Why can I use a list index as an indexing variable in a for loop? The 2019 Stack Overflow...

If my opponent casts Ultimate Price on my Phantasmal Bear, can I save it by casting Snap or Curfew?

How can I add encounters in the Lost Mine of Phandelver campaign without giving PCs too much XP?

Finding the area between two curves with Integrate

How can I define good in a religion that claims no moral authority?

Deal with toxic manager when you can't quit

Did Scotland spend $250,000 for the slogan "Welcome to Scotland"?

How to charge AirPods to keep battery healthy?

The difference between dialogue marks

Pokemon Turn Based battle (Python)

Why was M87 targeted for the Event Horizon Telescope instead of Sagittarius A*?

Can we generate random numbers using irrational numbers like π and e?

How do I free up internal storage if I don't have any apps downloaded?

Is it ethical to upload a automatically generated paper to a non peer-reviewed site as part of a larger research?

Short story: child made less intelligent and less attractive

Button changing its text & action. Good or terrible?

How did passengers keep warm on sail ships?

How to notate time signature switching consistently every measure

Why are there uneven bright areas in this photo of black hole?

How come people say “Would of”?

How much of the clove should I use when using big garlic heads?

How to type a long/em dash `—`

What to do when moving next to a bird sanctuary with a loosely-domesticated cat?

Keeping a retro style to sci-fi spaceships?

Kerning for subscripts of sigma?

Why can I use a list index as an indexing variable in a for loop?

The 2019 Stack Overflow Developer Survey Results Are InHow do I check if a list is empty?Finding the index of an item given a list containing it in PythonUsing global variables in a functionAccessing the index in 'for' loops?Understanding Python super() with __init__() methodsConvert bytes to a string?How do I sort a dictionary by value?How to make a flat list out of list of lists?How do I pass a variable by reference?How do I list all files of a directory?

.everyoneloves__top-leaderboard:empty,.everyoneloves__mid-leaderboard:empty,.everyoneloves__bot-mid-leaderboard:empty{ height:90px;width:728px;box-sizing:border-box;
}

I have the following code:

a = [0,1,2,3]



for a[-1] in a:

  print(a[-1])

The output is:

0,1,2,2

I'm confused about why a list index can be used as an indexing variable in a for a loop?

edited 2 mins ago

Christian Dean

15.8k62859

asked 43 mins ago

Kundan Verma

561

New contributor

6

Somehow this question looks like a bad and newbie question, but I don't get the logic either lol

– gameon67
33 mins ago

3

I don't know why you would ever want to do this, but now I know you can

– Nathan
31 mins ago

over the iteration only the last time a[-1] gets its value, all other times python treats as iteration variable.

– Arun Augustine
27 mins ago

5

This would be a great question for an awful coding interview

– Nathan
24 mins ago

@Nathan same idea, would be a great trivial question in interview

– gameon67
24 mins ago

|
show 1 more comment

I have the following code:

a = [0,1,2,3]



for a[-1] in a:

  print(a[-1])

The output is:

0,1,2,2

I'm confused about why a list index can be used as an indexing variable in a for a loop?

edited 2 mins ago

Christian Dean

15.8k62859

asked 43 mins ago

Kundan Verma

561

New contributor

6

Somehow this question looks like a bad and newbie question, but I don't get the logic either lol

– gameon67
33 mins ago

3

I don't know why you would ever want to do this, but now I know you can

– Nathan
31 mins ago

over the iteration only the last time a[-1] gets its value, all other times python treats as iteration variable.

– Arun Augustine
27 mins ago

5

This would be a great question for an awful coding interview

– Nathan
24 mins ago

@Nathan same idea, would be a great trivial question in interview

– gameon67
24 mins ago

|
show 1 more comment

I have the following code:

a = [0,1,2,3]



for a[-1] in a:

  print(a[-1])

The output is:

0,1,2,2

I'm confused about why a list index can be used as an indexing variable in a for a loop?

edited 2 mins ago

Christian Dean

15.8k62859

asked 43 mins ago

Kundan Verma

561

New contributor

I have the following code:

a = [0,1,2,3]



for a[-1] in a:

  print(a[-1])

The output is:

0,1,2,2

I'm confused about why a list index can be used as an indexing variable in a for a loop?

python

edited 2 mins ago

Christian Dean

15.8k62859

asked 43 mins ago

Kundan Verma

561

New contributor

edited 2 mins ago

Christian Dean

15.8k62859

asked 43 mins ago

Kundan Verma

561

New contributor

edited 2 mins ago

Christian Dean

15.8k62859

edited 2 mins ago

Christian Dean

15.8k62859

edited 2 mins ago

Christian Dean

15.8k62859

asked 43 mins ago

Kundan Verma

561

New contributor

asked 43 mins ago

Kundan Verma

561

asked 43 mins ago

Kundan Verma

561

New contributor

Kundan Verma is a new contributor to this site. Take care in asking for clarification, commenting, and answering.
Check out our Code of Conduct.

6

Somehow this question looks like a bad and newbie question, but I don't get the logic either lol

– gameon67
33 mins ago

3

I don't know why you would ever want to do this, but now I know you can

– Nathan
31 mins ago

over the iteration only the last time a[-1] gets its value, all other times python treats as iteration variable.

– Arun Augustine
27 mins ago

5

This would be a great question for an awful coding interview

– Nathan
24 mins ago

@Nathan same idea, would be a great trivial question in interview

– gameon67
24 mins ago

|
show 1 more comment

6

Somehow this question looks like a bad and newbie question, but I don't get the logic either lol

– gameon67
33 mins ago

3

I don't know why you would ever want to do this, but now I know you can

– Nathan
31 mins ago

over the iteration only the last time a[-1] gets its value, all other times python treats as iteration variable.

– Arun Augustine
27 mins ago

5

This would be a great question for an awful coding interview

– Nathan
24 mins ago

@Nathan same idea, would be a great trivial question in interview

– gameon67
24 mins ago

Somehow this question looks like a bad and newbie question, but I don't get the logic either lol

– gameon67
33 mins ago

I don't know why you would ever want to do this, but now I know you can

– Nathan
31 mins ago

over the iteration only the last time a[-1] gets its value, all other times python treats as iteration variable.

– Arun Augustine
27 mins ago

This would be a great question for an awful coding interview

– Nathan
24 mins ago

@Nathan same idea, would be a great trivial question in interview

– gameon67
24 mins ago

|
show 1 more comment

5 Answers
5

active

oldest

votes

To bring a language-lawyer aspect to the question, let's look at documentation:

for_stmt ::=  "for" target_list "in" expression_list ":" suite
The expression list is evaluated once; it should yield an iterable object. An iterator is created for the result of the expression_list. The suite is then executed once for each item provided by the iterator, in the order returned by the iterator. Each item in turn is assigned to the target list using the standard rules for assignments (see Assignment statements), and then the suite is executed.

^{(emphasis not originally in docs)}
^{The suite refers to the statements under the for-block. print(a[-1]) in OP's example.}

Simply, on each iteration, the loop variable (target_list) gets assigned to the next item in the iterable (expression_list).

Let's extend the print statement:

a = [0, 1, 2, 3]

for a[-1] in a:

    print(a, a[-1])

This gives the following output:

[0, 1, 2, 0] 0    # a[-1] assigned 0

[0, 1, 2, 1] 1    # a[-1] assigned 1

[0, 1, 2, 2] 2    # a[-1] assigned 2

[0, 1, 2, 2] 2    # a[-1] assigned itself (2)

As a[-1] is a valid form left-hand side, assignments to a[-1] will mutate a, modifying the list during iteration. In this particular example, a[-1] retains -2 from the previous evaluation. If we trace the assignment on each iteration, we have

a[-1] = 0    # a[0] # a[3] is 0 now

a[-1] = 1    # a[1] # a[3] is 1 now

a[-1] = 2    # a[2] # a[3] is 2 now

a[-1] = 2    # a[3] # a[3] is itself (2)

edited 4 mins ago

answered 23 mins ago

TrebledJ

3,74421328

2

Might be useful to bold Each item [...] is assigned to the target list using the standard rules for assignments.

– Mateen Ulhaq
19 mins ago

2

Essentially, the important thing to note here is that Python considers a[-1] to be a valid form of the left-hand side of an assignment statement (e.g. a[-1] = 1 is valid grammar). Thus a[-1] is a valid "variable" name, because as the documentation stated, it evaluates the binding variable(s) in a for loop declaration as it would the left-hand side of an assignment.

– Christian Dean
7 mins ago

add a comment |

it is an interesting question, you can understand it by that:

for v in a:

    a[-1] = v

    print(a[-1])



print(a)

actually a becomes: [0, 1, 2, 2] after loop

output:

0

1

2

2

[0, 1, 2, 2]

Hope that helps you, and comment if you have further questions. : )

answered 25 mins ago

recnac

1,183123

add a comment |

(this is more of a long comment than an answer - there are a couple of good ones already, especially @TrebledJ's. But I had to think of it explicitly in terms of overwriting variables that already have values before it clicked for me.)

If you had

x = 0

l = [1, 2, 3]

for x in l:

    print(x)

you wouldn't be surprised that x is overriden each time through the loop. Even though x existed before, its value isn't used (i.e. for 0 in l:, which would throw an error). Rather, we assign the values from l to x.

When we do

a = [0, 1, 2, 3]



for a[-1] in a:

  print(a[-1])

even though a[-1] already exists and has a value, we don't put that value in but rather assign to a[-1] each time through the loop.

edited 7 mins ago

Amir A. Shabani

455616

answered 14 mins ago

Nathan

2,02511326

Somehow I thought the variable used in for loop is immutable. +1 for pointing it out.

– Amir A. Shabani
11 mins ago

add a comment |

The left expression of a for loop statement gets assigned with each item in the iterable on the right in each iteration, so

for n in a:

    print(n)

is just a fancy way of doing:

for i in range(len(a)):

    n = a[i]

    print(n)

Likewise,

for a[-1] in a:

  print(a[-1])

is just a fancy way of doing:

for i in range(len(a)):

    a[-1] = a[i]

    print(a[-1])

where in each iteration, the last item of a gets assigned with the next item in a, so when the iteration finally comes to the last item, its value got last assigned with the second-last item, 2.

answered 20 mins ago

blhsing

43.5k41744

add a comment |

a[-1] refers to the last element of a, in this case a[3]. The for loop is a bit unusual in that it is using this element as the loop variable. So it first gets set to 0, then 1, then 2. Finally, on the last iteration, the for loop retrieves a[3] which at that point is 2, so the list ends up as [0, 1, 2, 2].

A more typical for loop uses a simple local variable name as the loop variable, e.g. for x .... In that case, x is set to the next value upon each iteration. This case is no different, except that a[-1] is set to the next value upon each iteration. You don't see this very often, but it's consistent.

edited 24 mins ago

answered 37 mins ago

Tom Karzes

11.2k1926

How does it actually gets set to 0, then 1, then 2 and finally 2? That's the confusing part!

– Amir A. Shabani
35 mins ago

1

Agree, I don't really understand by reading this answer

– gameon67
35 mins ago

I expected it would be like saying for 3 in a: print(a[-1]) (because a[-1] was 3 at the start of the loop) and give an error, but clearly that's not the case. You're obviously correct about what's happening, but I'm surprised this evaluates this way.

– Nathan
32 mins ago

It's set by the for loop. Each time through, it gets set to the next element of the list. What's the first element? Right, it's 0. What's the second? Right again, it's 1. etc.

– Tom Karzes
32 mins ago

I've expanded the answer to explain more precisely how this works. Hopefully people will understand it this time.

– Tom Karzes
23 mins ago

add a comment |

Your Answer

StackExchange.ifUsing("editor", function () {
StackExchange.using("externalEditor", function () {
StackExchange.using("snippets", function () {
StackExchange.snippets.init();
});
});
}, "code-snippets");

StackExchange.ready(function() {
var channelOptions = {
tags: "".split(" "),
id: "1"
};
initTagRenderer("".split(" "), "".split(" "), channelOptions);

StackExchange.using("externalEditor", function() {
// Have to fire editor after snippets, if snippets enabled
if (StackExchange.settings.snippets.snippetsEnabled) {
StackExchange.using("snippets", function() {
createEditor();
});
}
else {
createEditor();
}
});

function createEditor() {
StackExchange.prepareEditor({
heartbeatType: 'answer',
autoActivateHeartbeat: false,
convertImagesToLinks: true,
noModals: true,
showLowRepImageUploadWarning: true,
reputationToPostImages: 10,
bindNavPrevention: true,
postfix: "",
imageUploader: {
brandingHtml: "Powered by u003ca class="icon-imgur-white" href="https://imgur.com/"u003eu003c/au003e",
contentPolicyHtml: "User contributions licensed under u003ca href="https://creativecommons.org/licenses/by-sa/3.0/"u003ecc by-sa 3.0 with attribution requiredu003c/au003e u003ca href="https://stackoverflow.com/legal/content-policy"u003e(content policy)u003c/au003e",
allowUrls: true
},
onDemand: true,
discardSelector: ".discard-answer"
,immediatelyShowMarkdownHelp:true
});

}
});

Kundan Verma is a new contributor. Be nice, and check out our Code of Conduct.

draft saved

draft discarded

Sign up or log in

StackExchange.ready(function () {
StackExchange.helpers.onClickDraftSave('#login-link');
});

Post as a guest

Name

Required, but never shown

StackExchange.ready(
function () {
StackExchange.openid.initPostLogin('.new-post-login', 'https%3a%2f%2fstackoverflow.com%2fquestions%2f55644201%2fwhy-can-i-use-a-list-index-as-an-indexing-variable-in-a-for-loop%23new-answer', 'question_page');
}
);

Post as a guest

Name

Required, but never shown

5 Answers
5

active

oldest

votes

5 Answers
5

active

oldest

votes

To bring a language-lawyer aspect to the question, let's look at documentation:

for_stmt ::=  "for" target_list "in" expression_list ":" suite
The expression list is evaluated once; it should yield an iterable object. An iterator is created for the result of the expression_list. The suite is then executed once for each item provided by the iterator, in the order returned by the iterator. Each item in turn is assigned to the target list using the standard rules for assignments (see Assignment statements), and then the suite is executed.

^{(emphasis not originally in docs)}
^{The suite refers to the statements under the for-block. print(a[-1]) in OP's example.}

Simply, on each iteration, the loop variable (target_list) gets assigned to the next item in the iterable (expression_list).

Let's extend the print statement:

a = [0, 1, 2, 3]

for a[-1] in a:

    print(a, a[-1])

This gives the following output:

[0, 1, 2, 0] 0    # a[-1] assigned 0

[0, 1, 2, 1] 1    # a[-1] assigned 1

[0, 1, 2, 2] 2    # a[-1] assigned 2

[0, 1, 2, 2] 2    # a[-1] assigned itself (2)

a[-1] = 0    # a[0] # a[3] is 0 now

a[-1] = 1    # a[1] # a[3] is 1 now

a[-1] = 2    # a[2] # a[3] is 2 now

a[-1] = 2    # a[3] # a[3] is itself (2)

edited 4 mins ago

answered 23 mins ago

TrebledJ

3,74421328

2

Might be useful to bold Each item [...] is assigned to the target list using the standard rules for assignments.

– Mateen Ulhaq
19 mins ago

2

Essentially, the important thing to note here is that Python considers a[-1] to be a valid form of the left-hand side of an assignment statement (e.g. a[-1] = 1 is valid grammar). Thus a[-1] is a valid "variable" name, because as the documentation stated, it evaluates the binding variable(s) in a for loop declaration as it would the left-hand side of an assignment.

– Christian Dean
7 mins ago

add a comment |

To bring a language-lawyer aspect to the question, let's look at documentation:

for_stmt ::=  "for" target_list "in" expression_list ":" suite
The expression list is evaluated once; it should yield an iterable object. An iterator is created for the result of the expression_list. The suite is then executed once for each item provided by the iterator, in the order returned by the iterator. Each item in turn is assigned to the target list using the standard rules for assignments (see Assignment statements), and then the suite is executed.

^{(emphasis not originally in docs)}
^{The suite refers to the statements under the for-block. print(a[-1]) in OP's example.}

Simply, on each iteration, the loop variable (target_list) gets assigned to the next item in the iterable (expression_list).

Let's extend the print statement:

a = [0, 1, 2, 3]

for a[-1] in a:

    print(a, a[-1])

This gives the following output:

[0, 1, 2, 0] 0    # a[-1] assigned 0

[0, 1, 2, 1] 1    # a[-1] assigned 1

[0, 1, 2, 2] 2    # a[-1] assigned 2

[0, 1, 2, 2] 2    # a[-1] assigned itself (2)

a[-1] = 0    # a[0] # a[3] is 0 now

a[-1] = 1    # a[1] # a[3] is 1 now

a[-1] = 2    # a[2] # a[3] is 2 now

a[-1] = 2    # a[3] # a[3] is itself (2)

edited 4 mins ago

answered 23 mins ago

TrebledJ

3,74421328

2

Might be useful to bold Each item [...] is assigned to the target list using the standard rules for assignments.

– Mateen Ulhaq
19 mins ago

2

Essentially, the important thing to note here is that Python considers a[-1] to be a valid form of the left-hand side of an assignment statement (e.g. a[-1] = 1 is valid grammar). Thus a[-1] is a valid "variable" name, because as the documentation stated, it evaluates the binding variable(s) in a for loop declaration as it would the left-hand side of an assignment.

– Christian Dean
7 mins ago

add a comment |

To bring a language-lawyer aspect to the question, let's look at documentation:

for_stmt ::=  "for" target_list "in" expression_list ":" suite
The expression list is evaluated once; it should yield an iterable object. An iterator is created for the result of the expression_list. The suite is then executed once for each item provided by the iterator, in the order returned by the iterator. Each item in turn is assigned to the target list using the standard rules for assignments (see Assignment statements), and then the suite is executed.

^{(emphasis not originally in docs)}
^{The suite refers to the statements under the for-block. print(a[-1]) in OP's example.}

Simply, on each iteration, the loop variable (target_list) gets assigned to the next item in the iterable (expression_list).

Let's extend the print statement:

a = [0, 1, 2, 3]

for a[-1] in a:

    print(a, a[-1])

This gives the following output:

[0, 1, 2, 0] 0    # a[-1] assigned 0

[0, 1, 2, 1] 1    # a[-1] assigned 1

[0, 1, 2, 2] 2    # a[-1] assigned 2

[0, 1, 2, 2] 2    # a[-1] assigned itself (2)

a[-1] = 0    # a[0] # a[3] is 0 now

a[-1] = 1    # a[1] # a[3] is 1 now

a[-1] = 2    # a[2] # a[3] is 2 now

a[-1] = 2    # a[3] # a[3] is itself (2)

edited 4 mins ago

answered 23 mins ago

TrebledJ

3,74421328

To bring a language-lawyer aspect to the question, let's look at documentation:

for_stmt ::=  "for" target_list "in" expression_list ":" suite
The expression list is evaluated once; it should yield an iterable object. An iterator is created for the result of the expression_list. The suite is then executed once for each item provided by the iterator, in the order returned by the iterator. Each item in turn is assigned to the target list using the standard rules for assignments (see Assignment statements), and then the suite is executed.

^{(emphasis not originally in docs)}
^{The suite refers to the statements under the for-block. print(a[-1]) in OP's example.}

Simply, on each iteration, the loop variable (target_list) gets assigned to the next item in the iterable (expression_list).

Let's extend the print statement:

a = [0, 1, 2, 3]

for a[-1] in a:

    print(a, a[-1])

This gives the following output:

[0, 1, 2, 0] 0    # a[-1] assigned 0

[0, 1, 2, 1] 1    # a[-1] assigned 1

[0, 1, 2, 2] 2    # a[-1] assigned 2

[0, 1, 2, 2] 2    # a[-1] assigned itself (2)

a[-1] = 0    # a[0] # a[3] is 0 now

a[-1] = 1    # a[1] # a[3] is 1 now

a[-1] = 2    # a[2] # a[3] is 2 now

a[-1] = 2    # a[3] # a[3] is itself (2)

edited 4 mins ago

answered 23 mins ago

TrebledJ

3,74421328

edited 4 mins ago

answered 23 mins ago

TrebledJ

3,74421328

answered 23 mins ago

TrebledJ

3,74421328

answered 23 mins ago

TrebledJ

3,74421328

2

Might be useful to bold Each item [...] is assigned to the target list using the standard rules for assignments.

– Mateen Ulhaq
19 mins ago

2

Essentially, the important thing to note here is that Python considers a[-1] to be a valid form of the left-hand side of an assignment statement (e.g. a[-1] = 1 is valid grammar). Thus a[-1] is a valid "variable" name, because as the documentation stated, it evaluates the binding variable(s) in a for loop declaration as it would the left-hand side of an assignment.

– Christian Dean
7 mins ago

add a comment |

2

Might be useful to bold Each item [...] is assigned to the target list using the standard rules for assignments.

– Mateen Ulhaq
19 mins ago

2

Essentially, the important thing to note here is that Python considers a[-1] to be a valid form of the left-hand side of an assignment statement (e.g. a[-1] = 1 is valid grammar). Thus a[-1] is a valid "variable" name, because as the documentation stated, it evaluates the binding variable(s) in a for loop declaration as it would the left-hand side of an assignment.

– Christian Dean
7 mins ago

Might be useful to bold Each item [...] is assigned to the target list using the standard rules for assignments.

– Mateen Ulhaq
19 mins ago

Essentially, the important thing to note here is that Python considers a[-1] to be a valid form of the left-hand side of an assignment statement (e.g. a[-1] = 1 is valid grammar). Thus a[-1] is a valid "variable" name, because as the documentation stated, it evaluates the binding variable(s) in a for loop declaration as it would the left-hand side of an assignment.

– Christian Dean
7 mins ago

add a comment |

it is an interesting question, you can understand it by that:

for v in a:

    a[-1] = v

    print(a[-1])



print(a)

actually a becomes: [0, 1, 2, 2] after loop

output:

0

1

2

2

[0, 1, 2, 2]

Hope that helps you, and comment if you have further questions. : )

answered 25 mins ago

recnac

1,183123

add a comment |

it is an interesting question, you can understand it by that:

for v in a:

    a[-1] = v

    print(a[-1])



print(a)

actually a becomes: [0, 1, 2, 2] after loop

output:

0

1

2

2

[0, 1, 2, 2]

Hope that helps you, and comment if you have further questions. : )

answered 25 mins ago

recnac

1,183123

add a comment |

it is an interesting question, you can understand it by that:

for v in a:

    a[-1] = v

    print(a[-1])



print(a)

actually a becomes: [0, 1, 2, 2] after loop

output:

0

1

2

2

[0, 1, 2, 2]

Hope that helps you, and comment if you have further questions. : )

answered 25 mins ago

recnac

1,183123

it is an interesting question, you can understand it by that:

for v in a:

    a[-1] = v

    print(a[-1])



print(a)

actually a becomes: [0, 1, 2, 2] after loop

output:

0

1

2

2

[0, 1, 2, 2]

Hope that helps you, and comment if you have further questions. : )

answered 25 mins ago

recnac

1,183123

answered 25 mins ago

recnac

1,183123

answered 25 mins ago

recnac

1,183123

answered 25 mins ago

recnac

1,183123

add a comment |

If you had

x = 0

l = [1, 2, 3]

for x in l:

    print(x)

When we do

a = [0, 1, 2, 3]



for a[-1] in a:

  print(a[-1])

even though a[-1] already exists and has a value, we don't put that value in but rather assign to a[-1] each time through the loop.

edited 7 mins ago

Amir A. Shabani

455616

answered 14 mins ago

Nathan

2,02511326

Somehow I thought the variable used in for loop is immutable. +1 for pointing it out.

– Amir A. Shabani
11 mins ago

add a comment |

If you had

x = 0

l = [1, 2, 3]

for x in l:

    print(x)

When we do

a = [0, 1, 2, 3]



for a[-1] in a:

  print(a[-1])

even though a[-1] already exists and has a value, we don't put that value in but rather assign to a[-1] each time through the loop.

edited 7 mins ago

Amir A. Shabani

455616

answered 14 mins ago

Nathan

2,02511326

Somehow I thought the variable used in for loop is immutable. +1 for pointing it out.

– Amir A. Shabani
11 mins ago

add a comment |

If you had

x = 0

l = [1, 2, 3]

for x in l:

    print(x)

When we do

a = [0, 1, 2, 3]



for a[-1] in a:

  print(a[-1])

even though a[-1] already exists and has a value, we don't put that value in but rather assign to a[-1] each time through the loop.

edited 7 mins ago

Amir A. Shabani

455616

answered 14 mins ago

Nathan

2,02511326

If you had

x = 0

l = [1, 2, 3]

for x in l:

    print(x)

When we do

a = [0, 1, 2, 3]



for a[-1] in a:

  print(a[-1])

even though a[-1] already exists and has a value, we don't put that value in but rather assign to a[-1] each time through the loop.

edited 7 mins ago

Amir A. Shabani

455616

answered 14 mins ago

Nathan

2,02511326

edited 7 mins ago

Amir A. Shabani

455616

edited 7 mins ago

Amir A. Shabani

455616

edited 7 mins ago

Amir A. Shabani

455616

answered 14 mins ago

Nathan

2,02511326

answered 14 mins ago

Nathan

2,02511326

answered 14 mins ago

Nathan

2,02511326

Somehow I thought the variable used in for loop is immutable. +1 for pointing it out.

– Amir A. Shabani
11 mins ago

add a comment |

Somehow I thought the variable used in for loop is immutable. +1 for pointing it out.

– Amir A. Shabani
11 mins ago

Somehow I thought the variable used in for loop is immutable. +1 for pointing it out.

– Amir A. Shabani
11 mins ago

add a comment |

The left expression of a for loop statement gets assigned with each item in the iterable on the right in each iteration, so

for n in a:

    print(n)

is just a fancy way of doing:

for i in range(len(a)):

    n = a[i]

    print(n)

Likewise,

for a[-1] in a:

  print(a[-1])

is just a fancy way of doing:

for i in range(len(a)):

    a[-1] = a[i]

    print(a[-1])

answered 20 mins ago

blhsing

43.5k41744

add a comment |

The left expression of a for loop statement gets assigned with each item in the iterable on the right in each iteration, so

for n in a:

    print(n)

is just a fancy way of doing:

for i in range(len(a)):

    n = a[i]

    print(n)

Likewise,

for a[-1] in a:

  print(a[-1])

is just a fancy way of doing:

for i in range(len(a)):

    a[-1] = a[i]

    print(a[-1])

answered 20 mins ago

blhsing

43.5k41744

add a comment |

The left expression of a for loop statement gets assigned with each item in the iterable on the right in each iteration, so

for n in a:

    print(n)

is just a fancy way of doing:

for i in range(len(a)):

    n = a[i]

    print(n)

Likewise,

for a[-1] in a:

  print(a[-1])

is just a fancy way of doing:

for i in range(len(a)):

    a[-1] = a[i]

    print(a[-1])

answered 20 mins ago

blhsing

43.5k41744

The left expression of a for loop statement gets assigned with each item in the iterable on the right in each iteration, so

for n in a:

    print(n)

is just a fancy way of doing:

for i in range(len(a)):

    n = a[i]

    print(n)

Likewise,

for a[-1] in a:

  print(a[-1])

is just a fancy way of doing:

for i in range(len(a)):

    a[-1] = a[i]

    print(a[-1])

answered 20 mins ago

blhsing

43.5k41744

answered 20 mins ago

blhsing

43.5k41744

answered 20 mins ago

blhsing

43.5k41744

answered 20 mins ago

blhsing

43.5k41744

add a comment |

edited 24 mins ago

answered 37 mins ago

Tom Karzes

11.2k1926

How does it actually gets set to 0, then 1, then 2 and finally 2? That's the confusing part!

– Amir A. Shabani
35 mins ago

1

Agree, I don't really understand by reading this answer

– gameon67
35 mins ago

I expected it would be like saying for 3 in a: print(a[-1]) (because a[-1] was 3 at the start of the loop) and give an error, but clearly that's not the case. You're obviously correct about what's happening, but I'm surprised this evaluates this way.

– Nathan
32 mins ago

It's set by the for loop. Each time through, it gets set to the next element of the list. What's the first element? Right, it's 0. What's the second? Right again, it's 1. etc.

– Tom Karzes
32 mins ago

I've expanded the answer to explain more precisely how this works. Hopefully people will understand it this time.

– Tom Karzes
23 mins ago

add a comment |

edited 24 mins ago

answered 37 mins ago

Tom Karzes

11.2k1926

How does it actually gets set to 0, then 1, then 2 and finally 2? That's the confusing part!

– Amir A. Shabani
35 mins ago

1

Agree, I don't really understand by reading this answer

– gameon67
35 mins ago

I expected it would be like saying for 3 in a: print(a[-1]) (because a[-1] was 3 at the start of the loop) and give an error, but clearly that's not the case. You're obviously correct about what's happening, but I'm surprised this evaluates this way.

– Nathan
32 mins ago

It's set by the for loop. Each time through, it gets set to the next element of the list. What's the first element? Right, it's 0. What's the second? Right again, it's 1. etc.

– Tom Karzes
32 mins ago

I've expanded the answer to explain more precisely how this works. Hopefully people will understand it this time.

– Tom Karzes
23 mins ago

add a comment |

edited 24 mins ago

answered 37 mins ago

Tom Karzes

11.2k1926

edited 24 mins ago

answered 37 mins ago

Tom Karzes

11.2k1926

edited 24 mins ago

answered 37 mins ago

Tom Karzes

11.2k1926

answered 37 mins ago

Tom Karzes

11.2k1926

answered 37 mins ago

Tom Karzes

11.2k1926

How does it actually gets set to 0, then 1, then 2 and finally 2? That's the confusing part!

– Amir A. Shabani
35 mins ago

1

Agree, I don't really understand by reading this answer

– gameon67
35 mins ago

I expected it would be like saying for 3 in a: print(a[-1]) (because a[-1] was 3 at the start of the loop) and give an error, but clearly that's not the case. You're obviously correct about what's happening, but I'm surprised this evaluates this way.

– Nathan
32 mins ago

It's set by the for loop. Each time through, it gets set to the next element of the list. What's the first element? Right, it's 0. What's the second? Right again, it's 1. etc.

– Tom Karzes
32 mins ago

I've expanded the answer to explain more precisely how this works. Hopefully people will understand it this time.

– Tom Karzes
23 mins ago

add a comment |

How does it actually gets set to 0, then 1, then 2 and finally 2? That's the confusing part!

– Amir A. Shabani
35 mins ago

1

Agree, I don't really understand by reading this answer

– gameon67
35 mins ago

I expected it would be like saying for 3 in a: print(a[-1]) (because a[-1] was 3 at the start of the loop) and give an error, but clearly that's not the case. You're obviously correct about what's happening, but I'm surprised this evaluates this way.

– Nathan
32 mins ago

It's set by the for loop. Each time through, it gets set to the next element of the list. What's the first element? Right, it's 0. What's the second? Right again, it's 1. etc.

– Tom Karzes
32 mins ago

I've expanded the answer to explain more precisely how this works. Hopefully people will understand it this time.

– Tom Karzes
23 mins ago

How does it actually gets set to 0, then 1, then 2 and finally 2? That's the confusing part!

– Amir A. Shabani
35 mins ago

Agree, I don't really understand by reading this answer

– gameon67
35 mins ago

I expected it would be like saying for 3 in a: print(a[-1]) (because a[-1] was 3 at the start of the loop) and give an error, but clearly that's not the case. You're obviously correct about what's happening, but I'm surprised this evaluates this way.

– Nathan
32 mins ago

It's set by the for loop. Each time through, it gets set to the next element of the list. What's the first element? Right, it's 0. What's the second? Right again, it's 1. etc.

– Tom Karzes
32 mins ago

I've expanded the answer to explain more precisely how this works. Hopefully people will understand it this time.

– Tom Karzes
23 mins ago

add a comment |

Kundan Verma is a new contributor. Be nice, and check out our Code of Conduct.

draft saved

draft discarded

Kundan Verma is a new contributor. Be nice, and check out our Code of Conduct.

Thanks for contributing an answer to Stack Overflow!

Please be sure to answer the question. Provide details and share your research!

But avoid …

Asking for help, clarification, or responding to other answers.

Making statements based on opinion; back them up with references or personal experience.

To learn more, see our tips on writing great answers.

draft saved

draft discarded

Sign up or log in

StackExchange.ready(function () {
StackExchange.helpers.onClickDraftSave('#login-link');
});

Post as a guest

Name

Required, but never shown

Post as a guest

Name

Required, but never shown

Sign up or log in

StackExchange.ready(function () {
StackExchange.helpers.onClickDraftSave('#login-link');
});

Post as a guest

Name

Required, but never shown

Sign up or log in

StackExchange.ready(function () {
StackExchange.helpers.onClickDraftSave('#login-link');
});

Post as a guest

Name

Required, but never shown

Sign up or log in

StackExchange.ready(function () {
StackExchange.helpers.onClickDraftSave('#login-link');
});

Post as a guest

Name

Required, but never shown

Name

Required, but never shown

Name

Required, but never shown

This page is only for reference, If you need detailed information, please check here

搜尋此網誌

Ggthjy