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I have a two Dimensional Object array (Object[][] data) that holds pairs of products-prices.
I try to pass these values to a Map with the following way.

private String myPairs = "";
private String[] l, m;

for (int i=0; i<data.length; i++){
    myPairs += (String)data[i][0] + ":" + String.valueOf(data[i][1]) + ",";
}

Map<String, Double> pairs = new java.util.HashMap<>();
l = myPairs.split(",");

for (int i=0; i<l.length; i++){
    m = l[i].split(":");
    pairs.put((String)m[0], Double.parseDouble((String)m[1]));             
}

I get a java.lang.ArrayIndexOutOfBoundsException. What's the wrong I have done?

share|improve this question
    
on what line are you getting ArrayIndexOutOfBound ?, also go thru your debugger and you could solve it yourself .. :) –  PermGenError Jan 31 '13 at 14:20
    
on line pairs.put((String)m[0], ....) –  Stanos Jan 31 '13 at 14:21
1  
what contains in object data??? –  alnasfire Jan 31 '13 at 14:22
4  
Why don't you directly add the values in the map in the first for loop? Or is the serialized representation used anywhere else you didn't provide? –  sp00m Jan 31 '13 at 14:23
    
Are you sure that the l array contains values and is correctly split? –  Dimitri Jan 31 '13 at 14:32

4 Answers 4

Try

for (int i=0; i<l.length-1; i++){
    m = l[i].split(":");
    pairs.put((String)m[0], Double.parseDouble((String)m[1]));             
}
share|improve this answer
    
It may be helpful to provide some explanation (otherwise people may misunderstand / not understand (and possibly down-vote, as happened here)). –  Dukeling Jan 31 '13 at 14:45

You problem is here:

pairs.put((String)m[0], Double.parseDouble((String)m[1]));

The first for loop creates a string that ends with a ,. For example "foo:0.1,bar:0.2,".

Then, you split by ,. So, the above example will return ["foo:0.1"; "bar:0.2"; ""]. Note the empty string value, due to the last , of the string.

Finally, for each value, you split by :. It works for the first two values (i.e. ["foo"; "0.1"] and ["bar"; "0.2"]), but the last one will be a 1-value array, containing an empty string: [""].

When trying to access the second value of the array (i.e. the index 1 since arrays are 0-based indexed), the ArrayIndexOutOfBoundsException get thrown.


Several solutions:

In the first loop, put a condition to add the , or not:

myPairs += (i == 0 ? "" : ",") + (String)data[i][0] + ":" + String.valueOf(data[i][1]);

OR Just after your first loop, remove the last char of the string:

myPairs = myPairs.substring(0, myPairs.length() - 1);

OR In the second loop, don't go until the last value, but only until the n-1 one:

for (int i=0; i<l.length - 1; i++)

OR even better, only if you don't need the string representation you're building in the first loop, replace all your code by:

for (int i=0; i<data.length; i++) {
    pairs.put((String)data[i][0], Double.parseDouble((String)data[i][1])); 
}
share|improve this answer

When the first for-loop ends, you have all the pairs separated with ',' and an extra ',' in the end. So, l.length is the number of pairs plus one. Though, this shouldn't produce an error so far.

The problem is that when you split every pair on ':', the last element of l is equal to a blank string. So the splitting produces an 1-element-array, containing a blank string. The error occures because you ask for m[1].

Try not adding the ',' after the last element of the pairs, and the problem should be solved.

I hope this helps :)

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The last element in the split of ,s is empty (because you say + "," on the last iteration of the first loop), so skip the last element in the second loop.

for (int i = 0; i < l.length-1; i++)
{
    m = l[i].split(":");
    pairs.put((String)m[0], Double.parseDouble((String)m[1]));             
}

Also note that if the supplied strings contains :s or ,s, your algorithm would probably throw an exception too.

Note - A way better way (and to avoid the above) would just be to do it in the first loop, something like:

for (int i = 0; i < data.length; i++)
{
    pairs.put((String)data[i][0], Double.parseDouble((String)data[i][1]));
}
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