Add support for calculating Evapotranspiration
This commit is contained in:
137
application.py
137
application.py
@@ -1,5 +1,5 @@
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#!/usr/bin/python
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import urllib, urllib2, cgi, re
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import urllib, urllib2, cgi, re, math
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import json, datetime, time, sys, calendar
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import pytz, ephem
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from datetime import datetime, timedelta, date
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@@ -33,6 +33,18 @@ def isFloat(s):
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return 0
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return 1
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def F2C(temp):
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return (temp-32)*5/9
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def C2F(temp):
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return temp*9/5 + 32
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def mm2in(x):
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return x*0.03937008
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def ft2m(x):
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return x*0.3048
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def IP2Int(ip):
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o = map(int, ip.split('.'))
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res = (16777216 * o[0]) + (65536 * o[1]) + (256 * o[2]) + o[3]
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@@ -44,6 +56,78 @@ def getClientAddress(environ):
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except KeyError:
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return environ['REMOTE_ADDR']
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def computeETs(latitude, longitude, elevation, temp_high, temp_low, temp_avg, hum_high, hum_low, hum_avg, wind, solar):
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tm = time.gmtime()
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dayofyear = tm.tm_yday
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latitude = safe_float(latitude, 0);
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longitude = safe_float(longitude, 0);
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# Converted values
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El = ft2m(elevation)
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Rs = float(solar) * 0.0864 # W/m2 to MJ/d /m2
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Tx = F2C(float(temp_high))
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Tn = F2C(float(temp_low))
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Tm = F2C(float(temp_avg))
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RHx = float(hum_high)
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RHn = float(hum_low)
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RHm = float(hum_avg)
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Td = Tm-(100-RHm)/5 # approx. dewpoint (daily mean)
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U2 = float(wind) * 0.44704 # wind speed in m/s
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# Step 1: Extraterrestrial radiation
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Gsc = 0.082
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sigma = 4.90e-9
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phi = math.pi * latitude / 180
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dr = 1 + 0.033*math.cos(2*math.pi*dayofyear/365)
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delta = 0.409*math.sin(2*math.pi*dayofyear/365 - 1.39)
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omegas = math.acos(-math.tan(phi)*math.tan(delta))
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Ra = (24*60/math.pi)*Gsc*dr*(omegas*math.sin(delta)*math.sin(phi)+math.cos(phi)*math.cos(delta)*math.sin(omegas))
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# Step 2: Daily net radiation
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Rso = Ra*(0.75 + 2.0e-5 * El) # 5
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Rns = (1-0.23)*Rs
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f = 1.35*Rs/Rso - 0.35 # 7
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esTx = 0.6108*math.exp(17.27*Tx/(Tx+237.3)) # 8
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esTn = 0.6108*math.exp(17.27*Tn/(Tn+237.3))
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ed = (esTx*RHn/100 + esTn*RHx/100)/2 # 10
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ea = (esTx+esTn)/2 # 22
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epsilonp = 0.34-0.14*math.sqrt(ea) # 12
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Rnl = -f*epsilonp*sigma*((Tx+273.14)**4 + (Tn+273.15)**4)/2 # 13
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Rn = Rns + Rnl
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# Step 3: variables needed to compute ET
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beta = 101.3*((293-0.0065*El)/293)**5.26 # 15
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lam = 2.45
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gamma = 0.00163*beta/lam
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e0 = 0.6108*math.exp(17.27*Tm/(Tm+237.3)) # 19
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Delta = 4099*e0/(Tm+237.3)**2 # 20
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G = 0
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ea = (esTx+esTn)/2
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# Step 4: calculate ETh
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ETh = 0.408*(0.0023*Ra*(Tm+17.8)*math.sqrt(Tx-Tn)) # 23
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# Step 5: calculate ET0
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R0 = 0.408*Delta*(Rn-G)/(Delta+gamma*(1+0.34*U2)) # 24
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A0 = (900*gamma/(Tm+273))*U2*(ea-ed) / (Delta+gamma*(1+0.34*U2)) # 25
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ET0 = R0 + A0
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# Step 6: calculate ETr
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Rr = 0.408*Delta*(Rn-G) / (Delta+gamma*(1+0.38*U2)) # 27
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Ar = (1600*gamma/(Tm+273))*U2*(ea-ed) / (Delta+gamma*(1+0.38*U2)) # 28
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ETr = Rr + Ar
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return (mm2in(ETh), mm2in(ET0), mm2in(ETr))
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def application(environ, start_response):
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path = environ.get('PATH_INFO')
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uwt = re.match('/weather(\d+)\.py',path)
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@@ -72,8 +156,8 @@ def application(environ, start_response):
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else:
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fwv = ''
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restrict, maxh, minh, meant, pre, pre_today, h_today, sunrise, sunset, scale, toffset = [0, -1, -1, -500, -1, -1, -1, -1, -1, -1, -1]
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solar, wind, avehumidity, minhumidity, maxhumidity, maxt, mint, elevation, restrict, maxh, minh, meant, pre, pre_today, h_today, sunrise, sunset, scale, toffset = [0, 0, 0, 0, 0, 0, 0, 0, 0, -1, -1, -500, -1, -1, -1, -1, -1, -1, -1]
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ET = [0,0,0]
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eip = IP2Int(getClientAddress(environ))
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# if loc is GPS coordinate itself
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@@ -94,30 +178,55 @@ def application(environ, start_response):
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# if loc is pws, query wunderground geolookup to get GPS coordinates
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if loc.startswith('pws:') or loc.startswith('icao:'):
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try:
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req = urllib2.urlopen('http://api.wunderground.com/api/'+key+'/geolookup/q/'+urllib.quote(loc)+'.json')
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req = urllib2.urlopen('http://api.wunderground.com/api/'+key+'/conditions/forecast/q/'+urllib.quote(loc)+'.json')
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dat = json.load(req)
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if dat['location']:
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v = dat['location']['lat']
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if 'current_observation' in dat:
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v = dat['current_observation']['observation_location']['latitude']
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if v and isFloat(v):
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lat = v
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v = dat['location']['lon']
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v = dat['current_observation']['observation_location']['longitude']
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if v and isFloat(v):
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lon = v
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v = dat['location']['tz_long']
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v = dat['current_observation']['observation_location']['elevation']
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if v:
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elevation = safe_int(int(v.split()[0]), 0)
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v = dat['current_observation']['solarradiation']
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if v:
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solar = safe_int(v, 0)
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v = dat['current_observation']['local_tz_long']
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if v:
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tzone = v
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else:
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v = dat['location']['tz']
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v = dat['current_observation']['local_tz_short']
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if v:
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tzone = v
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forecast = dat['forecast']['simpleforecast']['forecastday'][0]
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v = forecast['high']['fahrenheit']
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if v:
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maxt = safe_int(v, 0)
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v = forecast['low']['fahrenheit']
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if v:
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mint = safe_int(v, 0)
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v = forecast['avehumidity']
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if v:
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avehumidity = safe_int(v, 0)
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v = forecast['maxhumidity']
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if v:
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maxhumidity = safe_int(v, 0)
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v = forecast['minhumidity']
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if v:
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minhumidity = safe_int(v, 0)
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v = forecast['avewind']['mph']
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if v:
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wind = safe_int(v, 0)
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except:
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lat = None
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lon = None
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tzone = None
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#loc = loc.replace(' ','_')
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# now do autocomplete lookup to get GPS coordinates
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if lat==None or lon==None:
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try:
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@@ -195,6 +304,7 @@ def application(environ, start_response):
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if v:
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h_today = safe_float(v, h_today)
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# Check which weather method is being used
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if ((uwt & ~(1 << 7)) == 1):
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# calculate water time scale, per https://github.com/rszimm/sprinklers_pi/blob/master/Weather.cpp
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hf = 0
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@@ -217,6 +327,11 @@ def application(environ, start_response):
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if (scale>200):
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scale = 200
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elif ((uwt & ~(1 << 7)) == 2):
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ET = computeETs(lat, lon, elevation, maxt, mint, meant, maxhumidity, minhumidity, avehumidity, wind, solar)
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# TODO: Actually generate correct scale using ET (ET[1] is ET0 for short canopy)
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scale = safe_int(ET[1] * 100, -1)
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# Check weather modifier bits and apply scale modification
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if ((uwt>>7) & 1):
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# California modification to prevent watering when rain has occured within 48 hours
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