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I'm a bit stuck finding out in which way those 2 operations are different. So I read that Arithmetic shift is basically the same as Logical with the only difference, that it somehow keeps the highest or signed bit.

So when I do LSL #2 on 101110 assuming that this binary is a unsigned one, the result would be: 111000 and the carry bit would be set in the CPSR, right?

When I perform ASL #2 on the same number, what would be the result and how does it keep the signed bit? What about ASR #2 on the above binary? Would the result be 101011?

Unfortunately I've only found a really rough description about Arithmetic shift. Thanks in advance!

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    ASL and LSL are synonyms. The difference comes with ASR/LSR, where ASR will copy the original most upper bit all "new" upper bits. This is useful in computing with signed values in two-complement representation. Jan 28, 2013 at 15:40
  • @Masta79 So the difference would be: LSR 101110 -> 010111, ASR 101110 -> 110111 ?
    – user2018648
    Jan 28, 2013 at 15:41
  • Correct (if you had 6bit registers) Jan 28, 2013 at 15:47
  • @Masta79 Thank you, finally understood it.
    – user2018648
    Jan 28, 2013 at 15:48
  • Keep in mind that the registers and assembly languages instructions have no idea whether you consider a particular value to be signed or unsigned. If you apply an arithmetic right shift to an "unsigned" register value the result may not be valid.
    – user1619508
    Jan 28, 2013 at 17:39

2 Answers 2

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I had hard time to understand the real difference between LSR and ASR but hope this image helps you to understand the same. In LSR(Logical Shift Right) the MSB(Most Significant Bit) is replaced by 0 where as In ASR(Arithematic Shift Right) MSB is same as the earlier MSB before being shifted .(Similar for Left Shift) ASR is useful in computing with signed values in two-complement representation.

enter image description here

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  • Did you copy that from somewhere? If so, you should include a link to the source. (Not just to the image in imgur). Nov 20, 2016 at 8:40
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    From some book and ppt that my teacher gave me I can give you her phone number if you are interested in knowing but she's 65.I would have already mentioned had been it possible @PeterCordes Nov 20, 2016 at 8:46
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Your examples don't make much sense since your numbers are 6bit only so 31st bit will always be 0.

ASL is a synonym for LSL and you can see shift operations behaviour in official ARM documentation or this ARM reference site.

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  • yes, maybe a bit unfortunate referring to ARM here, of course I assumed it were 6 bit and not 32 bit arm registers.
    – user2018648
    Jan 28, 2013 at 15:59

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