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I created an array of samples in the following way:

var data = new Array(8);
...
data[n].push([x, y]);

where n is the channel (0-7) and [x, y] the current sample of the selected channel. For a particular application I need to leave x values untouched (0, 1, 2, 3, ... m) and shift the y values each time I get a new sample.

A simple example with m = 3. After the first load I have:

data[0] -> [0, 2] [1, 4] [2, 6]

when a new sample is received I want to change the array like this:

data[0] -> [0, 4] [1, 6] [2, 8]

Because m could have values up to 5000 I'm wondering which is the best way to do this. Of course I can cycle the whole array changing the y value of position j to the y value of position j+1.

Is there something better? Thanks!

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1  
Read a couple times, don't get it... Do you have some code? That'll make it easier to understand. –  elclanrs Jun 8 '13 at 8:19
    
Currently I'm looking for the best solution. I haven't write yet much code. What do you not understand? I apologize for my English, I'm aware I cannot explain very well. –  Mark Jun 8 '13 at 8:28

3 Answers 3

up vote 0 down vote accepted

You can use Array.map to change every item in array without explicit cycle.

var data = [
        [0,2], [1,4], [2,6]
    ];

function update(data) {
    data.map(function(item,key) {
        if(key+1>data.length-1) return;
        data[key][1] = data[key+1][1];
    });
    // if we shift, the last item Y should have empty value
    data[data.length-1][1] = undefined;
}

update(data);

console.log(data); // [0,4], [1,6], [2,undefined]

See the fiddle.

You may also like this black magic inspired by @rab's solution in the comment

var data = [ [0,2], [1,4], [2,6] ];
data.map(function(_,i,o){o[i][1]=o[++i]&&o[i][1]});
console.log(data); // [0,4], [1,6], [2,undefined]
share|improve this answer
    
Very interesting! I didn't know Array.map. I'll try it. –  Mark Jun 8 '13 at 8:43
1  
even shorter data.map( function( a , i ) { data[i][1] = data[i+1] && data[i+1][1]; }); –  rab Jun 8 '13 at 8:59

Try to split data on two separate arrays and use second array like Circular buffer.

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This was the first attempt. But the target function requires an array of points as described. Anyway, I'm trying other solutions to avoid this problem at all. –  Mark Jun 8 '13 at 8:36

Alternative answer provided that

  • a sample is [x, y]
  • x is a sequence 0, 1, 2, ..., m (with no gaps), when you receive a new sample you would:

then

// push the value of the sample, not X, just Y
data[0].push(value)
// remove the first element from the array.
data[0].shift()

x is the index of the array.


Performance-wise, I wouldn't change the source array but the accessor function.

So you could have a class that provides the shifting when reading, e.g. a ShiftedArray class, where channel is data[z]:

var shifter = 0

function get(index) {
 return [channel[index][0], channel[index + this.shifter][1]];
}

then you could provide increase the shift:

function increase() {
  this.shifter++;
}

or decrease it:

function increase() {
  this.shifter--;
}

Then to access the array data:

var item1 = shiftedArray.get(0);
// shall return [0, 2]

shiftedArray.increase();
var item2 = shiftedArray.get(0);
// shall return [0, 4]

The above is just conceptual code, not tested, you should add boundaries checks.

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If I understand correctly, it doesn't work. The array is always fully populated. A new sample should be pushed at the end, popping the first value (only for the y values! otherwise it's very simple). –  Mark Jun 8 '13 at 8:27
    
is x value a sequence 0, 1, 2, ..., m? are there any gaps in the sequence? PS: I fixed a bug the in sample 'get' function. –  David Riccitelli Jun 8 '13 at 8:29
    
There are no gaps. –  Mark Jun 8 '13 at 8:35
    
so, you don't need that, that's the index of the array and you can just shift/push elements. (x is untouched, so I assume it'll always be a sequence from 0 to m) –  David Riccitelli Jun 8 '13 at 8:37
    
Ok, I got it now. I'll give it a try. Thanks! –  Mark Jun 8 '13 at 8:46

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