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please assist, i am trying to formating a phonenumber like (111)111-1111. i have the following code which works but i would like to write much shorter.

int main(){
    string phone_number;
    cin >> phone_number;
    cout<<"(";
    for(int i = 0; i < 3; i++) {
    cout << phone_number[i];
    }
    cout << ")";
    for(int i = 3; i < 6; i++) {
    cout << phone_number[i];
    }
    cout << "-";
    for(int i = 6; i < 10; i++) {
    cout << phone_number[i];
}
cout<<endl;
return 0;

}

please assist

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3  
Before you start trying to write shorter code, please take the time to indent your code properly. For example, normally the body of a loop is indented some number of spaces from the enclosing for and }. Your code will be unacceptable to most readers until you start doing this consistently. –  Greg Hewgill Oct 16 '11 at 18:31
2  
Why does it need to be shorter? –  PlasmaHH Oct 16 '11 at 18:36
1  
This works only for a subset of phone numbers (US numbers). What if I enter 0049 30 12345678 or +49 30 12345678? –  ott-- Oct 16 '11 at 18:38
    
This seems like a classic homework question. If so, I and many others would greatly appreciate tagging it as such so that we can provide "appropriate" answers (i.e. not providing you the code, which IMO is tantamount to cheating). –  Michael Price Oct 16 '11 at 18:51

6 Answers 6

up vote 3 down vote accepted

Another possibility:

cout << "(" << phone_number.substr(0,3) << ")"
     << phone_number.substr(3,3) << "-" << phone_number.substr(6,4) << endl;
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Use string::insert. But since you are taking a string as input, why wouldn't you give the input in format you need. Any how, this is how it can be done with out any loops if you wish to modify the string. In case you don't wish to change the original string then store the modified to a different temporary variable.

string phone_number = "123456789";
phone_number = phone_number.insert( 0, "(" );  // Original string is modified

// Rest can be achieved in similar fashion

cout << phone_number << endl;
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for (int i=0; i<10; ++i)
{
    if (i == 0) std::cout << '(';
    else if (i == 3) std::cout << ')';
    else if (i == 6) std::cout << '-';
    std::cout << phone_number[i];
}
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Probably wouldn't be good to change your data just to format.

string str(phn);

// Format Phone# 1: void function
printf("(%s)%s-%s", 
    str.substr(0,3).c_str(), 
    str.substr(3,3).c_str(), 
    str.substr(6, 4).c_str());

// Format Phone# 2: returns std::string&
   stringstream p;
   p << "(" << str.substr(0, 3) << ")"
    << str.substr(3, 3) << "-"
    << str.substr(6, 4);

   return p.str();
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Ignoring the question as to why you want to write this "shorter" ...

printf("(%c%c%c)%c%c%c-%c%c%c%c\n", phone_number[0], phone_number[1], phone_number[2],
                                    phone_number[3], phone_number[4], phone_number[5],
                                    phone_number[6], phone_number[7], phone_number[8],
                                    phone_number[9]);

That being said - your code (nor this) checks to see if there's actually 10 numbers present, or if they're numbers at all. That above all is more important than wanting it "shorter".

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2  
That will not work. Perhaps you meant to use %c? –  Tim Oct 16 '11 at 18:37
    
Thx - fingers faster than brain at times. I was trying to get to the last part more so than the printf statement itself. –  Brian Roach Oct 16 '11 at 18:40

Your code is too short, not too long. Any input from the user must always be checked for validity. For instance, what if the used already entered the punctuation, so that phone_number contains "(111)111-1111"? Then your code would output "((11)-)11-1-11" (I think). This is not what you want. At the very least, you must throw out all non-digit characters.

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