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I have a string, "-(1-cos(R*T))/R", that I need to be evaluated in both C and C#. Is there a library, or a quick way to do this? Or do I need to write my own parser?

I'm also assuming that R and T are known and are local variables.

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1  
if (input == "-(1-cos(R*T))/R") return -(1-cos(R*T))/R; This? –  dtb Sep 10 '10 at 17:43
    
No, more like if R = 1 and T = 1, then if (input == "-(1-cos(R*T))/R)" return -0.459697694; –  anon Sep 10 '10 at 17:53
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Well, if you have exactly the string "-(1-cos(R*T))/R" as the input, and you have declared R to be 1 and T to be 1, you can indeed simply return -0.459697694. But I presume that's not what you want. What are you trying to achieve? What parts of the input string are variable? What's the range of expected inputs? –  dtb Sep 10 '10 at 17:59
    
if want to calculate this string, then use your own string parser method, break your string in char array, but there should be already variables declared with same name as in your string. –  AsifQadri Oct 7 '10 at 15:40

4 Answers 4

up vote 3 down vote accepted

There's one on CodeProject that's certainly worth a look. There's also a blog post from 2007 that has a list (and benchmarks) of a number, including a half dozen or so that are free.

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This is in C#

 private void MyMethod1()
        {
            string s = "-(1-cos(R*T))/R";
            float R = 1;
            float T = 1;
            double doutput =-(1-Math.Cos(R*T))/(R);
        }
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No, there is no eval() in C.

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Regular Expression is what you are looking for.

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4  
I doubt it. With regular expressions you can't even check if the number of parentheses is balanced. –  dtb Sep 10 '10 at 17:46
    
On the other hand, if he's not really trying to parse an arbitrary expression, but a fixed expression with some changing constants, regular expressions might indeed be a good solution. –  dtb Sep 10 '10 at 17:55

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