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here is code

#include <iostream>
#include <fstream>
#include <cstring>
using namespace std;

int main()
{
  ofstream out("test", ios::out | ios::binary);

  if(!out) {
    cout << "Cannot open output file.\n";
    return 1;
  }

  double num = 100.45;
  char str[] = "www.java2s.com";

  out.write((char *) &num, sizeof(double));
  out.write(str, strlen(str));

  out.close();

  return 0;
}

i dont understand only this

out.write((char *) &num, sizeof(double));

why we need (char *)&num?or sizeof(double)?

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Out of curiosity, is there any reason you can just use the stream insertion operator (operator<<()) in this case? You wouldn't have to worry about such conversions by using it. –  Void Jul 28 '10 at 20:53
    
Unlike many of your other questions, this is the kind of question we can answer - fairly clear, real code - do I detect that there is more than one person using your account? –  anon Jul 28 '10 at 20:55
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2 Answers

up vote 3 down vote accepted

write takes two parameters, a char* and a length.

&num is actually a double*. It's the value we want, but it's the wrong type, and the compiler would complain. The (char*) tells the compiler to treat this as a char*. Basically, it says to the compiler "Shutup. I know what I'm doing".

sizeof(double) is the size of the double in characters. (Usually, this is 8).

Together, they say to write the 8 bytes starting at the address given by &num. (or in other words, write out the bytes that make up num)

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"is the size of the double in characters". No, it's the size in bytes. –  0x499602D2 Jan 3 at 19:45
    
Doesn't really matter, as the Standard requires that the sizeof(char) == 1 –  James Curran Jan 6 at 2:11
    
The definition of "character" is not char. And how do we know you are even referring to char? You could be referring to wchar_t (which on most implementations is 4 bytes) or some other user-defined type that acts like a character. It is more unambiguous to say bytes because that is unit of measurement sizeof returns. –  0x499602D2 Jan 6 at 17:03
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You need them because you're accessing the component bytes that make up the double. write expects to receive a char *, so you cast the address to char *. Since it doesn't know the type of object being written (with the right cast, write will accept a pointer to almost anything), so you need to tell it how many bytes make up the object to be written.

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