17

I'm getting a weird problem and I want to know why it behaves like that. I have a class in which there is a member function that returns std::string. My goal to convert this string to const char*, so I did the following

    const char* c;
    c = robot.pose_Str().c_str();  // is this safe??????
    udp_slave.sendData(c);

The problem is I'm getting a weird character in Master side. However, if I do the following

    const char* c;
    std::string data(robot.pose_Str());
    c = data.c_str();
    udp_slave.sendData(c);

I'm getting what I'm expecting. My question is what is the difference between the two aforementioned methods?

  • 6
    I guess pose_Str() return a copy of string. the temporary object is released when pose_Str() returns. so c becomes a wild pointer. – billz May 5 '14 at 3:56
  • @billz, I consider it as the first answer. Thanks. – CroCo May 5 '14 at 4:05
20

It's a matter of pointing to a temporary. If you return by value but don't store the string, it disappears by the next sequence point (the semicolon).

If you store it in a variable, then the pointer is pointing to something that actually exists for the duration of your udp send

Consider the following:

int f() { return 2; }


int*p = &f();

Now that seems silly on its face, doesn't it? You are pointing at a value that is being copied back from f. You have no idea how long it's going to live.

Your string is the same way.

6

.c_str() returns the the address of the char const* by value, which means it gets a copy of the pointer. But after that, the actual character array that it points to is destroyed. That is why you get garbage. In the latter case you are creating a new string with that character array by copying the characters from actual location. In this case although the actual character array is destroyed, the copy remains in the string object.

5

You can't use the data pointed to by c_str() past the lifetime of the std::string object from whence it came. Sometimes it's not clear what the lifetime is, such as the code below. The solution is also shown:

#include <string>
#include <cstddef>
#include <cstring>

std::string foo() { return "hello"; }

char *
make_copy(const char *s) {
    std::size_t sz = std::strlen(s);
    char *p = new char[sz];
    std::strcpy(p, s);
    return p;
}

int
main() {
    const char *p1 = foo().c_str(); // Whoops, can't use p1 after this statement.
    const char *p2 = make_copy(foo().c_str()); // Okay, but you have to delete [] when done.
}
5

From c_str():

The pointer obtained from c_str() may be invalidated by:

  • Passing a non-const reference to the string to any standard library function, or
  • Calling non-const member functions on the string, excluding operator[], at(), front(), back(), begin(), rbegin(), end() and rend().

Which means that, if the string returned by robot.pose_Str() is destroyed or changed by any non-const function, the pointer to the string will be invalidated. Since you may be returning a temporary copy to from robot.pose_Str(), the return of c_str() on it shall be invalid right after that call.

Yet, if you return a reference to the inner string you may be holding, instead of a temporary copy, you can either:

  • be sure it is going to work, in case your function udp_send is synchronous;
  • or rely on an invalid pointer, and thus experience undefined behavior if udp_send may finish after some possible modification on the inner contents of the original string.
3

Q

const char* c;
c = robot.pose_Str().c_str();  // is this safe??????
udp_slave.sendData(c);

A

This is potentially unsafe. It depends on what robot.pose_Str() returns. If the life of the returned std::string is longer than the life of c, then it is safe. Otherwise, it is not.

You are storing an address in c that is going to be invalid right after the statement is finished executing.

std::string s = robot.pose_Str();
const char* c = s.c_str();  // This is safe
udp_slave.sendData(c);

Here, you are storing an address in c that will be valid unit you get out of the scope in which s and c are defined.

  • 2
    Just a comment on saying that is not safe. We cannot tell if it is safe or not simply by that line of code. If robot.pose_Str() is returning reference to robot's member string field, and if robot's life time is longer than c, then it is safe. – Adrian Shum May 5 '14 at 4:05
  • @AdrianShum GOod point. I updated my answer to reflect that. – R Sahu May 5 '14 at 4:08

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