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.

I have a set of around 500 (x,y,z) real values. Since I will need to bin the values based on their (x,y) coordinates, I stripped the z values and stored in on a seperate list. I am left with only the x,y values; I rescaled and rounded them to index pairs in the range of, 1..100 range.

Now I want to populate an array with the z values in a 100x100 matrix at the particular (x,y) coordinates.

More precisely,

I have a set of values for example : data = {{2.62399, 0.338057, 2.09629}, {1.8424, 0.135817, 3.21925}, {0.702257, 1.14502, 3.9335}...

I stripped it of its zvalues and store it in zvalues list:

zvalues = {2.09629, 3.21925, 3.9335....

I rounded, rescaled and created a new array of indices

indices = {{53, 7}, {37, 3}, {14, 23}...

I want to create a new 100x100 matrix and place the zvalues on the coordinates corresponding to the indices matrix

For example, in pseudocode

For (int i = 1, i < 101, i++){

NewArray(indices[i]) = zvalues[i];
}

The first time the loop will run, it should do NewArray(53,7) = 2.09629.

I want to know the syntax to loop through the indices array and populate the 2 dimensional 100x100 NewArray with zvalues

share|improve this question
add comment

2 Answers

up vote 0 down vote accepted

to follow your basic approach you need to initialize the array:

newArray=Table[,{100},{100}]

then in the loop the syntax is:

newArray[[indices[[i,1]],indices[[i,2]]]]=zdata[[i]]

note the double square brackets for referencing parts of arrays (or lists in Mathematica terminology)

A better approach would be to create a SparseArray, which for one thing would not require pre-initialization, or even knowing the dimensions in advance.

Finally in mathematica you can usually use an object oriented approach, avioding the "do" loop all together:

data = {{1.5, 1.1, 1.1}, {2.2, 2.2, 2.2}, {1.01, 2.3, 1.2}};
m1 = Table[, {2}, {2}];
(m1[[Floor[#[[1]]], Floor[#[[2]]]]] = #[[3]]) & /@ data;
m1
m2 = SparseArray[ Floor[#[[1 ;; 2]]] -> #[[3]] & /@ data , Automatic,];
Normal[m2]


{{1.1, 1.2}, {Null, 2.2}}
{{1.1, 1.2}, {Null, 2.2}}
share|improve this answer
    
Thanks George. Being a beginner, the SparseArray method is a bit hard for me to implement, but I will definitely try this idea when optimising my codes. Thank you –  Mun Jan 11 '13 at 4:00
1  
@Mun you may wish to consider looking at Mathematica, a stackexchange site dedicated to Mathematica. Most of the experts have migrated over there. –  rcollyer Jan 11 '13 at 15:27
add comment

While I don't understand why you want to create a new way of indexing your array, this will do what you want :

data = {{2.62399, 0.338057, 2.09629}, {1.8424, 0.135817, 3.21925}, {0.702257, 1.14502, 3.9335}};
zvalues = {2.09629, 3.21925, 3.9335};
indices = {{53, 7}, {37, 3}, {14, 23}};

newArray[xIndex_, yIndex_]:=Take[data, Position[indices, {xIndex, yIndex}][[1, 1]]][[1, 3]]

newArray[53, 7]
(* 2.09629 *)
share|improve this answer
    
thank you. I have a set of real (x,y,z) values and I want to bin them based on (x,y) values only. So I stripped it of the zvalues, then used binLists(lists of xy,binbondary-x,binboundary-y). Now I want to average the z values of the corresponding (x,y) points in the bins. That's why I attempted to rescale. But doesn't really work as rescale give same coordinates for some points. Any idea how to bin (x,y,z) based on x,y only and average the z values of corresponding x,y value in each bin. Thank you –  Mun Jan 8 '13 at 23:44
    
Have a look at BinCounts. –  b.gatessucks Jan 9 '13 at 7:03
    
@Mun -- you should post that as a new question. Also I think it should be poited out here, b.g's solution is not an array at all, but a function. It looks like an array in the sense that newArray[i,j] returns the value you want, but you will not be able to apply built in array operators. –  george Jan 11 '13 at 20:41
add comment

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.