2020-05-15 14:36:57 +02:00
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#!/usr/bin/env python
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2020-05-16 19:56:27 +02:00
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"""
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Copyright (c) 2020 Sublunar Psionics
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---- MIT License ----
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Permission is hereby granted, free of charge, to any person obtaining a copy
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of this software and associated documentation files (the "Software"), to deal
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in the Software without restriction, including without limitation the rights
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to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
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copies of the Software, and to permit persons to whom the Software is
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furnished to do so, subject to the following conditions:
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The above copyright notice and this permission notice shall be included in all
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copies or substantial portions of the Software.
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THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
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IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
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AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
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LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
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OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
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SOFTWARE.
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"""
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import sys
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2020-05-14 22:04:13 +02:00
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import time
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2020-05-15 14:16:32 +02:00
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import math
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2020-05-14 22:04:13 +02:00
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import swisseph as swe
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import drawSvg as svg
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from openlocationcode import openlocationcode as olc
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2020-05-16 19:56:27 +02:00
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def astroChart(lat, lon, epoch, canvas, colors = ['violet', 'yellow', 'white', 'orange', 'green', 'red', 'royalblue', 'indigo']):
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print("drawing astro chart for", epoch)
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planets = [0,1,2,3,4,5,6]
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tmp = time.gmtime(epoch) # convert epoch to time
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hours = tmp.tm_hour + tmp.tm_min / 60 + tmp.tm_sec / 3600 # convert hh:mm:ss to decimal hours
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jd = swe.julday(tmp.tm_year,tmp.tm_mon,tmp.tm_mday,hours,1) # convert to Julian day
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te = jd + swe.deltat(jd) # add deltaT
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# get ecliptic planet locations
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for i in range(len(planets)):
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planets[i] = swe.calc(te, i)
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# clean up
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for i in range(len(planets)):
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planets[i] = planets[i][0][0]
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cusps = swe.houses_ex(jd, lat, lon, b'P',0) # get ecliptic ascendant degree
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planets.insert(0, cusps[0][0]) # add to list
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# draw arcs for ascendant + planets
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for i in range(len(planets)):
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circleColor = colors[i]
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degree = planets[i]
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startArc = degree + 90 # 0° is at the 12 o'clock position
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endArc = degree - 110 + 90
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radius = 180 + i * 10
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canvas.append(svg.ArcLine(0, 0, radius, startArc, endArc, stroke=circleColor, stroke_width=7, fill='none'))
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def magicSquareSigil(plusCode, canvas, color='white'): # draw sigil based on OLC magic square
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codeList = list(plusCode.replace('+', '')) # remove the + in the string
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print("sigilizing", codeList)
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length = len(codeList)
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grid = {
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'R' : [-103, 112], 'V' : [-35, 112], 'W' : [35, 112], 'X' : [103, 112], # | R | V | W | X |
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'J' : [-103, 56], 'M' : [-35, 56], 'P' : [35, 56], 'Q' : [103, 56], # | J | M | P | Q |
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'C' : [-103, 0], 'F' : [-35, 0], 'G' : [35, 0], 'H' : [103, 0], # | C | F | G | H |
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'6' : [-103, -56], '7' : [-35, -56], '8' : [35, -56], '9' : [103, -56], # | 6 | 7 | 8 | 9 |
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'2' : [-103, -112], '3' : [-35, -112], '4' : [35, -112], '5' : [103, -112] # | 2 | 3 | 4 | 5 |
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}
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# setup sigil
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dash = svg.Marker(-0.5, -0.5, 0.5, 0.5, scale=5, orient='auto') # define line to terminate the sigil
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dash.append(svg.Line(-0., -0.5, 0., 0.5, stroke_width=0.2, stroke=color))
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dot = svg.Marker(-0.8, -0.5, 0.5, 0.5, scale=5, orient='auto') # define circle to start the sigil
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dot.append(svg.Circle(-0.3, 0.0, 0.3, stroke_width=0.2, stroke=color, fill='none'))
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p = svg.Path(stroke_width=7, stroke=color, fill='none', marker_start=dot, marker_end=dash)
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# draw sigil
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for c in range(length):
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if c == 0:
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originX = grid[codeList[0]][0]
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originY = grid[codeList[0]][1]
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p.M(originX, originY)
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else:
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x = grid[codeList[c]][0] - originX # abs. to rel. coords
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y = grid[codeList[c]][1] - originY # abs. to rel. coords
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p.l(x, y) # draw
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originX = grid[codeList[c]][0]
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originY = grid[codeList[c]][1]
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# add to canvas
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canvas.append(p)
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def radialSigil(plusCode, canvas, color='red'): # draw sigil based on concentric circle positions
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codeList = list(plusCode.replace('+', '')) # remove the + in the string
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print("sigilizing", codeList)
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length = len(codeList)
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decoder = ['2', '3', '4', '5', '6', '7', '8', '9', 'C', 'F', 'G', 'H', 'J', 'M', 'P', 'Q', 'R', 'V', 'W', 'X']
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#draw global area sigil
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arrow2 = svg.Marker(-0.5, -0.5, 0.5, 0.5, scale=5, orient='auto') # define line to terminate the sigil
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arrow2.append(svg.Line(-0., -0.5, 0., 0.5, stroke_width=0.2, stroke=color))
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dot2 = svg.Marker(-0.8, -0.5, 0.5, 0.5, scale=5, orient='auto') # define circle to start the sigil
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dot2.append(svg.Circle(-0.3, 0.0, 0.3, stroke_width=0.2, stroke=color, fill='none'))
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# set up sigil path
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p = svg.Path(stroke_width=7, stroke=color, fill='none', marker_start=dot2, marker_end=arrow2)
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for c in range(length):
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index = decoder.index(codeList[c])
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# find coordinates on circle every 18° (360° / 20 digits)
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radius = 145 - c * 20
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angle = 18 * index
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x = radius * math.cos(angle)
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y = radius * math.sin(angle)
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if c == 0:
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p.M(x,y) # starting point
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originX = x
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originY = y
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else:
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p.l(x - originX, y - originY) # draw
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originX = x
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originY = y
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canvas.append(p)
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def nameToPlusCode(name):
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vowels = [ 'A', 'E', 'I', 'O', 'U']
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translate = {
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'B' : '2',
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'D' : '3',
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'K' : '4',
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'L' : '5',
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'N' : '6',
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'S' : '7',
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'T' : '8',
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'Z' : '9',
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'Y' : 'J'
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}
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newName = name.upper().replace(" ", "")
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for x in newName:
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if x in vowels:
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newName = newName.replace(x,"")
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if x in translate.keys():
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newName = newName.replace(x, translate[x])
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return newName
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def drawSigil(lat, lon, epoch, squareSigilize, radialSigilize, fileName):
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# set up SVG canvas
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d = svg.Drawing(600, 600, origin='center') # define canvas
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# Create gradients
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gradient = svg.RadialGradient(0,0,260)
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gradient.addStop(0, '#211d05', 1)
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gradient.addStop(1, 'black', 1)
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rusty = svg.RadialGradient(0,0,260)
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rusty.addStop(0.5, '#d17b0a', 1)
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rusty.addStop(1, '#453905', 1)
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silver = svg.RadialGradient(0,0,260)
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silver.addStop(0.5, 'white', 0.8)
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silver.addStop(1, 'grey', 1)
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# Background circle
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c = svg.Circle(0, 0, 260, fill=gradient, stroke_width=0)
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d.append(c)
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# draw astro chart for epoch moment
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astroChart(lat, lon, epoch, d, [rusty, rusty, rusty, rusty, rusty, rusty, rusty, rusty])
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# draw sigils
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radialSigil(radialSigilize, d, rusty)
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magicSquareSigil(squareSigilize, d, silver)
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# save sigil to SVG file
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d.saveSvg(fileName)
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def main():
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argNo = len(sys.argv) - 1
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if argNo == 5: # if coordinates, timestamp, and two strings (first + last name)are provided
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lat = float(sys.argv[1])
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lon = float(sys.argv[2])
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epoch = float(sys.argv[3])
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squareSigilize = nameToPlusCode(sys.argv[4]) # first name
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radialSigilize = nameToPlusCode(sys.argv[5]) # last name
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fileName = '%s_%s.svg' % (sys.argv[5], sys.argv[4])
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drawSigil(lat, lon, epoch, squareSigilize, radialSigilize, fileName)
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if argNo == 3: # if coordinates, and timestamp are provided
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lat = float(sys.argv[1])
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lon = float(sys.argv[2])
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epoch = float(sys.argv[3])
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plusCode = olc.encode(lat,lon,10) # generate Open Location Code aka. plus code from coordinates
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squareSigilize = plusCode[4:]
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radialSigilize = plusCode[0:4]
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fileName = '%s-%s.svg' % (plusCode, epoch)
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drawSigil(lat, lon, epoch, squareSigilize, radialSigilize, fileName)
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if argNo == 2: # if just coordinates are provided
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lat = float(sys.argv[1])
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lon = float(sys.argv[2])
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epoch = time.time()
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plusCode = olc.encode(lat,lon,10) # generate Open Location Code aka. plus code from coordinates
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squareSigilize = plusCode[4:]
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radialSigilize = plusCode[0:4]
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fileName = '%s-%s.svg' % (plusCode, epoch)
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drawSigil(lat, lon, epoch, squareSigilize, radialSigilize, fileName)
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else:
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print("--------------------------------------------")
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print("Please provide arguments: <decimal latitude> <decimal longitude> (<epoch timestamp> <first name> <last name>)")
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print("--------------------------------------------")
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print("If you only provide latitude and longitude, the timestamp is calculated automatically for this moment.")
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print("If you provice first- and last name of a person, please provide their birth-location coordinates and birth-time as geospatial arguments")
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print("--------------------------------------------")
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if __name__ == "__main__":
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main()
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