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What is the correct way to work out how many bytes an int is? and how do I write an int to a file descriptor?

Here is a mock code sample which might make clear what I am trying to achieve:

char *message = "test message";
int length = strlen(message);
int fd = open(file, O_CREAT|O_RDWR);
write(fd, length??, ??); // <--- what goes here
write(fd, message, length);

I dont care about platform independence and byte order, just that it can compile on as many platforms as possible.

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5  
sizeof????????? –  leppie Oct 15 '10 at 7:27
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@ leppie Why did you make this a comment and not an answer? It's exactly right. –  Swiss Oct 15 '10 at 7:28
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@Swiss: incredulity at someone programming C and not knowing sizeof? Heck, I've written less than 500 lines of C code in my life and know about it. –  Michael Borgwardt Oct 15 '10 at 7:32
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@Swiss: I wasn't sure that was what the OP was looking for, and extra rep does not really bother me :) –  leppie Oct 15 '10 at 7:33
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It seems strange that you want it to compile on as many platforms as possible, but it's OK that files are incompatible between platforms. It's OK for some local temporary cache file, but generally you do want to write the same bytes to the file for the same value of length. –  Pete Kirkham Oct 15 '10 at 9:24

4 Answers 4

up vote 9 down vote accepted

sizeof(length) goes in the field.

It is preferable over using sizeof(int) in case you ever change the type of length in the future.

sizeof expresses the, well, size of a data type in multiples of sizeof(char), which is always 1.

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I've heard that sizeof returns the size of a datatype in bytes, and I've heard that sizeof returns the size of a datatype in units of sizeof(char). But char isn't defined to be 1 byte in the C standard. Which is correct? –  Swiss Oct 15 '10 at 7:32
    
Using sizeof(variable) is better than using sizeof(type). That way, if you change the type of the variable, there's no danger of the call to sizeof falling out of sync. –  user334856 Oct 15 '10 at 7:33
    
@Swiss: It's the other way around: 1 byte is defined to be the size of a char in C. –  schot Oct 15 '10 at 7:34
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sizeof when applied to unsigned char, char is always 1. It's defined in the C standard. That 1 byte could be 8 bits, it could be 9 bits, it could be more depending on platform. c-faq.com/charstring/wchar.html expounds on this. I do not have a copy of the C89/C90 standard, but in C99, this is section 6.5.3.4. –  birryree Oct 15 '10 at 7:35
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@Swiss: that's pretty much it, although C "bytes" must be at least 8 bits wide. Whether a C "byte" maps directly to a native machine byte is an issue for the compiler implementor. Harbison & Steele describe a machine that uses 7 bits for characters and 36 bit words for everything else; 1 word can hold 5 characters with 1 bit unused, and all other types take up 1 or more words. Since most C programs rely on the ability to map any type onto an array of char, that means the implementation must use a 9- or 36-bit "byte" which gets mapped onto the native byte, with a performance penalty. –  John Bode Oct 15 '10 at 14:11

sizeof is your friend.

write(fd, &length, sizeof(int));
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sizeof(int) = 4 (on Linux, 32 & 64 Bit x86-Architecture)
sizeof(long) is 4 on 32 Bit, 8 on 64 Bit (on Linux, x86-32/64-Architecture)
Dunno about Windows.

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sizeof(long) stays 4 on 64-bit Windows (tested in XP x64, Vista x64, and Windows 7 x64). –  birryree Oct 15 '10 at 7:39
    
@birryree: Why am I not surprised... –  Stefan Steiger Oct 15 '10 at 7:49
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@birryree: did you compile for x64, or merely on x64, and ran on x64? –  wnoise Oct 15 '10 at 18:42
    
@wnoise: I compiled targeting 64-bit. This is also documented at MSDN: msdn.microsoft.com/en-us/library/3b2e7499(v=VS.100).aspx –  birryree Oct 15 '10 at 23:26
    
@wnoise: I can confirm it, it stays 32 bit on Windows. Windows uses another convention than modern Linux/Unix/Mac... –  Stefan Steiger Nov 16 '10 at 14:12
write(fd, &length, sizeof(length));

You can use sizeof with variable names or type names. In this case you could have done sizeof(int).

The write function takes the address of the memory zone you want to write, so you use the & (address of) operator. You don't have to do it for the string because you already have a pointer (char*).

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