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I tested the following two code snippets and found that code snippet A was more efficient than code snippet B. Why? str() has copy operations but rdbuf() don't. Is str("") is more expensive than str()?

code snippet A:

ofstream out("foo.txt");
stringstream ss;
for(int i = 0; i < 300000; i++) {
    // append long text to ss
    out<<ss.str();
    ss.seekp(ios_base::beg);
}
out.close();

code snippet B:

ofstream out("foo.txt");
stringstream ss;
for(int i = 0; i < 300000; i++) {
    // append long text to ss
    out<<ss.rdbuf();
    ss.str("");
}
out.close();
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1  
You are mixing two comparisons here: out<<ss.str() vs out<<ss.rdbuf() and ss.seekp(ios_base::beg) vs ss.str(""). And the first is even more complex, because there's in the same statement a call to a member function (str or rdbuf) plus an output (<<) with 2 different types (string or filebuf*)... –  gx_ Jun 6 '13 at 15:03
    
@gx_ I understand ss.str() means copy and ss.str("") means replacing. So the point is whether replacing is more expensive than copy. –  Andy Huang Jun 6 '13 at 15:33

2 Answers 2

up vote 3 down vote accepted

Two potential differences can be detected:

out<<ss.str(); copies the data as std::basic_string, where out<<ss.rdbuf(); returns a pointer of type std::basic_streambuf<CharT,Traits>

ss.str(""); replaces the content in the stringstream, where ss.seekp(ios_base::beg); only sets the output position indicator

ps.

ss.str("") and ss.str() are two different operations. See: http://en.cppreference.com/w/cpp/io/basic_stringstream/str

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That line by itself shouldn't be that expensive when compared to the rest of the operations though. Personally I would be hesitant to say that the two ways of writing the output are almost equal. Without having looked to deeply into the issue I would think that out<<ss.str() might incur an additional copy when compared to out<<ss.rdbuf(), which might be an nontrivial overhead. –  Grizzly Jun 6 '13 at 15:06
    
@Grizzly agree, ss.str() is a data copy, where ss.rdbuf() is a pointer to the data location –  Enigma Jun 6 '13 at 15:09
    
@Enigma Does it mean that replacement is more expensive than copy in this situation? –  Andy Huang Jun 6 '13 at 15:26

Confusingly, ss.str() does not do the same thing as ss.str(""):

ss.str() returns a copy of the underlying string, whereas ss.str(const string&) changes the underlying storage.

Documentation

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