mirror of
https://github.com/ggerganov/llama.cpp.git
synced 2024-12-25 13:58:46 +01:00
141 lines
5.2 KiB
Python
Executable File
141 lines
5.2 KiB
Python
Executable File
#!/usr/bin/env python3
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import argparse
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import os
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import subprocess
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import sys
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import yaml
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CLI_ARGS_MAIN_PERPLEXITY = [
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"batch-size", "cfg-negative-prompt", "cfg-scale", "chunks", "color", "ctx-size", "escape",
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"export", "file", "frequency-penalty", "grammar", "grammar-file", "hellaswag",
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"hellaswag-tasks", "ignore-eos", "in-prefix", "in-prefix-bos", "in-suffix", "instruct",
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"interactive", "interactive-first", "keep", "logdir", "logit-bias", "lora", "lora-base",
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"low-vram", "main-gpu", "memory-f32", "mirostat", "mirostat-ent", "mirostat-lr", "mlock",
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"model", "multiline-input", "n-gpu-layers", "n-predict", "no-mmap", "no-mul-mat-q",
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"np-penalize-nl", "numa", "ppl-output-type", "ppl-stride", "presence-penalty", "prompt",
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"prompt-cache", "prompt-cache-all", "prompt-cache-ro", "random-prompt", "repeat-last-n",
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"repeat-penalty", "reverse-prompt", "rope-freq-base", "rope-freq-scale", "rope-scale", "seed",
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"simple-io", "tensor-split", "threads", "temp", "tfs", "top-k", "top-p", "typical",
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"verbose-prompt"
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]
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CLI_ARGS_LLAMA_BENCH = [
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"batch-size", "memory-f32", "low-vram", "model", "mul-mat-q", "n-gen", "n-gpu-layers",
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"n-prompt", "output", "repetitions", "tensor-split", "threads", "verbose"
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]
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CLI_ARGS_SERVER = [
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"alias", "batch-size", "ctx-size", "embedding", "host", "memory-f32", "lora", "lora-base",
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"low-vram", "main-gpu", "mlock", "model", "n-gpu-layers", "n-probs", "no-mmap", "no-mul-mat-q",
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"numa", "path", "port", "rope-freq-base", "timeout", "rope-freq-scale", "tensor-split",
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"threads", "verbose"
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]
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description = """Run llama.cpp binaries with presets from YAML file(s).
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To specify which binary should be run, specify the "binary" property (main, perplexity, llama-bench, and server are supported).
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To get a preset file template, run a llama.cpp binary with the "--logdir" CLI argument.
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Formatting considerations:
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- The YAML property names are the same as the CLI argument names of the corresponding binary.
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- Properties must use the long name of their corresponding llama.cpp CLI arguments.
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- Like the llama.cpp binaries the property names do not differentiate between hyphens and underscores.
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- Flags must be defined as "<PROPERTY_NAME>: true" to be effective.
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- To define the logit_bias property, the expected format is "<TOKEN_ID>: <BIAS>" in the "logit_bias" namespace.
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- To define multiple "reverse_prompt" properties simultaneously the expected format is a list of strings.
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- To define a tensor split, pass a list of floats.
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"""
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usage = "run-with-preset.py [-h] [yaml_files ...] [--<ARG_NAME> <ARG_VALUE> ...]"
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epilog = (" --<ARG_NAME> specify additional CLI ars to be passed to the binary (override all preset files). "
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"Unknown args will be ignored.")
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parser = argparse.ArgumentParser(
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description=description, usage=usage, epilog=epilog, formatter_class=argparse.RawTextHelpFormatter)
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parser.add_argument("-bin", "--binary", help="The binary to run.")
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parser.add_argument("yaml_files", nargs="*",
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help="Arbitrary number of YAML files from which to read preset values. "
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"If two files specify the same values the later one will be used.")
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known_args, unknown_args = parser.parse_known_args()
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if not known_args.yaml_files and not unknown_args:
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parser.print_help()
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sys.exit(0)
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props = dict()
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for yaml_file in known_args.yaml_files:
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with open(yaml_file, "r") as f:
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props.update(yaml.load(f, yaml.SafeLoader))
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props = {prop.replace("_", "-"): val for prop, val in props.items()}
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binary = props.pop("binary", "main")
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if known_args.binary:
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binary = known_args.binary
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if os.path.exists(f"./{binary}"):
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binary = f"./{binary}"
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if binary.lower().endswith("main") or binary.lower().endswith("perplexity"):
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cli_args = CLI_ARGS_MAIN_PERPLEXITY
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elif binary.lower().endswith("llama-bench"):
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cli_args = CLI_ARGS_LLAMA_BENCH
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elif binary.lower().endswith("server"):
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cli_args = CLI_ARGS_SERVER
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else:
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print(f"Unknown binary: {binary}")
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sys.exit(1)
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command_list = [binary]
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for cli_arg in cli_args:
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value = props.pop(cli_arg, None)
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if not value or value == -1:
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continue
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if cli_arg == "logit-bias":
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for token, bias in value.items():
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command_list.append("--logit-bias")
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command_list.append(f"{token}{bias:+}")
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continue
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if cli_arg == "reverse-prompt" and not isinstance(value, str):
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for rp in value:
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command_list.append("--reverse-prompt")
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command_list.append(str(rp))
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continue
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command_list.append(f"--{cli_arg}")
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if cli_arg == "tensor-split":
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command_list.append(",".join([str(v) for v in value]))
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continue
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value = str(value)
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if value != "True":
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command_list.append(str(value))
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num_unused = len(props)
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if num_unused > 10:
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print(f"The preset file contained a total of {num_unused} unused properties.")
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elif num_unused > 0:
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print("The preset file contained the following unused properties:")
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for prop, value in props.items():
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print(f" {prop}: {value}")
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command_list += unknown_args
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sp = subprocess.Popen(command_list)
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while sp.returncode is None:
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try:
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sp.wait()
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except KeyboardInterrupt:
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pass
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sys.exit(sp.returncode)
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