mirror of
https://gitcode.com/JianFeeeee/HomeAgent.git
synced 2026-09-21 17:38:10 +00:00
openai adapter transform_stream_chunk:
- OpenAI 流式分片是嵌套格式 function.{name,arguments},原样透传后
json.Unmarshal 到扁平 ToolCall{name,arguments} 时 name 恒为空,
accumulateStream flushToolCall 因 acc.name=="" 静默丢弃整个工具调用
(流式路径自上线起 tool_calls 全部丢失的根因)
- 现在正确解包 function.name → name,function.arguments → raw_arguments
(保留原始 JSON 字符串分片,由 accumulateStream 按 index 拼接)
- 不按 name 过滤分片:OpenAI 流式续传块 name 为空但携带 arguments 分片
mcp stdio/sse transport:
- stdio Send() 无超时:server 进程卡死时插件加载永久阻塞
- sse http.Client 无超时:远程 server 网络抖动/无响应时永久阻塞,
导致 webui 等后续插件全部无法启动(生产实例偶发启动卡死根因)
- stdio 加 60s 请求超时;sse client 加 30s 整体 + 10s 拨号超时
129 lines
4.6 KiB
Lua
129 lines
4.6 KiB
Lua
local adapter = {}
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adapter.name = "openai"
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adapter.version = "2.0.0"
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adapter.endpoint = "/chat/completions"
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adapter.headers = {}
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-- OpenAI /chat/completions format (pass-through, strip provider-specific fields)
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function adapter.transform_request(raw_body)
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local ok, req = pcall(json.decode, raw_body)
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if not ok then return raw_body end
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req.disable_thinking = nil
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req.extra_body = nil
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if req.messages then
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for _, msg in ipairs(req.messages) do
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msg.reasoning_content = nil
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end
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end
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return json.encode(req)
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end
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function adapter.transform_response(raw_body)
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local ok, resp = pcall(json.decode, raw_body)
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if not ok or resp == nil then return raw_body end
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local unified = {
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content = "",
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finish_reason = "",
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token_usage = { prompt = 0, completion = 0, total = 0 }
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}
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if type(resp.usage) == "table" then
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unified.token_usage.prompt = resp.usage.prompt_tokens or 0
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unified.token_usage.completion = resp.usage.completion_tokens or 0
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unified.token_usage.total = resp.usage.total_tokens or 0
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end
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if type(resp.choices) == "table" and #resp.choices > 0 then
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local ch = resp.choices[1]
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if type(ch.message) == "table" then
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unified.content = ch.message.content or ""
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if ch.message.reasoning_content then
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unified.reasoning_content = ch.message.reasoning_content
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end
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if type(ch.message.tool_calls) == "table" then
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local tcs = {}
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for _, tc in ipairs(ch.message.tool_calls) do
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local fn = tc["function"]
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local name = tc.name
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local raw_args = tc.arguments
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if type(fn) == "table" then
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name = fn.name or name
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raw_args = fn.arguments or raw_args
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end
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local args = {}
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if type(raw_args) == "table" then
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args = raw_args
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elseif type(raw_args) == "string" and raw_args ~= "" then
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local args_ok, decoded = pcall(json.decode, raw_args)
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if args_ok and type(decoded) == "table" then
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args = decoded
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elseif args_ok then
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args = { value = decoded }
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else
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args = { raw = raw_args }
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end
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end
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if name ~= nil and name ~= "" then
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table.insert(tcs, {
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id = tc.id,
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type = tc.type or "function",
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name = name,
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arguments = args
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})
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end
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end
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unified.tool_calls = tcs
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end
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end
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unified.finish_reason = ch.finish_reason or ""
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end
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return json.encode(unified)
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end
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function adapter.transform_stream_chunk(raw_chunk)
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local ok, chunk = pcall(json.decode, raw_chunk)
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if not ok then return "" end
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if not chunk.choices or #chunk.choices == 0 then return "" end
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local delta = chunk.choices[1].delta or {}
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local fr = chunk.choices[1].finish_reason
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local unified = {
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content = delta.content or "",
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done = (fr ~= nil)
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}
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if delta.reasoning_content then
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unified.reasoning_content = delta.reasoning_content
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end
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if delta.tool_calls then
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local tcs = {}
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for _, tc in ipairs(delta.tool_calls) do
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-- OpenAI 流式格式: {function:{name,arguments}, id, type, index}
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-- homed StreamChunk.ToolCalls 期望扁平格式: {id, type, name, raw_arguments}
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local fn = tc["function"]
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local name = (type(fn) == "table" and fn.name) or tc.name or ""
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local raw_args = ""
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if type(fn) == "table" and type(fn.arguments) == "string" then
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raw_args = fn.arguments
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elseif type(tc.arguments) == "string" then
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raw_args = tc.arguments
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end
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-- 不能按 name 过滤:OpenAI 流式分片中后续块 name 为空但携带 arguments
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-- accumulateStream 按 index 累积并在 flushToolCall 时校验 name
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table.insert(tcs, {
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id = tc.id or "",
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type = tc.type or "function",
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name = name,
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raw_arguments = raw_args
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})
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end
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unified.tool_calls = tcs
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end
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return json.encode(unified)
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end
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return adapter
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