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HashMap<String, String> config = Feeds.config; 

String num =  config.get("NumOfFeeds");

System.out.println(num);

feedsAmount = ((Integer)num).intValue();

System.out.println(feedsAmount);

I've also tried Integer.parseInt(num) and Integer.decode(num) and Integer.valueof(bu)

Results as follows: 40

Exception in thread "main" java.lang.NumberFormatException: For input string:"40"
at java.lang.NumberFormatException.forInputString(NumberFormatException.java:48)
at java.lang.Integer.parseInt(Integer.java:458)
at java.lang.Integer.parseInt(Integer.java:499)
at fetch_RSS.<init>(fetch_RSS.java:40)
at testing.main(testing.java:27)

The problem was caused by different encoding from the txt file I'm reading from and the encoding in Elipse which is the macRoman by default.

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what are you getting when u print num? –  Adithya Surampudi Nov 21 '11 at 21:41
3  
Please clarify what issue you have with Integer.parseInt() which should be what you are looking for. –  Løkling Nov 21 '11 at 21:41
1  
You should probably tell us your output of System.out.println(num);. –  Udo Held Nov 21 '11 at 21:44
3  
Integer.parseInt("40") does not throw java.lang.NumberFormatException. –  Bhesh Gurung Nov 21 '11 at 21:47
1  
Wild guess: your input contains "4O" (capital o) and not "40" !? Try adding this to your code to verify that the string is what you expect (it cant be): System.out.print("Input is equal to 40:") System.out.println("40".equals(num)); –  Løkling Nov 21 '11 at 22:18
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5 Answers

The correct way of working is this:

String num = config.get("NumOfFeeds");
int feeds = Integer.parseInt(num);

This, only when you are sure that the String is representing a number the valid way.

-30         // correct
0           // correct
2000        // correct


"40"        // invalid
40          // valid

2.000       // invalid
2.000.000   // invalid
20,0        // invalid
2,000,000   // invalid
share|improve this answer
    
null is also an invalid format (and most likely) –  MeBigFatGuy Nov 21 '11 at 21:46
    
What if there is whitespace surrounding the number? –  Gabe Nov 21 '11 at 21:47
    
@Gabe: Invalid number as well (NumberFormatException precisely) –  Vivien Barousse Nov 21 '11 at 21:50
    
spaces are a no-go as well. –  MeBigFatGuy Nov 21 '11 at 21:51
    
Thank you for your help! I've tried the parseInt(num), but it still throws the same exception. –  user1058648 Nov 21 '11 at 21:56
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Your exception got raised in Integer.java:458.

Looking into the source code of Integer I see that some characters of your String "40" returned a negative value (most probably -1) for Character.digit(s.charAt(i++), radix) where i is iterating over String's characters and radix is 10.

This should not happen normally. But it happens when the String is "4o" and not "40" like @Løkling's wild guess in the comments.

You should debug here to see what really happens.

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What is s in this case? Is it possible that OP could have some NLS setting that is specifying non-ASCII (maybe Arabic or Indic) digits so s doesn't contain ASCII digits? –  Gabe Nov 21 '11 at 23:16
    
@Gabe s is the String to parse. So it should be "40" when everything is like @user1058648 said. Debugging is here much more efficient since we cannot help here any further I think. With the data given we cannot reproduce the issue. –  Fabian Barney Nov 22 '11 at 5:25
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Of course you can't cast from String to Integer. A String is not a Integer, and Integer is not a String.

You have to use int i = Integer.parseInt(..). It works if the string is a properly formatted integer.

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Thanks for your help! I tried this method but it still throws the same Exception.... –  user1058648 Nov 21 '11 at 22:08
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For a cast to succeed in Java, the reference being cast must point to an object that is actually an instance of the type being cast to. A reference to String can't be cast to Integer because an object couldn't possibly be both things.

(This is somewhat unlike a cast in C, which is basically just saying, reinterpret the data stored here according to a different datatype. It would still be incorrect in C to use casting as a method to convert a string representing a number to a numeric value.)

Integer.parseInt is what you are looking for here. What problem are you having with it?

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Thanks for your help! I got 40 printed out and followed by the Exception... –  user1058648 Nov 21 '11 at 22:09
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Remember : In java, we can only cast between objects if they are EXPLICITLY of the same type ! In other languages , like python, we can do the casting you requested here, because those languages allow "duck typing".

You must use Integer.parseInt("1234"), to create an Integer object from a String.

Alternatively you could create an Object wrapper to your data :

class MyObject
{
    Object input; 
   public MyObject(Object input)
    {
         this.input=input;
    }

    public Integer getInt()
   {  
    return Integer.parseInt(input.toString());
   }
    public String getString()
   {
       return input.toString();
   }
} 

This would be overkill for your simple problem, however :)

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