Why am I getting "IndentationError: expected an indented block"? [duplicate]

if len(trashed_files) == 0 :
    print "No files trashed from current dir ('%s')" % os.path.realpath(os.curdir)
else :
    index=raw_input("What file to restore [0..%d]: " % (len(trashed_files)-1))
    if index == "*" :
        for tfile in trashed_files :
            try:
                tfile.restore()
            except IOError, e:
                import sys
                print >> sys.stderr, str(e)
                sys.exit(1)
    elif index == "" :
        print "Exiting"
    else :
        index = int(index)
        try:
            trashed_files[index].restore()
        except IOError, e:
            import sys
            print >> sys.stderr, str(e)
            sys.exit(1)

I am getting:

        elif index == "" :
        ^
    IndentationError: expected an indented block

Solution 1:

As the error message indicates, you have an indentation error. It is probably caused by a mix of tabs and spaces.

Solution 2:

There are in fact multiples things you need to know about indentation in Python:

Python really cares about indention.

In a lot of other languages the indention is not necessary but improves readability. In Python indentation replaces the keyword begin / end or { } and is therefore necessary.

This is verified before the execution of the code, therefore even if the code with the indentation error is never reached, it won't work.

There are different indention errors and you reading them helps a lot:

1. "IndentationError: expected an indented block"

They are two main reasons why you could have such an error:

- You have a ":" without an indented block behind.

Here are two examples:

Example 1, no indented block:

Input:

if 3 != 4:
    print("usual")
else:

Output:

  File "<stdin>", line 4

    ^
IndentationError: expected an indented block

The output states that you need to have an indented block on line 4, after the else: statement

Example 2, unindented block:

Input:

if 3 != 4:
print("usual")

Output

  File "<stdin>", line 2
    print("usual")
        ^
IndentationError: expected an indented block

The output states that you need to have an indented block line 2, after the if 3 != 4: statement

- You are using Python2.x and have a mix of tabs and spaces:

Input

def foo():
    if 1:
        print 1

Please note that before if, there is a tab, and before print there is 8 spaces.

Output:

  File "<stdin>", line 3
    print 1
      ^
IndentationError: expected an indented block

It's quite hard to understand what is happening here, it seems that there is an indent block... But as I said, I've used tabs and spaces, and you should never do that.

• You can get some info here.
• Remove all tabs and replaces them by four spaces.
• And configure your editor to do that automatically.

2. "IndentationError: unexpected indent"

It is important to indent blocks, but only blocks that should be indent. So basically this error says:

- You have an indented block without a ":" before it.

Example:

Input:

a = 3
  a += 3

Output:

  File "<stdin>", line 2
    a += 3
    ^
IndentationError: unexpected indent

The output states that he wasn't expecting an indent block line 2, then you should remove it.

3. "TabError: inconsistent use of tabs and spaces in indentation" (python3.x only)

• You can get some info here.
• But basically it's, you are using tabs and spaces in your code.
• You don't want that.
• Remove all tabs and replaces them by four spaces.
• And configure your editor to do that automatically.

Just look at the line number of the error, and fix it using the previous information.

Solution 3:

I had this same problem and discovered (via this answer to a similar question) that the problem was that I didn't properly indent the docstring properly. Unfortunately IDLE doesn't give useful feedback here, but once I fixed the docstring indentation, the problem went away.

Specifically --- bad code that generates indentation errors:

def my_function(args):
"Here is my docstring"
    ....

Good code that avoids indentation errors:

def my_function(args):
    "Here is my docstring"
    ....

Note: I'm not saying this is the problem, but that it might be, because in my case, it was!

Solution 4:

in python intended block mean there is every thing must be written in manner in my case I written it this way

 def btnClick(numbers):
 global operator
 operator = operator + str(numbers)
 text_input.set(operator)

Note.its give me error,until I written it in this way such that "giving spaces " then its giving me a block as I am trying to show you in function below code

def btnClick(numbers):
___________________________
|global operator
|operator = operator + str(numbers)
|text_input.set(operator)