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I am writing a Bittorrent Client in C++ and need to generate a 20 Byte Peer ID. The first 8 characters are comprised of -WW1000- which represent the name of the client and the version number. The other 12 digits need to be a random number that need to be generated randomly every time the client starts.

How could I generate the 12 digit random number and concatenate it with a std::string containing the first 8 characters (-WW1000-)?

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up vote 5 down vote accepted
const string CurrentClientID = "-WW1000-";  
ostringstream os;
for (int i = 0; i < 12; ++i)
{
    int digit = rand() % 10;
    os << digit;
}
string result = CurrentClientID + os.str();
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1  
This will work, as long as you don't need uniform distribution. – cdhowie Jul 23 '12 at 16:14
1  
Also if two clients connect within the same period time(0) reports the same number both clients will get the same "Random" ID. Move the srand code outside of the function call. – Scott Chamberlain Jul 23 '12 at 16:37
    
@ScottChamberlain: good point! Removed the srand – Andrew Jul 23 '12 at 16:47

One approach is to make a large string using rand() N times, where N is the length of the number in digits you want (a naive way to avoid modulo bias):

size_t length = 20;
std::ostringstream o;

o << "-WW1000-";
for (size_t ii = 8; ii < length; ++ii)
{
    o << rand(); // each time you'll get at least 1 digit
}

std::string id = o.str().substr(0, length);

And if you've got a new enough C++ compiler/library:

// #include <random>
std::random_device r;
std::mt19937 gen(r());
std::uniform_int_distribution<long long> idgen(0LL, 999999999999LL);

std::ostringstream o;
o << "-WW1000-";
o.fill('0');    
o.width(12);
o << idgen(gen);

std::string id = o.str();
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I don't know how "secure" your id has to be, but because you said:

that need to be generated randomly every time the client starts,

you could probably just use that information (10 digits from seconds after 1970-01-01) and add another two random digits (00..99):

using namespace std;
...
...
ostringstream id;
id << "-WW1000-" << setw(10) << setfill('0') << time(0) << setw(2) << rand()%100;
...

On my system, this will, in this moment, print:

cout << id.str() << endl;

    -WW1000-134306070741

If your requirements are stronger, you should, of course, use a full-random based variant.

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