打开两个 excel 个文件
Open two excel files
我正在尝试通过 win32com 打开两个 excel 文件并尝试将 sheet 从一个工作簿移动到另一个工作簿,如下所示:
ScriptDirectory = os.path.dirname(__file__) # this script dir # path
xl = Dispatch('Excel.Application')
wb_Header = xl.Workbooks.Open(ScriptDirectory+'\Report_Header.xlsx')
ws_Header = wb_Header.Sheets("Header")
wb_Report = xl.Workbooks.Open(ScriptDirectory+'\Report1.xlsx')
ws_Header.Move(before=wb_Report.Sheets("Test Cases"))
wb_Header.Close()
wb_Report.Close()
xl.Quit()
但它以错误结束:
Traceback (most recent call last):
File "C:\Workspace\ADTF_BV\Create_reports_v2.py", line 406, in <module>
wb_Report = xl.Workbooks.Open(ScriptDirectory+'\Report1.xlsx')
File "C:\Python27\lib\site-packages\win32com\gen_py[=12=]020813-0000-0000-C000-000000000046x0x1x7\Workbooks.py", line 78, in Open
, Converter, AddToMru, Local, CorruptLoad)
pywintypes.com_error: (-2147417851, 'the server threw an exception', None, None)`
我想也许我不能打开两个 Dispatch,但是当我像这样创建第二个 Dispatch 时:
ScriptDirectory = os.path.dirname(__file__) # this script dir # path
xl = Dispatch('Excel.Application')
wb_Header = xl.Workbooks.Open(ScriptDirectory+'\Report_Header.xlsx')
ws_Header = wb_Header.Sheets("Header")
xl2 = Dispatch('Excel.Application')
wb_Report = xl2.Workbooks.Open(ScriptDirectory+'\Report1.xlsx')
ws_Header.Move(before=wb_Report.Sheets("Test Cases"))
wb_Header.Close()
wb_Report.Close()
xl.Quit()
没用。
当我只打开一个文件时,我工作正常。貌似不能处理打开第二个
好的,现在它可以工作了,当我改变代码行的顺序时,像这样:
xl = Dispatch('Excel.Application')
wb_Header = xl.Workbooks.Open(ScriptDirectory+'\Report_Header.xlsx')
wb_Report = xl.Workbooks.Open(ScriptDirectory+'\Report1.xlsx')
ws_Header = wb_Header.Sheets("Header")
ws_Header.Copy(Before=wb_Report.Sheets("Test Cases"))
我正在尝试通过 win32com 打开两个 excel 文件并尝试将 sheet 从一个工作簿移动到另一个工作簿,如下所示:
ScriptDirectory = os.path.dirname(__file__) # this script dir # path
xl = Dispatch('Excel.Application')
wb_Header = xl.Workbooks.Open(ScriptDirectory+'\Report_Header.xlsx')
ws_Header = wb_Header.Sheets("Header")
wb_Report = xl.Workbooks.Open(ScriptDirectory+'\Report1.xlsx')
ws_Header.Move(before=wb_Report.Sheets("Test Cases"))
wb_Header.Close()
wb_Report.Close()
xl.Quit()
但它以错误结束:
Traceback (most recent call last):
File "C:\Workspace\ADTF_BV\Create_reports_v2.py", line 406, in <module>
wb_Report = xl.Workbooks.Open(ScriptDirectory+'\Report1.xlsx')
File "C:\Python27\lib\site-packages\win32com\gen_py[=12=]020813-0000-0000-C000-000000000046x0x1x7\Workbooks.py", line 78, in Open
, Converter, AddToMru, Local, CorruptLoad)
pywintypes.com_error: (-2147417851, 'the server threw an exception', None, None)`
我想也许我不能打开两个 Dispatch,但是当我像这样创建第二个 Dispatch 时:
ScriptDirectory = os.path.dirname(__file__) # this script dir # path
xl = Dispatch('Excel.Application')
wb_Header = xl.Workbooks.Open(ScriptDirectory+'\Report_Header.xlsx')
ws_Header = wb_Header.Sheets("Header")
xl2 = Dispatch('Excel.Application')
wb_Report = xl2.Workbooks.Open(ScriptDirectory+'\Report1.xlsx')
ws_Header.Move(before=wb_Report.Sheets("Test Cases"))
wb_Header.Close()
wb_Report.Close()
xl.Quit()
没用。 当我只打开一个文件时,我工作正常。貌似不能处理打开第二个
好的,现在它可以工作了,当我改变代码行的顺序时,像这样:
xl = Dispatch('Excel.Application')
wb_Header = xl.Workbooks.Open(ScriptDirectory+'\Report_Header.xlsx')
wb_Report = xl.Workbooks.Open(ScriptDirectory+'\Report1.xlsx')
ws_Header = wb_Header.Sheets("Header")
ws_Header.Copy(Before=wb_Report.Sheets("Test Cases"))