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multimodal : add BakLLava conversion support #3682

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Oct 19, 2023
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18 changes: 17 additions & 1 deletion examples/llava/llava-surgery.py
Original file line number Diff line number Diff line change
Expand Up @@ -16,13 +16,29 @@
mm_tensors = [k for k, v in checkpoint.items() if k.startswith("model.mm_projector")]

# store these tensors in a new dictionary and torch.save them
projector = {name: checkpoint[name] for name in mm_tensors}
projector = {name: checkpoint[name].float() for name in mm_tensors}
torch.save(projector, f"{args.model}/llava.projector")

# remove these tensors from the checkpoint and save it again
for name in mm_tensors:
del checkpoint[name]

# BakLLaVA models contain CLIP tensors in it
clip_tensors = [k for k, v in checkpoint.items() if k.startswith("model.vision_tower")]
if len(clip_tensors) > 0:
clip = {name.replace("vision_tower.vision_tower.", ""): checkpoint[name].float() for name in clip_tensors}
torch.save(clip, f"{args.model}/llava.clip")

# remove these tensors
for name in clip_tensors:
del checkpoint[name]

# added tokens should be removed to be able to convert Mistral models
if os.path.exists(f"{args.model}/added_tokens.json"):
with open(f"{args.model}/added_tokens.json", "w") as f:
f.write("{}\n")


torch.save(checkpoint, path)

print("Done!")
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