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after performing cv::watershed(image, markers); the markers image will be -1 at the boundaries of the regions, and will be 1 in the region corresponding to the seed that was labelled 1, and will be 2 in the region corresponding to the seed that was labelled 2, and so on. So you can do something like this: cv::Mat region1 = markers==1;


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You can broadcast the 2D mask against the 3D array, so that its size is expanded along the 3rd dimension without actually duplicating it in memory: import numpy as np x = np.random.randn(10, 20, 30) mask = np.random.randn(10, 20) > 0 # broadcast `mask` along the 3rd dimension to make it the same shape as `x` _, mask_b = np.broadcast_arrays(x, mask[..., ...


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One way to do this is to create a 3D mask based on replications of the 2D one across the third dimension as follows: mask3 = mask2 * np.ones(3)[:, None, None]. masked_output = np.ma.array(frametemperature_reshape, mask=mask3)


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Phone: String replaced = yourString.replaceAll("\\b(\\d{2})\\d+(\\d)", "$1*******$2"); Email: String replaced = yourString.replaceAll("\\b(\\w)[^@]+@\\S+(\\.[^\\s.]+)", "$1***@****$2"); Explanation: phone The \b boundary helps check that we are the start of the digits (there are other ways to do this, but here this will do). (\d{2}) captures two ...


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Ok this is what I wanted to do. var codeRenderer = function (instance, td, row, col, prop, value, cellProperties) { Handsontable.renderers.TextRenderer.apply(this, arguments); $(".handsontableInput").mask("99/99/9999"); console.log(row); };


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Applying colors to images can be a little tricky as the platform will try to be efficient for you. When you add multiple images that all have the same resource the platform will only hold one reference to the image and point multiple views to it. This can be problematic in cases like ListViews where you might have an image button that is enabled or greyed ...


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Try this : ImageView img = (ImageView) findViewById(R.id.img); img.setBackgroundColor(R.color.gray); You need a picture with transparent background. EDIT My bad. Try this Bitmap bm = BitmapFactory.decodeResource(getResources(), drawableId) .copy(Bitmap.Config.ARGB_8888, true); Paint paint = new Paint(); paint.setStyle(Style.FILL); Canvas ...


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Did you have try apply the inverse transform of ImageLayer to the MaskLayer ? CALayer* imageLayer = ...; CALayer* maskLayer = ...; CGAffineTransform inverse = CGAffineTransformInvert(imageLayer.affineTransform); maskLayer.affineTransfrom = inverse; //assign everytime imageLayer move or change


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My attempt is at: http://jsfiddle.net/t9Xgr/ <div class="world blue">text</div> <div class="world green">text</div> <div class="world red">text</div> <div class="world yellow">text</div> <div class="world orange">text</div> .world { color: #FFF; padding: 30px; margin: 10px 0; ...


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This might help you get in the right direction http://jsfiddle.net/social_quotient/69Khw/2/ Basically I set the image as a background via css, then set a background color of something red'ish. Next I make a content class for you to apply a semi transparent overlay to. Ends up looking something like this <div class="container"> <div ...


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Can be achieved with something like this: html: <div class="myDiv"> <div class="semitrans_red"> <p class="title">text big</p> <p class="subtitle">text not so big</p> </div> </div> css: .myDiv { position:relative; border:1px solid black; width: 300px; height: 150px; ...


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At the end i used this function + (UIImage*) maskImage:(UIImage *)image withMask:(UIImage *)maskImage { CGImageRef imgRef = [image CGImage]; CGImageRef maskRef = [maskImage CGImage]; CGImageRef actualMask = CGImageMaskCreate( CGImageGetWidth(maskRef), ...


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Your solution seems to be based on a misunderstanding of how GL_SRC_COLOR as part of the blend function affects the alpha component. GL_SRC_COLOR uses the (R, G, B) of the source color as multiplier for the RGB part of the source, and the A of the source color as multiplier for the A of the source. So for the source part, it essentially just results in the ...


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Like thumbmunkeys said, the code for Black or White to mask is reversed. Should be: if (ptrMask[4 * x] == 0) { ptrOutput[4 * x] = 0; // blue ptrOutput[4 * x + 1] = 0; // green ptrOutput[4 * x + 2] = 0; // red //Ensure Transparent ...


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Noise filtering use your recorded voice in ‘ wavread’ command…… this is how i remove the noise from audio, try it on images by yourself.. use this medfilt2 to remove noise from images.. hope it'll work fine for u. [y,Fs]=wavread('C:\Users\user\Downloads\bugsbunny1.wav'); Y=imnoise(y,'salt & pepper',0.02); K= medfilt2(Y,[5 1]) wavplay(K)


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Don't do IP with regex. You'll almost always get it wrong. Even when you have the possibility of getting it right, it is in such small corner cases as to render the entire exercise pointless. For example, what is the regex to mask 192.168.128.0/15? Remember that with this pattern, 192.168.120.35 and 192.168.129.35 are in different networks. It gets ...


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You can use this regex: "([0-9]{1,3}\\.){3}[0-9]{1,3}" to find IP address.


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You could use the below code to maskout the numbers and dots, String s = "AAA2110.20.*BB192.128.*"; String m = s.replaceAll("10\\.20\\.\\*", "XXXXXXX").replaceAll("192\\.128\\.\\*", "YYYYYYYYY"); System.out.println(m); Output: AAA21XXXXXXXBBYYYYYYYYY IDEONE


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While you can surely write your own code, I suggest to have a look at libraries like AutoTrace or potrace. They should already do most of the work. Just run them via the command line and read the resulting vector output. If you want to do it yourself, try to find the rough outline and then apply an algorithm to smooth the outline. Related: Simplified (or ...


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If the data have always 4 block it's possible to break them in single unit one at a time. With F AS ( SELECT data , rem = substring(data, patindex('%.%', data) + 1, len(data)) , value1 = substring(data, 1, patindex('%.%', data) - 1) FROM Table1 ), S AS ( SELECT data , rem = substring(rem, patindex('%.%', rem) + 1, len(rem)) ...


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Alter function Pad ( @str varchar(max) ) returns varchar(max) as begin Declare @nstr varchar(max) while(PATINDEX('%.%',@str)<>0) begin Set @nstr = isnull(@nstr,'')+case when PATINDEX('%.%',@str) = 2 then '0'+substring(@str,PATINDEX('%.%',@str)-1,1) else SUBSTRING(@str,1,PATINDEX('%.%',@str)-1) end+'.' Set @str = case when ...


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Here's the method that works best for me: create an SVG of the shape of mask you want. edit the css of the appropriate element and specify the URL of the SVG for the mask For a 200px circle, your SVG could look like this: <?xml version="1.0" encoding="utf-8"?> <!DOCTYPE svg PUBLIC "-//W3C//DTD SVG 1.1//EN" ...


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The solution is actually quite trivial. As we know each row in our mask represents an inlier. However we have 2 sets of points as input so how exactly does a row containing a single value represent two points? The nature of this sort of indexing appeared in my mind while thinking how actually those two sets of points appear in findHomography() (in my case I ...


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You don't need the placeholder section. Just add $("#phone").mask("(999) 999-9999? x99999"); EDIT Check out this jsfiddle


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Pretty trivial mistake here. Look at the line before the loop: move $t2, $a0 You are clearly attempting to move the sum into $t2 but $a0 contains the address of bin. Changed this line to: move $t2, $s2 And everything functions correctly.



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