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Why does this work:

public static double[][] param(double[][] data){
    for (int i=0;i<data.length;i++){
      for (int j=0;j<data[0].length;j++){
            if(j!=1){
           data[i][j] = data[i][j] * 1/10;//for some reason didn't accept as argument           

            }
            System.out.println(data[i][j]);
      }
    }
    return data;
}

with the following output:

13581.0 337.42900390625 13571.0 337.1949951171875 13561.0 336.59599609375 13541.0 336.356005859375 13531.0 336.072998046875 13521.0 335.7989990234375 13511.0 335.5219970703125 13501.0

but this doesn't :

public static double[][] param(double[][] data, double param){

    for (int i=0;i<data.length;i++){
      for (int j=0;j<data[0].length;j++){
            if(j!=1){
           data[i][j] = data[i][j] * param;            

            }
            System.out.println(data[i][j]);
      }
    }
    return data;
}

With the following (incorrect) output.

13581.0 0.0 13571.0 0.0 13561.0 0.0 13541.0 0.0 13531.0 0.0 13521.0 0.0 13511.0 0.0 13501.0

Both methods compile fine but when I try to run the second one it makes all the data in the first column = 0.

They are both being called in the same way the only difference is that one gets the 1/10 value from the argument and the other it is hard coded onto (not ideal but it's the only way I can get it to work for some inexplicable reason).

Is this problem happening due to the fact it does not like being paramaterised by a number < 0?

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1  
what are outputs? how do you call methods? –  Nikolay Kuznetsov Mar 10 '13 at 6:52
1  
You have to show how the value of param is calculated in the second example. I'll bet it's double param = 1/10;, in which case integer division is being done and results in zero. It works in the first example because the expression is evaluated left-to-right and conversions to double happen in the right order. –  Jim Garrison Mar 10 '13 at 7:01
1  
There has got to be like a hundred duplicates of this question. –  cHao Mar 10 '13 at 7:08
1  
@cHao the problem with questions like these is that you cannot search them until you know the answer because you have no idea what the cause of the problem is. –  Magpie Mar 10 '13 at 7:15
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2 Answers 2

up vote 2 down vote accepted

by calling the the method

public static double[][] param(double[][] data, double param)

as

param(data, 1/10);

the value 1/10 is evaluated to 0 because of the integer division so the above method call is same as

param(data, 0);

the statement

data[i][j] = data[i][j] * param;  

in param() is equivalent of

data[i][j] = data[i][j] * 0 /*`param`*/;  

that is why it makes all the data in the first column = 0 in the second case.

Where as in the first case it does not make data in the first column = 0 because the statement:

data[i][j] = data[i][j] * 1/10;

is converted into it equivalent as follows

data[i][j] = (data[i][j] * 1)/10;// the (data[i][j] * 1) will return a double value

when a double/int operation is done result will be a double. That is why the first case works as you expected where as second case does not.

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That makes perfect sense. So, the reason it didn't evaluate the fraction to zero in the first example was because it was doing all the procedure at once? If not, what was it that was happening to make that work for me? –  Magpie Mar 10 '13 at 7:13
1  
Edit to my answer includes the reason why the first case was working for you! check out. –  codeMan Mar 10 '13 at 7:16
    
There seems like a lot of things to watch out for with java! Thank you for your help. –  Magpie Mar 10 '13 at 17:25
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It would work fine if param is initialized as

double param = 0.1; or

double param = 1.0d/10.0d;

instead of

double param = 1/10;

because in double param = 1/10 case when 1/10 is executed, there are two integers being used in operation which are rounded off to zero and assigned to param.

it worked fine in first method posted by you because the expression was being calculated form left to right since both * and / have same arithmetic operator priority.

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