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I have a char byte that I want to convert to an int. Basically I am getting the value (which is 0x13) from a file using the fopen command and storing it into a char buffer called buff.

I am doing the following:

//assume buff[17] = 0x13

v->infoFrameSize = (int)buff[17] * ( 128^0 );

infoFrameSize is a type int that is stored in a structure called 'v'.

The value I get for v->infoFrameSize is 0x00000980. Should this be 0x00000013?

I tried taking out the multiply by 128 ^ 0 and I get the correct output:

v->infoFrameSize = 0x00000013

Any info or suggested reading material on what is happening here would be great. Thanks!

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4  
Your question makes no sense whatsoever. –  cnicutar Nov 4 '11 at 21:42
    
I can't imagine in my wildest dreams (1) what you think 128^0 evaluates to, and (2) why you're multiplying by that value, and are then unhappy that your result is not the original number. –  Ernest Friedman-Hill Nov 4 '11 at 21:42
1  
Even if ^ meant exponentiation, wouldn't 128^0 be 1? –  K-ballo Nov 4 '11 at 21:43
    
Why can't you just assign your char to the int? –  Marlon Nov 4 '11 at 21:43
2  
What did you expect the multiply by (128^0) to do? –  Mark Ransom Nov 4 '11 at 21:43

9 Answers 9

up vote 10 down vote accepted

^ is bitwise xor operation, not exponentiation.

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Thanks. That makes sense. –  brazc0re Nov 4 '11 at 21:57
1  
@brazc0re What doesn't make sense is what you think it should do in the code even if ^ meant exponentiation. =) –  Arkku Nov 4 '11 at 23:07

Operator ^ in C does bit operation - XOR. 128 xor 0 equals 128.

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In C 128 ^ 0 equates the bitwise XOR of 128 and 0, it doesn't raise 128 to the power of 0 (which is just 1).

A char is simply an integer consisting of a single byte, to "convert" it to an int (which isn't really converting, you're just storing the byte into a larger data type) you do:

char c = 5;
int i = (int)c

tada.

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There is no point in the ^0 term. Anything xor'd with zero remains unchanged (so 128^0 is 128).

The value you get is correct; when you multiply 0x13 (aka 19) by 128 (aka 0x80), you get 0x0980 (aka 2432).

Why would you expect the assignment to ignore the multiplication?

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128^0 is not doing what you think it does.

cout << (128^0)

returns 128.

Try pow(128,0). Then, add the following to the top of your code:

#include <math.h>

Also, note that pow always returns a float. So you'll need to cast your final answer to an int. So:

(int)(buff[17] * pow(128,0));
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I assume that the 128^0 is just a simplification, and that you'll actually be using variables. Otherwise, why would you multiply by something which should always evaluate to 1? –  Ord Nov 4 '11 at 21:48

To convert a char to an int, you merely cast it:

char c = ...;
int x = (int) c;
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K&R would have you read the one byte from the file using getc() and store it directly into an int which eliminates any issues you might be seeing. However, if you are reading from the file into an array of bytes, simply cast to int as follows:

v->infoFrameSize = (int)buff[17];
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I'm not sure why you're multiplying by 128^0. The only problem I know of when converting from char to int is that char can be signed or unsigned, depending on the platform. If it happens to be signed, a big positive number stored inside a char may end up being considered as negative. When you will print it, it will either be a negative number or an abnormally big number (if you print it as an unsigned integer). The solution is simply to use signed char or unsigned char explicitly in cases like this one.

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"^" is a bitwise XOR Operation, if you want to do an exponent use

pow(128,0);

Why are you multiplying by one?

You can convert from a char to an int by simply defining an int and setting it like so:

char x = 0x13;
int y;
y = (int)x;
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