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String str=(37.028994, 35.26719589999993);

I have to retrieve these in separate variables.Can any one help to get those values?

For example, output should be of the following type.

a=37.028994
b=35.26719589999993

Thanks in advance!!!

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3  
What a strange form of String representation. Will it be compiled? –  Andremoniy Feb 5 '13 at 13:15
    
Did you mean "(37.028994, 35.26719589999993)" or "37.028994, 35.26719589999993" or what? –  Mikhail Vladimirov Feb 5 '13 at 13:19
    
i mean (37.028994, 35.26719589999993) –  Tarun Gupta Feb 5 '13 at 13:23
2  
(37.028994, 35.26719589999993) is not a string, "(37.028994, 35.26719589999993)" would be –  Oscar Feb 5 '13 at 13:29
    
I don't know if this would be relavent but I think you should use a map for this –  noMAD Feb 5 '13 at 23:24

4 Answers 4

    String str="(37.028994, 35.26719589999993)";
    str = str.substring(str.indexOf("(")+1 , str.indexOf(")"));
    String[] s = str.split(",");
    double a = Double.parseDouble(s[0]);
    double b = Double.parseDouble(s[1]);
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I think you meant this: String str = "37.028994, 35.26719589999993";

For which, you can use the str.split(","); method, and then do a Double.parseDouble() on the each element of the array of the split strings.

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First off, you need a pass in a String in the fist place...so I would assume the code should be:

String str="37.028994,35.26719589999993";

Then you can use String.split(",") to return an array of strings:

String[] splits = str.split(",");

Now do what you like with the array.

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Matcher m = Pattern.compile ("\\d+\\.\\d+").matcher (str);
m.find ();
double a = Double.parseDouble (m.group ());
m.find ();
double b = Double.parseDouble (m.group ());
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Watch out, you're assigning a double to a string. –  Gamb Feb 5 '13 at 13:17
    
Seems unnecessarily complicated (regex and such), Achintya Jha's answer is much more to the point. –  j0ntech Feb 5 '13 at 13:18
    
It was not obvious whether brackets are part of string or not and what is separator in general case. Jha's answer leaves extra space in second part which, fortunately, does not break parseDouble. –  Mikhail Vladimirov Feb 5 '13 at 13:23

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