4 ms·
It's your own test, I don't need see why you need to respond in this manner. > Running 3000 processes is a few orders of magnitude less than running 1000000 I
by commonlisp94 3y ago
It's your own test, I don't need see why you need to respond in this manner.
> Running 3000 processes is a few orders of magnitude less than running 1000000
I didn't decide on the limit, my OS did. So they must think it's unreasonable.
> Running on MacOS, but I've run this in Linux.
Well your test works fine on linux. MacOS is not designed to run large multi-process server loads. Linux has specifically optimized forking and context switching for processes.
> Why do you think you know every use case?
Why do you think you can't handle most cases by using processes? The goal isn't for a tool to handle every use case, it's to handle a specified set of use cases well.
Python itself doesn't work for every use case.
Looks like we are safe to ignore overhead of launching processes for programs with fewer than 3000 threads.
> Thank you obviousman.
I wanted to compare context switch, you decided to measure something else. I am pleasantly surprised anyway.
- kerkeslager 3y ago> I didn't decide on the limit, my OS did. So they must think it's unreasonable. > Well your test works fine on linux. MacOS is not designed to run large multi-process server loads. Linux has specifically optimized forking and context switching for processes. Oh JFC, stop wildly speculating and pretending it's the truth. The test was a million threads/processes, and you ran 3000. By your own description you didn't run the test, period. I just ran it on Debian on a VPS and, you know, it did exactly what I said it was going to do, because gosh, this isn't the first time I've run this test on Linux. And you seriously want to attribute this to Linux having optimized forking and context switching as if you have any idea what that means? Please do tell, which optimizations did they apply that somehow they've hidden from BSD and Apple? Given your propensity to make things up when you don't know something, I'm beginning to think whatever problem you ran into with a million threads was fixable and you just didn't know how to, so you made up a new straw man test to try and win an argument. Have you measured the memory usage at 3000 yet, or are you still ignoring any part of reality that isn't convenient for your argument? > Why do you think you can't handle most cases by using processes? Where did I say that? Unlike you, I don't make generalizations about "most use cases" because I don't pretend to know what everyone in the world is doing. > The goal isn't for a tool to handle every use case, it's to handle a specified set of use cases well. What do you mean, "the goal"? You speak for every possible goal anyone using Python could possibly have now? > I wanted to compare context switch, you decided to measure something else. Then do it! I'd be interested to see the results, and even more interested to see how you tested it. In any case, you can't just ignore tests you don't want to do or apparently aren't capable of. Being able to run a lot of threads can be extremely useful for networking applications, which is why I care. You don't get to decide my use case is "unreasonable" because you apparently can't compile a program that does a stripped down version of it. That is to say, even if context switching is faster in processes than in threads, that doesn't mean there's no use to threads, because there are use cases where spinning up and tearing down is more common than context switching. > I am pleasantly surprised anyway. Ignorance is bliss, I suppose.
- kerkeslager 3y agoI'm just now noticing this, from your test: $ gcc threads.c $ time ./a.out real 0m10.097s user 0m0.035s sys 0m0.239s $ gcc process.c $ time ./a.out real 0m10.168s user 0m0.579s sys 0m0.347s You were pleasantly surprised by your own test showing an order of magnitude speed gain in user space by using threads?