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C++ is not my language so forgive this simple problem. I'm losing precision in an atof conversion from string to double, can anyone help?

string lAmount;

string lSuspendedInt = "131663.51";
string lAccruedInterest = "0.0";
double dSuspendedInt= atof(lSuspendedInt.c_str());   //PROBLEM HERE?
double dAccruedInterest = atof(lAccruedInterest.c_str());
double dTotal = dSuspendedInt + dAccruedInterest;

char cAmount[50];

memset(cAmount,0X00,sizeof(cAmount));
  sprintf(cAmount,"%g*",dTotal);
  lAmount = cAmount;


cout << "lAmount: "<<lAmount<<endl; //PRINTING: 131664 not 131663.51

I've played with %f in the memset function however this gives 131663.510000

Thanks in advance.

Sapatos

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If I were needing this exact of an amount, I'd consider using fixed point instead. On the C++ side, I'm sure there are better ways to convert string to double besides atof. sprintf() is another C way of doing it as well if you think the problem is there. As a comment as I don't have an exact answer here for you. –  Michael Dorgan Jan 24 '11 at 4:55
1  
@Michael: one can use streams, though it's bulky, C++0x introduces specific stof (and the whole family) instructions as part of the Standard Library. –  Matthieu M. Jan 24 '11 at 8:00

3 Answers 3

up vote 2 down vote accepted

The problem is your %g format operator, which isn't specified with enough precision. You might want %.2f instead, which prints two digits after the decimal point.

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thansk that works –  sapatos Jan 24 '11 at 5:03

The sprintf %g format specifier defaults to printing six significant digits. If you want more, you can explicitly specify how many should be printed:

sprintf(cAmount,"%.8g*",dTotal);
share|improve this answer

The function atof creates a double. See here. Your problem is that the %g returns either the shorter of float or scientific notation. See here. Also note, that you're adding the in * notation which signifies that there is an expected truncation in the number of printed characters.

share|improve this answer
    
the * was a typo :( –  sapatos Jan 24 '11 at 5:02
    
The * notation would need to be before the conversion specifier to have any affect anyway... as is it's just printed out as a normal character. –  Tony D Jan 24 '11 at 5:42

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