better sine wave
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@ -1,6 +1,6 @@
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CROSSING=622916.858 6109272.561 626066.858 6111492.561 # xmin ymin xmax ymax
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CROSSING=622916.858 6109272.561 626066.858 6111492.561 # xmin ymin xmax ymax
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ZEIMENA_TOLERANCES = 100 125 250 500 1000 2000 4000
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ZEIMENA_TOLERANCES = 100 125 250 500 1000 2000 4000
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SINEWAVE_TOLERANCES = 1 2 3 4
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SINEWAVE_TOLERANCES = 1 20 30 40
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GEN = $(addsuffix .pdf, \
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GEN = $(addsuffix .pdf, \
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$(addprefix sinewave-douglas-,$(SINEWAVE_TOLERANCES)) \
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$(addprefix sinewave-douglas-,$(SINEWAVE_TOLERANCES)) \
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$(addprefix sinewave-visvalingam-,$(SINEWAVE_TOLERANCES)) \
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$(addprefix sinewave-visvalingam-,$(SINEWAVE_TOLERANCES)) \
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@ -22,17 +22,17 @@ crossing-$(1)-$(2)-%.pdf: layer2img.py db/.faux_$(1)-$(2)-%
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endef
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endef
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define gpkg2pdf
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define gpkg2pdf
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$(2): $(1)
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$(2).pdf: $(1).gpkg
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./layer2img.py $(3) --infile=$(1) --outfile $(2)
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./layer2img.py $(3) --infile=$(1).gpkg --outfile $(2).pdf
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endef
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endef
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$(eval $(call algo2img,sinewave,douglas,52x12))
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$(eval $(call algo2img,sinewave,douglas,52x12))
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$(eval $(call algo2img,sinewave,visvalingam,52x12))
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$(eval $(call algo2img,sinewave,visvalingam,52x12))
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$(eval $(call algo2img,zeimena,douglas,52x74))
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$(eval $(call algo2img,zeimena,douglas,52x74))
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$(eval $(call algo2img,zeimena,visvalingam,52x74))
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$(eval $(call algo2img,zeimena,visvalingam,52x74))
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$(eval $(call gpkg2pdf,sinewave.gpkg,sinewave.pdf,--size=52x15))
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$(eval $(call gpkg2pdf,sinewave,sinewave,--size=52x15))
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$(eval $(call gpkg2pdf,zeimena.gpkg,zeimena.pdf,--size=148x210 --rect $(CROSSING)))
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$(eval $(call gpkg2pdf,zeimena,zeimena,--size=148x210 --rect $(CROSSING)))
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$(eval $(call gpkg2pdf,zeimena.gpkg,crossing.pdf,--size=105x74 --clip $(CROSSING)))
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$(eval $(call gpkg2pdf,zeimena,crossing,--size=105x74 --clip $(CROSSING)))
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sinewave.gpkg: sinewave.py
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sinewave.gpkg: sinewave.py
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./sinewave.py
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./sinewave.py
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@ -12,7 +12,6 @@ INCH = 25.4 # mm
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def plt_size(string):
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def plt_size(string):
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if not string:
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if not string:
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# using default matplotlib dimensions
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return None
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return None
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try:
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try:
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w, h = string.split("x")
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w, h = string.split("x")
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@ -48,6 +47,7 @@ def main():
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else:
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else:
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f = geopandas.read_file(args.infile)
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f = geopandas.read_file(args.infile)
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fig, ax = plt.subplots()
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fig, ax = plt.subplots()
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if args.size:
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fig.set_size_inches(args.size)
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fig.set_size_inches(args.size)
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f.plot(ax=ax)
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f.plot(ax=ax)
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if c := args.clip:
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if c := args.clip:
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@ -265,17 +265,17 @@ page~\pageref{tab:comparison-sinewave}.
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\includegraphics[width=\linewidth]{sinewave-douglas-1} &
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\includegraphics[width=\linewidth]{sinewave-douglas-1} &
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\includegraphics[width=\linewidth]{sinewave-visvalingam-1} \tabularnewline \hline
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\includegraphics[width=\linewidth]{sinewave-visvalingam-1} \tabularnewline \hline
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2/4 &
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20/400 &
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\includegraphics[width=\linewidth]{sinewave-douglas-2} &
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\includegraphics[width=\linewidth]{sinewave-douglas-20} &
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\includegraphics[width=\linewidth]{sinewave-visvalingam-2} \tabularnewline \hline
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\includegraphics[width=\linewidth]{sinewave-visvalingam-20} \tabularnewline \hline
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3/9 &
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30/900 &
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\includegraphics[width=\linewidth]{sinewave-douglas-3} &
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\includegraphics[width=\linewidth]{sinewave-douglas-30} &
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\includegraphics[width=\linewidth]{sinewave-visvalingam-3} \tabularnewline \hline
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\includegraphics[width=\linewidth]{sinewave-visvalingam-30} \tabularnewline \hline
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4/16 &
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40/1600 &
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\includegraphics[width=\linewidth]{sinewave-douglas-4} &
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\includegraphics[width=\linewidth]{sinewave-douglas-40} &
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\includegraphics[width=\linewidth]{sinewave-visvalingam-4} \tabularnewline \hline
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\includegraphics[width=\linewidth]{sinewave-visvalingam-40} \tabularnewline \hline
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\end{tabularx}
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\end{tabularx}
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\caption{{\DP} and {\VW} on example wave}
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\caption{{\DP} and {\VW} on example wave}
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@ -6,7 +6,7 @@ import geopandas as gpd
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from shapely.geometry import LineString, MultiLineString
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from shapely.geometry import LineString, MultiLineString
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INTERVAL = 0.1
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INTERVAL = 0.1
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TAIL_LEN = 10
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TAIL_LEN = 7
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SINE_LEN = 7
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SINE_LEN = 7
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TAILS = np.zeros(int(TAIL_LEN / INTERVAL))
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TAILS = np.zeros(int(TAIL_LEN / INTERVAL))
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@ -17,7 +17,7 @@ def main():
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amplitude = (np.sin(sin_range * pi / 2) + 1)*2
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amplitude = (np.sin(sin_range * pi / 2) + 1)*2
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y = np.concatenate([TAILS, amplitude, TAILS])
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y = np.concatenate([TAILS, amplitude, TAILS])
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x = np.arange(-TAIL_LEN - pi/4, SINE_LEN + TAIL_LEN, INTERVAL)
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x = np.arange(-TAIL_LEN - pi/4, SINE_LEN + TAIL_LEN, INTERVAL)
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lines = LineString(zip(x, y))
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lines = LineString(zip(x*10, y*10))
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geom = MultiLineString([lines])
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geom = MultiLineString([lines])
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df = gpd.GeoDataFrame(crs=CRS(3346))
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df = gpd.GeoDataFrame(crs=CRS(3346))
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df['geometry'] = None
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df['geometry'] = None
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