initial pretty (at one size lol)
parent
bc5f5932f1
commit
10693ff1f4
26
pyphoon.py
26
pyphoon.py
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@ -34,22 +34,26 @@ from moons import backgrounds
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# If you change the aspect ratio, the canned backgrounds won't work.
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ASPECTRATIO = 0.5
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def putmoon(pctphase, lines, atfiller, hemisphere): # pylint: disable=too-many-locals,too-many-branches,too-many-statements,too-many-arguments
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"""Print the moon"""
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def putmoon(fracphase, lines, hemisphere, atfiller='@'): # pylint: disable=too-many-locals,too-many-branches,too-many-statements,too-many-arguments
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"""Print the moon
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Arguments:
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fracphase: A float 0 <= n < 1 representing the current point in the cycle
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lines: An integer representing the number of lines in the output
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hemisphere: A string 'north' or 'south' representing the observer's hemisphere
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atfiller: What character to use in place of '@'
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"""
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output = ""
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def putchar(char):
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nonlocal output
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output += char
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# Find the length of the atfiller string
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atflrlen = len(atfiller)
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# Fix waxes and wanes direction for south hemisphere
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if hemisphere == 'south':
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pctphase = 1 - pctphase
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fracphase = 1 - pctphase
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angphase = pctphase * 2.0 * math.pi
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angphase = fracphase * 2.0 * math.pi
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mcap = -math.cos(angphase)
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# Figure out how big the moon is
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@ -75,7 +79,7 @@ def putmoon(pctphase, lines, atfiller, hemisphere): # pylint: disable=too-many-
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# Now output the slice
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col = 0
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while col < colleft:
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putchar(' ')
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output += ' '
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col += 1
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while col <= colright:
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if hemisphere == 'north':
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@ -97,13 +101,13 @@ def putmoon(pctphase, lines, atfiller, hemisphere): # pylint: disable=too-many-
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"!!!!!!"))
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if char != '@':
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putchar(char)
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output += char
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else:
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putchar(atfiller[atflridx])
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output += atfiller[atflridx]
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atflridx = (atflridx + 1) % atflrlen
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col += 1
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putchar('\n')
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output += '\n'
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lin += 1
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return output
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40
xaphoon.py
40
xaphoon.py
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@ -26,6 +26,28 @@ def to_timestr(t, date=False, local=True):
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return t.strftime('%Y-%m-%d %H:%M:%S')
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return t.strftime('%H:%M:%S')
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def fmt(cols, t, az, el, phase, illum, moonrise, transit, moonset, hemi):
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"""Formats data into string to print"""
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_date = t.utc_datetime().astimezone().strftime('%Y-%m-%d %H:%M:%S') # 18 chars
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_azel = f"Az:{az.degrees:.0f}° El:{el.degrees:.0f}°".ljust(16) # 16 chars
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_phil = f"Ph: {phase.degrees:.0f}° Ill:{illum*100:.0f}%".rjust(16) # 16 chars
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_r = f"R:{to_timestr(moonrise)}" # 10 chars
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_t = f"T:{to_timestr(transit)}" # 10 chars
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_s = f"S:{to_timestr(moonset)}" # 10 chars
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# TODO: 21 needs to scale
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_moon = putmoon(phase.degrees/360, 21, hemi) # ! scalable width
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# 2 groups of spacing, filling cols minus total RTS width
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_rts_spacing = ' '*int((cols-30)/2)
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ret = f"{_date.center(cols)}\n"
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ret += f"{_azel}{' '*(cols-32)}{_phil}\n"
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# split moon on newlines, right-pad to center moon in original width, center to center
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# in new width, then rejoin with newlines and tack an extra newline on the end
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ret += '\n'.join([line.ljust(44).center(cols) for line in _moon.split('\n')]) + '\n'
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ret += f"{_r}{_rts_spacing}{_t}{_rts_spacing}{_s}"
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return ret
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def main():
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"""Main function
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@ -41,6 +63,10 @@ def main():
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parser.add_argument("elevation",
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help="Observer elevation in meters",
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type=int)
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parser.add_argument("-l", "--lines",
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help="Number of lines for the output to use (default 25)",
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default=25,
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type=int)
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parser.add_argument("-c", "--columns",
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help="Number of columns for the output to use (default 70)",
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default=70,
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@ -53,15 +79,12 @@ def main():
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t = ts.from_datetime(datetime.fromtimestamp(args.time, timezone.utc)) # current time
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print(f"Current time: {to_timestr(t)}")
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obs_geo = skyfield.api.wgs84.latlon(args.lat, args.lon,
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elevation_m=args.elevation) # geographic position vector
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obs = earth + obs_geo # barycentric position vector
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moon_apparent = obs.at(t).observe(moon).apparent()
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el, az, _ = moon_apparent.altaz('standard')
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print(f"Az: {az.degrees:.0f}° El: {el.degrees:.0f}°")
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# Find relevant moonrise. el is based on apparent location, so accounts
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# for atmospheric refraction. y shouldn't be needed unless user is near
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@ -76,17 +99,16 @@ def main():
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# Find first moonset in the next 24 hours after moonrise.
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moonset = almanac.find_settings(obs, moon, moonrise, moonrise+1)[0][0]
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print(f"Rise: {to_timestr(moonrise)} Set: {to_timestr(moonset)}")
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transit = almanac.find_transits(obs, moon, moonrise, moonrise+1)[0]
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print(f"Transit: {to_timestr(transit)}")
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phase = almanac.moon_phase(eph, t)
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print(f"Phase: {phase.degrees:.0f}°")
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illum = moon_apparent.fraction_illuminated(sun)
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print(f"Illumination: {illum*100:.0f}%")
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hemi = 'north' if args.lat > 0 else 'south'
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print(putmoon(phase.degrees/360, 21, '@', 'north' if args.lat > 0 else 'south'))
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#print(phase.degrees/360*100)
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#print(putmoon(phase.degrees/360, 21, 'north' if args.lat > 0 else 'south'))
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print(fmt(args.columns, t, az, el, phase, illum, moonrise, transit, moonset, hemi))
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#print(putmoon(phase.degrees/360, 21, '@', hemi))
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main()
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