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I m working on Caesar cipher example in which I want that it get different keys from user and finally one key decrypt the original text , but I got a problem, here is my code

 public static void main(String[] args) {
    Scanner user_input= new Scanner(System.in);
     String plainText = "University of malakand";
     String key;
     key = user_input.next();

       Ceasercipher cc = new Ceasercipher();

       String cipherText = cc.encrypt(plainText,key);
       System.out.println("Your Plain  Text :" + plainText);
       System.out.println("Your Cipher Text :" + cipherText);

       String cPlainText = cc.decrypt(cipherText,key);
       System.out.println("Your Plain Text  :" + cPlainText);
}

it show me an error on this line

String cipherText = cc.encrypt(plainText,key);

it show me error on key incompatible types: String cannot be converted into int, what can I do Now

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marked as duplicate by Jason C, jww, squiguy, Bart, Raghunandan Apr 20 at 5:10

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3  
First, what does String cannot be converted into int mean to you? –  Sotirios Delimanolis Apr 20 at 5:01
1  
You did not think it necessary to show what value you entered ? –  Borat Sagdiyev Apr 20 at 5:05
1  
@user3540132 When you are entering a question on the "Ask Question" page, a list of quick search results will come up as you type. Please be sure to visit them if they are similar to the question you are asking. :) –  Jason C Apr 20 at 5:12
    
Thanks it worked –  HanifCs Apr 20 at 5:13

4 Answers 4

Try this -

String cipherText = cc.encrypt(plainText,Integer.parseInt(key));
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Ask following questions to your self first.

  • What your method want as parameter?
  • Why both are Incompatible?
  • What String cipherText = cc.encrypt(plainText,key); mean?
  • key is String or int?

Use methods like Integer.parseInt(String value) or Integer.valueOf(String value) for conversion.

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You are passing String and the method parameter seems to have int and hence the error. You might want to convert your string to int using int keyInt = Integer.parseInt(key); and similarly for plain text if necessary and then pass keyInt and/or plainTextInt as the parameters.

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It seems like you need to convert a String to int, not a int to String. To do that, you can use Integer.parseInt():

int someInt = Integer.parseInt(someString);
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