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import java.util.Scanner;


public class Main {


public static void main(String[] args) {
    boolean x;


    Scanner sc = new Scanner(System.in);

    String igual = sc.next().toString();        

    String[] yes = new String[15];
    yes[0]="When I find myself in times of trouble";
    yes[1]="Mother Mary comes to me";
    yes[2]="Speaking words of wisdom";
    yes[3]="Let it be ";
    yes[4]="And in my hour of darkness ";
    yes[5]="She is standing right it front of me ";
    yes[6]="mama just killed a man";
    yes[7]="And when the broken hearted people ";
    yes[8]="Living in the world agree ";
    yes[9]="There will be an answer ";
    yes[10]="For though they may be parted";
    yes[11]="there is still a chance that they will see";
    yes[12]="And when the night is cloudy";
    yes[13]="There is still a light that shines on me";
    yes[14]="Shine until tomorrow";

    String[] no = new String[5];
    no[0]="I wake up to the sound of music";
    no[1]="Mother Mary comes to me";
    no[2]="put a gun against his head";
    no[3]="pulled my trigger now his dead";
    no[4]="mama life had just began";

    // searches in the yes array
    for (int i=0 ; i<yes.length ; i++){
    x=igual.trim().equalsIgnoreCase(yes[i].trim());

    if (x=true){
        System.out.println("true");
    }
    }

            //searches in the no array
    for (int j=0 ; j<no.length ; j++){
    x = igual.trim().equalsIgnoreCase(no[j].trim());
    if (x=true){
        System.out.println("false");
    }
    }

}

}

prints 15 times true and 5 times false even though the string you enter equals only one of the strings in the array. I debuged the code and those were the results It looks like it sets the 'x' variable inside the 'if' condition thank you in advance.

share|improve this question

2 Answers 2

Assignments return their right-hand side. Therefore (from your if-statement conditions):

x=true

always returns true. You were probably looking for x == true or, more conventionally, x (as in if (x) {...}). The simpler second variant should generally be favored.

share|improve this answer
    
This is one of the few occassions where this kind of mistake bites one in Java - in C this happens more often, as C has a very liberal understanding of what makes a boolean... To avoid this, either use true == x to avoid the condition to be mistaken as assignment, or just use if(x) –  Gyro Gearless Jul 24 '13 at 21:23
1  
I strongly recommend the simple if (x) { ... } form. –  erickson Jul 24 '13 at 21:35
    
@erickson As do I –  arshajii Jul 24 '13 at 21:36

Use x == true, an equality expression, instead of x = true, which is an assignment expression.

The JLS, chapter 15.26, says this

At run time, the result of the assignment expression is the value of the variable after the assignment has occurred.

So, in the code

if (x = true)

x gets assigned true and then if evaluates that true. So, regardless of the value you got from the equalsIgnoreCase, the statement as is will always enter the if block because the assignment expression will return true.

Also, you don't need to do a conditional check on a boolean. You can simply use

if (x) { // read as if x is true
    ...
}
share|improve this answer
    
"then your if evaluates x as true" No that's not the reason. The value of x itself is not what determines the outcome of the if-statement in this case. –  arshajii Jul 24 '13 at 21:24
    
@arshajii I actually looked into it and, unless I'm misinterpreting it, the JLS says At run time, the result of the assignment expression is the value of the variable after the assignment has occurred. In chapter 15.26. –  Sotirios Delimanolis Jul 25 '13 at 1:07
    
Yes, that's always true, but that return value isn't retrieved/returned from looking up the variable to which it was assigned, as your answer implies. In other words, if doesn't "check the value of the boolean x" after it is assigned. –  arshajii Jul 25 '13 at 1:12
    
@arshajii I don't get how you interpret the value of the variable. If the result of the assignment expression is the value of the variable, then the if does check the value of x. –  Sotirios Delimanolis Jul 25 '13 at 1:16
1  
Let me try to rephrase it. Your answer implies that the following happens: right-hand side is evaluated to true, x is assigned to true, x is looked-up and it's value is returned. In reality, this happens: right-hand side is evaluated to true, this value is cached, x is assigned to true, cached value of true is returned (by "cached" I mean duplicated on the stack). x is never 'looked-up' after it is assigned here. You can actually see this in the bytecode if you write something like int x = 1; System.out.println(x = 3); and view it via javap. –  arshajii Jul 25 '13 at 1:19

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