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I am trying to write a method that converts from engineering notation to double. The case I have now is very special! I mean I am not going to look for powers like "Mega, Giga and ..." I am just looking for floating points.

Some valid examples of my Case are:

1.0 A should be 1

1.0064 mA or 1.0064 Ma should be 0.0010064 Note that I count both M and m as mili...that can be achived using ToLower() method. and that A or a counts as Ampere for current.

I have the same case for Voltage, so in that user can enter V or v instead.

again some valid cases: 256ma 366 m a 10.665 uA

So at the end before I pass this string to my converting method, I do text.ToLower().Remove(" ", string.Empty); this will hopefully leave me with a easy string to work on.

Now the second step is to split numbers from characters: 10.665ua should result in 10.665 and ua so then I can check for first character of ua against a list of allowed strings and find the power factor.

private List<string> AllowedCurrentStrings = new List<string>() { "a", "ma", "m", "ua", "u", "na", "n", "pa", "p" };

So I am looking for your help. first I need to know how to split numbers from characters and then group the characters into a string (Or do I need to do the later one?)

Or if you think my approach is not good, it would be nice to hear a better one from you!

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2 Answers 2

up vote 2 down vote accepted

You could try this:

    public double ConvertMeasure(string measure)
    {
        measure = measure.ToLower().Replace(" ", "");
        measure = measure.Substring(0, measure.Length - 1);
        char m = measure.Last();
        if (char.IsDigit(m))
            return double.Parse(measure, CultureInfo.InvariantCulture);

        double ret = double.Parse(measure.Substring(0, measure.Length - 1),
                                  CultureInfo.InvariantCulture);
        switch (m)
        {
            case 'm': return ret / 1E3;
            case 'u': return ret / 1E6;
            case 'n': return ret / 1E9;
            case 'p': return ret / 1E12;
        }
        return ret;
    }
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It seems like the OP wanted to originally accept either 1.0 mA or 1.0 m and get the same result - am I confused, or does this solution break in that case? –  Code Jockey Nov 22 '11 at 17:07
    
@CodeJockey: I think OP wants to convert any string composed by a double, an optional char (m, u, etc...) and a char for measure unit. So my function removes last char and convert double according to optional char. Is it OK in your opinion? –  Marco Nov 22 '11 at 17:21
    
Well actually what I have to care about is user input...and why I am using that List for units is to check if user has entered valid strings. For example 1.005 mmA obviously is not a valid string and should be taken care of. Also you can see that I have "m", "u" and... as well so the method should try to find this special cases. Anyway, Marco's answer solved a big part of the problems I had, I will try to improve the method now. –  Sean87 Nov 22 '11 at 17:33
    
@Sean87: my point is that Marco's solution will convert 1.005 mmA to 0.001005 (as will mine) but will parse 1.005 muA as 0.000001005, by taking the second-to-last alpha character as the multiplier. Mine will not match at all (it is invalid, after all). Marco's solution will fail to parse 1.005 m (because there is no second-to-last character), but mine will parse it as 0.001005 - is this not what you wanted? –  Code Jockey Nov 22 '11 at 17:48
    
@Marco - I think that the list AllowedCurrentStrings includes m, u, n, and p because he wants to accept something like 1.005 m and convert it to 0.001005d. I believe the intent was to accept the A or V part of the unit as implied (but not required). If I have interpreted correctly, your solution will not properly parse 1.005 m and will instead actually return 1.005 - an unconverted value. I may have misinterpreted the input requirement, though. –  Code Jockey Nov 22 '11 at 17:54
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Though string parsing may be a teeny bit faster over all, this can certainly all be done with regex. A solution using regex to parse the string and a dictionary to select the conversion factor, but which is essentially the same as the answer from @Marco with a few improvements functionally, would be:

public double ConvertMeasure(string measure)
{
    var re = new Regex(@"(?i)(?<value>-?[\d.]+)\s*(?<multiplier>[munp]?)\s*(?<unit>[avw]*)");
    var conversionFactors = new Dictionary<string, double> {
    { "", 1 }, 
    { "m", 1E3 }, 
    { "u", 1E6 }, 
    { "n", 1E9 }, 
    { "p", 1E12 } };

    var m = re.Match(measure);

    double value = Convert.ToDouble(m.Groups["value"].Value);
    return value / conversionFactors[m.Groups["multiplier"].Value.ToLower()];
}

This ignores the case of the string and ignores whitespace (including tabs, which might result if someone were to cut-and-paste a value instead of typing it) between the number and the multiplier and the unit, but does not ignore whitespace within the "number" (that is, 1.234 mA is fine but 1.2 34 mA should not be fine IMO, yet is parsed as 1.234 with @Marco's solution - just be careful :D ). Additionally, it will still work if someone accidentally pastes extra non-numerical characters in front of the number, such as = or a surrounding set of parentheses.

Of course, neither solution as written will return the actual unit in any way. I am assuming since you were planning to allow "m", "u", etc. (without the unit) that you have something similar to a text box with "Amps" or "Amperes" next to it and want to allow someone to put in any of 1.3 1.3A, 1.3 u or 1.3 uA etc. Thus, you know what the base unit is - this solution will provide the conversion functionality and ignore the actual unit.

The character class [avw] in the regex specifies what units are allowed (in this case a, v, or ,w). If you want to prevent someone from ACCIDENTALLY putting 1.234 mV into a field that expects Amps, you might modify the function to accept an "AllowedUnits" string parameter (like a or v), then inject that parameter into the regex in place of the avw, thus:

    var re = new Regex(@"(?i)(?<value>-?[\d.]+)\s*(?<multiplier>[munp]?)\s*(?<unit>[" + AllowedUnits + @"]*)");

...then pass "a" into any conversion for Amps, or "v" into any conversion for Volts, etc.

I have not tested it, but I think @Marco's solution will break if there is no unit (e.g. if the string only has m, u, n, or p instead of mA, ua, nV, etc.). I believe it will trim the unit because it cuts off the last character. If there is only one character (e.g. u) then it will lose that data! My solution will not only work regardless of the unit, but it will even work if you want to later support more units like Hz, mol, or cd - though moles and candelas may not be quite as common in an engineering context...

Good luck and have fun!

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Thanks a lot for nice points! –  Sean87 Nov 22 '11 at 17:21
1  
As written, my solution will actually not parse a string such as 1.005 muA (because it is not valid) if you want to accept it as a value and return a converted double based upon the m prefix, you can change the [avw] in the regex to [a-z]. This will remove the checking for a valid unit, and merely allow any number of letters (upper or lower case) after the first valid multiplier (m, u, n, or p). –  Code Jockey Nov 22 '11 at 18:00
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