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| import torch | |
| import comfy.model_management | |
| import comfy.sample | |
| import comfy.samplers | |
| import comfy.utils | |
| class PerpNeg: | |
| def INPUT_TYPES(s): | |
| return {"required": {"model": ("MODEL", ), | |
| "empty_conditioning": ("CONDITIONING", ), | |
| "neg_scale": ("FLOAT", {"default": 1.0, "min": 0.0, "max": 100.0}), | |
| }} | |
| RETURN_TYPES = ("MODEL",) | |
| FUNCTION = "patch" | |
| CATEGORY = "_for_testing" | |
| def patch(self, model, empty_conditioning, neg_scale): | |
| m = model.clone() | |
| nocond = comfy.sample.convert_cond(empty_conditioning) | |
| def cfg_function(args): | |
| model = args["model"] | |
| noise_pred_pos = args["cond_denoised"] | |
| noise_pred_neg = args["uncond_denoised"] | |
| cond_scale = args["cond_scale"] | |
| x = args["input"] | |
| sigma = args["sigma"] | |
| model_options = args["model_options"] | |
| nocond_processed = comfy.samplers.encode_model_conds(model.extra_conds, nocond, x, x.device, "negative") | |
| (noise_pred_nocond, _) = comfy.samplers.calc_cond_uncond_batch(model, nocond_processed, None, x, sigma, model_options) | |
| pos = noise_pred_pos - noise_pred_nocond | |
| neg = noise_pred_neg - noise_pred_nocond | |
| perp = ((torch.mul(pos, neg).sum())/(torch.norm(neg)**2)) * neg | |
| perp_neg = perp * neg_scale | |
| cfg_result = noise_pred_nocond + cond_scale*(pos - perp_neg) | |
| cfg_result = x - cfg_result | |
| return cfg_result | |
| m.set_model_sampler_cfg_function(cfg_function) | |
| return (m, ) | |
| NODE_CLASS_MAPPINGS = { | |
| "PerpNeg": PerpNeg, | |
| } | |
| NODE_DISPLAY_NAME_MAPPINGS = { | |
| "PerpNeg": "Perp-Neg", | |
| } | |