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I am just curious about the implementation of c++ string +=.

Is there any performance penalty for this? Which one is supposed to be faster?

String a = "xxx";
a += "(" + "abcd" + ")"

or

String a = "xxx";
a.append("(");
a.append("abcd");
a.append(")");
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2  
Have a look at this: [Efficient string concatenation in C++][1] [1]: stackoverflow.com/questions/611263/… It explains it very well.:) – SpyrosR Nov 28 '12 at 3:22
1  
@SpyrosR: It does explain it well, but for a different operator. – NPE Nov 28 '12 at 6:55
    
THanks! Actually my question is not well described... I changed it now and found the answer from what @SpyrosR posted. – WhatABeautifulWorld Nov 28 '12 at 17:49

Given that they have word-for-word identical specs in the standard, it's hard to envisage a reasonable implementation where their runtime cost would differ:

21.4.6 basic_string modifiers [string.modifiers]

21.4.6.1 basic_string::operator+= [string::op+=]

basic_string& operator+=(const basic_string& str);

1 Effects: Calls append(str.data, str.size()).

2 Returns: *this

...

21.4.6.2 basic_string::append [string::append]

basic_string& append(const basic_string& str);

1 Effects: Calls append(str.data(), str.size()).

2 Returns: *this.

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I'd be very surprised if the += operator wasn't implemented by a call to append.

In fact, SGI's documentation for basic_string indicates that:

basic_string& operator+=(const basic_string& s) Equivalent to append(s).

Furthermore, the code reads:

basic_string& operator+=(const basic_string& __s) { return append(__s); }

http://www.sgi.com/tech/stl/string

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The C++ stdlib is no direct copy of SGI's interface. Better use en.cppreference.com/w/cpp/string/basic_string/operator%2B%3D as reference, which tells basically the same. – Kay Feb 27 '13 at 3:08

There are no difference between them, In fact += operator's implemention just invoke append. I read it from the STL code.

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4  
Just for reference, STL is not the C++ Standard Library. – Xymostech Nov 28 '12 at 3:21

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