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subr_pcu.c revision 1.12
      1  1.12   matt /*	$NetBSD: subr_pcu.c,v 1.12 2012/08/30 02:24:48 matt Exp $	*/
      2   1.1  rmind 
      3   1.1  rmind /*-
      4   1.1  rmind  * Copyright (c) 2011 The NetBSD Foundation, Inc.
      5   1.1  rmind  * All rights reserved.
      6   1.1  rmind  *
      7   1.1  rmind  * This code is derived from software contributed to The NetBSD Foundation
      8   1.1  rmind  * by Mindaugas Rasiukevicius.
      9   1.1  rmind  *
     10   1.1  rmind  * Redistribution and use in source and binary forms, with or without
     11   1.1  rmind  * modification, are permitted provided that the following conditions
     12   1.1  rmind  * are met:
     13   1.1  rmind  * 1. Redistributions of source code must retain the above copyright
     14   1.1  rmind  *    notice, this list of conditions and the following disclaimer.
     15   1.1  rmind  * 2. Redistributions in binary form must reproduce the above copyright
     16   1.1  rmind  *    notice, this list of conditions and the following disclaimer in the
     17   1.1  rmind  *    documentation and/or other materials provided with the distribution.
     18   1.1  rmind  *
     19   1.1  rmind  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20   1.1  rmind  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21   1.1  rmind  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22   1.1  rmind  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23   1.1  rmind  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24   1.1  rmind  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25   1.1  rmind  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26   1.1  rmind  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27   1.1  rmind  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28   1.1  rmind  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29   1.1  rmind  * POSSIBILITY OF SUCH DAMAGE.
     30   1.1  rmind  */
     31   1.1  rmind 
     32   1.1  rmind /*
     33   1.1  rmind  * Per CPU Unit (PCU) - is an interface to manage synchronization of any
     34   1.1  rmind  * per CPU context (unit) tied with LWP context.  Typical use: FPU state.
     35   1.1  rmind  *
     36   1.1  rmind  * Concurrency notes:
     37   1.1  rmind  *
     38   1.1  rmind  *	PCU state may be loaded only by the current LWP, that is, curlwp.
     39   1.1  rmind  *	Therefore, only LWP itself can set a CPU for lwp_t::l_pcu_cpu[id].
     40   1.1  rmind  *
     41   1.1  rmind  *	Request for a PCU release can be from owner LWP (whether PCU state
     42   1.1  rmind  *	is on current CPU or remote CPU) or any other LWP running on that
     43   1.1  rmind  *	CPU (in such case, owner LWP is on a remote CPU or sleeping).
     44   1.1  rmind  *
     45   1.1  rmind  *	In any case, PCU state can only be changed from the running CPU.
     46   1.1  rmind  *	If said PCU state is on the remote CPU, a cross-call will be sent
     47   1.1  rmind  *	by the owner LWP.  Therefore struct cpu_info::ci_pcu_curlwp[id]
     48   1.1  rmind  *	may only be changed by current CPU, and lwp_t::l_pcu_cpu[id] may
     49   1.1  rmind  *	only be unset by the CPU which has PCU state loaded.
     50   1.1  rmind  *
     51   1.1  rmind  *	There is a race condition: LWP may have a PCU state on a remote CPU,
     52   1.1  rmind  *	which it requests to be released via cross-call.  At the same time,
     53   1.1  rmind  *	other LWP on remote CPU might release existing PCU state and load
     54   1.1  rmind  *	its own one.  Cross-call may arrive after this and release different
     55   1.1  rmind  *	PCU state than intended.  In such case, such LWP would re-load its
     56   1.1  rmind  *	PCU state again.
     57   1.1  rmind  */
     58   1.1  rmind 
     59   1.1  rmind #include <sys/cdefs.h>
     60  1.12   matt __KERNEL_RCSID(0, "$NetBSD: subr_pcu.c,v 1.12 2012/08/30 02:24:48 matt Exp $");
     61   1.1  rmind 
     62   1.1  rmind #include <sys/param.h>
     63   1.1  rmind #include <sys/cpu.h>
     64   1.1  rmind #include <sys/lwp.h>
     65   1.1  rmind #include <sys/pcu.h>
     66   1.1  rmind #include <sys/xcall.h>
     67   1.1  rmind 
     68   1.3   matt #if PCU_UNIT_COUNT > 0
     69   1.3   matt 
     70   1.7   matt static void pcu_lwp_op(const pcu_ops_t *, lwp_t *, int);
     71   1.7   matt 
     72   1.1  rmind #define	PCU_SAVE		0x01	/* Save PCU state to the LWP. */
     73   1.1  rmind #define	PCU_RELEASE		0x02	/* Release PCU state on the CPU. */
     74   1.1  rmind 
     75   1.4  rmind /* XXX */
     76   1.4  rmind extern const pcu_ops_t * const	pcu_ops_md_defs[];
     77   1.4  rmind 
     78  1.11   yamt /*
     79  1.11   yamt  * pcu_switchpoint: release PCU state if the LWP is being run on another CPU.
     80  1.11   yamt  *
     81  1.11   yamt  * On each context switches, called by mi_switch() with IPL_SCHED.
     82  1.11   yamt  * 'l' is an LWP which is just we switched to.  (the new curlwp)
     83  1.11   yamt  */
     84  1.11   yamt 
     85   1.1  rmind void
     86   1.4  rmind pcu_switchpoint(lwp_t *l)
     87   1.1  rmind {
     88   1.4  rmind 	const uint32_t pcu_inuse = l->l_pcu_used;
     89   1.4  rmind 	u_int id;
     90   1.4  rmind 	/* int s; */
     91   1.1  rmind 
     92  1.12   matt 	KASSERTMSG(l == curlwp, "l %p != curlwp %p", l, curlwp);
     93   1.4  rmind 
     94   1.4  rmind 	if (__predict_true(pcu_inuse == 0)) {
     95   1.4  rmind 		/* PCUs are not in use. */
     96   1.4  rmind 		return;
     97   1.4  rmind 	}
     98  1.11   yamt 	/* commented out as we know we are already at IPL_SCHED */
     99   1.4  rmind 	/* s = splsoftclock(); */
    100   1.4  rmind 	for (id = 0; id < PCU_UNIT_COUNT; id++) {
    101   1.4  rmind 		if ((pcu_inuse & (1 << id)) == 0) {
    102   1.4  rmind 			continue;
    103   1.4  rmind 		}
    104   1.5   matt 		struct cpu_info * const pcu_ci = l->l_pcu_cpu[id];
    105   1.4  rmind 		if (pcu_ci == NULL || pcu_ci == l->l_cpu) {
    106   1.4  rmind 			continue;
    107   1.4  rmind 		}
    108   1.4  rmind 		const pcu_ops_t * const pcu = pcu_ops_md_defs[id];
    109   1.4  rmind 		pcu->pcu_state_release(l);
    110   1.4  rmind 	}
    111   1.4  rmind 	/* splx(s); */
    112   1.1  rmind }
    113   1.1  rmind 
    114  1.11   yamt /*
    115  1.11   yamt  * pcu_discard_all: discard PCU state of the given LWP.
    116  1.11   yamt  *
    117  1.11   yamt  * Used by exec and LWP exit.
    118  1.11   yamt  */
    119  1.11   yamt 
    120   1.7   matt void
    121   1.7   matt pcu_discard_all(lwp_t *l)
    122   1.7   matt {
    123   1.7   matt 	const uint32_t pcu_inuse = l->l_pcu_used;
    124   1.7   matt 
    125   1.8   matt 	KASSERT(l == curlwp || ((l->l_flag & LW_SYSTEM) && pcu_inuse == 0));
    126   1.7   matt 
    127   1.7   matt 	if (__predict_true(pcu_inuse == 0)) {
    128   1.7   matt 		/* PCUs are not in use. */
    129   1.7   matt 		return;
    130   1.7   matt 	}
    131   1.7   matt 	const int s = splsoftclock();
    132   1.7   matt 	for (u_int id = 0; id < PCU_UNIT_COUNT; id++) {
    133   1.7   matt 		if ((pcu_inuse & (1 << id)) == 0) {
    134   1.7   matt 			continue;
    135   1.7   matt 		}
    136   1.7   matt 		if (__predict_true(l->l_pcu_cpu[id] == NULL)) {
    137   1.7   matt 			continue;
    138   1.7   matt 		}
    139   1.7   matt 		const pcu_ops_t * const pcu = pcu_ops_md_defs[id];
    140   1.7   matt 		/*
    141   1.7   matt 		 * We aren't releasing since this LWP isn't giving up PCU,
    142   1.7   matt 		 * just saving it.
    143   1.7   matt 		 */
    144   1.7   matt 		pcu_lwp_op(pcu, l, PCU_RELEASE);
    145   1.7   matt 	}
    146   1.7   matt 	l->l_pcu_used = 0;
    147   1.7   matt 	splx(s);
    148   1.7   matt }
    149   1.7   matt 
    150  1.11   yamt /*
    151  1.11   yamt  * pcu_save_all: save PCU state of the given LWP so that eg. coredump can
    152  1.11   yamt  * examine it.
    153  1.11   yamt  */
    154  1.11   yamt 
    155   1.7   matt void
    156   1.7   matt pcu_save_all(lwp_t *l)
    157   1.7   matt {
    158   1.7   matt 	const uint32_t pcu_inuse = l->l_pcu_used;
    159  1.11   yamt 	/*
    160  1.11   yamt 	 * Unless LW_WCORE, we aren't releasing since this LWP isn't giving
    161  1.11   yamt 	 * up PCU, just saving it.
    162  1.11   yamt 	 */
    163   1.9   matt 	const int flags = PCU_SAVE | (l->l_flag & LW_WCORE ? PCU_RELEASE : 0);
    164   1.7   matt 
    165   1.9   matt 	/*
    166   1.9   matt 	 * Normally we save for the current LWP, but sometimes we get called
    167   1.9   matt 	 * with a different LWP (forking a system LWP or doing a coredump of
    168   1.9   matt 	 * a process with multiple threads) and we need to deal with that.
    169   1.9   matt 	 */
    170   1.9   matt 	KASSERT(l == curlwp
    171   1.9   matt 	    || (((l->l_flag & LW_SYSTEM)
    172   1.9   matt 		 || (curlwp->l_proc == l->l_proc && l->l_stat == LSSUSPENDED))
    173   1.9   matt 	        && pcu_inuse == 0));
    174   1.7   matt 
    175   1.7   matt 	if (__predict_true(pcu_inuse == 0)) {
    176   1.7   matt 		/* PCUs are not in use. */
    177   1.7   matt 		return;
    178   1.7   matt 	}
    179   1.7   matt 	const int s = splsoftclock();
    180   1.7   matt 	for (u_int id = 0; id < PCU_UNIT_COUNT; id++) {
    181   1.7   matt 		if ((pcu_inuse & (1 << id)) == 0) {
    182   1.7   matt 			continue;
    183   1.7   matt 		}
    184   1.7   matt 		if (__predict_true(l->l_pcu_cpu[id] == NULL)) {
    185   1.7   matt 			continue;
    186   1.7   matt 		}
    187   1.7   matt 		const pcu_ops_t * const pcu = pcu_ops_md_defs[id];
    188   1.9   matt 		pcu_lwp_op(pcu, l, flags);
    189   1.7   matt 	}
    190   1.7   matt 	splx(s);
    191   1.7   matt }
    192   1.7   matt 
    193   1.1  rmind /*
    194   1.4  rmind  * pcu_do_op: save/release PCU state on the current CPU.
    195   1.1  rmind  *
    196   1.1  rmind  * => Must be called at IPL_SOFTCLOCK or from the soft-interrupt.
    197   1.1  rmind  */
    198   1.4  rmind static inline void
    199   1.4  rmind pcu_do_op(const pcu_ops_t *pcu, lwp_t * const l, const int flags)
    200   1.4  rmind {
    201   1.4  rmind 	struct cpu_info * const ci = curcpu();
    202   1.4  rmind 	const u_int id = pcu->pcu_id;
    203   1.4  rmind 
    204   1.7   matt 	KASSERT(l->l_pcu_cpu[id] == ci);
    205   1.4  rmind 
    206   1.4  rmind 	if (flags & PCU_SAVE) {
    207   1.4  rmind 		pcu->pcu_state_save(l);
    208   1.4  rmind 	}
    209   1.4  rmind 	if (flags & PCU_RELEASE) {
    210   1.4  rmind 		pcu->pcu_state_release(l);
    211   1.4  rmind 		ci->ci_pcu_curlwp[id] = NULL;
    212   1.4  rmind 		l->l_pcu_cpu[id] = NULL;
    213   1.4  rmind 	}
    214   1.4  rmind }
    215   1.4  rmind 
    216   1.4  rmind /*
    217   1.6   matt  * pcu_cpu_op: helper routine to call pcu_do_op() via xcall(9) or
    218   1.6   matt  * by pcu_load.
    219   1.4  rmind  */
    220   1.1  rmind static void
    221   1.1  rmind pcu_cpu_op(const pcu_ops_t *pcu, const int flags)
    222   1.1  rmind {
    223   1.1  rmind 	const u_int id = pcu->pcu_id;
    224   1.4  rmind 	lwp_t * const l = curcpu()->ci_pcu_curlwp[id];
    225   1.4  rmind 
    226   1.6   matt 	//KASSERT(cpu_softintr_p());
    227   1.1  rmind 
    228   1.1  rmind 	/* If no state - nothing to do. */
    229   1.1  rmind 	if (l == NULL) {
    230   1.1  rmind 		return;
    231   1.1  rmind 	}
    232   1.4  rmind 	pcu_do_op(pcu, l, flags);
    233   1.1  rmind }
    234   1.1  rmind 
    235   1.1  rmind /*
    236   1.1  rmind  * pcu_lwp_op: perform PCU state save, release or both operations on LWP.
    237   1.1  rmind  */
    238   1.1  rmind static void
    239   1.1  rmind pcu_lwp_op(const pcu_ops_t *pcu, lwp_t *l, int flags)
    240   1.1  rmind {
    241   1.1  rmind 	const u_int id = pcu->pcu_id;
    242   1.1  rmind 	struct cpu_info *ci;
    243   1.1  rmind 	uint64_t where;
    244   1.1  rmind 	int s;
    245   1.1  rmind 
    246   1.1  rmind 	/*
    247   1.1  rmind 	 * Caller should have re-checked if there is any state to manage.
    248   1.1  rmind 	 * Block the interrupts and inspect again, since cross-call sent
    249   1.1  rmind 	 * by remote CPU could have changed the state.
    250   1.1  rmind 	 */
    251   1.1  rmind 	s = splsoftclock();
    252   1.1  rmind 	ci = l->l_pcu_cpu[id];
    253   1.1  rmind 	if (ci == curcpu()) {
    254   1.1  rmind 		/*
    255   1.1  rmind 		 * State is on the current CPU - just perform the operations.
    256   1.1  rmind 		 */
    257   1.6   matt 		KASSERTMSG(ci->ci_pcu_curlwp[id] == l,
    258  1.10    jym 		    "%s: cpu%u: pcu_curlwp[%u] (%p) != l (%p)",
    259  1.10    jym 		     __func__, cpu_index(ci), id, ci->ci_pcu_curlwp[id], l);
    260   1.4  rmind 		pcu_do_op(pcu, l, flags);
    261   1.1  rmind 		splx(s);
    262   1.1  rmind 		return;
    263   1.1  rmind 	}
    264   1.1  rmind 	splx(s);
    265   1.1  rmind 
    266   1.1  rmind 	if (__predict_false(ci == NULL)) {
    267   1.1  rmind 		/* Cross-call has won the race - no state to manage. */
    268   1.1  rmind 		return;
    269   1.1  rmind 	}
    270   1.1  rmind 
    271   1.1  rmind 	/*
    272   1.1  rmind 	 * State is on the remote CPU - perform the operations there.
    273   1.1  rmind 	 * Note: there is a race condition; see description in the top.
    274   1.1  rmind 	 */
    275   1.1  rmind 	where = xc_unicast(XC_HIGHPRI, (xcfunc_t)pcu_cpu_op,
    276   1.1  rmind 	    __UNCONST(pcu), (void *)(uintptr_t)flags, ci);
    277   1.1  rmind 	xc_wait(where);
    278   1.1  rmind 
    279   1.1  rmind 	KASSERT((flags & PCU_RELEASE) == 0 || l->l_pcu_cpu[id] == NULL);
    280   1.1  rmind }
    281   1.1  rmind 
    282   1.1  rmind /*
    283   1.1  rmind  * pcu_load: load/initialize the PCU state of current LWP on current CPU.
    284   1.1  rmind  */
    285   1.1  rmind void
    286   1.1  rmind pcu_load(const pcu_ops_t *pcu)
    287   1.1  rmind {
    288   1.1  rmind 	const u_int id = pcu->pcu_id;
    289   1.1  rmind 	struct cpu_info *ci, *curci;
    290   1.5   matt 	lwp_t * const l = curlwp;
    291   1.1  rmind 	uint64_t where;
    292   1.1  rmind 	int s;
    293   1.1  rmind 
    294   1.1  rmind 	KASSERT(!cpu_intr_p() && !cpu_softintr_p());
    295   1.1  rmind 
    296   1.1  rmind 	s = splsoftclock();
    297   1.1  rmind 	curci = curcpu();
    298   1.1  rmind 	ci = l->l_pcu_cpu[id];
    299   1.1  rmind 
    300   1.1  rmind 	/* Does this CPU already have our PCU state loaded? */
    301   1.1  rmind 	if (ci == curci) {
    302   1.1  rmind 		KASSERT(curci->ci_pcu_curlwp[id] == l);
    303   1.1  rmind 		splx(s);
    304   1.1  rmind 		return;
    305   1.1  rmind 	}
    306   1.1  rmind 
    307   1.1  rmind 	/* If PCU state of this LWP is on the remote CPU - save it there. */
    308   1.1  rmind 	if (ci) {
    309   1.1  rmind 		splx(s);
    310   1.1  rmind 		/* Note: there is a race; see description in the top. */
    311   1.1  rmind 		where = xc_unicast(XC_HIGHPRI, (xcfunc_t)pcu_cpu_op,
    312   1.1  rmind 		    __UNCONST(pcu), (void *)(PCU_SAVE | PCU_RELEASE), ci);
    313   1.1  rmind 		xc_wait(where);
    314   1.1  rmind 
    315   1.1  rmind 		/* Enter IPL_SOFTCLOCK and re-fetch the current CPU. */
    316   1.1  rmind 		s = splsoftclock();
    317   1.1  rmind 		curci = curcpu();
    318   1.1  rmind 	}
    319   1.1  rmind 	KASSERT(l->l_pcu_cpu[id] == NULL);
    320   1.1  rmind 
    321   1.1  rmind 	/* Save the PCU state on the current CPU, if there is any. */
    322   1.6   matt 	pcu_cpu_op(pcu, PCU_SAVE | PCU_RELEASE);
    323   1.1  rmind 	KASSERT(curci->ci_pcu_curlwp[id] == NULL);
    324   1.1  rmind 
    325   1.1  rmind 	/*
    326   1.1  rmind 	 * Finally, load the state for this LWP on this CPU.  Indicate to
    327   1.1  rmind 	 * load function whether PCU was used before.  Note the usage.
    328   1.1  rmind 	 */
    329   1.1  rmind 	pcu->pcu_state_load(l, ((1 << id) & l->l_pcu_used) != 0);
    330   1.1  rmind 	curci->ci_pcu_curlwp[id] = l;
    331   1.1  rmind 	l->l_pcu_cpu[id] = curci;
    332   1.1  rmind 	l->l_pcu_used |= (1 << id);
    333   1.1  rmind 	splx(s);
    334   1.1  rmind }
    335   1.1  rmind 
    336   1.1  rmind /*
    337   1.1  rmind  * pcu_discard: discard the PCU state of current LWP.
    338   1.1  rmind  */
    339   1.1  rmind void
    340   1.1  rmind pcu_discard(const pcu_ops_t *pcu)
    341   1.1  rmind {
    342   1.1  rmind 	const u_int id = pcu->pcu_id;
    343   1.5   matt 	lwp_t * const l = curlwp;
    344   1.1  rmind 
    345   1.1  rmind 	KASSERT(!cpu_intr_p() && !cpu_softintr_p());
    346   1.1  rmind 
    347   1.1  rmind 	if (__predict_true(l->l_pcu_cpu[id] == NULL)) {
    348   1.1  rmind 		return;
    349   1.1  rmind 	}
    350   1.1  rmind 	pcu_lwp_op(pcu, l, PCU_RELEASE);
    351   1.1  rmind 	l->l_pcu_used &= ~(1 << id);
    352   1.1  rmind }
    353   1.1  rmind 
    354   1.1  rmind /*
    355   1.1  rmind  * pcu_save_lwp: save PCU state to the given LWP.
    356   1.1  rmind  */
    357   1.1  rmind void
    358   1.4  rmind pcu_save(const pcu_ops_t *pcu)
    359   1.1  rmind {
    360   1.1  rmind 	const u_int id = pcu->pcu_id;
    361   1.4  rmind 	lwp_t * const l = curlwp;
    362   1.1  rmind 
    363   1.1  rmind 	KASSERT(!cpu_intr_p() && !cpu_softintr_p());
    364   1.1  rmind 
    365   1.1  rmind 	if (__predict_true(l->l_pcu_cpu[id] == NULL)) {
    366   1.1  rmind 		return;
    367   1.1  rmind 	}
    368   1.1  rmind 	pcu_lwp_op(pcu, l, PCU_SAVE | PCU_RELEASE);
    369   1.1  rmind }
    370   1.1  rmind 
    371   1.1  rmind /*
    372   1.1  rmind  * pcu_used: return true if PCU was used (pcu_load() case) by the LWP.
    373   1.1  rmind  */
    374   1.1  rmind bool
    375   1.4  rmind pcu_used_p(const pcu_ops_t *pcu)
    376   1.1  rmind {
    377   1.1  rmind 	const u_int id = pcu->pcu_id;
    378   1.4  rmind 	lwp_t * const l = curlwp;
    379   1.1  rmind 
    380   1.1  rmind 	return l->l_pcu_used & (1 << id);
    381   1.1  rmind }
    382   1.3   matt 
    383   1.3   matt #endif /* PCU_UNIT_COUNT > 0 */
    384