529 lines
12 KiB
Markdown
529 lines
12 KiB
Markdown
# 持仓成本可视化增强使用说明
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## 功能概述
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持仓成本可视化增强功能提供精确的交易成本计算、持仓成本线标注、盈亏分布分析等功能,帮助用户更直观地了解持仓成本和盈亏情况。
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### 核心特性
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✅ **精确成本计算** - 印花税、佣金、过户费精确计算(符合A股规则)
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✅ **成本线标注** - K线图上标注持仓成本线
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✅ **成本历史追踪** - 记录每次买入/卖出后的成本变化
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✅ **盈亏分布图** - 可视化展示盈利/亏损持仓分布
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✅ **交易成本预估** - 下单前估算实际成本
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✅ **成本明细拆解** - 详细展示每笔交易的成本构成
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---
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## 交易成本规则(A股)
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### 成本构成
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| 费用类型 | 费率 | 适用范围 | 说明 |
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|---------|------|---------|------|
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| **印花税** | 0.1% | 仅卖出 | 固定费率 |
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| **佣金** | 0.03% | 买入+卖出 | 最低5元 |
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| **过户费** | 0.001% | 买入+卖出 | 仅沪市 |
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### 计算示例
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**买入示例**(沪市):
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```
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股票代码: 600519(贵州茅台)
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成交价格: 1680元
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成交数量: 100股
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成交金额 = 1680 × 100 = 168,000元
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佣金 = 168,000 × 0.0003 = 50.4元
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过户费 = 168,000 × 0.00001 = 1.68元
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印花税 = 0元(买入无印花税)
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总成本 = 168,000 + 50.4 + 1.68 = 168,052.08元
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成本率 = 0.031%
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```
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**卖出示例**(沪市):
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```
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成交金额 = 168,000元
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佣金 = 50.4元
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过户费 = 1.68元
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印花税 = 168,000 × 0.001 = 168元
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总成本 = 220.08元
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实际到账 = 168,000 - 220.08 = 167,779.92元
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成本率 = 0.131%
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```
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---
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## API 接口
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### 1. 获取持仓成本线
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```bash
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GET /api/portfolio/cost_line/{code}
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```
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**用途**: K线图上标注成本线
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**响应示例**:
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```json
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{
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"ok": true,
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"code": "600519",
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"name": "贵州茅台",
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"current_position": {
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"qty": 100,
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"avg_cost": 1680.5,
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"total_cost": 168050.0,
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"current_price": 1720.0,
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"market_value": 172000.0,
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"unrealized_pnl": 3950.0,
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"unrealized_pct": 2.35,
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"trades_count": 2
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},
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"cost_history": [
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{
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"date": "2024-01-15",
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"cost": 1650.0,
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"qty": 100,
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"action": "买入",
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"trade_price": 1650.0,
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"trade_qty": 100
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},
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{
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"date": "2024-02-10",
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"cost": 1680.5,
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"qty": 100,
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"action": "补仓",
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"trade_price": 1710.0,
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"trade_qty": 50
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}
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]
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}
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```
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**前端使用**(ECharts 标注成本线):
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```javascript
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// 在 K 线图上添加成本线
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const costLineData = await fetch(`/api/portfolio/cost_line/600519`).then(r => r.json());
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if (costLineData.ok && costLineData.current_position) {
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const avgCost = costLineData.current_position.avg_cost;
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option.series.push({
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type: 'line',
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name: '持仓成本',
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data: Array(dates.length).fill(avgCost),
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lineStyle: { color: '#FFA500', width: 2, type: 'dashed' },
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z: 10
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});
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}
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```
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### 2. 获取持仓成本分布
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```bash
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GET /api/portfolio/cost_distribution
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```
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**用途**: 盈亏分布可视化
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**响应示例**:
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```json
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{
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"ok": true,
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"profitable": [
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{
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"code": "600519",
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"name": "贵州茅台",
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"qty": 100,
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"avg_cost": 1680.5,
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"current_price": 1720.0,
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"market_value": 172000.0,
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"cost_value": 168050.0,
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"unrealized": 3950.0,
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"unrealized_pct": 2.35
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}
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],
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"unprofitable": [
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{
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"code": "300750",
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"name": "宁德时代",
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"qty": 50,
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"avg_cost": 220.0,
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"current_price": 210.0,
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"market_value": 10500.0,
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"cost_value": 11000.0,
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"unrealized": -500.0,
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"unrealized_pct": -4.55
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}
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],
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"breakeven": [],
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"summary": {
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"total_positions": 2,
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"profitable_count": 1,
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"unprofitable_count": 1,
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"breakeven_count": 0,
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"win_rate": 50.0
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}
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}
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```
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### 3. 估算交易成本
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```bash
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POST /api/portfolio/estimate_cost
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Content-Type: application/json
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{
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"code": "600519",
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"price": 1680.0,
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"qty": 100,
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"side": "buy"
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}
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```
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**用途**: 下单前预估实际成本
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**响应示例**:
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```json
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{
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"ok": true,
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"code": "600519",
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"price": 1680.0,
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"qty": 100,
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"side": "buy",
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"cost_detail": {
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"amount": 168000.0,
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"commission": 50.4,
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"stamp_tax": 0.0,
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"transfer_fee": 1.68,
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"total_cost": 52.08,
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"cost_rate": 0.031
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},
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"net_amount": 168052.08,
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"message": "买入需支付: 168052.08 元(含交易成本 52.08 元)"
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}
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```
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### 4. 获取持仓成本明细
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```bash
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GET /api/portfolio/cost_breakdown/{code}
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```
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**用途**: 查看累计交易成本拆解
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**响应示例**:
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```json
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{
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"ok": true,
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"code": "600519",
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"name": "贵州茅台",
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"total_cost": 168052.08,
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"purchase_amount": 168000.0,
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"commission": 50.4,
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"stamp_tax": 0.0,
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"transfer_fee": 1.68,
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"cost_rate": 0.031,
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"trades": [
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{
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"date": "2024-01-15",
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"price": 1680.0,
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"qty": 100,
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"amount": 168000.0,
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"cost_detail": {
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"amount": 168000.0,
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"commission": 50.4,
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"stamp_tax": 0.0,
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"transfer_fee": 1.68,
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"total_cost": 52.08,
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"cost_rate": 0.031
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}
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}
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]
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}
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```
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---
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## 使用场景
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### 场景 1: K线图上标注成本线
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**前端实现示例**:
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```javascript
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// 获取K线数据
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const klineData = await fetch(`/api/kline?symbol=600519&days=60`).then(r => r.json());
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// 获取成本线数据
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const costData = await fetch(`/api/portfolio/cost_line/600519`).then(r => r.json());
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if (costData.ok && costData.current_position) {
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const avgCost = costData.current_position.avg_cost;
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const currentPrice = costData.current_position.current_price;
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// ECharts 配置
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const option = {
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title: {
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text: `${costData.name} - 成本: ${avgCost} 当前: ${currentPrice}`
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},
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series: [
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{
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type: 'candlestick',
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data: klineData.ohlc
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},
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{
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type: 'line',
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name: '持仓成本',
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data: Array(klineData.dates.length).fill(avgCost),
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lineStyle: {
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color: '#FFA500',
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width: 2,
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type: 'dashed'
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},
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markLine: {
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data: [{ yAxis: avgCost, name: `成本 ${avgCost}` }]
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}
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}
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]
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};
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}
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```
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### 场景 2: 盈亏分布饼图
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```javascript
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const distData = await fetch('/api/portfolio/cost_distribution').then(r => r.json());
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if (distData.ok) {
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const option = {
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title: { text: '持仓盈亏分布' },
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series: [{
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type: 'pie',
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data: [
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{
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value: distData.profitable.length,
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name: `盈利 ${distData.profitable.length}`,
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itemStyle: { color: '#26a69a' }
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},
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{
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value: distData.unprofitable.length,
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name: `亏损 ${distData.unprofitable.length}`,
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itemStyle: { color: '#ef5350' }
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}
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]
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}]
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};
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}
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```
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### 场景 3: 下单前成本计算
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```javascript
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// 用户输入买入价格和数量
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const buyPrice = 1680;
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const buyQty = 100;
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const estimate = await fetch('/api/portfolio/estimate_cost', {
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method: 'POST',
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headers: { 'Content-Type': 'application/json' },
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body: JSON.stringify({
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code: '600519',
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price: buyPrice,
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qty: buyQty,
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side: 'buy'
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})
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}).then(r => r.json());
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if (estimate.ok) {
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alert(`${estimate.message}\n\n成本明细:\n` +
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`佣金: ${estimate.cost_detail.commission}元\n` +
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`过户费: ${estimate.cost_detail.transfer_fee}元\n` +
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`印花税: ${estimate.cost_detail.stamp_tax}元`);
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}
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```
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---
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## 完整示例
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### Python 脚本示例
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```python
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import requests
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import json
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BASE_URL = "http://localhost:8000"
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# 1. 查看持仓成本线
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def show_cost_line(code):
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resp = requests.get(f"{BASE_URL}/api/portfolio/cost_line/{code}")
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data = resp.json()
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if data["ok"]:
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pos = data["current_position"]
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print(f"\n{data['name']} ({code})")
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print(f"持仓数量: {pos['qty']}股")
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print(f"平均成本: {pos['avg_cost']}元")
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print(f"当前价格: {pos['current_price']}元")
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print(f"浮动盈亏: {pos['unrealized_pnl']}元 ({pos['unrealized_pct']}%)")
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print("\n成本变化历史:")
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for h in data["cost_history"]:
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print(f"{h['date']} {h['action']}: 成本={h['cost']}元, 持仓={h['qty']}股")
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# 2. 查看盈亏分布
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def show_distribution():
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resp = requests.get(f"{BASE_URL}/api/portfolio/cost_distribution")
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data = resp.json()
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if data["ok"]:
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print(f"\n持仓总数: {data['summary']['total_positions']}")
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print(f"盈利: {data['summary']['profitable_count']}")
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print(f"亏损: {data['summary']['unprofitable_count']}")
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print(f"胜率: {data['summary']['win_rate']}%")
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print("\n盈利股票:")
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for s in data["profitable"]:
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print(f"{s['name']}: +{s['unrealized']}元 (+{s['unrealized_pct']}%)")
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print("\n亏损股票:")
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for s in data["unprofitable"]:
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print(f"{s['name']}: {s['unrealized']}元 ({s['unrealized_pct']}%)")
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# 3. 估算交易成本
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def estimate_cost(code, price, qty, side="buy"):
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resp = requests.post(f"{BASE_URL}/api/portfolio/estimate_cost", json={
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"code": code,
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"price": price,
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"qty": qty,
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"side": side
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})
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data = resp.json()
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if data["ok"]:
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print(f"\n{data['message']}")
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cost = data["cost_detail"]
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print(f"\n成本明细:")
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print(f" 成交金额: {cost['amount']}元")
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print(f" 佣金: {cost['commission']}元")
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print(f" 印花税: {cost['stamp_tax']}元")
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print(f" 过户费: {cost['transfer_fee']}元")
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print(f" 总成本: {cost['total_cost']}元 ({cost['cost_rate']}%)")
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# 运行示例
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if __name__ == "__main__":
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show_cost_line("600519")
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show_distribution()
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estimate_cost("600519", 1680, 100, "buy")
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```
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---
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## 最佳实践
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### 1. 成本线使用建议
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- **买入参考**: 当价格接近成本线时考虑加仓
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- **止损参考**: 设置成本线下方一定比例作为止损位
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- **目标价参考**: 成本线上方设置分批止盈位
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### 2. 成本计算注意事项
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- **沪深区别**: 深市(000、002、300开头)无过户费
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- **最低佣金**: 单笔佣金不足5元按5元收取
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- **印花税**: 只在卖出时收取,买入无需支付
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### 3. 盈亏分析建议
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- **定期检查**: 每周查看盈亏分布,调整持仓结构
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- **及时止损**: 亏损超过-8%的持仓需要重新评估
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- **落袋为安**: 盈利超过+20%考虑分批止盈
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---
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## 与其他功能集成
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### 与自选股分组集成
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```bash
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# 将持仓股添加到"持仓股"分组
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curl -X POST http://localhost:8000/api/watchlist/groups/3/stocks/batch \
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-H "Content-Type: application/json" \
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-d '{"codes":["600519","300750"]}'
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```
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### 与预警系统集成
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```bash
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# 为持仓股设置成本价预警(跌破成本-5%)
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AVG_COST=1680
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STOP_LOSS=$(echo "$AVG_COST * 0.95" | bc)
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curl -X POST http://localhost:8000/api/alerts \
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-H "Content-Type: application/json" \
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-d '{"code":"600519","kind":"price_below","threshold":'$STOP_LOSS',"note":"跌破成本-5%"}'
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```
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---
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## 常见问题
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### Q: 为什么计算的成本和实际有差异?
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A: 可能原因:
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1. 交易记录未完整录入
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2. 券商佣金费率不同(本系统默认万三)
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3. 分红、配股等特殊情况未计入
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### Q: 如何修改佣金费率?
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A: 编辑 `backend/position_cost.py` 中的 `COST_CONFIG` 配置:
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```python
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COST_CONFIG = {
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"commission_rate": 0.0003, # 改为实际佣金率
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"commission_min": 5.0, # 改为实际最低佣金
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}
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```
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### Q: 成本线为什么不显示?
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A: 检查:
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1. 该股票是否有交易记录
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2. 当前是否有持仓(已清仓则无成本线)
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3. 接口返回是否成功
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### Q: 补仓后成本如何计算?
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A: 使用加权平均法:
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```
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新成本 = (原持仓成本 + 补仓金额 + 补仓费用) / 新持仓数量
|
||
```
|
||
|
||
---
|
||
|
||
## 技术实现
|
||
|
||
### 核心模块
|
||
- `backend/position_cost.py` - 成本计算核心逻辑
|
||
- `backend/portfolio.py` - 原有持仓管理
|
||
- `backend/main.py` - API 接口定义
|
||
|
||
### 算法说明
|
||
|
||
**移动加权平均成本法**:
|
||
```python
|
||
if side == "buy":
|
||
total_cost += price * qty + fee
|
||
total_qty += qty
|
||
avg_cost = total_cost / total_qty
|
||
else: # sell
|
||
avg_cost = total_cost / total_qty
|
||
pnl = (price - avg_cost) * qty - fee
|
||
total_cost -= avg_cost * qty
|
||
total_qty -= qty
|
||
```
|
||
|
||
---
|
||
|
||
**实现完成时间**: 2024年
|
||
**功能状态**: ✅ 已完成并测试
|