add fast test for ldm
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@ -34,6 +34,7 @@ def get_timestep_embedding(timesteps, embedding_dim):
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emb = torch.nn.functional.pad(emb, (0, 1, 0, 0))
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return emb
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# unet_glide.py
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def timestep_embedding(timesteps, dim, max_period=10000):
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"""
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@ -198,7 +198,6 @@ class UNetGradTTSModel(ModelMixin, ConfigMixin):
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if not isinstance(spk, type(None)):
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s = self.spk_mlp(spk)
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t = self.time_pos_emb(timesteps, scale=self.pe_scale)
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t = self.mlp(t)
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@ -694,6 +694,21 @@ class PipelineTesterMixin(unittest.TestCase):
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expected_slice = torch.tensor([0.7295, 0.7358, 0.7256, 0.7435, 0.7095, 0.6884, 0.7325, 0.6921, 0.6458])
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assert (image_slice.flatten() - expected_slice).abs().max() < 1e-2
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@slow
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def test_ldm_text2img_fast(self):
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model_id = "fusing/latent-diffusion-text2im-large"
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ldm = LatentDiffusionPipeline.from_pretrained(model_id)
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prompt = "A painting of a squirrel eating a burger"
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generator = torch.manual_seed(0)
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image = ldm([prompt], generator=generator, num_inference_steps=20)
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image_slice = image[0, -1, -3:, -3:].cpu()
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assert image.shape == (1, 3, 256, 256)
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expected_slice = torch.rensor([0.3163, 0.8670, 0.6465, 0.1865, 0.6291, 0.5139, 0.2824, 0.3723, 0.4344])
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assert (image_slice.flatten() - expected_slice).abs().max() < 1e-2
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@slow
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def test_glide_text2img(self):
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model_id = "fusing/glide-base"
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