301

I'm trying to write a Java routine to evaluate simple math expressions from String values like:

  1. "5+3"
  2. "10-40"
  3. "10*3"

I want to avoid a lot of if-then-else statements. How can I do this?

24 Answers 24

359

With JDK1.6, you can use the built-in Javascript engine.

import javax.script.ScriptEngineManager;
import javax.script.ScriptEngine;
import javax.script.ScriptException;

public class Test {
  public static void main(String[] args) throws ScriptException {
    ScriptEngineManager mgr = new ScriptEngineManager();
    ScriptEngine engine = mgr.getEngineByName("JavaScript");
    String foo = "40+2";
    System.out.println(engine.eval(foo));
    } 
}
  • 48
    It seems there's a major problem there; It executes a script, not evaluates an expression. To be clear, engine.eval("8;40+2"), outputs 42 ! If you want an expression parser that also check the syntax, I've just finished one (because I found nothing that suits my needs) : Javaluator. – Jean-Marc Astesana Aug 29 '12 at 12:33
  • 3
    As a side note, if you need to use the result of this expression elsewhere in your code, you can typecast the result to a Double like so: return (Double) engine.eval(foo); – Ben Visness Apr 2 '14 at 22:44
  • 30
    Security note: You should never use this in a server context with user input. The executed JavaScript can access all Java classes and thus hijack your application without limit. – Boann Sep 21 '15 at 11:08
  • 2
    @Boann, I request you to give me a reference about what you said.(to be sure 100%) – partho Feb 27 '16 at 13:03
  • 13
    @partho new javax.script.ScriptEngineManager().getEngineByName("JavaScript") .eval("var f = new java.io.FileWriter('hello.txt'); f.write('UNLIMITED POWER!'); f.close();"); -- will write a file via JavaScript into (by default) the program's current directory – Boann Feb 27 '16 at 13:37
210

I've written this eval method for arithmetic expressions to answer this question. It does addition, subtraction, multiplication, division, exponentiation (using the ^ symbol), and a few basic functions like sqrt. It supports grouping using (...), and it gets the operator precedence and associativity rules correct.

public static double eval(final String str) {
    return new Object() {
        int pos = -1, ch;

        void nextChar() {
            ch = (++pos < str.length()) ? str.charAt(pos) : -1;
        }

        boolean eat(int charToEat) {
            while (ch == ' ') nextChar();
            if (ch == charToEat) {
                nextChar();
                return true;
            }
            return false;
        }

        double parse() {
            nextChar();
            double x = parseExpression();
            if (pos < str.length()) throw new RuntimeException("Unexpected: " + (char)ch);
            return x;
        }

        // Grammar:
        // expression = term | expression `+` term | expression `-` term
        // term = factor | term `*` factor | term `/` factor
        // factor = `+` factor | `-` factor | `(` expression `)`
        //        | number | functionName factor | factor `^` factor

        double parseExpression() {
            double x = parseTerm();
            for (;;) {
                if      (eat('+')) x += parseTerm(); // addition
                else if (eat('-')) x -= parseTerm(); // subtraction
                else return x;
            }
        }

        double parseTerm() {
            double x = parseFactor();
            for (;;) {
                if      (eat('*')) x *= parseFactor(); // multiplication
                else if (eat('/')) x /= parseFactor(); // division
                else return x;
            }
        }

        double parseFactor() {
            if (eat('+')) return parseFactor(); // unary plus
            if (eat('-')) return -parseFactor(); // unary minus

            double x;
            int startPos = this.pos;
            if (eat('(')) { // parentheses
                x = parseExpression();
                eat(')');
            } else if ((ch >= '0' && ch <= '9') || ch == '.') { // numbers
                while ((ch >= '0' && ch <= '9') || ch == '.') nextChar();
                x = Double.parseDouble(str.substring(startPos, this.pos));
            } else if (ch >= 'a' && ch <= 'z') { // functions
                while (ch >= 'a' && ch <= 'z') nextChar();
                String func = str.substring(startPos, this.pos);
                x = parseFactor();
                if (func.equals("sqrt")) x = Math.sqrt(x);
                else if (func.equals("sin")) x = Math.sin(Math.toRadians(x));
                else if (func.equals("cos")) x = Math.cos(Math.toRadians(x));
                else if (func.equals("tan")) x = Math.tan(Math.toRadians(x));
                else throw new RuntimeException("Unknown function: " + func);
            } else {
                throw new RuntimeException("Unexpected: " + (char)ch);
            }

            if (eat('^')) x = Math.pow(x, parseFactor()); // exponentiation

            return x;
        }
    }.parse();
}

Example:

System.out.println(eval("((4 - 2^3 + 1) * -sqrt(3*3+4*4)) / 2"));

Output: 7.5 (which is correct)


The parser is a recursive descent parser, so internally uses separate parse methods for each level of operator precedence in its grammar. I kept it short so it's easy to modify, but here are some ideas you might want to expand it with:

  • Variables:

    The bit of the parser that reads the names for functions can easily be changed to handle custom variables too, by looking up names in a variable table passed to the eval method, such as a Map<String,Double> variables.

  • Separate compilation and evaluation:

    What if, having added support for variables, you wanted to evaluate the same expression millions of times with changed variables, without parsing it every time? It's possible. First define an interface to use to evaluate the precompiled expression:

    @FunctionalInterface
    interface Expression {
        double eval();
    }
    

    Now change all the methods that return doubles, so instead they return an instance of that interface. Java 8's lambda syntax works great for this. Example of one of the changed methods:

    Expression parseExpression() {
        Expression x = parseTerm();
        for (;;) {
            if (eat('+')) { // addition
                Expression a = x, b = parseTerm();
                x = (() -> a.eval() + b.eval());
            } else if (eat('-')) { // subtraction
                Expression a = x, b = parseTerm();
                x = (() -> a.eval() - b.eval());
            } else {
                return x;
            }
        }
    }
    

    That builds a recursive tree of Expression objects representing the compiled expression (an abstract syntax tree). Then you can compile it once and evaluate it repeatedly with different values:

    public static void main(String[] args) {
        Map<String,Double> variables = new HashMap<>();
        Expression exp = parse("x^2 - x + 2", variables);
        for (double x = -20; x <= +20; x++) {
            variables.put("x", x);
            System.out.println(x + " => " + exp.eval());
        }
    }
    
  • Different datatypes:

    Instead of double, you could change the evaluator to use something more powerful like BigDecimal, or a class that implements complex numbers, or rational numbers (fractions). You could even use Object, allowing some mix of datatypes in expressions, just like a real programming language. :)


All code in this answer released to the public domain. Have fun!

  • Nice algorithm, starting from it I managed to impliment and logical operators. We created separate classes for functions to evaluate a function, so like your idea of variables, I create a map with functions and looking after the function name. Every function implements an interface with a method eval (T rightOperator , T leftOperator), so anytime we can add features without changing the algorithm code. And it is a good idea to make it work with generic types. Thanks you! – Vasile Bors Jul 23 '16 at 16:17
  • Can you explain the logic behind this algorithm? – iYonatan Jul 24 '16 at 0:06
  • I try to give a description of what I understand from the code written by Boann, and examples described wiki.The logic of this algoritm starting from rules of operation orders. 1. operator sign | variable evaluation | function call | parenthesis (sub-expressions); 2. exponentiation; 3. multiplication, division; 4. addition, subtraction; – Vasile Bors Jul 24 '16 at 15:05
  • Algorithm methods are divided for each level of operations order as follows: parseFactor = 1. operator sign | variable evaluation | function call | parenthesis (sub-expressions); 2. exponentiation; parseTerms = 3. multiplication, division; parseExpression = 4. addition, subtraction. The algorithm, call methods in reverse order (parseExpression -> parseTerms -> parseFactor -> parseExpression (for sub-expressions)), but every method to the first line call the method to the next level, so the entire execution order methods will be actually normal order of operations. – Vasile Bors Jul 24 '16 at 15:09
  • For example the parseExpression method the double x = parseTerm(); evaluate the left operator, after this for (;;) {...} evaluate succesive operations of actual order level (addition, subtraction). The same logic are and in parseTerm method. The parseFactor does not have next level, so there are only evaluations of methods/ variables or in case of paranthesis - evaluate sub-expression. The boolean eat(int charToEat) method check equality of the current cursor character with the charToEat character, if equal return true and move cursor to next character, I use name 'accept' for it. – Vasile Bors Jul 24 '16 at 15:12
30

The correct way to solve this is with a lexer and a parser. You can write simple versions of these yourself, or those pages also have links to Java lexers and parsers.

Creating a recursive descent parser is a really good learning exercise.

23

For my university project, I was looking for a parser / evaluator supporting both basic formulas and more complicated equations (especially iterated operators). I found very nice open source library for JAVA and .NET called mXparser. I will give a few examples to make some feeling on the syntax, for further instructions please visit project website (especially tutorial section).

http://mathparser.org/

http://mathparser.org/mxparser-tutorial/

http://mathparser.org/api/

And few examples

1 - Simple furmula

Expression e = new Expression("( 2 + 3/4 + sin(pi) )/2");
double v = e.calculate()

2 - User defined arguments and constants

Argument x = new Argument("x = 10");
Constant a = new Constant("a = pi^2");
Expression e = new Expression("cos(a*x)", x, a);
double v = e.calculate()

3 - User defined functions

Function f = new Function("f(x, y, z) = sin(x) + cos(y*z)");
Expression e = new Expression("f(3,2,5)", f);
double v = e.calculate()

4 - Iteration

Expression e = new Expression("sum( i, 1, 100, sin(i) )");
double v = e.calculate()

Found recently - in case you would like to try the syntax (and see the advanced use case) you can download the Scalar Calculator app that is powered by mXparser.

Best regards

  • So far this is the best math library out there; simple to kickstart, easy to use and extendable. Definitely should be top answer. – Trynkiewicz Mariusz Feb 6 at 7:00
  • Find Maven version here. – izogfif Mar 12 at 5:36
  • I found mXparser can't identify illegal formula, for example, '0/0' will get a result as '0'. How can I solve this problem? – lulijun Mar 14 at 6:41
  • Just found the solution, expression.setSlientMode() – lulijun Mar 14 at 7:07
18

HERE is another open source library on GitHub named EvalEx.

Unlike the JavaScript engine this library is focused in evaluating mathematical expressions only. Moreover, the library is extensible and supports use of boolean operators as well as parentheses.

  • This is ok , but fails when we try to multiply values of multiples of 5 or 10 , for example 65 * 6 results in 3.9E+2 ... – paarth batra Apr 26 '18 at 8:09
  • .But there is a way to fix this by casting it to int i.e. int output = (int) 65*6 it will result now 390 – paarth batra Apr 26 '18 at 11:31
  • 1
    To clarify, that is not a problem of the library but rather an issue with the representation of numbers as floating point values. – DavidBittner Jun 6 '18 at 15:52
14

You can also try the BeanShell interpreter:

Interpreter interpreter = new Interpreter();
interpreter.eval("result = (7+21*6)/(32-27)");
System.out.println(interpreter.get("result"));
14

You can evaluate expressions easily if your Java application already accesses a database, without using any other JARs.

Some databases require you to use a dummy table (eg, Oracle's "dual" table) and others will allow you to evaluate expressions without "selecting" from any table.

For example, in Sql Server or Sqlite

select (((12.10 +12.0))/ 233.0) amount

and in Oracle

select (((12.10 +12.0))/ 233.0) amount from dual;

The advantage of using a DB is that you can evaluate many expressions at the same time. Also most DB's will allow you to use highly complex expressions and will also have a number of extra functions that can be called as necessary.

However performance may suffer if many single expressions need to be evaluated individually, particularly when the DB is located on a network server.

The following addresses the performance problem to some extent, by using a Sqlite in-memory database.

Here's a full working example in Java

Class. forName("org.sqlite.JDBC");
Connection conn = DriverManager.getConnection("jdbc:sqlite::memory:");
Statement stat = conn.createStatement();
ResultSet rs = stat.executeQuery( "select (1+10)/20.0 amount");
rs.next();
System.out.println(rs.getBigDecimal(1));
stat.close();
conn.close();

Of course you could extend the above code to handle multiple calculations at the same time.

ResultSet rs = stat.executeQuery( "select (1+10)/20.0 amount, (1+100)/20.0 amount2");
  • 4
    Say hello to SQL injection! – cyberz Apr 23 '17 at 19:53
  • It depends on what you use the DB for. If you want to be sure, you could easily create an empty sqlite DB, specifically for the the maths evaluation. – DAB Apr 24 '17 at 15:06
  • 3
    @cyberz If you use my example above, Sqlite will create a temporary DB in memory. See stackoverflow.com/questions/849679/… – DAB Apr 24 '17 at 15:09
8

This article discusses various approaches. Here are the 2 key approaches mentioned in the article:

JEXL from Apache

Allows for scripts that include references to java objects.

// Create or retrieve a JexlEngine
JexlEngine jexl = new JexlEngine();
// Create an expression object
String jexlExp = "foo.innerFoo.bar()";
Expression e = jexl.createExpression( jexlExp );

// Create a context and add data
JexlContext jctx = new MapContext();
jctx.set("foo", new Foo() );

// Now evaluate the expression, getting the result
Object o = e.evaluate(jctx);

Use the javascript engine embedded in the JDK:

private static void jsEvalWithVariable()
{
    List<String> namesList = new ArrayList<String>();
    namesList.add("Jill");
    namesList.add("Bob");
    namesList.add("Laureen");
    namesList.add("Ed");

    ScriptEngineManager mgr = new ScriptEngineManager();
    ScriptEngine jsEngine = mgr.getEngineByName("JavaScript");

    jsEngine.put("namesListKey", namesList);
    System.out.println("Executing in script environment...");
    try
    {
      jsEngine.eval("var x;" +
                    "var names = namesListKey.toArray();" +
                    "for(x in names) {" +
                    "  println(names[x]);" +
                    "}" +
                    "namesListKey.add(\"Dana\");");
    }
    catch (ScriptException ex)
    {
        ex.printStackTrace();
    }
}
  • 4
    Please summarize the information from the article, in case the link to it is broken. – DJClayworth Oct 11 '16 at 15:53
  • I've upgraded the answer to include relevant bits from the article – Brad Parks Mar 20 at 15:37
7

Another way is to use Spring Expression Language or SpEL which does a whole lot more along with evaluating mathematical expressions therefore maybe slightly overkill. You do not have to be using Spring framework to use this expression library as it is stand-alone. Copying examples from SpEL's documentation:

ExpressionParser parser = new SpelExpressionParser();
int two = parser.parseExpression("1 + 1").getValue(Integer.class); // 2 
double twentyFour = parser.parseExpression("2.0 * 3e0 * 4").getValue(Double.class); //24.0

Read more concise SpEL examples here and the complete docs here

6

This is another interesting alternative https://github.com/Shy-Ta/expression-evaluator-demo

The usage is very simple and gets the job done, for example:

  ExpressionsEvaluator evalExpr = ExpressionsFactory.create("2+3*4-6/2");  
  assertEquals(BigDecimal.valueOf(11), evalExpr.eval()); 
6

if we are going to implement it then we can can use the below algorithm :--

  1. While there are still tokens to be read in,

    1.1 Get the next token. 1.2 If the token is:

    1.2.1 A number: push it onto the value stack.

    1.2.2 A variable: get its value, and push onto the value stack.

    1.2.3 A left parenthesis: push it onto the operator stack.

    1.2.4 A right parenthesis:

     1 While the thing on top of the operator stack is not a 
       left parenthesis,
         1 Pop the operator from the operator stack.
         2 Pop the value stack twice, getting two operands.
         3 Apply the operator to the operands, in the correct order.
         4 Push the result onto the value stack.
     2 Pop the left parenthesis from the operator stack, and discard it.
    

    1.2.5 An operator (call it thisOp):

     1 While the operator stack is not empty, and the top thing on the
       operator stack has the same or greater precedence as thisOp,
       1 Pop the operator from the operator stack.
       2 Pop the value stack twice, getting two operands.
       3 Apply the operator to the operands, in the correct order.
       4 Push the result onto the value stack.
     2 Push thisOp onto the operator stack.
    
  2. While the operator stack is not empty, 1 Pop the operator from the operator stack. 2 Pop the value stack twice, getting two operands. 3 Apply the operator to the operands, in the correct order. 4 Push the result onto the value stack.

  3. At this point the operator stack should be empty, and the value stack should have only one value in it, which is the final result.

5

It seems like JEP should do the job

4

I think what ever way you do this it's going to involve a lot of conditional statements. But for single operations like in your examples you could limit it to 4 if statements with something like

String math = "1+4";

if (math.split("+").length == 2) {
    //do calculation
} else if (math.split("-").length == 2) {
    //do calculation
} ...

It gets a whole lot more complicated when you want to deal with multiple operations like "4+5*6".

If you are trying to build a calculator then I'd surgest passing each section of the calculation separatly (each number or operator) rather than as a single string.

  • 1
    It gets a whole lot more complicated as soon as you have to deal with multiple operations, operator precedence, parentheses, ... in fact anything that characterizes a real arithmetic expression. You cannot get there starting from this technique. – user207421 Jun 16 '16 at 3:52
3

You might have a look at the Symja framework:

ExprEvaluator util = new ExprEvaluator(); 
IExpr result = util.evaluate("10-40");
System.out.println(result.toString()); // -> "-30" 

Take note that definitively more complex expressions can be evaluated:

// D(...) gives the derivative of the function Sin(x)*Cos(x)
IAST function = D(Times(Sin(x), Cos(x)), x);
IExpr result = util.evaluate(function);
// print: Cos(x)^2-Sin(x)^2
3

Try the following sample code using JDK1.6's Javascript engine with code injection handling.

import javax.script.ScriptEngine;
import javax.script.ScriptEngineManager;

public class EvalUtil {
private static ScriptEngine engine = new ScriptEngineManager().getEngineByName("JavaScript");
public static void main(String[] args) {
    try {
        System.out.println((new EvalUtil()).eval("(((5+5)/2) > 5) || 5 >3 "));
        System.out.println((new EvalUtil()).eval("(((5+5)/2) > 5) || true"));
    } catch (Exception e) {
        e.printStackTrace();
    }
}
public Object eval(String input) throws Exception{
    try {
        if(input.matches(".*[a-zA-Z;~`#$_{}\\[\\]:\\\\;\"',\\.\\?]+.*")) {
            throw new Exception("Invalid expression : " + input );
        }
        return engine.eval(input);
    } catch (Exception e) {
        e.printStackTrace();
        throw e;
    }
 }
}
3

This is actually complementing the answer given by @Boann. It has a slight bug which causes "-2 ^ 2" to give an erroneous result of -4.0. The problem for that is the point at which the exponentiation is evaluated in his. Just move the exponentiation to the block of parseTerm(), and you'll be all fine. Have a look at the below, which is @Boann's answer slightly modified. Modification is in the comments.

public static double eval(final String str) {
    return new Object() {
        int pos = -1, ch;

        void nextChar() {
            ch = (++pos < str.length()) ? str.charAt(pos) : -1;
        }

        boolean eat(int charToEat) {
            while (ch == ' ') nextChar();
            if (ch == charToEat) {
                nextChar();
                return true;
            }
            return false;
        }

        double parse() {
            nextChar();
            double x = parseExpression();
            if (pos < str.length()) throw new RuntimeException("Unexpected: " + (char)ch);
            return x;
        }

        // Grammar:
        // expression = term | expression `+` term | expression `-` term
        // term = factor | term `*` factor | term `/` factor
        // factor = `+` factor | `-` factor | `(` expression `)`
        //        | number | functionName factor | factor `^` factor

        double parseExpression() {
            double x = parseTerm();
            for (;;) {
                if      (eat('+')) x += parseTerm(); // addition
                else if (eat('-')) x -= parseTerm(); // subtraction
                else return x;
            }
        }

        double parseTerm() {
            double x = parseFactor();
            for (;;) {
                if      (eat('*')) x *= parseFactor(); // multiplication
                else if (eat('/')) x /= parseFactor(); // division
                else if (eat('^')) x = Math.pow(x, parseFactor()); //exponentiation -> Moved in to here. So the problem is fixed
                else return x;
            }
        }

        double parseFactor() {
            if (eat('+')) return parseFactor(); // unary plus
            if (eat('-')) return -parseFactor(); // unary minus

            double x;
            int startPos = this.pos;
            if (eat('(')) { // parentheses
                x = parseExpression();
                eat(')');
            } else if ((ch >= '0' && ch <= '9') || ch == '.') { // numbers
                while ((ch >= '0' && ch <= '9') || ch == '.') nextChar();
                x = Double.parseDouble(str.substring(startPos, this.pos));
            } else if (ch >= 'a' && ch <= 'z') { // functions
                while (ch >= 'a' && ch <= 'z') nextChar();
                String func = str.substring(startPos, this.pos);
                x = parseFactor();
                if (func.equals("sqrt")) x = Math.sqrt(x);
                else if (func.equals("sin")) x = Math.sin(Math.toRadians(x));
                else if (func.equals("cos")) x = Math.cos(Math.toRadians(x));
                else if (func.equals("tan")) x = Math.tan(Math.toRadians(x));
                else throw new RuntimeException("Unknown function: " + func);
            } else {
                throw new RuntimeException("Unexpected: " + (char)ch);
            }

            //if (eat('^')) x = Math.pow(x, parseFactor()); // exponentiation -> This is causing a bit of problem

            return x;
        }
    }.parse();
}
  • -2^2 = -4 is actually normal, and not a bug. It gets grouped like -(2^2). Try it on Desmos, for example. Your code actually introduces several bugs. The first is that ^ no longer groups right-to-left. In other words, 2^3^2 is supposed to group like 2^(3^2) because ^ is right-associative, but your modifications make it group like (2^3)^2. The second is that ^ is supposed to have higher precedence than * and /, but your modifications treat it the same. See ideone.com/iN2mMa. – Radiodef Aug 16 '18 at 1:06
  • So, what you are suggesting is that exponentiation is better kept at where it was isn't it? – Romeo Sierra Aug 16 '18 at 5:27
  • Yes, that's what I'm suggesting. – Radiodef Aug 16 '18 at 15:07
3
package ExpressionCalculator.expressioncalculator;

import java.text.DecimalFormat;
import java.util.Scanner;

public class ExpressionCalculator {

private static String addSpaces(String exp){

    //Add space padding to operands.
    //https://regex101.com/r/sJ9gM7/73
    exp = exp.replaceAll("(?<=[0-9()])[\\/]", " / ");
    exp = exp.replaceAll("(?<=[0-9()])[\\^]", " ^ ");
    exp = exp.replaceAll("(?<=[0-9()])[\\*]", " * ");
    exp = exp.replaceAll("(?<=[0-9()])[+]", " + "); 
    exp = exp.replaceAll("(?<=[0-9()])[-]", " - ");

    //Keep replacing double spaces with single spaces until your string is properly formatted
    /*while(exp.indexOf("  ") != -1){
        exp = exp.replace("  ", " ");
     }*/
    exp = exp.replaceAll(" {2,}", " ");

       return exp;
}

public static Double evaluate(String expr){

    DecimalFormat df = new DecimalFormat("#.####");

    //Format the expression properly before performing operations
    String expression = addSpaces(expr);

    try {
        //We will evaluate using rule BDMAS, i.e. brackets, division, power, multiplication, addition and
        //subtraction will be processed in following order
        int indexClose = expression.indexOf(")");
        int indexOpen = -1;
        if (indexClose != -1) {
            String substring = expression.substring(0, indexClose);
            indexOpen = substring.lastIndexOf("(");
            substring = substring.substring(indexOpen + 1).trim();
            if(indexOpen != -1 && indexClose != -1) {
                Double result = evaluate(substring);
                expression = expression.substring(0, indexOpen).trim() + " " + result + " " + expression.substring(indexClose + 1).trim();
                return evaluate(expression.trim());
            }
        }

        String operation = "";
        if(expression.indexOf(" / ") != -1){
            operation = "/";
        }else if(expression.indexOf(" ^ ") != -1){
            operation = "^";
        } else if(expression.indexOf(" * ") != -1){
            operation = "*";
        } else if(expression.indexOf(" + ") != -1){
            operation = "+";
        } else if(expression.indexOf(" - ") != -1){ //Avoid negative numbers
            operation = "-";
        } else{
            return Double.parseDouble(expression);
        }

        int index = expression.indexOf(operation);
        if(index != -1){
            indexOpen = expression.lastIndexOf(" ", index - 2);
            indexOpen = (indexOpen == -1)?0:indexOpen;
            indexClose = expression.indexOf(" ", index + 2);
            indexClose = (indexClose == -1)?expression.length():indexClose;
            if(indexOpen != -1 && indexClose != -1) {
                Double lhs = Double.parseDouble(expression.substring(indexOpen, index));
                Double rhs = Double.parseDouble(expression.substring(index + 2, indexClose));
                Double result = null;
                switch (operation){
                    case "/":
                        //Prevent divide by 0 exception.
                        if(rhs == 0){
                            return null;
                        }
                        result = lhs / rhs;
                        break;
                    case "^":
                        result = Math.pow(lhs, rhs);
                        break;
                    case "*":
                        result = lhs * rhs;
                        break;
                    case "-":
                        result = lhs - rhs;
                        break;
                    case "+":
                        result = lhs + rhs;
                        break;
                    default:
                        break;
                }
                if(indexClose == expression.length()){
                    expression = expression.substring(0, indexOpen) + " " + result + " " + expression.substring(indexClose);
                }else{
                    expression = expression.substring(0, indexOpen) + " " + result + " " + expression.substring(indexClose + 1);
                }
                return Double.valueOf(df.format(evaluate(expression.trim())));
            }
        }
    }catch(Exception exp){
        exp.printStackTrace();
    }
    return 0.0;
}

public static void main(String args[]){

    Scanner scanner = new Scanner(System.in);
    System.out.print("Enter an Mathematical Expression to Evaluate: ");
    String input = scanner.nextLine();
    System.out.println(evaluate(input));
}

}

  • 1
    Doesn't handle operator precedence, or several operators, or parentheses. Do not use. – user207421 Jul 18 '16 at 0:25
2

It's too late to answer but I came across same situation to evaluate expression in java, it might help someone

MVEL does runtime evaluation of expressions, we can write a java code in String to get it evaluated in this.

    String expressionStr = "x+y";
    Map<String, Object> vars = new HashMap<String, Object>();
    vars.put("x", 10);
    vars.put("y", 20);
    ExecutableStatement statement = (ExecutableStatement) MVEL.compileExpression(expressionStr);
    Object result = MVEL.executeExpression(statement, vars);
2
import java.util.*;
StringTokenizer st;
int ans;

public class check { 
   String str="7 + 5";
   StringTokenizer st=new StringTokenizer(str);

   int v1=Integer.parseInt(st.nextToken());
   String op=st.nextToken();
   int v2=Integer.parseInt(st.nextToken());

   if(op.equals("+")) { ans= v1 + v2; }
   if(op.equals("-")) { ans= v1 - v2; }
   //.........
}
1

How about something like this:

String st = "10+3";
int result;
for(int i=0;i<st.length();i++)
{
  if(st.charAt(i)=='+')
  {
    result=Integer.parseInt(st.substring(0, i))+Integer.parseInt(st.substring(i+1, st.length()));
    System.out.print(result);
  }         
}

and do the similar thing for every other mathematical operator accordingly ..

  • 9
    You should read about writing efficient math expression parsers. There is a computer science methodology to it. Take a look at ANTLR, for example. If you think well about what you wrote you'll see that things like (a+b/-c)*(e/f) will not work with your idea or the code will be super duper dirty and inefficient. – Daniel Nuriyev Apr 24 '14 at 18:03
  • 2
    This is worse than a switch case statement... – programmers5 Nov 14 '15 at 19:40
1

It is possible to convert any expression string in infix notation to a postfix notation using Djikstra's shunting-yard algorithm. The result of the algorithm can then serve as input to the postfix algorithm with returns the result of the expression.

I wrote an article about it here, with an implementation in java

1

Yet another option: https://github.com/stefanhaustein/expressionparser

I have implemented this to have a simple but flexible option to permit both:

The TreeBuilder linked above is part of a CAS demo package that does symbolic derivation. There is also a BASIC interpreter example and I have started to build a TypeScript interpreter using it.

1

External library like RHINO or NASHORN can be used to run javascript. And javascript can evaluate simple formula without parcing the string. No performance impact as well if code is written well. Below is an example with RHINO -

public class RhinoApp {
    private String simpleAdd = "(12+13+2-2)*2+(12+13+2-2)*2";

public void runJavaScript() {
    Context jsCx = Context.enter();
    Context.getCurrentContext().setOptimizationLevel(-1);
    ScriptableObject scope = jsCx.initStandardObjects();
    Object result = jsCx.evaluateString(scope, simpleAdd , "formula", 0, null);
    Context.exit();
    System.out.println(result);
}
0

A Java class that can evaluate mathematical expressions:

package test;

public class Calculator {

    public static Double calculate(String expression){
        if (expression == null || expression.length() == 0) {
            return null;
        }
        return calc(expression.replace(" ", ""));
    }
    public static Double calc(String expression) {

        if (expression.startsWith("(") && expression.endsWith(")")) {
            return calc(expression.substring(1, expression.length() - 1));
        }
        String[] containerArr = new String[]{expression};
        double leftVal = getNextOperand(containerArr);
        expression = containerArr[0];
        if (expression.length() == 0) {
            return leftVal;
        }
        char operator = expression.charAt(0);
        expression = expression.substring(1);

        while (operator == '*' || operator == '/') {
            containerArr[0] = expression;
            double rightVal = getNextOperand(containerArr);
            expression = containerArr[0];
            if (operator == '*') {
                leftVal = leftVal * rightVal;
            } else {
                leftVal = leftVal / rightVal;
            }
            if (expression.length() > 0) {
                operator = expression.charAt(0);
                expression = expression.substring(1);
            } else {
                return leftVal;
            }
        }
        if (operator == '+') {
            return leftVal + calc(expression);
        } else {
            return leftVal - calc(expression);
        }

    }

    private static double getNextOperand(String[] exp){
        double res;
        if (exp[0].startsWith("(")) {
            int open = 1;
            int i = 1;
            while (open != 0) {
                if (exp[0].charAt(i) == '(') {
                    open++;
                } else if (exp[0].charAt(i) == ')') {
                    open--;
                }
                i++;
            }
            res = calc(exp[0].substring(1, i - 1));
            exp[0] = exp[0].substring(i);
        } else {
            int i = 1;
            if (exp[0].charAt(0) == '-') {
                i++;
            }
            while (exp[0].length() > i && isNumber((int) exp[0].charAt(i))) {
                i++;
            }
            res = Double.parseDouble(exp[0].substring(0, i));
            exp[0] = exp[0].substring(i);
        }
        return res;
    }


    private static boolean isNumber(int c) {
        int zero = (int) '0';
        int nine = (int) '9';
        return (c >= zero && c <= nine) || c =='.';
    }

    public static void main(String[] args) {
        System.out.println(calculate("(((( -6 )))) * 9 * -1"));
        System.out.println(calc("(-5.2+-5*-5*((5/4+2)))"));

    }

}
  • 1
    Doesn't handle operator precedence correctly. There are standard ways of doing this, and this isn't one of them. – user207421 Apr 17 '18 at 2:08
  • EJP, can you please point where there is a problem with operator precedence? i fully agree on the fact that it is not the standard way to do it. the standard ways were already mentioned in previous posts, the idea was to show another way to do it. – Efi G Apr 22 '18 at 7:30

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