mirror of
https://github.com/vllm-project/vllm.git
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Support DeepSeek-V3.1 tool call (#23454)
Signed-off-by: Xu Wenqing <xuwq1993@qq.com>
This commit is contained in:
@ -284,6 +284,14 @@ Supported models:
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Flags: `--tool-call-parser deepseek_v3 --chat-template {see_above}`
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### DeepSeek-V3.1 Models (`deepseek_v31`)
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Supported models:
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* `deepseek-ai/DeepSeek-V3.1` (use with <gh-file:examples/tool_chat_template_deepseekv31.jinja>)
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Flags: `--tool-call-parser deepseek_v31 --chat-template {see_above}`
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### Kimi-K2 Models (`kimi_k2`)
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Supported models:
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91
examples/tool_chat_template_deepseekv31.jinja
Normal file
91
examples/tool_chat_template_deepseekv31.jinja
Normal file
@ -0,0 +1,91 @@
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{% if not add_generation_prompt is defined %}
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{% set add_generation_prompt = false %}
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{% endif %}
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{% if not thinking is defined %}
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{% set thinking = false %}
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{% endif %}
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{% set ns = namespace(is_first=false, is_tool=false, system_prompt='', is_first_sp=true, is_last_user=false) %}
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{%- for message in messages %}
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{%- if message['role'] == 'system' %}
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{%- if ns.is_first_sp %}
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{% set ns.system_prompt = ns.system_prompt + message['content'] %}
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{% set ns.is_first_sp = false %}
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{%- else %}
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{% set ns.system_prompt = ns.system_prompt + '\n\n' + message['content'] %}
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{%- endif %}
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{%- endif %}
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{%- endfor %}
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{% if tools is defined and tools is not none %}
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{% set tool_ns = namespace(text='## Tools\nYou have access to the following tools:\n') %}
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{% for tool in tools %}
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{% set tool_ns.text = tool_ns.text + '\n### ' + tool.function.name + '\nDescription: ' + tool.function.description + '\n\nParameters: ' + (tool.function.parameters | tojson) + '\n' %}
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{% endfor %}
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{% set tool_ns.text = tool_ns.text + "\nIMPORTANT: ALWAYS adhere to this exact format for tool use:\n<|tool▁calls▁begin|><|tool▁call▁begin|>tool_call_name<|tool▁sep|>tool_call_arguments<|tool▁call▁end|>{{additional_tool_calls}}<|tool▁calls▁end|>\n\nWhere:\n\n- `tool_call_name` must be an exact match to one of the available tools\n- `tool_call_arguments` must be valid JSON that strictly follows the tool's Parameters Schema\n- For multiple tool calls, chain them directly without separators or spaces\n" %}
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{% set ns.system_prompt = ns.system_prompt + '\n\n' + tool_ns.text %}
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{% endif %}
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{{ bos_token }}{{ ns.system_prompt }}
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{%- for message in messages %}
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{%- if message['role'] == 'user' %}
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{%- set ns.is_tool = false -%}
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{%- set ns.is_first = false -%}
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{%- set ns.is_last_user = true -%}
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{{'<|User|>' + message['content']}}
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{%- endif %}
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{%- if message['role'] == 'assistant' and message['tool_calls'] is defined and message['tool_calls'] is not none %}
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{%- if ns.is_last_user %}
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{{'<|Assistant|></think>'}}
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{%- endif %}
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{%- set ns.is_last_user = false -%}
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{%- set ns.is_first = false %}
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{%- set ns.is_tool = false -%}
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{%- for tool in message['tool_calls'] %}
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{%- if not ns.is_first %}
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{%- if message['content'] is none %}
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{{'<|tool▁calls▁begin|><|tool▁call▁begin|>'+ tool['function']['name'] + '<|tool▁sep|>' + tool['function']['arguments']|tojson + '<|tool▁call▁end|>'}}
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{%- else %}
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{{message['content'] + '<|tool▁calls▁begin|><|tool▁call▁begin|>' + tool['function']['name'] + '<|tool▁sep|>' + tool['function']['arguments']|tojson + '<|tool▁call▁end|>'}}
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{%- endif %}
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{%- set ns.is_first = true -%}
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{%- else %}
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{{'<|tool▁call▁begin|>'+ tool['function']['name'] + '<|tool▁sep|>' + tool['function']['arguments']|tojson + '<|tool▁call▁end|>'}}
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{%- endif %}
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{%- endfor %}
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{{'<|tool▁calls▁end|><|end▁of▁sentence|>'}}
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{%- endif %}
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{%- if message['role'] == 'assistant' and (message['tool_calls'] is not defined or message['tool_calls'] is none) %}
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{%- if ns.is_last_user %}
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{{'<|Assistant|>'}}
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{%- if message['prefix'] is defined and message['prefix'] and thinking %}
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{{'<think>'}}
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{%- else %}
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{{'</think>'}}
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{%- endif %}
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{%- endif %}
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{%- set ns.is_last_user = false -%}
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{%- if ns.is_tool %}
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{{message['content'] + '<|end▁of▁sentence|>'}}
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{%- set ns.is_tool = false -%}
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{%- else %}
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{%- set content = message['content'] -%}
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{%- if '</think>' in content %}
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{%- set content = content.split('</think>', 1)[1] -%}
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{%- endif %}
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{{content + '<|end▁of▁sentence|>'}}
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{%- endif %}
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{%- endif %}
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{%- if message['role'] == 'tool' %}
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{%- set ns.is_last_user = false -%}
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{%- set ns.is_tool = true -%}
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{{'<|tool▁output▁begin|>' + message['content'] + '<|tool▁output▁end|>'}}
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{%- endif %}
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{%- endfor -%}
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{%- if add_generation_prompt and ns.is_last_user and not ns.is_tool %}
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{{'<|Assistant|>'}}
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{%- if not thinking %}
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{{'</think>'}}
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{%- else %}
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{{'<think>'}}
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{%- endif %}
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{% endif %}
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@ -3,6 +3,7 @@
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from .abstract_tool_parser import ToolParser, ToolParserManager
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from .deepseekv3_tool_parser import DeepSeekV3ToolParser
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from .deepseekv31_tool_parser import DeepSeekV31ToolParser
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from .glm4_moe_tool_parser import Glm4MoeModelToolParser
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from .granite_20b_fc_tool_parser import Granite20bFCToolParser
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from .granite_tool_parser import GraniteToolParser
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@ -36,6 +37,7 @@ __all__ = [
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"PythonicToolParser",
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"Phi4MiniJsonToolParser",
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"DeepSeekV3ToolParser",
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"DeepSeekV31ToolParser",
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"xLAMToolParser",
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"MinimaxToolParser",
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"KimiK2ToolParser",
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367
vllm/entrypoints/openai/tool_parsers/deepseekv31_tool_parser.py
Normal file
367
vllm/entrypoints/openai/tool_parsers/deepseekv31_tool_parser.py
Normal file
@ -0,0 +1,367 @@
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# SPDX-License-Identifier: Apache-2.0
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# SPDX-FileCopyrightText: Copyright contributors to the vLLM project
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from collections.abc import Sequence
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from typing import Union
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import regex as re
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from vllm.entrypoints.chat_utils import make_tool_call_id
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from vllm.entrypoints.openai.protocol import (ChatCompletionRequest,
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DeltaFunctionCall, DeltaMessage,
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DeltaToolCall,
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ExtractedToolCallInformation,
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FunctionCall, ToolCall)
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from vllm.entrypoints.openai.tool_parsers.abstract_tool_parser import (
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ToolParser, ToolParserManager)
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from vllm.logger import init_logger
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from vllm.transformers_utils.tokenizer import AnyTokenizer
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logger = init_logger(__name__)
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@ToolParserManager.register_module("deepseek_v31")
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class DeepSeekV31ToolParser(ToolParser):
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def __init__(self, tokenizer: AnyTokenizer):
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super().__init__(tokenizer)
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self.current_tool_name_sent: bool = False
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self.prev_tool_call_arr: list[dict] = []
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self.current_tool_id: int = -1
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self.streamed_args_for_tool: list[str] = (
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[]) # map what has been streamed for each tool so far to a list
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self.tool_calls_start_token: str = "<|tool▁calls▁begin|>"
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self.tool_calls_end_token: str = "<|tool▁calls▁end|>"
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self.tool_call_start_token: str = "<|tool▁call▁begin|>"
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self.tool_call_end_token: str = "<|tool▁call▁end|>"
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self.tool_call_regex = re.compile(
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r"<|tool▁call▁begin|>(?P<function_name>.*)<|tool▁sep|>(?P<function_arguments>.*)<|tool▁call▁end|>"
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)
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self.stream_tool_call_portion_regex = re.compile(
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r"(?P<function_name>.*)<|tool▁sep|>(?P<function_arguments>.*)")
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self.stream_tool_call_name_regex = re.compile(
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r"(?P<function_name>.*)<|tool▁sep|>")
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if not self.model_tokenizer:
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raise ValueError(
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"The model tokenizer must be passed to the ToolParser "
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"constructor during construction.")
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self.tool_calls_start_token_id = self.vocab.get(
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self.tool_calls_start_token)
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self.tool_calls_end_token_id = self.vocab.get(
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self.tool_calls_end_token)
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self.tool_call_start_token_id = self.vocab.get(
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self.tool_call_start_token)
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self.tool_call_end_token_id = self.vocab.get(self.tool_call_end_token)
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if (self.tool_calls_start_token_id is None
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or self.tool_calls_end_token_id is None):
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raise RuntimeError(
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"DeepSeek-V3 Tool parser could not locate tool call start/end "
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"tokens in the tokenizer!")
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def extract_tool_calls(
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self,
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model_output: str,
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request: ChatCompletionRequest,
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) -> ExtractedToolCallInformation:
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# sanity check; avoid unnecessary processing
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if self.tool_calls_start_token not in model_output:
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return ExtractedToolCallInformation(tools_called=False,
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tool_calls=[],
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content=model_output)
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else:
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try:
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# there are two possible captures - between tags, or between a
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# tag and end-of-string so the result of
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# findall is an array of tuples where one is a function call and
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# the other is None
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function_call_tuples = self.tool_call_regex.findall(
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model_output)
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tool_calls = []
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for match in function_call_tuples:
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function_name, function_args = match
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tool_calls.append(
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ToolCall(
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type="function",
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function=FunctionCall(name=function_name,
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arguments=function_args),
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))
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content = model_output[:model_output.
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find(self.tool_calls_start_token)]
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return ExtractedToolCallInformation(
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tools_called=True,
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tool_calls=tool_calls,
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content=content if content else None,
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)
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except Exception:
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logger.exception(
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"Error in extracting tool call from response.")
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return ExtractedToolCallInformation(tools_called=False,
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tool_calls=[],
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content=model_output)
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def extract_tool_calls_streaming(
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self,
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previous_text: str,
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current_text: str,
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delta_text: str,
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previous_token_ids: Sequence[int],
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current_token_ids: Sequence[int],
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delta_token_ids: Sequence[int],
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request: ChatCompletionRequest,
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) -> Union[DeltaMessage, None]:
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logger.debug("delta_text: %s", delta_text)
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logger.debug("delta_token_ids: %s", delta_token_ids)
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# check to see if we should be streaming a tool call - is there a
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if self.tool_calls_start_token_id not in current_token_ids:
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logger.debug("No tool call tokens found!")
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return DeltaMessage(content=delta_text)
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delta_text = delta_text.replace(self.tool_calls_start_token,
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"").replace(self.tool_calls_end_token,
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"")
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try:
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# figure out where we are in the parsing by counting tool call
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# start & end tags
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prev_tool_start_count = previous_token_ids.count(
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self.tool_call_start_token_id)
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prev_tool_end_count = previous_token_ids.count(
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self.tool_call_end_token_id)
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cur_tool_start_count = current_token_ids.count(
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self.tool_call_start_token_id)
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cur_tool_end_count = current_token_ids.count(
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self.tool_call_end_token_id)
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tool_call_portion = None
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text_portion = None
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# case: if we're generating text, OR rounding out a tool call
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if (cur_tool_start_count == cur_tool_end_count
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and prev_tool_end_count == cur_tool_end_count
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and self.tool_call_end_token not in delta_text):
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logger.debug("Generating text content! skipping tool parsing.")
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return DeltaMessage(content=delta_text)
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if self.tool_call_end_token in delta_text:
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logger.debug("tool_call_end_token in delta_text")
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full_text = current_text + delta_text
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tool_call_portion = full_text.split(
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self.tool_call_start_token)[-1].split(
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self.tool_call_end_token)[0].rstrip()
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delta_text = delta_text.split(
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self.tool_call_end_token)[0].rstrip()
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text_portion = delta_text.split(
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self.tool_call_end_token)[-1].lstrip()
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# case -- we're starting a new tool call
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if (cur_tool_start_count > cur_tool_end_count
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and cur_tool_start_count > prev_tool_start_count):
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if len(delta_token_ids) > 1:
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tool_call_portion = current_text.split(
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self.tool_call_start_token)[-1]
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else:
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tool_call_portion = None
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delta = None
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text_portion = None
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# set cursors and state appropriately
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self.current_tool_id += 1
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self.current_tool_name_sent = False
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self.streamed_args_for_tool.append("")
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logger.debug("Starting on a new tool %s", self.current_tool_id)
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# case -- we're updating an existing tool call
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elif (cur_tool_start_count > cur_tool_end_count
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and cur_tool_start_count == prev_tool_start_count):
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# get the portion of the text that's the tool call
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tool_call_portion = current_text.split(
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self.tool_call_start_token)[-1]
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text_portion = None
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# case -- the current tool call is being closed.
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elif (cur_tool_start_count == cur_tool_end_count
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and cur_tool_end_count >= prev_tool_end_count):
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if self.prev_tool_call_arr is None or len(
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self.prev_tool_call_arr) == 0:
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logger.debug(
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"attempting to close tool call, but no tool call")
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return None
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diff = self.prev_tool_call_arr[self.current_tool_id].get(
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"arguments")
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if diff:
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diff = (diff.encode("utf-8").decode("unicode_escape")
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if diff is str else diff)
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if '"}' not in delta_text:
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return None
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end_loc = delta_text.rindex('"}')
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diff = delta_text[:end_loc] + '"}'
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logger.debug(
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"Finishing tool and found diff that had not "
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"been streamed yet: %s",
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diff,
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)
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self.streamed_args_for_tool[self.current_tool_id] += diff
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return DeltaMessage(tool_calls=[
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DeltaToolCall(
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index=self.current_tool_id,
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function=DeltaFunctionCall(
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arguments=diff).model_dump(exclude_none=True),
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)
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])
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# case -- otherwise we're just generating text
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else:
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text = delta_text.replace(self.tool_call_start_token, "")
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text = text.replace(self.tool_call_end_token, "")
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delta = DeltaMessage(tool_calls=[], content=text)
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return delta
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current_tool_call = dict()
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if tool_call_portion:
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current_tool_call_matches = (
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self.stream_tool_call_portion_regex.match(
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tool_call_portion))
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if current_tool_call_matches:
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tool_name, tool_args = current_tool_call_matches.groups()
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current_tool_call["name"] = tool_name
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current_tool_call["arguments"] = tool_args
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else:
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current_tool_call_name_matches = (
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self.stream_tool_call_name_regex.match(
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tool_call_portion))
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if current_tool_call_name_matches:
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tool_name = current_tool_call_name_matches.groups()
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current_tool_call["name"] = tool_name
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current_tool_call["arguments"] = ""
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else:
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logger.debug("Not enough token")
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return None
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# case - we haven't sent the tool name yet. If it's available, send
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# it. otherwise, wait until it's available.
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if not self.current_tool_name_sent:
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if current_tool_call is None:
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return None
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function_name: Union[str, None] = current_tool_call.get("name")
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if function_name:
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self.current_tool_name_sent = True
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return DeltaMessage(tool_calls=[
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DeltaToolCall(
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index=self.current_tool_id,
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type="function",
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id=make_tool_call_id(),
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function=DeltaFunctionCall(
|
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name=function_name).model_dump(
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exclude_none=True),
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)
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])
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else:
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return None
|
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|
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# case -- otherwise, send the tool call delta
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# if the tool call portion is None, send the delta as text
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if tool_call_portion is None:
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# if there's text but not tool calls, send that -
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# otherwise None to skip chunk
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delta = (DeltaMessage(
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content=delta_text) if text_portion is not None else None)
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return delta
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|
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# now, the nitty-gritty of tool calls
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# now we have the portion to parse as tool call.
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logger.debug("Trying to parse current tool call with ID %s",
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self.current_tool_id)
|
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|
||||
# if we're starting a new tool call, push an empty object in as
|
||||
# a placeholder for the arguments
|
||||
if len(self.prev_tool_call_arr) <= self.current_tool_id:
|
||||
self.prev_tool_call_arr.append({})
|
||||
|
||||
# main logic for tool parsing here - compare prev. partially-parsed
|
||||
# JSON to the current partially-parsed JSON
|
||||
prev_arguments = self.prev_tool_call_arr[self.current_tool_id].get(
|
||||
"arguments")
|
||||
cur_arguments = current_tool_call.get("arguments")
|
||||
|
||||
logger.debug("diffing old arguments: %s", prev_arguments)
|
||||
logger.debug("against new ones: %s", cur_arguments)
|
||||
|
||||
# case -- no arguments have been created yet. skip sending a delta.
|
||||
if not cur_arguments and not prev_arguments:
|
||||
logger.debug("Skipping text %s - no arguments", delta_text)
|
||||
delta = None
|
||||
|
||||
# case -- prev arguments are defined, but non are now.
|
||||
# probably impossible, but not a fatal error - just keep going
|
||||
elif not cur_arguments and prev_arguments:
|
||||
logger.error("should be impossible to have arguments reset "
|
||||
"mid-call. skipping streaming anything.")
|
||||
delta = None
|
||||
|
||||
# case -- we now have the first info about arguments available from
|
||||
# autocompleting the JSON
|
||||
elif cur_arguments and not prev_arguments:
|
||||
|
||||
delta = DeltaMessage(tool_calls=[
|
||||
DeltaToolCall(
|
||||
index=self.current_tool_id,
|
||||
function=DeltaFunctionCall(
|
||||
arguments=cur_arguments).model_dump(
|
||||
exclude_none=True),
|
||||
)
|
||||
])
|
||||
self.streamed_args_for_tool[
|
||||
self.current_tool_id] = cur_arguments
|
||||
|
||||
# last case -- we have an update to existing arguments.
|
||||
elif cur_arguments and prev_arguments:
|
||||
if (isinstance(delta_text, str)
|
||||
and cur_arguments != prev_arguments
|
||||
and len(cur_arguments) > len(prev_arguments)
|
||||
and cur_arguments.startswith(prev_arguments)):
|
||||
delta_arguments = cur_arguments[len(prev_arguments):]
|
||||
logger.debug("got diff %s", delta_text)
|
||||
|
||||
delta = DeltaMessage(tool_calls=[
|
||||
DeltaToolCall(
|
||||
index=self.current_tool_id,
|
||||
function=DeltaFunctionCall(
|
||||
arguments=delta_arguments).model_dump(
|
||||
exclude_none=True),
|
||||
)
|
||||
])
|
||||
self.streamed_args_for_tool[
|
||||
self.current_tool_id] = cur_arguments
|
||||
else:
|
||||
delta = None
|
||||
|
||||
# handle saving the state for the current tool into
|
||||
# the "prev" list for use in diffing for the next iteration
|
||||
if self.current_tool_id == len(self.prev_tool_call_arr) - 1:
|
||||
self.prev_tool_call_arr[
|
||||
self.current_tool_id] = current_tool_call
|
||||
else:
|
||||
self.prev_tool_call_arr.append(current_tool_call)
|
||||
|
||||
return delta
|
||||
|
||||
except Exception:
|
||||
logger.exception("Error trying to handle streaming tool call.")
|
||||
return None # do not stream a delta. skip this token ID.
|
Reference in New Issue
Block a user