Python-如何在Flask中提供静态文件
发布于 2021-02-02 23:24:39
我有一个应用程序,该应用程序已集成在一起,Flask现在它只提供一个静态HTML页面,其中包含指向CSS和JS的链接。而且我找不到文档中Flask描述返回静态文件的位置。是的,我可以使用,render_template但是我知道数据没有模板化。我还以为send_file或者url_for是正确的事情,但我不能让这些工作。同时,我正在打开文件,阅读内容,并装配Response具有适当mimetype的:
import os.path
from flask import Flask, Response
app = Flask(__name__)
app.config.from_object(__name__)
def root_dir(): # pragma: no cover
return os.path.abspath(os.path.dirname(__file__))
def get_file(filename): # pragma: no cover
try:
src = os.path.join(root_dir(), filename)
# Figure out how flask returns static files
# Tried:
# - render_template
# - send_file
# This should not be so non-obvious
return open(src).read()
except IOError as exc:
return str(exc)
@app.route('/', methods=['GET'])
def metrics(): # pragma: no cover
content = get_file('jenkins_analytics.html')
return Response(content, mimetype="text/html")
@app.route('/', defaults={'path': ''})
@app.route('/<path:path>')
def get_resource(path): # pragma: no cover
mimetypes = {
".css": "text/css",
".html": "text/html",
".js": "application/javascript",
}
complete_path = os.path.join(root_dir(), path)
ext = os.path.splitext(path)[1]
mimetype = mimetypes.get(ext, "text/html")
content = get_file(complete_path)
return Response(content, mimetype=mimetype)
if __name__ == '__main__': # pragma: no cover
app.run(port=80)
有人要为此提供代码示例或网址吗?我知道这将变得简单。
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1 个回答
-
首选方法是使用nginx或其他Web服务器提供静态文件。他们将比Flask更有效率。
但是,你可以用来send_from_directory从目录发送文件,这在某些情况下非常方便:
from flask import Flask, request, send_from_directory # set the project root directory as the static folder, you can set others. app = Flask(__name__, static_url_path='') @app.route('/js/<path:path>') def send_js(path): return send_from_directory('js', path) if __name__ == "__main__": app.run() 千万不能使用send_file或send_static_file与用户提供的路径。 send_static_file 例: from flask import Flask, request # set the project root directory as the static folder, you can set others. app = Flask(__name__, static_url_path='') @app.route('/') def root(): return app.send_static_file('index.html')
