Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

In C++ I need string representations of integers with leading zeroes, where the representation has 8 digits and no more than 8 digits, truncating digits on the right side if necessary. I thought I could do this using just ostringstream and iomanip.setw(), like this:

int num_1 = 3000;
ostringstream out_target;

out_target << setw(8) << setfill('0') << num_1;
cout << "field: " << out_target.str() << " vs input: " << num_1 << endl;

The output here is:

field: 00003000 vs input: 3000

Very nice! However if I try a bigger number, setw lets the output grow beyond 8 characters:

int num_2 = 2000000000;
ostringstream out_target;

out_target << setw(8) << setfill('0') << num_2;
cout << "field: " << out_target.str() << " vs input: " << num_2 << endl;
out_target.str("");

output:

field: 2000000000 vs input: 2000000000

The desired output is "20000000". There's nothing stopping me from using a second operation to take only the first 8 characters, but is field truncation truly missing from iomanip? Would the Boost formatting do what I need in one step?

share|improve this question
    
Shifting magnitude is not truncation - you will need either a string operation, or maths. –  Matt Curtis May 25 '10 at 5:34

2 Answers 2

up vote 2 down vote accepted

I can't think of any way to truncate a numeric field like that. Perhaps it has not been implemented because it would change the value.

ostream::write() allows you to truncate a string buffer simply enough, as in this example...

    int num_2 = 2000000000;
    ostringstream out_target;

    out_target << setw(8) << setfill('0') << num_2;
    cout << "field: ";
    cout.write(out_target.str().c_str(), 8);
    cout << " vs input: " << num_2 << endl;
share|improve this answer
1  
it looks like this is about the closest one can get with the standard library. thanks! –  Ian Durkan May 27 '10 at 17:14

If you assume that snprintf() will write as many chars at it can (I don't think this is guaranteed),

char buf[9];
snprintf(buf, 10, "%08d", num);
buf[8] = 0;
cout << std::string(buf) << endl;

I am not sure why you want 2 billion to be the same as 20 million. It may make more sense to signal an error on truncation, like this:

if (snprintf(buf, 10, "%08d", num) > 8) {
    throw std::exception("oops")
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.