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I have a question about linux signal handling mechanism. When a signal is to be delivered to a process, the kernel setups up the process stack(to do a successfull syscall back into the kernel using sys_sigreturn) and then does a sysexit/sysret to jump to the registered signal handler of the process. I am wondering what happens if the page in which the signal handler code is present, is paged out when the kernel does sysret ? The kernel does not expect page faults when executing ring 0 code right ? Does the kernel keep process signal handling code pinned in memory always ?

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The kernel has not a slightest shadow of an idea which pages contain signal handling code (it only knows a single entry address), and cannot possibly keep all these pages pinned to RAM. It doesn't need to, as signal handling code is not ring 0 code. –  n.m. Apr 22 at 15:33
    
Right. i understand that. This is the situation im talking about. Sysret is a ring 0 instruction. Sysret tries to jump to a location in ring 3. If the page which contains signal handling code happens to be paged out, the Sysret instruction will cause a page fault because it is trying to access a page that has no mapping. What happens then ? –  Raghu Apr 22 at 15:37
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No, sysret will not cause a page fault. It does not access any memory, it only modifies the program counter and changes the privilege level. The page fault will occur when the CPU tries to read the next instruction, but the privilege level is already changed to ring 3 by then. –  n.m. Apr 22 at 15:46
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By the way as far as I understand you can have page faults in ring 0, if you are very careful. –  n.m. Apr 22 at 16:01
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@n.m.: as for the Linux kernel, IIRC a page fault in kernel mode should have an exception table associated, e.g: a copy_from_user() may page fault and jump to the exception handler associated, which would set the error return to -EFAULT. But all this is from memory, so don't trust me much. –  ninjalj Apr 22 at 17:46

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