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I was asked this question in Amazon Chennai(India) interview , to determine whether an number is positive or negative. The rules are that , we should not use conditional operators such as <, and >, built in java functions (like substring, indexOf, charAt, and startsWith), no regex, or API's. I did some homework on this and the code is given below, but it only works for integer type. But they asked me to write a generic code that works for float, double, and long.

 // This might not be better way!!

 S.O.P ((( number >> 31 ) & 1) == 1 ? "- ve number " : "+ve number );

any ideas from your side.Thanks.

Updates:

OMG!!! looking at the answers, i think the interviewer thought me i was upto something.

Thank you all for providing an excellent answers(Especially Nanda,Itzwarky,Nabb and Strilanc) and spending your precious time of yours.

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3  
If there is a way to convert [whatever] to an array of bits, you could look at the most-significant-bit to determine whether or not the number is positive/negative... Out of curiosity, how would a skill like this help you? I haven't had a job yet but... it seems weird that they would take away basic operators from you :P –  Warty Oct 22 '10 at 6:53
132  
stupid contrived interview question –  Mitch Wheat Oct 22 '10 at 6:54
4  
@ItzWarty "how would a skill like this help you? " , the curiosity is because ,after having 5 yrs experience in j2ee (i was interviewed for java position and certainly did not expect this question from them :( ) , i felt bad of not able to give solution having CS background –  Dead Programmer Oct 22 '10 at 7:01
2  
@Stephen C: I understand the reason. Companies like Google, Microsoft etc learned that these weren't the 'right' sort of interview questions many years ago... –  Mitch Wheat Oct 22 '10 at 7:48
8  
however, the question of the interviewer was not precise enough. quote: "we should not use conditional operators". this "==" is also a conditional operator. So it is not possible to answer this question at all. the two operators in brackets (<,>) are not a proper explanation at all. The interviewer must have used words to precise his meaning, like: "Regarding conditional operators You are only allowed to use the == operator". To investigate unprecise questions is the skill that is really needed in programmers-life. –  OlimilOops Oct 22 '10 at 9:18

33 Answers 33

up vote 57 down vote accepted

The integer cases are easy. The double case is trickier, until you remember about infinities.

Note: If you consider the double constants "part of the api", you can replace them with overflowing expressions like 1E308 * 2.

int sign(int i) {
    if (i == 0) return 0;
    if (i >> 31 != 0) return -1
    return +1;
}
int sign(long i) {
    if (i == 0) return 0;
    if (i >> 63 != 0) return -1
    return +1;
}
public static int sign(double f) {
    if (f != f) throw new IllegalArgumentException("NaN");
    if (f == 0) return 0;
    f *= Double.POSITIVE_INFINITY;
    if (f == Double.POSITIVE_INFINITY) return +1;
    if (f == Double.NEGATIVE_INFINITY) return -1;

    //this should never be reached, but I've been wrong before...
    throw new IllegalArgumentException("Unfathomed double");
}
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3  
+1. made me laugh, but is really cool :D –  back2dos Oct 22 '10 at 13:11
6  
the double solution is very clever/slick –  Ivan Oct 22 '10 at 15:27
2  
Based on prior comments on other answers, We could say the Double.POSITIVE_INFINITY is part of the API. I do like it. Could be made complete generic via a (double) cast. –  Chris Cudmore Oct 22 '10 at 17:05
1  
@chris There's a note that the named double constants can be replaced with literal expressions. I'm not killing the clarity unless it's necessary. –  Strilanc Oct 22 '10 at 19:50

The following is a terrible approach that would get you fired at any job...

It depends on you getting a Stack Overflow Exception [or whatever Java calls it]... And it would only work for positive numbers that don't deviate from 0 like crazy.

Negative numbers are fine, since you would overflow to positive, and then get a stack overflow exception eventually [which would return false, or "yes, it is negative"]

Boolean isPositive<T>(T a)
{
  if(a == 0) return true;
  else
  {
    try
    {
      return isPositive(a-1);
    }catch(StackOverflowException e)
    {
      return false; //It went way down there and eventually went kaboom
    }
  }
}
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3  
eeeek!.................. –  Mitch Wheat Oct 22 '10 at 7:15
18  
That one made ma laugh. :D –  Rekin Oct 22 '10 at 7:16
5  
thanks, but it is like blowing a bomb and knowing the result. –  Dead Programmer Oct 22 '10 at 7:17
7  
What if number is 1.5 ,it won't result in 0 in any case directly, 0.5 and -0.5 you should consider that also, otherwise nice idea:) –  Jigar Joshi Oct 22 '10 at 7:19
1  
@Suresh S, did they say your code had to be "efficient"?; @org.life.java: grah, you got me :P –  Warty Oct 22 '10 at 7:33

This will only works for everything except [0..2]

boolean isPositive = (n % (n - 1)) * n == n;

You can make a better solution like this (works except for [0..1])

boolean isPositive = ((n % (n - 0.5)) * n) / 0.5 == n;

You can get better precision by changing the 0.5 part with something like 2^m (m integer):

boolean isPositive = ((n % (n - 0.03125)) * n) / 0.03125 == n;
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1  
Pretty cool solution! For the 0/1 you could cast to an integer and if it's equal to 0 or 1 then return true (or something like that). –  Beep beep boop boop Oct 22 '10 at 8:18

You can do something like this:

((long) (num * 1E308 * 1E308) >> 63) == 0 ? "+ve" : "-ve"

The main idea here is that we cast to a long and check the value of the most significant bit. As a double/float between -1 and 0 will round to zero when cast to a long, we multiply by large doubles so that a negative float/double will be less than -1. Two multiplications are required because of the existence of subnormals (it doesn't really need to be that big though).

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3  
@nanda Casting a double which is too large to a long will result in the largest representable value of type long as per the Java language specification (negatives behave the same way). Anyway, if num fits within a long, we're pretty much multiplying it to infinity anyway (with the exception of zero). –  Nabb Oct 22 '10 at 10:47

What about this?

return ((num + "").charAt(0) == '-');
share|improve this answer
1  
@Peter, is charAt considered part of the java API, though? –  Warty Oct 22 '10 at 8:45
1  
it is simple with indexOf anyways cannot be used (num+"").indexOf("-") > 1 –  Dead Programmer Oct 22 '10 at 9:31
// Returns 0 if positive, nonzero if negative
public long sign(long value) {
    return value & 0x8000000000000000L;
}

Call like:

long val1 = ...;
double val2 = ...;
float val3 = ...;
int val4 = ...;

sign((long) valN);

Casting from double / float / integer to long should preserve the sign, if not the actual value...

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1  
no API's Double.doubleToLongBits, why u are AND ing with 0x8000000000000000L , any significance on this number. –  Dead Programmer Oct 22 '10 at 7:27
2  
you are returning something and having void in method definition. –  Dead Programmer Oct 22 '10 at 7:43

You say

we should not use conditional operators

But this is a trick requirement, because == is also a conditional operator. There is also one built into ? :, while, and for loops. So nearly everyone has failed to provide an answer meeting all the requirements.

The only way to build a solution without a conditional operator is to use lookup table vs one of a few other people's solutions that can be boiled down to 0/1 or a character, before a conditional is met.

Here are the answers that I think might work vs a lookup table:

  • Nabb
  • Steven Schlansker
  • Dennis Cheung
  • Gary Rowe
share|improve this answer

This solution uses modulus. And yes, it also works for 0.5 (tests are below, in the main method).

public class Num {

    public static int sign(long x) {
        if (x == 0L || x == 1L) return (int) x;
        return x == Long.MIN_VALUE || x % (x - 1L) == x ? -1 : 1;
    }

    public static int sign(double x) {
        if (x != x) throw new IllegalArgumentException("NaN");
        if (x == 0.d || x == 1.d) return (int) x;
        if (x == Double.POSITIVE_INFINITY) return 1;
        if (x == Double.NEGATIVE_INFINITY) return -1;
        return x % (x - 1.d) == x ? -1 : 1;
    }

    public static int sign(int x) {
        return Num.sign((long)x);
    }

    public static int sign(float x) {
        return Num.sign((double)x);
    }

    public static void main(String args[]) {

        System.out.println(Num.sign(Integer.MAX_VALUE)); // 1
        System.out.println(Num.sign(1)); // 1
        System.out.println(Num.sign(0)); // 0
        System.out.println(Num.sign(-1)); // -1
        System.out.println(Num.sign(Integer.MIN_VALUE)); // -1

        System.out.println(Num.sign(Long.MAX_VALUE)); // 1
        System.out.println(Num.sign(1L)); // 1
        System.out.println(Num.sign(0L)); // 0
        System.out.println(Num.sign(-1L)); // -1
        System.out.println(Num.sign(Long.MIN_VALUE)); // -1

        System.out.println(Num.sign(Double.POSITIVE_INFINITY)); // 1
        System.out.println(Num.sign(Double.MAX_VALUE)); // 1
        System.out.println(Num.sign(0.5d)); // 1
        System.out.println(Num.sign(0.d)); // 0
        System.out.println(Num.sign(-0.5d)); // -1
        System.out.println(Num.sign(Double.MIN_VALUE)); // -1
        System.out.println(Num.sign(Double.NEGATIVE_INFINITY)); // -1

        System.out.println(Num.sign(Float.POSITIVE_INFINITY)); // 1
        System.out.println(Num.sign(Float.MAX_VALUE)); // 1
        System.out.println(Num.sign(0.5f)); // 1
        System.out.println(Num.sign(0.f)); // 0
        System.out.println(Num.sign(-0.5f)); // -1
        System.out.println(Num.sign(Float.MIN_VALUE)); // -1
        System.out.println(Num.sign(Float.NEGATIVE_INFINITY)); // -1
        System.out.println(Num.sign(Float.NaN)); // Throws an exception

    }
}
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Untested, but illustrating my idea:

boolean IsNegative<T>(T v) {
  return (v & ((T)-1));
}
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2  
Nice idea, but I think it will give you a compilation error. You cannot cast to a type parameter. –  Stephen C Oct 22 '10 at 7:38
3  
Yeah, won't work at all. Java generics don't work with primitive tpyes, and arithmetic and bitwise operators don't work on wrapper types, and autounboxing again doesn't work generically. –  Michael Borgwardt Oct 22 '10 at 7:41

It seems arbitrary to me because I don't know how you would get the number as any type, but what about checking Abs(number) != number? Maybe && number != 0

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Integers are trivial; this you already know. The deep problem is how to deal with floating-point values. At that point, you've got to know a bit more about how floating point values actually work.

The key is Double.doubleToLongBits(), which lets you get at the IEEE representation of the number. (The method's really a direct cast under the hood, with a bit of magic for dealing with NaN values.) Once a double has been converted to a long, you can just use 0x8000000000000000L as a mask to select the sign bit; if zero, the value is positive, and if one, it's negative.

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1  
And if they consider that to be an API, it's time to get your ass out of there and find an employer who isn't utterly retarded. –  Donal Fellows Oct 22 '10 at 8:18

If it is a valid answer

boolean IsNegative(char[] v) throws NullPointerException, ArrayIndexOutOfBoundException
{ 
  return v[0]=='-'; 
} 
share|improve this answer
1  
@Helper method: in this case, that's not the method's problem ;) –  RCIX Oct 24 '10 at 8:48

one more option I could think of

private static boolean isPositive(Object numberObject) {
Long number = Long.valueOf(numberObject.toString());
return Math.sqrt((number * number)) != number;
}

 private static boolean isPositive(Object numberObject) {
Long number = Long.valueOf(numberObject.toString());
long signedLeftShifteredNumber = number << 1; // Signed left shift
long unsignedRightShifterNumber = signedLeftShifteredNumber >>> 1; // Unsigned right shift
return unsignedRightShifterNumber == number;
}
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1  
Math.sqrt is Java API –  nanda Oct 22 '10 at 8:44
1  
@nanda; Oh. That blows this one out, then. –  Phoshi Oct 22 '10 at 10:00

This one is roughly based on ItzWarty's answer, but it runs in logn time! Caveat: Only works for integers.

Boolean isPositive(int a)
{
  if(a == -1) return false;
  if(a == 0) return false;
  if(a == 1) return true;
  return isPositive(a/2);
}
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1  
Why is zero return false? Isn't zero a positive value? –  Buhake Sindi Oct 23 '10 at 15:34

Try this without the code: (x-SQRT(x^2))/(2*x)

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Write it using the conditional then take a look at the assembly code generated.

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Why not get the square root of the number? If its negative - java will throw an error and we will handle it.

         try {
            d = Math.sqrt(THE_NUMBER);
         }
         catch ( ArithmeticException e ) {
            console.putln("Number is negative.");
         }
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I don't know how exactly Java coerces numeric values, but the answer is pretty simple, if put in pseudocode (I leave the details to you):

sign(x) := (x == 0) ? 0 : (x/x)
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If you are allowed to use "==" as seems to be the case, you can do something like that taking advantage of the fact that an exception will be raised if an array index is out of bounds. The code is for double, but you can cast any numeric type to a double (here the eventual loss of precision would not be important at all).

I have added comments to explain the process (bring the value in ]-2.0; -1.0] union [1.0; 2.0[) and a small test driver as well.

class T {

   public static boolean positive(double f)
   {
       final boolean pos0[] = {true};
       final boolean posn[] = {false, true};

       if (f == 0.0)
           return true;

       while (true) {

           // If f is in ]-1.0; 1.0[, multiply it by 2 and restart.
           try {
               if (pos0[(int) f]) {
                   f *= 2.0;
                   continue;
               }
           } catch (Exception e) {
           }

           // If f is in ]-2.0; -1.0] U [1.0; 2.0[, return the proper answer.
           try {
               return posn[(int) ((f+1.5)/2)];
           } catch (Exception e) {
           }

           // f is outside ]-2.0; 2.0[, divide by 2 and restart.
           f /= 2.0;

       }

   }

   static void check(double f)
   {
       System.out.println(f + " -> " + positive(f));
   }

   public static void main(String args[])
   {
       for (double i = -10.0; i <= 10.0; i++)
           check(i);
       check(-1e24);
       check(-1e-24);
       check(1e-24);
       check(1e24);
   }

The output is:

-10.0 -> false
-9.0 -> false
-8.0 -> false
-7.0 -> false
-6.0 -> false
-5.0 -> false
-4.0 -> false
-3.0 -> false
-2.0 -> false
-1.0 -> false
0.0 -> true
1.0 -> true
2.0 -> true
3.0 -> true
4.0 -> true
5.0 -> true
6.0 -> true
7.0 -> true
8.0 -> true
9.0 -> true
10.0 -> true
-1.0E24 -> false
-1.0E-24 -> false
1.0E-24 -> true
1.0E24 -> true
share|improve this answer

Not efficient, but I guess that's not important here: (I'm also a little rusty with Java, I hope this is more or less correct syntax.)

boolean isPositive = false;

int n = (int)(x * x);
while (n-- != 0)
{
    if ((int)(--x) == 0)
    {
        isPositive = true;
        break;
    }
}

This should work because x will be decremented at most x * x times (always a positive number) and if x is never equal to 0, then it must have been negative to begin with. If x, on the other hand, equals 0 at some point, it must have been postive.

Note that this would result in isPositive being false for 0.

P.S.: Admittedly, this won't work with very large numbers, since (int)(x * x) would overflow.

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Well, taking advantage of casting (since we don't care what the actual value is) perhaps the following would work. Bear in mind that the actual implementations do not violate the API rules. I've edited this to make the method names a bit more obvious and in light of @chris' comment about the {-1,+1} problem domain. Essentially, this problem does not appear to solvable without recourse to API methods within Float or Double that reference the native bit structure of the float and double primitives.

As everybody else has said: Stupid interview question. Grr.

public class SignDemo {

  public static boolean isNegative(byte x) {
    return (( x >> 7 ) & 1) == 1;
  }

  public static boolean isNegative(short x) {
    return (( x >> 15 ) & 1) == 1;
  }

  public static boolean isNegative(int x) {
    return (( x >> 31 ) & 1) == 1;
  }

  public static boolean isNegative(long x) {
    return (( x >> 63 ) & 1) == 1;
  }

  public static boolean isNegative(float x) {
    return isNegative((int)x);
  }

  public static boolean isNegative(double x) {
    return isNegative((long)x);
  }

  public static void main(String[] args) {


    // byte
    System.out.printf("Byte %b%n",isNegative((byte)1));
    System.out.printf("Byte %b%n",isNegative((byte)-1));

    // short
    System.out.printf("Short %b%n",isNegative((short)1));
    System.out.printf("Short %b%n",isNegative((short)-1));

    // int
    System.out.printf("Int %b%n",isNegative(1));
    System.out.printf("Int %b%n",isNegative(-1));

    // long
    System.out.printf("Long %b%n",isNegative(1L));
    System.out.printf("Long %b%n",isNegative(-1L));

    // float
    System.out.printf("Float %b%n",isNegative(Float.MAX_VALUE));
    System.out.printf("Float %b%n",isNegative(Float.NEGATIVE_INFINITY));

    // double
    System.out.printf("Double %b%n",isNegative(Double.MAX_VALUE));
    System.out.printf("Double %b%n",isNegative(Double.NEGATIVE_INFINITY));

    // interesting cases
    // This will fail because we can't get to the float bits without an API and
    // casting will round to zero
    System.out.printf("{-1,1} (fail) %b%n",isNegative(-0.5f));

  }

}
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I think there is a very simple solution:

public boolean isPositive(int|float|double|long i){
    return (((i-i)==0)? true : false);
}

tell me if I'm wrong!

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This solution uses no conditional operators, but relies on catching two excpetions.

A division error equates to the number originally being "negative". Alternatively, the number will eventually fall off the planet and throw a StackOverFlow exception if it is positive.

public static boolean isPositive( f)
       {
           int x;
           try {
               x = 1/((int)f + 1);
               return isPositive(x+1);
           } catch (StackOverFlow Error e) {
               return true;

           } catch (Zero Division Error e) {
               return false;
           }


   }
share|improve this answer

What about the following?

T sign(T x) {
    if(x==0) return 0;
    return x/Math.abs(x);
}

Should work for every type T...

Alternatively, one can define abs(x) as Math.sqrt(x*x), and if that is also cheating, implement your own square root function...

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if (((Double)calcYourDouble()).toString().contains("-"))
        doThis();
else doThat();
share|improve this answer

Combined generics with double API. Guess it's a bit of cheating, but at least we need to write only one method:

static <T extends Number> boolean isNegative(T number)
{       
    return ((number.doubleValue() * Double.POSITIVE_INFINITY) == Double.NEGATIVE_INFINITY);
}
share|improve this answer

Two simple solutions. Works also for infinities and numbers -1 <= r <= 1 Will return "positive" for NaNs.

String positiveOrNegative(double number){
    return (((int)(number/0.0))>>31 == 0)? "positive" : "negative";
}

String positiveOrNegative(double number){
    return (number==0 || ((int)(number-1.0))>>31==0)? "positive" : "negative";
}
share|improve this answer

It's easy to do this like

private static boolean isNeg(T l) {
        return (Math.abs(l-1)>Math.abs(l));
 }
share|improve this answer
static boolean isNegative(double v) {
  return new Double(v).toString().startsWith("-");
}
share|improve this answer
1  
@Suresh: Okay, [0] == '-'; then. –  Billy ONeal Oct 22 '10 at 12:52

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