Full-expression boundaries and lifetime of temporaries [duplicate]
https://stackoverflow.com/questions/5459759
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13-11-2019 - |
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Possible Duplicate:
C++: Life span of temporary arguments?
It is said that temporary variables are destroyed as the last step in evaluating the full-expression, e.g.
bar( foo().c_str() );
temporary pointer lives until bar returns, but what for the
baz( bar( foo().c_str() ) );
is it still lives until bar returns, or baz return means full-expression end here, compilers I checked destruct objects after baz returns, but can I rely on that?
Solution
Temporaries life until the end of the full expression in which they are created. A "full expression" is an expression that's not a sub-expression of another expression.
In baz(bar(...));, bar(...) is a subexpression of baz(...), while baz(...) is not a subexpression of anything. Therefore, baz(...) is the full expression, and all temporaries created during the evaluation of this expression will not be deleted until after baz(...) returned.
OTHER TIPS
As the name suggests, the full-expression is all of the expression, including the call to baz(), and so the temporary will live until the call to baz() returns.
