提交 a85b58d3 authored 作者: Caglar's avatar Caglar

Added tests for the other way around as well.

上级 fd5d7ddd
...@@ -18,9 +18,9 @@ from theano import gof ...@@ -18,9 +18,9 @@ from theano import gof
from theano.scalar.basic import (floats, float32, float64, from theano.scalar.basic import (floats, float32, float64,
ints, int8, int32, complex64, ints, int8, int32, complex64,
ComplexError, IntDiv, TrueDiv, ComplexError, IntDiv, TrueDiv,
Composite, add, div_proxy, Composite, add, div_proxy, clip,
and_, eq, neq, invert, mul) and_, eq, neq, invert, mul)
import numpy
def inputs(): def inputs():
return floats('xyz') return floats('xyz')
...@@ -56,6 +56,38 @@ class test_ScalarOps(unittest.TestCase): ...@@ -56,6 +56,38 @@ class test_ScalarOps(unittest.TestCase):
): ):
self.assertTrue(fn(a,b) == a%b, (a,)) self.assertTrue(fn(a,b) == a%b, (a,))
def test_clip(self):
x, y, z = inputs()
a = clip(x, y, z)
fn = gof.DualLinker().accept(FunctionGraph([x, y, z], [a])).make_function()
numpy.random.seed(1)
xval = numpy.random.rand(1)
yval = numpy.random.rand(1)
zval = numpy.random.rand(1)
aval = fn(xval, yval, zval)
np_aval = numpy.clip(xval, yval, zval)
self.assertTrue(aval == np_aval)
def test_clip_grad(self):
x, y = floats('xy')
a = theano.tensor.clip(x, y, x)
g = theano.gradient.grad(a, x)
fn = gof.DualLinker().accept(FunctionGraph([x, y], [g])).make_function()
# Test the other way around as well
a2 = theano.tensor.clip(x, x, y)
g2 = theano.gradient.grad(a2, x)
fn2 = gof.DualLinker().accept(FunctionGraph([x, y], [g2])).make_function()
numpy.random.seed(1)
xval = numpy.random.rand(1).astype("int64")
yval = numpy.random.rand(1).astype("int64")
aval = fn(xval, yval)
aval2 = fn2(xval, yval)
self.assertTrue(aval == 1)
self.assertTrue(aval2 == 1)
class test_composite(unittest.TestCase): class test_composite(unittest.TestCase):
def test_straightforward(self): def test_straightforward(self):
......
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