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//sLine is the string
for(int l = 0; l < sLine.length(); l++)
{
    string sNumber;
    if(sLine[l] == '-')
    {   
        sNumber.push_back(sLine[l]);
        sNumber.push_back(sLine[l + 1]);
        l++;
    }
    else if(sLine[l] != '\t')
    {
        sNumber.push_back(sLine[l]);
    }
    const char* testing = sNumber.c_str();
    int num = atoi(testing);
    cout << num;
}

I have this for-loop which checks each character of the string and converts every number in this string to be a int. But for some reason, the atoi function is doing it twice so when I cout it, it displays it twice for some reason... Why is that?

example: INPUT 3 3 -3 9 5
-8 -2 9 7 1
-7 8 4 4 -8
-9 -9 -1 -4 -8

OUTPUT 3030-309050 -80-20907010
-70804040-80
-90-90-10-40-80

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3  
sNumber.push_back(sLine[l + 1]); may access beyond the string end. –  Vlad Nov 4 '11 at 18:57
    
@Vlad But i've put that there because of negative numbers... –  Danny Nov 4 '11 at 18:58
    
It's executing the entire loop twice. –  Mooing Duck Nov 4 '11 at 18:58
3  
std::string s = "45"; int i = boost::lexical_cast<int>(s); btw –  Tom Kerr Nov 4 '11 at 18:59
2  
Why so complicated?? –  Kerrek SB Nov 4 '11 at 19:00
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4 Answers

up vote 10 down vote accepted

It's displaying a zero for all nonrecognized characters, because atoi returns 0 when given a non-numeric string (like a space!)

However, what you want to do, is shockingly simple:

std::stringstream ss(sLine);
int num;
while(ss >> num) {
    cout << num;
}
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Move this:

const char* testing = sNumber.c_str();
int num = atoi(testing);
cout << num;

Below the last } in the code you pasted, i.e. out of the for-loop. Currently you get a separate printout for every character in sLine because it's executed on every iteration of the loop. (The last character in sLine may be a linefeed so this can occur even if you think you wrote only one digit.)

Edit: Also move the declaration of sNumber above the for-loop.

You may also want to change if (sLine[l] == '-') to if (sLine[l] == '-' && (l + 1) < sLine.length()) so you don't access beyond the end of the string if the dash is the final character on the line.

You may also want to rename the variable l to something that looks less like a 1. =)

You may also want to rethink if this is the right way to do this at all (usually if a simple thing gets this complicated, chances are you're doing it wrong).

share|improve this answer
    
sNumber would be out of scope there –  Mooing Duck Nov 4 '11 at 19:00
    
Noted and edited, thanks. –  Arkku Nov 4 '11 at 19:06
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You output extra 0 for the characters which are not digits. The problem is that atoi returns 0 when it cannot convert the input, so your whitespaces are printed as zeroes.

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That seems like a painful way to recreate the wheel. You'd be better off using a stringstream to parse this.

std::stringstream strm(sLine);
int num;
while(strm >> num)
{
    std::cout << num << std::endl;
}
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3  
Please don't encourage the use eof() or fail() as loop conditions. Doing so almost always results in buggy code. Rather do while ( strm >> num ) { ... } . For a demonstration of the evil power of eof(): ideone.com/ZKa67 –  Robᵩ Nov 4 '11 at 19:25
    
@Rob Thanks for the demonstration. Will edit the answer. –  Jon Nov 4 '11 at 19:44
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