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Simple question: If I have a string and I want to add to it head and tail strings (one in the beginning and the other at the end), what would be the best way to do it? Something like this:

std::string tmpstr("some string here");
std::string head("head");
std::string tail("tail");
tmpstr = head + tmpstr + tail;

Is there any better way to do it?

Thanks in advance.

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The result of operator+() is always a temporary (rvalue). Absent of C++1x rvalue references, if you don't need to further modify the result, you can probably optimize away one superflous copying by storing the result in a const reference, instead of copying it into an object: const T& result = a + b; This will bind the temporary to the refrence and extend its lifetime accordingly. While your compiler might optimize out this one copy anyway (unlikely with strings, I'd say), so you might not gain anything, using this technique won't hurt performance. –  sbi Aug 16 '09 at 20:55

3 Answers 3

up vote 21 down vote accepted

If you were concerned about efficiency and wanted to avoid the temporary copies made by the + operator, then you could do:

tmpstr.insert(0, head);
tmpstr.append(tail);

And if you were even more concerned about efficiency, you might add

tmpstr.reserve(head.size() + tmpstr.size() + tail.size());

before doing the inserting/appending to ensure any reallocation only happens once.

However, your original code is simple and easy to read. Sometimes that's "better" than a more efficient but harder to read solution.

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2  
+1 for easier to read. That's what really counts. –  Greg Hewgill Aug 16 '09 at 1:16
    
great answer! thanks! Thanks also for discussing both issues or readability and efficiency. –  Andrew Aug 16 '09 at 1:40
    
checked with profiler. depends on compilator but in my case this approach is far more efficient. –  Andrew Aug 17 '09 at 8:21

An altogether different approach:

#include <iostream>
#include <string>
#include <sstream>

int
main()
{
  std::string tmpstr("some string here");
  std::ostringstream out;
  out << head << tmpstr << tail;
  tmpstr = out.str(); // "headsome string heretail"

  return 0;
}

An advantage of this approach is that you can mix any type for which operator<< is overloaded and place them into a string.

  std::string tmpstr("some string here");
  std::ostringstream out;
  int head = tmpstr.length();
  char sep = ',';
  out << head << sep << tmpstr;
  tmpstr = out.str(); // "16,some string here"
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You could append the tail and then cocatenate the string, like this:

tmpstr.append(tail);
tmpstr = head + tmpstr;

It would probably be better to just create a new string at that point.

std::string finalstr(head.length() + tmpstr.length() + 1);
finalstr = head + tmpstr;
share|improve this answer
    
Um, that std::string ctor taking a std::string::size_type does this really reserve??? (Yeah, I know I could look it up. Sorry for being lazy.) –  sbi Aug 17 '09 at 18:56
    
OK, so I looked it up this morning and found that there is no ctor taking only a std::string::size_type, so the code is wrong. (You'*d have to call reserve() after using the dctor.) –  sbi Aug 18 '09 at 8:50
    
There is a constructor that takes (size_t, char) which you can use. I omitted the comma and the '\0' because I assumed you understood. length() returns the length of the string, not a special type. –  Hooked Aug 18 '09 at 12:26
    
std::string finalstr(head.length() + tmpstr.length() + 1, '\0'); Also, don't downvote me if you do not understand what you are talking about. –  Hooked Aug 18 '09 at 12:27
    
@Hooked: Even if we allow for you omitting the second parameter, the ctor taking a std::string::size_type and a char affects the string's size (changed in the very next line), not its capacity. I downvoted, not you, but your answer -- and I did so after I checked the facts, BTW -- because the answer's code doesn't compile. The code in your comment would compile, but, as I said, would be wrong. –  sbi Aug 19 '09 at 11:29

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