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I am working on a C++-Addon for nodejs which takes a nodejs Buffer object and does some binary operations on it. My current problem is about the data behind the pointer:

JavaScript environment:

var buf = new Buffer([0x00, 0x7e, 0xff, 0xff]);

C++ Backend code

int length = node::Buffer::Length(chunk);
char* head = node::Buffer::Data(chunk);

/* for debugging */
for (int i = 0; i < length; i++) {
    std::cout << hex << (int) head[i] << "\n";
}

/* outputs: 0x00 0x7e 0xffffffff 0xffffffff */

Why does the pointer interpret the two last bytes as 0xffffffff instead of 0xff? How do I fix this?

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4 Answers 4

up vote 1 down vote accepted

The problem is that char is signed by default in your platform, so (char)0xFF is -1.

Just write:

std::cout << hex << (int)(unsigned char)head[i] << "\n";

It is useful sometimes to write:

typedef unsigned char byte;

And then:

std::cout << hex << (int)(byte)head[i] << "\n";
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1  
There is already a nice type in <cstdint>: uint8_t. No need to add the byte type-alias. –  Joachim Pileborg Apr 14 '13 at 7:57

char is a signed type, which means that a 0xff is -1, which is converted to -1 as int, which is represented as 0xffffffff.

You can fix it like this:

std::cout << hex << (unsigned) (unsigned char) head[i] << "\n";
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1  
char may, or may not, be a signed type. It just happens to be signed on this particular system. –  Joachim Pileborg Apr 14 '13 at 7:54

It's because of this type-cast: (int) head[i]. It is turning your result into a signed int. 0xff is -1 (as an signed char) which as a signed int is 0xfffffff.

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simply because the value is arithmetically extended from 1 byte to 4 bytes, 0xff means -1 (one byte) while still 0xffffffff means -1 (in 4 bytes), you have to use "unsigned char" for this purpose, as your "head" array.

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