我有一个ttk.combobox,里面填充了数据库中的数据,当用户选择数据时,我需要检索所选数据的ID。当用户选择数据时,我需要检索所选择的数据的ID,我有一个解决方案,但我相信有一个更优雅和简单的解决方案,但我找不到。
我有一个解决方案,但我相信有一个更优雅和简单的解决方案,但我不能找到一个。我用'.'分割SQL行ID,然后从Combobox中把字符串变成用'.'分割的列表,然后检索list[0]的ID。
代码示例。
from tkinter import *
from tkinter import ttk
import sqlite3
import DataBasePM
DBProjectManager2=DataBasePM.DBProjectManager2
def DropDownProjectView():
con=sqlite3.connect(DBProjectManager2)
con.row_factory = lambda curs, row:str(row[0])+". "+ row[1] #split ID with '.'
curs= con.cursor()
curs.execute( """SELECT idProject, ProjectName
FROM Project WHERE idStatus=1""")
rows=curs.fetchall()
con.close()
return rows
def GetIDFromDropDown(pickedString):
GetID=pickedString
GetID = list(GetID.split(".")) #id is before '.'
GetID=(int(GetID[0]))
print(GetID)
root = Tk()
root.title("Tkinter ex")
root.geometry("400x400")
project_name_drop = ttk.Combobox (root, value=DropDownProjectView() )
project_name_drop.pack()
buttonA=Button(root, text="get ID",command=lambda: GetIDFromDropDown(project_name_drop.get()))
buttonA.pack()
root.mainloop()
你可以返回字典而不是列表 DropDownProjectView():
def DropDownProjectView():
con=sqlite3.connect(DBProjectManager2)
# return two items in each record: dropdown-item, id
con.row_factory = lambda curs, row: (str(row[0])+". "+row[1], row[0])
curs= con.cursor()
curs.execute("SELECT idProject, ProjectName FROM Project WHERE idStatus=1")
# build a dictionary with dropdown-item as key and id as value
rows = {r[0]:r[1] for r in curs}
con.close()
return rows
那就用 list(rows.keys()) 作为下拉项。
rows = DropDownProjectView()
project_name_drop = ttk.Combobox (root, value=list(rows.keys()))
project_name_drop.pack()
最后,用 rows[pickedString] 以获得ID GetIDFromDropDown():
def GetIDFromDropDown(pickedString):
# cater exceptional case
if pickedString in rows:
id = rows[pickedString]
print(id)
else:
print("invalid option: '%s'" % pickedString)