source: trunk/LMDZ.PLUTO/util/script_figures/meanmeridwind.py @ 3823

Last change on this file since 3823 was 3823, checked in by afalco, 5 days ago

Pluto: added some python scripts for visualization.
AF

  • Property svn:executable set to *
File size: 2.9 KB
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1#! /usr/bin/env python
2from    netCDF4               import    Dataset
3from    numpy                 import    *
4import  numpy                 as        np
5import  matplotlib.pyplot     as        mpl
6from matplotlib.cm import get_cmap
7import pylab
8import matplotlib.colors as mcolors
9import colorsys
10from FV3_utils import *
11
12############################
13filename1=name+"_A.nc"
14var="v" #variable
15tint=[30,31] #Time must be as written in the input file
16xarea=[-180,179]
17
18nc1=Dataset(filename1)
19
20lat=getvar(nc1,"latitude")
21lon=getvar(nc1,"longitude")
22alt=getvar(nc1,"altitude")
23tim=getvar(nc1,"Time")
24############################
25
26def make_colormap(seq):
27    """Return a LinearSegmentedColormap
28    seq: a sequence of floats and RGB-tuples. The floats should be increasing
29    and in the interval (0,1).
30    """
31
32    seq = [(None,) * 3, 0.0] + list(seq) + [1.0, (None,) * 3]
33    print(seq)
34    cdict = {'red': [], 'green': [], 'blue': []}
35    for i, item in enumerate(seq):
36        if isinstance(item, float):
37            r1, g1, b1 = seq[i - 1]
38            r2, g2, b2 = seq[i + 1]
39            cdict['red'].append([item, r1, r2])
40            cdict['green'].append([item, g1, g2])
41            cdict['blue'].append([item, b1, b2])
42    print(cdict)
43    return mcolors.LinearSegmentedColormap('CustomMap', cdict)
44
45def diverge_map(high, low):
46    '''
47    low and high are colors that will be used for the two
48    ends of the spectrum. they can be either color strings
49    or rgb color tuples
50    '''
51    c = mcolors.ColorConverter().to_rgb
52    if isinstance(low, str): low = c(low)      #si low=string (color)
53    if isinstance(high, str): high = c(high)
54    print(high)
55    return make_colormap([low, c('white'), 0.55, c('white'),0.65, c('white'), high])
56
57
58hh=(255,99,71)
59hh=(hh[0]/255,hh[1]/255,hh[2]/255)
60print(hh)
61h=hh #(0.565, 0.392, 0.173)
62l=(0.094, 0.310, 0.635)
63rvb1=diverge_map(h,l)
64
65myvar=getvar(nc1,var,tint,tim,xarea,lon,t_mean=True,l_mean=True)
66
67mpl.figure(figsize=(20, 10))
68
69font=26
70
71#pal=rvb1 #get_cmap(name="RdYlBu_r")
72#pal=get_cmap(name="Spectral_r")
73pal=get_cmap(name="rainbow")
74lev=np.linspace(-0.1,0.1,25)
75
76xticks=[-90,-60,-30,0,30,60,90]
77#yticks=np.linspace(0,240,9)
78alt=alt/1000.
79
80CF=mpl.contourf(lat,alt,myvar,lev,cmap=pal,extend='both')
81cbar=mpl.colorbar(CF,shrink=1, format="%1.2f")
82#cbar.ax.set_title("[K]",y=1.04,fontsize=font)
83for t in cbar.ax.get_yticklabels():
84      t.set_fontsize(font)
85
86vect=lev
87CS=mpl.contour(lat,alt,myvar,vect,colors='k',linewidths=0.5)
88#### inline=1 : values over the line
89mpl.clabel(CS, inline=1, fontsize=20, fmt='%1.1f',inline_spacing=1)
90
91#mpl.title('Latitude ='+str(tintstr[i]),fontsize=font)
92mpl.ylabel('Altitude (km)',labelpad=10,fontsize=font)
93mpl.xlabel('Latitude (deg)',labelpad=10, fontsize=font)
94mpl.xticks(xticks,fontsize=font)
95#mpl.xticks(fontsize=font)
96#mpl.yticks(yticks,fontsize=font)
97mpl.yticks(fontsize=font)
98pylab.ylim([-4,250])
99
100mpl.savefig('meanmeridwind.eps',dpi=200)
101mpl.savefig('meanmeridwind.png',dpi=200)
102mpl.show()
103
104
105
106
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