WIKI and Time Dilation: The Possible Error in Relative Velocity

In summary, the conversation is discussing the concept of time dilation due to relative velocity, specifically in the context of the Lorentz-Fitzgerald formula. There is some disagreement about the use of the formula and whether it is appropriate to use it in certain cases. The conversation also touches on the concept of the "rest frame" and how it is defined.
  • #106
chinglu1998 said:

What does this have to do with light aberration?


Did you even read the article?
Yes, I did. I am not asking about the fact that light aberration is seen in the frame moving relative to the clock, I am asking about what light aberration has to do with your argument in the post I was responding to:
Let's follow through with light aberration and see if you are.

primed frame (in which the light clock appears to be moving) will be t' = t γ

You are wrong here. It should be t' = t/γ or t' γ = t.
You said "let's follow through with light aberration", but none of the subsequent sentences seemed to have anything to do with light aberration.
chinglu1998 said:
Actually, you got me. When the unprimed frame is stationary, it elapses less time than the primed frame because of light aberration. Hence, the moving frame (primed frame) beats faster instead of slower as SR would demand for time dilation. You just refuted SR.
You continually use vague ill-defined terminology, I don't know what it even means to say a frame "elapses less time", the time dilation equation deals with the time between a pair of events on the worldline of a physical clock. If we pick two events on the worldline of a clock, and t is the time between them in the clock's frame while t' is the time between those same events in the frame of an observer who is moving relative to the clock (though we are free to label the observer as "stationary" and the clock as "moving" rather than vice versa), then the equation will always be t' = t γ. As I said in my previous post, as long as those conditions are met this equation is correct, it's completely irrelevant which frame you label as "stationary" and which you label as "moving".
 
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  • #107
JesseM said:
I am sorry, but this a nonsensical notion of yours that no physicist would agree with, physicists do sometimes choose to label a frame as "stationary" but this is understood to be an arbitrary label for the sake of convenience with no relevance to any equation or physical result.

Einstein used the label "stationary" 62 times in his paper.
http://www.fourmilab.ch/etexts/einstein/specrel/www/

Are you calling Einstein wrong. Let's get it out now!



Let's say the clock is in the unprimed frame and the observer is in the primed frame. Pick two events on the clock's worldline, and say the time between them in the unprimed frame is t while the time between these same two events in the primed frame is t'. Then, if we label unprimed as "stationary" and primed as "moving" the correct time dilation equation is:

t' = t γ

But if we label the primed frame as "stationary" and unprimed as "moving", while keeping everything else the same, the correct time dilation equation is:

t' = t γ

Do you disagree? Yes or no, please. If you don't disagree, then you can see that the choice of which frame to label as "stationary" is utterly irrelevant to the equation, which is exactly the same either way. If you do disagree, I can go through a numerical example to show you're wrong.

I agree with all above. Where is your reciprocal time dilation as required by SR?
 
  • #108
chinglu1998 said:
Einstein used the label "stationary" 62 times in his paper.
http://www.fourmilab.ch/etexts/einstein/specrel/www/

Are you calling Einstein wrong. Let's get it out now!
Do you have zero reading comprehension? I said physicists do sometimes choose to label a frame as "stationary" but this is understood to be an arbitrary label for the sake of convenience with no relevance to any equation or physical result. Einstein of course calls one frame "stationary", but this is "understood to be an arbitrary label for the sake of convenience", that's why he says In order to render our presentation more precise and to distinguish this system of co-ordinates verbally from others which will be introduced hereafter, we call it the "stationary system.'' Calling the system "stationary" is purely to distinguish it verbally, it has no physical relevance and doesn't affect any aspect of his mathematical derivation.
chinglu1998 said:
I agree with all above.
So you agree it makes no difference to the equation which frame we call "stationary"? And you agree the wiki article was correct to write t' = t γ since their scenario matched the one I described?
chinglu1998 said:
Where is your reciprocal time dilation as required by SR?
The reciprocity lies in the fact that if we picked a different clock which was in the primed frame rather than the unprimed frame, and picked two events on the worldline of that clock, then the time between these events in each frame would be given by t = t' γ. Again, it's all about which frame is the clock's frame, which is why I said it's best to think of the time dilation equation as (time interval in frame of observer who sees clock in motion) = (time elapsed on clock)*gamma
 
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  • #109
chinglu1998 said:
How do you square your statement with Einstein's?

Let us take a system of co-ordinates in which the equations of Newtonian mechanics hold good.2 In order to render our presentation more precise and to distinguish this system of co-ordinates verbally from others which will be introduced hereafter, we call it the ``stationary system.''

http://www.fourmilab.ch/etexts/einstein/specrel/www/
In what way is my statement in conflict with Einsteins?

chinglu1998 said:
And no, you do not apply the metric to the stationary system. That is the light postulate defined as c²t² = x² + y² + z².
Yes, you do. The first postulate requires that the metric which applies to any inertial frame must apply to all of them. If it applies to one frame then it applies to all. The light cone is the set of all points:
ds² = -c²dt² + dx² + dy² + dz²
such that ds²=0
The same in one inertial frame as in all others. You cannot pick one metric for one inertial frame and another metric for another inertial frame without violating the first postualte.
 
  • #110
chinglu1998 said:
I agree with all above. Where is your reciprocal time dilation as required by SR?

Read post #90 for an example of reciprocal time dilation.
 
  • #111
chinglu1998 said:
Can you explain how time dilation is valid if a frame is not taken stationary? I mean, you seem to think this idea is dirty. I am sorry, but you must take one frame as stationary to determine time dilation.




Yes, this is how time dilation works. But, the reason I see not need to answer this question is your evasiveness to indicates a frame is stationary.

Are you ready to step up to the plate and claim the unprimed frame in WIKI is stationary and t' = γt. I want to see you declare this.

I think I see your problem in reasoning and understanding of time dilation. I'll ask a few questions see if you agree or disagree and hopefully we can find exactly what the problem your having is. I made a post earlier that had most of the questions but i'll try to simplify.

You have the Earth and a ship. The ship is moving at a constant .6c away from the earth.

1. Is the ship "stationary" in the ship's frame of reference?

2. If in the Earth's frame of reference the ship's clock is ticking slower does this mean that in the ships frame of reference that the Earth's clock is ticking faster?

3. In which frame of reference is the Earth's clock ticking slower than the ship's clock?

4. Does the clock on the ship always tick slower than the clock on the Earth no matter which frame of reference you chose?
 
  • #112
I think I might have figured out what is being said. How does this sound?

In the wiki article the observer is in the primed frame. So it doesn't matter what you label the frames as if it be "moving" or "stationary". To the observer which ever frame he is in he will always be at rest. He doesn't care if you call him "moving" or "stationary".
 
  • #113
Okay, I think I finally figured out a way to clarify that part of the Wiki article with the light clock that fits in well with it and the diagrams, by adding a simple paragraph to the end. How does this sound?

This is the time dilation found only by the frame of reference that is considered stationary as it observes the light pulse which is bouncing back and forth in the moving frame. To clarify this further, let us now place a mechanical clock at mirror A in the moving frame. All frames must agree upon the readings of the mechanical clock as the light pulse departs mirror A in the moving frame and then arrives back at mirror A again, since those two readings of the mechanical clock directly coincide in the same place as the two events of the light pulse departing and arriving, therefore all frames observe the difference between these two readings in the moving frame to be Δt as that frame measures itself. According to our frame of reference, however, the same light pulse travels a longer path in the time Δt', whereby the time dilation that the stationary frame of reference observes of the moving frame's clock, as found earlier, is the ratio of the time that the stationary frame observes passing upon the moving frame's clock as compared to the time that passes upon the stationary frame's own clock.
 
  • #114
OP, maybe the article

http://en.wikipedia.org/wiki/Introduction_to_special_relativity

is more suited to you. I suggest reading it closely before continuing the discussion, as you are demonstrating a misunderstanding of very fundamental topics in SR, and progression to more advanced topics will be impossible unless this is cleared up.

grav-universe said:
Okay, I think I finally figured out a way to clarify that part of the Wiki article with the light clock that fits in well with it and the diagrams, by adding a simple paragraph to the end. How does this sound?

It may just be me, but I don't think that paragraph, or any such clarification is needed.
 
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  • #115
grav-universe said:
This is the time dilation found only by the frame of reference that is considered stationary as it observes the light pulse which is bouncing back and forth in the moving frame. To clarify this further, let us now place a mechanical clock at mirror A in the moving frame. All frames must agree upon the readings of the mechanical clock as the light pulse departs mirror A in the moving frame and then arrives back at mirror A again, since those two readings of the mechanical clock directly coincide in the same place as the two events of the light pulse departing and arriving, therefore all frames observe the difference between these two readings in the moving frame to be Δt as that frame measures itself. According to our frame of reference, however, the same light pulse travels a longer path in the time Δt', whereby the time dilation that the stationary frame of reference observes of the moving frame's clock, as found earlier, is the ratio of the time that the stationary frame observes passing upon the moving frame's clock as compared to the time that passes upon the stationary frame's own clock.

You really should stop talking about the "stationary frame" as it just confuses the heck out everyone here and you too.

The observer at rest in frame S considers himself to be at rest in his own reference frame and likewise the observer in frame S' considers himself to be at rest in his own reference frame. Frames S and S' are moving with a velocity magnitude of v relative to each other. There is no clear definition of whether S or S' is the stationary frame so as soon as you talk about the "stationary frame" no one knows what you are talking about and it just leads to confusion as it has in your case.

It is better to say something like the frame (S) in which the light clock is at rest, or the frame (S') in which the light clock has relative motion -v.

It *might* be OK to use phrases like "the stationary frame" as shorthand for "the reference frame in which the light clock is at rest" as long you clearly define the expression (as Einstein did) but using an identifier such as "frame S" is just a good a shorthand. Your expression "the frame of reference that is considered stationary as it observes the light pulse which is bouncing back and forth in the moving frame" gives the reader no clue as to whether "the stationary frame" is the frame in which the light clock is at rest or not.
 
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  • #116
yuiop said:
You really should stop talking about the "stationary frame" as it just confuses the heck out everyone here and you too.

The observer at rest in frame S considers himself to be at rest in his own reference frame and likewise the observer in frame S' considers himself to be at rest in his own reference frame. Frames S and S' are moving with a velocity magnitude of v relative to each other. There is no clear definition of whether S or S' is the stationary frame so as soon as you talk about the "stationary frame" no one knows what you are talking about and it just leads to confusion as it has in your case.

It is better to say something like the frame (S) in which the light clock is at rest, or the frame (S') in which the light clock has relative motion v.
Right, okay. Maybe just the observing frame rather than the stationary frame, then? The paragraph I added has already been cut in the article, but I still want to clarify it. I also considered adding a second paragraph which shows the same time dilation can be found from either frame, but I think it still requires some rewording. Perhaps you can help with that. So far it reads

"If we were to now reverse the roles of the observing and moving frames, making the original frame of the light clock the observing frame while considering the other frame to be moving, while also placing another light clock in the other frame with a second light pulse bouncing back and forth between two mirrors in the same way as in the original frame, then the first frame will measure the same time dilation of the second frame's clock as well, found in the same way as before from the other frame, demonstrating that each frame measures the same time dilation of the other."
 
  • #117
grav-universe said:
Right, okay. Maybe just the observing frame rather than the stationary frame, then? The paragraph I added has already been cut in the article, but I still want to clarify it. I also considered adding a second paragraph which shows the same time dilation can be found from either frame, but I think it still requires some rewording. Perhaps you can help with that. So far it reads

"If we were to now reverse the roles of the observing and moving frames, making the original frame of the light clock the observing frame while considering the other frame to be moving, while also placing another light clock in the other frame with a second light pulse bouncing back and forth between two mirrors in the same way as in the original frame, then the first frame will measure the same time dilation of the second frame's clock as well, found in the same way as before from the other frame, demonstrating that each frame measures the same time dilation of the other."

This is unneeded, because the following paragraph, titled "Time dilation due to relative velocity symmetric between observers" covers this.
 
  • #118
grav-universe said:
I also considered adding a second paragraph which shows the same time dilation can be found from either frame, but I think it still requires some rewording. Perhaps you can help with that.
Thanks, but I am probably one of the worst people to do this task as I use a very informal language myself. There are plenty of others skilled in the formal language here such as Jesse or Dalespam who would be much better suited to the task, but from what I can tell the Wikipedia article on time dilation is pretty accurate and well explained and does not need much, if anything adding to it.
 
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  • #119
espen180 said:
This is unneeded, because the following paragraph, titled "Time dilation due to relative velocity symmetric between observers" covers this.
That isn't clear either. :smile: Okay, maybe just a quick mention on that, adding it to the overall paragraph. How about this?

"This is the time dilation found only by the frame of reference that observes the light pulse bouncing back and forth in the moving frame. To clarify this further, let us now place a mechanical clock at mirror A in the moving frame. All frames must agree upon the readings of the mechanical clock as the light pulse departs mirror A in the moving frame and then arrives back at mirror A again, since those two readings of the mechanical clock directly coincide in the same place as the two events of the light pulse departing and arriving, therefore all frames observe the difference between these two readings in the moving frame to be Δt as that frame measures itself. According to the observing frame, however, the same light pulse travels a longer path in the time Δt', whereby the time dilation that the observing frame observes of the moving frame's clock, as found earlier, is the ratio of the time that the observing frame views passing upon the moving frame's clock as compared to the time that passes upon the observing frame's own clock. In addition, if we were to now place another light clock in the second frame with a second light pulse bouncing back and forth between two mirrors in that frame in the same way while reversing the roles of the observing and moving frames, then the first frame will now measure the same time dilation of the second frame's clock as found as before from the other frame, demonstrating that each frame measures the same time dilation of the other."
 
  • #120
grav-universe said:
That isn't clear either. :smile: Okay, maybe just a quick mention on that, adding it to the overall paragraph. How about this?

"This is the time dilation found only by the frame of reference that observes the light pulse bouncing back and forth in the moving frame. To clarify this further, let us now place a mechanical clock at mirror A in the moving frame. All frames must agree upon the readings of the mechanical clock as the light pulse departs mirror A in the moving frame and then arrives back at mirror A again, since those two readings of the mechanical clock directly coincide in the same place as the two events of the light pulse departing and arriving, therefore all frames observe the difference between these two readings in the moving frame to be Δt as that frame measures itself. According to the observing frame, however, the same light pulse travels a longer path in the time Δt', whereby the time dilation that the observing frame observes of the moving frame's clock, as found earlier, is the ratio of the time that the observing frame views passing upon the moving frame's clock as compared to the time that passes upon the observing frame's own clock. In addition, if we were to now place another light clock in the second frame with a second light pulse bouncing back and forth between two mirrors in that frame in the same way while reversing the roles of the observing and moving frames, then the first frame will now measure the same time dilation of the second frame's clock as found as before from the other frame, demonstrating that each frame measures the same time dilation of the other."

"The moving frame" is as poorly defined as the "the stationary frame". An observer in frame S considers frame S' to be moving relative to his frame and the observer in frame S' considers frame S to be moving relative to his own frame. Which is the "the moving frame"? Frame S or frame S'? If someone reads your paragraph very carefully they can deduce that by "the moving frame" you mean the frame in which the light clock is at rest, but it is hard work because it is not made clear early on.
 
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  • #121
yuiop said:
"The moving frame" is as poorly defined as the "the stationary frame". An observer in frame S considers frame S' to be moving relative to his frame and the observer in frame S' considers frame S to be moving relative to his own frame. Which is the "the moving frame"? Frame S or frame S'? If someone reads your paragraph very carefully they can deduce that by "the moving frame" you mean the frame in which the light clock is at rest, but it is hard work because it is not made clear early on.
Right. :smile: Okay then, how about this?

"This is the time dilation found only by the frame of reference that observes the light pulse bouncing back and forth in the frame of the light clock. To clarify this further, let us now place a mechanical clock at mirror A. All frames must agree upon the readings of the mechanical clock as the light pulse departs mirror A and then arrives back at mirror A again, since those two readings of the mechanical clock directly coincide in the same place as the two events of the light pulse departing and arriving, therefore all frames observe the difference between these two readings of the mechanical clock to be Δt as that frame measures itself. According to the observing frame, however, the same light pulse travels a longer path in the time Δt', whereby the time dilation that the observing frame observes of the other frame's clock, as found earlier, is the ratio of the time that the observing frame views passing upon the other frame's clock as compared to the time that passes upon the observing frame's own clock. In addition, if we were to now place another light clock in the second frame while reversing the roles of the frames, then the first frame will also measure the same time dilation of the second frame's clock, demonstrating that each frame measures the same time dilation of the other."

It probably doesn't matter much anyway at this point because I posted my suggestion in the discussion section and it was remarked by the person that cut it that I would require a reliable source. I'm not sure how I would find a reliable source that states it in a way that precisely fits the way it has already been presented as well as the diagrams, but I guess I'll look around.
 
  • #122
grav-universe said:
Right. :smile: Okay then, how about this?

"This is the time dilation found only by the frame of reference that observes the light pulse bouncing back and forth in the frame of the light clock. To clarify this further, let us now place a mechanical clock at mirror A. All frames must agree upon the readings of the mechanical clock as the light pulse departs mirror A and then arrives back at mirror A again, since those two readings of the mechanical clock directly coincide in the same place as the two events of the light pulse departing and arriving, therefore all frames observe the difference between these two readings of the mechanical clock to be Δt as that frame measures itself. According to the observing frame, however, the same light pulse travels a longer path in the time Δt', whereby the time dilation that the observing frame observes of the other frame's clock, as found earlier, is the ratio of the time that the observing frame views passing upon the other frame's clock as compared to the time that passes upon the observing frame's own clock. In addition, if we were to now place another light clock in the second frame while reversing the roles of the frames, then the first frame will measure the same time dilation of the second frame's clock as found as before from the second frame, demonstrating that each frame measures the same time dilation of the other."

It probably doesn't matter much anyway at this point because I posted my suggestion in the discussion section and it was remarked by the person that cut it that I would require a reliable source. I'm not sure how I would find a reliable source that states it in a way that precisely fits the way it has already been presented as well as the diagrams, but I guess I'll look around.
If you want a reference for the idea that another type of clock at rest next to the light clock must keep time with it, and therefore must also appear slowed down in the observer's frame, you could use p. 40 of Brian Greene's The Elegant Universe. My only editing suggestion here would be that "the frame of reference that observes the light pulse bouncing back and forth in the frame of the light clock" doesn't really make sense (how can the external observer observe something 'in the frame of the light clock'? The bouncing of the pulse isn't 'in' any frame, it's just a series of physical events observed in all frames). How about just "the frame of the observer who sees the clock in motion" or something like that?
 
  • #123
JesseM said:
If you want a reference for the idea that another type of clock at rest next to the light clock must keep time with it, and therefore must also appear slowed down in the observer's frame, you could use p. 40 of Brian Greene's The Elegant Universe.
Ah, beautiful. Thanks, JesseM. :smile: I also found a free image from Wikimedia that can be used. I've mentioned both of these in the talk page.

My only editing suggestion here would be that "the frame of reference that observes the light pulse bouncing back and forth in the frame of the light clock" doesn't really make sense (how can the external observer observe something 'in the frame of the light clock'? The bouncing of the pulse isn't 'in' any frame, it's just a series of physical events observed in all frames). How about just "the frame of the observer who sees the clock in motion" or something like that?
Yes, I was looking at that too. Your suggestion sounds perfect. :smile: So now we have

"This is the time dilation found only from the frame of the observer who sees the clock in motion. To clarify further, let us now place a mechanical clock at mirror A. All frames must agree upon the readings of the mechanical clock as the light pulse departs mirror A and then arrives back at mirror A again, since those two readings of the mechanical clock directly coincide in the same place as the two events of the light pulse departing and arriving, therefore all frames observe the difference between these two readings of the mechanical clock to be Δt as that frame measures itself. According to the observing frame, however, the same light pulse travels a longer path in the time Δt', whereby the time dilation that the observing frame views of the other frame's clock, as found earlier, is the ratio of the time that the observing frame views passing upon the other frame's clock to that of the time that passes upon the observing frame's own clock. In addition, if we were to now place another light clock in the second frame while reversing the roles of the frames, then the first frame will also measure the same time dilation of the second frame's clock, demonstrating that each frame measures the same time dilation of the other."

Any further suggestions from anybody? To really close things up, I'm thinking we might also need something that shows the time the observing frame views of the other frame is real time, nothing to do with the flight of light with observations.
 

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  • #124
chinglu1998 said:
I am sorry, but you must take one frame as stationary to determine time dilation.

You keep saying this. It is not correct - that is not how relativity works.
 
  • #125
chinglu1998 said:
Now, in the primed frame, it will see light aberration, hence the light path is longer in the view of the primed frame.

Apply the Pythagorean Theorem and you calculate t' = t γ just as WIKI said, but this is not time dilation since the unprimed frame is at rest.
By light aberration I assume you mean that while the path of the light beam is perpendicular to the mirrors in the rest frame of the clock (the unprimed frame), it is not perpendicular in the primed frame. Light aberration is due to motion in a direction perpendicular to the path of the light beam (so there is no way to have a frame that observes aberration and is at rest with respect to source). Objects in motion are observed to exhibit time dilation. So, if there is light aberration there will also be time dilation. The frame in which light aberration is observed measures the light clock to be in motion.
chinglu1998 said:
Now assume the primed frame is at rest. Same thing, light aberration will force that frame to conclude t' = t γ.
If you are using the light aberration via the Pythagorean theorem to calculate time dilation, you are implicitly assuming that the light clock is in motion, so you will always obtain the same answer (i.e., that for the time dilation of the unprimed frame due to its motion wrt the primed frame). It is clear that considering an equivalent light clock at rest in the primed frame will simply reverse the labels in the resulting equation [tex]\Delta{}t'=\gamma{}\Delta{}t\rightarrow{}\Delta{}t=\gamma{}\Delta{}t'[/tex]. This is the formula arrived at for the time dilation of the primed frame wrt the unprimed frame (it could be done via the Pythagorean theorem as well, since the light clock at rest in the primed frame would exhibit light aberration in the unprimed frame).
 
  • #126
DaleSpam said:
In what way is my statement in conflict with Einsteins?

Yes, you do. The first postulate requires that the metric which applies to any inertial frame must apply to all of them. If it applies to one frame then it applies to all. The light cone is the set of all points:
ds² = -c²dt² + dx² + dy² + dz²
such that ds²=0
The same in one inertial frame as in all others. You cannot pick one metric for one inertial frame and another metric for another inertial frame without violating the first postualte.

I am going to have to agree you are correct with the metric.
 
  • #127
JesseM said:
Do you have zero reading comprehension? I said physicists do sometimes choose to label a frame as "stationary" but this is understood to be an arbitrary label for the sake of convenience with no relevance to any equation or physical result. Einstein of course calls one frame "stationary", but this is "understood to be an arbitrary label for the sake of convenience", that's why he says In order to render our presentation more precise and to distinguish this system of co-ordinates verbally from others which will be introduced hereafter, we call it the "stationary system.'' Calling the system "stationary" is purely to distinguish it verbally, it has no physical relevance and doesn't affect any aspect of his mathematical derivation.

O can agree with you except, when the frame is taken as statonary, objects in that frame have Euclidian measurements. Those in the moving frame have Minkowski. Is that not a difference?

Though, whatever the frame, by the relativity postulate, each frame obeys this rule.

So you agree it makes no difference to the equation which frame we call "stationary"? And you agree the wiki article was correct to write t' = t γ since their scenario matched the one I described?
I am saying, it needs to be clear which frame is stationary.
If the unprimed frame is stationary as the article claims, then t' = t/γ. Is this false?


The reciprocity lies in the fact that if we picked a different clock which was in the primed frame rather than the unprimed frame, and picked two events on the worldline of that clock, then the time between these events in each frame would be given by t = t' γ. Again, it's all about which frame is the clock's frame, which is why I said it's best to think of the time dilation equation as (time interval in frame of observer who sees clock in motion) = (time elapsed on clock)*gamma

I am not sure how to take you. But, your statement of a different clock and reciprocity would be the way I look at it and calculate.

Now, let me ask you a question. Assume one clock and only one.

Say it is a primed frame clock at a negative coordinate. Please calculate using LT the time result between the two frames.
 
  • #128
yuiop said:
Read post #90 for an example of reciprocal time dilation.

Agreed, your post #90 is a perfect example of reciprocal time dilation.

Except, instead of two clocks for A and B, let's have one at say -k' in the primed system.

It moves to the unprimed origin. Does this create reciprocal time dilation?
 
  • #129
chinglu1998 said:
O can agree with you except, when the frame is taken as statonary, objects in that frame have Euclidian measurements. Those in the moving frame have Minkowski. Is that not a difference?
As I said I don't understand your terminology, all equations (Euclidean or Minkowski) that apply in one frame also apply in every other frame. You never answered my questions in post #84 about your ill-defined notion that this has something to do with "topological spaces" (I think maybe you need to look up the definition of 'topology').
chinglu1998 said:
I am saying, it needs to be clear which frame is stationary.
If the unprimed frame is stationary as the article claims, then t' = t/γ. Is this false?
Yes, it's false. Did you even read what I wrote in post #105 before saying "I agree with all of the above" in your response in post #107? I explicitly said that if the unprimed frame is stationary the equation is still t' = t γ. Read the first part again:
Let's say the clock is in the unprimed frame and the observer is in the primed frame. Pick two events on the clock's worldline, and say the time between them in the unprimed frame is t while the time between these same two events in the primed frame is t'. Then, if we label unprimed as "stationary" and primed as "moving" the correct time dilation equation is:

t' = t γ
Do you want to take back your agreement with this statement?
chinglu1998 said:
Now, let me ask you a question. Assume one clock and only one.

Say it is a primed frame clock at a negative coordinate. Please calculate using LT the time result between the two frames.
If the clock is in the primed frame (unlike in the wiki where it was in the unprimed frame) the relation will t = t' γ, regardless of whether we label the primed frame as "stationary" or "moving". Do you disagree? If you do I can certainly show that this is true using the LT (and with the clock at a negative position coordinate in the primed frame) if you like, but if you agree then there doesn't seem to be any point in going through the math.
 
  • #130
darkhorror said:
I think I might have figured out what is being said. How does this sound?

In the wiki article the observer is in the primed frame. So it doesn't matter what you label the frames as if it be "moving" or "stationary". To the observer which ever frame he is in he will always be at rest. He doesn't care if you call him "moving" or "stationary".

I agree if the observer is in the primed frame.

I do not know why I am the only one that can see the error in the article.

It says,

That is to say, in a frame moving relative to the clock, the clock appears to be running more slowly.

How exactly are you going to be an observer moving relative to a clock and perform the calculation? If you are an observer in the primed frame, the clock is moving relative to you.

Do you see the logic error in considering the primed frame as the observer frame? An observer frame does not move relative to anything.
 
  • #131
espen180 said:
OP, maybe the article

http://en.wikipedia.org/wiki/Introduction_to_special_relativity

is more suited to you. I suggest reading it closely before continuing the discussion, as you are demonstrating a misunderstanding of very fundamental topics in SR, and progression to more advanced topics will be impossible unless this is cleared up.



It may just be me, but I don't think that paragraph, or any such clarification is needed.

Then you do not understand SR and you need to start more simply.
The article says,

That is to say, in a frame moving relative to the clock, the clock appears to be running more slowly.

which expresses the fact that for the moving observer the period of the clock is longer than in the frame of the clock itself.

As an observer in SR, how do you know you are moving?
 
  • #132
yuiop said:
You really should stop talking about the "stationary frame" as it just confuses the heck out everyone here and you too.

The observer at rest in frame S considers himself to be at rest in his own reference frame and likewise the observer in frame S' considers himself to be at rest in his own reference frame. Frames S and S' are moving with a velocity magnitude of v relative to each other. There is no clear definition of whether S or S' is the stationary frame so as soon as you talk about the "stationary frame" no one knows what you are talking about and it just leads to confusion as it has in your case.

It is better to say something like the frame (S) in which the light clock is at rest, or the frame (S') in which the light clock has relative motion -v.

It *might* be OK to use phrases like "the stationary frame" as shorthand for "the reference frame in which the light clock is at rest" as long you clearly define the expression (as Einstein did) but using an identifier such as "frame S" is just a good a shorthand. Your expression "the frame of reference that is considered stationary as it observes the light pulse which is bouncing back and forth in the moving frame" gives the reader no clue as to whether "the stationary frame" is the frame in which the light clock is at rest or not.


It is better to say something like the frame (S) in which the light clock is at rest, or the frame (S') in which the light clock has relative motion -v.

Yes, could not agree more.

Here is the article.

which expresses the fact that for the moving observer the period of the clock is longer than in the frame of the clock itself.

This is saying the frame with the moving observer is viewing a clock at rest. Exactly under the language of SR is a statement like this true than an observer is moving?
 
  • #133
chinglu1998 said:
How exactly are you going to be an observer moving relative to a clock and perform the calculation? If you are an observer in the primed frame, the clock is moving relative to you.
"observer is moving relative to the clock" just means the observer is in motion in the clock's frame, and "clock is moving relative to the observer" just means the clock is in motion in the observer's frame. In relativity one necessarily implies the other, so the two statements are completely interchangeable, saying "the observer is moving relative to the clock" doesn't contradict the idea that when we perform calculations in the observer's frame, we treat the observer as being at rest and the clock as having a nonzero velocity.
 
  • #134
Originally Posted by chinglu1998
I am sorry, but you must take one frame as stationary to determine time dilation.
Vanadium 50 said:
You keep saying this. It is not correct - that is not how relativity works.

Einstein:
Further, we imagine one of the clocks which are qualified to mark the time t when at rest relatively to the stationary system, and the time when at rest relatively to the moving system, to be located at the origin of the co-ordinates of k, and so adjusted that it marks the time . What is the rate of this clock, when viewed from the stationary system?
http://www.fourmilab.ch/etexts/einstein/specrel/www/
 
  • #135
chinglu1998 said:
Einstein:
Further, we imagine one of the clocks which are qualified to mark the time t when at rest relatively to the stationary system, and the time when at rest relatively to the moving system, to be located at the origin of the co-ordinates of k, and so adjusted that it marks the time . What is the rate of this clock, when viewed from the stationary system?
http://www.fourmilab.ch/etexts/einstein/specrel/www/
Gee, where in that quote does Einstein say "you must take one frame as stationary to determine time dilation"? Nowhere. He says at the beginning that he chooses to label one frame as "stationary" purely for verbal purposes (the label is completely irrelevant to all his actual calculations, including calculations which 'determine time dilation'):
In order to render our presentation more precise and to distinguish this system of co-ordinates verbally from others which will be introduced hereafter, we call it the "stationary system.''
 
  • #136
IsometricPion said:
By light aberration I assume you mean that while the path of the light beam is perpendicular to the mirrors in the rest frame of the clock (the unprimed frame), it is not perpendicular in the primed frame. Light aberration is due to motion in a direction perpendicular to the path of the light beam (so there is no way to have a frame that observes aberration and is at rest with respect to source). Objects in motion are observed to exhibit time dilation. So, if there is light aberration there will also be time dilation. The frame in which light aberration is observed measures the light clock to be in motion.If you are using the light aberration via the Pythagorean theorem to calculate time dilation, you are implicitly assuming that the light clock is in motion, so you will always obtain the same answer (i.e., that for the time dilation of the unprimed frame due to its motion wrt the primed frame). It is clear that considering an equivalent light clock at rest in the primed frame will simply reverse the labels in the resulting equation [tex]\Delta{}t'=\gamma{}\Delta{}t\rightarrow{}\Delta{}t=\gamma{}\Delta{}t'[/tex]. This is the formula arrived at for the time dilation of the primed frame wrt the unprimed frame (it could be done via the Pythagorean theorem as well, since the light clock at rest in the primed frame would exhibit light aberration in the unprimed frame).

In reality, it does not matter.

Assume you are the observer at rest with the light source. No matter what, the light moves in a straight line up the y-axis in your view.

But, if there was a moving frame, what do you believe it saw?

You think it moved and when the light beam reach a certain y coordinate, it applies the Pythagorean theorem based on its origin.

Now, assume you are an observer in the rest frame and the light source is moving.

You conclude light aberration and the moving light source is in straight lines.

It does not matter which frame you chose, the calculation is absolute. The frame at rest with the light source concludes less time.
 
  • #137
JesseM said:
As I said I don't understand your terminology, all equations (Euclidean or Minkowski) that apply in one frame also apply in every other frame. You never answered my questions in post #84 about your ill-defined notion that this has something to do with "topological spaces" (I think maybe you need to look up the definition of 'topology').
I agree when you are the observer frame, you calculateexactly the same way any observer in any other frame would calculate.

Now, if you are the observer, do you calculate a moving observer will calculate events as you do? I know you will say no.



Yes, it's false. Did you even read what I wrote in post #105 before saying "I agree with all of the above" in your response in post #107? I explicitly said that if the unprimed frame is stationary the equation is still t' = t γ. Read the first part again:

Do you want to take back your agreement with this statement
?

No, I do not want to take back my agreement.
if the unprimed frame is stationary the equation is still t' = t γ

This is correct. In other places, my threads would be terminated for this. I agree 100%.


If the clock is in the primed frame (unlike in the wiki where it was in the unprimed frame) the relation will t = t' γ, regardless of whether we label the primed frame as "stationary" or "moving". Do you disagree? If you do I can certainly show that this is true using the LT (and with the clock at a negative position coordinate in the primed frame) if you like, but if you agree then there doesn't seem to be any point in going through the math.

No need, I agree. But, I want to make sure, by LT invertibility, in this case both frames calculate t = t' γ, is that your position?
 
  • #138
JesseM said:
Gee, where in that quote does Einstein say "you must take one frame as stationary to determine time dilation"? Nowhere. He says at the beginning that he chooses to label one frame as "stationary" purely for verbal purposes (the label is completely irrelevant to all his actual calculations, including calculations which 'determine time dilation'):

Oh, I was not saying you must take one frame in that sense. I was saying you must take a frame as stationary to calculate time dilation.

Is this false?
 
  • #139
chinglu1998 said:
I do not know why I am the only one that can see the error in the article.

Because you are the one who is wrong. (See the previous 100+ messages for details)

chinglu1998 said:
Then you do not understand SR and you need to start more simply.

No, it's you who does not understand it. Just because SR can handle a problem with one observer at rest, it doesn't mean that it provides a way to tell who is 'really' at rest. In fact, it doesn't even require that anyone be at rest: one can solve problems where everyone is in motion.

Understanding a theory does not mean being able to come up with a quote from someone else (even Einstein) which might support your position. It means being able to do the calculations. The words are window dressing - the mathematics is the theory.
 
  • #140
Vanadium 50 said:
Because you are the one who is wrong. (See the previous 100+ messages for details)

It seems you are very good at math. Can you use math to support this?

Also, can you explain how an observer is moving under SR. How does an observer know it is moving? The WIKI article depends on this.



No, it's you who does not understand it. Just because SR can handle a problem with one observer at rest, it doesn't mean that it provides a way to tell who is 'really' at rest. In fact, it doesn't even require that anyone be at rest: one can solve problems where everyone is in motion.

Understanding a theory does not mean being able to come up with a quote from someone else (even Einstein) which might support your position. It means being able to do the calculations. The words are window dressing - the mathematics is the theory.

So, if I post a quote directly from Einstein that is the same as my postiion, then I am wrong? Can you explain this? You see, your position disagrees with the stated position of Einstein not mine.
 

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