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I'm trying to see if the end of the string being read is a ". If it isn't, I want it to print out something.

if(!line.find_last_of("\"")) {
    cout << "Extra parameter is typed."; 
    continue;

I was trying to use find_last_of but when I run it extra parameter is printed no matter if it the command has extra parameters. Example:

lc "file.txt"   -suppose to true so it's suppose to continue program but returns false
lc "file.txt" lk  - suppose to return false and it does but should only return false for this type of case.
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2  
Return value: position of the found character or npos if no such character is found. You should be checking it against != std::string::npos, which I believe is -1, which doesn't suit your condition. –  chris Sep 13 '12 at 23:39
    
@chris This is true although not sufficient, since he needs to check that it is at the end of his string, not just somewhere in his string. –  Ivan Sep 13 '12 at 23:49
    
@Ivan, Yes, I was merely commenting. I guess I should have made it clear that checking against npos is the way to go for just finding a string, but here, other return values are of use as well. –  chris Sep 13 '12 at 23:51

3 Answers 3

up vote 6 down vote accepted

Although I think @Jonathon Seng's answer is good (and have up-voted it), I think there's another possibility that might be worth mentioning. Instead of mystring.at(mystring.length()-1), you could use *mystring.rbegin():

if (*line.rbegin() == '"') ...

Of course, you still have to check that the string isn't empty as well. For this, I'd normally prefer !line.empty() over line.length() > 0, so the final version becomes:

if (!line.empty() && *line.rbegin() == '"') {
    // whatever
}

Edit: note that the test for !line.empty() must be first. && evaluates its left operand, and then if (and only if) that evaluates to true, evaluates its right operand. We need to verify that the line isn't empty first, then check the character only if the string isn't non-empty.

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1  
This is shorter and cleaner. –  Jonathan Seng Sep 14 '12 at 0:21

You could compare line.at(line.length() - 1) to '"' (after establishing line.length() > 0).

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line.length() could be also equal to 1 –  Zaffy Sep 13 '12 at 23:40
    
Then it would test position 0, which is the last position. That wasn't mentioned as invalid, so I didn't assume it. –  Jonathan Seng Sep 13 '12 at 23:42
    
You dont understand. You have a mistake in code. line.length() should be >= not just > than 1 –  Zaffy Sep 13 '12 at 23:44
    
@quarry Yeah... Fixed it to > 0. How silly of me. –  Jonathan Seng Sep 13 '12 at 23:46

One way to do this might be

if( (!(line.find_last_of("\"") == line.length() - 1)) && (line.length() > 0) ) {
   <do your stuff>;
}

Since string::find_last_of() returns the last position of the given character if it is found (at least once) anywhere in the line. So if it is the second-to-last character, it will return line.length()-2 which will cause your boolean expression (the if condition) to behave the same way as it if was the last character.

Checking that line.length() is greater than zero is essential as if line.length() == 0, this may return true since string::find_last_of() returns string::npos (which typically equals -1) if it cannot find the matching pattern.

Also don't forget to null-check line but that's a given if you like programming defensively.

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Wouldnt be easier just check last character equality to " ? –  Zaffy Sep 13 '12 at 23:49
    
Probably faster (performance-wise) although I would argue that unless this is in the inner loop of some very fast piece of code that's probably premature optimization. I personally prefer to avoid directly accessing string types as character arrays (using string::at() etc.) where possible. There's nothing inherently wrong with it but I've shot myself in the foot doing character fetching from a specified index too often. It's easy to mess up your math and walk off the end of the string (throws an exception). I'd prefer to use an approach that requires less math :) –  Ivan Sep 13 '12 at 23:50

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