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import streamlit as st | |
import twstock | |
import pandas as pd | |
import matplotlib.pyplot as plt | |
def fetch_recent_stock_data(stock_code): | |
""" | |
使用 twstock 獲取近期股票交易數據 | |
""" | |
try: | |
stock = twstock.Stock(stock_code) | |
recent_data = stock.fetch_31() # 抓取最近 31 天的交易數據 | |
if not recent_data: | |
st.warning(f"無法找到 {stock_code} 的交易數據。") | |
return None | |
# 將數據整理為 DataFrame 格式 | |
data_list = [ | |
{ | |
"Date": data.date.strftime('%Y-%m-%d'), | |
"Open": data.open, | |
"High": data.high, | |
"Low": data.low, | |
"Close": data.close, | |
"Transaction": data.transaction, | |
"Capacity": data.capacity, | |
"Turnover": data.turnover | |
} | |
for data in recent_data | |
] | |
df = pd.DataFrame(data_list) | |
df['Date'] = pd.to_datetime(df['Date']) | |
return df | |
except Exception as e: | |
st.error(f"發生錯誤: {e}") | |
return None | |
def plot_stock_price(df): | |
""" | |
使用 matplotlib 繪製股價走勢 | |
""" | |
plt.figure(figsize=(12, 6)) | |
plt.plot(df['Date'], df['Close'], label='收盤價') | |
plt.plot(df['Date'], df['Close'].rolling(window=5).mean(), label='5日移動平均', linestyle='--') | |
plt.title('股價走勢') | |
plt.xlabel('日期') | |
plt.ylabel('股價') | |
plt.legend() | |
plt.xticks(rotation=45) | |
plt.tight_layout() | |
return plt | |
def main(): | |
st.set_page_config(page_title="台股分析工具", page_icon=":chart_with_upwards_trend:", layout="wide") | |
st.title("🚀 台股分析工具") | |
# 側邊欄設置 | |
with st.sidebar: | |
st.header("股票分析") | |
# 股票代碼輸入 | |
stock_code = st.text_input( | |
"股票代號", | |
value="2330", | |
placeholder="例如: 2330" | |
) | |
# 股票分析頁籤 | |
tab1, tab2 = st.tabs(["股價走勢圖", "近期交易數據"]) | |
with tab1: | |
# 股價走勢圖 | |
if st.button("繪製股價走勢圖"): | |
# 獲取股票數據 | |
df = fetch_recent_stock_data(stock_code) | |
if df is not None: | |
# 繪製股價圖 | |
fig = plot_stock_price(df) | |
st.pyplot(fig) | |
with tab2: | |
# 近期交易數據 | |
st.subheader("個股近期交易數據") | |
if st.button("查詢交易數據"): | |
# 獲取近期股票數據 | |
df = fetch_recent_stock_data(stock_code) | |
if df is not None: | |
# 顯示數據 | |
st.dataframe(df) | |
# 統計資訊 | |
st.subheader("基本統計") | |
col1, col2, col3 = st.columns(3) | |
with col1: | |
st.metric("平均收盤價", f"{df['Close'].mean():.2f}") | |
with col2: | |
st.metric("最高價", f"{df['High'].max():.2f}") | |
with col3: | |
st.metric("最低價", f"{df['Low'].min():.2f}") | |
# 匯出 CSV | |
csv_data = df.to_csv(index=False).encode('utf-8-sig') | |
st.download_button( | |
label="下載CSV", | |
data=csv_data, | |
file_name=f"{stock_code}_recent_30days.csv", | |
mime="text/csv" | |
) | |
if __name__ == "__main__": | |
main() |