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How do I calculate the leftmost 6 bits from numbers like 0x71014802 These 6 bits tell us what MIPS instruction this code represents. The answer is 0x1c but how does the book calculate it?

Example:

0x10001A08 = 000011 00000 10000 01000 00000 000111

How was this 71014802 been converted into binary? How do I accomplish this?

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sorry I read c but was assembly... I did not understand the question. –  Jekyll Nov 23 '13 at 22:40
    
Edited !! Please read my edit –  user3025956 Nov 23 '13 at 22:49
    
Done, Check if I understood your requirement, put comment below there in case. –  Jekyll Nov 23 '13 at 23:10

2 Answers 2

The first one is an hex number it is straightforward to convert it into binary. Every HEX digit can be converted in 4 binary digit as in the following example

Ex $$_7=2^2+2^1+2^0=0111_$$

For your hex number 0x71014802 is

0x71014802 => 0111 0001 0000 0001 0100 1000 0000 0010
                 7    1    0    1    4    8    0    2

Regarding to a conversion from decimal to binary I suggest you converting the decimal in hex and then hex to binary, let's do an example with a decimal (I choose 71014802 DEC)

71014802 => 0x43B9992 => 0000 0100 0011 1011 1001 1001 1001 0010
                            0    4    3    B    9    9    9    2

another way to convert a decimal number into a binary one is by dividing by two and picking the remainder... but it is a longer procedure (you can find it here)

Anyway if the opcode is in a fixed position (26-31) the opcode can be simply obtained through a mask and shift right as follow:

opcode=(reg>>26)&0x3F

An algorithm to print a binary number can be like this:

void print_binary(int n) {
   while (n) {
      char bit = n & 0x1;
      putchar (bit+'0');
      n >>= 1;
   }
   putchar('\n');
}
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how to convert this 71014802 to binary ? –  user3025956 Nov 23 '13 at 23:46
    
Isn't this what I show you above? are you asking for an algo? I can add you here an algo to do that, or you may simply use the calculator on your machine and put "programmer mode". I added here a function to print the binary –  Jekyll Nov 23 '13 at 23:47
    
Understood.... I added here an algo to print the binary of any 32 bit number @user3025956. Is that what you were looking for? –  Jekyll Nov 23 '13 at 23:52

Try:

char bits = (num >> (sizeof(num)*8 - 6)) & 0x3F;

0x3F = 00111111 that's six bits pushed all the way to the left, giving you the result you're looking for.

EDIT: An more detailed explanation. What we are trying to do is to get the six leftmost bits of an integer. To determine if a bit is flipped or not (i.e. 1 or 0) we and it with 1. Getting six bits of a number is done by constructing an integer with six flipped bits, 00111111, or 0x3F, and anding it with our number like so: num & 0x3F. This will give the six righmost bits of the integer, to get the bits on the left side, we shift our number all the way to the left, and run the same and operation: (num >> (sizeof(num)*8 - 6)) & 0x3F.

$ cat temp.c
#include <stdio.h>
#include <stdint.h>

int main() {
    uint32_t num = 0x71014802;
    char c = (num >> (sizeof(num) * 8 - 6)) & 0x3F;
    printf("0x%X\n", c);
    return 0;
}

$ gcc temp.c && ./a.out
0x1C

EDIT2: My math was a bit off, that's what you get for browsing SO after midnight... Updated.

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can you please explain this –  user3025956 Nov 23 '13 at 23:48
    
Edit the main post with an explanation. –  ronmrdechai Nov 24 '13 at 8:36

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