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Here is my short assembly program:

; This code has been generated by the 7Basic
; compiler <>

extern printf

; Initialized data

      SECTION .data
f_0 dd 5.5
printf_f: db "%f",10,0

      SECTION .text

; Code

global main
push ebp
mov ebp,esp

push dword [f_0]
push printf_f
call printf
add esp,8

mov esp,ebp
pop ebp
mov eax,0

What the program is supposed to do is print 5.5, but it prints:


What on earth am I doing wrong? The code is pushing the two arguments to printf() and then calling it. Nothing complicated.

Update: I was a little premature in thinking I had fixed this. I have updated the code.

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1 Answer 1

up vote 4 down vote accepted

The instruction push f_0 pushes the address of f_0 on the stack, not the 5.5 in memory there, so the printf routine will take the address, plus the saved ebp (the next 4 bytes on the stack) and interpret the bits as a double and print it out. That turns out to be a very large number, as you see.

You need to load 8 bytes from f_0 and push those. something like

move eax, f_0
push dword ptr [eax+4]
push dword ptr [eax]


You need to push 8 bytes as fp64 values are 8 bytes. fp64 is all that printf knows how to print -- in fact fp64 is all that C knows how to pass to functions or operate on. fp32 value can only be loaded from and stored to memory, but are always implicitly converted to fp64 (or larger) before being operated on. If you want to load an fp32 value, convert it fp64, and push it on the stack, you can use

fld dword ptr [f_0]
sub esp, 8
fstp qword ptr [esp]

This actually loads an fp32 value and converts it to fp80 (the x87's internal format), then converts that fp80 value to fp64 and stores it on the stack.

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[facepalm] So that's why it was printing the huge number! –  Nathan Osman Sep 12 '10 at 4:14
f_0 is an address. The only way to get the value stored there is to dereference it. –  Gabe Sep 12 '10 at 4:15
@Gabe: I knew that's what he meant. The annoying thing? I did this once already :) Why am I loading 8 bytes? –  Nathan Osman Sep 12 '10 at 4:17
@Chris: I still can't get it to work, so I updated the code. –  Nathan Osman Sep 12 '10 at 4:24
George: I'm pretty sure that printf does not have a standardized means of printing a float because C automatically converts float parameters to double. You can compile float f = 5.5; printf("%f", f); and disassemble the object code to see what happens. –  Gabe Sep 12 '10 at 4:47

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