Talk:Surjective function/Archive 1
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| Archive 1 |
Page rename
For consistency with injective function perhaps this page should be renamed surjective function and a redirect sent there from here.
Sounds good -- who wants to do it? I did it. --Soapergem 09:30, 4 May 2006 (UTC)
Rendering
This page isn't rendering correctly for me in Firefox 2.0.0.9 and IE 7.0.5730ish. Unfortunately, the preview while editing looks fine and I don't know what's causing the problem, so I may have to post a number of edits to get it right, or better. --KSnortum (talk) 18:32, 25 November 2007 (UTC)
- Got a brilliant idea and decided to do this work in a subpage instead of the live article. I'll copy it over if and when I get it working. I'll try to keep track of changes here but if I make a regression error please forgive me (and correct it). --KSnortum (talk) 18:53, 25 November 2007 (UTC)
Universal property of quotients
I have never commented on a talk-page before so I am sorry if I am breaking some rules (please tell me if this is the case so I can improve for next time :) !). In the "Other properties" section you talk about the universal property of quotient spaces - in particular you say that for any h:X->Z there is an surjective function f:X->Y and an injective function g:Y->Z such that g composed with f is equal to h. I don't think this is quite correct. I believe an extra condition is required that h(x)=h(x') implies that f(x)=f(x'). This puts a condition on the kind of quotient spaces we are allowed (nothing is free in life! :) ). Here is my reasoning:
We construct g(y) by picking a point x in f^{-1}(y) and letting g(y)=h(x). There is no guarantee then that when we decide what g(y') is equal to i.e. pick x' in f^{-1}(y') such that g(y')=h(x') that h(x') does not equal h(x). In particular it could be that g(y)=g(y') without y=y'.
Here is a specific example:
- let f:{1,2} -> {[1],[2]}, in other words f splits {1,2} into odds and evens
- let h:{1,2} -> {1}
- Now construct g[1]. f^{-1}[1]=1. Hence g[1]=h(1)=1.
- Now construct g[2]. f^{-1}[2]=2. Hence g[2]=h(2)=1.
- Hence even though [1] is not equal to [2], g[1]=g[2]. So g is not injective.
However if we include the condition I stated we have the following proof that g is injective:
- We already know that f is surjective as it is the canonical map between the space X and its quotient space Y
- If g(y)=g(y') then, because f is surjective there exists x and x' in X such that f(x)=y and f(x')=y'.
- g has the special property that g \circ f = h. Therefore h(x) = g \circ f(x) = g \circ f(x') = h(x').
- The additional condition now demands that f(x)=f(x'). Hence y=y'.
So g is injective.
Hope this is correct. Db1685 (talk) 09:16, 2 September 2008 (UTC)
- I don't understand your objection. The article says that given h we can choose f and g with the given properties. You seem to have read it as saying that given f and h we can choose g with the given properties. In that case, yes, you need more conditions on f than that it be surjective, but that case is not what is in the article. Since you asked, you did break one of the rules of Wikipedia talk pages, which is that new discussions should go at the bottom of the page in a new section. You can easily do this by clicking the 'new section' tab at the top of the page. (of course, replies to existing discussions should go in the same section, preferably indented with colons, like this one.) Algebraist 09:35, 2 September 2008 (UTC)
- I think there has been a misunderstanding here. Given h:X->Y if we want f surjective and g injective we still need f to have the property I mentioned. I can see now how it could be read the way you stated. However, with all due respect, I feel the way it is written is a little misleading. I agree with the first sentence. But then you say:
- I think there has been a misunderstanding here. Given h:X->Y if we want f surjective and g injective we still need f to have the property I mentioned. I can see now how it could be read the way you stated. However, with all due respect, I feel the way it is written is a little misleading. I agree with the first sentence. But then you say:
- "To see this, define Y to be the sets h^{−1}(z) where z is in Z. These sets are disjoint and partition X. Then f carries each x to the element of Y which contains it"
- "To see this, define Y to be the sets h^{−1}(z) where z is in Z. These sets are disjoint and partition X. Then f carries each x to the element of Y which contains it"
- So now you have defined a surjective f using only h. I agree with this. f is exactly the canonical map between the X and the quotient space Y. You then proceed to define g:
- So now you have defined a surjective f using only h. I agree with this. f is exactly the canonical map between the X and the quotient space Y. You then proceed to define g:
- "and g carries each element of Y to the point in Z to which h sends its points."
- "and g carries each element of Y to the point in Z to which h sends its points."
- I understand by no means is this a proof but, to me, it suggests that you can just construct g as I discussed above without imposing the condition I stated upon it. In particular the statement:
- I understand by no means is this a proof but, to me, it suggests that you can just construct g as I discussed above without imposing the condition I stated upon it. In particular the statement:
- "g is injective by definition"
- "g is injective by definition"
- is the part I found troubling. It is not injective unless the extra condition is imposed and a definition without that condition is possible as I illustrated. At least - this is how I read it.
- is the part I found troubling. It is not injective unless the extra condition is imposed and a definition without that condition is possible as I illustrated. At least - this is how I read it.
- P.S. Thanks for the tip about posting! I will remember next time :).
- g is defined to be the function from the set (the empty set excluded) to Z that maps to z. This function is indeed injective by definition. I really don't see what the problem is here. Algebraist 10:12, 2 September 2008 (UTC)
- P.S. Thanks for the tip about posting! I will remember next time :).
- Again I see what you meant. However consider the fact that h^{-1}(z) need not be a single point. Hence g would map many points to z. So it could not be injective. This is exactly what happens in the example I gave. —Preceding unsigned comment added by Db1685 (talk • contribs) 10:23, 2 September 2008 (UTC)
- No, g does not map many points to z. g maps the single point of the set to z. In the example you gave, with h mapping {1,2} to {1}, the construction gives Y={{1,2}}, a one-point set, and g is the unique function from {{1,2}} to {1}. The problem with your example is that you have chosen f and Y arbitrarily, rather than constructing them as given in the article. Algebraist 10:28, 2 September 2008 (UTC)
- Again I see what you meant. However consider the fact that h^{-1}(z) need not be a single point. Hence g would map many points to z. So it could not be injective. This is exactly what happens in the example I gave. —Preceding unsigned comment added by Db1685 (talk • contribs) 10:23, 2 September 2008 (UTC)
Range equal to co-domain
The initial statement in the article that the range of a surjective function must be equal to its co-domain seems simply to be false: clearly, the co-domain can (a) be smaller than the domain and (b) contain elements which are not in the domain. It's therefore not clear what sense of equality is meant here. But I'm not a mathematician so I just wanted to check if I'm confused about this. Cadr (talk) 14:24, 20 November 2009 (UTC)
- The article is correct, so yes you are confused. Paul August ☎ 15:04, 20 November 2009 (UTC)
- Oh, I read "domain" for "range" for some reason, my mistake. No need for you to be an asshole about it though :) Cadr (talk) 16:58, 24 November 2009 (UTC)
- Please accept my apology. I asssure you I didn't mean my comment to be insulting or flip. Although I now see how they might have sounded that way. Sorry for that :( Paul August ☎ 15:26, 25 November 2009 (UTC)
- Thanks. I also apologize for my rather flippant reply. Cadr (talk) 15:33, 25 November 2009 (UTC)
- No problem. Paul August ☎ 15:37, 25 November 2009 (UTC)
- Thanks. I also apologize for my rather flippant reply. Cadr (talk) 15:33, 25 November 2009 (UTC)
- Please accept my apology. I asssure you I didn't mean my comment to be insulting or flip. Although I now see how they might have sounded that way. Sorry for that :( Paul August ☎ 15:26, 25 November 2009 (UTC)
- Oh, I read "domain" for "range" for some reason, my mistake. No need for you to be an asshole about it though :) Cadr (talk) 16:58, 24 November 2009 (UTC)
Origin of terminology?
Anyone know where the terminology "onto" comes from? Listing the etymology of the term may help explain the concept. — Preceding unsigned comment added by 129.21.75.134 (talk) 22:01, 19 January 2010 (UTC)
Decomposition
Conversely, if f o g is surjective, then f is surjective (but g need not be).
Shouldn't it be
"g" is surjective (but "f" need not be)?
At least, that's what one of the diagrams on the page illustrates. —Preceding unsigned comment added by 65.110.237.146 (talk) 21:01, 22 September 2010 (UTC)
Domain
The link to domain go to a disambiguation page. It should be more precise. 216.19.183.88 (talk) 22:25, 10 January 2012 (UTC)
Picture
Why is the picture a diagram of a non-surjective function? This is a bit confusing. —Preceding unsigned comment added by 129.31.68.80 (talk) 12:27, 3 February 2011 (UTC)
Diagram of non surjective function has two points in Y labeled y1 and is missing y3. The upper point Y1 appears to actually be the missing Y3. 173.184.65.10 (talk) 19:27, 25 September 2012 (UTC)