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I'm not sure the exact term for what I'm trying to do. I have an 8x8 block of bits stored in 8 bytes, each byte stores one row. When I'm finished, I'd like each byte to store one column.

For example, when I'm finished:

Byte0out = Byte0inBit0 + Byte1inBit0 + Byte2inBit0 + Byte3inBit0 + ...
Byte1out = Byte0inBit1 + Byte1inBit1 + Byte2inBit1 + Byte3inBit1 + ...

What is the easiest way to do this in C which performs well?

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2  
So, the answer should be fastest or easiest? –  Andrejs Cainikovs Aug 3 '11 at 17:41
1  
I assume you want Byte0Out= Byte0inBit0 + Byte1inBit0*2 + ... –  whoplisp Aug 3 '11 at 17:42
2  
The term that you are looking for is "transpose". –  Damon Aug 3 '11 at 17:45
    
migrate to codegolf.stackexchange.com –  Casey Aug 3 '11 at 21:17
    
@Casey: It's not a codegolf, it is a real usable question. –  Bjarke Freund-Hansen Aug 4 '11 at 13:56

6 Answers 6

up vote 11 down vote accepted

This code is cribbed directly from "Hacker's Delight" - Figure 7-2 Transposing an 8x8-bit matrix, I take no credit for it:

void transpose8(unsigned char A[8], int m, int n, 
                unsigned char B[8]) {
   unsigned x, y, t; 

   // Load the array and pack it into x and y. 

   x = (A[0]<<24)   | (A[m]<<16)   | (A[2*m]<<8) | A[3*m]; 
   y = (A[4*m]<<24) | (A[5*m]<<16) | (A[6*m]<<8) | A[7*m]; 

   t = (x ^ (x >> 7)) & 0x00AA00AA;  x = x ^ t ^ (t << 7); 
   t = (y ^ (y >> 7)) & 0x00AA00AA;  y = y ^ t ^ (t << 7); 

   t = (x ^ (x >>14)) & 0x0000CCCC;  x = x ^ t ^ (t <<14); 
   t = (y ^ (y >>14)) & 0x0000CCCC;  y = y ^ t ^ (t <<14); 

   t = (x & 0xF0F0F0F0) | ((y >> 4) & 0x0F0F0F0F); 
   y = ((x << 4) & 0xF0F0F0F0) | (y & 0x0F0F0F0F); 
   x = t; 

   B[0]=x>>24;    B[n]=x>>16;    B[2*n]=x>>8;  B[3*n]=x; 
   B[4*n]=y>>24;  B[5*n]=y>>16;  B[6*n]=y>>8;  B[7*n]=y; 
}

I didn't check if this rotates in the direction you need, if not you might need to adjust the code.

Also, keep in mind datatypes & sizes - int & unsigned (int) might not be 32 bits on your platform.

BTW, I suspect the book (Hacker's Delight) is essential for the kind of work you're doing... check it out, lots of great stuff in there.

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3  
+1 for the first answer I've seen that's relevant to OP's question (embedded). Lisp, x86 asm, and naive slow-as-hell implementations are all rather useless for embedded... –  R.. Aug 3 '11 at 20:07
2  
And of course for recommending Hacker's Delight! :-) –  R.. Aug 3 '11 at 20:07
    
what does m and n stands for? –  est Nov 29 '13 at 3:00

If you are looking for the simplest solution:

/* not tested, not even compiled */

char bytes_in[8];
char bytes_out[8];

/* please fill bytes_in[] here with some pixel-crap */

memset(bytes_out, 0, 8);
for(int i = 0; i < 8; i++) {
    for(int j = 0; j < 8; j++) {
        bytes_out[i] = (bytes_out[i] << 1) | ((bytes_in[j] >> (7 - i)) & 0x01);
    }
}

If your are looking for the fastest solution:

How to transpose a bit matrix in the assembly by utilizing SSE2.

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I don't think your code does the transposition. Maybe you need to write < instead of <<? –  whoplisp Aug 3 '11 at 18:20
4  
Considering the post was tagged "embedded" and "C", and something like 99% of processors on the planet are NOT x86 Pentium4+ CPUs, your SSE2 x86 assembly-language solution isn't the most useful. But considering how many responders here mentioned SIMD, x86 ASM or whatever, maybe I'll just go crawl back into my hole... –  Dan Aug 3 '11 at 19:28
    
@whoplist: Thanks, code fixed by replacing < with << (your comment was opposite btw, I think that was just typo) –  Andrejs Cainikovs Aug 5 '11 at 7:56
    
Thanks, whoplist. Actually, you were seeing my struggle as a wordpress noob accidentally creating emoticons :-) For example, I now know that you can't post C code like "if (len < 8)" ... a space btw 8 and ) is required. –  Mischa Oct 6 '11 at 19:05

Lisp prototype:

(declaim (optimize (speed 3) (safety 0)))
(defun bit-transpose (a)
  (declare (type (simple-array unsigned-byte 1) a))
  (let ((b (make-array 8 :element-type '(unsigned-byte 8))))
    (dotimes (j 8)
      (dotimes (i 8)
    (setf (ldb (byte 1 i) (aref b j))
          (ldb (byte 1 j) (aref a i)))))
    b))

This is how you can run the code:

#+nil
(bit-transpose (make-array 8 :element-type 'unsigned-byte
               :initial-contents '(1 2 3 4 5 6 7 8)))
;; => #(85 102 120 128 0 0 0 0)

Occasionally I disassemble code to check that there are no unnecessary calls to safety functions.

#+nil
(disassemble #'bit-transpose)

This is a benchmark. Run the function often enough to process a (binary) HDTV image.

#+nil
(time 
 (let ((a (make-array 8 :element-type 'unsigned-byte
              :initial-contents '(1 2 3 4 5 6 7 8)))
       (b (make-array 8 :element-type 'unsigned-byte
              :initial-contents '(1 2 3 4 5 6 7 8))))
   (dotimes (i (* (/ 1920 8) (/ 1080 8)))
     (bit-transpose a))))

That took only took 51ms. Note that I'm consing quite a lot because the function allocates new 8 byte arrays all the time. I'm sure an implementation in C can be tweaked a lot more.

Evaluation took:
  0.051 seconds of real time
  0.052004 seconds of total run time (0.052004 user, 0.000000 system)
  101.96% CPU
  122,179,503 processor cycles
  1,048,576 bytes consed

Here are some more test cases:

#+nil
(loop for j below 12 collect
  (let ((l (loop for i below 8 collect (random 255))))
    (list l (bit-transpose (make-array 8 :element-type 'unsigned-byte
                :initial-contents l)))))
;; => (((111 97 195 202 47 124 113 164) #(87 29 177 57 96 243 111 140))
;;     ((180 192 70 173 167 41 30 127) #(184 212 221 232 193 185 134 27))
;;     ((244 86 149 57 191 65 129 178) #(124 146 23 24 159 153 35 213))
;;     ((227 244 139 35 38 65 214 64) #(45 93 82 4 66 27 227 71))
;;     ((207 62 236 89 50 64 157 120) #(73 19 71 207 218 150 173 69))
;;     ((89 211 149 140 233 72 193 192) #(87 2 12 57 7 16 243 222))
;;     ((97 144 19 13 135 198 238 33) #(157 116 120 72 6 193 97 114))
;;     ((145 119 3 85 41 202 79 134) #(95 230 202 112 11 18 106 161))
;;     ((42 153 67 166 175 190 114 21) #(150 125 184 51 226 121 68 58))
;;     ((58 232 38 210 137 254 19 112) #(80 109 36 51 233 167 170 58))
;;     ((27 245 1 197 208 221 21 101) #(239 1 234 33 115 130 186 58))
;;     ((66 204 110 232 46 67 37 34) #(96 181 86 30 0 220 47 10)))

Now I really want to see how my code compares to Andrejs Cainikovs' C solution (Edit: I think its wrong):

#include <string.h>

unsigned char bytes_in[8]={1,2,3,4,5,6,7,8};
unsigned char bytes_out[8];

/* please fill bytes_in[] here with some pixel-crap */
void bit_transpose(){
  memset(bytes_out, 0, 8);
  int i,j;
  for(i = 0; i < 8; i++)
    for(j = 0; j < 8; j++) 
      bytes_out[i] = (bytes_out[i] << 1) | ((bytes_in[j] >> (7 - i)) & 0x01);
}

int
main()
{
  int j,i;
  for(j=0;j<100;j++)
    for(i=0;i<(1920/8*1080/8);i++)
      bit_transpose();
  return 0;
}

And benchmarking it:

wg@hp:~/0803/so$ gcc -O3 trans.c
wg@hp:~/0803/so$ time ./a.out 

real    0m0.249s
user    0m0.232s
sys     0m0.000s

Each loop over the HDTV image takes 2.5ms. That is quite a lot faster than my unoptimized Lisp.

Unfortunately the C code doesn't give the same results like my lisp:

#include <stdio.h>
int
main()
{
  int j,i;
  bit_transpose();
  for(i=0;i<8;i++)
    printf("%d ",(int)bytes_out[i]);
  return 0;
}
wg@hp:~/0803/so$ ./a.out 
0 0 0 0 1 30 102 170 
share|improve this answer
    
+1 for your huge efforts and a lisp. Always wanted to learn that language but never went past emacs customization :) –  user405725 Aug 3 '11 at 18:29
    
Thank you. Some recreational Lisp is always nice as a break from real work. Right now I have to synchronize hardware, which I inconveniently couldn't design for synchronization. Fortunately I can use Lisp in my main job as well :-) –  whoplisp Aug 3 '11 at 18:40
    
Thanks for your efforts! I've updated my code - can you please update also your answer with following: bytes_out[i] = (bytes_out[i] << 1) | ((bytes_in[j] >> (7 - i)) & 0x01); –  Andrejs Cainikovs Aug 5 '11 at 8:05

This sounds a lot like a so-called "Chunky to planar" routine used on displays that use bitplanes. The following link uses MC68K assembler for its code, but provides a nice overview of the problem (assuming I understood the question correctly):

http://membres.multimania.fr/amycoders/sources/c2ptut.html

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You really want to do something like this with SIMD instructions with something like the GCC vector vector support: http://ds9a.nl/gcc-simd/example.html

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2  
That would be nice, but this needs to run on a dsPIC microcontroller. –  FigBug Aug 3 '11 at 18:43

If you wanted an optimized solution you would use the SSE extensions in x86. You'd need to use 4 of these SIMD opcodes. MOVQ - move 8 bytes PSLLW - packed shift left logical words PMOVMSKB - packed move mask byte And 2 regular x86 opcodes LEA - load effective address MOV - move

byte[] m = byte[8]; //input
byte[] o = byte[8]; //output
LEA ecx, [o]
// ecx = the address of the output array/matrix
MOVQ xmm0, [m]
// xmm0 = 0|0|0|0|0|0|0|0|m[7]|m[6]|m[5]|m[4]|m[3]|m[2]|m[1]|m[0]
PMOVMSKB eax, xmm0
// eax = m[7][7]...m[0][7] the high bit of each byte
MOV [ecx+7], al
// o[7] is now the last column
PSLLW xmm0, 1
// shift 1 bit to the left
PMOVMSKB eax, xmm0
MOV [ecx+6], al
PSLLW xmm0, 1
PMOVMSKB eax, xmm0
MOV [ecx+5], al
PSLLW xmm0, 1
PMOVMSKB eax, xmm0
MOV [ecx+4], al
PSLLW xmm0, 1
PMOVMSKB eax, xmm0
MOV [ecx+3], al
PSLLW xmm0, 1
PMOVMSKB eax, xmm0
MOV [ecx+2], al
PSLLW xmm0, 1
PMOVMSKB eax, xmm0
MOV [ecx+1], al
PSLLW xmm0, 1
PMOVMSKB eax, xmm0
MOV [ecx], al

25 x86 opcodes/instructions as opposed to the stacked for...loop solution with 64 iterations. Sorry the notation is not the ATT style syntax that c/c++ compilers accept.

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The question is tagged embedded an c, there is quite a good chance that he is not working on x86 at all. (OTOH he might be.) –  Bjarke Freund-Hansen Aug 4 '11 at 14:00

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