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WIP support for Nvidia Cosmos 7B and 14B text to world (video) models.
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42
comfy/text_encoders/cosmos.py
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42
comfy/text_encoders/cosmos.py
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from comfy import sd1_clip
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import comfy.text_encoders.t5
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import os
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from transformers import T5TokenizerFast
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class T5XXLModel(sd1_clip.SDClipModel):
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def __init__(self, device="cpu", layer="last", layer_idx=None, dtype=None, attention_mask=True, model_options={}):
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textmodel_json_config = os.path.join(os.path.dirname(os.path.realpath(__file__)), "t5_old_config_xxl.json")
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t5xxl_scaled_fp8 = model_options.get("t5xxl_scaled_fp8", None)
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if t5xxl_scaled_fp8 is not None:
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model_options = model_options.copy()
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model_options["scaled_fp8"] = t5xxl_scaled_fp8
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super().__init__(device=device, layer=layer, layer_idx=layer_idx, textmodel_json_config=textmodel_json_config, dtype=dtype, special_tokens={"end": 1, "pad": 0}, model_class=comfy.text_encoders.t5.T5, enable_attention_masks=attention_mask, return_attention_masks=attention_mask, zero_out_masked=attention_mask, model_options=model_options)
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class CosmosT5XXL(sd1_clip.SD1ClipModel):
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def __init__(self, device="cpu", dtype=None, model_options={}):
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super().__init__(device=device, dtype=dtype, name="t5xxl", clip_model=T5XXLModel, model_options=model_options)
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class T5XXLTokenizer(sd1_clip.SDTokenizer):
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def __init__(self, embedding_directory=None, tokenizer_data={}):
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tokenizer_path = os.path.join(os.path.dirname(os.path.realpath(__file__)), "t5_tokenizer")
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super().__init__(tokenizer_path, embedding_directory=embedding_directory, pad_with_end=False, embedding_size=1024, embedding_key='t5xxl', tokenizer_class=T5TokenizerFast, has_start_token=False, pad_to_max_length=False, max_length=99999999, min_length=512)
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class CosmosT5Tokenizer(sd1_clip.SD1Tokenizer):
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def __init__(self, embedding_directory=None, tokenizer_data={}):
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super().__init__(embedding_directory=embedding_directory, tokenizer_data=tokenizer_data, clip_name="t5xxl", tokenizer=T5XXLTokenizer)
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def te(dtype_t5=None, t5xxl_scaled_fp8=None):
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class CosmosTEModel_(CosmosT5XXL):
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def __init__(self, device="cpu", dtype=None, model_options={}):
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if t5xxl_scaled_fp8 is not None and "t5xxl_scaled_fp8" not in model_options:
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model_options = model_options.copy()
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model_options["t5xxl_scaled_fp8"] = t5xxl_scaled_fp8
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if dtype is None:
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dtype = dtype_t5
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super().__init__(device=device, dtype=dtype, model_options=model_options)
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return CosmosTEModel_
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comfy/text_encoders/t5_old_config_xxl.json
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comfy/text_encoders/t5_old_config_xxl.json
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{
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"d_ff": 65536,
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"d_kv": 128,
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"d_model": 1024,
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"decoder_start_token_id": 0,
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"dropout_rate": 0.1,
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"eos_token_id": 1,
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"dense_act_fn": "relu",
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"initializer_factor": 1.0,
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"is_encoder_decoder": true,
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"is_gated_act": false,
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"layer_norm_epsilon": 1e-06,
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"model_type": "t5",
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"num_decoder_layers": 24,
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"num_heads": 128,
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"num_layers": 24,
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"output_past": true,
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"pad_token_id": 0,
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"relative_attention_num_buckets": 32,
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"tie_word_embeddings": false,
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"vocab_size": 32128
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}
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