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133 lines
5.8 KiB
HTML
133 lines
5.8 KiB
HTML
15 years ago
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<html lang="en">
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<head>
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<title>Source Code Reference - Untitled</title>
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<meta http-equiv="Content-Type" content="text/html">
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<meta name="description" content="Untitled">
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<meta name="generator" content="makeinfo 4.7">
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<link title="Top" rel="start" href="index.html#Top">
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<link rel="up" href="Assignments.html#Assignments" title="Assignments">
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<link rel="prev" href="PROVIDE_005fHIDDEN.html#PROVIDE_005fHIDDEN" title="PROVIDE_HIDDEN">
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<link href="http://www.gnu.org/software/texinfo/" rel="generator-home" title="Texinfo Homepage">
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<!--
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This file documents the GNU linker LD
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(GNU Binutils)
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version 2.19.
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Copyright (C) 1991, 92, 93, 94, 95, 96, 97, 98, 99, 2000,
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2001, 2002, 2003, 2004, 2005, 2006, 2007 Free Software Foundation, Inc.
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Permission is granted to copy, distribute and/or modify this document
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under the terms of the GNU Free Documentation License, Version 1.1
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or any later version published by the Free Software Foundation;
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with no Invariant Sections, with no Front-Cover Texts, and with no
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Back-Cover Texts. A copy of the license is included in the
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section entitled ``GNU Free Documentation License''.-->
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<meta http-equiv="Content-Style-Type" content="text/css">
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<style type="text/css"><!--
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pre.display { font-family:inherit }
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pre.format { font-family:inherit }
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pre.smalldisplay { font-family:inherit; font-size:smaller }
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pre.smallformat { font-family:inherit; font-size:smaller }
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pre.smallexample { font-size:smaller }
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pre.smalllisp { font-size:smaller }
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span.sc { font-variant:small-caps }
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span.roman { font-family: serif; font-weight: normal; }
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--></style>
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</head>
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<body>
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<div class="node">
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<p>
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<a name="Source-Code-Reference"></a>Previous: <a rel="previous" accesskey="p" href="PROVIDE_005fHIDDEN.html#PROVIDE_005fHIDDEN">PROVIDE_HIDDEN</a>,
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Up: <a rel="up" accesskey="u" href="Assignments.html#Assignments">Assignments</a>
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<hr><br>
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</div>
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<h4 class="subsection">3.5.4 Source Code Reference</h4>
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<p>Accessing a linker script defined variable from source code is not
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intuitive. In particular a linker script symbol is not equivalent to
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a variable declaration in a high level language, it is instead a
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symbol that does not have a value.
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<p>Before going further, it is important to note that compilers often
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transform names in the source code into different names when they are
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stored in the symbol table. For example, Fortran compilers commonly
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prepend or append an underscore, and C++ performs extensive <span class="samp">name
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mangling</span>. Therefore there might be a discrepancy between the name
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of a variable as it is used in source code and the name of the same
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variable as it is defined in a linker script. For example in C a
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linker script variable might be referred to as:
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<pre class="smallexample"> extern int foo;
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</pre>
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<p>But in the linker script it might be defined as:
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<pre class="smallexample"> _foo = 1000;
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</pre>
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<p>In the remaining examples however it is assumed that no name
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transformation has taken place.
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<p>When a symbol is declared in a high level language such as C, two
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things happen. The first is that the compiler reserves enough space
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in the program's memory to hold the <em>value</em> of the symbol. The
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second is that the compiler creates an entry in the program's symbol
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table which holds the symbol's <em>address</em>. ie the symbol table
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contains the address of the block of memory holding the symbol's
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value. So for example the following C declaration, at file scope:
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<pre class="smallexample"> int foo = 1000;
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</pre>
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<p>creates a entry called <span class="samp">foo</span> in the symbol table. This entry
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holds the address of an <span class="samp">int</span> sized block of memory where the
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number 1000 is initially stored.
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<p>When a program references a symbol the compiler generates code that
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first accesses the symbol table to find the address of the symbol's
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memory block and then code to read the value from that memory block.
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So:
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<pre class="smallexample"> foo = 1;
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</pre>
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<p>looks up the symbol <span class="samp">foo</span> in the symbol table, gets the address
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associated with this symbol and then writes the value 1 into that
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address. Whereas:
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<pre class="smallexample"> int * a = & foo;
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</pre>
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<p>looks up the symbol <span class="samp">foo</span> in the symbol table, gets it address
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and then copies this address into the block of memory associated with
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the variable <span class="samp">a</span>.
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<p>Linker scripts symbol declarations, by contrast, create an entry in
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the symbol table but do not assign any memory to them. Thus they are
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an address without a value. So for example the linker script definition:
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<pre class="smallexample"> foo = 1000;
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</pre>
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<p>creates an entry in the symbol table called <span class="samp">foo</span> which holds
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the address of memory location 1000, but nothing special is stored at
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address 1000. This means that you cannot access the <em>value</em> of a
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linker script defined symbol - it has no value - all you can do is
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access the <em>address</em> of a linker script defined symbol.
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<p>Hence when you are using a linker script defined symbol in source code
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you should always take the address of the symbol, and never attempt to
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use its value. For example suppose you want to copy the contents of a
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section of memory called .ROM into a section called .FLASH and the
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linker script contains these declarations:
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<pre class="smallexample"> start_of_ROM = .ROM;
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end_of_ROM = .ROM + sizeof (.ROM) - 1;
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start_of_FLASH = .FLASH;
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</pre>
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<p>Then the C source code to perform the copy would be:
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<pre class="smallexample"> extern char start_of_ROM, end_of_ROM, start_of_FLASH;
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memcpy (& start_of_FLASH, & start_of_ROM, & end_of_ROM - & start_of_ROM);
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</pre>
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<p>Note the use of the <span class="samp">&</span> operators. These are correct.
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</body></html>
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