Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I've been attempting to learn C in my spare time, and other languages (C#, Java, etc.) have the same concept (and often the same operators) ...

What I'm wondering is, at a core level, what does bit-shifting (<<, >>, >>>) do, what problems can it help solve, and what gotchas lurk around the bend? In other words, an absolute beginner's guide to bit shifting in all its goodness.

share|improve this question
    
The functional or non-functional cases in which you would use bitshifting in 3GL's are few. –  Troy DeMonbreun Sep 26 '08 at 20:19
4  
After reading these answers you may want to look at these links: graphics.stanford.edu/~seander/bithacks.html & jjj.de/bitwizardry/bitwizardrypage.html –  claws Jun 15 '10 at 15:28

5 Answers 5

up vote 877 down vote accepted

The bit shifting operators do exactly what their name implies. They shift bits. Here's a brief (or not-so-brief) introduction to the different shift operators.

The Operators

  • >> is the arithmetic (or signed) right shift operator.
  • >>> is the logical (or unsigned) right shift operator.
  • << is the left shift operator, and meets the needs of both logical and arithmetic shifts.

All of these operators can be applied to integer values (int, long, possibly short and byte or char). In some languages, applying the shift operators to any datatype smaller than int automatically resizes the operand to be an int.

Note that <<< is not an operator, because it would be redundant. Also note that C and C++ do not distingiush between the right shift operators. They provide only the >> operator, and the shifting behavior is implementation defined.


Left shift (<<)

Integers are stored, in memory, as a series of bits. For example, the number 6 stored as a 32-bit int would be:

00000000 00000000 00000000 00000110

Shifting this bit pattern to the left one position (6 << 1) would result in the number 12:

00000000 00000000 00000000 00001100

As you can see, the digits have shifted to the left by one position, and the last digit on the right is filled with a zero. You might also note that shifting left is equivalent to multiplication by powers of 2. So 6 << 1 is equivalent to 6 * 2, and 6 << 3 is equivalent to 6 * 8. A good optimizing compiler will replace multiplications with shifts when possible.

Non-circular shifting

Please note that these are not circular shifts. Shifting this value to the left by one position (3,758,096,384 << 1):

11100000 00000000 00000000 00000000

results in 3,221,225,472:

11000000 00000000 00000000 00000000

The digit that gets shifted "off the end" is lost. It does not wrap around.


Logical right shift (>>>)

A logical right shift is the converse to the left shift. Rather than moving bits to the left, they simply move to the right. For example, shifting the number 12:

00000000 00000000 00000000 00001100

to the right by one position (12 >>> 1) will get back our original 6:

00000000 00000000 00000000 00000110

So we see that shifting to the right is equivalent to division by powers of 2.

Lost bits are gone

However, a shift cannot reclaim "lost" bits. For example, if we shift this pattern:

00111000 00000000 00000000 00000110

to the left 4 positions (939,524,102 << 4), we get 2,147,483,744:

10000000 00000000 00000000 01100000

and then shifting back ((939,524,102 << 4) >>> 4) we get 134,217,734:

00001000 00000000 00000000 00000110

We cannot get back our original value once we have lost bits.


Arithmetic right shift (>>)

The arithmetic right shift is exactly like the logical right shift, except instead of padding with zero, it pads with the most significant bit. This is because the most significant bit is the sign bit, or the bit that distinguishes positive and negative numbers. By padding with the most significant bit, the arithmetic right shift is sign-preserving.

For example, if we interpret this bit pattern as a negative number:

10000000 00000000 00000000 01100000

we have the number -2,147,483,552. Shifting this to the right 4 positions with the arithmetic shift (-2,147,483,552 >> 4) would give us:

11111000 00000000 00000000 00000110

or the number -134,217,722.

So we see that we have preserved the sign of our negative numbers by using the arithmetic right shift, rather than the logical right shift. And once again, we see that we are performing division by powers of 2.

share|improve this answer
109  
The answer should make it more clear that this a Java-specific answer. There is no >>> operator in C/C++ or C#, and whether or not >> propagates the sign is implementation defined in C/C++ (a major potential gotcha) –  Michael Burr Oct 20 '08 at 6:33
15  
The answer is totally incorrect in the context of C language. There's no meaningful division into "arithmetic" and "logical" shifts in C. In C the shifts work as expected on unsigned values and on positive signed values - they just shift bits. On negative values, right-shift is implementation defined (i.e. nothing can be said about what it does in general), and left-shift is simply prohibited - it produces undefined behavior. –  AnT Jun 8 '10 at 22:19
7  
Audrey, there is certainly a difference between arithmetic and logical right shifting. C simply leaves the choice implementation defined. And left shift on negative values is definitely not prohibited. Shift 0xff000000 to the left one bit and you'll get 0xfe000000. –  Derek Park Jul 9 '10 at 23:09
6  
A good optimizing compiler will substitute shifts for multiplications when possible. What? Bitshifts are orders of magnitude faster when it comes down to the low level operations of a CPU, a good optimizing compiler would do the exact opposite, that is, turning ordinary multiplications by powers of two into bit shifts. –  Mahn Jun 14 '13 at 11:45
5  
@Mahn, you're reading it backwards from my intent. Substitute Y for X means to replace X with Y. Y is the substitute for X. So the shift is the substitute for the multiplication. –  Derek Park Jan 27 '14 at 22:13

Lets say we have a single byte:

0110110

Applying a single left Bitshift gets us:

1101100

The leftmost zero was shifted out of the byte, and a new zero was appended to the right end of the byte.

The bits don't rollover, they are discarded, that means if you left shift 1101100 and then right shift it, you won't get the same result back.

Shifting left by N is equivalent to multiplying by 2N.

Shifting right by N is (if you are using ones compliment) is the equivalent of dividing by 2N and rounding to zero.

Bitshifting can be used for insanely fast multiplication and division, provided you are working with a power of 2, almost all low level graphics routines use bitshifting.

For example, way back in the olden days, we used mode 13h (320x200 256 colors) for games. In Mode 13h, the video memory was laid out sequentially per pixel. That meant to calculate the location for a pixel, you would use the following math:

memoryOffset = (row * 320) + column

Now, back in this day and age, speed was critical, so we would use bitshifts to do this operation.

However, 320 is not a power of two, so to get around this we have to find out what is a power of two that added together makes 320:

(row * 320) = (row * 256) + (row * 64)

Now we can convert that into left shifts:

(row * 320) = (row << 8) + (row << 6)

For a final result of:

memoryOffset = ((row << 8) + (row << 6)) + column

Now we get the same offset as before, except instead of an expensive multiplication operation, we use the two bitshifts...in x86 it would be something like this (note, its been forever since I've done assembly):

mov al, 320; 2 cycles
mul [row]; 22 CPU Cycles
mov di,ax; 2 cycles
add di, [column]; 2 cycles

Total: 28 cycles

Vrs

mov al, [row]; 2
mov di,[row]; 2
shl al, 6;  2 
shl di, 8;  2 
add al, di; 2
add [column], ax; 2

12 cycles.

Yes, we would work this hard to shave off 16 cpu cycles.

Ok, back in the modern days... something more useful now would be to use bitshifting to store two 8-bit values in a 16-bit integer, for example, in C#:

// Byte1: 11110000
// Byte2: 00001111

Int16 value = ((byte)(Byte1 >> 8) | Byte2));

// value = 000011111110000;
share|improve this answer
3  
Expanding this, on Intel processors (and a lot of others) it's faster to do this: int c, d; c=d<<2; Than this: c=4*d; Sometimes, even "c=d<<2 + d<<1" is faster than "c=6*d"!! I used these tricks extensively for graphic functions in the DOS era, I don't think they're so useful anymore... –  Joe Pineda Sep 26 '08 at 20:44
    
@Joe: If these tricks aren't useful anymore, does that mean that compiler writers are using them now? –  James Thompson Oct 25 '11 at 0:48
2  
@James: not quite, nowadays it's rather the video-card's firmware which includes code like that, to be executed by the GPU rather than the CPU. So theoretically you don't need to implement code like this (or like Carmack's black-magic inverse root function) for graphic functions :-) –  Joe Pineda Aug 29 '12 at 2:03
1  
@JoePineda @james The compiler writers are definitely using them. If you write c=4*d you will get a shift. If you write k = (n<0) that may be done with shifts too: k = (n>>31)&1 to avoid a branch. Bottom line, this improvement in cleverness of compilers means it's now unnecessary to use these tricks in the C code, and they compromise readability and portability. Still very good to know them if you're writing e.g. SSE vector code; or any situation where you need it fast and there's a trick which the compiler isn't using (e.g. GPU code). –  greggo Oct 30 '14 at 14:17
    
Another good example: very common thing is if(x >= 1 && x <= 9) which can be done as if( (unsigned)(x-1) <=(unsigned)(9-1)) Changing two conditional tests to one can be a big speed advantage; especially when it allows predicated execution instead of branches. I used this for years (where justified) until I noticed abt 10 years ago that compilers had started doing this transform in the optimizer, then I stopped. Still good to know, since there are similar situations where the compiler can't make the transform for you. Or if you're working on a compiler. –  greggo Oct 30 '14 at 14:28

Bitwise operations, including bit shift, are fundamental to low-level hw or embedded programming. If you read a spec for a device or even some binary file formats, you will see bytes, words, and dwords, broken up into non-byte aligned bitfields, which contain various values of interest. Accessing these bit-fields for reading/writing is the most common usage.

A simple real example in graphics programming is that a 16-bit pixel is represented as follows:

  bit | 15| 14| 13| 12| 11| 10| 9 | 8 | 7 | 6 | 5 | 4 | 3 | 2 | 1  | 0 |
      |       Blue        |         Green         |       Red          |

To get at the green value you would do this:

 #define GREEN_MASK  0x7e0
 #define GREEN_OFFSET  5
 // read grean
 uint16_t green = (pixel & GREEN_MASK) >> GREEN_OFFSET;

Explanation

In order to obtain the value of green ONLY, which starts at offset 5 and ends at 10 (i.e. 6-bits long), you need to use a (bit) mask, which when applied against the entire 16-bit pixel, will yield only the bits we are interested in.

#define GREEN_MASK 0x7e0

The appropriate mask is 0x7e0 which in binary is 0000011111100000 (which is 2016 in decimal).

uint16_t green = (pixel & GREEN_MASK) ...;

To apply a mask, you use the AND operator (&).

uint16_t green = (pixel & GREEN_MASK) >> GREEN_OFFSET;

After applying the mask, you'll end up with a 16-bit number which is really just a 11-bit number since its MSB is in the 11th bit. Green is actually only 6-bits long so we need to scale it down using a right shift (11 - 6 = 5) hence the use of 5 as offset (#define GREEN_OFFSET 5).

Also common is using bit shifts for fast multiplication and division by powers of 2.

 i <<= x;  // i *= 2^x; 
 i >>= y;  // i /= 2^y;
share|improve this answer
2  
If you could explain deeper it would be great –  Imray Oct 29 '13 at 23:13
    
0x7e0 is the same as 11111100000 which is 2016 in decimal. –  Saheed Mar 31 at 22:20

One gotcha is that the following is implementation dependent (according to the ANSI standard):

char x = -1;
x >> 1;

x can now be 127 (01111111) or still -1 (11111111).

In practice, it's usually the latter.

share|improve this answer
2  
If I recall it correctly, the ANSI C standard explicitly says this is implementation-dependent, so you need to check your compiler's documentation to see how it's implemented if you want to right-shift signed integers on your code. –  Joe Pineda Sep 26 '08 at 20:46
16  
Isn't that what I said? –  AShelly Sep 26 '08 at 21:00
3  
Documentation? Who reads that. Just write the test program. –  TonyOssa Sep 26 '08 at 22:43
    
Yes, I just wanted to emphasize the ANSI standard itself says so, it's not a case where vendors are simply not following the standard or that the standard says nothing about this particualr case. –  Joe Pineda Sep 27 '08 at 0:17
    
@AShelly Its arithmetic vs logical right shift. –  abc Apr 27 '13 at 4:26

Bit Masking & Shifting

Byte shifting is often used in low level graphics programming. For example a given pixel color value encoded in a 32-bit word.

 Pixel-Color Value in Hex:    B9B9B900
 Pixel-Color Value in Binary: 10111001  10111001  10111001  00000000

For better understanding, the same binary value labeled with what sections represents what color part.

                                 Red     Green     Blue       Alpha
 Pixel-Color Value in Binary: 10111001  10111001  10111001  00000000

Let's say for example we want to get the green value of this pixels color. We can easily get that value by masking and shifting.

Our mask:

                  Red      Green      Blue      Alpha
 color :        10111001  10111001  10111001  00000000
 green_mask  :  00000000  11111111  00000000  00000000

 masked_color = color & green_mask

 masked_color:  00000000  10111001  00000000  00000000

The logical & operator ensures that only the values where the mask is 1 are kept. The last thing we now have to do, is to get the correct integer value by shifting all those bits to the right by 16 places (logical right shift).

 green_value = masked_color >>> 16

Et voilá, we have the integer representing the amount of green in the pixels color:

 Pixels-Green Value in Hex:     000000B9
 Pixels-Green Value in Binary:  00000000 00000000 00000000 10111001 
 Pixels-Green Value in Decimal: 185

This is often used for encoding or decoding image formats like jpg,png,....

share|improve this answer

protected by Robert Harvey Mar 7 '13 at 18:17

Thank you for your interest in this question. Because it has attracted low-quality answers, posting an answer now requires 10 reputation on this site.

Would you like to answer one of these unanswered questions instead?

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