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I have confusion. I am C++ developer and heard many times that my source code will first gets converted to assembly and then assembly will get converted to machine code. But in one of the video tutorial of assembly language, instructor clearly said, C/C++ code directly gets convert to machine code. (Of course there will be linking and loading there).

I have seen links like this, Does the C++ code compile to assembly codes?

Still I am not able to clarify my doubt.

If in case, C++ does not gets converted to assembly first, how de-assembler generate assembly code from binary.

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marked as duplicate by Paul R, mwigdahl, juanchopanza, syb0rg, Brett Hale Jun 19 '13 at 16:30

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

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"how de-assembler generate assembly code from binary." This can be done regardless of how the executable was generated. Given a machine code sequence and an instruction set reference you can generate a disassembly. –  Michael Jun 19 '13 at 16:14
    
Modern compilers don't produce assembly intermediate code anymore by default. A disassembler just takes the binary and converts the code parts back to human readable assembly representation. Assembly is only a readable form for representing the machine instructions. –  πάντα ῥεῖ Jun 19 '13 at 16:14
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Please read the link that you provided. The answer lies there: it primarily depends on your compiler –  wlyles Jun 19 '13 at 16:14
    
That last question does not make sense. It's like asking "if the text wasn't made by translating something from Dutch to English, then how can you translate it from English to Dutch?". It doesn't matter where it came from. –  harold Jun 19 '13 at 16:23

2 Answers 2

up vote 4 down vote accepted

In the old (very old) days, compilers worked like this:

  1. The compiler generated assembly code in a file and wrote it to disk,
  2. The assembler took that file and generated the binary.

These days, unless you really want assembly output, your compiler does not generate explicit assembly language code. It will just generate some assembly in memory but then convert it to machine code themselves and only write the machine code to file. This is what your instructor meant when saying that C/C++ gets directly converted to machine code.

There is one more important thing you should know. Machine code is basically the same thing as assembly language. In assembly languages, instructions have names and written using strings, but these are the same instructions (one-to-one mapping) that are used in machine code. This is important so I repeat myself: machine code and and assembly are the same, only written in different notations.

This is why any binary can be disassembled; because to convert something from machine code to assembly, you just have to change the representation (translate each instruction and its operands from binary to "mnemonic" form.

So, modern compilers may actually not generate the actual strings that represents instructions (e.g. mov rax, 42) for performance reasons. If nobody wants the assembly output, why waste the memory and processing power generating it? But of course they do generate the equivalent machine code, which is faster for a compiler to generate.

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Thanks. It cleared my doubt. –  user2481987 Jun 20 '13 at 6:40

As machine code maps to assembly quite directly, there it is not very practical to analyze the difference. As C++ language stands it only describes behavior, and up to the implementation what it does. It is possible to emit CLI code or java bytecode or whatever too.

In practice most implementations really go all the way and emit assembly/machine level optimized code at the end. And support emission of assembly source file (.asm, .s) or annotated code/assy/C++ source.

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