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I'm using this code to check that a student number being entered is the correct number of digits. Is there a function like .length() that will work for the variable type double? Thanks!

do {
    cout << "Student's number: (Numeric only)";
    cin >> studentNumber;
    cin.ignore();
}
while (studentNumber.length() != 6);
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5  
If it's a student ID, don't use a double -- use a long instead. –  nneonneo Sep 25 '12 at 21:21
    
Where is the declaration for studentNumber - e.g. what type is it? –  marko Sep 25 '12 at 21:22
3  
This looks like a canonical homework question, so I suggest that you might be wise to perform more validation than just the length of the number and consider what happens when non-numeric input is encountered. –  marko Sep 25 '12 at 21:24
    
The declaration is higher up in the code. –  Blake Sep 25 '12 at 21:24
    
You're right about it being homework, that isn't actually required for the assignment but how would I check for characters along with the length? –  Blake Sep 25 '12 at 21:25

7 Answers 7

up vote 3 down vote accepted

Read it as text, validate it, then parse it:

std::string input;
bool valid = false;
while (!valid) {
    cout << "Student's number: (Numeric only)";
    cin >> input;
    if (input.size() == 6)
        valid = true;
}
double studentNumber = strtod(input.c_str());
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Read it as a string, check it's length while it is still in that representation (also check that it consists only of [0-9]), then convert to a double. Actually, only convert to a double at all if you are going to do math with it. Otherwise keep it as a string.

In general taking user input in non-string types is fraught with danger. Read it as a string, validate and convert.

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Actually this makes more sense. So if I change the variable to a string from the start how can I ensure characters aren't entered? –  Blake Sep 25 '12 at 21:29
1  
@Blake Use something like std::string::find_first_not_of to validate that the entry consists only of the digits [0,9] –  Praetorian Sep 25 '12 at 21:33
1  
Consider std::string::find_first_not_of or a related method. If your instructor requires you to work with c style strings there is strsep. The standard libraries are your friends. –  dmckee Sep 25 '12 at 21:33
do {
  cout << "Student's number: (Numeric only) " << flush;
} while( !( cin >> studentNumber ) || 
         ( studentNumber < 100000 ) || 
         ( studentNumber > 999999 ) );

Placing cin >> studentNumber within the while also ensures that the text entered by the user was successfully converted to what ever type studentNumber is.

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I thought about doing it that way but I know there has to be a way to check the length too. Thanks though. –  Blake Sep 25 '12 at 21:23
1  
@Blake You can check length with log10. Same idea. –  Lalaland Sep 25 '12 at 21:24
    
@blake a further hint: what happens when the extract operator on an istream fails to convert - for instance due to invalid input? Exceptions? some other failure mode? What does studentNumber contain –  marko Sep 25 '12 at 21:31

Can't you just use < and >?

// Require that studentNumber be 3 digits
if(studentNumber < 100 || studentNumber >= 1000) {
    cout << "bad" << endl;
}
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What if it's 1.00001? –  Crazy Eddie Sep 25 '12 at 21:33
1  
@CrazyEddie Then you fire whoever came up with the system that generates IDs. –  Brendan Long Sep 25 '12 at 21:47

If you switch to an integral type, simple division can accomplish this:

long studentNumber;
do {
    // get number
} while (!(studentNumber / 100000L) || studentNumber / 1000000L);

If you actually want the number of digits in an integral type:

int long_digits(long l)
{
    // this code will work for negative numbers, but we don't want them
    if (l < 0L)
        throw std::out_of_range("no negative numbers please");

    int count;
    for (count = 0; l; l /= 10L, ++count);
    return count;
}
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Why don't you use log10? then you need to round downthe result, maybe using floor(double) to find the integer

//remember math.h
#include <math.h>

do {
    cout << "Student's number: (Numeric only)";
    cin >> studentNumber;
    cin.ignore();
}
while (floor(log10(studentNumber)) != 6);

EDIT: A little explanation: log10 allows you to find x in this equation

10^x=y

where y is given and is your exponent.

Long story short, studentNumber must be of 6 'chars', we can write this as

10^5 <= studentNumber < 10^6

or

5 <= log10(studentNumber) < 6

and then

floor(log10(studentNumber)) ==5

only if it is a number of 6 digits in the integer part.

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A double does not represent a good fixed number of decimal digits unless you round it. If that's what you do, then read the other answers.

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