git-svn-id: https://svn.wxwidgets.org/svn/wx/wxWidgets/trunk@42925 c3d73ce0-8a6f-49c7-b76d-6d57e0e08775
		
			
				
	
	
		
			171 lines
		
	
	
		
			5.4 KiB
		
	
	
	
		
			Python
		
	
	
	
	
	
			
		
		
	
	
			171 lines
		
	
	
		
			5.4 KiB
		
	
	
	
		
			Python
		
	
	
	
	
	
import wx
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import math
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import random
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class RadarGraph(wx.Window):
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    """
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    A simple radar graph that plots a collection of values in the
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    range of 0-100 onto a polar coordinate system designed to easily
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    show outliers, etc.  You might use this kind of graph to monitor
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    some sort of resource allocation metrics, and a quick glance at
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    the graph can tell you when conditions are good (within some
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    accepted tolerance level) or approaching critical levels (total
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    resource consumption).
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    """
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    def __init__(self, parent, title, labels):
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        wx.Window.__init__(self, parent)
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        self.title = title
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        self.labels = labels
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        self.data = [0.0] * len(labels)
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        self.titleFont = wx.Font(14, wx.SWISS, wx.NORMAL, wx.BOLD)
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        self.labelFont = wx.Font(10, wx.SWISS, wx.NORMAL, wx.NORMAL)
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        self.InitBuffer()
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        self.Bind(wx.EVT_SIZE, self.OnSize)
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        self.Bind(wx.EVT_PAINT, self.OnPaint)
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    def OnSize(self, evt):
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        # When the window size changes we need a new buffer.
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        self.InitBuffer()
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    def OnPaint(self, evt):
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        # This automatically Blits self.buffer to a wx.PaintDC when
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        # the dc is destroyed, and so nothing else needs done.
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        dc = wx.BufferedPaintDC(self, self.buffer)
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    def InitBuffer(self):
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        # Create the buffer bitmap to be the same size as the window,
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        # then draw our graph to it.  Since we use wx.BufferedDC
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        # whatever is drawn to the buffer is also drawn to the window.
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        w, h = self.GetClientSize()        
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        self.buffer = wx.EmptyBitmap(w, h)
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        dc = wx.BufferedDC(wx.ClientDC(self), self.buffer)
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        self.DrawGraph(dc)
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    def GetData(self):
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        return self.data
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    def SetData(self, newData):
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        assert len(newData) == len(self.data)
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        self.data = newData[:]
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        # The data has changed, so update the buffer and the window
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        dc = wx.BufferedDC(wx.ClientDC(self), self.buffer)
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        self.DrawGraph(dc)
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    def PolarToCartesian(self, radius, angle, cx, cy):
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        x = radius * math.cos(math.radians(angle))
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        y = radius * math.sin(math.radians(angle))
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        return (cx+x, cy-y)
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    def DrawGraph(self, dc):
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        spacer = 10
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        scaledmax = 150.0
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        dc.SetBackground(wx.Brush(self.GetBackgroundColour()))
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        dc.Clear()
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        dw, dh = dc.GetSize()
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        # Find out where to draw the title and do it
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        dc.SetFont(self.titleFont)
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        tw, th = dc.GetTextExtent(self.title)
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        dc.DrawText(self.title, (dw-tw)/2, spacer)
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        # find the center of the space below the title
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        th = th + 2*spacer
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        cx = dw/2
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        cy = (dh-th)/2 + th
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        # calculate a scale factor to use for drawing the graph based
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        # on the minimum available width or height
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        mindim = min(cx, (dh-th)/2)
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        scale = mindim/scaledmax
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        # draw the graph axis and "bulls-eye" with rings at scaled 25,
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        # 50, 75 and 100 positions
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        dc.SetPen(wx.Pen("black", 1))
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        dc.SetBrush(wx.TRANSPARENT_BRUSH)
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        dc.DrawCircle(cx,cy, 25*scale)
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        dc.DrawCircle(cx,cy, 50*scale)
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        dc.DrawCircle(cx,cy, 75*scale)
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        dc.DrawCircle(cx,cy, 100*scale)
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        dc.SetPen(wx.Pen("black", 2))
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        dc.DrawLine(cx-110*scale, cy, cx+110*scale, cy)
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        dc.DrawLine(cx, cy-110*scale, cx, cy+110*scale)
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        # Now find the coordinates for each data point, draw the
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        # labels, and find the max data point
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        dc.SetFont(self.labelFont)
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        maxval = 0
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        angle = 0
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        polypoints = []
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        for i, label in enumerate(self.labels):
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            val = self.data[i]
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            point = self.PolarToCartesian(val*scale, angle, cx, cy)
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            polypoints.append(point)
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            x, y = self.PolarToCartesian(125*scale, angle, cx,cy)
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            dc.DrawText(label, x, y)
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            if val > maxval:
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                maxval = val
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            angle = angle + 360/len(self.labels)
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        # Set the brush color based on the max value (green is good,
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        # red is bad)
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        c = "forest green"
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        if maxval > 70:
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            c = "yellow"
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        if maxval > 95:
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            c = "red"
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        # Finally, draw the plot data as a filled polygon
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        dc.SetBrush(wx.Brush(c))
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        dc.SetPen(wx.Pen("navy", 3))
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        dc.DrawPolygon(polypoints)
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class TestFrame(wx.Frame):
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    def __init__(self):
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        wx.Frame.__init__(self, None, title="Double Buffered Drawing",
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                          size=(480,480))
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        self.plot = RadarGraph(self, "Sample 'Radar' Plot",
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                          ["A", "B", "C", "D", "E", "F", "G", "H"])
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        # Set some random initial data values
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        data = []
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        for d in self.plot.GetData():
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            data.append(random.randint(0, 75))
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        self.plot.SetData(data)
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        # Create a timer to update the data values
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        self.Bind(wx.EVT_TIMER, self.OnTimeout)
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        self.timer = wx.Timer(self)
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        self.timer.Start(500)
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    def OnTimeout(self, evt):
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        # simulate the positive or negative growth of each data value
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        data = []
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        for d in self.plot.GetData():
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            val = d + random.uniform(-5, 5)
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            if val < 0:
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                val = 0
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            if val > 110:
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                val = 110
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            data.append(val)
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        self.plot.SetData(data)
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app = wx.PySimpleApp()
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frm = TestFrame()
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frm.Show()
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app.MainLoop()
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