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I have this really simple c++ function I wrote myself.
It should just strip the '-' characters out of my string.
Here's the code

char* FastaManager::stripAlignment(char *seq, int seqLength){
    char newSeq[seqLength];
    int j=0;
    for (int i=0; i<seqLength; i++) {
        if (seq[i] != '-') {
            newSeq[j++]=seq[i];
        }
    }

    char *retSeq = (char*)malloc((--j)*sizeof(char));
    for (int i=0; i<j; i++) {
        retSeq[i]=newSeq[i];
    }
    retSeq[j+1]='\0'; //WTF it keeps reading from memory without this
    return retSeq;
}

I think that comment speaks for itself.
I don't know why, but when I launch the program and print out the result, I get something like

'stripped_sequence''original_sequence'

However, if I try to debug the code to see if there's anything wrong, the flows goes just right, and ends up returning the correct stripped sequence.

I tried to print out the memory of the two variables, and here are the memory readings

memory for seq: http://i.stack.imgur.com/dHI8k.png

memory for *seq: http://i.stack.imgur.com/UqVkX.png

memory for retSeq: http://i.stack.imgur.com/o9uvI.png

memory for *retSeq: http://i.stack.imgur.com/ioFsu.png

(couldn't include links / pics because of spam filter, sorry)

This is the code I'm using to print out the strings

for (int i=0; i<atoi(argv[2]); i++) {
    char *seq;
    if (usingStructure) {
        seq = fm.generateSequenceWithStructure(structure);            
    }else{
        seq = fm.generateSequenceFromProfile();
    }
    cout<<">Sequence "<<i+1<<": "<<seq<<endl;
}

Now, I have really no idea about what's going on.

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4  
can you use std::string instead of char*? –  Karl von Moor Feb 13 '12 at 11:29
    
Sure, I guess.. But I want to figure out what's going on here! –  XelharK Feb 13 '12 at 11:32
    
This is not valid standard C++. Standard C++ does not offer variable length arrays. –  sellibitze Feb 13 '12 at 11:40
    
sizeof(char) is always 1 -- by definition –  sellibitze Feb 13 '12 at 11:41
    
--j is totally wrong –  sellibitze Feb 13 '12 at 11:43

3 Answers 3

up vote 1 down vote accepted

This happens because you put the terminating zero of a C string outside the allocated space. You should be allocating one extra character at the end of your string copy, and adding '\0' there. Or better yet, you should use std::string.

char *retSeq = (char*)malloc((j+1)*sizeof(char));
for (int i=0; i<j; i++) {
    retSeq[i]=newSeq[i];
}
retSeq[j]='\0';

it keeps reading from memory without this

This is by design: C strings are zero-terminated. '\0' signals to string routines in C that the end of the string has been reached. The same convention holds in C++ when you work with C strings.

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Thanks, you gave me the answer I was looking for! –  XelharK Feb 13 '12 at 11:41
    
@dasblinkenlight your example code can be shortened a bit by using strncpy. –  Mr Lister Feb 13 '12 at 11:52
    
@MrLister This is mostly OP's code, lines 10..14 from the post. All I did was correcting it slightly to avoid the off-by-one error: removed --, added +1 in one place, and removed +1 in the other. I understand that it could be optimized, but I wanted to stay as close as possible to the original. –  dasblinkenlight Feb 13 '12 at 11:58

If you can use std::string, simply do this:

std::string FastaManager::stripAlignment(const std::string& str)
{
   std::string result(str);
   result.erase(std::remove(result.begin(), result.end(), '-'), result.end());
   return result;
}

This is called "erase-remove idiom".

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Personally, I think you would be best off using std::string unless you have really very good reason otherwise:

std::string FastaManager::stripAlignment(std::string value)
{
    value.erase(std::remove(value.begin(), value.end(), value.begin(), '-'), value.end());
    return value;
}

When you are using C strings you need to realize that they are null-terminated: C strings reach up to the first null character found. With code you posted you introduced an out of range assignment as you allocated 'j' elements and you assign to retSeq[j + 1] which is two character past the end of the string (surely you mean retSeq[j] = 0; anyway).

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