Deeper than primes

jsfisher · May 30, 2009

doronshadmi said:
It appears under the name z.

You are reading things into the predicate that simply are not there. You are going to have trouble understanding Mathematics if you continue to add see extra stuff over that is actually there.

jsfisher · May 30, 2009

doronshadmi said:
It it ture jsfisher.

Actually I used here your phrases: (completely filled) AND (there is no immediate predecessor to Y).

...and those weren't the phrases being challenged.

doronshadmi · May 30, 2009

jsfisher said:
You are reading things into the predicate that simply are not there. You are going to have trouble understanding Mathematics if you continue to add see extra stuff over that is actually there.

As I say jsfisher, you play with notations without notions.

By notation d is not there.

By notion d is there, under the name z.

Anyone who uses notions, can't ascape from http://www.internationalskeptics.com/forums/showpost.php?p=4762726&postcount=3234 result.

doronshadmi · May 30, 2009

jsfisher said:
...and those weren't the phrases being challenged.

These is exactly my argument about Standard Math (within the framework of Standard Math), in this case.

jsfisher · May 30, 2009

doronshadmi said:
As I say jsfisher, you play with notations without notions.

By notation d is not there.

By notion d is there, under the name z.

Where would that be?

jsfisher · May 30, 2009

doronshadmi said:
These is exactly my argument about Standard Math (within the framework of Standard Math), in this case.

Well, actually it is your assertion. You haven't presented enough substance to raise it to argument status.

doronshadmi · May 30, 2009

jsfisher said:
Well, actually it is your assertion. You haven't presented enough substance to raise it to argument status.

No jsfisher, it is done at http://www.internationalskeptics.com/forums/showpost.php?p=4762726&postcount=3234 and you did not give anything that shows otherwise.

jsfisher · May 30, 2009

doronshadmi said:
No jsfisher, it is done at http://www.internationalskeptics.com/forums/showpost.php?p=4762726&postcount=3234 and you did not give anything that shows otherwise.

You might want to pay attention to the post immediately following yours. It challenges both your premise and your conclusion, and until you address the premise defect, it really doesn't matter what you conclude from it.

You may also notice (well, the rest of use notice, but you probably won't) you aren't very good at making connected arguments. Remember, you are the one that insists the word all means non-finite regression. That doesn't fit so well into the sentence, "All Greeks are liars."

doronshadmi · May 30, 2009

jsfisher said:
You might want to pay attention to the post immediately following yours. It challenges both your premise and your conclusion, and until you address the premise defect, it really doesn't matter what you conclude from it.

You may also notice (well, the rest of use notice, but you probably won't) you aren't very good at making connected arguments. Remember, you are the one that insists the word all means non-finite regression. That doesn't fit so well into the sentence, "All Greeks are liars."

Jsfisher (you have challenged nothing and) you do not get what you read. As a result you change the context where the term "all" is used, so here it is again:

doronshadmi said:
Since Standard Math claims that "all"="non-finite regression" its reasoning about the reals is based on a contradiction.

d=0 if "all" is used in the context of the non-finite universe between X and Y (there is no non-finite regression).

d>0 if "Y has no immediate predecessor" is used in the context of the non-finite universe between X and Y (there is a non-finite regression).

Since Standard Math insists to use "all" AND "Y has no immediate predecessor" in the context of the non-finite universe between X and Y, then Standard Math actually claims that d > AND = 0, which is a contradiction under Standard Math framework.

jsfisher said:
"All Greeks are liars."

It is revevant to this dialog only if you first define the order of your Greeks.

jsfisher · May 30, 2009

doronshadmi said:
jsfisher said:

You might want to pay attention to the post immediately following yours. It challenges both your premise and your conclusion, and until you address the premise defect, it really doesn't matter what you conclude from it.

You may also notice (well, the rest of use notice, but you probably won't) you aren't very good at making connected arguments. Remember, you are the one that insists the word all means non-finite regression. That doesn't fit so well into the sentence, "All Greeks are liars."

Click to expand...

Jsfisher (you have challenged nothing and) you do not get what you read. As a result you change the context where the term "all" is used

You provided no context. That is really my point. You may have all sorts of grand ideas floating around in your head, but you aren't so good about expressing them when it comes time to forming those sentences. Whole paragraphs of context get left out as you leap from ice floe to ice floe.

doronshadmi said:
...so here it is again:

doronshadmi said:

Since Standard Math claims that "all"="non-finite regression" its reasoning about the reals is based on a contradiction.

Click to expand...

See? No context. Just a bare assertion that all and non-finite regression are synonyms. To make matters worse, you don't seem to be using the term, regression, correctly. What do you think it means?

d=0 if "all" is used in the context of the non-finite universe between X and Y (there is no non-finite regression)

d>0 if "Y has no immediate predecessor" is used in the context of the non-finite universe between X and Y (there is a non-finite regression)..

Again, no context, just a d=0 dropped in.

Fill in the spaces, Doron. Communicate.

...but first things first: What do you think regression means as you have used the term?

The Man · May 30, 2009

doronshadmi said:
You have missed it.

Y have no immediate predecessor in Standard Math framework, exactly because d value is a non-finite regression, such that this non-finite regression > 0.

If the term all is used, then there is no non-finite regression > 0, and d=0 (there is no other way, because if we use all on the non-finite, then d (which is an absolute value) must have the minimal absolute value, which is 0) .

In that case X<Y=X+0, is false.

Standard Math is based on a contradiction, in this case, because it claims that:

d > 0 (there is no immediate predecessor to Y) AND d=0 (the non-finite universe between X and Y, is completely filled).

EDIT:

"there is always another real number between any two real numbers" = "a non-finite regression of d value" = "the non-finite universe between X and Y is not completely filled"

No you have missed it, I wasn’t talking about ‘standard math’ just your claims and assertions, which usually have nothing to do with ‘standard math’ even when you claim to be talking about ‘standard math’.

Once again you can not determine if Y has an immediate predecessor until you first define what constitutes an immediate predecessor. If we define it like Y_P < Y such that the interval ( Y_P, Y) is empty or the interval [ Y_P, Y] contains only Y_P and Y. Then the value of an immediate predecessor for a given Y can be determined in the integers. This is specifically because there are gaps or the integers are discontinuous and discrete, such that you can have an empty interval or an interval that includes only the boundaries. With no gaps the reals are continuous, no explicitly defined value for an ‘immediate predecessor’ of a given Y can be established that meets those given requirements. Again it is precisely because there are no gaps that an empty interval or an interval that contains only the boundaries can not be established in the reals. As usual you’ve got it all backwards it is because the interval between X and Y is completely filled, continuous and with no gaps that no explicitly defined value, and thus no real number, for an immediate predecessor can be established for any given value of Y in the reals.

doronshadmi · May 30, 2009

The Man said:
No you have missed it, I wasn’t talking about ‘standard math’ just your claims and assertions, which usually have nothing to do with ‘standard math’ even when you claim to be talking about ‘standard math’.

Once again you can not determine if Y has an immediate predecessor until you first define what constitutes an immediate predecessor. If we define it like Y_P < Y such that the interval ( Y_P, Y) is empty or the interval [ Y_P, Y] contains only Y_P and Y. Then the value of an immediate predecessor for a given Y can be determined in the integers. This is specifically because there are gaps or the integers are discontinuous and discrete, such that you can have an empty interval or an interval that includes only the boundaries. With no gaps the reals are continuous, no explicitly defined value for an ‘immediate predecessor’ of a given Y can be established that meets those given requirements. Again it is precisely because there are no gaps that an empty interval or an interval that contains only the boundaries can not be established in the reals. As usual you’ve got it all backwards it is because the interval between X and Y is completely filled, continuous and with no gaps that no explicitly defined value, and thus no real number, for an immediate predecessor can be established for any given value of Y in the reals.

These "no gaps" of X < Z < Y hold iff (d > 0) AND (d ≠ 0).

Since Standard Math claims that the non-finite universe between X and Y is completely filled, then d must be the minimal value, which is 0.

So Standard Math in its own framework, has to decide between "completely filled" (and in this case d must be = 0) and "Y has no immediate predecessor" (and in this case d must be > 0).

As long as Standard Math insists to use both "completely filled" AND "Y has no immediate predecessor" on the same non-finite universe between X and Y, Standard Math is based on the reasoning that claims that d is both > AND = 0, which is a contradiction under Standard Math framework.

You have asked me to show a contradiction within the framework of Standard Math.

I provided such a contradiction (d is both > AND = 0).

Now, instead of face the facts, you behave like any fanatic religious community of people, which does not wish to face the facts about its own failure.

jsfisher · May 30, 2009

doronshadmi said:
These "no gaps" of X < Z < Y hold iff (d > 0) AND (d not = 0).

Just to fill the gap that exists here, I'm going to assume, doron, you are using d to represent the difference between X and Y. That is, d = Y - X.

Since Standard Math claims that the non-finite universe between X and Y is completely filled, then d must be the minimal value, which is 0.

It is a fact, actually, not simply a claim. Be that as it may, though, no, it does not then require that d = 0. Your conclusion is faulty.

Your faulty conclusion, here, then becomes a premise for the rest of your post. Faulty premises lead to irrelevant conclusions, so there is not point continuing with your post.

doronshadmi · May 30, 2009

jsfisher said:
Just to fill the gap that exists here, I'm going to assume, doron, you are using d to represent the difference between X and Y. That is, d = Y - X.

If X < Z < Y is used, then d = abs(Z-X).

jsfisher said:
It is a fact, actually, not simply a claim. Be that as it may, though, no, it does not then require that d = 0. Your conclusion is faulty.

It does not require that d = 0, iff the interval between X AND Y is not completly filled ( in this case (d > 0) AND (d ≠ 0) ).

jsfisher said:
Your faulty conclusion, here, then becomes a premise for the rest of your post. Faulty premises lead to irrelevant conclusions, so there is not point continuing with your post.

Your faulty determination is the result of (d > 0) AND (d = 0).

jsfisher · May 30, 2009

doronshadmi said:
If X < Z < Y is used, then d = abs(Z-X).

Ok, so be it. d = Z - X. (The absolute value function is redundant.)

It does not require that d = 0, iff the interval between X AND Y is not completly filled ( in this case (d > 0) AND (d ≠ 0) ).

You are still just asserting things. Where's your proof?

(By the way, "AND (d ≠ 0)" is also redundant.)

doronshadmi · May 30, 2009

jsfisher said:
Ok, so be it. d = Z - X. (The absolute value function is redundant.)

You are still just asserting things. Where's your proof?

(By the way, "AND (d ≠ 0)" is also redundant.)

Yes I know, but in order to avoid any misunderstanding, redundancy were used in these cases.

d=0 if the non-finite universe between X and Y is "completely filled".

It is obvious, and any other determination must be artificial, in this case, because there is no reason of why d=0 is excluded.

Again:

If the term all is used, then there is no non-finite regression > 0, and d=0 (there is no other way, because if we use all on the non-finite, then d (which is an absolute value) must have the minimal absolute value, which is 0) .

If you disagree with it, you have to provide the reason of why d > 0 (d does not have the minimal value 0) even if the non-finite universe between X and Y is "completely filled" (or in other words "why the case of d=0 is excluded, in this case?").

jsfisher · May 30, 2009

doronshadmi said:
d=0 if the non-finite universe between X and Y is "completely filled".

It is obvious, and any other determination must be artificial, in this case, because there is no reason of why d=0 is excluded.

This is your proof? "It is obvious"? Do you not see why that comes up lacking?

Again:

If the term all is used, then there is no non-finite regression > 0, and d=0 (there is no other way, because if we use all on the non-finite, then d (which is an absolute value) must have the minimal absolute value, which is 0) .

I see the assertion...you provided no proof.

If you disagree with it, you have to provide the reason of why d > 0 even if the non-finite universe between X and Y is "completely filled" (or in other words "why the case of d=0 is excluded, in this case?").

No, I don't have to provide anything. You are the one asserting things contrary to established Mathematics; the burdern of proof falls to you.

But be that as it may, if you will drop the figurative completely filled phrase and stop trying to misunderstand the infinite right out of the gate, maybe you can follow this:

Given any two real numbers X and Y where X < Y, there is another number Z between them. (That is, X < Z and Z < Y).

Will you accept that as fact, or do we need to (again) show you how we can set Z to be the mid-point between X and Y?

Ok, that's the only fact that's needed to conclude (1) no real number has an immediate predecessor or immediate successor, and (2) the real numbers are dense.

Both proofs are simple. The proof of the former is a simple proof-by-contradiction. For the latter, just pull out the applicable definition for dense and observe for any neighborhood of some real number, the above fact guarantees there is at least one real in that neighborhood.

doronshadmi · May 30, 2009

jsfisher said:
Given any two real numbers X and Y where X < Y, there is another number Z between them. (That is, X < Z and Z < Y).

This is not a proof.

This is an agreed game with notations, that avoids any research of the notions that stand at the basis of the notations.

Again it is shown how your framework is limited to "how to define and\or use?" questions, and explicitly avoids "how it is?" , "what is this?" , "Why it is?" etc … questions.

In other words, you totally ignored the notions that are expressed in http://www.internationalskeptics.com/forums/showpost.php?p=4763491&postcount=3256 in order to fit the facts to your agreed game with notations.

EDIT:

by the way, it is easy to show the inconsistency of Standard Math, in this case:

1) From one hand it claims that Y of X<Y has no immediate predecessor, and for that d must be > 0.

2) On the other hand it claims that 0.999…[base 10] = 1 , and for that d must be 0.

I know that (2) is a sum of non-finite Q members, but it has no significance in this case, because both R and Q are dense, by Standard Math.

jsfisher · May 30, 2009

doronshadmi said:
This is not a proof.

Perhaps you missed the part where I queried:

jsfisher said:
Will you accept that as fact, or do we need to (again) show you how we can set Z to be the mid-point between X and Y?

Seriously, Doron, if you are going to so willingly ignore simple questions whose purpose is to help foster understanding while you so willingly add the imaginary to other simple statements, what's the point?

doronshadmi · May 30, 2009

jsfisher said:
Perhaps you missed the part where I queried:

Seriously, Doron, if you are going to so willingly ignore simple questions whose purpose is to help foster understanding while you so willingly add the imaginary to other simple statements, what's the point?

You willingly ignored the rest of http://www.internationalskeptics.com/forums/showpost.php?p=4763566&postcount=3258 and the questions that can be found there and in likned post.

I wonder why?

jsfisher · May 30, 2009

doronshadmi said:
You willingly ignored the rest of http://www.internationalskeptics.com/forums/showpost.php?p=4763566&postcount=3258.

I wonder why?

Because it wasn't there originally. You added it while I was replying. Actually, you inserted the added content in another post first....then you moved it around and covered your trail with other re-edits.

doronshadmi · May 30, 2009

Ok jsfisher.

Please answer to (including the questions that can be found in the linked post) this:

You are using an agreed game with notations, that avoids any research of the notions that stand at the basis of the notations.

Again it is shown how your framework is limited to "how to define and\or use?" questions, and explicitly avoids "how it is?" , "what is this?" , "Why it is?" etc … questions.

In other words, you totally ignored the notions (and questions) that are expressed in http://www.internationalskeptics.com/forums/showpost.php?p=4763491&postcount=3256, in order to fit the facts to your agreed game with notations.

EDIT:

By the way, it is easy to show the inconsistency of Standard Math, in this case:

1) From one hand it claims that Y of X<Y has no immediate predecessor, and for that d must be > 0.

2) On the other hand it claims that 0.999…[base 10] = 1 , and for that d must be 0.

I know that (2) is a sum of non-finite Q members, but it has no significance in this case, because both R and Q are dense, by Standard Math.

integral · May 30, 2009

doronshadmi said:
By the way, it is easy to show the inconsistency of Standard Math, in this case:

1) From one hand it claims that Y of X<Y has no immediate predecessor, and for that d must be > 0.

2) On the other hand it claims that 0.999…[base 10] = 1 , and for that d must be 0.

I know that (2) is a sum of non-finite Q members, but it has no significance in this case, because both R and Q are dense, by Standard Math.

... if I were you, I wouldn't quit my day job.

doronshadmi · May 30, 2009

integral said:
... if I were you, I wouldn't quit my day job.

Please reply by following the content of the post.

jsfisher · May 30, 2009

doronshadmi said:
This is an agreed game with notations, that avoids any research of the notions that stand at the basis of the notations.

No, it is not. It is a game of you seriously misunderstanding simple concepts and protecting your misunderstandings by re-interpreting the statements of others.

The following expresses the very simple notion about real numbers.

[latex]$$ \forall x \forall y, \, x < y \Rightarrow \exists z, \, x < z < y $$[/latex]

The nice thing about first order predicates such as this, they are complete in and of themselves and don't require your re-interpretation to make sense of them.

Again it is shown how your framework is limited to "how to define and\or use?" questions, and explicitly avoids "how it is?" , "what is this?" , "Why it is?" etc … questions.

You have never shown anything like that.

In other words, you totally ignored the notions that are expressed in http://www.internationalskeptics.com/forums/showpost.php?p=4763491&postcount=3256 in order to fit the facts to your agreed game with notations.

You classic extensive post edits are extremely rude. Don't expect others to pander to your rudeness.

EDIT:

by the way, it is easy to show the inconsistency of Standard Math, in this case:

1) From one hand it claims that Y of X<Y has no immediate predecessor, and for that d must be > 0.

2) On the other hand it claims that 0.999…[base 10] = 1 , and for that d must be 0.

I know that (2) is a sum of non-finite Q members, but it has no significance in this case, because both R and Q are dense, by Standard Math.

There is no inconsistency in those two statements. In fact, they are closely related. If 0.999... were not identical to 1, then you'd have an inconsistency between statements (1) and (2).

doronshadmi · May 30, 2009

jsfisher said:
The following expresses the very simple notion about real numbers.

[latex]$$ \forall x \forall y, \, x < y \Rightarrow \exists z, \, x < z < y $$[/latex]

The nice thing about first order predicates such as this, they are complete in and of themselves and don't require your re-interpretation to make sense of them.

Yes, jsfisher, we all know that this predicate came form the god of mathematics. No re-interpretation is needed.

doronshadmi said:
EDIT:

by the way, it is easy to show the inconsistency of Standard Math, in this case:

1) From one hand it claims that Y of X<Y has no immediate predecessor, and for that d must be > 0.

2) On the other hand it claims that 0.999…[base 10] = 1 , and for that d must be 0.

I know that (2) is a sum of non-finite Q members, but it has no significance in this case, because both R and Q are dense, by Standard Math.

jsfisher said:

There is no inconsistency in those two statements. In fact, they are closely related. If 0.999... were not identical to 1, then you'd have an inconsistency between statements (1) and (2).

Click to expand...

Do you really not get the simple and straightforward notion that 0.999...[base 10]=1 only if d=0?

If d>0 then the sum of the non-finite sequence d=0.9 + d=0.09 + d=0.009 + d=… ≠ 1

jsfisher · May 30, 2009

doronshadmi said:
Do you really not get the simple and straightforward notion that 0.999...[base 10]=1 only if d=0?

If d>0 then the sum of the non-finite sequence d=0.9 + d=0.09 + d=0.009 + d=… ≠ 1

You have adopted yet another usage of your ubiquitous d. Before it was the length of an interval. Now, out of nowhere, it has become the next addend in an infinite summation.

You have failed to demonstrate any contradiction or inconsistency.

doronshadmi · May 30, 2009

jsfisher said:
You have adopted yet another usage of your ubiquitous d. Before it was the length of an interval. Now, out of nowhere, it has become the next addend in an infinite summation.

You have failed to demonstrate any contradiction or inconsistency.

Do you have abstraction problems, jsfisher?

jsfisher said:
...,it has become the next addend in an infinite summation.

There is no "next" here jsfisher.

Please try again http://www.internationalskeptics.com/forums/showpost.php?p=4763819&postcount=3266 .

jsfisher · May 30, 2009

doronshadmi said:
Please try again http://www.internationalskeptics.com/forums/showpost.php?p=4763819&postcount=3266 .

There is nothing there to consider. You have taken two disjoint statements and asserted an inconsistency between them. There isn't one.

The Man · May 30, 2009

doronshadmi said:
These "no gaps" of X < Z < Y hold iff (d > 0) AND (d ≠ 0).

Since Standard Math claims that the non-finite universe between X and Y is completely filled, then d must be the minimal value, which is 0.

So Standard Math in its own framework, has to decide between "completely filled" (and in this case d must be = 0) and "Y has no immediate predecessor" (and in this case d must be > 0).

As long as Standard Math insists to use both "completely filled" AND "Y has no immediate predecessor" on the same non-finite universe between X and Y, Standard Math is based on the reasoning that claims that d is both > AND = 0, which is a contradiction under Standard Math framework.

You have asked me to show a contradiction within the framework of Standard Math.

I have never asked you “to show a contradiction within the framework of Standard Math” I have simply asked you to actually learn math before you claim to be showing “a contradiction within the framework of Standard Math”

doronshadmi said:
I provided such a contradiction (d is both > AND = 0).

Now, instead of face the facts, you behave like any fanatic religious community of people, which does not wish to face the facts about its own failure.

A contradiction based simply on your ignorance of the very math you claim to be contradictory. As always the failure and fanaticism remain yours.

doronshadmi · May 30, 2009

jsfisher said:
There is nothing there to consider. You have taken two disjoint statements and asserted an inconsistency between them. There isn't one.

Please prove that these "closely related" (your words) statements have nothing to do with each other.

EDIT:

jsfisher said:
If 0.999... were not identical to 1, then you'd have an inconsistency between statements (1) and (2).

So they are not disjoint, after all.

jsfisher · May 30, 2009

doronshadmi said:
There is no "next" here jsfisher.

Really? Let's see...

doronshadmi said:
the sum of the non-finite sequence d=0.9

Addend.

... + d=0.09

Next addend.

... + d=0.009

Next addend.

...

doronshadmi · May 30, 2009

jsfisher said:
Really? Let's see...

Addend.

Next addend.

Next addend.

Come on jsfisher think abstract, d>0 is not about any particular Q member, and you know it.

jsfisher · May 30, 2009

doronshadmi said:
Come on jsfisher think abstract, d>0 is not about any particular Q member, and you know it.

Doron, you are flittering from brainstorm to brainstorm, rendering these partial thoughts as posts. You aren't writing connected ideas nor are you consistent in your presentation. If you cannot recognize that you are making shifts in your own notation, don't expect us to keep up with your plot twists.

For the 0.9999... case, what (singular) does your d represent?

doronshadmi · May 30, 2009

jsfisher said:
Doron, you are flittering from brainstorm to brainstorm, rendering these partial thoughts as posts. You aren't writing connected ideas nor are you consistent in your presentation. If you cannot recognize that you are making shifts in your own notation, don't expect us to keep up with your plot twists.

jsfisher, since your abstract ability is based on notations, you don't get tha fact that I am talking on the same notion.

jsfisher said:
For the 0.9999... case, what (singular) does your d represent?

This time please answer to http://www.internationalskeptics.com/forums/showpost.php?p=4763887&postcount=3268 .

jsfisher · May 30, 2009

doronshadmi said:
jsfisher, since your abstract ability is based on notations, you don't get tha fact that I am talking on the same notion.

You misunderstand so very much.

This time please answer to http://www.internationalskeptics.com/forums/showpost.php?p=4763887&postcount=3268 .

I did, but you didn't like the response, so you ignored it. Moreover, you don't really want a response to post #3268; you really are asking for post #3266, but that, too, has already received an unliked response.

Still, much of this revolves around your meaning for d with respect to 0.9999.... Care to provide some clarity?

doronshadmi · May 30, 2009

jsfisher said:
You misunderstand so very much.

I did, but you didn't like the response, so you ignored it. Moreover, you don't really want a response to post #3268; you really are asking for post #3266, but that, too, has already received an unliked response.

Still, much of this revolves around your meaning for d with respect to 0.9999.... Care to provide some clarity?

I provided the wrong link in my last post.

Please answer to http://www.internationalskeptics.com/forums/showpost.php?p=4763918&postcount=3271 .

jsfisher · May 30, 2009

doronshadmi said:
I provided the wrong link in my last post.

Please answer to http://www.internationalskeptics.com/forums/showpost.php?p=4763918&postcount=3271 .

I've added disjoint to the list of terms you don't understand.

doronshadmi · May 31, 2009

doronshadmi said:
By the way, it is easy to show the inconsistency of Standard Math, in this case:

1) From one hand it claims that Y of X<Y has no immediate predecessor, and for that d must be > 0.

2) On the other hand it claims that 0.999…[base 10] = 1 , and for that d must be 0.

I know that (2) is a sum of non-finite Q members, but it has no significance in this case, because both R and Q are dense, by Standard Math.

jsfisher said:

There is no inconsistency in those two statements. In fact, they are closely related. If 0.999... were not identical to 1, then you'd have an inconsistency between statements (1) and (2).

Click to expand...

jsfisher said:
There is nothing there to consider. You have taken two disjoint statements and asserted an inconsistency between them. There isn't one.

Here is jsfisher's self contradiction:

The phrase:

a) " If 0.999... were not identical to 1, then you'd have an inconsistency between statements (1) and (2)."

contradicts the phrase:

b) "You have taken two disjoint statements and asserted an inconsistency between them."

In phrase (a) jsfisher explicitly concludes something that is based on (1) and (2), but in phrase (b) he claims that we cannot conclude anything that is based on (1) and (2), because (1) and (2) are disjoint.

In other words, jsfisher contradicts himself.

jsfisher said:
Still, much of this revolves around your meaning for d with respect to 0.9999.... Care to provide some clarity?

Do you really not get the simple and straightforward notion that 0.999...[base 10]=1 only if d=0?

If d>0 then the sum of all elements of the non-finite sequence d=0.9 + d=0.09 + d=0.009 + d=… ≠ 1 (and there is no "next element" here because d>0 is for the all elements of this non-finite sequence).

jsfisher · May 31, 2009

doronshadmi said:
Here is jsfisher's self contradiction:

The phrase:

a) " If 0.999... were not identical to 1, then you'd have an inconsistency between statements (1) and (2)."

contradicts the phrase:

b) "You have taken two disjoint statements and asserted an inconsistency between them."

In phrase (a) jsfisher explicitly concludes something that is based on (1) and (2), but in phrase (b) he claims that we cannot conclude anything that is based on (1) and (2), because (1) and (2) are disjoint.

In other words, jsfisher contradicts himself.

Learn to read, and learn what words mean. I've already told which word in particular you are misinterpreting, here.

Do you really not get the simple and straightforward notion that 0.999...[base 10]=1 only if d=0?

Do you really not get that all I asked was for you to clarify what you meant by d in this context.

If d>0 then the sum of all elements of the non-finite sequence d=0.9 + d=0.09 + d=0.009 + d=… ≠ 1 (and there is no "next element" here because d>0 is for the all elements of this non-finite sequence).

Oh, I see. You use it inconsistently. No wonder you couldn't clarify. It's not one thing; it's infinitely many things.

Deeper than primes

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