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12 changes: 12 additions & 0 deletions python/tvm/relay/frontend/onnx.py
Original file line number Diff line number Diff line change
Expand Up @@ -942,6 +942,14 @@ def _impl_v1(cls, inputs, attr, params):
extras={'axis': axis})(inputs, {})


class GatherND(OnnxOpConverter):
""" Operator converter for GatherND.
"""
@classmethod
def _impl_v1(cls, inputs, attr, params):
return _op.gather_nd(inputs[0], inputs[1])


class Greater(OnnxOpConverter):
""" Operator logical greater.
"""
Expand Down Expand Up @@ -1536,6 +1544,9 @@ def _get_convert_map(opset):
'Reciprocal': Reciprocal.get_converter(opset),
'Floor': Renamer('floor'),
'Ceil': Renamer('ceil'),
'Round': Renamer('round'),
'IsInf': Renamer('isinf'),
'IsNaN': Renamer('isnan'),
'Sqrt': Renamer('sqrt'),
'Relu': Renamer('relu'),
'LeakyRelu': Renamer('leaky_relu'),
Expand Down Expand Up @@ -1606,6 +1617,7 @@ def _get_convert_map(opset):
'DepthToSpace': DepthToSpace.get_converter(opset),
'SpaceToDepth': SpaceToDepth.get_converter(opset),
'Gather': Gather.get_converter(opset),
'GatherND': GatherND.get_converter(opset),
'Squeeze': AttrCvt('squeeze', {'axes': 'axis'}),
'Unsqueeze': Unsqueeze.get_converter(opset),
'Pad': Pad.get_converter(opset),
Expand Down
68 changes: 68 additions & 0 deletions tests/python/frontend/onnx/test_forward.py
Original file line number Diff line number Diff line change
Expand Up @@ -542,6 +542,70 @@ def test_clip():
{'min': -1.0, 'max': 1.0})



def test_round():
_test_onnx_op_elementwise((2, 4, 5, 6), np.round, {}, 'float32', 'Round', {})


def _test_finite_ops(inshape, outfunc, npargs, dtype, opname, kwargs):
indata = np.random.choice(a=[np.nan, np.inf, -np.inf, 0.5, 1.0, 0], size=inshape).astype(dtype)

outdata = outfunc(indata, **npargs)
y = helper.make_node(opname, ['in'], ['out'], **kwargs)

graph = helper.make_graph([y],
opname+'_test',
inputs=[helper.make_tensor_value_info("in",
TensorProto.FLOAT, list(indata.shape))],
outputs=[helper.make_tensor_value_info("out",
TensorProto.BOOL, list(outdata.shape))])

model = helper.make_model(graph, producer_name=opname+'_test')

for target, ctx in ctx_list():
tvm_out = get_tvm_output(
model, indata, target, ctx, outdata.shape, dtype)

tvm.testing.assert_allclose(outdata, tvm_out)


def test_isinf():
_test_finite_ops((2, 4, 5, 6), np.isinf, {}, 'float32', 'IsInf', {})


def test_isnan():
_test_finite_ops((2, 4, 5, 6), np.isnan, {}, 'float32', 'IsNaN', {})


def verify_gather_nd(in_shape, indices, dtype):
x = np.random.uniform(size=in_shape).astype(dtype)
indices = np.array(indices, dtype="int32")
out_np = topi.testing.gather_nd_python(x, indices)

y = helper.make_node("GatherND", ['in', 'indices'], ['out'])

graph = helper.make_graph([y],
'gather_test',
inputs=[helper.make_tensor_value_info("in",
TensorProto.FLOAT, list(in_shape)),
helper.make_tensor_value_info("indices",
TensorProto.INT32, list(indices.shape))],
outputs=[helper.make_tensor_value_info("out",
TensorProto.FLOAT, list(out_np.shape))])
model = helper.make_model(graph, producer_name='gather_test')

for target, ctx in ctx_list():
tvm_out = get_tvm_output(
model, [x, indices], target, ctx, out_np.shape)
tvm.testing.assert_allclose(out_np, tvm_out)


def test_gather_nd():
verify_gather_nd((2, 2), [[0,0],[1,1]], 'int32')
verify_gather_nd((3, 3, 3), [[0,1],[1,0]] , 'float32')
verify_gather_nd((4, 3, 5, 6), [[2, 1, 0, 0]], 'float32')


def test_onehot():
indices_shape = [10]
indices_array = np.random.randint(
Expand Down Expand Up @@ -2379,11 +2443,15 @@ def verify_topk(input_dims, K, axis=-1):
test_slice()
test_floor()
test_ceil()
test_round()
test_isinf()
test_isnan()
test_clip()
test_onehot()
test_matmul()
test_batch_matmul()
test_gather()
test_gather_nd()
test_lrn()
test_instance_norm()
test_upsample()
Expand Down