accounting from kernel (now in PM). Large amount of files in this commit is due to system time problems during development.
		
			
				
	
	
		
			358 lines
		
	
	
		
			13 KiB
		
	
	
	
		
			C
		
	
	
		
			Executable File
		
	
	
	
	
			
		
		
	
	
			358 lines
		
	
	
		
			13 KiB
		
	
	
	
		
			C
		
	
	
		
			Executable File
		
	
	
	
	
/* This file contains the main program of MINIX as well as its shutdown code.
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 * The routine main() initializes the system and starts the ball rolling by
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 * setting up the process table, interrupt vectors, and scheduling each task 
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 * to run to initialize itself.
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 * The routine prepare_shutdown() tries to cleanly shuts down MINIX by running
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 * the stop_sequence() to notify all system services and allowing them some 
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 * time to finalize. In case of an exception(), the stop sequence is skipped. 
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 *
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 * The entries into this file are:
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 *   main:	    	MINIX main program
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 *   prepare_shutdown:	prepare to take MINIX down
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 *   stop_sequence: 	take down all system services
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 *
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 * Changes:
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 *   Nov 24, 2004   simplified main() with system image  (Jorrit N. Herder)
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 *   Oct 21, 2004   moved copyright to announce()  (Jorrit N. Herder) 
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 *   Sep 04, 2004   created stop_sequence() to cleanup  (Jorrit N. Herder)
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 *   Aug 20, 2004   split wreboot() and shutdown()  (Jorrit N. Herder)
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 *   Jun 15, 2004   moved wreboot() to this file  (Jorrit N. Herder)
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 */
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#include "kernel.h"
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#include <signal.h>
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#include <unistd.h>
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#include <a.out.h>
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#include <minix/callnr.h>
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#include <minix/com.h>
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#include "proc.h"
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#include "sendmask.h"
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/* Prototype declarations for PRIVATE functions. */
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FORWARD _PROTOTYPE( void announce, (void));	
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FORWARD _PROTOTYPE( void shutdown, (timer_t *tp));
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#define STOP_TICKS	(5*HZ)			/* time allowed to stop */
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/*===========================================================================*
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 *                                   main                                    *
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 *===========================================================================*/
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PUBLIC void main()
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{
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/* Start the ball rolling. */
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  register struct proc *rp;
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  register int i;
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  int hdrindex;			/* index to array of a.out headers */
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  phys_clicks text_base, bootdev_base;
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  vir_clicks text_clicks, bootdev_clicks;
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  vir_clicks data_clicks;
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  reg_t ktsb;			/* kernel task stack base */
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  struct memory *memp;
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  struct system_image *ttp;
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  struct exec e_hdr;		/* for a copy of an a.out header */
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  /* Initialize the interrupt controller. */
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  intr_init(1);
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  /* Clear the process table. Anounce each slot as empty and
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   * set up mappings for proc_addr() and proc_nr() macros.
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   */
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  for (rp = BEG_PROC_ADDR, i = -NR_TASKS; rp < END_PROC_ADDR; ++rp, ++i) {
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  	rp->p_type = P_NONE;			/* isemptyp() tests on this */
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	rp->p_nr = i;				/* proc number from ptr */
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        (pproc_addr + NR_TASKS)[i] = rp;        /* proc ptr from number */
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  }
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  /* Set up proc table entries for tasks and servers.  The stacks of the
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   * kernel tasks are initialized to an array in data space.  The stacks
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   * of the servers have been added to the data segment by the monitor, so
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   * the stack pointer is set to the end of the data segment.  All the
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   * processes are in low memory on the 8086.  On the 386 only the kernel
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   * is in low memory, the rest is loaded in extended memory.
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   */
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  /* Task stacks. */
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  ktsb = (reg_t) t_stack;
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  for (i=0; i < IMAGE_SIZE; ++i) {
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	ttp = &image[i];			/* t's task attributes */
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	rp = proc_addr(ttp->proc_nr);		/* t's process slot */
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	kstrncpy(rp->p_name, ttp->proc_name, P_NAME_LEN);  /* set name */
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	rp->p_name[P_NAME_LEN-1] = '\0';	/* just for safety */
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	rp->p_type = ttp->type;			/* type of process */
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	rp->p_priority = ttp->priority;		/* scheduling priority */
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	rp->p_call_mask = ttp->call_mask;	/* allowed system calls */
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	rp->p_sendmask = ttp->sendmask;		/* sendmask protection */
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	if (i-NR_TASKS < 0) {			/* part of the kernel? */ 
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		if (ttp->stksize > 0) {		/* HARDWARE stack size is 0 */
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			rp->p_stguard = (reg_t *) ktsb;
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			*rp->p_stguard = STACK_GUARD;
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		}
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		ktsb += ttp->stksize;	/* point to high end of stack */
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		rp->p_reg.sp = ktsb;	/* this task's initial stack ptr */
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		text_base = kinfo.code_base >> CLICK_SHIFT;
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					/* processes that are in the kernel */
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		hdrindex = 0;		/* all use the first a.out header */
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	} else {
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		hdrindex = 1 + i-NR_TASKS;	/* drivers, servers, INIT follow */
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	}
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	/* The bootstrap loader created an array of the a.out headers at
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	 * absolute address 'aout'. Get one element to e_hdr.
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	 */
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	phys_copy(aout + hdrindex * A_MINHDR, vir2phys(&e_hdr),
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							(phys_bytes) A_MINHDR);
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	/* Convert addresses to clicks and build process memory map */
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	text_base = e_hdr.a_syms >> CLICK_SHIFT;
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	text_clicks = (e_hdr.a_text + CLICK_SIZE-1) >> CLICK_SHIFT;
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	if (!(e_hdr.a_flags & A_SEP)) text_clicks = 0;	/* Common I&D */
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	data_clicks = (e_hdr.a_total + CLICK_SIZE-1) >> CLICK_SHIFT;
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	rp->p_memmap[T].mem_phys = text_base;
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	rp->p_memmap[T].mem_len  = text_clicks;
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	rp->p_memmap[D].mem_phys = text_base + text_clicks;
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	rp->p_memmap[D].mem_len  = data_clicks;
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	rp->p_memmap[S].mem_phys = text_base + text_clicks + data_clicks;
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	rp->p_memmap[S].mem_vir  = data_clicks;	/* empty - stack is in data */
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	/* Remove server memory from the free memory list. The boot monitor
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	 * promises to put processes at the start of memory chunks. The 
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	 * tasks all use same base address, so only the first task changes
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	 * the memory lists. The servers and init have their own memory
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	 * spaces and their memory will be removed from the list. 
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	 */
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	for (memp = mem; memp < &mem[NR_MEMS]; memp++) {
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		if (memp->base == text_base) {
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			memp->base += text_clicks + data_clicks;
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			memp->size -= text_clicks + data_clicks;
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		}
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	}
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	/* Set initial register values.  The processor status word for tasks 
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	 * is different from that of other processes because tasks can
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	 * access I/O; this is not allowed to less-privileged processes 
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	 */
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	rp->p_reg.pc = (reg_t) ttp->initial_pc;
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	rp->p_reg.psw = (isidlep(rp)||istaskp(rp)) ? INIT_TASK_PSW : INIT_PSW;
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	/* Initialize the server stack pointer. Take it down one word
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	 * to give crtso.s something to use as "argc".
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	 */
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	if (i-NR_TASKS >= 0) {
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		rp->p_reg.sp = (rp->p_memmap[S].mem_vir +
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				rp->p_memmap[S].mem_len) << CLICK_SHIFT;
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		rp->p_reg.sp -= sizeof(reg_t);
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	}
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	/* Set ready. The HARDWARE task is never ready. */
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#if ENABLE_K_DEBUGGING
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	rp->p_ready = 0;
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#endif
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	if (rp->p_nr != HARDWARE) lock_ready(rp);	
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	rp->p_flags = 0;
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	/* Code and data segments must be allocated in protected mode. */
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	alloc_segments(rp);
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  }
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#if ENABLE_BOOTDEV
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  /* Expect an image of the boot device to be loaded into memory as well. 
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   * The boot device is the last module that is loaded into memory, and, 
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   * for example, can contain the root FS (useful for embedded systems). 
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   */
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  hdrindex ++;
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  phys_copy(aout + hdrindex * A_MINHDR,vir2phys(&e_hdr),(phys_bytes) A_MINHDR);
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  if (e_hdr.a_flags & A_IMG) {
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  	kinfo.bootdev_base = e_hdr.a_syms; 
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  	kinfo.bootdev_size = e_hdr.a_data; 
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  	/* Remove from free list, to prevent being overwritten. */
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	bootdev_base = e_hdr.a_syms >> CLICK_SHIFT;
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	bootdev_clicks = (e_hdr.a_total + CLICK_SIZE-1) >> CLICK_SHIFT;
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	for (memp = mem; memp < &mem[NR_MEMS]; memp++) {
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		if (memp->base == bootdev_base) {
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			memp->base += bootdev_clicks;
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			memp->size -= bootdev_clicks;
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		}
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	}
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  }
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#endif
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  /* This actually is not needed, because ready() already set 'proc_ptr.' */
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  lock_pick_proc();
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  bill_ptr = proc_addr(IDLE);		/* it has to point somewhere */
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  /* MINIX is now ready. Display the startup banner to the user and return 
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   * to the assembly code to start running the current process. 
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   */
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  announce();
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  restart();
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}
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/*==========================================================================*
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 *				announce				    *
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 *==========================================================================*/
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PRIVATE void announce(void)
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{
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  /* Display the MINIX startup banner. */
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  kprintf("MINIX %s.  Copyright 2001 Prentice-Hall, Inc.\n", 
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      karg(kinfo.version));
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#if (CHIP == INTEL)
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  /* Real mode, or 16/32-bit protected mode? */
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  kprintf("Executing in %s mode\n\n",
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      machine.protected ? karg("32-bit protected") : karg("real"));
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#endif
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  /* Check if boot device was loaded with the kernel. */
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  if (kinfo.bootdev_base > 0)
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      kprintf("Image of /dev/boot loaded. Size: %u KB.\n", kinfo.bootdev_size);
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}
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/*==========================================================================*
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 *			       prepare_shutdown				    *
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 *==========================================================================*/
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PUBLIC void prepare_shutdown(how)
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int how;		/* 0 = halt, 1 = reboot, 2 = panic!, ... */
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{
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/* This function prepares to shutdown MINIX. It uses a global flag to make 
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 * sure it is only executed once. Unless a CPU exception occurred, the 
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 * stop_sequence() is started. 
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 */
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  message m;
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  if (shutting_down)
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  	return;
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  /* Show debugging dumps on panics. Make sure that the TTY task is still 
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   * available to handle them. This is done with help of a non-blocking send. 
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   * We rely on TTY to call sys_abort() when it is done with the dumps.
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   */
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  if (how == RBT_PANIC) {
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      m.m_type = PANIC_DUMPS;
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      if (nb_send(TTY, &m) == OK)	/* don't block if TTY isn't ready */
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          return;			/* await sys_abort() from TTY */
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  }
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  /* The TTY expects two HARD_STOP notifications. One to switch to the 
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   * primary console for stop sequence output, and one to actually exit.
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   */
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  m.NOTIFY_TYPE = HARD_STOP;
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  lock_notify(TTY, &m);
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  /* Run the stop sequence. The timer argument passes the shutdown status.
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   * The stop sequence is skipped for fatal CPU exceptions.
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   */
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  shutting_down = TRUE;				/* flag for sys_exit() */
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  tmr_arg(&shutdown_timer)->ta_int = how;	/* pass how in timer */
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  if (skip_stop_sequence) {			/* set in exception() */
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      kprintf("\nAn exception occured; skipping stop sequence.\n", NO_ARG);
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      shutdown(&shutdown_timer);		/* TTY isn't scheduled */
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  } else {
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      kprintf("\nNotifying system services about MINIX shutdown.\n", NO_ARG); 
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      set_timer(&shutdown_timer, get_uptime(), stop_sequence);
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  }
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}
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/*==========================================================================*
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 *			        stop_sequence 				    *
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 *==========================================================================*/
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PUBLIC void stop_sequence(tp)
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timer_t *tp;
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{
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/* Try to cleanly stop all system services before shutting down. For each 
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 * process type, all processes are notified and given STOP_TICKS to cleanly
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 * shutdown. The notification order is servers, drivers, tasks. The variable 
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 * 'shutdown_process' is set globally to indicate the process next to stop 
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 * so that the stop sequence can directly continue if it has exited. Only if 
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 * stop sequence has finished, MINIX is brought down. 
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 */
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  static int level = P_SERVER;		/* start at the highest level */
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  static struct proc *p = NIL_PROC;	/* next process to stop */
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  static message m;
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  /* See if the last process' shutdown was successful. Else, force exit. */
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  if (p != NIL_PROC) { 
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      kprintf("[%s]\n", isalivep(p) ? karg("FAILED") : karg("OK"));
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      if (isalivep(p))
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          clear_proc(p->p_nr);		/* now force process to exit */ 
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  }
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  /* Find the next process that must be stopped. Continue where last search
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   * ended or start at begin. Possibly go to next level while searching. If
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   * the last level is completely searched, shutdown MINIX. Processes are
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   * stopped in the order of dependencies, that is, from the highest level to
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   * the lowest level so that, for example, the file system can still rely on 
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   * device drivers to cleanly shutdown.  
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   */ 
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  if (p == NIL_PROC) p = BEG_PROC_ADDR; 
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  while (TRUE) {
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      if (isalivep(p) && p->p_type == level) {	/* found a process */
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          kprintf("- Stopping %s ... ", karg(p->p_name));
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          shutdown_process = p;		/* directly continue if exited */
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          m.NOTIFY_TYPE = HARD_STOP;
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          m.NOTIFY_ARG = tmr_arg(tp)->ta_int;		/* how */
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          lock_notify(proc_nr(p), &m);
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          set_timer(tp, get_uptime()+STOP_TICKS, stop_sequence);
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          return;			/* allow the process to shut down */ 
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      } 
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      p++;				/* proceed to next process */
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      if (p >= END_PROC_ADDR) {		/* proceed to next level */
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      	  p = BEG_PROC_ADDR;		
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       	  level = level - 1;		
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          if (level == P_TASK) {	/* done; tasks must remain alive */
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          	shutdown(tp);
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          	/* no return */
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		return;
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          }
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      }
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  }
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}
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/*==========================================================================*
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 *				   shutdown 				    *
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 *==========================================================================*/
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PRIVATE void shutdown(tp)
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timer_t *tp;
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{
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/* This function is called from prepare_shutdown or stop_sequence to bring 
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 * down MINIX. How to shutdown is in the argument: RBT_REBOOT, RBT_HALT, 
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 * RBT_RESET. 
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 */
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  static u16_t magic = STOP_MEM_CHECK;
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  int how = tmr_arg(tp)->ta_int;
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  /* Now mask all interrupts, including the clock, and stop the clock. */
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  outb(INT_CTLMASK, ~0); 
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  clock_stop();
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  if (mon_return && how != RBT_RESET) {
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	/* Reinitialize the interrupt controllers to the BIOS defaults. */
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	intr_init(0);
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	outb(INT_CTLMASK, 0);
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	outb(INT2_CTLMASK, 0);
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	/* Return to the boot monitor. Set the program for the boot monitor.
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	 * For RBT_MONITOR, the MM has provided the program.
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	 */
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	if (how == RBT_HALT) {
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		phys_copy(vir2phys("delay;menu"), kinfo.params_base, 11); 
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	} else if (how == RBT_REBOOT) {
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		phys_copy(vir2phys("delay;boot"), kinfo.params_base, 11);
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	}
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	level0(monitor);
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  }
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  /* Stop BIOS memory test. */
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  phys_copy(vir2phys(&magic), SOFT_RESET_FLAG_ADDR, SOFT_RESET_FLAG_SIZE);
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  /* Reset the system by jumping to the reset address (real mode), or by
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   * forcing a processor shutdown (protected mode).
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   */
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  level0(reset);
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}
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