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I need to load the immediate value 0.5f ( = 0.8 in HEX) in a NEON register (or an ARM register, than i can VMOV it) using assembly.

I've read ARM doc: http://infocenter.arm.com/help/index.jsp?topic=/com.arm.doc.dui0204h/Bcfjicfj.html Which links to: http://infocenter.arm.com/help/index.jsp?topic=/com.arm.doc.dui0204h/CIHGGEEB.html

Where they say you can load floating point:

Any number that can be expressed as +/-n * 2-r, where n and r are integers, 16 <= n <= 31, 0 <= r <= 7.

Because 0.8 is out of range, I'm expecting i need to load HEX 1.8 and subtract 1.0 but the following instructions are not OK for the compiler:

VMOV.F32 d10, #0x1.0 \n\t
VMOV.F32 d10, #0x1.8 \n\t

However using the 0.5 decimal value does the trick, even if it should be out of range:

VMOV.F32 d10, #0.5 \n\t

Using HEX values how can i do the same operation?

Also another question: the previous VMOV.F32 instruction is expected to load the value in both 32 bit parts of the register d10[0] and d10[1] or not?

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0.5 is in an expressible immediate value. What makes you think it isn’t? –  Stephen Canon Jul 23 '13 at 12:33
    
In my project i'm expressing every immediate in HEX, for consistency i would like to express 0.5 in HEX. –  Alessandro Gaietta Jul 23 '13 at 13:55
    
It sounds like your compiler doesn’t support hex fp immediates. I’m not surprised; I don’t know of many that do. –  Stephen Canon Jul 23 '13 at 13:56

1 Answer 1

up vote 1 down vote accepted

0.5 is exactly +16*(2^-5) (n=16, r=5, note that it's not 2-r in the manual, it's 2 raised to -r) , so it's an ok value to move.

In other words, 0x0.8 should work too (although I can't test that very assembler, hex float syntax varies)

The manual also says;

imm is a constant of the type specified by datatype. This is replicated to fill the destination register.

which, as I read it, would fill the whole (both parts) of the register.

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0x0.8 causes a "garbage following instruction..." compiler error. –  Alessandro Gaietta Jul 23 '13 at 13:58
    
@AlessandroGaietta This page claims that the only hex floating point format is raw format, that is, not decimal but "bit pattern". In other words, 0x0.8 is an invalid value, since the supported hex formats don't have decimal points. –  Joachim Isaksson Jul 23 '13 at 14:04

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