Add Glaive conversation format support (#1365)
Browse files* Add Glaive conversation format support
* fix black formatting errors
* Fix black and pylint formatting errors
* only set role_key_tool if provided in the dataset constructor
* Update src/axolotl/prompt_strategies/sharegpt.py
Co-authored-by: Wing Lian <[email protected]>
* sharegpt test
* tokenizer test
* fix formatting
---------
Co-authored-by: Wing Lian <[email protected]>
src/axolotl/prompt_strategies/sharegpt.py
CHANGED
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@@ -1,10 +1,15 @@
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"""Module containing the SimpleShareGPTPromptTokenizingStrategy class"""
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from typing import Any, Dict, Optional
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from fastchat.conversation import Conversation, SeparatorStyle, register_conv_template
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from axolotl.prompt_tokenizers import ShareGPTPromptTokenizingStrategy
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from axolotl.prompters import ShareGPTPrompterV2
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def register_chatml_template(system_message=None):
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@@ -19,6 +24,16 @@ def register_chatml_template(system_message=None):
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sep="<|im_end|>",
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)
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)
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def load(tokenizer, cfg, ds_cfg: Optional[Dict[str, Any]] = None):
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@@ -77,6 +92,20 @@ def load_guanaco(tokenizer, cfg):
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)
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class SimpleShareGPTPromptTokenizingStrategy(ShareGPTPromptTokenizingStrategy):
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"""
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basic sharegpt strategy to grab conversations from the sample row
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@@ -158,3 +187,15 @@ class UltrachatShareGPTPromptTokenizingStrategy(SimpleShareGPTPromptTokenizingSt
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{"from": role_map[t["role"]], "value": t["content"]} for t in conversations
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]
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return turns
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"""Module containing the SimpleShareGPTPromptTokenizingStrategy class"""
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+
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from typing import Any, Dict, Optional
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from fastchat.conversation import Conversation, SeparatorStyle, register_conv_template
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from axolotl.prompt_tokenizers import ShareGPTPromptTokenizingStrategy
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from axolotl.prompters import ShareGPTPrompterV2
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from axolotl.utils.tokenization import (
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chatml_to_conversation,
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merge_consecutive_messages,
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)
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def register_chatml_template(system_message=None):
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sep="<|im_end|>",
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)
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)
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register_conv_template(
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Conversation(
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name="chatml_glaive",
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system_template="<|im_start|>system\n{system_message}",
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system_message=system_message,
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roles=["<|im_start|>user", "<|im_start|>assistant", "<|im_start|>tool"],
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sep_style=SeparatorStyle.CHATML,
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sep="<|im_end|>",
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)
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)
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def load(tokenizer, cfg, ds_cfg: Optional[Dict[str, Any]] = None):
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)
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def load_glaive(tokenizer, cfg, ds_cfg: Optional[Dict[str, Any]] = None):
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conversation = (
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ds_cfg["conversation"]
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if ds_cfg and "conversation" in ds_cfg
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else "chatml_glaive"
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)
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return GlaiveShareGPTPromptTokenizingStrategy(
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ShareGPTPrompterV2(conversation=conversation),
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tokenizer,
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cfg.train_on_inputs,
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cfg.sequence_len,
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)
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class SimpleShareGPTPromptTokenizingStrategy(ShareGPTPromptTokenizingStrategy):
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"""
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basic sharegpt strategy to grab conversations from the sample row
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{"from": role_map[t["role"]], "value": t["content"]} for t in conversations
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]
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return turns
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+
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class GlaiveShareGPTPromptTokenizingStrategy(SimpleShareGPTPromptTokenizingStrategy):
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"""
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sharegpt strategy that remaps glaive data to sharegpt format
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"""
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def get_conversation_thread(self, prompt):
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conversation = chatml_to_conversation(prompt)
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conversation = merge_consecutive_messages(conversation)
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return conversation
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src/axolotl/prompt_tokenizers.py
CHANGED
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@@ -360,11 +360,19 @@ class ShareGPTPromptTokenizingStrategy(PromptTokenizingStrategy):
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LOG.warning(f"expected tuple, got {part}")
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continue
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-
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role, content = part
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# Uses "in" because role contains extra characters
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-
if
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role = (
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role.replace(role_remap[0]["from"], role_remap[0]["to"])
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if role_remap
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@@ -384,7 +392,7 @@ class ShareGPTPromptTokenizingStrategy(PromptTokenizingStrategy):
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else:
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# everything from this is masked out from the labels
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labels = [IGNORE_TOKEN_ID] * len(res["input_ids"])
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-
elif
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role = (
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role.replace(role_remap[1]["from"], role_remap[1]["to"])
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if role_remap
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@@ -426,6 +434,8 @@ class ShareGPTPromptTokenizingStrategy(PromptTokenizingStrategy):
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else:
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# everything from this is masked out from the labels
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labels = [IGNORE_TOKEN_ID] * len(res["input_ids"])
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else:
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LOG.warning(f"unhandled role: {role}")
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continue
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LOG.warning(f"expected tuple, got {part}")
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continue
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tool_role_label = None
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if len(conversation.roles) == 3:
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(
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user_role_label,
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assistant_role_label,
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tool_role_label,
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) = conversation.roles
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else:
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user_role_label, assistant_role_label = conversation.roles
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role, content = part
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# Uses "in" because role contains extra characters
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if user_role_label in role:
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role = (
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role.replace(role_remap[0]["from"], role_remap[0]["to"])
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if role_remap
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else:
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# everything from this is masked out from the labels
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labels = [IGNORE_TOKEN_ID] * len(res["input_ids"])
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elif assistant_role_label in role:
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role = (
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role.replace(role_remap[1]["from"], role_remap[1]["to"])
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if role_remap
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else:
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# everything from this is masked out from the labels
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labels = [IGNORE_TOKEN_ID] * len(res["input_ids"])
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elif tool_role_label and tool_role_label in role:
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labels = [IGNORE_TOKEN_ID] * len(res["input_ids"])
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else:
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LOG.warning(f"unhandled role: {role}")
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continue
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src/axolotl/prompters.py
CHANGED
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@@ -267,6 +267,8 @@ class ShareGPTPrompter(Prompter): # pylint: disable=too-few-public-methods
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role_key_human = "human"
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role_key_model = "gpt"
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def __init__(
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self,
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@@ -274,6 +276,7 @@ class ShareGPTPrompter(Prompter): # pylint: disable=too-few-public-methods
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conversation: Optional[Union[str, Conversation]] = None,
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role_key_human: Optional[str] = None,
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role_key_model: Optional[str] = None,
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):
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if conversation:
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if isinstance(conversation, Conversation):
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@@ -286,6 +289,8 @@ class ShareGPTPrompter(Prompter): # pylint: disable=too-few-public-methods
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self.role_key_human = role_key_human
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if role_key_model:
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self.role_key_model = role_key_model
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def _build_result(self, source):
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if len(source) < 2:
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@@ -303,6 +308,8 @@ class ShareGPTPrompter(Prompter): # pylint: disable=too-few-public-methods
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source.pop(0)
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roles = {self.role_key_human: conv.roles[0], self.role_key_model: conv.roles[1]}
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try:
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# Apply prompt templates
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role_key_human = "human"
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role_key_model = "gpt"
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# Optional, only used for tool usage datasets.
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role_key_tool = None
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def __init__(
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self,
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conversation: Optional[Union[str, Conversation]] = None,
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role_key_human: Optional[str] = None,
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role_key_model: Optional[str] = None,
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role_key_tool: Optional[str] = None,
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):
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if conversation:
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if isinstance(conversation, Conversation):
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self.role_key_human = role_key_human
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if role_key_model:
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self.role_key_model = role_key_model
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if role_key_tool:
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self.role_key_tool = role_key_tool
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def _build_result(self, source):
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if len(source) < 2:
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source.pop(0)
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roles = {self.role_key_human: conv.roles[0], self.role_key_model: conv.roles[1]}
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if self.role_key_tool:
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roles[self.role_key_tool] = conv.roles[2]
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try:
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# Apply prompt templates
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src/axolotl/utils/tokenization.py
CHANGED
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import logging
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from termcolor import colored
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LOG.info("\n\n\n")
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return " ".join(colored_tokens)
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import logging
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import re
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from typing import Dict, List
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from termcolor import colored
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LOG.info("\n\n\n")
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return " ".join(colored_tokens)
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GLAIVE_ROLES = ["USER", "ASSISTANT", "FUNCTION RESPONSE"]
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GLAIVE_TO_SHAREGPT_ROLE = {
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"SYSTEM": "system",
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"USER": "human",
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"ASSISTANT": "gpt",
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"FUNCTION RESPONSE": "tool",
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}
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GLAIVE_MSG_REGEX = re.compile(rf"({'|'.join(GLAIVE_ROLES)}): ")
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def chatml_to_conversation(row: Dict[str, str]) -> List[Dict[str, str]]:
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"""
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Converts a ChatML formatted row to a list of messages in ShareGPT format.
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Initially based off https://github.com/lilacai/lilac/blob/main/notebooks/GlaiveToShareGPT.ipynb.
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"""
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system_prompt = row.get("system")
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if system_prompt:
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system_prompt = system_prompt.removeprefix("SYSTEM: ")
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chat_str = row["chat"]
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chat_msgs = [s.strip() for s in GLAIVE_MSG_REGEX.split(chat_str) if s]
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chat_msg_dicts = [
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{"from": GLAIVE_TO_SHAREGPT_ROLE[role], "value": value}
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for role, value in zip(chat_msgs[::2], chat_msgs[1::2])
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]
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if system_prompt:
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chat_msg_dicts = [
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{"from": GLAIVE_TO_SHAREGPT_ROLE["SYSTEM"], "value": system_prompt}
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] + chat_msg_dicts
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return chat_msg_dicts
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def merge_consecutive_messages(messages):
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"""
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Merge consecutive messages from the same sender into a single message.
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This can be useful with datasets that contain multiple consecutive tool calls.
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"""
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merged_messages = []
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current_from = None
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current_message = ""
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for msg in messages:
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if current_from == msg["from"]:
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current_message += msg["value"]
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else:
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if current_from is not None:
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merged_messages.append({"from": current_from, "value": current_message})
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current_from = msg["from"]
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current_message = msg["value"]
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if current_from is not None:
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merged_messages.append({"from": current_from, "value": current_message})
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return merged_messages
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tests/prompt_strategies/test_sharegpt.py
CHANGED
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"""
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Test module for sharegpt integration w chatml
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"""
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import pytest
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from datasets import Dataset
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from tokenizers import AddedToken
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@@ -8,6 +9,7 @@ from transformers import AutoTokenizer
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from axolotl.datasets import TokenizedPromptDataset
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from axolotl.prompt_strategies.sharegpt import (
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SimpleShareGPTPromptTokenizingStrategy,
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register_chatml_template,
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)
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)
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@pytest.fixture(name="tokenizer")
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def fixture_tokenizer():
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tokenizer = AutoTokenizer.from_pretrained("mistralai/Mistral-7B-v0.1")
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@@ -156,3 +170,29 @@ class TestSharegpt:
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32001, 13892, 13, 12684, 17664, 32000, 28705, 13, # gpt
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]
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# fmt: on
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"""
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Test module for sharegpt integration w chatml
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"""
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+
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import pytest
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from datasets import Dataset
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from tokenizers import AddedToken
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|
| 10 |
from axolotl.datasets import TokenizedPromptDataset
|
| 11 |
from axolotl.prompt_strategies.sharegpt import (
|
| 12 |
+
GlaiveShareGPTPromptTokenizingStrategy,
|
| 13 |
SimpleShareGPTPromptTokenizingStrategy,
|
| 14 |
register_chatml_template,
|
| 15 |
)
|
|
|
|
| 50 |
)
|
| 51 |
|
| 52 |
|
| 53 |
+
@pytest.fixture(name="glaive_dataset")
|
| 54 |
+
def fixture_sharegpt_glaive_dataset():
|
| 55 |
+
return Dataset.from_list(
|
| 56 |
+
[
|
| 57 |
+
{
|
| 58 |
+
"system": "SYSTEM: This is a system prompt",
|
| 59 |
+
"chat": "USER: Can you book a flight for me from New York to London? ASSISTANT: I'm sorry, but I don't have the capability to book flights. <|endoftext|>",
|
| 60 |
+
}
|
| 61 |
+
]
|
| 62 |
+
)
|
| 63 |
+
|
| 64 |
+
|
| 65 |
@pytest.fixture(name="tokenizer")
|
| 66 |
def fixture_tokenizer():
|
| 67 |
tokenizer = AutoTokenizer.from_pretrained("mistralai/Mistral-7B-v0.1")
|
|
|
|
| 170 |
32001, 13892, 13, 12684, 17664, 32000, 28705, 13, # gpt
|
| 171 |
]
|
| 172 |
# fmt: on
|
| 173 |
+
|
| 174 |
+
def test_chatml_glaive(self, glaive_dataset, tokenizer):
|
| 175 |
+
strategy = GlaiveShareGPTPromptTokenizingStrategy(
|
| 176 |
+
ShareGPTPrompterV2(
|
| 177 |
+
conversation="chatml",
|
| 178 |
+
role_key_model=None,
|
| 179 |
+
role_key_human=None,
|
| 180 |
+
),
|
| 181 |
+
tokenizer,
|
| 182 |
+
True, # train_on_inputs
|
| 183 |
+
2048, # sequence_len
|
| 184 |
+
)
|
| 185 |
+
|
| 186 |
+
dataset_wrapper = TokenizedPromptDataset(
|
| 187 |
+
strategy, glaive_dataset, process_count=1
|
| 188 |
+
)
|
| 189 |
+
|
| 190 |
+
labels = dataset_wrapper[0]["labels"]
|
| 191 |
+
# fmt: off
|
| 192 |
+
assert labels == [
|
| 193 |
+
1, # bos
|
| 194 |
+
32001, 1587, 13, 3260, 349, 264, 1587, 11510, 32000, 28705, 13, # system
|
| 195 |
+
32001, 2188, 13, 6325, 368, 1820, 264, 9314, 354, 528, 477, 1450, 2726, 298, 4222, 28804, 32000, 28705, 13, # human
|
| 196 |
+
32001, 13892, 13, 28737, 28742, 28719, 7371, 28725, 562, 315, 949, 28742, 28707, 506, 272, 21368, 298, 1820, 22447, 28723, 28705, 523, 28766, 416, 1009, 772, 28766, 28767, 32000, 28705, 13 # gpt
|
| 197 |
+
]
|
| 198 |
+
# fmt: on
|
tests/test_prompt_tokenizers.py
CHANGED
|
@@ -1,4 +1,5 @@
|
|
| 1 |
"""Module for testing prompt tokenizers."""
|
|
|
|
| 2 |
import json
|
| 3 |
import logging
|
| 4 |
import unittest
|
|
@@ -18,6 +19,7 @@ from axolotl.prompt_strategies.llama2_chat import (
|
|
| 18 |
Llama2ChatPrompter,
|
| 19 |
LLama2ChatTokenizingStrategy,
|
| 20 |
)
|
|
|
|
| 21 |
from axolotl.prompt_tokenizers import (
|
| 22 |
AlpacaPromptTokenizingStrategy,
|
| 23 |
ShareGPTPromptTokenizingStrategy,
|
|
@@ -266,6 +268,23 @@ class TestPromptTokenizationStrategies(unittest.TestCase):
|
|
| 266 |
idx = res["input_ids"].index(20255) # assistant token
|
| 267 |
assert res["labels"][idx] == -100
|
| 268 |
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
| 269 |
def test_no_sys_prompt(self):
|
| 270 |
"""
|
| 271 |
tests the interface between the user and assistant parts
|
|
|
|
| 1 |
"""Module for testing prompt tokenizers."""
|
| 2 |
+
|
| 3 |
import json
|
| 4 |
import logging
|
| 5 |
import unittest
|
|
|
|
| 19 |
Llama2ChatPrompter,
|
| 20 |
LLama2ChatTokenizingStrategy,
|
| 21 |
)
|
| 22 |
+
from axolotl.prompt_strategies.sharegpt import GlaiveShareGPTPromptTokenizingStrategy
|
| 23 |
from axolotl.prompt_tokenizers import (
|
| 24 |
AlpacaPromptTokenizingStrategy,
|
| 25 |
ShareGPTPromptTokenizingStrategy,
|
|
|
|
| 268 |
idx = res["input_ids"].index(20255) # assistant token
|
| 269 |
assert res["labels"][idx] == -100
|
| 270 |
|
| 271 |
+
def test_glaive_tool_label_ignore(self):
|
| 272 |
+
conversation = {
|
| 273 |
+
"system": "SYSTEM: This is a system prompt",
|
| 274 |
+
"chat": "USER: Can you book a flight for me from New York to London? ASSISTANT: I'm sorry, but I don't have the capability to book flights. <|endoftext|>",
|
| 275 |
+
}
|
| 276 |
+
prompter = ShareGPTPrompterV2()
|
| 277 |
+
strat = GlaiveShareGPTPromptTokenizingStrategy(
|
| 278 |
+
prompter,
|
| 279 |
+
self.tokenizer,
|
| 280 |
+
False,
|
| 281 |
+
2048,
|
| 282 |
+
)
|
| 283 |
+
with self._caplog.at_level(logging.WARNING):
|
| 284 |
+
res = strat.tokenize_prompt(conversation)
|
| 285 |
+
idx = res["input_ids"].index(13566) # assistant token
|
| 286 |
+
assert res["labels"][idx] == -100
|
| 287 |
+
|
| 288 |
def test_no_sys_prompt(self):
|
| 289 |
"""
|
| 290 |
tests the interface between the user and assistant parts
|