Vector Space Problem: Is {x1,x2,x3} a Vector Space?

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Discussion Overview

The discussion revolves around whether the set of all ordered triples of real numbers, with a specified addition and scalar multiplication, constitutes a vector space. Participants explore the definitions and criteria necessary for a set to be classified as a vector space, including the implications of using non-standard operations.

Discussion Character

  • Debate/contested
  • Conceptual clarification
  • Mathematical reasoning

Main Points Raised

  • Some participants assert that the set of all ordered triples of real numbers could be a vector space, referencing the zero vector (0,0,0) as a potential candidate.
  • Others emphasize the importance of checking the definition of a vector space against the given operations, suggesting that if all criteria are satisfied, it qualifies as a vector space.
  • There is a challenge regarding the interpretation of the scalar multiplication defined in the problem, with some arguing that it does not conform to the standard definition of scalar multiplication required for a vector space.
  • One participant points out that for the scalar multiplication to yield the zero vector, all components must be zero, or the scalar must be zero, raising questions about the implications of the operations defined.
  • Another participant provides an example contrasting the new scalar multiplication with the traditional one, illustrating how the operations affect the classification of a vector space.
  • Some participants express confusion over the application of vector space axioms, particularly regarding the identity element and how it relates to the operations defined in the problem.
  • There are discussions about deductive reasoning in the context of proving whether a set meets the criteria for being a vector space, with calls for participants to evaluate their own reasoning rather than seeking confirmation from others.

Areas of Agreement / Disagreement

Participants do not reach a consensus on whether the set qualifies as a vector space. Multiple competing views are presented regarding the definitions and operations involved, leading to ongoing debate and clarification.

Contextual Notes

Limitations include potential misunderstandings of the definitions of vector spaces, the specific operations being applied, and the implications of using non-standard scalar multiplication. The discussion reflects varying interpretations of these concepts.

physicsss
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Is the following a vector space:
the set of all ordered triples of real numbers, {x1,x2,x3)}, usual addition, and r(x1,x2,x3)=(0,0,0), all numbers r

I think this is a vector space since it is the vector (0,0,0), but I'm not sure how to show the work for it.

Thanks in adv.
 
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physicsss said:
Is the following a vector space:
the set of all ordered triples of real numbers, {x1,x2,x3)}, usual addition, and r(x1,x2,x3)=(0,0,0), all numbers r

I think this is a vector space since it is the vector (0,0,0), but I'm not sure how to show the work for it.

Thanks in adv.

what is the definition of a vector space?

check each of the criteria against what you have, and if all of the criteria are satisfied then it is a vector space.
 
physicsss said:
Is the following a vector space:
the set of all ordered triples of real numbers, {x1,x2,x3)}, usual addition, and r(x1,x2,x3)=(0,0,0), all numbers r

I think this is a vector space since it is the vector (0,0,0), but I'm not sure how to show the work for it.

Thanks in adv.

why is it the vector (0,0,0)? it states it is the set of ALL triples...
 
you need to read your definition of vector space. In my book it is the following:

A "vector space" over the field k, is an abelian group (V,+) together with a way to multiply elements of V by elements of k, such that if x,y are in k, and v,w are in V then (x+y)v = xv+yv, 1v = v, x(v+w) = xv+xw, and (xy)v = x(yv).


does your example satisfy these?
 
matt grime said:
why is it the vector (0,0,0)? it states it is the set of ALL triples...

For r(x1,x2,x3)=(0,0,0) to be true, either x1, x2, and x2 have to all zeros or r has to be zero. That's the only two things that work.
 
no, that isn't what the question states (as you have written it, read what you wrote, you declared the underlying set to be ALL the elements in R^3). you are assuming that the "old" scalar mult is being used. it isn't, it is a "new" scalar mult. albeit one that fails to actually be a proper scalr mult (see mathwonk's post) and thus the set RxRxR with this "new" scalar mult is not a vector space.

yes, with the old mult the only way for r((x,y,z) to be zero for all r is if (0,0,0) is the only element of R^3 we are considering, but that isn't what we're doing, nor are we asking, given these new rules, what subsets of R^3 are a vector space.

EXAMPLE, given the subset of RxR consisting of all pairs (x,a) where a is a FIXED number with the "new" addition (x,a)+(y,a)=(x+y,a) and scalr mult. of k(x,a)=(kx,a) is a vector space. but if were to assume that the opertions were the old ones then this is only true if a=0.
 
Last edited:
I kinda get it now.
So since the vector doesn't satisfy the fellowing identity of 1*u=u, where u is a non zero triple (x1,x2,x3), it is not a vector space?
 
yes.

it is confusing, i imagine, because you are automaticallly associating the usual operations since R^3 is such a well known vector space.

i come across this all the time in group theory when my students assert that the integers with the operation

x@y=x+y-1

where + is the usual addition is not a grou because 0 is not the identity of @.

remember the rules are applied to the operations as given, thus the identity with respect to @ is 1
 
So by that axiom 1*u=u, you can also show that r(x1,x2,x3)=(2*r*x1,2*r*x2,2*r*x3) is not a vector space since 1*u in this case is (2*x1,2*x2,2*x3)?
 
Last edited:
  • #10
Yes, Anyone?
 
  • #11
you've shown that an axiom is falsified, what more was there to say to you?
 
  • #12
physicsss said:
So by that axiom 1*u=u, you can also show that r(x1,x2,x3)=(2*r*x1,2*r*x2,2*r*x3) is not a vector space since 1*u in this case is (2*x1,2*x2,2*x3)?

I just wasn't so sure about if the above was right and was asking if I was doing it correctly since the concept of vector space is still new to me.
 
  • #13
it's nothing to do with vector spaces; it is deductive reasoning.

You know all X's must satisfy Y, you know Z doesn't satisfy Y, therefore Z isn't an X. no mention of vector spaces.
 
  • #14
you must get used to the fact that we want you to decide for yourself if you are right. i.e. to get to where you look at your argument to see if it is logically sound, rather than asking us to confirm it for you.
 

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