Mathematically Find Max Value without Conditional Comparison

旧城冷巷雨未停 提交于 2019-11-28 06:54:04

finding the maximum of 2 variables:

max = a-((a-b)&((a-b)>>31))

where >> is bitwise right-shift (also called SHR or ASR depeding on signedness).

Instead of 31 you use the number of bits your numbers have minus one.

Aasheash

I guess this one would be the most simplest if we manage to find difference between two numbers (only the magnitude not sign)

max = ((a+b)+|a-b|)/2;

where |a-b| is a magnitude of difference between a and b.

If you can't trust your environment to generate the appropriate branchless operations when they are available, see this page for how to proceed. Note the restriction on input range; use a larger integer type for the operation if you cannot guarantee your inputs will fit.

Solution without conditionals. Cast to uint then back to int to get abs.

int abs (a) { return (int)((unsigned int)a); }
int max (a, b) { return (a + b + abs(a - b)) / 2; }

int max3 (a, b, c) { return (max(max(a,b),c); }

Using logical operations only, short circuit evaluation and assuming the C convention of rounding towards zero, it is possible to express this as:

int lt0(int x) {
    return x && (!!((x-1)/x));
}

int mymax(int a, int b) {
    return lt0(a-b)*b+lt0(b-a)*a;
}

The basic idea is to implement a comparison operator that will return 0 or 1. It's possible to do a similar trick if your scripting language follows the convention of rounding toward the floor value like python does.

Hmmm. I assume NOT, AND, and OR are bitwise? If so, there's going to be a bitwise expression to solve this. Note that A | B will give a number >= A and >= B. Perhaps there's a pruning method for selecting the number with the most bits.

To extend, we need the following to determine whether A (0) or B (1) is greater.

truth table:

0|0 = 0  
0|1 = 1
1|0 = 0
1|1 = 0

!A and B

therefore, will give the index of the greater bit. Ergo, compare each bit in both numbers, and when they are different, use the above expression (Not A And B) to determine which number was greater. Start from the most significant bit and proceed down both bytes. If you have no looping construct, manually compare each bit.

Implementing "when they are different":

(A != B) AND (my logic here)

function Min(x,y:integer):integer;
  Var
   d:integer;
   abs:integer;
 begin
  d:=x-y;
  abs:=d*(1-2*((3*d) div (3*d+1)));
  Result:=(x+y-abs) div 2;
 end;

try this, (but be aware for overflows) (Code in C#)

    public static Int32 Maximum(params Int32[] values)
    {
        Int32 retVal = Int32.MinValue;
        foreach (Int32 i in values)
            retVal += (((i - retVal) >> 31) & (i - retVal));
        return retVal;        
    }

You can express this as a series of arithmetic and bitwise operations, e.g.:

int myabs(const int& in) {
  const int tmp = in >> ((sizeof(int) * CHAR_BIT) - 1);
  return tmp - (in ^ tmp(;
}

int mymax(int a, int b) {
    return ((a+b) + myabs(b-a)) / 2;
}

please look at this program.. this might be the best answer till date on this page...

#include <stdio.h>

int main()
{
    int a,b;
    a=3;
    b=5;
    printf("%d %d\n",a,b);
    b = (a+b)-(a=b); // this line is doing the reversal
    printf("%d %d\n",a,b);
    return 0;
}
//Assuming 32 bit integers 
int is_diff_positive(int num)
{
    ((num & 0x80000000) >> 31) ^ 1; // if diff positive ret 1 else 0
}
int sign(int x)
{
   return ((num & 0x80000000) >> 31);
}

int flip(int x)
{
   return x ^ 1;
}

int max(int a, int b)
{
  int diff = a - b;

  int is_pos_a = sign(a);
  int is_pos_b = sign(b);

  int is_diff_positive = diff_positive(diff);
  int is_diff_neg = flip(is_diff_positive);

  // diff (a - b) will overflow / underflow if signs are opposite
  // ex: a = INT_MAX , b = -3 then a - b => INT_MAX - (-3) => INT_MAX + 3
  int can_overflow = is_pos_a ^ is_pos_b;
  int cannot_overflow = flip(can_overflow);
  int res = (cannot_overflow * ( (a * is_diff_positive) + (b * 
            is_diff_negative)) + (can_overflow * ( (a * is_pos_a) + (b * 
            is_pos_b)));

  return res;

}

It depends which language you're using, but the Ternary Operator might be useful.

But then, if you can't perform conditional checks in your 'scripting application', you probably don't have the ternary operator.

sixtytrees

If A is always greater than B .. [ we can use] .. MAX = (A - B) + B;

No need. Just use: int maxA(int A, int B){ return A;}

(1) If conditionals are allowed you do max = a>b ? a : b.

(2) Any other method either use a defined set of numbers or rely on the implicit conditional checks.

(2a) max = a-((a-b)&((a-b)>>31)) this is neat, but it only works if you use 32 bit numbers. You can expand it arbitrary large number N, but the method will fail if you try to find max(N-1, N+1). This algorithm works for finite state automata, but not a Turing machine.

(2b) Magnitude |a-b| is a condition |a-b| = a-b>0 a-b : b-a

What about:

Square root is also a condition. Whenever c>0 and c^2 = d we have second solution -c, because (-c)^2 = (-1)^2*c^2 = 1*c^2 = d. Square root returns the greatest in the pair. I comes with a build in int max(int c1, int c2){return max(c1, c2);}

Without comparison operator math is very symmetric as well as limited in power. Positive and negative numbers cannot be distinguished without if of some sort.

#region GetMaximumNumber
/// <summary>
/// Provides method to get maximum values.
/// </summary>
/// <param name="values">Integer array for getting maximum values.</param>
/// <returns>Maximum number from an array.</returns>
private int GetMaximumNumber(params int[] values)
{
  // Declare to store the maximum number.
  int maximumNumber = 0;
  try
  {
    // Check that array is not null and array has an elements.
    if (values != null &&
        values.Length > 0)
    {
      // Sort the array in ascending order for getting maximum value.
      Array.Sort(values);

      // Get the last value from an array which is always maximum.
      maximumNumber = values[values.Length - 1];
    }
  }
  catch (Exception ex)
  {
    throw ex;
  }
  return maximumNumber;
}
#endregion
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