Update SuperMLP
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@@ -30,32 +30,37 @@ class TestSuperLinear(unittest.TestCase):
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print(model.super_run_type)
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self.assertTrue(model.bias)
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inputs = torch.rand(32, 10)
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inputs = torch.rand(20, 10)
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print("Input shape: {:}".format(inputs.shape))
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print("Weight shape: {:}".format(model._super_weight.shape))
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print("Bias shape: {:}".format(model._super_bias.shape))
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outputs = model(inputs)
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self.assertEqual(tuple(outputs.shape), (32, 36))
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self.assertEqual(tuple(outputs.shape), (20, 36))
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abstract_space = model.abstract_search_space
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abstract_space.clean_last()
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abstract_child = abstract_space.random()
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print("The abstract searc space:\n{:}".format(abstract_space))
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print("The abstract child program:\n{:}".format(abstract_child))
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model.set_super_run_type(super_core.SuperRunMode.Candidate)
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model.apply_candiate(abstract_child)
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model.apply_candidate(abstract_child)
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output_shape = (32, abstract_child["_out_features"].value)
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output_shape = (20, abstract_child["_out_features"].value)
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outputs = model(inputs)
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self.assertEqual(tuple(outputs.shape), output_shape)
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def test_super_mlp(self):
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hidden_features = spaces.Categorical(12, 24, 36)
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out_features = spaces.Categorical(12, 24, 36)
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out_features = spaces.Categorical(24, 36, 48)
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mlp = super_core.SuperMLP(10, hidden_features, out_features)
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print(mlp)
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self.assertTrue(mlp.fc1._out_features, mlp.fc2._in_features)
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inputs = torch.rand(4, 10)
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outputs = mlp(inputs)
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self.assertEqual(tuple(outputs.shape), (4, 48))
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abstract_space = mlp.abstract_search_space
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print("The abstract search space for SuperMLP is:\n{:}".format(abstract_space))
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self.assertEqual(
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@@ -67,10 +72,16 @@ class TestSuperLinear(unittest.TestCase):
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is abstract_space["fc2"]["_in_features"]
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)
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abstract_space.clean_last_sample()
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abstract_space.clean_last()
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abstract_child = abstract_space.random(reuse_last=True)
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print("The abstract child program is:\n{:}".format(abstract_child))
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self.assertEqual(
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abstract_child["fc1"]["_out_features"].value,
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abstract_child["fc2"]["_in_features"].value,
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)
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mlp.set_super_run_type(super_core.SuperRunMode.Candidate)
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mlp.apply_candidate(abstract_child)
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outputs = mlp(inputs)
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output_shape = (4, abstract_child["fc2"]["_out_features"].value)
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self.assertEqual(tuple(outputs.shape), output_shape)
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