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I have a big huge array of float numbers. These numbers represent cetain pitches.

How can I detect sequences of 'similar' numbers. As in finding the same number with a difference of say "less than 10".

For example my list might look something like this.

0:1000
1:2100
2:2000
3:440  
4:440
5:430
6:450
7:440
8:435
9:445
10:90
11:200
12:10
13:50
14:16
15:880
16:885
16:880
17:870
18:875

The entries from index 3 up till 9 are very similar (a maximum difference of 10). Similarly indexes 15 - 18 are very similar.

How would I be able to process an array like this and get some output that told me the indexes of each group of similar numbers.

EG:

Sequence 1 : Start index = 3  End Index=9
Sequence 2 : Start index = 15  End Index=18

Edit 1:

My first attempt at doing this was to do it as the list was being populated. I had an array that was 5 indexes long. If the next number being processed was within the margin of error I would add it to this array. When The array was full I had my sequence. This does work but its very inflexible. A sequence could contiunue for longer than the array length and I wouldnt know about it.

float dominant=bin*(THIS->samplerate/bufferCapacity);



        float closestFloat=FREQ_WITHIN_RANGE;

        concurrent_note.currentfrequency=dominant;

        int index= concurrent_note.count;

        float lastfreq=concurrent_note.frequencylist[index];

        float check=fabsf(lastfreq-concurrent_note.currentfrequency);

        concurrent_note.frequencylist[index]=dominant;



        if (check<=closestFloat) {



            concurrent_note.currentfrequency=dominant;

            concurrent_note.frequencylist[concurrent_note.count]=dominant;

            concurrent_note.count++;

            if (concurrent_note.count>=CONSECTUTIVE_SIMILAR_FREQ_THRESHOLD) {

                //it is likely this is the same note



                float averagenote=0;

                for (int i=0; i<CONSECTUTIVE_SIMILAR_FREQ_THRESHOLD; i++) {

                    float note=concurrent_note.frequencylist[i];

                    averagenote+=note;

                    concurrent_note.frequencylist[i]=0;



                }

                averagenote=averagenote/CONSECTUTIVE_SIMILAR_FREQ_THRESHOLD;

                [THIS frequencyChangedWithValue:averagenote attime:(inTimeStamp->mSampleTime-fft.starttime) ];

                concurrent_note.count=0;

            }



        }else

        {

            concurrent_note.count=0;

        }
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closed as too localized by Kev Feb 29 '12 at 19:15

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What if your list was { 40, 55, 70 }? –  Ben Alpert Feb 28 '12 at 17:14
    
What ideas have you had? –  Rob Feb 28 '12 at 17:15
    
None of my bussiness, but sound and music processing algorithms usually use autocorrelation to do this: en.wikipedia.org/wiki/Autocorrelation –  Diego Feb 28 '12 at 17:18
    
I added some detail to show what I've tried so far –  dubbeat Feb 28 '12 at 17:20
    
The difference between 5 & 6 (430 and 450) is 20 which is larger than 10, but still they form part of the sequence? What is the exact criteria you are looking for? –  ElKamina Feb 28 '12 at 17:25

1 Answer 1

Because I can't tell what the structure of your program is, I've provided my answer as pseudocode:

var THRESHOLD = 10;
var compareElement = getFirstElement();

var Array<Element> currentArrayOfSimilarElements;
var Array<Array<Element>> arrayOfSimilarElements;


for (int i = 1; i < list.length(); i++)   //Start at element one
{
    var element;
    while( abs((element = list.objectAt(i)) - compareElement) < THRESHOLD)   //While elements are within the threshold
    {
        currentArrayOfSimilarElements.add(element);  //Add them to an array
        i++; //And increase the index
    }
    compareElement = element;  //We have a new object to compare to
    arraysOfSimilarElements.add(currentArrayOfSimilarElements); //Add the block of similar elements we found
    currentArrayOfSimilarElements.removeAll(); //And remove the elements from the block
}

You'd be left with an array of blocks of similar elements:

[
    [440, 440, 430, 450, 440, 435, 445],
    [880, 885, 880]
]
share|improve this answer
    
Thanks for this idea. I'll see how it works out for me. –  dubbeat Feb 28 '12 at 17:36

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