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From your follow up comment, I understand the issue is that it does animate, but it does not spin in place like the button did in the tutorial you followed. The rotation is very dependent on whatever your RenderTransformOrigin is set to, and this value is a percentage of the animating control's width and height. In your case, your Pathboundaries are ...


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Animate the Transform property of the Geometry. Thus you have more precise control over the pivot point of the rotation. <Path x:Name="path" Stretch="None" Stroke="Black" Margin="100"> <Path.Data> <PathGeometry Figures="M10,0 A10,10 0 0 1 7,7 L71,71 A100,100 0 0 0 100,0Z"> <PathGeometry.Transform> ...


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I combined both my suggestions to create the following code. % Extract data points from current figure h = findobj(gca,'Type','line'); x_org=get(h,'Xdata'); y_org=get(h,'Ydata'); points = [x_org; y_org]'; % to rotate 8 degree counterclockwise theta = 8; % Rotation matrix R = [cosd(theta) -sind(theta); sind(theta) cosd(theta)]; % Rotate points ...


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Here are two views of your data. You should always use dput() to paste your data into a question so we can access it easily: dfa <- structure(list(Class = c(4L, 2L, 3L, 5L, 6L), height = c(0.83, 0.75, 0.75, 0.52, 0.52), weight = c(0.85, 0.8, 0.8, 0.59, 0.59), volume = c(0.83, 0.76, 0.84, 1, 0.99)), class = "data.frame", row.names = c("1", ...


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You need to store transform not transformRotate: var myElement = document.getElementById("demo"); var transformation = myElement.style.transform; alert(transformation); <div id="demo" style="transform: rotate(30deg);width:100px;height:50px;background-color:red;">


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You could parse the transform style using match to get the rotate value: var myElement = document.getElementById("demo"); var rotate = myElement.style.transform.match(/rotate\((.+)\)/); alert(rotate && rotate[1]); // avoid error if match returns null <div id="demo" style="transform: rotate(30deg);width:100px;height:50px;background-color:...


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