Spaces:
Sleeping
Sleeping
Hugo Rodrigues
commited on
Commit
·
ac9e33e
1
Parent(s):
33fb059
translate model facebook/seamless-m4t-v2-large
Browse files- .gitignore +22 -0
- Dockerfile +45 -0
- README.md +16 -0
- compose.yaml +54 -0
- main.py +65 -0
- packages.txt +1 -0
- requirements.txt +10 -0
.gitignore
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# Build Artifacts
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build/
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# Core Dumps
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core
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# Byte-Compiled Modules
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__pycache__/
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# Extension Modules
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*.so
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# Packaging Artifacts
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*.egg-info
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*.whl
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# IDEs and Tools
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.idea/
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.gdb_history
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.vscode/
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# Other
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.DS_Store
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Dockerfile
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FROM nvidia/cuda:12.1.0-cudnn8-devel-ubuntu20.04
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LABEL maintainer="Hugging Face"
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ARG DEBIAN_FRONTEND=noninteractive
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RUN apt update
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RUN apt install -y git libsndfile1-dev tesseract-ocr espeak-ng python3 python3-pip ffmpeg
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RUN python3 -m pip install --no-cache-dir --upgrade pip
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# RUN apt-get install -y git libsndfile1-dev tesseract-ocr espeak-ng ffmpeg
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# Prevents Python from writing pyc files.
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ENV PYTHONDONTWRITEBYTECODE=1
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# Open MP threads. It may need to change in production env.
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ENV OMP_NUM_THREADS=1
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# Keeps Python from buffering stdout and stderr to avoid situations where
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# the application crashes without emitting any logs due to buffering.
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ENV PYTHONUNBUFFERED=1
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ENV HF_HUB_CACHE="/hub"
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WORKDIR /app
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# Create a non-privileged user that the app will run under.
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# See https://docs.docker.com/go/dockerfile-user-best-practices/
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RUN useradd -m -u 1000 user
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# Download dependencies as a separate step to take advantage of Docker's caching.
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# Leverage a cache mount to /root/.cache/pip to speed up subsequent builds.
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# Leverage a bind mount to requirements.txt to avoid having to copy them into
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# into this layer.
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RUN --mount=type=cache,target=/root/.cache/pip \
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--mount=type=bind,source=requirements.txt,target=requirements.txt \
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python3 -m pip install -r requirements.txt
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# Switch to the non-privileged user to run the application.
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USER user
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# Copy the source code into the container.
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COPY . .
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# Expose the port that the application listens on.
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EXPOSE 8088
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# Run the application.
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CMD ["uvicorn", "main:app", "--host", "0.0.0.0", "--port", "7860"]
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README.md
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---
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Check out the configuration reference at https://huggingface.co/docs/hub/spaces-config-reference
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---
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Check out the configuration reference at https://huggingface.co/docs/hub/spaces-config-reference
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# Translate
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## Usage
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```
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conda activate hf
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```
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VS Code Python select interpreter hf
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## Composa
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```
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docker compose up --build
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```
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compose.yaml
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# Comments are provided throughout this file to help you get started.
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# If you need more help, visit the Docker compose reference guide at
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# https://docs.docker.com/go/compose-spec-reference/
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# Here the instructions define your application as a service called "server".
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# This service is built from the Dockerfile in the current directory.
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# You can add other services your application may depend on here, such as a
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# database or a cache. For examples, see the Awesome Compose repository:
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# https://github.com/docker/awesome-compose
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services:
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server:
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build:
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context: .
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ports:
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- 8089:7860
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volumes:
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# - ${PWD}:/app:rw
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- /Users/hugorodrigues/.cache/huggingface/hub:/hub:rw
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environment:
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- HF_HUB_CACHE=/hub
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# The commented out section below is an example of how to define a PostgreSQL
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# database that your application can use. `depends_on` tells Docker Compose to
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# start the database before your application. The `db-data` volume persists the
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# database data between container restarts. The `db-password` secret is used
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# to set the database password. You must create `db/password.txt` and add
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# a password of your choosing to it before running `docker compose up`.
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# depends_on:
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# db:
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# condition: service_healthy
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# db:
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# image: postgres
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# restart: always
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# user: postgres
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# secrets:
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# - db-password
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# volumes:
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# - db-data:/var/lib/postgresql/data
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# environment:
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# - POSTGRES_DB=example
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# - POSTGRES_PASSWORD_FILE=/run/secrets/db-password
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# expose:
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# - 5432
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# healthcheck:
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# test: [ "CMD", "pg_isready" ]
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# interval: 10s
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# timeout: 5s
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# retries: 5
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# volumes:
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# db-data:
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# secrets:
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# db-password:
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# file: db/password.txt
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main.py
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import time
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# from typing import Union
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# from pydantic import BaseModel
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from fastapi import FastAPI
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from fastapi.middleware.cors import CORSMiddleware
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# from fastapi.staticfiles import StaticFiles
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# from fastapi.responses import FileResponse
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import torch
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# from transformers import pipeline
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from transformers import SeamlessM4Tv2Model
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from transformers import AutoProcessor
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processor = AutoProcessor.from_pretrained("facebook/seamless-m4t-v2-large")
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model = SeamlessM4Tv2Model.from_pretrained("facebook/seamless-m4t-v2-large")
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device = "cuda:0" if torch.cuda.is_available() else "cpu"
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# torch_dtype = torch.float16 if torch.cuda.is_available() else torch.float32
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model.to(device)
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app = FastAPI(docs_url="/api/docs")
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app.add_middleware(
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CORSMiddleware,
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allow_origins=["*"],
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allow_methods=["*"],
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allow_headers=["*"],
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allow_credentials=True,
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)
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BATCH_SIZE = 8
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@app.get("/device")
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def getDevice():
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start_time = time.time()
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print("Time took to process the request and return response is {} sec".format(
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time.time() - start_time))
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return device
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@app.get("/translate")
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def transcribe(inputs, src_lang="eng", tgt_lang="por"):
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start_time = time.time()
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if inputs is None:
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raise "No audio file submitted! Please upload or record an audio file before submitting your request."
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text_inputs = processor(text=inputs,
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src_lang=src_lang, return_tensors="pt").to(device)
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output_tokens = model.generate(
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**text_inputs, tgt_lang=tgt_lang, generate_speech=False)
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translated_text_from_text = processor.decode(
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output_tokens[0].tolist()[0], skip_special_tokens=True)
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print("Time took to process the request and return response is {} sec".format(
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time.time() - start_time))
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return translated_text_from_text
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packages.txt
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ffmpeg
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requirements.txt
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fastapi
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pydantic
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typing
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transformers
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python-multipart
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sentencepiece
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protobuf
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torch
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uvicorn[standard]
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ffmpeg
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