Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Been hooking with a graph in d3 using time scaling x axis events. Its pointless to explain entire situation with graph but I came in conclusion of a solution. For that I figured out this solution which I am in little confusion with.

Imgine I have an Object:

{
    "values" : [ [ 1136005200000 , 1271000.0] , [ 1138683600000 , 1271000.0] , [ 1141102800000 , 1271000.0] , [ 1143781200000 , 0] , [ 1146369600000 , 0]
}

Lets say it has pairs: [x, y]. x looks like '1136005200000' which is ofcourse a UTC parse date.

What I just need to do is to create a dummy object. In that object, I need to se default dates, lets say 7 days with some parsed numbers. Besides, I need to make sure for the date which doesnt exist in above pair will enter 'y' as 0 and then to finalize the object for 7 days just inserting those values which are available.

Any ideas or approach anyone want to share, please go ahead!

share|improve this question
1  
It is unclear what you are asking for help with. –  jfriend00 Sep 20 '13 at 16:08
    
Are you looking for something like stackoverflow.com/questions/16733601/… ? –  nrabinowitz Sep 20 '13 at 18:34

1 Answer 1

up vote 0 down vote accepted

For instance you have two arrays:

var arr1 = [{a: 1, b: 34}, {..}..] upto length 10 var arr2 = [{a:1, b: 0}] upto length < 10

I somehow managed to fix it using these couple of lines after some brainstorming.

Precompute a lookup table which maps 'time' to the replacement 'count'

var lookup = {}, i, e;
for(i = 0, e = arr2[i]; i < arr2.length; e = arr2[++i])
  lookup[e.time] = e.count;

Spin through destination array & merge in the 'count' from the lookup 'arr2'

for(i = 0, e = arr1[i]; i < arr2.length; e = arr2[++i])
  e.count = lookup[e.time] || 0; // Finalizes `arr2` after merging

Assigns zero if value is not there and merge using similar key value pairs.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.