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0

OK, pretty much you need to do it the one way that you try out first: Draw one 3D-like tile and then calculate when the next has to be for it to look 3D and then next and so on... You apperently can't dodge this by some grid manipulating.


0

In 3d there are not pixels. Only a units in unity 3d. float x = transform.x; float y = transform.y; You will get units in x, y. If you working with textures you might use Texture2D, it has some methods for pixel working.


0

You want to use Camera.WorldToScreenPoint. Convert the object origin. Convert the object origin+width. Convert the object origin+height. Your pixel coords are Array[origin.x, origin.y, origin.x+width, origin.y+height]


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Yes, there are such methods in AbstractLayout: http://jung.sourceforge.net/doc/api/edu/uci/ics/jung/algorithms/layout/AbstractLayout.html#getX(V)


0

You can merge vertices on your geometries Geometry.mergeVertices()


-1

I just got here by coincidence, and found that your questions is exactly the same as the one asked by Lorenzo Isella in R-help in 2011. For more information here is the link. I have to say, that I am ultra newbie on R and Matlab. So I will just try to provide an overview of plangfelder answer. This is not my answer, and I don't know enough about R or ...


0

There is no way to convert directly from layout coordinates to screen coordinates. But there is a method localToScreen which can be used to convert the local coordinates to screen coordinates. Bounds bounds = node.localToScreen(getBoundsInLocal()); tooltip.show(this, bounds.getMinX(), bounds.getMinY());


1

I would use cdo for this purpose https://code.zmaw.de/boards/2/topics/102 Another option is just create a mapping between rotated and geographic coordinates and use the original data without interpolation. I can find the equations if necessary.


0

I achieved the desired result with: sed -i 's/.$//' ${model}_lats_tmp sed -i 's/.$//' ${model}_lons_tmp awk '{print $1/10}' ${model}_lats_tmp > ${model}_lats_new awk '{print $1/10}' ${model}_lons_tmp > ${model}_lons_new


0

You can use sed sed "s/\([0-9][ENSW]\)$/.\1/" file.txt This uses a regular expression to group the last digit in the string with the last letter that is an E, N, S or W and inserts a period before them.


2

It would have been easy to find out by yourself. If you replace: ask patch-at 1 0 [ some code... ] with: ask patch-at 1 0 [ print self ] you get: (patch 4 5) I guess you may have been confused by the fact that, when using tick-based view updates, the view is not updated until tick (or display) is called. But it's only the visual ...


1

The union computation, as cited by @MartinFrank, would work, but is quite complex and more than is needed in this case. Clearly if you can merge two polygons P1 and P2 that share some positive length of boundary, you can merge any number. From the image provided, it appears that the polygons may exactly (as opposed to approximately) share boundary portions. ...


0

Please note that the origin (0,0) in Android screen is situated at top-left corner of the screen. Thus, when you add values to y axis the object go towards bottom and when subtract values the object goes upwards. In Android devices: Origin | V *------------------------------- | ----> X axis | | | | | | ...


0

Try following request https://www.googleapis.com/youtube/v3/videos?part=recordingDetails&id={VIDEO_ID}&key={YOUR_API_KEY} Check this link for video resource representation


1

The pdf coordinate system is not that different from the coordinate system used in images. The only differences are: the y-axis points up, not down the scale is most likely different. You can convert from pdf coordinates to image coordinates using these formulae: x_image = x_pdf * width_image / width_page y_image = (height_pdf - y_pdf) * height_image / ...


0

You can use the Google Client API This is a Java API. You will find a class GeolocationSearch which has the following method String getInputLocation() This can get you the coordinates.


0

I highly recommend using QGIS for shapefile operations before importing the matrix indices into IDL. Then you can perform a simple calculation: output = input[where(index eq shp_value)] To align the pixels, I would write the shapefile values to an existing raster when creating the index raster in QGIS. I believe you want the Rasterize tool. For more ...


2

In CoordinateToCoordinate you use sin(coordinate.first) which is already in degrees. Use sin(degreeToRadian(coordinate.first)). Or to be more cleaner: ... CoordinateToCoordinate (...) { ... coordinate.first = asin((sin(latitude) * cos(meters)) + (cos(latitude) * sin(meters) * cos(angle))); coordinate.second = longitude + ...


0

Partial answer With an angle of 92.97° then converted to radians, a call to sin/cos/tan will effectively change the angle to 2.97°. This step alone loses 6 bits of precision as the period reduction occurs after degrees to radians conversion and in the trig function call. Precision of trigonometric functions with large angles in degrees can be enhanced. ...


0

GPS coordinate calculations are usually great circle based. A good source of information is Ed Williams' Aviation Formulary. There you'll find some code for great circle distance calculations: The great circle distance d between two points with coordinates {lat1,lon1} and {lat2,lon2} is given by: ...


0

It should be: var circle = new ol.style.Style({ image: new ol.style.Circle({ radius: 5, fill: null, stroke: new ol.style.Stroke({ color: 'rgba(255,0,0,0.9)', width: 3 }) }) }); var feature = new ol.Feature( new ol.geom.Point([0, 0]) ); feature.setStyle(circle); ...


0

The problem is the swicth. Replace your switch with this one switch ((a * 10) + b) { case 12: Console.WriteLine("Distance is " + Math.Sqrt(Math.Pow((obj2.x - obj1.x), 2) + Math.Pow((obj2.y - obj1.y), 2) + Math.Pow((obj2.z - obj1.z), 2))); break; case 13: Console.WriteLine("Distance is " + Math.Sqrt(Math.Pow((obj3.x - obj1.x), ...


0

Maybe you should, create your own class/structure Vector3D and define a method float GetDistance(Vector3D va, Vector3D va), then create the instances of this class/structure and use this method. class Vector3D { public float X; public float Y; public float Z; public static float GetDistance(Vector3D va, Vector3D vb) { if ((va == ...


0

You should try to use a chainshape instead of a polygonshape for the staticbody. So that the dynamic body will remain in it instead of "teleporting" out. The dynamic body mustn't intersect the staticbody when it is created. Hope it will work!


0

You are using Box2D wrong. You should scale down Box2D to a small world because, without doing this, physics interaction will be 1px = 1m and an 1920 x 720 is too big (this will be reflected as your bodies moving too slow, because they are too big). Check your code: PolygonShape box = new PolygonShape(); box.setAsBox(2560, WATER_HEIGHT); // <- your ...


1

Yes with Box2D the origin is the bottom left corner of the viewport. You can set the position of your bodies when you are setting up your BodyDef : bodyDef.position.set(x, y); And don't forget, in Box2D, the position of your body is the center of the Body. So when you set your PolygonShape as a box like this : polygonShape.setAsBox(width, height); ...


0

Without seeing source images, and what the expected result would be, I would assume you are attempting Perspective distortion. Meaning you want to take an image, and transform the MBR coordinates to a predefined set of points. If I'm given a 400x400 checkerboard image, and want to distort it to the points listed above, the following ImageMagick command ...


3

This seems to be what you want. You only need to use sub2ind: s(sub2ind(size(s), coordinates(:,1), coordinates(:,2))) = 0; %// make these entries 0 s(sub2ind(size(s), coordinates(:,2), coordinates(:,1))) = 0; %// and symmetric entries too


3

One way to do this is to calculate a point on a circle with a radius equal to or greater than the maximum diagonal, and then just clip it to the screen boundary. Using Pythagoras' theorem, the length of the maximum diagonal will be float d = Math.sqrt((width/2)*(width/2) + (height/2)*(height/2)); So you can calculate the point on the circle like this ...


1

UPDATED Alright so after some investigation trough remote desktop we finally did it. Conclusion was that there were wrong annotation on SavegeojsonEntity. Annotations works on fields not on get method There was wrong dialect: instead of: <property name="hibernate.dialect" value="org.hibernate.dialect.PostgreSQL82Dialect"/> the most appopriate ...


0

If you want the relative position on the image you are clicking, just convert the position (relative to the top left of the image) to a percentage (top left would be 0%, 0% and bottom right would be 100%, 100%) by dividing by the image width / height and use that in your handler.


0

How about a function which converts it for you? float convertPointY(float y) { return -y + WINDOW_HEIGHT; } And if the window changes size thus not having a constant height: float convertPointY(float y) { int width = 0, height = 0; SDL_GetWindowSize(window, &width, &height); return -y + height; }


0

You can make a region out of the lines (from a graphics path, maybe), and then use the IsVisible region method to see if the mouse point lies within the region. https://msdn.microsoft.com/en-us/library/system.drawing.region%28v=vs.110%29.aspx


0

Just for an experiment you can do the following trick: //random start position int StartX = 100; int StartY = 100; setPos(mapToScene(StartX,StartY)); qDebug() << "xposition:" << pos().x(); qDebug() << "yposition:" << pos().y(); qDebug() << "xposition mapped:" << mapToScene(pos()).x(); qDebug() << "yposition ...


0

I think you have the right idea about the coordinate system, but have confused yourself with an oversight in the code. When a Ball item is created, in the constructor, it creates random coordinates and then calls this: setPos(mapToScene(StartX,StartY)); As the documentation for mapToScene states: - Maps the point point, which is in this item's ...


0

I think what your looking for is Iterative Least Squares. You fit the data to a model, compute the distance from each point to the estimated model, then use that distance as a weight when you fit the data again. You can keep doing this repeatedly until you are satisfied with the final model.


0

Though user1504495 has answered in short as I have used it. But instead of using whole Map Utility Library Use this methods. From your activity class pass params accordingly: if (area.containsLocation(Touchablelatlong, listLatlong, true)) isMarkerINSide = true; else isMarkerINSide = false; and put following in ...


2

If you don't have access to the MATLAB Mapping toolbox then a simple approximation is to use the Haversine formula. Here is an excerpt from the link: The haversine formula is an equation important in navigation, giving great-circle distances between two points on a sphere from their longitudes and latitudes. It is a special case of a more general formula ...


1

If you have access to Mapping toolbox then may be function described on this page could help you


0

please set display density float density = getActivity().getResources().getDisplayMetrics().density; if (density == 4.0) { displayMetrixDensity = 640; } if (density == 3.0) { displayMetrixDensity = 480; } if (density == 2.0) { displayMetrixDensity = 320; } if (density == 1.5) { ...


1

So I know each vertex's texCoords get normalized to a value between 0.0f and 1.0f upon being sent to a shader This is not entirely accurate. There are two reasons texture coordinates might wind up "normalized." Actual normalization of fixed-point vertex attributes (e.g. GL_UNSIGNED_BYTE values are cast to GLfloat and divided by 255.0f (max value ...


1

If you want to move an icon over the map, it's better you use an ol.Overlay for this. You can use marker.setPosition(coord) on each change. A working fiddle. Click on map to change marker's position.


0

You don't really need the theme() part as you can simply do this within coord_fixed(). For your example you could do the following: gg <- ggplot(xy,aes(x = x, y = y))+ geom_point() gg + coord_fixed(ratio=1,xlim=c(floor(min(xy$x,xy$y)), ceiling(max(xy$x,xy$y))), ylim=c(floor(min(xy$x,xy$y)), ...


2

You can force the plot to be square by manually setting the scale of the axes: gg + scale_x_continuous(limits=c(min(xy$x,xy$y), max(xy$x,xy$y))) + scale_y_continuous(limits=c(min(xy$x,xy$y), max(xy$x,xy$y))) + theme(aspect.ratio=1)


0

Easiest way would be to specify the x-lim and y-lim separately: gg + coord_equal() +xlim(c(-6,6)) + ylim(c(-6,6)) which you can esaily replace by a function which derives min/and may based on the data (?extendrange).


1

AutoCAD has a command SURFSCULPT to do this (from a set of surfaces that enclose a watertight area). The corresponding API is Solid3d.CreateSculptedSolid. I don't think you can do something with points.


2

You can add a translation transform to your scene hierarchy. scene.position.set( x, y, z ); But if you have only one object hanging of your scene you should apply the transform there.


0

Use json_decode($json_string) to convert a json string to a variable. http://php.net/manual/en/function.json-decode.php $json = file_get_contents('https://maps.googleapis.com/maps/api/geocode/json?address=Apple%20inc&key='); $data = json_decode($json); foreach($data->results as $result) { print '<h4>' . $result->formatted_address . ...


0

I would say create a custom View that extends ImageView: public class PasswordView extends ImageView { public PasswordView(Context context) { super(context); // Any additional PasswordView setup } @Override public boolean onTouchEvent(MotionEvent event) { float xTouchPos = event.getX(); float yTouchPos = ...



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