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pytensor
Commits
eadc6e33
提交
eadc6e33
authored
9月 24, 2022
作者:
Rémi Louf
提交者:
Brandon T. Willard
11月 03, 2022
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Add the Student's t `RandomVariable`
上级
1a3ec8db
隐藏空白字符变更
内嵌
并排
正在显示
3 个修改的文件
包含
101 行增加
和
0 行删除
+101
-0
basic.py
aesara/tensor/random/basic.py
+55
-0
basic.rst
doc/library/tensor/random/basic.rst
+3
-0
test_basic.py
tests/tensor/random/test_basic.py
+43
-0
没有找到文件。
aesara/tensor/random/basic.py
浏览文件 @
eadc6e33
...
...
@@ -1370,6 +1370,60 @@ class TruncExponentialRV(ScipyRandomVariable):
truncexpon
=
TruncExponentialRV
()
class
StudentTRV
(
ScipyRandomVariable
):
r"""A Student's t continuous random variable.
The probability density function for `t` in terms of its degrees of freedom
parameter :math:`\nu`, location parameter :math:`\mu` and scale
parameter :math:`\sigma` is:
.. math::
f(x; \nu, \alpha, \beta) = \frac{\Gamma(\frac{\nu + 1}{2})}{\Gamma(\frac{\nu}{2})} \left(\frac{1}{\pi\nu\sigma}\right)^{\frac{1}{2}} \left[1+\frac{(x-\mu)^2}{\nu\sigma}\right]^{-\frac{\nu+1}{2}}
for :math:`\nu > 0`, :math:`\sigma > 0`.
"""
name
=
"t"
ndim_supp
=
0
ndims_params
=
[
0
,
0
,
0
]
dtype
=
"floatX"
_print_name
=
(
"StudentT"
,
"
\\
operatorname{StudentT}"
)
def
__call__
(
self
,
df
,
loc
=
0.0
,
scale
=
1.0
,
size
=
None
,
**
kwargs
):
r"""Draw samples from a Student's t distribution.
Signature
---------
`(), (), () -> ()`
Parameters
----------
df
Degrees of freedom parameter :math:`\nu` of the distribution. Must be
positive.
loc
Location parameter :math:`\mu` of the distribution.
scale
Scale parameter :math:`\sigma` of the distribution. Must be
positive.
size
Sample shape. If the given size is `(m, n, k)`, then `m * n * k`
independent, identically distributed samples are returned. Default is
`None` in which case a single sample is returned.
"""
return
super
()
.
__call__
(
df
,
loc
,
scale
,
size
=
size
,
**
kwargs
)
@classmethod
def
rng_fn_scipy
(
cls
,
rng
,
df
,
loc
,
scale
,
size
):
return
stats
.
t
.
rvs
(
df
,
loc
=
loc
,
scale
=
scale
,
size
=
size
,
random_state
=
rng
)
t
=
StudentTRV
()
class
BernoulliRV
(
ScipyRandomVariable
):
r"""A Bernoulli discrete random variable.
...
...
@@ -2071,4 +2125,5 @@ __all__ = [
"standard_normal"
,
"negative_binomial"
,
"gengamma"
,
"t"
,
]
doc/library/tensor/random/basic.rst
浏览文件 @
eadc6e33
...
...
@@ -145,6 +145,9 @@ Aesara can produce :class:`RandomVariable`\s that draw samples from many differe
.. autoclass:: aesara.tensor.random.basic.StandardNormalRV
:members: __call__
.. autoclass:: aesara.tensor.random.basic.StudentTRV
:members: __call__
.. autoclass:: aesara.tensor.random.basic.TriangularRV
:members: __call__
...
...
tests/tensor/random/test_basic.py
浏览文件 @
eadc6e33
...
...
@@ -48,6 +48,7 @@ from aesara.tensor.random.basic import (
poisson
,
randint
,
standard_normal
,
t
,
triangular
,
truncexpon
,
uniform
,
...
...
@@ -926,6 +927,48 @@ def test_truncexpon_samples(b, loc, scale, size):
)
@pytest.mark.parametrize
(
"df, loc, scale, size"
,
[
(
np
.
array
(
2
,
dtype
=
config
.
floatX
),
np
.
array
(
0
,
dtype
=
config
.
floatX
),
np
.
array
(
1
,
dtype
=
config
.
floatX
),
None
,
),
(
np
.
array
(
2
,
dtype
=
config
.
floatX
),
np
.
array
(
0
,
dtype
=
config
.
floatX
),
np
.
array
(
1
,
dtype
=
config
.
floatX
),
[],
),
(
np
.
array
(
2
,
dtype
=
config
.
floatX
),
np
.
array
(
0
,
dtype
=
config
.
floatX
),
np
.
array
(
1
,
dtype
=
config
.
floatX
),
[
2
,
3
],
),
(
np
.
full
((
1
,
2
),
5
,
dtype
=
config
.
floatX
),
np
.
array
(
0
,
dtype
=
config
.
floatX
),
np
.
array
(
1
,
dtype
=
config
.
floatX
),
None
,
),
],
)
def
test_t_samples
(
df
,
loc
,
scale
,
size
):
compare_sample_values
(
t
,
df
,
loc
,
scale
,
size
=
size
,
test_fn
=
lambda
*
args
,
size
=
None
,
random_state
=
None
,
**
kwargs
:
t
.
rng_fn
(
random_state
,
*
(
args
+
(
size
,))
),
)
@pytest.mark.parametrize
(
"p, size"
,
[
...
...
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