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Vokturz
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Commit
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1917818
first version
Browse files- README.md +3 -3
- data/gpu_specs.csv +0 -0
- requirements.txt +5 -0
- src/utils.py +103 -0
README.md
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---
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title: Can It Run
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emoji:
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colorFrom: red
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colorTo: purple
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sdk: streamlit
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sdk_version: 1.26.0
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app_file: app.py
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pinned: false
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license: gpl-3.0
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---
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---
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title: Can It Run? LLM GPU check
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emoji: 🚀
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colorFrom: red
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colorTo: purple
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sdk: streamlit
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sdk_version: 1.26.0
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app_file: src/app.py
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pinned: false
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license: gpl-3.0
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---
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data/gpu_specs.csv
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The diff for this file is too large to render.
See raw diff
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requirements.txt
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accelerate @ git+https://github.com/huggingface/accelerate
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transformers @ git+https://github.com/huggingface/transformers
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huggingface_hub
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pandas
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plotly
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src/utils.py
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# using https://huggingface.co/spaces/hf-accelerate/model-memory-usage/blob/main/src/model_utils.py
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import torch
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from accelerate.commands.estimate import check_has_model, create_empty_model
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from urllib.parse import urlparse
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from accelerate.utils import calculate_maximum_sizes
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from huggingface_hub.utils import GatedRepoError, RepositoryNotFoundError
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import streamlit as st
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DTYPE_MODIFIER = {"float32": 1, "float16/bfloat16": 2, "int8": 4, "int4": 8}
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def translate_llama2(text):
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"Translates llama-2 to its hf counterpart"
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if not text.endswith("-hf"):
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return text + "-hf"
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return text
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def get_model(model_name: str, library: str, access_token: str):
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"Finds and grabs model from the Hub, and initializes on `meta`"
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if "meta-llama" in model_name:
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model_name = translate_llama2(model_name)
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if library == "auto":
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library = None
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model_name = extract_from_url(model_name)
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try:
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model = create_empty_model(model_name, library_name=library, trust_remote_code=True, access_token=access_token)
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except GatedRepoError:
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st.error(
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f"Model `{model_name}` is a gated model, please ensure to pass in your access token and try again if you have access. You can find your access token here : https://huggingface.co/settings/tokens. "
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)
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st.stop()
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except RepositoryNotFoundError:
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st.error(f"Model `{model_name}` was not found on the Hub, please try another model name.")
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st.stop()
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except ValueError:
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st.error(
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f"Model `{model_name}` does not have any library metadata on the Hub, please manually select a library_name to use (such as `transformers`)"
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)
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st.stop()
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except (RuntimeError, OSError) as e:
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library = check_has_model(e)
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if library != "unknown":
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st.error(
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f"Tried to load `{model_name}` with `{library}` but a possible model to load was not found inside the repo."
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)
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st.stop()
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st.error(
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f"Model `{model_name}` had an error, please open a discussion on the model's page with the error message and name: `{e}`"
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)
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st.stop()
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except ImportError:
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# hacky way to check if it works with `trust_remote_code=False`
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model = create_empty_model(
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model_name, library_name=library, trust_remote_code=False, access_token=access_token
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)
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except Exception as e:
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st.error(
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f"Model `{model_name}` had an error, please open a discussion on the model's page with the error message and name: `{e}`"
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)
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st.stop()
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return model
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def extract_from_url(name: str):
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"Checks if `name` is a URL, and if so converts it to a model name"
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is_url = False
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try:
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result = urlparse(name)
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is_url = all([result.scheme, result.netloc])
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except Exception:
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is_url = False
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# Pass through if not a URL
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if not is_url:
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return name
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else:
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path = result.path
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return path[1:]
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def calculate_memory(model: torch.nn.Module, options: list):
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"Calculates the memory usage for a model init on `meta` device"
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total_size, largest_layer = calculate_maximum_sizes(model)
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num_parameters = sum(p.numel() for p in model.parameters() if p.requires_grad)
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data = []
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for dtype in options:
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dtype_total_size = total_size
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dtype_largest_layer = largest_layer[0]
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modifier = DTYPE_MODIFIER[dtype]
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dtype_total_size /= modifier
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dtype_largest_layer /= modifier
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dtype_training_size = dtype_total_size * 4 / (1024**3)
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dtype_inference = dtype_total_size * 1.2 / (1024**3)
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dtype_total_size = dtype_total_size / (1024**3)
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data.append(
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{
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"dtype": dtype,
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"Total Size (GB)": dtype_total_size,
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"Inference (GB)" : dtype_inference,
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"Training using Adam (GB)": dtype_training_size,
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"Parameters (Billion)" : num_parameters / 1e9
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}
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)
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return data
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