apcs-gnu ABI中的结构布局 [英] Struct layout in apcs-gnu ABI

问题描述

对于此代码:

struct S {     unsigned char ch[2]; };

int main(void)
{
    _Static_assert( sizeof(struct S) == 2, "size was not 2");
}

使用带有ABI apcs-gnu(又名OABI或EABI版本0)的ARM的GCC(各种版本)，我断言失败.事实证明，该结构的大小为4.

using GCC (various versions) for ARM with the ABI apcs-gnu (aka. OABI, or EABI version 0), I get the assertion fails. It turns out the size of the struct is 4.

我可以使用__attribute__((packed))解决此问题；但我的问题是:

I can work around this by using __attribute__((packed)); but my questions are:

• 使此结构大小为4的理由是什么?
• 是否有任何文档指定此ABI中结构的布局?

• What is the rationale for making this struct size 4?
• Is there any documentation specifying the layout of structs in this ABI?

在ARM网站上，我找到了aapcs(EABI版本5)的文档，该文档确实将此结构指定为2；但是我找不到关于apcs-gnu的任何信息.

On the ARM website I found documentation for aapcs (EABI version 5) which does specify this struct as having a size of 2; but I could not find anything about apcs-gnu.

推荐答案

这是特定于GCC的决定，需要权衡大小以提高性能.可以用-mstructure-size-boundary=8覆盖.

This is a GCC-specific decision to trade-off size for performance. It can be overridden with -mstructure-size-boundary=8.

摘录自源代码:

/* Setting STRUCTURE_SIZE_BOUNDARY to 32 produces more efficient code, but the
value set in previous versions of this toolchain was 8, which produces more
compact structures.  The command line option -mstructure_size_boundary=<n>
can be used to change this value.  For compatibility with the ARM SDK
however the value should be left at 32.  ARM SDT Reference Manual (ARM DUI
0020D) page 2-20 says "Structures are aligned on word boundaries".
The AAPCS specifies a value of 8.  */
#define STRUCTURE_SIZE_BOUNDARY arm_structure_size_boundary

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