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https://github.com/comfyanonymous/ComfyUI.git
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@ -127,6 +127,8 @@
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- Do not add unnecessary `try`/`except` blocks. Use them for optional dependency,
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platform, or backend capability detection only when the program has a useful
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fallback. Prefer specific exception types when changing new code.
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- If a library version is pinned in `requirements.txt`, do not add code to
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ComfyUI to handle older versions of that library.
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- Remove any workarounds for PyTorch versions that ComfyUI no longer officially
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supports. Deprecated workarounds include catching an exception and rerunning
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the same op with the input cast to float. If a workaround does not have a
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@ -830,6 +830,14 @@ class MiniTrainDIT(nn.Module):
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**kwargs,
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):
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orig_shape = list(x.shape)
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ref_latents = kwargs.get('ref_latents', None)
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if ref_latents is not None:
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for ref in ref_latents:
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if ref.ndim == 4:
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ref = ref.unsqueeze(2)
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x = torch.cat([x, ref.to(dtype=x.dtype, device=x.device)], dim=2)
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x = comfy.ldm.common_dit.pad_to_patch_size(x, (self.patch_temporal, self.patch_spatial, self.patch_spatial))
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x_B_C_T_H_W = x
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timesteps_B_T = timesteps
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@ -1445,6 +1445,7 @@ class CosmosPredict2(BaseModel):
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class Anima(BaseModel):
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def __init__(self, model_config, model_type=ModelType.FLOW, device=None):
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super().__init__(model_config, model_type, device=device, unet_model=comfy.ldm.anima.model.Anima)
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self.memory_usage_factor_conds = ("ref_latents",)
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def extra_conds(self, **kwargs):
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out = super().extra_conds(**kwargs)
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@ -1465,6 +1466,20 @@ class Anima(BaseModel):
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out['t5xxl_weights'] = comfy.conds.CONDRegular(t5xxl_weights)
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out['c_crossattn'] = comfy.conds.CONDRegular(cross_attn)
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ref_latents = kwargs.get("reference_latents", None)
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if ref_latents is not None:
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latents = []
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for lat in ref_latents:
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latents.append(self.process_latent_in(lat))
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out['ref_latents'] = comfy.conds.CONDList(latents)
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return out
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def extra_conds_shapes(self, **kwargs):
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out = {}
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ref_latents = kwargs.get("reference_latents", None)
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if ref_latents is not None:
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out['ref_latents'] = [1, 16, sum(math.prod(lat.size()[2:]) for lat in ref_latents)]
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return out
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class Lumina2(BaseModel):
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150
comfy_extras/nodes_text_overlay.py
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150
comfy_extras/nodes_text_overlay.py
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@ -0,0 +1,150 @@
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import numpy as np
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import torch
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from PIL import Image as PILImage, ImageColor, ImageDraw, ImageFont
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from typing_extensions import override
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from comfy_api.latest import ComfyExtension, IO
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class TextOverlay(IO.ComfyNode):
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@classmethod
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def define_schema(cls):
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return IO.Schema(
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node_id="TextOverlay",
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display_name="Draw Text Overlay",
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category="text",
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description="Draw text overlay on an image or batch of images.",
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search_aliases=["text", "label", "caption", "subtitle", "watermark", "title", "addlabel", "overlay"],
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inputs=[
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IO.Image.Input("images"),
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IO.String.Input("text", multiline=True, default=""),
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IO.Float.Input("font_size", default=5.0, min=0.5, max=50.0, step=0.5, tooltip="Font size as a percentage of the image height."),
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IO.Color.Input("color", default="#ffffff", tooltip="Color of the text."),
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IO.Combo.Input("position", options=["top", "bottom"], default="top"),
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IO.Combo.Input("align", options=["left", "center", "right"], default="left"),
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IO.Boolean.Input("outline", default=True, tooltip="Draw a black outline around the text."),
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],
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outputs=[IO.Image.Output(display_name="images")],
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)
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@classmethod
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def execute(cls, images, text, font_size, color, position, align, outline) -> IO.NodeOutput:
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if text.strip() == "":
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return IO.NodeOutput(images)
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text = text.replace("\\n", "\n").replace("\\t", "\t")
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text_rgba = cls.parse_color_to_rgba(color)
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outline_rgba = (0, 0, 0, 255) if outline else (0, 0, 0, 0)
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# Render the overlay once and composite it across all frames in the batch
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height = images.shape[1]
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width = images.shape[2]
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overlay_rgb, overlay_alpha = cls.render_overlay_text(width, height, text, position, align, font_size, text_rgba, outline_rgba)
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overlay_rgb = overlay_rgb.to(device=images.device, dtype=images.dtype)
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overlay_alpha = overlay_alpha.to(device=images.device, dtype=images.dtype)
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result = images * (1.0 - overlay_alpha) + overlay_rgb * overlay_alpha
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return IO.NodeOutput(result)
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@staticmethod
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def parse_color_to_rgba(color_string):
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parsed = ImageColor.getrgb(color_string)
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if len(parsed) == 3:
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return (*parsed, 255)
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return parsed
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@classmethod
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def render_overlay_text(cls, width, height, text, position, align, font_size, text_rgba, outline_rgba):
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line_spacing = 1.2
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margin_percent = 1.0
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min_font_percent = 2.0
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min_font_pixels = 10
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outline_thickness_factor = 0.04
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# Draw onto a transparent layer so the result can be alpha-composited over any frame.
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layer = PILImage.new("RGBA", (width, height), (0, 0, 0, 0))
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draw = ImageDraw.Draw(layer)
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margin = int(round(margin_percent / 100.0 * min(width, height)))
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max_width = max(1, width - 2 * margin)
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max_height = max(1, height - 2 * margin)
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# Font scales with resolution, then shrinks to fit the height.
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size = max(1, int(round(font_size / 100.0 * height)))
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floor = min(size, max(min_font_pixels, int(round(min_font_percent / 100.0 * height))))
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while True:
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font = ImageFont.load_default(size=size)
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stroke = max(1, int(round(size * outline_thickness_factor))) if outline_rgba[3] > 0 else 0
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block = "\n".join(cls.wrap_text(text, font, max_width))
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# convert line spacing to pixel spacing
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single = draw.textbbox((0, 0), "Ay", font=font, stroke_width=stroke)
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double = draw.multiline_textbbox((0, 0), "Ay\nAy", font=font, spacing=0, stroke_width=stroke)
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natural_advance = (double[3] - double[1]) - (single[3] - single[1])
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pixel_spacing = int(round(size * line_spacing - natural_advance))
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box = draw.multiline_textbbox((0, 0), block, font=font, spacing=pixel_spacing, stroke_width=stroke)
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block_height = box[3] - box[1]
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if block_height <= max_height or size <= floor:
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break
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size = max(floor, int(size * 0.9))
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anchor_h, x = {"left": ("l", margin), "center": ("m", width / 2), "right": ("r", width - margin)}[align]
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# Offset y so the rendered text sits flush against the margin
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if position == "bottom":
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y = height - margin - box[3]
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else:
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y = margin - box[1]
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draw.multiline_text((x, y), block, font=font, fill=text_rgba, anchor=anchor_h + "a",
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align=align, spacing=pixel_spacing, stroke_width=stroke, stroke_fill=outline_rgba)
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overlay = np.array(layer).astype(np.float32) / 255.0
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overlay_rgb = torch.from_numpy(overlay[:, :, :3])
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overlay_alpha = torch.from_numpy(overlay[:, :, 3:4])
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return overlay_rgb, overlay_alpha
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@staticmethod
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def wrap_text(text, font, max_width):
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lines = []
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for raw_line in text.split("\n"):
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words = raw_line.split()
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if not words:
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lines.append("")
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continue
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current = ""
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# Break the line into words and split words that are too long
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for word in words:
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while font.getlength(word) > max_width and len(word) > 1:
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cut = 1
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while cut < len(word) and font.getlength(word[:cut + 1]) <= max_width:
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cut += 1
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if current:
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lines.append(current)
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current = ""
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lines.append(word[:cut])
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word = word[cut:]
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candidate = word if not current else current + " " + word
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if not current or font.getlength(candidate) <= max_width:
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current = candidate
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else:
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lines.append(current)
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current = word
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if current:
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lines.append(current)
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return lines
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class TextOverlayExtension(ComfyExtension):
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@override
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async def get_node_list(self) -> list[type[IO.ComfyNode]]:
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return [TextOverlay]
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async def comfy_entrypoint() -> TextOverlayExtension:
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return TextOverlayExtension()
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