fc24114142
Co-authored-by: Cursor <cursoragent@cursor.com>
295 lines
10 KiB
Python
295 lines
10 KiB
Python
"""期权本地交易统计(胜率 / 盈亏 / 持仓时长)."""
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from __future__ import annotations
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from datetime import datetime
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from typing import Any
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from lib.instance.instance_embed_context_lib import profit_loss_ratio_from_averages
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from lib.options.options_db import init_options_tables
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def _safe_float(v: Any) -> float | None:
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if v is None or v == "":
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return None
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try:
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return float(v)
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except (TypeError, ValueError):
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return None
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def _underlying_index_usdt(ex: Any, underly: str) -> float | None:
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"""取标的 USDT 近似指数(币本位已平盈亏折 U).优先公开 ticker,避免私钥失败."""
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u = (underly or "ETH").strip().upper() or "ETH"
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pubs: list[Any] = []
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try:
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from lib.sim.hooks import _APP_MODULE, _sim_public_exchange
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pub = _sim_public_exchange(ex) if _APP_MODULE is not None else None
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if pub is not None:
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pubs.append(pub)
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except Exception:
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pass
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if ex is not None and ex not in pubs:
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pubs.append(ex)
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from lib.exchange.okx_options_lib import fetch_index_price
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for pub in pubs:
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try:
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if hasattr(pub, "public_get_market_ticker"):
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rows = (pub.public_get_market_ticker({"instId": f"{u}-USDT"}) or {}).get("data") or []
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if rows:
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last = _safe_float(rows[0].get("last") or rows[0].get("lastPx"))
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if last is not None and last > 0:
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return float(last)
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except Exception:
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pass
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try:
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px = fetch_index_price(pub, f"{u}-USD")
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if px is not None and float(px) > 0:
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return float(px)
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except Exception:
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pass
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try:
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t = pub.fetch_ticker(f"{u}/USDT") or {}
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last = _safe_float(t.get("last") or t.get("close"))
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if last is not None and last > 0:
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return float(last)
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except Exception:
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continue
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return None
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def history_pnl_to_usdt(history: list[dict[str, Any]], ex: Any = None) -> list[dict[str, Any]]:
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"""
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统计用:币本位 realized_pnl(ETH/BTC) 按指数折成 U;USDC 原样.
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折算失败的币仓剔除盈亏字段,避免把「币数量」当成 U.
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"""
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from lib.options.options_margin_mode_lib import margin_mode_from_inst_id, premium_ccy_for_mode
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idx_cache: dict[str, float | None] = {}
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out: list[dict[str, Any]] = []
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for row in history:
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r = dict(row)
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if r.get("status") == "open":
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out.append(r)
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continue
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pnl = _safe_float(r.get("realized_pnl"))
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if pnl is None:
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out.append(r)
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continue
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inst = str(r.get("inst_id") or "")
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underly = str(r.get("underlying") or (inst.split("-")[0] if inst else "ETH") or "ETH")
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ccy = str(r.get("premium_ccy") or "").strip().upper()
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if not ccy:
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ccy = premium_ccy_for_mode(margin_mode_from_inst_id(inst), underly)
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if ccy in ("ETH", "BTC"):
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if underly not in idx_cache:
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idx_cache[underly] = _underlying_index_usdt(ex, underly)
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idx = idx_cache.get(underly)
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if idx is None or idx <= 0:
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r["realized_pnl"] = None
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else:
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r["realized_pnl"] = round(float(pnl) * float(idx), 4)
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else:
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r["realized_pnl"] = round(float(pnl), 4)
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out.append(r)
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return out
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def _parse_ts(raw: Any) -> datetime | None:
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if raw is None or raw == "":
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return None
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s = str(raw).strip().replace(" ", "T", 1)
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try:
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return datetime.fromisoformat(s)
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except (TypeError, ValueError):
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return None
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def _hold_seconds(created_at: Any, closed_at: Any) -> float | None:
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start = _parse_ts(created_at)
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end = _parse_ts(closed_at)
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if start is None or end is None:
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return None
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sec = (end - start).total_seconds()
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return sec if sec >= 0 else None
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def _avg_seconds(values: list[float]) -> float | None:
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if not values:
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return None
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return round(sum(values) / len(values), 1)
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def compute_options_stats_from_history(history: list[dict[str, Any]]) -> dict[str, Any]:
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"""基于期权历史列表(交易所)计算统计."""
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wins: list[float] = []
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losses: list[float] = []
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win_holds: list[float] = []
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loss_holds: list[float] = []
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all_holds: list[float] = []
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open_holds: list[float] = []
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now = datetime.now()
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for row in history:
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if row.get("status") == "open":
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start = _parse_ts(row.get("created_at"))
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if start is not None:
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sec = (now - start).total_seconds()
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if sec >= 0:
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open_holds.append(sec)
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continue
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pnl_raw = row.get("realized_pnl")
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if pnl_raw is None:
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continue
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try:
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pnl = float(pnl_raw)
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except (TypeError, ValueError):
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continue
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hold = _hold_seconds(row.get("created_at"), row.get("closed_at"))
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if hold is not None:
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all_holds.append(hold)
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if pnl > 0:
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wins.append(pnl)
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if hold is not None:
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win_holds.append(hold)
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elif pnl < 0:
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losses.append(pnl)
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if hold is not None:
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loss_holds.append(hold)
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total_closed = len(wins) + len(losses)
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win_rate = round(len(wins) / total_closed * 100, 2) if total_closed else 0
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avg_win = sum(wins) / len(wins) if wins else None
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avg_loss = sum(losses) / len(losses) if losses else None
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total_profit = round(sum(wins), 4) if wins else 0.0
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total_loss = round(abs(sum(losses)), 4) if losses else 0.0
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net_realized = round(sum(wins) + sum(losses), 4)
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return {
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"total_closed": total_closed,
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"win_count": len(wins),
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"loss_count": len(losses),
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"win_rate": win_rate,
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"profit_loss_ratio": profit_loss_ratio_from_averages(avg_win, avg_loss),
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"avg_win": round(avg_win, 4) if avg_win is not None else None,
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"avg_loss": round(abs(avg_loss), 4) if avg_loss is not None else None,
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"total_profit": total_profit,
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"total_loss": total_loss,
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"net_realized_pnl": net_realized,
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"avg_hold_sec": _avg_seconds(all_holds),
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"avg_win_hold_sec": _avg_seconds(win_holds),
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"avg_loss_hold_sec": _avg_seconds(loss_holds),
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"open_count": len(open_holds),
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"avg_open_hold_sec": _avg_seconds(open_holds),
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}
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def compute_options_stats(get_db) -> dict[str, Any]:
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conn = get_db()
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try:
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init_options_tables(conn)
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closed_rows = conn.execute(
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"""
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SELECT realized_pnl, created_at, closed_at
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FROM options_trades
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WHERE status = 'closed' AND realized_pnl IS NOT NULL
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"""
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).fetchall()
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open_rows = conn.execute(
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"""
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SELECT created_at FROM options_trades WHERE status = 'open'
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"""
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).fetchall()
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return _stats_from_option_trade_rows(closed_rows, open_rows)
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finally:
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conn.close()
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def _stats_from_option_trade_rows(closed_rows, open_rows) -> dict[str, Any]:
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wins: list[float] = []
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losses: list[float] = []
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win_holds: list[float] = []
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loss_holds: list[float] = []
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all_holds: list[float] = []
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now = datetime.now()
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for row in closed_rows:
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pnl = float(row["realized_pnl"])
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hold = _hold_seconds(row["created_at"], row["closed_at"])
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if hold is not None:
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all_holds.append(hold)
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if pnl > 0:
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wins.append(pnl)
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if hold is not None:
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win_holds.append(hold)
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elif pnl < 0:
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losses.append(pnl)
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if hold is not None:
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loss_holds.append(hold)
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open_holds: list[float] = []
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for row in open_rows:
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start = _parse_ts(row["created_at"])
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if start is None:
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continue
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sec = (now - start).total_seconds()
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if sec >= 0:
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open_holds.append(sec)
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total_closed = len(wins) + len(losses)
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win_rate = round(len(wins) / total_closed * 100, 2) if total_closed else 0
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avg_win = sum(wins) / len(wins) if wins else None
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avg_loss = sum(losses) / len(losses) if losses else None
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total_profit = round(sum(wins), 4) if wins else 0.0
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total_loss = round(abs(sum(losses)), 4) if losses else 0.0
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net_realized = round(sum(wins) + sum(losses), 4)
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return {
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"total_closed": total_closed,
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"win_count": len(wins),
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"loss_count": len(losses),
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"win_rate": win_rate,
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"profit_loss_ratio": profit_loss_ratio_from_averages(avg_win, avg_loss),
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"avg_win": round(avg_win, 4) if avg_win is not None else None,
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"avg_loss": round(abs(avg_loss), 4) if avg_loss is not None else None,
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"total_profit": total_profit,
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"total_loss": total_loss,
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"net_realized_pnl": net_realized,
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"avg_hold_sec": _avg_seconds(all_holds),
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"avg_win_hold_sec": _avg_seconds(win_holds),
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"avg_loss_hold_sec": _avg_seconds(loss_holds),
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"open_count": len(open_holds),
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"avg_open_hold_sec": _avg_seconds(open_holds),
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}
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def header_options_stats_for_window(conn, list_window: dict[str, Any], app_tz) -> dict[str, Any]:
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"""顶栏总交易/胜率/盈亏比:纯期权(options_trades),全站导航共用,按列表窗过滤."""
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from lib.common.history_window_lib import utc_window_to_bj_sql_strings
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init_options_tables(conn)
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start_bj, end_bj = utc_window_to_bj_sql_strings(
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list_window["start_utc"], list_window["end_utc"], app_tz
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)
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closed_rows = conn.execute(
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"""
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SELECT realized_pnl, created_at, closed_at
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FROM options_trades
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WHERE status = 'closed'
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AND realized_pnl IS NOT NULL
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AND COALESCE(closed_at, created_at) >= ?
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AND COALESCE(closed_at, created_at) <= ?
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""",
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(start_bj, end_bj),
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).fetchall()
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open_rows = conn.execute(
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"SELECT created_at FROM options_trades WHERE status = 'open'"
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).fetchall()
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stats = _stats_from_option_trade_rows(closed_rows, open_rows)
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return {
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"total": int(stats.get("total_closed") or 0),
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"rate": float(stats.get("win_rate") or 0),
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"profit_loss_ratio": stats.get("profit_loss_ratio"),
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}
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