why plt.tight_layout() failed to tight layout of the last nest_pie chart?
Can someone help me that why plt.tight_layout
failed to tight the layout of the last nest_pie chart?
plt.tight_layout()
has applied to every figure except last one. So strange it seems to me thatplt.show()
can show every figure, but.tight_layout()
can not tight everyone.
code is here:
def all_pie_nested():
for i in a:
fig, ax = plt.subplots()
data0 = df.groupby(i)['income'].sum()
data0.plot.pie(autopct='%.1f%%')
ax.set(aspect=1)
for i1 in a:
if i1 != i:
size = 0.4
fig, ax = plt.subplots()
data1 = df.groupby([i, i1])['income'].sum()
data0.plot.pie(ax=ax, radius=1 - size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
for i2 in a:
if i2 != i1 and i2 != i:
fig, ax = plt.subplots()
data2 = df.groupby([i, i1, i2])['income'].sum()
data0.plot.pie(ax=ax, radius=1-size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data2.plot.pie(ax=ax, radius=1+size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
plt.tight_layout()
plt.show()
python matplotlib
add a comment |
Can someone help me that why plt.tight_layout
failed to tight the layout of the last nest_pie chart?
plt.tight_layout()
has applied to every figure except last one. So strange it seems to me thatplt.show()
can show every figure, but.tight_layout()
can not tight everyone.
code is here:
def all_pie_nested():
for i in a:
fig, ax = plt.subplots()
data0 = df.groupby(i)['income'].sum()
data0.plot.pie(autopct='%.1f%%')
ax.set(aspect=1)
for i1 in a:
if i1 != i:
size = 0.4
fig, ax = plt.subplots()
data1 = df.groupby([i, i1])['income'].sum()
data0.plot.pie(ax=ax, radius=1 - size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
for i2 in a:
if i2 != i1 and i2 != i:
fig, ax = plt.subplots()
data2 = df.groupby([i, i1, i2])['income'].sum()
data0.plot.pie(ax=ax, radius=1-size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data2.plot.pie(ax=ax, radius=1+size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
plt.tight_layout()
plt.show()
python matplotlib
add a comment |
Can someone help me that why plt.tight_layout
failed to tight the layout of the last nest_pie chart?
plt.tight_layout()
has applied to every figure except last one. So strange it seems to me thatplt.show()
can show every figure, but.tight_layout()
can not tight everyone.
code is here:
def all_pie_nested():
for i in a:
fig, ax = plt.subplots()
data0 = df.groupby(i)['income'].sum()
data0.plot.pie(autopct='%.1f%%')
ax.set(aspect=1)
for i1 in a:
if i1 != i:
size = 0.4
fig, ax = plt.subplots()
data1 = df.groupby([i, i1])['income'].sum()
data0.plot.pie(ax=ax, radius=1 - size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
for i2 in a:
if i2 != i1 and i2 != i:
fig, ax = plt.subplots()
data2 = df.groupby([i, i1, i2])['income'].sum()
data0.plot.pie(ax=ax, radius=1-size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data2.plot.pie(ax=ax, radius=1+size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
plt.tight_layout()
plt.show()
python matplotlib
Can someone help me that why plt.tight_layout
failed to tight the layout of the last nest_pie chart?
plt.tight_layout()
has applied to every figure except last one. So strange it seems to me thatplt.show()
can show every figure, but.tight_layout()
can not tight everyone.
code is here:
def all_pie_nested():
for i in a:
fig, ax = plt.subplots()
data0 = df.groupby(i)['income'].sum()
data0.plot.pie(autopct='%.1f%%')
ax.set(aspect=1)
for i1 in a:
if i1 != i:
size = 0.4
fig, ax = plt.subplots()
data1 = df.groupby([i, i1])['income'].sum()
data0.plot.pie(ax=ax, radius=1 - size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
for i2 in a:
if i2 != i1 and i2 != i:
fig, ax = plt.subplots()
data2 = df.groupby([i, i1, i2])['income'].sum()
data0.plot.pie(ax=ax, radius=1-size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data2.plot.pie(ax=ax, radius=1+size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
plt.tight_layout()
plt.show()
python matplotlib
python matplotlib
edited Nov 13 at 6:51
asked Nov 12 at 11:22
Sean.H
166
166
add a comment |
add a comment |
2 Answers
2
active
oldest
votes
How many figures do you want ? One or multiple ? If one, why do you call subplots multiple times ? If multiple, you may rather want to call tight_layout() specifically for each figure inside the loops:
fig.tight_layout()
When you call plt.tight_layout(), I think its result is only applied to the current figure (the last one you created or the last one you modified), hence why not all your figures get adjusted.
– Patol75
Nov 13 at 1:40
:) thx. again.plt.tight_layout()
has applied to every figure except last one. So strange it seems to me thatplt.show()
can show every figure, but.tight_layout()
can not tight everyone.
– Sean.H
Nov 13 at 2:19
add a comment |
Just like the picture below: Figure_3 & Figure_5 come from the same code , however, they are different:
for i2 in a:
if i2 != i1 and i2 != i:
fig, ax = plt.subplots()
data2 = df.groupby([i, i1, i2])['income'].sum()
data0.plot.pie(ax=ax, radius=1-size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data2.plot.pie(ax=ax, radius=1+size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
I've tried to call plt.tight_layout()
inside each loop, and set the figure.autolayout rcParam
to True
under for i in a:
, neither of them can make Figure_5 with same features as
Figure_3.
.....................parting line........................
The only sulotion, for the moment, is setting size
to 0.3
from 0.4
, and plt.rcParams['figure.autolayout'] = True
before `for i in a:
Hope someone can explain the machanism of it later.
def all_pie_nested():
plt.rcParams['figure.autolayout'] = True # replace call plt.tight_layout()
for i in a:
fig, ax = plt.subplots()
data0 = df.groupby(i)['income'].sum()
data0.plot.pie(autopct='%.1f%%')
ax.set(aspect=1)
for i1 in a:
if i1 != i:
size = 0.3 # change from size = 0.4
fig, ax = plt.subplots()
data1 = df.groupby([i, i1])['income'].sum()
data0.plot.pie(ax=ax, radius=1 - size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
for i2 in a:
if i2 != i1 and i2 != i:
fig, ax = plt.subplots()
data2 = df.groupby([i, i1, i2])['income'].sum()
data0.plot.pie(ax=ax, radius=1-size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data2.plot.pie(ax=ax, radius=1+size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
plt.show()
add a comment |
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2 Answers
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active
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votes
2 Answers
2
active
oldest
votes
active
oldest
votes
active
oldest
votes
How many figures do you want ? One or multiple ? If one, why do you call subplots multiple times ? If multiple, you may rather want to call tight_layout() specifically for each figure inside the loops:
fig.tight_layout()
When you call plt.tight_layout(), I think its result is only applied to the current figure (the last one you created or the last one you modified), hence why not all your figures get adjusted.
– Patol75
Nov 13 at 1:40
:) thx. again.plt.tight_layout()
has applied to every figure except last one. So strange it seems to me thatplt.show()
can show every figure, but.tight_layout()
can not tight everyone.
– Sean.H
Nov 13 at 2:19
add a comment |
How many figures do you want ? One or multiple ? If one, why do you call subplots multiple times ? If multiple, you may rather want to call tight_layout() specifically for each figure inside the loops:
fig.tight_layout()
When you call plt.tight_layout(), I think its result is only applied to the current figure (the last one you created or the last one you modified), hence why not all your figures get adjusted.
– Patol75
Nov 13 at 1:40
:) thx. again.plt.tight_layout()
has applied to every figure except last one. So strange it seems to me thatplt.show()
can show every figure, but.tight_layout()
can not tight everyone.
– Sean.H
Nov 13 at 2:19
add a comment |
How many figures do you want ? One or multiple ? If one, why do you call subplots multiple times ? If multiple, you may rather want to call tight_layout() specifically for each figure inside the loops:
fig.tight_layout()
How many figures do you want ? One or multiple ? If one, why do you call subplots multiple times ? If multiple, you may rather want to call tight_layout() specifically for each figure inside the loops:
fig.tight_layout()
answered Nov 12 at 13:55
Patol75
6136
6136
When you call plt.tight_layout(), I think its result is only applied to the current figure (the last one you created or the last one you modified), hence why not all your figures get adjusted.
– Patol75
Nov 13 at 1:40
:) thx. again.plt.tight_layout()
has applied to every figure except last one. So strange it seems to me thatplt.show()
can show every figure, but.tight_layout()
can not tight everyone.
– Sean.H
Nov 13 at 2:19
add a comment |
When you call plt.tight_layout(), I think its result is only applied to the current figure (the last one you created or the last one you modified), hence why not all your figures get adjusted.
– Patol75
Nov 13 at 1:40
:) thx. again.plt.tight_layout()
has applied to every figure except last one. So strange it seems to me thatplt.show()
can show every figure, but.tight_layout()
can not tight everyone.
– Sean.H
Nov 13 at 2:19
When you call plt.tight_layout(), I think its result is only applied to the current figure (the last one you created or the last one you modified), hence why not all your figures get adjusted.
– Patol75
Nov 13 at 1:40
When you call plt.tight_layout(), I think its result is only applied to the current figure (the last one you created or the last one you modified), hence why not all your figures get adjusted.
– Patol75
Nov 13 at 1:40
:) thx. again.
plt.tight_layout()
has applied to every figure except last one. So strange it seems to me that plt.show()
can show every figure, but .tight_layout()
can not tight everyone.– Sean.H
Nov 13 at 2:19
:) thx. again.
plt.tight_layout()
has applied to every figure except last one. So strange it seems to me that plt.show()
can show every figure, but .tight_layout()
can not tight everyone.– Sean.H
Nov 13 at 2:19
add a comment |
Just like the picture below: Figure_3 & Figure_5 come from the same code , however, they are different:
for i2 in a:
if i2 != i1 and i2 != i:
fig, ax = plt.subplots()
data2 = df.groupby([i, i1, i2])['income'].sum()
data0.plot.pie(ax=ax, radius=1-size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data2.plot.pie(ax=ax, radius=1+size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
I've tried to call plt.tight_layout()
inside each loop, and set the figure.autolayout rcParam
to True
under for i in a:
, neither of them can make Figure_5 with same features as
Figure_3.
.....................parting line........................
The only sulotion, for the moment, is setting size
to 0.3
from 0.4
, and plt.rcParams['figure.autolayout'] = True
before `for i in a:
Hope someone can explain the machanism of it later.
def all_pie_nested():
plt.rcParams['figure.autolayout'] = True # replace call plt.tight_layout()
for i in a:
fig, ax = plt.subplots()
data0 = df.groupby(i)['income'].sum()
data0.plot.pie(autopct='%.1f%%')
ax.set(aspect=1)
for i1 in a:
if i1 != i:
size = 0.3 # change from size = 0.4
fig, ax = plt.subplots()
data1 = df.groupby([i, i1])['income'].sum()
data0.plot.pie(ax=ax, radius=1 - size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
for i2 in a:
if i2 != i1 and i2 != i:
fig, ax = plt.subplots()
data2 = df.groupby([i, i1, i2])['income'].sum()
data0.plot.pie(ax=ax, radius=1-size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data2.plot.pie(ax=ax, radius=1+size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
plt.show()
add a comment |
Just like the picture below: Figure_3 & Figure_5 come from the same code , however, they are different:
for i2 in a:
if i2 != i1 and i2 != i:
fig, ax = plt.subplots()
data2 = df.groupby([i, i1, i2])['income'].sum()
data0.plot.pie(ax=ax, radius=1-size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data2.plot.pie(ax=ax, radius=1+size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
I've tried to call plt.tight_layout()
inside each loop, and set the figure.autolayout rcParam
to True
under for i in a:
, neither of them can make Figure_5 with same features as
Figure_3.
.....................parting line........................
The only sulotion, for the moment, is setting size
to 0.3
from 0.4
, and plt.rcParams['figure.autolayout'] = True
before `for i in a:
Hope someone can explain the machanism of it later.
def all_pie_nested():
plt.rcParams['figure.autolayout'] = True # replace call plt.tight_layout()
for i in a:
fig, ax = plt.subplots()
data0 = df.groupby(i)['income'].sum()
data0.plot.pie(autopct='%.1f%%')
ax.set(aspect=1)
for i1 in a:
if i1 != i:
size = 0.3 # change from size = 0.4
fig, ax = plt.subplots()
data1 = df.groupby([i, i1])['income'].sum()
data0.plot.pie(ax=ax, radius=1 - size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
for i2 in a:
if i2 != i1 and i2 != i:
fig, ax = plt.subplots()
data2 = df.groupby([i, i1, i2])['income'].sum()
data0.plot.pie(ax=ax, radius=1-size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data2.plot.pie(ax=ax, radius=1+size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
plt.show()
add a comment |
Just like the picture below: Figure_3 & Figure_5 come from the same code , however, they are different:
for i2 in a:
if i2 != i1 and i2 != i:
fig, ax = plt.subplots()
data2 = df.groupby([i, i1, i2])['income'].sum()
data0.plot.pie(ax=ax, radius=1-size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data2.plot.pie(ax=ax, radius=1+size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
I've tried to call plt.tight_layout()
inside each loop, and set the figure.autolayout rcParam
to True
under for i in a:
, neither of them can make Figure_5 with same features as
Figure_3.
.....................parting line........................
The only sulotion, for the moment, is setting size
to 0.3
from 0.4
, and plt.rcParams['figure.autolayout'] = True
before `for i in a:
Hope someone can explain the machanism of it later.
def all_pie_nested():
plt.rcParams['figure.autolayout'] = True # replace call plt.tight_layout()
for i in a:
fig, ax = plt.subplots()
data0 = df.groupby(i)['income'].sum()
data0.plot.pie(autopct='%.1f%%')
ax.set(aspect=1)
for i1 in a:
if i1 != i:
size = 0.3 # change from size = 0.4
fig, ax = plt.subplots()
data1 = df.groupby([i, i1])['income'].sum()
data0.plot.pie(ax=ax, radius=1 - size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
for i2 in a:
if i2 != i1 and i2 != i:
fig, ax = plt.subplots()
data2 = df.groupby([i, i1, i2])['income'].sum()
data0.plot.pie(ax=ax, radius=1-size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data2.plot.pie(ax=ax, radius=1+size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
plt.show()
Just like the picture below: Figure_3 & Figure_5 come from the same code , however, they are different:
for i2 in a:
if i2 != i1 and i2 != i:
fig, ax = plt.subplots()
data2 = df.groupby([i, i1, i2])['income'].sum()
data0.plot.pie(ax=ax, radius=1-size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data2.plot.pie(ax=ax, radius=1+size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
I've tried to call plt.tight_layout()
inside each loop, and set the figure.autolayout rcParam
to True
under for i in a:
, neither of them can make Figure_5 with same features as
Figure_3.
.....................parting line........................
The only sulotion, for the moment, is setting size
to 0.3
from 0.4
, and plt.rcParams['figure.autolayout'] = True
before `for i in a:
Hope someone can explain the machanism of it later.
def all_pie_nested():
plt.rcParams['figure.autolayout'] = True # replace call plt.tight_layout()
for i in a:
fig, ax = plt.subplots()
data0 = df.groupby(i)['income'].sum()
data0.plot.pie(autopct='%.1f%%')
ax.set(aspect=1)
for i1 in a:
if i1 != i:
size = 0.3 # change from size = 0.4
fig, ax = plt.subplots()
data1 = df.groupby([i, i1])['income'].sum()
data0.plot.pie(ax=ax, radius=1 - size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
for i2 in a:
if i2 != i1 and i2 != i:
fig, ax = plt.subplots()
data2 = df.groupby([i, i1, i2])['income'].sum()
data0.plot.pie(ax=ax, radius=1-size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data1.plot.pie(ax=ax, radius=1, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
data2.plot.pie(ax=ax, radius=1+size, autopct='%.1f%%', wedgeprops=dict(width=size, edgecolor='w'))
ax.set(aspect=1)
plt.show()
edited Nov 13 at 6:54
answered Nov 13 at 6:30
Sean.H
166
166
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