globals.py 1.84 KB
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import torch
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import os
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from loguru import logger
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from typing import Dict, Optional

from text_generation_server.utils.log import log_master
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PREFIX_CACHING = os.getenv("USE_PREFIX_CACHING", "0").lower() in {"1", "true"}
log_master(logger.info, f"Using prefix caching = {PREFIX_CACHING}")
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ATTENTION = os.getenv("ATTENTION", "flashinfer" if PREFIX_CACHING else "paged")
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_expected = {"paged", "flashdecoding", "flashinfer"}
assert (
    ATTENTION in _expected
), f"Attention is not valid {ATTENTION}, expected {_expected}"
log_master(logger.info, f"Using Attention = {ATTENTION}")
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if PREFIX_CACHING and ATTENTION != "flashinfer":
    raise RuntimeError("Prefix caching is only supported with flashinfer")

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MEM_POOL = torch.cuda.graph_pool_handle() if torch.cuda.is_available() else None
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# This is overridden by the cli
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BLOCK_SIZE: int
if ATTENTION == "flashdecoding":
    BLOCK_SIZE = 256
elif ATTENTION == "flashinfer":
    BLOCK_SIZE = 1
else:
    BLOCK_SIZE = 16
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cuda_graphs = os.getenv("CUDA_GRAPHS")
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if cuda_graphs is not None:
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    try:
        cuda_graphs = [int(item) for item in cuda_graphs.split(",")]
    except Exception as e:
        raise RuntimeError(
            f"Could not parse cuda graphs {cuda_graphs}, expected comma separated list for batch sizes to run on: {e}"
        )
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else:
    cuda_graphs = None
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# sorting the cuda graphs in descending order helps reduce the
# memory impact and results in less memory usage
if cuda_graphs is not None:
    cuda_graphs.sort(reverse=True)

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CUDA_GRAPHS = cuda_graphs
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# NOTE: eventually we should move this into the router and pass back the
# index in all cases.
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ADAPTER_TO_INDEX: Optional[Dict[str, int]] = None
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def set_adapter_to_index(adapter_to_index: Dict[str, int]):
    global ADAPTER_TO_INDEX
    ADAPTER_TO_INDEX = adapter_to_index
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def get_adapter_to_index():
    global ADAPTER_TO_INDEX
    return ADAPTER_TO_INDEX