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I'm new to programming for the android and I'm trying to create a simple program.

If the user enters a number in the attacker ws field and the same number defender ws field you should get an answer.

I'm missing something.

package com.example.helloandroid;


import android.app.Activity;
import android.os.Bundle;
import android.view.View;
import android.view.View.OnClickListener;
import android.widget.Button;
import android.widget.EditText;
import android.widget.TextView;



public class HelloAndroid extends Activity implements OnClickListener
{
    private EditText text, text2, text3;
    private Button btutorial1;

    int result = text.toString().compareTo(text2.toString());





    /** Called when the activity is first created. */
    @Override
    public void onCreate(Bundle savedInstanceState) 
    {
        super.onCreate(savedInstanceState);
        setContentView(R.layout.main);
        TextView tv = new TextView(this);
        tv.setText("I hope this works");


        text = (EditText) findViewById(R.id.editText1);

        text2 =(EditText) findViewById(R.id.editText2);

        text3 = (EditText) findViewById(R.id.editText3);      

        btutorial1 = (Button) findViewById(R.id.button1);

        btutorial1.setOnClickListener(this);
    }

    public void onClick(View view) 
    {
        switch (view.getId()) 
        {
            case R.id.button1:

                if (text.getText().toString().equals(1) && text2.getText().toString().equals(2)) 
                {
                    text3.setText("Five and above");        
                    return;
                }

                else if (text.getText().toString().equals(1) && text2.getText().toString().equals(3)) 
                {
                    text3.setText("Five and above");        
                    return;
                }

                else if (text.getText().toString().equals(1) && text2.getText().toString().equals(3)) 
                {
                    text3.setText("Four and above");        
                    return;
                }

                else if (text.getText().toString().equals(text2.getText().toString())) 
                {
                    text3.setText("Four and above");        
                    return;
                }

                else
                {
                    text3.setText("Not Working");        
                return;
                }

        }
    }


}

My XML class named main

<?xml version="1.0" encoding="utf-8"?>
<LinearLayout xmlns:android="http://schemas.android.com/apk/res/android"
    android:orientation="vertical"
    android:layout_width="fill_parent"
    android:layout_height="fill_parent"
    >
    <TextView android:id="@+id/textView1" android:layout_width="wrap_content" android:layout_height="wrap_content" android:text="Enter Attacker ws"></TextView>

    <EditText android:id="@+id/editText1" android:text="" android:layout_height="wrap_content" android:layout_width="match_parent" android:inputType="number" android:visibility="visible"></EditText>
    <TextView android:id="@+id/textView2" android:layout_width="wrap_content" android:layout_height="wrap_content" android:text="Enter Opponent ws"></TextView>
    <EditText android:id="@+id/editText2" android:text="" android:layout_height="wrap_content" android:layout_width="match_parent" android:visibility="visible" android:inputType="number"></EditText>
     <Button android:id="@+id/button1" android:layout_width="wrap_content" android:layout_height="wrap_content" android:text="Calculate" android:visibility="visible" android:onClick="myClickHandler"></Button>
     <EditText android:id="@+id/editText3"  android:layout_height="wrap_content" android:layout_width="match_parent"  android:name="result" android:editable="false"></EditText>
</LinearLayout>
share|improve this question
up vote 1 down vote accepted

If you are comparing two integers then do this.

int number1 = Integer.parseInt(text);
int number2= Integer.parseInt(text2);

now in if condition compare number1 and number2.

if (number1 == number2)
 { 
 text3.setText("Four and above");
 return;
 }

Remember this will work only for integers. for any string you will get exception you can handle it later on.

share|improve this answer
    
Thank you i'll try that – lonesarah Mar 8 '11 at 5:02
    
That's not going to work. It won't accept parse for arguments type edittext – lonesarah Mar 8 '11 at 5:06
    
i am sorry.. but it will work for 'int number1 = Integer.parseInt(text.getText().toString());' same goes for 'int number2 = Integer.parseInt(text2.getText().toString());' – Harshad Mar 8 '11 at 5:15
    
You can compare if they are greater than or less than in this case very easily by simply saying if(number1>number2) or if(number1<number2).. :) – Harshad Mar 8 '11 at 5:18
    
that does not work and I've tried (text.getText().toString() > (text2.getText().toString())) – lonesarah Mar 8 '11 at 5:26

In java with objects == checks if 2 variables have the same memory location, not that they are the same value. Use .equals() instead and it should work

share|improve this answer
    
I know what your thinking but that didn't work. – lonesarah Mar 8 '11 at 3:28
    
Sorry, I missed something else. The code should be in onClick not myClickHandler. – skorulis Mar 8 '11 at 3:32
    
It's still not working but I think were getting close. – lonesarah Mar 8 '11 at 3:38

if you are planning to compare text then use use text.getText().toString().equals(text2.getText().toString())

share|improve this answer
    
That's not working either. I narrow the error to Java not holding the value the user enter. – lonesarah Mar 8 '11 at 5:08
    
btw you should call myClickHandler(src) from your onClick(View src) method – frieza Mar 8 '11 at 5:11
    
Do you know how to write text greater then text 2 in textedit – lonesarah Mar 8 '11 at 5:13
    
do you want to compare two numbers ? If so then you need to parse the texts using Integer.parseInt() or something similar as suggested by Harshad in the answer below – frieza Mar 8 '11 at 5:28
    
I want to compare two strings use text edit argument and see which one is greater then the other. – lonesarah Mar 8 '11 at 5:39

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