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To get the position of a c++ ofstream's output pointer, I call ostream::tellp() which returns a streampos object. I want to store this value, which may be quite large, into a binary file.

However, I cannot find a way to get the raw value of the output pointer's position from this streampos object. If I were not worried about this value being very large, I would simply convert it to an integer; however, my file may be a few gigabytes in size. Does anyone have any ideas for this?

Thanks!

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1 Answer 1

up vote 2 down vote accepted

streampos is a typedef for some (typically unsigned) integer type. Despite the position in the file often being called the "put pointer", there's not actually a pointer value to obtain.

On most recent compilers, streampos is going to compile to a native 64 bit integer, (i.e. unsigned long long, or unsigned __int64 on msvc++, or uint64_t on GCC), which means you shouldn't have to worry so long as you leave things in terms of streampos values.

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One one of my machines (a Mac) sizeof(streampos)=136, but on another (Linux) sizeof(streampos)=16. Clearly 16 bytes is not enough, so it seems that on the Linux machine streampos is a class. However, I will try converting it to a uint64_t and see if that works. Thank you! –  samsamoa Jan 22 '11 at 17:32
    
16 bytes is 64 bits -- enough for files 2 EiB in size. Even if devices which could hold that much were available today, most operating systems use 64 bit integers to express filesizes, and therefore you couldn't have a file that large. Not sure how you got sizeof(streampos)=136 -- I'm not aware of any architecture on which that is possible. –  Billy ONeal Jan 22 '11 at 17:42
    
Thanks for your help! That makes sense now - I was accidentally thinking 16 bits. On my Mac (10.6.6, Intel Core 2 Duo) I simply included iostream and did "cout << sizeof(streampos) << endl;" and it printed 136. Very strange! –  samsamoa Jan 22 '11 at 22:07

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