我有一个文章的模型,根据它的标题将有slug,模型是这样的:
from sqlalchemy.ext.declarative import declarative_base
from sqlalchemy import Column, Integer, String, Text
Base = declarative_base()
class Article(Base):
__tablename__ = 'article'
id = Column(Integer, primary_key=True)
title = Column(String(100), nullable=False)
content = Column(Text)
slug = Column(String(100), nullable=False,
default=lambda c: c.current_params['title'],
onupdate=lambda c: c.current_params['title'])
slug取得冠军的价值.所以,每次文章slug都会匹配它的标题.但是,当我编辑内容而不更改其标题时,会引发此异常
(builtins.KeyError) 'title' [SQL: 'UPDATE article SET content=?, slug=?,
updated_at=? WHERE article = ?'] [parameters: [{'article_id': 1,
'content': 'blah blah blah'}]]
我猜是因为current_params不包含title.如果,我改变lambda那里和使用if,slug将是None.那么我怎么能处理这个并保持slug值与它的标题相匹配?