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I'm trying to find a way to look for colors in images. Here's a simplified example:

tree = ExampleData[{"TestImage", "Tree"}]

tree image from Mathematica's example data set

I can see there's blue in there, so I want an xy location somewhere in that sea of pixels. Say I'm looking for a particular shade of blue, which I can supply some approximate RGB values for:

Manipulate[Graphics[{RGBColor[r, g, b], Disk[]}], {r, 0, 1}, {g, 0, 1}, {b, 0, 1}] 

simple colour mixer

and now I want to find the coordinates of some pixels which have that value, or near enough. Nearest might be able to do it:

Nearest[ImageData[tree], {0.32, 0.65, .8}]

but doesn't - it 'generates a very large output'...

It's the reverse of doing this:

ImageValue[tree, {90, 90}]

which is OK if I've got the numbers already, or can click on the image. Once the location of the colors I want is known, I can then supply this to functions that require 'markers' - such as RegionBinarize.

I feel there must be a Mathematica function for this, but can't find it yet...

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There is a proposal for a mathematica specific site, and we could use your support in getting it up and running. Thanks. –  rcollyer Dec 18 '11 at 20:59
    
Consider it done. I'm in the back seat, supporting the proposal as much as I can. –  cormullion Dec 18 '11 at 22:57
    
Glad to have you. –  rcollyer Dec 18 '11 at 23:00

3 Answers 3

up vote 6 down vote accepted

Does this

Position[#, First@Nearest[Flatten[#, 1], {0.32, 0.65, .8}]] &@
 ImageData[tree]
(*
{{162, 74}}
*)

do what you want?

OK, try this:

tree = ExampleData[{"TestImage", "Tree"}];

dat = Reverse[ImageData[tree]\[Transpose], {2}];

dim = Dimensions[dat][[{1, 2}]];

nearfunc = Nearest[Join @@ dat -> Tuples @ Range @ dim];

Manipulate[
  rgb = Extract[dat, Ceiling[p]];
  posns = nearfunc[rgb, num];
  Graphics[{
    Raster[dat\[Transpose]], Red, Point[posns]
   }],
  {{p, {10, 10}}, Locator},
  {{num, 20}, 1, 100, 1}
]

this lets you click somewhere on the image, determines a number of points that are closest (according to the default norm) to the colour of that point, and displays them. num is the number of points to be shown.

It looks like this:

Mathematica graphics

share|improve this answer
1  
@corm You can do ImageData[tree]//Shallow to see the structure of the data ImageData produces. You see it is a list of lists of lists(basically, a matrix, each element of which is a vector). This is why Position returns both the x and y coordinates, and this is why you need to flatten the list. –  acl Dec 18 '11 at 21:04
1  
@acl I think all the red points are somehow rotated 90 degrees counterclockwise relative to the points they're referring to - at least, that's something I noticed on a simpler image –  cormullion Dec 19 '11 at 11:24
1  
The rotation is due to the fact that the pixel at position {a, b} in Show[tree] corresponds to ImageData[tree][[H-b,a]] where H is the height of the image, i.e. H=ImageDimensions[tree][[1]]. The easiest way around this is to redefine dat = Transpose[Reverse[ImageData[tree]]]; which basically rotates the image data matrix 90 degrees. –  Heike Dec 19 '11 at 13:16
1  
BTW, if you define nearfunc as something like nearfunc = Nearest[Flatten[dat, 1] -> Flatten[Table[{i, j}, {i, dim[[1]]}, {j, dim[[2]]}], 1]];, it will return a list of coordinates instead of rgb values so you don't need to use Position to extract the coordinates making the code a bit faster. –  Heike Dec 19 '11 at 13:43
1  
@Mr.W but there's no way I'd have written this code! But ok, if you want to slog away for my benefit, have at it :) [the tuples bit is clever] –  acl Dec 19 '11 at 16:07

There are a few problems with what you are trying to do.

  1. You want a position coordinate, not the nearest value itself

  2. Nearest may return a lot of values rather than just one (use the third argument to specify)

  3. Nearest wants a list of values to search, not a table

You probably want something like this:

Nearest[Join @@ ImageData@tree, {0.32, 0.65, .8}, 1]
Position[ImageData@tree, #] & /@ %
{{0.321569, 0.65098, 0.8}}
{{{162, 74}}}

Don't miss the chance to build a NearestFunction for efficiency, if you are going to be using this dynamically. Here is a more complete example:

tree = ExampleData[{"TestImage", "Tree"}]

findcolor[img_Image] :=
 DynamicModule[
  {dat, nearfunc},
  dat = ImageData@img;
  nearfunc = Nearest[Join @@ dat];
  Manipulate[
   Column[{
     Graphics[{RGBColor[r, g, b], Disk[]}],
     Position[dat, nearfunc[{r, g, b}, 1][[1]]]
     }],
   {{r, 0.5}, 0, 1}, {{g, 0.5}, 0, 1}, {{b, 0.5}, 0, 1}
   ]
  ]

findcolor[tree]

Mathematica graphics

share|improve this answer
    
so, are you planning to make this interactive, so that you select the colour and see the 100 points nearest to that colour superposed on the image? –  acl Dec 18 '11 at 19:16
    
@Mr.Wizard Yes, you see my problems well, and particularly number 3. - how to use ImageData correctly in functions. As you say, I probably don't know the difference between lists and tables. (I thought they were the same thing... :) Your solution is great! Thanks. –  cormullion Dec 18 '11 at 20:26

Not exactly an answer to the question, but you might find ideas in this one too:

image = ExampleData[{"TestImage", "Tree"}];
red = Image@ConstantArray[List @@ Red, ImageDimensions[image]];


threshold = 0.15;
p = ImageDimensions[image]/2;
Row[
 {VerticalSlider[Dynamic[threshold]],
  LocatorPane[
   Dynamic[p],
   Dynamic[
    colour = 
     Extract[ImageData[image], 
      Ceiling[p] /. {x_, y_} :> {ImageDimensions[image][[2]] - y, x} /. 
       0 -> 1];
    mask = 
     Binarize[ImageApply[Abs[# - colour] &, image], threshold];
    Image[
     ImageCompose[image, {SetAlphaChannel[red, mask], 0.5}],
     Magnification -> 1
     ]
    ]
   ],
  Dynamic@
   Graphics[{}, Background -> RGBColor @@ colour, 
    ImageSize -> ImageDimensions[image]]
  }
 ]

Mathematica graphics

share|improve this answer
    
That's really good! And the big colour swatch is a bonus. Thanks. –  cormullion Dec 20 '11 at 15:24
    
@cormullion With a bit of extra work, you can make the swatch into a ColorSetter[], but I didn't want to complicate things (we'd have to make sure that the locator thing doesn't immediately overwrite the colour value when it's set from the ColorSetter, and we need to handle {r,g,b}, and RGBColor[r,g,b] formats separate, without slowing the whole thing down too much. It's already pretty slow as is, it could be made faster) –  Szabolcs Dec 20 '11 at 15:37
    
very cool! amazing what you can do with a little code –  acl Dec 20 '11 at 18:18
    
@szabolcs It's quick and smooth on my iMac - at least on the 'tree' image! –  cormullion Dec 20 '11 at 20:40

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