Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I quite understand a what 32 or 64 bit system means. so basically all registers or word length is either 32 or 64 bit.

For simplicity let us take a 32 bit system and say i'am writing a program in C. if i declare a int type say "int a = 5;" then a memory location of one word length is reserved for var a. so when ever i want to access it i can do so using word address for that memory location.

But say i have 4 characters " char a,b,c,d;" since it is one byte each all of them are placed in one word, so what do i do if i want to access only char b?(saying the memory is byte addressable) now say b is the third byte in the word....then how does it come on to the bus? is'nt the 3rd byte hard wired to 17th to 24th line in the bus? so what happens to the other 24 lines when only b is being accessed?

share|improve this question
    
Check the machine language, assembly language, for that particular CPU, especially the parts about memory addressing and CPU registers. –  theglauber Sep 18 '12 at 15:45
1  
@deepak, On 32bit platforms which support byte addressing, it's possible to write a single byte to memory w/o the other three bytes written(according Byte Enable signals turned off). –  Eric Z Jan 2 '14 at 5:04
    
@EricZ, now what would happen if the byte I want is the 2nd byte (starting count from zero) in the memory? usually when I access a word from the memory, the 2nd byte lands up between bit position 23 - 16 of the register. But in this case it will have to land up in position 7 - 0. This confuses me because I thought that bit 0 from memory is wired to land up in bit 0 of the register, and bit 31 to bit 31. I thought it was all in the circuitry, so how could a bit which is supposed to land at bit position 16, land up at position 0 during byte access? –  deepak Jan 2 '14 at 6:28
    
@deepak, CPU can read 4 bytes from the memory and shifts the other 3 bytes away to produce the 2nd byte. It just happens under the hood, not even visible in the assembly. –  Eric Z Jan 2 '14 at 7:32

2 Answers 2

up vote 1 down vote accepted

The answer to your question largely depends on which compiler you use and the internal workings of your CPU, memory controller and memory architecture (cache and external memory).
You only have control over the compiler (assuming you are using C or C++ compiler). Compilers have different modes for cases when you are using variables which are smaller than a word size. There are flags for speed optimization and memory optimization. Depending on which of those flags are turned on, the compiler may choose to generate code which packs all four variables (in your case) into one word. Or the compiler may choose to allocate a memory word for each of the variables but use a particular byte to store the actual value. The way the compiler will do it for each of the cases is to generate different set of instructions for the CPU. In the latter case, if the variable is read from memory then the entire word is put on the bus and then into a general purpose register. In the former case, the word is put in the register but then the word can get shifted bit wise and the other bits can be zeroed out by using logic AND operation. That way the right byte is going to be in the register. Or may be the CPU architecture supports byte level access in a word in which case it will be only one operation performed by the CPU. In the end, it is a good idea to understand what happens inside but you will not care much because the set of instructions generated by the compiler will work correctly from your standpoint. The only time you will care is when you write performance sensitive software. In that case you will need to know the details of your CPU and memory as well as the flags supported by the compiler.

share|improve this answer

It depends on the assembler, it may choose to give one word of memory or a byte.
So now even if you have 4 different characters in the word, what would happen is all of them are accessed at once, but only the one you require is operated on. i.e. all of them come into the processor from the memory, then only the byte you want is considered, the others are rejected.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.