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From Thinking in C++ - Vol. 1:

Interpreters have many advantages. The transition from writing code to executing code is almost immediate, and the source code is always available so the interpreter can be much more specific when an error occurs.

Interpreter always works directly on the source code (after translating it line by line into machine code) so that may be the reason that it can be much more specific when an error occurs.

From: What does it mean to say that the source code is always available to interpreters?

speed is one criteria to use interpreter. and yes, it can directly refer to source code when error occurs. but when run-time runs compiled code, it can't refer to exact line where error occured.

Now, what about the debuggers?
GDB works on the output produced by the compiler, so here GCC and GDB have same files to work on.

Why is GDB able to show the exact error on the exact line (during run time) then as compared to the compiler?

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"Interpreter always works directly on the source code without translating it into some format" - surely not. –  user529758 Dec 26 '12 at 8:04
    
@H2CO3 Now is it correct? –  TheIndependentAquarius Dec 26 '12 at 8:07
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The compiler doesn't run the code. It just compiles it. Many errors only occur when specific input is given to the program, and the compiler can't possibly try all possible combinations of input just to see if they cause an error. This is the difference between compile-time errors (e.g. syntax errors) and run-time errors. –  jogojapan Dec 26 '12 at 8:09
    
@jogojapan Who "runs" the a.out file? –  TheIndependentAquarius Dec 26 '12 at 8:10
    
The operating system. –  jogojapan Dec 26 '12 at 8:11

2 Answers 2

up vote 3 down vote accepted

Why is GDB able to show the exact error on the exact line (during run time) then as compared to the compiler?

These are two different softwares with different purposes. First you should understand this.

so here GCC and GDB have same files to work on

Not exactly, Debugger needs some more files generated during compilation. (called symbols). These symbols are bridge between compiled code and source code.

I'm not much sure of GCC but it should have debug and release build options. When you compile in debug mode, by default symbols are generated that help GDB to debug. but in release mode, be default symbols are not generated and GDB can't debug a release build.

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thanks for the clarification. This may be a dumb question and I need to study more. –  TheIndependentAquarius Dec 26 '12 at 8:14
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In GCC, the -g option is used to add debug symbols for GDB (or other debuggers) to use. –  jogojapan Dec 26 '12 at 8:15
    
@jogojapan Yes, I remember that now. :) –  TheIndependentAquarius Dec 26 '12 at 8:15
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@Anisha Kaul: Yes. learning is a constant part of IT industry. and as they say: There are no dumb questions, so keep up the spirit and ask your questions. –  Azodious Dec 26 '12 at 8:18

In GDB we have -g option to build the code for debugging purpose. When code is built with -g option a symbol tale is associated with exe to help gdb to get variable's and function location information. When you ran gdb, this symbol table will help gdb to get to know the line number of code. If you want to know whether your exe is having symbol table or not , try this command - file <exe> This command will give you information whether your exe has a symbol table or not. If your exe has a symbol table, result of this command will contain ----- not stripped key word.

Also if you try to attach gdb on exe without symbol table information , gdb will give you warning that it is unable to found symbol table and cannot attach exe with gdb.

When you attach to the exe with gdb - you need to type run command to run the exe. Hope this helps.

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