"the NEW efficiency" Windows 7 Launch events


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i doubt they will include x64, they never have in the past. I held out hope they would do x64 or both this time.

Some say you can't move to new hardware, but I have never had a problem. I've had to call in to activate it, but that wasn't a problem.

I hope to get my x64 tomorrow.

Curious if anyone can answer this question. Say I use my Windows 7 key to install 32-bit on my computer since I only have 2GB ram at the moment. Say in the future I upgrade to 4GB ram and want to install 64-bit. Will this work or is the key already tied to the 32-bit version?

Curious if anyone can answer this question. Say I use my Windows 7 key to install 32-bit on my computer since I only have 2GB ram at the moment. Say in the future I upgrade to 4GB ram and want to install 64-bit. Will this work or is the key already tied to the 32-bit version?

From my experience in doing a similar scenario with Vista, yes the key will work. The same key worked regardless if the media was 32bit or 64bit and 32bit was activated first.

Does anyone know if we have to attend both parts of the events in order to get a license? I'm debating whether or not I should still go because one of my classes is doing semi-important things that day.

You don't need to attend both to get a license. You can't attend both and get 2 licenses either. They check you in and provide 1 ticket to get your freebie when it's over.

If you want 64bit, find someone with TechNet or MSDN access so they can download it for you.

Got my copy. I hope the store version is in thsi small folder style, it would be great for teh enviromnment, and really has all you need... key and disc.

Unfortunately I'm sure you'll see that big plastic box again.

I'll be at the one in Philadelphia, PA

I'll be attending the Vienna/Tysons Corner/Fairfax, VA event. Though I already have Windows 7 via MSDN, extra training (concerning Professional, as I have Ultimate x64 on my computer and x32 on Mom's) never hurts.

Can anyone post a picture of the disc that you receive? I'm assuming it's not retail packaging.

Of course it isn't retail packaging...

1. They cut costs using the basic packaging they did use.

2. It makes it harder for someone to get the free copy and try to peddle it off as a resalable retail version.

Does anyone have any contact information for someone at Microsoft to do a media exchange? I received a 32-bit disc but need a 64-bit version.

Last I heard there is no alternate media order yet, you'll need to get a x64 copy from someone with MSDN or TechNet access. There is always that other route, make sure to get a exact filename and hash to be sure.

I'm attending the Wembley Stadium Windows 7 Launch event on October 6. I wonder if they'll be giving out the same things :)

Take a look at the web site detailing the event, they might have a clue on there. When this was first announced the site for the US events showed a Win7 Pro box and early promo's said that's what we would get. Shortly before the events started that was changed to a Win7 Ultimate image and that's what we got.

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    • The quantum search for Time's origin had an equally mind-boggling conclusion by Sayan Sen Image by Steve Johnson via Pexels A theoretical study from researchers at the University of Surrey suggested that the direction of time may not be fundamentally fixed in certain quantum systems. The work, published in Scientific Reports, examined how the “arrow of time” could emerge from microscopic physics and found that time-reversal symmetry can remain intact even in models used to describe processes such as energy loss and thermalisation. The arrow of time refers to the observed one-way direction from past to future in everyday life. In macroscopic processes, this is easy to see. Spilled milk spreads across a table and does not gather back into a glass, and heat flows from hotter objects to colder ones. These processes shape the common sense idea that time moves in a single direction. However, at the level of fundamental physics, many equations do not prefer a direction of time. Time-reversal symmetry means that the same physical laws can describe a system whether time moves forward or backward. This has made it difficult to explain why irreversible behaviour appears in the large-scale world even when the underlying rules do not require it. Dr Andrea Rocco, Associate Professor in Physics and Mathematical Biology at the University of Surrey, described this contrast: "One way to explain this is when you look at a process like spilt milk spreading across a table, it's clear that time is moving forward. But if you were to play that in reverse, like a movie, you'd immediately know something was wrong – it would be hard to believe milk could just gather back into a glass. However, there are processes, such as the motion of a pendulum, that look just as believable in reverse. The puzzle is that, at the most fundamental level, the laws of physics resemble the pendulum; they do not account for irreversible processes. Our findings suggest that while our common experience tells us that time only moves one way, we are just unaware that the opposite direction would have been equally possible." The study focused on open quantum systems, which are quantum systems that interact with a surrounding environment. This environment, often described as a heat bath, can exchange energy and information with the system. The researchers used this framework to study how a direction of time might appear even when the underlying physics does not enforce one. A key part of the analysis involved the Markov approximation. This is a simplification used in many models where the system is assumed not to retain memory of its past states. The idea is that changes depend only on the current state, not on earlier history. This is commonly used when studying thermalisation, which is the process where a system settles into equilibrium with its environment. The study also used concepts such as master equations, including the Lindblad and Pauli equations, which describe how probabilities of different quantum states change over time. Another related model discussed was quantum Brownian motion, which describes the random-like movement of a quantum particle interacting continuously with its environment. In these descriptions, a “memory kernel” can appear, which is a mathematical term that accounts for how past states influence current behaviour. The researchers found that applying the Markov approximation did not break time-reversal symmetry. Even when the system interacted with an effectively infinite heat bath, the resulting equations of motion remained symmetric in time. This meant that the same mathematical description could, in principle, run forward or backward in time without contradiction. The study further showed that standard frameworks used in open quantum systems, including quantum Brownian motion and master equations like the Lindblad and Pauli forms, could be written in a time-symmetric way. These equations are typically used to describe processes that look irreversible, such as dissipation and thermalisation, but the results suggested they can also be interpreted as allowing evolution in both time directions. Thomas Guff, Research Fellow in Quantum Thermodynamics, said: "The surprising part of this project was that even after making the standard simplifying assumption to our equations describing open quantum systems, the equations still behaved the same way whether the system was moving forwards or backwards in time. When we carefully worked through the maths, we found that this behaviour had to be the case because a key part of the equation, the "memory kernel," is symmetrical in time. We also found a small but important detail which is usually overlooked – a time discontinuous factor emerged that kept the time-symmetry property intact. It’s unusual to see such a mathematical mechanism in a physics equation because it's not continuous, and it was very surprising to see it appear so naturally." The researchers also noted that deriving a one-way arrow of time from time-reversal symmetric microscopic dynamics remains an open problem across fields such as thermodynamics, statistical mechanics, particle physics, and cosmology. Their results suggested that some standard descriptions of irreversible behaviour in open quantum systems may be better understood using a time-symmetric formulation of Markovianity. According to the study, processes such as thermalisation, which are usually treated as irreversible, could in theory be described in a way that allows evolution in either time direction under the same rules. This does not imply that time reversal occurs in everyday life, but rather that the underlying equations do not strictly enforce a single direction. Overall, the findings suggested that the perceived direction of time may emerge from how physical systems are modelled and approximated, rather than from a fundamental asymmetry in the laws themselves. The researchers noted that this perspective could have implications for ongoing work in quantum mechanics, thermodynamics, and cosmology on the origin of time’s arrow. Source: University of Surrey, Nature This article was generated with some help from AI and reviewed by an editor. Under Section 107 of the Copyright Act 1976, this material is used for the purpose of news reporting. Fair use is a use permitted by copyright statute that might otherwise be infringing
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