
        if char != '-':
            chars += 1
        if char_index == chars:
            return i+1

Rewritten version:

import re

def get(st, char_index):
    chars = -1
    for i, char in enumerate(st):
        if char != '-':
            chars += 1
        if char_index == chars:
            return i

def test():
    st = '---------------LL---NE--HVKTHTEEK---PF-ICTVCR-KS----------'
    initial = re.sub('-', '', st)
    for i, char in enumerate(initial):
        print i, char, st[get_1_indexed(st, i)]

def get_1_indexed(st, char_index):
    return 1 + get(st, char_index - 1)

def test_1_indexed():
    st = '---------------LL---NE--HVKTHTEEK---PF-ICTVCR-KS----------'
    initial = re.sub('-', '', st)
    for i, char in enumerate(initial):
        print i+1, char, st[get_1_indexed(st, i + 1) - 1]
share|improve this answer
    
Thank you very much :) –  Chad D Jul 30 '12 at 22:04
    
This function returns the index of a dash character using the OP's provided string for inputs 0, 2, 4, 13, 15, and 21. use print(string[get_new_index(string, char_index)]) to verify. Also, you shouldn't use string as a variable name because it is the name of a built in module. –  Wug Jul 31 '12 at 14:50
    
Also, this function will fail if you request the zeroth item in a string that begins with a letter. –  Wug Jul 31 '12 at 15:30
    
All good points, Wug, thank you. Chad had edited my response to return i + 1 instead of return i, but even so, my answer was providing the character before the one it should provide. Initializing chars to -1 solved that issue. –  Brenden Brown Aug 1 '12 at 22:25

my original text looks like this and the position i was interested in was 12 which is 'E'

Actually, it's K, assuming you're using zero indexed strings. Python uses zero indexing so unless you're jumping through hoops to 1-index things (and you're not) it will give you K. If you were running into issues, try addressing this.

Here's some code for you that does what you need it to (albeit with 0-indexing, not 1-indexing). This can be found online here:

def get_new_index(oldindex, str):
    newindex = 0

    for c in str:
        if c != '-':
            if oldindex == 0:
                return newindex
            oldindex -= 1
        newindex += 1

    return 1 / 0 # throw a shitfit if we don't find the index
share|improve this answer
    
Could you please tell me what is the idea behind your code. it works but I'm lost from retune new index until return 1/0 –  Chad D Jul 30 '12 at 21:47
    
Rather than keeping a count of the letters we have found and counting up until the count matches the number we were looking for, the number we were looking for is counted down until it reaches zero, at which point we have found the right number of letters. the newindex variable tracks the total number of characters we have found (including dashes). –  Wug Jul 30 '12 at 22:13
    
I found a bug on you code.. it wouldn't work on the index with that has dashes follow by the letter of that particular index –  Chad D Jul 31 '12 at 5:25
    
Please cite an example. –  Wug Jul 31 '12 at 14:48
    
For example, given the same sequence(string) as above if the old index = 4, 15 ( or any old index that has dashes follow in this sequences) The program will run until it sees new letter.. so the count of new index is a bit off –  Chad D Jul 31 '12 at 16:20

This is a silly way to get the second line, it would be clearer to use an islice, or next(f)

for line, line2 in itertools.izip_longest(f, f, fillvalue=''):

Here count_letter seems to be an int while tokenizer is a str. Probably not what you expect.

    for countletter <= tokenizer:

It's also a syntax error, so I think this isn't the code you are running

Perhaps you should have

tokenizer = int(line.split()[4]) 

to make tokenizer into an int

print tokenizer can be misleading because int and str look identical, so you see what you expect to see. Try print repr(tokenizer) instead when you are debugging.

once you make sure tokenizer is an int, you can change this line

    for i,character in enumerate(line2[:tokenizer]):
share|improve this answer
    
What would you do differently for >>for line, line2 in itertools.izip_longest(f, f, fillvalue=''): and thanks for advices –  Chad D Jul 30 '12 at 21:53
    
@ChadD, line = next(f); line2 = next(f) over two lines –  gnibbler Jul 30 '12 at 21:55

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