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https://github.com/openvinotoolkit/stable-diffusion-webui.git
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Add hypernetwork support to split cross attention v1
* Add hypernetwork support to split_cross_attention_forward_v1 * Fix device check in esrgan_model.py to use devices.device_esrgan instead of shared.device
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@ -111,7 +111,7 @@ class UpscalerESRGAN(Upscaler):
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print("Unable to load %s from %s" % (self.model_path, filename))
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return None
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pretrained_net = torch.load(filename, map_location='cpu' if shared.device.type == 'mps' else None)
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pretrained_net = torch.load(filename, map_location='cpu' if devices.device_esrgan.type == 'mps' else None)
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crt_model = arch.RRDBNet(3, 3, 64, 23, gc=32)
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pretrained_net = fix_model_layers(crt_model, pretrained_net)
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@ -12,13 +12,22 @@ from modules import shared
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def split_cross_attention_forward_v1(self, x, context=None, mask=None):
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h = self.heads
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q = self.to_q(x)
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q_in = self.to_q(x)
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context = default(context, x)
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k = self.to_k(context)
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v = self.to_v(context)
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hypernetwork = shared.selected_hypernetwork()
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hypernetwork_layers = (hypernetwork.layers if hypernetwork is not None else {}).get(context.shape[2], None)
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if hypernetwork_layers is not None:
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k_in = self.to_k(hypernetwork_layers[0](context))
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v_in = self.to_v(hypernetwork_layers[1](context))
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else:
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k_in = self.to_k(context)
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v_in = self.to_v(context)
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del context, x
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q, k, v = map(lambda t: rearrange(t, 'b n (h d) -> (b h) n d', h=h), (q, k, v))
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q, k, v = map(lambda t: rearrange(t, 'b n (h d) -> (b h) n d', h=h), (q_in, k_in, v_in))
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del q_in, k_in, v_in
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r1 = torch.zeros(q.shape[0], q.shape[1], v.shape[2], device=q.device)
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for i in range(0, q.shape[0], 2):
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@ -31,6 +40,7 @@ def split_cross_attention_forward_v1(self, x, context=None, mask=None):
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r1[i:end] = einsum('b i j, b j d -> b i d', s2, v[i:end])
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del s2
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del q, k, v
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r2 = rearrange(r1, '(b h) n d -> b n (h d)', h=h)
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del r1
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