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Does anyone know any efficient ways to check if any set of integers contains an integer that has changed by a certain amount.

For example I have:

int1 = 10;
int2 = 20;
int3 = 30;

And I want to know if any of these 3 integers change by 30

Now if int1 becomes 40 than the call should be triggered. At first I thought of just doing something like this.

if (abs((int1+int2+int3)-(newInt1+newInt2+newInt3)) >= 30) {

But many problems can arise from this...

  • False triggers (e.g. each new int value increases by 10, making the NET change greater than 30 but not necessarily any individual int greater than 30)
  • Untriggered reactions (e.g. one of the new integer values has increased by 50 so it should be called but then another new integer value is decreased by 50 (again, it should be called) but the net change is now zero because -50+50=0)

Does anyone have any efficient way of doing this? (Yes, I know obviously I could just check each value individually with OR statements...)

So far this is my best stab at it

if ((((abs(int1-newInt1))>=30)+((abs(int2-newInt2))>=30)+((abs(int3-newInt3))>=30))>0) {

But that's basically the same as using an OR statement (probably even takes a little longer than an OR statment.

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so, why cant you just check using an or? –  Fonix May 14 '13 at 13:09
    
There cannot be a way better than the one you are using –  ElKamina May 14 '13 at 15:37
    
@ElKamina is there a way to shorten it using expression-notation? –  Albert Renshaw May 14 '13 at 16:36
    
@AlbertRenshaw You can probably do 'or' instead of '+'. Then it will stop executing the rest of the conditions if one of the conditions is found to be true –  ElKamina May 14 '13 at 23:00
    
@ElKamina True! I could also probably check the regular >=30 and then check the "absolute" value (or better yet, just check if it's <=-30) that way it will stop if it can before running the absolute function which could take longer on a micro-scale. –  Albert Renshaw May 15 '13 at 4:57

2 Answers 2

I don't think that you can get any faster than that, and unless you're dealing with hundreds of millions of integers, this should not introduce a significant performance penalty.


However, you might want to be "clever". What if you somehow "checksum" the two sums? For example, multiply all the old and new numbers with the nth prime, then check if the difference of the new and old sum divided by the indexth prime is the amount you want.

int sum(int arr[], size_t n)
{
    int n = 0;
    for (int i = 0; i < n; i++)
        n += primes[i] * arr[i];

    return n;
}

int primes[3] = { 2, 3, 5 }; // or more
int olds[3] = { 10, 20, 30 };
int news[3] = { 40, 20, 30 };

int nth = 0; // check first
int change_expected = 30;
int oldsum = sum(olds, 3);
int newsum = sum(news, 3);
if ((newsum - oldsum) / primes[nth] == change_expected) {
    // 1st value changed as expected
}

Note that this will take way more time and CPU cycles that your naive approach.

share|improve this answer
1  
I don't understand how this works. Why are you using primes? Also what is the first half of your code doing? the "return n" stuff? –  Albert Renshaw May 14 '13 at 13:21
    
(For the record I didn't down vote this) –  Albert Renshaw May 14 '13 at 13:21
    
@AlbertRenshaw Using primes is done in order to avoid false positives (if you multiply by primes, there's no way two differences in the result can coalesce/be the same after division). The sum function does what its name suggests: it sums the elements of its first array argument, each multiplied by its corresponding prime factor in the list of primes. –  user529758 May 14 '13 at 13:23
    
Oh, that makes sense! But where are you multiplying by primes? Is that in the first half of the code? When you take the sum you are multiplying by a prime for each value (e.g. newsum[0] = [news[0]*primes[0])? –  Albert Renshaw May 14 '13 at 13:25
1  
@AlbertRenshaw Yes, that's definitely better. Or x < 0 ? -x : x. –  user529758 May 14 '13 at 13:40

Since you are using objective-c, you can always create an object that does exactly what you want (see class below the example). The main benefit of doing it this way is that you don't have to check every integer every time one is set. You simply check each number as it is changed to see if it has changed too much.

Usage Example:

// myNumbers.confined will be true until you create a number, and THEN change it by 30 or more.
ARConfinedNumbers *myNumbers = [ARConfinedNumbers new];
[myNumbers addNumber:10];
[myNumbers addNumber:20];
[myNumbers addNumber:30];

[myNumbers replaceNumberAtIndex:0 withObject:40];

// No longer confined because we have changed 10 to 40
if (!myNumbers.confined)
    NSLog(@"Not confined.");

// Reset
[myNumbers setConfined:YES];

Here is the class that I wrote to do this. Note that I used an NSArray, assuming that you were programming for iOS/MacOS but you can replace the NSArray with something else if you aren't using those classes. This should give you a great starting point though.

ARConfinedNumbers.h:

#import <Foundation/Foundation.h>

@interface ARConfinedNumbers : NSObject

// confined is true if the numbers have not been changed by more than 30.
// This can be reset by setting it to YES.
@property (nonatomic, assign) BOOL confined;

// Methods to manipulate the set of numbers
// Add more array-type-methods as needed
- (void)addNumber:(int)number;
- (void)replaceNumberAtIndex:(NSUInteger)index withObject:(int)number;
- (int)numberAtIndex:(NSUInteger)index;
- (NSUInteger)count;

@end

ARConfinedNumbers.m

#import "ARConfinedNumbers.h"

/* Private Methods */
@interface ARConfinedNumbers()

@property (nonatomic, strong) NSMutableArray *numbers;

@end

@implementation ARConfinedNumbers

- (id)init
{
    self = [super init];
    if (self)
    {
        _confined = YES;
        _numbers = [NSMutableArray new];

    }
    return self;
}

- (void)addNumber:(int)number
{
    [self.numbers addObject:@(number)];
}

- (void)replaceNumberAtIndex:(NSUInteger)index withObject:(int)number
{
    if (index < self.numbers.count)
    {
        if (number)
        {
            int existingNumber = [self.numbers[index] intValue];
            if (abs(existingNumber - number) >= 30)
                self.confined = NO;

            [self.numbers replaceObjectAtIndex:index withObject:@(number)];
        }
    }
}

- (int)numberAtIndex:(NSUInteger)index
{
    if (index < self.numbers.count)
        return [self.numbers[index] intValue];

    return 0;
}

- (NSUInteger)count
{
    return self.numbers.count;
}

@end
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