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I'm loading a .obj file that has lines like

vn 8.67548e-017 1 -1.55211e-016

for the vertex normals. How can I detect them and bring them to double notation?

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5 Answers

up vote 2 down vote accepted

The standard library function strtod handles the exponential component just fine (so does atof, but strtod allows you to differentiate between a failed parse and parsing the value zero).

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Thanks. Most elegant solution. –  omgzor Dec 19 '10 at 1:40
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A regex that would work pretty well would be:

-?[\d.]+(?:e-?\d+)?

Converting to a number can be done like this: String in scientific notation C++ to double conversion, I guess.

The regex is

-?      # an optional -
[\d.]+  # a series of digits or dots (see *1)
(?:     # start non capturing group
  e     # "e"
  -?    # an optional -
  \d+   # digits
)?      # end non-capturing group, make optional

*1) This is not 100% correct, technically there can be only one dot, and before it only one (or no) digit. But practically, this should not happen. So the regex is a good approximation and false positives should be very unlikely. Feel free to make the regex more specific.

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I'd suggest breaking the [\d.]+ up into \d+\.\d+ to prevent false matches. Use \d* if you don't require digits before and/or after the decimal point. –  marcog Dec 18 '10 at 18:38
    
IS that not going to match 5.5.5.5.5.5.5.5.5.5.5.5.5 –  Loki Astari Dec 18 '10 at 18:39
    
@Martin: Yes, it is. The question is: Is such a value likely to happen? If yes, the regex can easily be made more specific. My guess would be that the 5.5.5.5 scenario is rather unlikely in these circumstances. –  Tomalak Dec 18 '10 at 18:43
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You can identify the scientific values using: -?\d*\.?\d+e[+-]?\d+ regex.

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Never use {0,1}—use ? instead. The former is longer, no clearer, and has an identical effect. –  Antal S-Z Dec 18 '10 at 18:39
    
{0,1} can be replaced with ?. But why would you want the decimal point to be optional? And this doesn't allow for negative numbers. It also falsely matches .0 which is probably not desired. –  marcog Dec 18 '10 at 18:41
    
@marcog: Probably because according to the example data, the decimal point IS optional. The third field is simply "1". –  Ben Voigt Dec 18 '10 at 18:45
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If you can be sure that the format of the double is scientific, you can try something like the following:

  string inp("8.67548e-017");
  istringstream str(inp);
  double v;
  str >> scientific >> v;
  cout << "v: " << v << endl;

If you want to detect whether there is a floating point number of that format, then the regexes above will do the trick.

EDIT: the scientific manipulator is actually not needed, when you stream in a double, it will automatically do the handling for you (whether it's fixed or scientific)

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Well this is not exactly what you asked for since it isn't Perl (gak) and it is a regular definition not a regular expression, but it's what I use to recognize an extension of C floating point literals (the extension is permitting "_" in digit strings), I'm sure you can convert it to an unreadable regexp if you want:

/* floats: Follows ISO C89, except that we allow underscores */
let decimal_string = digit (underscore? digit) *
let hexadecimal_string = hexdigit (underscore? hexdigit) *

let decimal_fractional_constant =
  decimal_string '.' decimal_string?
  | '.' decimal_string

let hexadecimal_fractional_constant =
  ("0x" |"0X")
  (hexadecimal_string '.' hexadecimal_string?
  | '.' hexadecimal_string)

let decimal_exponent = ('E'|'e') ('+'|'-')? decimal_string
let binary_exponent = ('P'|'p') ('+'|'-')? decimal_string

let floating_suffix = 'L' | 'l' | 'F' | 'f' | 'D' | 'd'
let floating_literal =
  (
    decimal_fractional_constant decimal_exponent? |
    hexadecimal_fractional_constant binary_exponent?
  )
  floating_suffix?

C format is designed for programming languages not data, so it may support things your input does not require.

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