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chore(deps): bump transformers from 4.30.2 to 4.36.0 #1301

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merged 1 commit into from
Feb 7, 2024

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@dependabot dependabot bot commented on behalf of github Dec 20, 2023

Bumps transformers from 4.30.2 to 4.36.0.

Release notes

Sourced from transformers's releases.

v4.36: Mixtral, Llava/BakLlava, SeamlessM4T v2, AMD ROCm, F.sdpa wide-spread support

New model additions

Mixtral

Mixtral is the new open-source model from Mistral AI announced by the blogpost Mixtral of Experts. The model has been proven to have comparable capabilities to Chat-GPT according to the benchmark results shared on the release blogpost.

The architecture is a sparse Mixture of Experts with Top-2 routing strategy, similar as NllbMoe architecture in transformers. You can use it through AutoModelForCausalLM interface:

>>> import torch
>>> from transformers import AutoModelForCausalLM, AutoTokenizer
>>> model = AutoModelForCausalLM.from_pretrained("mistralai/Mixtral-8x7B", torch_dtype=torch.float16, device_map="auto")
>>> tokenizer = AutoTokenizer.from_pretrained("mistralai/Mistral-8x7B")
>>> prompt = "My favourite condiment is"
>>> model_inputs = tokenizer([prompt], return_tensors="pt").to(device)
>>> model.to(device)
>>> generated_ids = model.generate(**model_inputs, max_new_tokens=100, do_sample=True)
>>> tokenizer.batch_decode(generated_ids)[0]

The model is compatible with existing optimisation tools such Flash Attention 2, bitsandbytes and PEFT library. The checkpoints are release under mistralai organisation on the Hugging Face Hub.

Llava / BakLlava

Llava is an open-source chatbot trained by fine-tuning LlamA/Vicuna on GPT-generated multimodal instruction-following data. It is an auto-regressive language model, based on the transformer architecture. In other words, it is an multi-modal version of LLMs fine-tuned for chat / instructions.

The Llava model was proposed in Improved Baselines with Visual Instruction Tuning by Haotian Liu, Chunyuan Li, Yuheng Li and Yong Jae Lee.

The integration also includes BakLlava which is a Llava model trained with Mistral backbone.

The mode is compatible with "image-to-text" pipeline:

from transformers import pipeline
from PIL import Image    
import requests
model_id = "llava-hf/llava-1.5-7b-hf"
</tr></table>

... (truncated)

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@dependabot dependabot bot requested a review from a team as a code owner December 20, 2023 21:12
@dependabot dependabot bot added the dependencies Pull requests that update a dependency file label Dec 20, 2023
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codecov bot commented Dec 20, 2023

Codecov Report

All modified and coverable lines are covered by tests ✅

Comparison is base (3e03f83) 57.53% compared to head (39009dd) 57.53%.
Report is 2 commits behind head on main.

Additional details and impacted files
@@           Coverage Diff           @@
##             main    #1301   +/-   ##
=======================================
  Coverage   57.53%   57.53%           
=======================================
  Files          79       79           
  Lines        7793     7793           
=======================================
  Hits         4484     4484           
  Misses       3309     3309           

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@raphael0202
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@dependabot rebase

Bumps [transformers](https://github.com/huggingface/transformers) from 4.30.2 to 4.36.0.
- [Release notes](https://github.com/huggingface/transformers/releases)
- [Commits](huggingface/transformers@v4.30.2...v4.36.0)

---
updated-dependencies:
- dependency-name: transformers
  dependency-type: direct:production
...

Signed-off-by: dependabot[bot] <support@github.com>
@dependabot dependabot bot force-pushed the dependabot/pip/transformers-4.36.0 branch from 44662b3 to 39009dd Compare February 7, 2024 10:21
@raphael0202 raphael0202 merged commit e36eb3b into main Feb 7, 2024
9 of 11 checks passed
@raphael0202 raphael0202 deleted the dependabot/pip/transformers-4.36.0 branch February 7, 2024 10:29
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