The elephant forgot the rest of the levels, but luckily he still has one left! Help him beat it in all his metagaming glory. Use your keen knowledge of gaming and dexterity to manhandle your way through a variety of challenges. Get your mind out of the box for once! Take it outside for a walk, or maybe grab a bite to eat with it.

I'm logging events in my python code uing the python logging module. I have 2 logging files I wish to log too, one to contain user information and the other a more detailed log file for devs. I've set the the two logging files to the levels I want (usr.log = INFO and dev.log = ERROR) but cant work out how to restrict the logging to the usr.log file so only the INFO level logs are written to the log file as opposed to INFO plus everthing else above it e.g. INFO, WARNING, ERROR and CRITICAL.


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which means that logger1 and logger2 are the same logger, so when you set the level of logger2 to ERROR you actually end up setting the level of logger1 at the same time. In order to get two different loggers, you would need to supply two different logger names. For example:

Worse still, you are calling the logging module's critical(), info() and warning() methods and expecting that both loggers will get the messages. This only works because you used the empty string as the name for both logger1 and logger2 and thus they are not only the same logger, they are also the root logger. If you use different names for the two loggers as I have suggested, then you'll need to call the critical(), info() and warning() methods on each logger individually (i.e. you'll need two calls rather than just one).

First: this is a rather odd thing to want to do, and strikes me as a slight misuse of the logging system. I can't imagine any situation in which it makes sense to notify the user about the normal operation of the program but not about things that are more important. The logging levels should be used to indicate importance; if you have messages that are only of interest to developers, you should be using some other mechanism to distinguish them (such as which logger you send them to).

To free space on the server, I want to delete all old_releases folder. So I thought I could quickly find them with the Windows Explorer search tool, since all folders are on the first level, and just hit shift+delete key. However, unfortunately, the searcher does not starts to look automatically through the first level, and takes a really long time to find all folders I want to remove.

I had this same issue just now. This is very strange but creating a dummy Level (with only a distant cube in it) which I loaded before the actual level I wanted to load and then loading actual level works for some reason. It kept failing to load the first level in standalone mode. I am using streaming levels.

Can somebody tell me how to make both the item number and the item itself bold - but only on the highest level of my list? So, 1,2,3 etc should be bold, while 1.1, 1.2 etc should stay normal. I'm using enumitem.

By also setting the before formatter, you can set the text of the entire item in a certain font, as you seemed to desire from your question. Resetting for level two will set the fonts for the label and item back to normal for future levels.

I'm talking just rushing the main objectives. No planet stories, no side quests, no Flashpoints or fleet missions or anything. Strictly running the main quest - is that easily doable or will you not level enough? At this point I don't care about going beyond the free content.

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At higher levels, you gain more warlock spells of your choice that can be cast in this way: one 7th-level spell at 13th level, one 8th-level spell at 15th level, and one 9th-level spell at 17th level. You regain all uses of your Mystic Arcanum when you finish a long rest.

It's simulating the once-a-day spell slots that other casters get (presumably, they didn't want you recasting a 9th level spell every time you rested throughout the day), but there are a few minor differences.

It depends on the structure and the elements used. You might have a section element with an article element inside it. Because both elements are sectioning content the h1 would be for the section (top level) and then you might use an h2 for the article.

I understand that the crystal drive level is the maximum power dissipated in the crystal. So, the datasheet of the USB device should give the maximum value of the crystal drive level, right? Why is only a minimum value given?

I guess that since the drive level of the selected crystal is lower than the USB datasheet, I should not use it. Can someone tell me the reason why it should not be used? For this, I did some reading on the accepted answer to this question. It was not very clear. Can someone clarify in simple terms?

We have redeveloped our Cambridge International AS and A Level Spanish offer to make sure there is smoother progression from Cambridge IGCSE based on learners' level of Spanish and a closer alignment with the CEFR framework. We are withdrawing Cambridge International AS Level Spanish Language (8685), Spanish First Language (8665), Spanish Literature (8673) and A Level Spanish (9719) to replace them with our newly designed Cambridge International AS Level Spanish Language (8022) and A Level Spanish Language & Literature (9844) syllabuses.


When my team needs a layer below sub-items, we use the checklist feature in the updates section of sub-items. Although it is not an official level in the item hierarchy it works for most of our use cases.

In your particular example, we have an $n$-doped system. Consequently, the concentrations $n_0 = 10^{14}$ cm$^{-3}$ and $p_0 = 2.25 \times 10^{6}$ cm$^{-3}$ exist under thermal equilibrium. When (say) you shine light on it, we have $n \approx p = 2 \times 10^{13}$ cm$^{-3}$ due to photo-excitations. In this particular example, the quasi-Fermi level of electrons is not that far away from the Fermi level in equilibrium. The quasi-Fermi level of the holes, however, is significantly away from the Fermi level at equilibrium. This is a direct consequence of the fact that the concentration of minority carriers jumps by a large amount. Now, if we were to define separate Fermi-Dirac distribution functions for electrons and holes, under this steady-state condition, and we computed the respective Fermi-Dirac integrals using the density of states of the conduction and valence bands, then we would obtain the correct electrons and hole concentrations (i.e. $2 \times 10^{13}$ cm$^{-3}$). This is another way of justifying two separate quasi-Fermi levels.

Fundamentally, electrons are fermions, so a set of electrons in thermal equilibrium are always characterized by a fermi level (a.k.a. chemical potential) and temperature. The probability that a state of energy $E$ is occupied is$$P(E) = 1 / (1 + \exp((E-E_F)/kT)$$(This is neglecting electron-electron interactions, which is usually OK in a semiconductor.) This general law is true regardless of what the possible values of $E$ are -- there can be a conduction-band and a valence-band, that's fine, it's still one fermi level and one temperature. This fact about thermal-equilibrium fermionic systems is very generally true and you can find proofs and explanations in statistical mechanics books.

A "slow" randomization process is the opposite; the system is only slightly inclined to move gradually towards equilibrium. So in this case you can get a non-equilibrium steady-state where the external process moving the system away from equilibrium (like light being absorbed, or a bias injecting charges) is exactly balanced by the internal random processes moving the system towards equilibrium (like if there's an unusually large number of electron-hole pairs, they will tend to recombine when they randomly collide).

Going back to the three bullet points above: In this situation, the consequence is that the conduction-band electrons have to have a fermi-dirac distribution with temperature $T$ (the material temperature); the valence-band electrons have to have a fermi-dirac distribution with temperature $T$; but because of the third bullet point, the fermi level of the conduction band does not need to be the same as the fermi level of the valence band.

Another example is in a material where electrons and holes combine extremely quickly, so the third bullet point is not true. Then it is actually required for the conduction and valence band to have the (approximately) the same quasi-fermi level. The more quickly they recombine, the closer the two quasi-fermi levels must be, other things equal.

I'd like to prevent users from creating new folders in the top level directory of a SharePoint document library. I know I can stop inheriting permissions for each of the sub folders and therefore have different permissions, but there are quite a lot of sub-folders that would then be more difficult to manage.

At the top level (Parent), you can create a new user group (SiteName)_FolderEditors or some such. The users that you want to allow to create sub-folders would go into this Permission Group with Edit rights. Those same users would be removed from the Members group at the Parent level. Refresh your site to cascade the new Permission Group throughout your site. Once you confirm the permission group has dispersed, you would go through each of the sub-folders and break the Inherit Permissions link at the top level of each of those folders. You would then need to delete the new Permission Group you've created from the top level, or they'd still have Edit rights.

At this stage, the primary Permissions Group: Site Owners, Site Members & Site Visitors would remain so you can still add users to any of those, but only the (SiteName)_FolderEditors group would be populated and have the rights to create new folders at the level below the Parent. be457b7860

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