Tag Info

Hot answers tagged

6

Near the center of the circle, where the squares are small enough, you can approximate the length of the side (w) by the arc length - that is, how long one uth of the inner circle would be if you drew it as an actual circle. That's just the angle in radians (2 π/u) times the radius of the circle that goes through the inner corners of the square. Since you ...


3

You should not use the setSize() method on any component you add to a JFrame. Swing uses layout managers. The pack() method will invoke the layout manager and the layout manager will generally use the preferred size of the component to determine the size/location of the components. I guess your Canvas class is doing custom painting, and therefore has a ...


3

The string that you're getting can be used as the source attribute for an image, you just have to create a new Image element to which you can assign it: var image = new Image(); image.src = canvas.toDataURL("image/png", 1); // append image to DOM EDIT: Given the comments, you want to turn this into something that be stored in a database. You should POST ...


2

There is no direct operation for something like this. In certain special cases (ie. colorpicker) you can get away with two separate gradients. If you want arbitrary color per corner, you will have to perform it pixel-wise. In other words do linear interpolation on both x and y for each pixel. I've done something like this for triangle gradients myself. ...


2

As suggested you could add a flag to enable drawing: var enableDraw = false; $("#canvas").mousedown(function(arg) { enableDraw = true; }); $("#canvas").mouseup(function(arg) { enableDraw = false; }); $("#canvas").mousemove(function(arg) { if(enableDraw){ context.fillStyle = "#1477CC"; var pos = getMousePos(canvas, arg); ...


2

Use position: relative on the canvas elements. jsfiddle.net/7hEKL/16


2

It's only a typo. The "" should not be there. It should be: //context.fillStyle = '"rgb(' + rgb[0] + ',' + rgb[1] + ',' + rgb[2] + ')"'; context.fillStyle = 'rgb(' + rgb[0] + ',' + rgb[1] + ',' + rgb[2] + ')'; Happy coding! EDIT: I've looked at your jsbin and I it throws a huge number of errors all the time. The reason is: when you call ...


2

Find the segment perpendicular to another one is quite easy. Say we have points A, B. Compute vector AB. Normalize it to compute NAB (== the 'same' vector, but having a length of 1). Then if a vector has (x,y) as coordinates, its normal vector has (-y,x) as coordinates, so you can have PNAB easily (PNAB = perpendicular normal vector to AB). // vector AB ...


2

The trick is to load your svg as XML via XHR and manipulate it any way you want, then create your image out of it using data:image format. E.g. $.get('img/bottomLeftTop.svg', function(svgXml) { var img = new Image(); var coloredSvgXml = svgXml.replace(/#3080d0/g,'#e05030'); img.src = "data:image/svg+xml;charset=utf-8,"+coloredSvgXml; ...


1

As you're using bootstrap, you can do it with jquery: var $canvas = $("#canvas"); var $parent = $canvas.parent(); $canvas.width($parent.width()); $canvas.height($parent.height());


1

Solution is quite easy : What are the parameters ? • The start radius of your circle. • The end radius of your circle. • The number of square per circle. Then what do you need to compute ? • The rotation to be performed between two circles : easy ,that's just a full rotation divided by the number of square per circle : var angle = 2 * Math.PI / ...


1

Here's an example of my approach - create black&white mask and multiply the base with it: var c = document.getElementById("myCanvas"); var ctx = c.getContext("2d"); //Drawing all the game elements ctx.fillStyle = "red"; ctx.fillRect(100, 100, 400, 300); //adding the darkness and the lightsources function addlight(ctx, x, y) { var grd = ...


1

UPDATED Found a solution to this on another Stack thread Using binding to a List <UserControl> how can I do for not showing the controls Basically as you've already found when you bind to a list of <UserControl>s you get Error 26 and the <DataTemplate> is ignored. The simple work around is to wrap the <UserControl> in another class ...


1

I don't think you want to create a new canvas element every time. Doing so causes a huge performance drain. When I moved this code out of the for loop, the performance instantly improved. I think doing so will allow you to optimize your code to achieve the intended behavior: var m_canvas = document.createElement('canvas'); m_canvas.width = 4; ...


1

Best frame rates are achieved by drawing pre-rendered images (or pre-rendered canvases). You could refactor your code to: Create about 2-3 offscreen (in-memory) canvases each with 1/3 of your particles drawn on them Assign each canvas a fallrate and a driftrate. In each animation frame, draw each offscreen canvas (with an offset according to its own ...


1

All you need is direction of curve (or polyline segment) in every point, where you want to draw perpendicular. If direction vector in point P0 is (dx, dy), then perpendicular (left one) will have direction vector (-dy, dx). To draw perpendicular with length Len, use this pseudocode: Norm = Sqrt(dx*dx + dy*dy) //use Math.Hypot if available P1.X = P0.X - ...


1

Don't use CSS to resize the canvas because it will distort the canvas content--stretching it. Instead resize the canvas element itself: <canvas width=100 height=100> or document.getElementById('mycanvas').width=100; Good luck with your project!


1

the problem is that the def for OnDouble is defined inside __init__, making it not a class method but a method inside the scope of __init__. You need to remove one level of indentation for OnDouble.


1

They are different. When using the canvas to draw a bitmap providing a matrix, internally, the provided matrix are concatenated to the current canvas matrix. In other words, calling canvas.drawBitmap(rectBitmap, matrix, paint); has the same effect of: canvas.save(); canvas.concat(matrix); canvas.drawBitmap(rectBitmap, 0, 0, paint); ...


1

Use addEventListener intead of the onLoad (what is typed incorrectly, see at the end) property: function drawInlineSVG(ctx, rawSVG, callback) { var svg = new Blob([rawSVG], {type:"image/svg+xml;charset=utf-8"}); var domURL = self.URL || self.webkitURL || self; var url = domURL.createObjectURL(svg); var img = new Image(); img.src = url; ...


1

Use an array instead var img = []; /* you should use a for loop here */ for (var i = 0; i < 3; i++) { img[i] = new Image(); img[i].src = "image" + (i+1) ".jpg"; } and later you refer the right image with img[pic]. Be only sure to use an index between 0 and img.length - 1


1

Don't use separate variables, use an array. var images = [ new Image(), new Image(), new Image() ]; for (var i = 0; i < images.length; i++) { images[i].src = "image" + (i+1) + ".jpg"; } Then refer to the array in the Slider() function: var pic = 0; function slider() { this.draw = function() { pic = (pic + 1) % images.length; ...


1

on linux it depends (a little) on the desktop you are using. the .desktop files for Qt for example are explained in detail here http://doc.qt.digia.com/qtextended4.4/desktopfiles.html for gnome you might want to read here: https://developer.gnome.org/icon-theme-spec/ spec from open desktop is here: ...


1

Icons can be anything from PNG, XPM, to SVG. XPM appears to be preferred for now as they are C-programmed pixmaps designed for X, but PNG and SVG are more portable. Why not offer options?


1

Because you created a new one. The incoming canvas is a canvas that points to the screen (or more properly, to a buffer in the graphics card that will be drawn to the screen). The one you created draws to a new in-memory bitmap that you created in your create bitmap function, and will draw to that bitmap, not the screen.


1

Ok, Here's my advice : in all your events handler, do not draw or modify anything related to the render. Because the events might trigger more than once during a screen refresh (=16ms for 60Hz screen), so you might end up redrawing several times for nothing. So handle some flags : in computer graphics, we often call them 'dirty' flags, but call them as you ...


1

From the documentation, array.splice() needs an index, not an object: https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Array/splice So you COULD use: enemys.splice(enemyIndex, 1); However, there IS a better way... Try this: function IsDead( enemy ) { if( enemy.health <= 0 ) { return true; } else { ...


1

You can use a dp value instead of pixel. I think this should do the trick. myCanvas.drawCircle(crcl.x, crcl.y, dipToPixels(getApplicationContext(),crcl.radius), selected_paint); This function converts dp to pixel. public static float dipToPixels(Context context, float dipValue) { DisplayMetrics metrics = context.getResources().getDisplayMetrics(); ...


1

jQuery won't really help you. It might make finding the canvas easier (but only slightly) // jQuery : var c2 = $('c')[0].getContext('2d') // vanilla javascript (as you have it() var c2 = document.getElementById('c').getContext('2d'); Here is the canvas code to render a 50px square starting at point 10, 10. var c2 = ...


1

what you pass inside moveto and lineto function is xx and y co ordinates, so if you want to draw a square of 50px width you can draw lines accordingly, here is the fiddle var c2 = document.getElementById('c').getContext('2d'); c2.fillStyle = '#f00'; c2.beginPath(); c2.moveTo(200, 0); c2.lineTo(200, 50); c2.lineTo(250, 50); c2.lineTo(250, 0); c2.closePath(); ...



Only top voted, non community-wiki answers of a minimum length are eligible