Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am making a lisp expression evaluator in java. In my output window (see below), I am receiving multiple errors in my main method. Can anyone explain why these errors are occurring?

evaluateCurrentOperation calls Double.valueOf and gives it a string. It gives it the string "+", which isn't in the right format for a double. How do I fix this?

OUTPUT WINDOW:

[

(java.lang.NumberFormatException: For input string: "+"
  at sun.misc.FloatingDecimal.readJavaFormatString(FloatingDecimal.java:1222)
  at java.lang.Double.valueOf(Double.java:475)
  at SimpleLispExpressionEvaluator.evaluateCurrentOperation(SimpleLispExpressionEvaluator.java:63)
  at SimpleLispExpressionEvaluator.evaluate(SimpleLispExpressionEvaluator.java:242)
  at SimpleLispExpressionEvaluator.evaluateExprTest(SimpleLispExpressionEvaluator.java:269)
  at SimpleLispExpressionEvaluator.main(SimpleLispExpressionEvaluator.java:283)

]

CODE:

import java.util.*;

public class SimpleLispExpressionEvaluator {
    // Current input Lisp expression
    private String inputExpr;

    // Main expression stack & current operation stack, see algorithm in
    // evaluate()
    private Stack<Object> exprStack;
    private Stack<Double> currentOpStack;

    // default constructor
    // set inputExpr to ""
    // create stack objects
    public SimpleLispExpressionEvaluator() {
        // add statements
        inputExpr = "";
        exprStack = new Stack<Object>();
        currentOpStack = new Stack<Double>();

    }

    // default constructor
    // set inputExpr to inputExpression
    // create stack objects
    public SimpleLispExpressionEvaluator(String inputExpression) {
        // add statements
        inputExpr = inputExpression;
        exprStack = new Stack<Object>();
        currentOpStack = new Stack<Double>();

    }


    // set inputExpr to inputExpression
    // clear stack objects
    public void reset(String inputExpression) {
        // add statements
        inputExpr = inputExpression;
        exprStack.clear();
        currentOpStack.clear();
    }

    // This function evaluate current operator with its operands
    // See complete algorithm in evaluate()
    //
    // Main Steps:
    // Pop operands from exprStack and push them onto
    // currentOpStack until you find an operator
    // Apply the operator to the operands on currentOpStack
    // Push the result into exprStack
    //
    private void evaluateCurrentOperation() {

        // add statements
        char thing = '0';
        double result = 0;

        do {

            Object obj = exprStack.pop();
            String a = obj.toString();
            double b = Double.valueOf(a).doubleValue();

            currentOpStack.push(b);

            String grab = exprStack.peek().toString();

            if (grab.length() > 1) {
                continue;
            }

            else {
                thing = grab.charAt(0);
            }

            if (thing == '+' || thing == '-' || thing == '/' || thing == '*') {
                exprStack.pop();
                break;
            }
        } while (thing != '%');

        switch (thing) {
        case '+':

            while (currentOpStack.isEmpty() != true) {
                result += (double) currentOpStack.pop();
            }
            break;

        case '-':

            Object obj0 = currentOpStack.pop();
            String a0 = obj0.toString();
            double b0 = Double.valueOf(a0).doubleValue();

            if (currentOpStack.isEmpty() != true) {
                result = b0;
            } else {
                result = -(b0);
            }

            while (currentOpStack.isEmpty() != true) {
                result -= (double) currentOpStack.pop();
            }
            break;

        case '/':

            if (currentOpStack.size() == 1) {
                if (currentOpStack.peek() == 0) {
                    throw new RuntimeException("Cannot divide by zero");
                }
                result = (1 / ((double) currentOpStack.pop()));
                break;
            } else {
                Object obj1 = currentOpStack.pop();
                String a1 = obj1.toString();
                double b1 = Double.valueOf(a1).doubleValue();

                if (currentOpStack.isEmpty() != true) {
                    result = b1;
                } else {
                    result = -(b1);
                }

                while (currentOpStack.isEmpty() != true) {
                    result -= (double) currentOpStack.pop();
                }
                break;
            }
        case '*':
            Object obj2 = currentOpStack.pop();
            String a2 = obj2.toString();
            double b2 = Double.valueOf(a2).doubleValue();

            result = b2;

            while (currentOpStack.isEmpty() != true) {
                result *= (double) currentOpStack.pop();
            }
            break;
        default:

            throw new IndexOutOfBoundsException(
                    "The next node does not work in this program");

        }

        exprStack.push(result);

    }

    /**
     * This function evaluates current Lisp expression in inputExpr It return
     * result of the expression
     * 
     * The algorithm:
     * 
     * Step 1 Scan the tokens in the string. Step 2 If you see an operand, push
     * operand object onto the exprStack Step 3 If you see "(", next token
     * should be an operator Step 4 If you see an operator, push operator object
     * onto the exprStack Step 5 If you see ")",
     * 
     * do steps 6,7,8 in evaluateCurrentOperation() : Step 6 Pop operands and
     * push them onto currentOpStack until you find an operator Step 7 Apply the
     * operator to the operands on currentOpStack Step 8 Push the result into
     * exprStack Step 9 If you run out of tokens, the value on the top of
     * exprStack is is the result of the expression.
     */
    public double evaluate() {
        // only outline is given...
        // you need to add statements/local variables
        // you may delete or modify any statements in this method
        double result;
        // use scanner to tokenize inputExpr
        Scanner inputExprScanner = new Scanner(inputExpr);

        // Use zero or more white space as delimiter,
        // which breaks the string into single character tokens
        inputExprScanner = inputExprScanner.useDelimiter("\\s*");

        // Step 1: Scan the tokens in the string.
        while (inputExprScanner.hasNext()) {

            // Step 2: If you see an operand, push operand object onto the
            // exprStack
            if (inputExprScanner.hasNextInt()) {
                // This force scanner to grab all of the digits
                // Otherwise, it will just get one char
                String dataString = inputExprScanner.findInLine("\\d+");

                exprStack.push(dataString);
                // more ...
            }

            else {
                // Get next token, only one char in string token
                String nextEntry = inputExprScanner.next();
                char entity = nextEntry.charAt(0);
                String nextToken;

                switch (entity) {
                // Step 3: If you see "(", next token should an operator
                case '(':
                    nextEntry = inputExprScanner.next();
                    entity = nextEntry.charAt(0);
                    // Step 4: If you see an operator, push operator object onto
                    // the
                    // exprStack
                    if (entity == '+') {
                        exprStack.push(nextEntry);
                    }

                    else if (entity == '-') {
                        exprStack.push(entity);
                    }

                    else if (entity == '*') {
                        exprStack.push(entity);
                    }

                    else {
                        exprStack.push(nextEntry);
                    }

                    // Step 5: If you see ")" do steps 6,7,8 in
                    // evaluateCurrentOperation() :

                case ')':

                    evaluateCurrentOperation();
                    break;

                default: // error
                    throw new SimpleLispExpressionEvaluatorException(entity
                            + " is not a legal expression operator");

                } // end switch
            } // end else
        } // end while

        // Step 9: If you run out of tokens, the value on the top of exprStack
        // is the result of the expression.
        Object obj4 = exprStack.pop();
        String str4 = obj4.toString();
        double d3 = Double.valueOf(str4).doubleValue();
        return d3;
    }

    // =====================================================================

    // This static method is used by main() only
    private static void evaluateExprTest(String s,
            SimpleLispExpressionEvaluator expr) {
        Double result;
        System.out.println("Expression " + s);
        expr.reset(s);
        result = expr.evaluate();
        System.out.printf("Result %.2f\n", result);
        System.out.println("-----------------------------");
    }

    // define few test cases, exception may happen
    public static void main(String args[]) {
        SimpleLispExpressionEvaluator expr = new SimpleLispExpressionEvaluator();
        String test1 = "(+ (- 6) (* 2 3 4) (/ (+ 3) (* 1) (- 2 3 1)))";
        String test2 = "(+ (- 632) (* 21 3 4) (/ (+ 32) (* 1) (- 21 3 1)))";
        String test3 = "(+ (/ 2) (* 2) (/ (+ 1) (+ 1) (- 2 1 )))";
        String test4 = "(+ (/2))";
        String test5 = "(+ (/2 3 0))";
        String test6 = "(+ (/ 2) (* 2) (/ (+ 1) (+ 3) (- 2 1 )))";
        evaluateExprTest(test1, expr);
        evaluateExprTest(test2, expr);
        evaluateExprTest(test3, expr);
        evaluateExprTest(test4, expr);
        evaluateExprTest(test5, expr);
        evaluateExprTest(test6, expr);
    }
}
share|improve this question
    
Please leave your questions intact. –  Svante Oct 23 '13 at 20:57

2 Answers 2

You are calling

Double.valueOf(x)

when x is the string "+" which suggests your numbers and operators are getting mixed up somehow.

I suspect the problem is in the part where you parse the string and find a paren. The next set of switch cases seems wrong somehow. Its not symmetric. If it finds a plus, you push the rest of the string. If its a minus or start you push the single character.

share|improve this answer

Your current implementation is an entangled mess of parsing and evaluation.

If you fix that by clearly separating the steps (in a classical Lisp implementation strategy, this would be the functions read and eval), a fix for your concrete problem here should follow naturally.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.