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<head>
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<title>Using the GNU Compiler Collection (GCC): Template Instantiation</title>
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<meta name="description" content="Using the GNU Compiler Collection (GCC): Template Instantiation">
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<link href="Option-Index.html#Option-Index" rel="index" title="Option Index">
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<link href="index.html#SEC_Contents" rel="contents" title="Table of Contents">
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<link href="C_002b_002b-Extensions.html#C_002b_002b-Extensions" rel="up" title="C++ Extensions">
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<body lang="en" bgcolor="#FFFFFF" text="#000000" link="#0000FF" vlink="#800080" alink="#FF0000">
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<a name="Template-Instantiation"></a>
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<div class="header">
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<p>
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Next: <a href="Bound-member-functions.html#Bound-member-functions" accesskey="n" rel="next">Bound member functions</a>, Previous: <a href="C_002b_002b-Interface.html#C_002b_002b-Interface" accesskey="p" rel="prev">C++ Interface</a>, Up: <a href="C_002b_002b-Extensions.html#C_002b_002b-Extensions" accesskey="u" rel="up">C++ Extensions</a> [<a href="index.html#SEC_Contents" title="Table of contents" rel="contents">Contents</a>][<a href="Option-Index.html#Option-Index" title="Index" rel="index">Index</a>]</p>
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</div>
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<hr>
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<a name="Where_0027s-the-Template_003f"></a>
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<h3 class="section">7.5 Where’s the Template?</h3>
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<a name="index-template-instantiation"></a>
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<p>C++ templates were the first language feature to require more
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intelligence from the environment than was traditionally found on a UNIX
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system. Somehow the compiler and linker have to make sure that each
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template instance occurs exactly once in the executable if it is needed,
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and not at all otherwise. There are two basic approaches to this
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problem, which are referred to as the Borland model and the Cfront model.
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</p>
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<dl compact="compact">
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<dt>Borland model</dt>
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<dd><p>Borland C++ solved the template instantiation problem by adding the code
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equivalent of common blocks to their linker; the compiler emits template
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instances in each translation unit that uses them, and the linker
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collapses them together. The advantage of this model is that the linker
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only has to consider the object files themselves; there is no external
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complexity to worry about. The disadvantage is that compilation time
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is increased because the template code is being compiled repeatedly.
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Code written for this model tends to include definitions of all
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templates in the header file, since they must be seen to be
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instantiated.
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</p>
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</dd>
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<dt>Cfront model</dt>
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<dd><p>The AT&T C++ translator, Cfront, solved the template instantiation
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problem by creating the notion of a template repository, an
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automatically maintained place where template instances are stored. A
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more modern version of the repository works as follows: As individual
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object files are built, the compiler places any template definitions and
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instantiations encountered in the repository. At link time, the link
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wrapper adds in the objects in the repository and compiles any needed
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instances that were not previously emitted. The advantages of this
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model are more optimal compilation speed and the ability to use the
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system linker; to implement the Borland model a compiler vendor also
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needs to replace the linker. The disadvantages are vastly increased
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complexity, and thus potential for error; for some code this can be
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just as transparent, but in practice it can been very difficult to build
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multiple programs in one directory and one program in multiple
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directories. Code written for this model tends to separate definitions
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of non-inline member templates into a separate file, which should be
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compiled separately.
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</p></dd>
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</dl>
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<p>G++ implements the Borland model on targets where the linker supports it,
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including ELF targets (such as GNU/Linux), Mac OS X and Microsoft Windows.
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Otherwise G++ implements neither automatic model.
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</p>
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<p>You have the following options for dealing with template instantiations:
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</p>
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<ol>
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<li> Do nothing. Code written for the Borland model works fine, but
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each translation unit contains instances of each of the templates it
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uses. The duplicate instances will be discarded by the linker, but in
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a large program, this can lead to an unacceptable amount of code
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duplication in object files or shared libraries.
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<p>Duplicate instances of a template can be avoided by defining an explicit
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instantiation in one object file, and preventing the compiler from doing
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implicit instantiations in any other object files by using an explicit
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instantiation declaration, using the <code>extern template</code> syntax:
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</p>
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<div class="smallexample">
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<pre class="smallexample">extern template int max (int, int);
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</pre></div>
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<p>This syntax is defined in the C++ 2011 standard, but has been supported by
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G++ and other compilers since well before 2011.
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</p>
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<p>Explicit instantiations can be used for the largest or most frequently
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duplicated instances, without having to know exactly which other instances
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are used in the rest of the program. You can scatter the explicit
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instantiations throughout your program, perhaps putting them in the
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translation units where the instances are used or the translation units
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that define the templates themselves; you can put all of the explicit
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instantiations you need into one big file; or you can create small files
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like
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</p>
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<div class="smallexample">
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<pre class="smallexample">#include "Foo.h"
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#include "Foo.cc"
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template class Foo<int>;
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template ostream& operator <<
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(ostream&, const Foo<int>&);
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</pre></div>
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<p>for each of the instances you need, and create a template instantiation
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library from those.
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</p>
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<p>This is the simplest option, but also offers flexibility and
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fine-grained control when necessary. It is also the most portable
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alternative and programs using this approach will work with most modern
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compilers.
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</p>
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</li><li> <a name="index-frepo-1"></a>
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Compile your template-using code with <samp>-frepo</samp>. The compiler
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generates files with the extension ‘<samp>.rpo</samp>’ listing all of the
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template instantiations used in the corresponding object files that
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could be instantiated there; the link wrapper, ‘<samp>collect2</samp>’,
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then updates the ‘<samp>.rpo</samp>’ files to tell the compiler where to place
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those instantiations and rebuild any affected object files. The
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link-time overhead is negligible after the first pass, as the compiler
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continues to place the instantiations in the same files.
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<p>This can be a suitable option for application code written for the Borland
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model, as it usually just works. Code written for the Cfront model
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needs to be modified so that the template definitions are available at
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one or more points of instantiation; usually this is as simple as adding
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<code>#include <tmethods.cc></code> to the end of each template header.
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</p>
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<p>For library code, if you want the library to provide all of the template
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instantiations it needs, just try to link all of its object files
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together; the link will fail, but cause the instantiations to be
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generated as a side effect. Be warned, however, that this may cause
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conflicts if multiple libraries try to provide the same instantiations.
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For greater control, use explicit instantiation as described in the next
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option.
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</p>
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</li><li> <a name="index-fno_002dimplicit_002dtemplates-1"></a>
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Compile your code with <samp>-fno-implicit-templates</samp> to disable the
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implicit generation of template instances, and explicitly instantiate
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all the ones you use. This approach requires more knowledge of exactly
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which instances you need than do the others, but it’s less
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mysterious and allows greater control if you want to ensure that only
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the intended instances are used.
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<p>If you are using Cfront-model code, you can probably get away with not
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using <samp>-fno-implicit-templates</samp> when compiling files that don’t
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‘<samp>#include</samp>’ the member template definitions.
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</p>
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<p>If you use one big file to do the instantiations, you may want to
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compile it without <samp>-fno-implicit-templates</samp> so you get all of the
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instances required by your explicit instantiations (but not by any
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other files) without having to specify them as well.
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</p>
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<p>In addition to forward declaration of explicit instantiations
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(with <code>extern</code>), G++ has extended the template instantiation
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syntax to support instantiation of the compiler support data for a
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template class (i.e. the vtable) without instantiating any of its
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members (with <code>inline</code>), and instantiation of only the static data
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members of a template class, without the support data or member
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functions (with <code>static</code>):
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</p>
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<div class="smallexample">
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<pre class="smallexample">inline template class Foo<int>;
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static template class Foo<int>;
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</pre></div>
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</li></ol>
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<hr>
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<div class="header">
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<p>
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Next: <a href="Bound-member-functions.html#Bound-member-functions" accesskey="n" rel="next">Bound member functions</a>, Previous: <a href="C_002b_002b-Interface.html#C_002b_002b-Interface" accesskey="p" rel="prev">C++ Interface</a>, Up: <a href="C_002b_002b-Extensions.html#C_002b_002b-Extensions" accesskey="u" rel="up">C++ Extensions</a> [<a href="index.html#SEC_Contents" title="Table of contents" rel="contents">Contents</a>][<a href="Option-Index.html#Option-Index" title="Index" rel="index">Index</a>]</p>
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</div>
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