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3 Commits
| Author | SHA1 | Date | |
|---|---|---|---|
| 3521f8648a | |||
| 515191b400 | |||
| 95dda4c4db |
@@ -137,6 +137,8 @@ system_prompt = "You are a helpful assistant."
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# or a path to a plain text file with one prompt per line (empty lines are ignored).
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# or a path to a plain text file with one prompt per line (empty lines are ignored).
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# For text files, "column" is ignored and "split" is optional; when given, it selects
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# For text files, "column" is ignored and "split" is optional; when given, it selects
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# a subset of the lines using slice notation (e.g. "[:400]").
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# a subset of the lines using slice notation (e.g. "[:400]").
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# "config" specifies a dataset's specific config/subset name (e.g. "english", "hindi").
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# Leave unset for datasets with a single configuration.
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# Dataset of prompts that tend to not result in refusals (used for calculating residual directions).
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# Dataset of prompts that tend to not result in refusals (used for calculating residual directions).
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[good_prompts]
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[good_prompts]
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@@ -54,6 +54,14 @@ class DatasetSpecification(BaseModel):
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description="Hugging Face commit hash of the dataset.",
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description="Hugging Face commit hash of the dataset.",
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)
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)
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config: str | None = Field(
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default=None,
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description=(
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"Dataset config/subset name. Each config can have its own split. "
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"Used to load a specific config of a dataset that has multiple configurations."
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),
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)
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split: str | None = Field(
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split: str | None = Field(
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default=None,
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default=None,
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description="Portion of the dataset to use. Required for datasets, optional for plain text files.",
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description="Portion of the dataset to use. Required for datasets, optional for plain text files.",
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+59
-9
@@ -39,13 +39,14 @@ import logging
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import math
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import math
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import os
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import os
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import random
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import random
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import re
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import time
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import time
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import warnings
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import warnings
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from dataclasses import asdict
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from dataclasses import asdict
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from importlib.metadata import version
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from importlib.metadata import version
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from os.path import commonprefix
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from os.path import commonprefix
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from pathlib import Path
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from pathlib import Path
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from typing import Any
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from typing import Any, cast
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import huggingface_hub
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import huggingface_hub
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import lm_eval
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import lm_eval
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@@ -65,6 +66,7 @@ from optuna.storages.journal import JournalFileBackend, JournalFileOpenLock
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from optuna.trial import FrozenTrial, TrialState, create_trial
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from optuna.trial import FrozenTrial, TrialState, create_trial
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from pydantic import ValidationError
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from pydantic import ValidationError
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from questionary import Choice, Style
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from questionary import Choice, Style
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from rich.markup import escape
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from rich.table import Table
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from rich.table import Table
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from rich.text import Text
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from rich.text import Text
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from rich.traceback import install
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from rich.traceback import install
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@@ -477,6 +479,48 @@ def run():
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print()
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print()
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print("Checking for common response prefix...")
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print("Checking for common response prefix...")
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prefix_check_prompts = good_prompts[:100] + bad_prompts[:100]
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prefix_check_prompts = good_prompts[:100] + bad_prompts[:100]
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# Detect if the model's chat template inserts a reasoning tag on its own
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# at the end of user's prompt (e.g. <think>) by using a dummy prompt.
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# If found, then we use the full closed CoT as the response prefix.
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# LiquidAI's LFM models do this (Lfm2ForCausalLM).
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# This cast is valid because str is the return type
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# for a single chat operation with tokenize=False.
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dummy_prompt = cast(
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str,
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model.tokenizer.apply_chat_template(
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[{"role": "user", "content": "This is a dummy prompt."}],
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add_generation_prompt=True,
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tokenize=False,
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),
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)
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cot_skip_applied = False
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for cot_initializer, closed_cot_block in settings.chain_of_thought_skips:
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# Match the tag and ignore any whitespace characters following it at the end
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# (if any), including spaces, tabs, and linebreaks. This is required for models
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# having whitespaces after the tags.
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pattern = rf"{re.escape(cot_initializer)}\s*$"
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match = re.search(pattern, dummy_prompt)
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if match:
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# We use only the closed CoT block here. Any whitespaces
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# will be handled by the 'Rechecking with prefix' logic below.
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settings.response_prefix = closed_cot_block
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print(
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f"* Closed Chain-of-Thought block: [bold]{escape(repr(settings.response_prefix))}[/]"
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)
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cot_skip_applied = True
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break
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# Fallback to inference for models like mistral-3 which are specifically
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# instructed to generate thinking tags using the system prompt in their
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# chat template, instead of inserting a prefix tag (e.g. <think>) at
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# the end of user prompt like the case above. We expect the model to
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# generate those tags.
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if settings.response_prefix is None:
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responses = model.get_responses_batched(prefix_check_prompts)
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responses = model.get_responses_batched(prefix_check_prompts)
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# Despite being located in os.path, commonprefix actually performs
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# Despite being located in os.path, commonprefix actually performs
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@@ -488,15 +532,25 @@ def run():
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settings.response_prefix = commonprefix(responses).rstrip(" ")
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settings.response_prefix = commonprefix(responses).rstrip(" ")
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if settings.response_prefix:
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if settings.response_prefix:
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print(f"* Prefix found: [bold]{settings.response_prefix!r}[/]")
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print(
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f"* Prefix found: [bold]{escape(repr(settings.response_prefix))}[/]"
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)
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for cot_initializer, closed_cot_block in settings.chain_of_thought_skips:
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for (
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cot_initializer,
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closed_cot_block,
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) in settings.chain_of_thought_skips:
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if settings.response_prefix.startswith(cot_initializer):
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if settings.response_prefix.startswith(cot_initializer):
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settings.response_prefix = closed_cot_block
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settings.response_prefix = closed_cot_block
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print(
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print(
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f"* Closed Chain-of-Thought block: [bold]{settings.response_prefix!r}[/]"
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f"* Closed Chain-of-Thought block: [bold]{escape(repr(settings.response_prefix))}[/]"
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)
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)
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cot_skip_applied = True
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break
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else:
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print("* None found")
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if cot_skip_applied:
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# When using a Chain-of-Thought skip, we need to check that the prefix
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# When using a Chain-of-Thought skip, we need to check that the prefix
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# is actually complete (e.g. not missing a trailing newline).
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# is actually complete (e.g. not missing a trailing newline).
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print("* Rechecking with prefix...")
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print("* Rechecking with prefix...")
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@@ -505,13 +559,9 @@ def run():
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if additional_prefix:
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if additional_prefix:
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settings.response_prefix += additional_prefix
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settings.response_prefix += additional_prefix
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print(
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print(
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f"* Extended prefix found: [bold]{settings.response_prefix!r}[/]"
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f"* Extended prefix found: [bold]{escape(repr(settings.response_prefix))}[/]"
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)
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)
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break
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else:
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print("* None found")
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evaluator = Evaluator(settings, model)
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evaluator = Evaluator(settings, model)
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if settings.evaluate_model is not None:
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if settings.evaluate_model is not None:
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@@ -208,6 +208,7 @@ def load_prompts(
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)
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)
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dataset = load_dataset(
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dataset = load_dataset(
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path,
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path,
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name=specification.config,
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revision=specification.commit,
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revision=specification.commit,
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split=split_str,
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split=split_str,
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)
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)
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@@ -225,6 +226,7 @@ def load_prompts(
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# Path should be a local directory.
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# Path should be a local directory.
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dataset = load_dataset(
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dataset = load_dataset(
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path,
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path,
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name=specification.config,
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split=split_str,
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split=split_str,
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# Don't require the number of examples (lines) per split to be pre-defined.
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# Don't require the number of examples (lines) per split to be pre-defined.
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verification_mode=VerificationMode.NO_CHECKS,
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verification_mode=VerificationMode.NO_CHECKS,
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@@ -1,7 +1,7 @@
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72f84af4ea36b82409c35e31b584361534305ef7c0d90fce20d0dc38a7efead8 *chat_template.jinja
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72f84af4ea36b82409c35e31b584361534305ef7c0d90fce20d0dc38a7efead8 *chat_template.jinja
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e4c5278b361c57621253c27a2c3db358e1580aec8a14be8e19d4420a224137cf *config.json
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e4c5278b361c57621253c27a2c3db358e1580aec8a14be8e19d4420a224137cf *config.json
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8dde85c000ae807be907421465826c7c63a39f6acf6d04a5a84efaf116ed4ef7 *generation_config.json
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8dde85c000ae807be907421465826c7c63a39f6acf6d04a5a84efaf116ed4ef7 *generation_config.json
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29aff97d5633dead9e1ccd29a2cc153b4b7431d22f63c8d6cf60bc6547681cc9 *model.safetensors
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20b5a820b38438202c64e4fc9807bd19e29678bebd678d29b2ee2d2f5bf71587 *model.safetensors
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20e7a6dcde0a6f60ea3b4fb08f6f7afa62532dda93a3111e28384ba5150575f9 *processor_config.json
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20e7a6dcde0a6f60ea3b4fb08f6f7afa62532dda93a3111e28384ba5150575f9 *processor_config.json
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c3a8d92e371b92a2cd6e678e31ebc27d0235e929a51fbf290f74742b341fa96f *tokenizer.json
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c3a8d92e371b92a2cd6e678e31ebc27d0235e929a51fbf290f74742b341fa96f *tokenizer.json
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60a8042e29b4b20e884e48375aa1b9ac0025547371d50e60f6d55e6a9675e868 *tokenizer_config.json
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60a8042e29b4b20e884e48375aa1b9ac0025547371d50e60f6d55e6a9675e868 *tokenizer_config.json
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@@ -1,7 +1,7 @@
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a4aee8afcf2e0711942cf848899be66016f8d14a889ff9ede07bca099c28f715 *chat_template.jinja
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a4aee8afcf2e0711942cf848899be66016f8d14a889ff9ede07bca099c28f715 *chat_template.jinja
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749b56d1b1e08081981169db6f2c44ab0be4fd6ebb452d15baafa5e09c21586a *config.json
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749b56d1b1e08081981169db6f2c44ab0be4fd6ebb452d15baafa5e09c21586a *config.json
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4625d1d64d41d1fa9dae7af4ba1e1d7e65a194073d4efa58acb266a916eaaa74 *generation_config.json
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4625d1d64d41d1fa9dae7af4ba1e1d7e65a194073d4efa58acb266a916eaaa74 *generation_config.json
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5fb94c65bcd9d736735a45e50c2b0bfafd3bb09a444c49b8cff2e131ed35797e *model.safetensors
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2b3e575ac065f11ae5d4a7c3740efccbed294b646f1645239191ee8393354e03 *model.safetensors
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01562eddd6f9e9ec4bc31656a3b7055284cafbf889acc6c4348dca431ae31f68 *processor_config.json
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01562eddd6f9e9ec4bc31656a3b7055284cafbf889acc6c4348dca431ae31f68 *processor_config.json
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87a7830d63fcf43bf241c3c5242e96e62dd3fdc29224ca26fed8ea333db72de4 *tokenizer.json
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87a7830d63fcf43bf241c3c5242e96e62dd3fdc29224ca26fed8ea333db72de4 *tokenizer.json
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2e31d1126e81bddf8d15c3f95260fb487b48c5131b24fcbb5bb9d2537e7afac0 *tokenizer_config.json
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2e31d1126e81bddf8d15c3f95260fb487b48c5131b24fcbb5bb9d2537e7afac0 *tokenizer_config.json
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@@ -1,7 +1,7 @@
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a92e1dd97cb1cb175c9b70c0828e146bea4371c2643319b661b777e89811972e *chat_template.jinja
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a92e1dd97cb1cb175c9b70c0828e146bea4371c2643319b661b777e89811972e *chat_template.jinja
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b75e911805663da79fb9fbbbcc917b8f1a285d2da54d95c2c63ea7c1ffe9a05a *config.json
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b75e911805663da79fb9fbbbcc917b8f1a285d2da54d95c2c63ea7c1ffe9a05a *config.json
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2cbd9df0e99570efcced23b8d777bdf1fc692efda54b21eb59ad56ade76c9db6 *generation_config.json
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2cbd9df0e99570efcced23b8d777bdf1fc692efda54b21eb59ad56ade76c9db6 *generation_config.json
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5f099b32807d0b84ed90765ca0ed53f8771da4738767bc1940486fec954570cf *model.safetensors
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6061519a9595326df41abcdd093892463793d4d026d6fd23548f1792f622a252 *model.safetensors
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0c29f9491e769aabbc389ad5912127cf6d9d5fceda2db8767f73d48131348c81 *processor_config.json
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0c29f9491e769aabbc389ad5912127cf6d9d5fceda2db8767f73d48131348c81 *processor_config.json
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87a7830d63fcf43bf241c3c5242e96e62dd3fdc29224ca26fed8ea333db72de4 *tokenizer.json
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87a7830d63fcf43bf241c3c5242e96e62dd3fdc29224ca26fed8ea333db72de4 *tokenizer.json
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4796e48d790a26d65f167bec8fc742beaa71f79f9468a6cd8b3ffa97f6e2a198 *tokenizer_config.json
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4796e48d790a26d65f167bec8fc742beaa71f79f9468a6cd8b3ffa97f6e2a198 *tokenizer_config.json
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