Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I just read this code following:

byte[] bts = {8, 0, 0, 0};
if ((bts[i] & 0x01) == 0x01)

Does this do the same thing as

if (bts[i] == 0x01)

If not,what's the difference between them?

And what is the first way trying to do here?

share|improve this question
up vote 13 down vote accepted

No, it doesn't.

if(bts[i] == 0x01)

means if bts[i] is equal to 1.

if((bts[i] & 0x01) == 0x01) 

means if the least significant bit of bts[i] is equal to 1.

Example.

bts[i] = 9 //1001 in binary

if(bts[i] == 0x01) //false

if((bts[i] & 0x01) == 0x01) //true
share|improve this answer
    
@Johnny: E.g., all odd numbers match the & 0x01 test, but only 0x01 matches the == 0x01 test. – T.J. Crowder Jul 31 '13 at 10:59
    
It seems that all odd numbers will return true here. – Johnny Chen Jul 31 '13 at 11:04
1  
@JohnnyChen: Do I hear an echo? ;-) – T.J. Crowder Jul 31 '13 at 11:07

(0x1001 & 0x01) == 0x01, but

0x1001 != 0x01
share|improve this answer

No, it doesn't, the first will check only the last bit - if it's 1, it will return true regardless of the others.

The second one will return true if only the last bit is 1.

share|improve this answer

No, it's not the same thing. 0x01 is just 1. Now,

if (bts[i] == 0x01)

checks if bts[i] is equal to 1.

if ((bts[i] & 0x01) == 0x01)

Checks if the last (least significant) bit of bts[i] is equal to 1. In the binary system, all odd numbers have the last bit equal to 1. So, if ((bts[i] & 0x01) == 0x01) is basically checking, if the number in bts[i] is odd. It could be written as if (bts[i] % 2 == 1), too.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.