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4 changes: 3 additions & 1 deletion src/diffusers/models/transformer_2d.py
Original file line number Diff line number Diff line change
Expand Up @@ -339,6 +339,7 @@ def forward(
elif self.is_input_vectorized:
hidden_states = self.latent_image_embedding(hidden_states)
elif self.is_input_patches:
height, width = hidden_states.shape[-2] // self.patch_size, hidden_states.shape[-1] // self.patch_size
hidden_states = self.pos_embed(hidden_states)

if self.adaln_single is not None:
Expand Down Expand Up @@ -425,7 +426,8 @@ def forward(
hidden_states = hidden_states.squeeze(1)

# unpatchify
height = width = int(hidden_states.shape[1] ** 0.5)
if self.adaln_single is None:
height = width = int(hidden_states.shape[1] ** 0.5)
hidden_states = hidden_states.reshape(
shape=(-1, height, width, self.patch_size, self.patch_size, self.out_channels)
)
Expand Down
18 changes: 17 additions & 1 deletion tests/pipelines/pixart/test_pixart.py
Original file line number Diff line number Diff line change
Expand Up @@ -174,13 +174,29 @@ def test_inference(self):
inputs = self.get_dummy_inputs(device)
image = pipe(**inputs).images
image_slice = image[0, -3:, -3:, -1]
print(torch.from_numpy(image_slice.flatten()))

self.assertEqual(image.shape, (1, 8, 8, 3))
expected_slice = np.array([0.5303, 0.2658, 0.7979, 0.1182, 0.3304, 0.4608, 0.5195, 0.4261, 0.4675])
max_diff = np.abs(image_slice.flatten() - expected_slice).max()
self.assertLessEqual(max_diff, 1e-3)

def test_inference_non_square_images(self):
device = "cpu"

components = self.get_dummy_components()
pipe = self.pipeline_class(**components)
pipe.to(device)
pipe.set_progress_bar_config(disable=None)

inputs = self.get_dummy_inputs(device)
image = pipe(**inputs, height=32, width=48).images
image_slice = image[0, -3:, -3:, -1]

self.assertEqual(image.shape, (1, 32, 48, 3))
expected_slice = np.array([0.3859, 0.2987, 0.2333, 0.5243, 0.6721, 0.4436, 0.5292, 0.5373, 0.4416])
max_diff = np.abs(image_slice.flatten() - expected_slice).max()
self.assertLessEqual(max_diff, 1e-3)

def test_inference_with_embeddings_and_multiple_images(self):
components = self.get_dummy_components()
pipe = self.pipeline_class(**components)
Expand Down