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I am trying to learn C for my class. One thing I need to know is given an array, I have to take information from two characters and store it in one bytes. For eg. if string is "A1B3C5" then I have to store A = 001 in higher 3bits and then store 1 in lower 5bits. I have to function that can get two chars from array at a time and print it here is that function,

 void print2(char string[])
{
    int i = 0;
    int length = 0;
    char char1, char2;
    length = strlen(string);
    for ( i = 0; i <length; i= i + 2)
    {
        char1 = string[i];
        char2 = string[i+1];
        printf("%c, %c\n", char1, char2);
    }
}

but now i am not sure how to get it encoded and then decode again. Can anyone help me please?

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1  
I didn't get it –  Kiril Kirov Nov 27 '11 at 21:28
    
If you manage to store two different values in an entity with two states, you deserve a Fields medal. –  pmr Nov 27 '11 at 21:31
1  
And I'd vote for rejecting such edit, as it changes the meaning of the question, this would be too radical edit. –  Kiril Kirov Nov 27 '11 at 21:34
1  
@mort - you may want to ask/search for this on meta: meta.stackoverflow.com –  Kiril Kirov Nov 27 '11 at 21:38
1  
@mort - exactly - "it's difficult to find out what the question is about", you said that, that's why nobody should do such radical edit - it may change the whole point of the question. That's why I wrote my first comment - the question should be paraphrased by the poster, IMO. –  Kiril Kirov Nov 27 '11 at 21:43
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3 Answers 3

up vote 1 down vote accepted

Assuming an ASCII character set, subtract '@' from the letter and shift left five bits, then subtract '0' from the character representing the digit and add it to the first part.

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Thank you very much! –  amar vadalia Nov 27 '11 at 21:46
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First of all, one bit can only represent two states: 0 and 1, or TRUE and FALSE. What you mean is a Byte, which consists of 8 bits and can thus represent 2^8 states.

Two put two values in one byte, use logical OR (|) and bitwise shift (<< and >>).

I don't post the code here since you should learn this stuff - it's really important to know what bits and bytes are and how to work with them. But feel free to ask follow up question if something is not clear to you.

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Thank you, it was really helpful! –  amar vadalia Nov 27 '11 at 21:46
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So you've got a byte, and you want the following bit layout:

76543210
AAABBBBB

To store A, you would do:

unsigned char result;
int input_a = somevalue;
result &= 0x1F; // Clear the upper 3 bits.
// Store "A": make sure only the lower 3 bits of input_a are used,
// Then shift it by 5 positions. Finally, store it by OR'ing.
result |= (char)((input_a & 7) << 5);

To read it:

// Simply shift the byte by five positions.
int output_a = (result >> 5);

To store B, you would do:

int input_b = yetanothervalue;
result &= 0xE0; // Clear the lower 5 bits.
// Store "B": make sure only the lower 5 bits of input_b are used,
// then store them by OR'ing.
result |= (char)(input_b & 0x1F);

To read it:

// Simply get the lower 5 bits.
int output_b = (result & 0x1F);

You may want to read about the boolean operations AND and OR, bit shifting and finally bit masks.

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