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Why are string::append operations behaving strangely?

开发者 https://www.devze.com 2022-12-20 03:20 出处:网络
look at the following simple code: #include &l开发者_如何学Pythont;iostream> #include <string>

look at the following simple code:

#include &l开发者_如何学Pythont;iostream>
#include <string>
using namespace std;

int main()
{
    string s("1234567890");
    string::iterator i1 = s.begin();
    string::iterator i2 = s.begin();
    string s1, s2;
    s1.append(i1, ++i1);
    s2.append(++i2, s.end());

    cout << s1 << endl;
    cout << s2 << endl;
}

what would you expect the output to be?

would you, like me, expect it to be:

1
234567890

wrong! it is:

234567890

i.e. the first string is empty.

seams that prefix increment operator is problematic with iterators. or am I missing something?


You're missing something: this really has nothing to do with iterators. The order in which arguments to a function are evaluated is unspecified. As such your: append(i1, ++i1); would depend on unspecified behavior, regardless of the type of i1. Just for example, given something a lot simpler like:

void print(int a, int b) { 
    std::cout << a << " " << b << "\n";
}

int main() { 
    int a =0;
    print(a, ++a);
    return 0;
}

Your output could perfectly reasonably be the "0 1" you seem to expect, but it could also perfectly reasonably be: "1 1". Since this is unspecified, it could change from one version of the compiler to the next, or even with the same compiler when you change flags, or (in theory) could vary depending on the phase of the moon...


C++ implementations are free to evaluate arguments in any order. In this case, if ++i1 is evaluated first, you will get an empty string.


Not a bug.

The order in which the arguments to

s1.append(i1, ++i1);

are evaluated is not specified by the standard. The compiler is free to use any order it chooses. In this case, it evaluates the second argument (++i1) before the first (i1) and you specify a null range to copy.


The C++ standard does not specify anything about the order in which the function arguments are evaluated, making it implementation dependent. C++ requires that the arguments to a function be completely evaluated (and all side-effects posted) prior to entering the function, but the implementation is free to evaluate the arguments in any order

In your case i++ got evaluated before making both the parameters same, resulting in an empty string.

More info on this behavior here on comp.compilers newsgroup

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