0
        System.out.printf("\n"
        + "\nEnter a question: " +  question=stdin.nextLine()
        + "\nEnter a guess: " +  Guess=stdin.nextLine());

Produces error "The left-hand side of an assignment must be a variable".

Also, 

do
        {
            ...
        } while(System.out.printf("\nWould you? "), stdin.nextLine().equalsIgnoreCase("y"))

produces "Syntax error on token ",", . expected" I want printf to ignore the stuff that doesn't print anything. How to do so?

|improve this question
  • can you post the whole functions in which your lines of codes are? – Mohayemin Mar 29 '12 at 9:39
  • 1
    In the hope that it helps: In Java, 'Guess' is different from 'guess' – ArjunShankar Mar 29 '12 at 9:41
  • 1
    Also if 'Guess' is a variable, it's a very bad name to choose for a variable. Most Java programs use Class names starting with a capital letter, and variable names starting with a lower case letter. It's not a requirement, but a good convention to follow. – ArjunShankar Mar 29 '12 at 9:43
0

System.out.printf() does not allow assigning variables. So your attempt on the following code is wrong.

System.out.printf("\n"
        + "\nEnter a question: " +  question=stdin.nextLine()
        + "\nEnter a guess: " +  Guess=stdin.nextLine());

Try to change the above to multiple lines of code, after declaring all properly.

question=stdin.nextLine();
Guess=stdin.nextLine();
System.out.printf("\n"
        + "\nEnter a question: " +  question
        + "\nEnter a guess: " +  Guess);

The following do .. while() statement also have the same problem.

do
        {
            ...
        } while(System.out.printf("\nWould you? "), stdin.nextLine().equalsIgnoreCase("y"))

try the following

String answer = "n";
do
{

...
System.out.printf("\nWould you? ");
answer = <-- Get the user input using System.in -->;

} while (!answer.equalsIgnoreCase("y"))

you look like having syntax problem and following C++ way. Try to get hands on some java basics books and you are all set to go ..

Happy coding

|improve this answer
  • 1
    System.out.printf() does not allow assigning variables Why do you think so? Try this: System.out.println(i=3). Its actually, you cannot use an assignment in a string concat. System.out.println("this is i: " + (i = 3)); would work too. – Mohayemin Jun 8 '12 at 10:24
0

Either question or Guess is not variable. Perhaps Guess is a class, not a variable.

|improve this answer
0

The assignment is not automatically what gets assigned:

question = stdin.nextLine ();

assigns the result of stdin.nextLine () to question, but the result of the assignment is void, not question.

So your only solution is to work in 2 steps: do the assignment, and then, since nextLine has side effects, print the assigned values with println.

|improve this answer
  • I wasn't trying to print them, they get printed when they're typed in. I was trying to insert statements into printf statements and loop conditions. I want printf to ignore the stuff that doesn't print anything. How to do so? – user93200 Mar 29 '12 at 10:19
  • @user93200: S.o.println prints either Int, Float, Long, Boolean ... and Strings, and calls .toString () for an Object, if you create a call S.o.p("foo" + object); But an assignment isn't an object, which means a call to an assignment is illegal and can't be resolved from the compiler. Wrapping your assignment into method won't help, since initializations to local variables would be lost. – user unknown Mar 29 '12 at 11:35

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