问题
I'm trying to get the list of files in a particular directory and count the number of files in the directory. I always get the following error:
WindowsError: [Error 3] The system cannot find the path specified: '/client_side/*.*'
My code is:
print len([name for name in os.listdir('/client_side/') if os.path.isfile(name)])
I followed the code example given here.
I am running the Python script on Pyscripter and the directory /client_side/ do exists. My python code is in the root folder and has a sub-folder called "client_side". Can someone help me out on this?
回答1:
This error occurs when you use os.listdir
on a path which does not refer to an existing path.
For example:
>>> os.listdir('Some directory does not exist')
Traceback (most recent call last):
File "<interactive input>", line 1, in <module>
WindowsError: [Error 3] : 'Some directory does not exist/*.*'
If you want to use os.listdir
, you need to either guarantee the existence of the path that you would use, or use os.path.exists
to check the existence first.
if os.path.exists('/client_side/'):
do something
else:
do something
Suppose your current working directory is c:\foobar
, os.listdir('/client_side/')
is equivalent to os.listdir('c:/client_side')
, while os.listdir('client_side/')
is equivalent to os.listdir('c:/foobar/client_side')
. If your client_side directory is not in the root, such error will occur when using os.listdir
.
For your 0 ouput problem, let us recall os.listdir(path)
Return a list containing the names of the entries in the directory given by path. The list is in arbitrary order. It does not include the special entries '.' and '..' even if they are present in the directory.
and os.path.isfile(path).
Return True if path is an existing regular file. This follows symbolic links, so both islink() and isfile() can be true for the same path.
listdir
returns neither the absolute paths nor relative paths, but a list of the name of your files, while isfile
requires path. Therefore, all of those names would yield False
.
To obtain the path, we can either use os.path.join , concat two strings directly.
print ([name for name in os.listdir(path)
if os.path.isfile(os.path.join(path, name))])
Or
print ([name for name in os.listdir('client_side/')
if os.path.isfile('client_side/' + name)])
回答2:
I decided to change the code into:
def numOfFiles(path):
return len(next(os.walk(path))[2])
and use the following the call the code:
print numOfFiles("client_side")
Many thanks to everyone who told me how to pass the windows directory correctly in Python and to nrao91 in here for providing the function code.
EDIT: Thank you eryksun for correcting my code!
回答3:
Two things:
- os.listdir() does not do a glob pattern matching, use the glob module for that
- probably you do not have a directory called '/client_side/*.*', but maybe one without the . in the name
The syntax you used works fine, if the directory you look for exists, but there is no directory called '/client_side/.'.
In addition, be careful if using Python 2.x and os.listdir, as the results on windows are different when you use u'/client_side/' and just '/client_side'.
回答4:
You can do just
os.listdir('client_side')
without slashes.
回答5:
As I can see a WindowsError
, Just wondering if this has something to do with the '/' in windows ! Ideally, on windows, you should have something like os.path.join('C:','client_side')
回答6:
You want:
print len([name for name in os.listdir('./client_side/') if os.path.isfile(name)])
with a "." before "/client_side/".
The dot means the current path where you are working (i.e. from where you are calling your code), so "./client_side/" represents the path you want, which is specified relatively to your current directory.
If you write only "/client_side/", in unix, the program would look for a folder in the root of the system, instead of the folder that you want.
回答7:
If you just want to see all the files in the directory where your script is located, you can use os.path.dirname(sys.argv[0])
. This will give the path of the directory where your script is.
Then, with fnmatch
function you can obtain the list of files in that directory with a name and/or extension specified in the filename
variable.
import os,sys
from fnmatch import fnmatch
directory = os.path.dirname(sys.argv[0]) #this determines the directory
file_name= "*" #if you want the python files only, change "*" to "*.py"
for path, subdirs, files in os.walk(directory):
for name in files:
if fnmatch(name, file_name):
print (os.path.join(path, name))
I hope this helps.
回答8:
Checking for existence is subject to a race. Better to handle the error (beg forgiveness instead of ask permission). Plus, in Python 3 you can suppress errors. Use suppress from contextlib:
with suppress(FileNotFoundError):
for name in os.listdir('foo'):
print(name)
来源:https://stackoverflow.com/questions/15452099/error-while-using-listdir-in-python