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I crafted a Bash prompt that, When the working directory is a Git repository, displays the name of the current repository. Besides, it contains the current ongoing task and the time spent doing it (from a homebrew timekeeping tool). This, of course, means that just displaying the prompt means running two processes.

This has the drawback that if the system is thrashing for whatever reason, it takes forever to get a prompt to do that necessary killall to save the system, as just loading the git binary is too much to ask of the system in such a state.

So, right now, the prompt is disabled by default, and only enabled on demand, but this is not that comfortable. It would be nicer to detect the load in .bashrc, and only enable the prompt if the system is running fine (i.e. with acceptable disk latency).

In such situations, CPU is fairly cheap, only the disk is expensive. So I need a way that detects thrashing without depending on external utilities.

Hint: /proc might have something useful. E.g. /proc/loadavg would solve my problem if it were the CPU that causes the bottlenecks, not the disk.

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I'd say your prompt is perhaps a little too clever. A program trying to run while the system is in swap thrash, even just to check if it should run is going to block waiting for core (modulo priority queues and random chance). I hereby dub it the Catch-22 prompt: the program that must run to determine if it has the ability to run ;) –  msw Jul 19 '10 at 6:21
    
no problem if you could solve it fully within bash?? –  mvds Jul 19 '10 at 6:40
    
@mvds: That would even be preferred! –  AttishOculus Jul 19 '10 at 7:41
    
@msw: The idea is that once bash is running, we might be able to do some testing that is very cheap disk-wise. The cheapest of all would be asking the kernel if the system is thrashing, which is why I mentioned /proc. –  AttishOculus Jul 19 '10 at 7:43
    
you got me confused now. my proposal is fully bash based, no disk access, just one fork with no exec, i.e. a cheap one. To be sure: /proc is not a disk, it comes straight from memory! –  mvds Jul 19 '10 at 8:32

2 Answers 2

vmstat could help you. If you don't want to use it, all the information is on

  • /proc/meminfo
  • /proc/stat
  • /proc/PID/stat
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The easiest way would be to check the first byte of /proc/loadavg, and only continue when it is a 0

This will work

loadavg=$(</proc/loadavg)
if [ "${loadavg:0:1}" = "0" ]; then echo "all clear"; fi

But you still have test (or [) which may be run, although that may be a builtin in bash. edit^2 it's a builtin at least in bash 3.2.39 but I suspect it has been builtin for a long time. So this can all happen without another process.

edit^3: update, for fine grained control:

if [ "${loadavg:0:1}${loadavg:2:2}" -lt "60" ]; then echo "below 0.6"; fi

edit^4: I cannot imagine that disk I/O is the bottleneck for the problem at hand. As long as you don't write, but only read, from places that are cached anyway, this is a pure memory / cpu issue.

edit^5: Of course this is for the 1 cpu case, multiply the threshold percentage by the number of cores (for HT processors, take half the "cores" to be sure)

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bonus points for anyone who manages to integrate $(<...) into ${...::}, which seems impossible. –  mvds Jul 19 '10 at 6:34
    
Funny, bash does fork off to read /proc/loadavg. Guess there's nothing you can do about that, apart from patching bash of course. –  mvds Jul 19 '10 at 6:51
    
@mvds: a shell forks off to do almost anything. –  Michael Foukarakis Jul 19 '10 at 6:54
    
My point about loadavg was that it is not what I need. A single process can send the system thrashing (and probably even below load 1.00), either via excessive and nasty FS usage, or VM swapping. On the other hand, I may run 10 infinite loops (load 10.00), and still get a prompt immediately, since the disk is idling about, and one-fifth of a core is more than enough for this kind of stuff. –  AttishOculus Jul 19 '10 at 7:36
    
One up-vote for the floating-point comparing trick :) –  AttishOculus Jul 19 '10 at 7:39

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