Home | History | Annotate | Line # | Download | only in cortex
gic.c revision 1.42.2.2
      1  1.42.2.2   thorpej /*	$NetBSD: gic.c,v 1.42.2.2 2021/04/03 22:28:16 thorpej Exp $	*/
      2       1.1      matt /*-
      3       1.1      matt  * Copyright (c) 2012 The NetBSD Foundation, Inc.
      4       1.1      matt  * All rights reserved.
      5       1.1      matt  *
      6       1.1      matt  * This code is derived from software contributed to The NetBSD Foundation
      7       1.1      matt  * by Matt Thomas of 3am Software Foundry.
      8       1.1      matt  *
      9       1.1      matt  * Redistribution and use in source and binary forms, with or without
     10       1.1      matt  * modification, are permitted provided that the following conditions
     11       1.1      matt  * are met:
     12       1.1      matt  * 1. Redistributions of source code must retain the above copyright
     13       1.1      matt  *    notice, this list of conditions and the following disclaimer.
     14       1.1      matt  * 2. Redistributions in binary form must reproduce the above copyright
     15       1.1      matt  *    notice, this list of conditions and the following disclaimer in the
     16       1.1      matt  *    documentation and/or other materials provided with the distribution.
     17       1.1      matt  *
     18       1.1      matt  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     19       1.1      matt  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     20       1.1      matt  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     21       1.1      matt  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     22       1.1      matt  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     23       1.1      matt  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     24       1.1      matt  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     25       1.1      matt  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     26       1.1      matt  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     27       1.1      matt  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     28       1.1      matt  * POSSIBILITY OF SUCH DAMAGE.
     29       1.1      matt  */
     30       1.1      matt 
     31       1.7      matt #include "opt_ddb.h"
     32      1.11     skrll #include "opt_multiprocessor.h"
     33       1.7      matt 
     34       1.1      matt #define _INTR_PRIVATE
     35       1.1      matt 
     36       1.1      matt #include <sys/cdefs.h>
     37  1.42.2.2   thorpej __KERNEL_RCSID(0, "$NetBSD: gic.c,v 1.42.2.2 2021/04/03 22:28:16 thorpej Exp $");
     38       1.1      matt 
     39       1.1      matt #include <sys/param.h>
     40       1.1      matt #include <sys/bus.h>
     41      1.31     skrll #include <sys/cpu.h>
     42       1.1      matt #include <sys/device.h>
     43       1.1      matt #include <sys/evcnt.h>
     44       1.1      matt #include <sys/intr.h>
     45       1.1      matt #include <sys/proc.h>
     46      1.36  jmcneill #include <sys/atomic.h>
     47       1.1      matt 
     48       1.1      matt #include <arm/armreg.h>
     49       1.1      matt #include <arm/cpufunc.h>
     50      1.33       ryo #include <arm/locore.h>
     51       1.1      matt 
     52       1.1      matt #include <arm/cortex/gic_reg.h>
     53       1.1      matt #include <arm/cortex/mpcore_var.h>
     54       1.1      matt 
     55      1.21  jmcneill void armgic_irq_handler(void *);
     56      1.21  jmcneill 
     57      1.30  jmcneill #define	ARMGIC_SGI_IPIBASE	0
     58      1.30  jmcneill 
     59      1.30  jmcneill /*
     60      1.30  jmcneill  * SGIs 8-16 are reserved for use by ARM Trusted Firmware.
     61      1.30  jmcneill  */
     62      1.30  jmcneill __CTASSERT(ARMGIC_SGI_IPIBASE + NIPI <= 8);
     63       1.1      matt 
     64       1.1      matt static int armgic_match(device_t, cfdata_t, void *);
     65       1.1      matt static void armgic_attach(device_t, device_t, void *);
     66       1.1      matt 
     67       1.1      matt static void armgic_set_priority(struct pic_softc *, int);
     68       1.1      matt static void armgic_unblock_irqs(struct pic_softc *, size_t, uint32_t);
     69       1.1      matt static void armgic_block_irqs(struct pic_softc *, size_t, uint32_t);
     70       1.1      matt static void armgic_establish_irq(struct pic_softc *, struct intrsource *);
     71       1.1      matt #if 0
     72       1.1      matt static void armgic_source_name(struct pic_softc *, int, char *, size_t);
     73       1.1      matt #endif
     74       1.1      matt 
     75       1.1      matt #ifdef MULTIPROCESSOR
     76       1.1      matt static void armgic_cpu_init(struct pic_softc *, struct cpu_info *);
     77       1.1      matt static void armgic_ipi_send(struct pic_softc *, const kcpuset_t *, u_long);
     78      1.35  jmcneill static void armgic_get_affinity(struct pic_softc *, size_t, kcpuset_t *);
     79      1.35  jmcneill static int armgic_set_affinity(struct pic_softc *, size_t, const kcpuset_t *);
     80       1.1      matt #endif
     81       1.1      matt 
     82       1.1      matt static const struct pic_ops armgic_picops = {
     83       1.1      matt 	.pic_unblock_irqs = armgic_unblock_irqs,
     84       1.1      matt 	.pic_block_irqs = armgic_block_irqs,
     85       1.1      matt 	.pic_establish_irq = armgic_establish_irq,
     86       1.1      matt #if 0
     87       1.1      matt 	.pic_source_name = armgic_source_name,
     88       1.1      matt #endif
     89       1.1      matt 	.pic_set_priority = armgic_set_priority,
     90       1.1      matt #ifdef MULTIPROCESSOR
     91       1.1      matt 	.pic_cpu_init = armgic_cpu_init,
     92       1.1      matt 	.pic_ipi_send = armgic_ipi_send,
     93      1.35  jmcneill 	.pic_get_affinity = armgic_get_affinity,
     94      1.35  jmcneill 	.pic_set_affinity = armgic_set_affinity,
     95       1.1      matt #endif
     96       1.1      matt };
     97       1.1      matt 
     98       1.1      matt #define	PICTOSOFTC(pic)		((struct armgic_softc *)(pic))
     99       1.1      matt 
    100       1.1      matt static struct armgic_softc {
    101       1.1      matt 	struct pic_softc sc_pic;
    102       1.1      matt 	device_t sc_dev;
    103       1.1      matt 	bus_space_tag_t sc_memt;
    104       1.4      matt 	bus_space_handle_t sc_gicch;
    105       1.4      matt 	bus_space_handle_t sc_gicdh;
    106       1.1      matt 	size_t sc_gic_lines;
    107       1.1      matt 	uint32_t sc_gic_type;
    108       1.1      matt 	uint32_t sc_gic_valid_lines[1024/32];
    109       1.1      matt 	uint32_t sc_enabled_local;
    110       1.7      matt #ifdef MULTIPROCESSOR
    111      1.35  jmcneill 	uint32_t sc_target[MAXCPUS];
    112       1.7      matt 	uint32_t sc_mptargets;
    113       1.7      matt #endif
    114      1.24  jmcneill 	uint32_t sc_bptargets;
    115       1.1      matt } armgic_softc = {
    116       1.1      matt 	.sc_pic = {
    117       1.1      matt 		.pic_ops = &armgic_picops,
    118       1.1      matt 		.pic_name = "armgic",
    119       1.1      matt 	},
    120       1.1      matt };
    121       1.1      matt 
    122       1.1      matt static struct intrsource armgic_dummy_source;
    123       1.1      matt 
    124       1.1      matt __CTASSERT(NIPL == 8);
    125       1.1      matt 
    126       1.1      matt /*
    127       1.6      matt  * GIC register are always in little-endian.  It is assumed the bus_space
    128       1.6      matt  * will do any endian conversion required.
    129       1.1      matt  */
    130       1.1      matt static inline uint32_t
    131       1.1      matt gicc_read(struct armgic_softc *sc, bus_size_t o)
    132       1.1      matt {
    133       1.6      matt 	return bus_space_read_4(sc->sc_memt, sc->sc_gicch, o);
    134       1.1      matt }
    135       1.1      matt 
    136       1.1      matt static inline void
    137       1.1      matt gicc_write(struct armgic_softc *sc, bus_size_t o, uint32_t v)
    138       1.1      matt {
    139       1.4      matt 	bus_space_write_4(sc->sc_memt, sc->sc_gicch, o, v);
    140       1.1      matt }
    141       1.1      matt 
    142       1.1      matt static inline uint32_t
    143       1.1      matt gicd_read(struct armgic_softc *sc, bus_size_t o)
    144       1.1      matt {
    145       1.6      matt 	return bus_space_read_4(sc->sc_memt, sc->sc_gicdh, o);
    146       1.1      matt }
    147       1.1      matt 
    148       1.1      matt static inline void
    149       1.1      matt gicd_write(struct armgic_softc *sc, bus_size_t o, uint32_t v)
    150       1.1      matt {
    151       1.4      matt 	bus_space_write_4(sc->sc_memt, sc->sc_gicdh, o, v);
    152       1.1      matt }
    153       1.1      matt 
    154      1.24  jmcneill static uint32_t
    155      1.24  jmcneill gicd_find_targets(struct armgic_softc *sc)
    156      1.24  jmcneill {
    157      1.24  jmcneill 	uint32_t targets = 0;
    158      1.24  jmcneill 
    159      1.24  jmcneill 	/*
    160      1.24  jmcneill 	 * GICD_ITARGETSR0 through 7 are read-only, and each field returns
    161      1.24  jmcneill 	 * a value that corresponds only to the processor reading the
    162      1.24  jmcneill 	 * register. Use this to determine the current processor's
    163      1.24  jmcneill 	 * CPU interface number.
    164      1.24  jmcneill 	 */
    165      1.24  jmcneill 	for (int i = 0; i < 8; i++) {
    166      1.24  jmcneill 		targets = gicd_read(sc, GICD_ITARGETSRn(i));
    167      1.24  jmcneill 		if (targets != 0)
    168      1.24  jmcneill 			break;
    169      1.24  jmcneill 	}
    170      1.24  jmcneill 	targets |= (targets >> 16);
    171      1.24  jmcneill 	targets |= (targets >> 8);
    172      1.24  jmcneill 	targets &= 0xff;
    173      1.24  jmcneill 
    174      1.24  jmcneill 	return targets ? targets : 1;
    175      1.24  jmcneill }
    176      1.24  jmcneill 
    177       1.1      matt /*
    178       1.1      matt  * In the GIC prioritization scheme, lower numbers have higher priority.
    179       1.9      matt  * Only write priorities that could be non-secure.
    180       1.1      matt  */
    181       1.1      matt static inline uint32_t
    182       1.1      matt armgic_ipl_to_priority(int ipl)
    183       1.1      matt {
    184       1.9      matt 	return GICC_PMR_NONSECURE
    185       1.9      matt 	    | ((IPL_HIGH - ipl) * GICC_PMR_NS_PRIORITIES / NIPL);
    186       1.1      matt }
    187       1.1      matt 
    188       1.5     joerg #if 0
    189       1.1      matt static inline int
    190       1.1      matt armgic_priority_to_ipl(uint32_t priority)
    191       1.1      matt {
    192       1.9      matt 	return IPL_HIGH
    193       1.9      matt 	    - (priority & ~GICC_PMR_NONSECURE) * NIPL / GICC_PMR_NS_PRIORITIES;
    194       1.1      matt }
    195       1.5     joerg #endif
    196       1.1      matt 
    197       1.1      matt static void
    198       1.1      matt armgic_unblock_irqs(struct pic_softc *pic, size_t irq_base, uint32_t irq_mask)
    199       1.1      matt {
    200       1.1      matt 	struct armgic_softc * const sc = PICTOSOFTC(pic);
    201       1.1      matt 	const size_t group = irq_base / 32;
    202       1.1      matt 
    203       1.1      matt 	if (group == 0)
    204       1.1      matt 		sc->sc_enabled_local |= irq_mask;
    205       1.1      matt 
    206       1.1      matt 	gicd_write(sc, GICD_ISENABLERn(group), irq_mask);
    207       1.1      matt }
    208       1.1      matt 
    209       1.1      matt static void
    210       1.1      matt armgic_block_irqs(struct pic_softc *pic, size_t irq_base, uint32_t irq_mask)
    211       1.1      matt {
    212       1.1      matt 	struct armgic_softc * const sc = PICTOSOFTC(pic);
    213       1.1      matt 	const size_t group = irq_base / 32;
    214       1.1      matt 
    215       1.1      matt 	if (group == 0)
    216       1.1      matt 		sc->sc_enabled_local &= ~irq_mask;
    217       1.1      matt 
    218       1.1      matt 	gicd_write(sc, GICD_ICENABLERn(group), irq_mask);
    219       1.1      matt }
    220       1.1      matt 
    221       1.1      matt static void
    222       1.1      matt armgic_set_priority(struct pic_softc *pic, int ipl)
    223       1.1      matt {
    224       1.1      matt 	struct armgic_softc * const sc = PICTOSOFTC(pic);
    225  1.42.2.2   thorpej 	struct cpu_info * const ci = curcpu();
    226       1.1      matt 
    227       1.1      matt 	const uint32_t priority = armgic_ipl_to_priority(ipl);
    228  1.42.2.2   thorpej 	if (priority > ci->ci_hwpl) {
    229  1.42.2.2   thorpej 		/* Lowering priority mask */
    230  1.42.2.2   thorpej 		ci->ci_hwpl = priority;
    231  1.42.2.2   thorpej 		gicc_write(sc, GICC_PMR, priority);
    232  1.42.2.2   thorpej 	}
    233       1.1      matt }
    234       1.1      matt 
    235      1.35  jmcneill #ifdef MULTIPROCESSOR
    236      1.35  jmcneill static void
    237      1.35  jmcneill armgic_get_affinity(struct pic_softc *pic, size_t irq, kcpuset_t *affinity)
    238      1.35  jmcneill {
    239      1.35  jmcneill 	struct armgic_softc * const sc = PICTOSOFTC(pic);
    240      1.35  jmcneill 	const size_t group = irq / 32;
    241      1.35  jmcneill 	int n;
    242      1.35  jmcneill 
    243      1.35  jmcneill 	kcpuset_zero(affinity);
    244      1.35  jmcneill 	if (group == 0) {
    245      1.35  jmcneill 		/* All CPUs are targets for group 0 (SGI/PPI) */
    246      1.35  jmcneill 		for (n = 0; n < MAXCPUS; n++) {
    247      1.35  jmcneill 			if (sc->sc_target[n] != 0)
    248      1.35  jmcneill 				kcpuset_set(affinity, n);
    249      1.35  jmcneill 		}
    250      1.35  jmcneill 	} else {
    251      1.35  jmcneill 		/* Find distributor targets (SPI) */
    252      1.35  jmcneill 		const u_int byte_shift = 8 * (irq & 3);
    253      1.35  jmcneill 		const bus_size_t targets_reg = GICD_ITARGETSRn(irq / 4);
    254      1.35  jmcneill 		const uint32_t targets = gicd_read(sc, targets_reg);
    255      1.35  jmcneill 		const uint32_t targets_val = (targets >> byte_shift) & 0xff;
    256      1.35  jmcneill 
    257      1.35  jmcneill 		for (n = 0; n < MAXCPUS; n++) {
    258      1.35  jmcneill 			if (sc->sc_target[n] & targets_val)
    259      1.35  jmcneill 				kcpuset_set(affinity, n);
    260      1.35  jmcneill 		}
    261      1.35  jmcneill 	}
    262      1.35  jmcneill }
    263      1.35  jmcneill 
    264      1.35  jmcneill static int
    265      1.35  jmcneill armgic_set_affinity(struct pic_softc *pic, size_t irq,
    266      1.35  jmcneill     const kcpuset_t *affinity)
    267      1.35  jmcneill {
    268      1.35  jmcneill 	struct armgic_softc * const sc = PICTOSOFTC(pic);
    269      1.35  jmcneill 	const size_t group = irq / 32;
    270      1.35  jmcneill 	if (group == 0)
    271      1.35  jmcneill 		return EINVAL;
    272      1.35  jmcneill 
    273      1.35  jmcneill 	const u_int byte_shift = 8 * (irq & 3);
    274      1.35  jmcneill 	const bus_size_t targets_reg = GICD_ITARGETSRn(irq / 4);
    275      1.35  jmcneill 	uint32_t targets_val = 0;
    276      1.35  jmcneill 	int n;
    277      1.35  jmcneill 
    278      1.35  jmcneill 	for (n = 0; n < MAXCPUS; n++) {
    279      1.35  jmcneill 		if (kcpuset_isset(affinity, n))
    280      1.35  jmcneill 			targets_val |= sc->sc_target[n];
    281      1.35  jmcneill 	}
    282      1.35  jmcneill 
    283      1.35  jmcneill 	uint32_t targets = gicd_read(sc, targets_reg);
    284      1.35  jmcneill 	targets &= ~(0xff << byte_shift);
    285      1.35  jmcneill 	targets |= (targets_val << byte_shift);
    286      1.35  jmcneill 	gicd_write(sc, targets_reg, targets);
    287      1.35  jmcneill 
    288      1.35  jmcneill 	return 0;
    289      1.35  jmcneill }
    290      1.35  jmcneill #endif
    291      1.35  jmcneill 
    292       1.1      matt #ifdef __HAVE_PIC_FAST_SOFTINTS
    293       1.1      matt void
    294       1.1      matt softint_init_md(lwp_t *l, u_int level, uintptr_t *machdep_p)
    295       1.1      matt {
    296       1.1      matt 	lwp_t **lp = &l->l_cpu->ci_softlwps[level];
    297       1.1      matt 	KASSERT(*lp == NULL || *lp == l);
    298       1.1      matt 	*lp = l;
    299       1.1      matt 	/*
    300       1.1      matt 	 * Really easy.  Just tell it to trigger the local CPU.
    301       1.1      matt 	 */
    302       1.1      matt 	*machdep_p = GICD_SGIR_TargetListFilter_Me
    303       1.1      matt 	    | __SHIFTIN(level, GICD_SGIR_SGIINTID);
    304       1.1      matt }
    305       1.1      matt 
    306       1.1      matt void
    307       1.1      matt softint_trigger(uintptr_t machdep)
    308       1.1      matt {
    309       1.1      matt 
    310       1.1      matt 	gicd_write(&armgic_softc, GICD_SGIR, machdep);
    311       1.1      matt }
    312       1.1      matt #endif
    313       1.1      matt 
    314       1.1      matt void
    315      1.29     skrll armgic_irq_handler(void *tf)
    316       1.1      matt {
    317       1.1      matt 	struct cpu_info * const ci = curcpu();
    318       1.1      matt 	struct armgic_softc * const sc = &armgic_softc;
    319       1.1      matt 	const int old_ipl = ci->ci_cpl;
    320       1.1      matt #ifdef DIAGNOSTIC
    321       1.1      matt 	const int old_mtx_count = ci->ci_mtx_count;
    322       1.1      matt 	const int old_l_biglocks = ci->ci_curlwp->l_biglocks;
    323       1.1      matt #endif
    324       1.1      matt #ifdef DEBUG
    325       1.1      matt 	size_t n = 0;
    326       1.1      matt #endif
    327       1.1      matt 
    328       1.1      matt 	ci->ci_data.cpu_nintr++;
    329       1.1      matt 
    330  1.42.2.2   thorpej 	const uint32_t priority = armgic_ipl_to_priority(old_ipl);
    331  1.42.2.2   thorpej 	if (ci->ci_hwpl != priority) {
    332  1.42.2.2   thorpej 		ci->ci_hwpl = priority;
    333  1.42.2.2   thorpej 		gicc_write(sc, GICC_PMR, priority);
    334  1.42.2.2   thorpej 		if (old_ipl == IPL_HIGH) {
    335  1.42.2.2   thorpej 			return;
    336  1.42.2.2   thorpej 		}
    337  1.42.2.2   thorpej 	}
    338  1.42.2.2   thorpej 
    339       1.1      matt 	for (;;) {
    340       1.1      matt 		uint32_t iar = gicc_read(sc, GICC_IAR);
    341       1.1      matt 		uint32_t irq = __SHIFTOUT(iar, GICC_IAR_IRQ);
    342      1.25     skrll 
    343      1.28     skrll 		if (irq == GICC_IAR_IRQ_SPURIOUS ||
    344      1.28     skrll 		    irq == GICC_IAR_IRQ_SSPURIOUS) {
    345       1.1      matt 			iar = gicc_read(sc, GICC_IAR);
    346       1.1      matt 			irq = __SHIFTOUT(iar, GICC_IAR_IRQ);
    347       1.1      matt 			if (irq == GICC_IAR_IRQ_SPURIOUS)
    348       1.1      matt 				break;
    349      1.28     skrll 			if (irq == GICC_IAR_IRQ_SSPURIOUS) {
    350      1.28     skrll 				break;
    351      1.28     skrll 			}
    352       1.1      matt 		}
    353       1.1      matt 
    354      1.32  jmcneill 		KASSERTMSG(old_ipl != IPL_HIGH, "old_ipl %d pmr %#x hppir %#x",
    355      1.32  jmcneill 		    old_ipl, gicc_read(sc, GICC_PMR), gicc_read(sc, GICC_HPPIR));
    356      1.32  jmcneill 
    357       1.1      matt 		//const uint32_t cpuid = __SHIFTOUT(iar, GICC_IAR_CPUID_MASK);
    358       1.1      matt 		struct intrsource * const is = sc->sc_pic.pic_sources[irq];
    359       1.2      matt 		KASSERT(is != &armgic_dummy_source);
    360       1.1      matt 
    361       1.1      matt 		/*
    362       1.1      matt 		 * GIC has asserted IPL for us so we can just update ci_cpl.
    363       1.1      matt 		 *
    364       1.1      matt 		 * But it's not that simple.  We may have already bumped ci_cpl
    365       1.1      matt 		 * due to a high priority interrupt and now we are about to
    366       1.1      matt 		 * dispatch one lower than the previous.  It's possible for
    367       1.1      matt 		 * that previous interrupt to have deferred some interrupts
    368       1.1      matt 		 * so we need deal with those when lowering to the current
    369       1.1      matt 		 * interrupt's ipl.
    370       1.1      matt 		 *
    371       1.1      matt 		 * However, if are just raising ipl, we can just update ci_cpl.
    372       1.1      matt 		 */
    373       1.1      matt 		const int ipl = is->is_ipl;
    374       1.1      matt 		if (__predict_false(ipl < ci->ci_cpl)) {
    375       1.1      matt 			pic_do_pending_ints(I32_bit, ipl, tf);
    376       1.1      matt 			KASSERT(ci->ci_cpl == ipl);
    377       1.1      matt 		} else {
    378       1.1      matt 			KASSERTMSG(ipl > ci->ci_cpl, "ipl %d cpl %d hw-ipl %#x",
    379       1.1      matt 			    ipl, ci->ci_cpl,
    380       1.1      matt 			    gicc_read(sc, GICC_PMR));
    381       1.1      matt 			gicc_write(sc, GICC_PMR, armgic_ipl_to_priority(ipl));
    382  1.42.2.2   thorpej 			ci->ci_hwpl = ci->ci_cpl = ipl;
    383       1.1      matt 		}
    384  1.42.2.2   thorpej 		ENABLE_INTERRUPT();
    385       1.1      matt 		pic_dispatch(is, tf);
    386  1.42.2.2   thorpej 		DISABLE_INTERRUPT();
    387       1.1      matt 		gicc_write(sc, GICC_EOIR, iar);
    388       1.1      matt #ifdef DEBUG
    389       1.1      matt 		n++;
    390       1.1      matt 		KDASSERTMSG(n < 5, "%s: processed too many (%zu)",
    391       1.1      matt 		    ci->ci_data.cpu_name, n);
    392       1.1      matt #endif
    393       1.1      matt 	}
    394       1.1      matt 
    395       1.1      matt 	/*
    396       1.1      matt 	 * Now handle any pending ints.
    397       1.1      matt 	 */
    398       1.1      matt 	pic_do_pending_ints(I32_bit, old_ipl, tf);
    399      1.29     skrll 	KASSERTMSG(ci->ci_cpl == old_ipl, "ci_cpl %d old_ipl %d", ci->ci_cpl, old_ipl);
    400       1.1      matt 	KASSERT(old_mtx_count == ci->ci_mtx_count);
    401       1.1      matt 	KASSERT(old_l_biglocks == ci->ci_curlwp->l_biglocks);
    402       1.1      matt }
    403       1.1      matt 
    404       1.1      matt void
    405       1.1      matt armgic_establish_irq(struct pic_softc *pic, struct intrsource *is)
    406       1.1      matt {
    407       1.1      matt 	struct armgic_softc * const sc = PICTOSOFTC(pic);
    408       1.1      matt 	const size_t group = is->is_irq / 32;
    409       1.1      matt 	const u_int irq = is->is_irq & 31;
    410       1.1      matt 	const u_int byte_shift = 8 * (irq & 3);
    411       1.1      matt 	const u_int twopair_shift = 2 * (irq & 15);
    412       1.1      matt 
    413       1.1      matt 	KASSERTMSG(sc->sc_gic_valid_lines[group] & __BIT(irq),
    414       1.1      matt 	    "irq %u: not valid (group[%zu]=0x%08x [0x%08x])",
    415       1.1      matt 	    is->is_irq, group, sc->sc_gic_valid_lines[group],
    416       1.1      matt 	    (uint32_t)__BIT(irq));
    417      1.16     skrll 
    418       1.1      matt 	KASSERTMSG(is->is_type == IST_LEVEL || is->is_type == IST_EDGE,
    419       1.1      matt 	    "irq %u: type %u unsupported", is->is_irq, is->is_type);
    420       1.1      matt 
    421       1.1      matt 	const bus_size_t targets_reg = GICD_ITARGETSRn(is->is_irq / 4);
    422       1.1      matt 	const bus_size_t cfg_reg = GICD_ICFGRn(is->is_irq / 16);
    423       1.1      matt 	uint32_t targets = gicd_read(sc, targets_reg);
    424       1.1      matt 	uint32_t cfg = gicd_read(sc, cfg_reg);
    425       1.1      matt 
    426       1.1      matt 	if (group > 0) {
    427      1.16     skrll 		/*
    428       1.1      matt 		 * There are 4 irqs per TARGETS register.  For now bind
    429       1.1      matt 		 * to the primary cpu.
    430       1.1      matt 		 */
    431      1.39  jmcneill 		targets &= ~(0xffU << byte_shift);
    432      1.12     skrll #if 0
    433       1.7      matt #ifdef MULTIPROCESSOR
    434       1.7      matt 		if (is->is_mpsafe) {
    435      1.12     skrll 			targets |= sc->sc_mptargets << byte_shift;
    436       1.7      matt 		} else
    437       1.7      matt #endif
    438      1.12     skrll #endif
    439      1.24  jmcneill 		targets |= sc->sc_bptargets << byte_shift;
    440       1.1      matt 		gicd_write(sc, targets_reg, targets);
    441       1.1      matt 
    442      1.16     skrll 		/*
    443       1.1      matt 		 * There are 16 irqs per CFG register.  10=EDGE 00=LEVEL
    444       1.1      matt 		 */
    445       1.1      matt 		uint32_t new_cfg = cfg;
    446      1.40     skrll 		uint32_t old_cfg = (cfg >> twopair_shift) & __BITS(1, 0);
    447      1.40     skrll 		if (is->is_type == IST_LEVEL && (old_cfg & __BIT(1)) != 0) {
    448      1.40     skrll 			new_cfg &= ~(__BITS(1, 0) << twopair_shift);
    449       1.1      matt 		} else if (is->is_type == IST_EDGE && (old_cfg & 2) == 0) {
    450      1.40     skrll 			new_cfg |= __BIT(1) << twopair_shift;
    451       1.1      matt 		}
    452       1.1      matt 		if (new_cfg != cfg) {
    453      1.14  jmcneill 			gicd_write(sc, cfg_reg, new_cfg);
    454       1.1      matt 		}
    455       1.7      matt #ifdef MULTIPROCESSOR
    456       1.7      matt 	} else {
    457       1.7      matt 		/*
    458       1.7      matt 		 * All group 0 interrupts are per processor and MPSAFE by
    459       1.7      matt 		 * default.
    460       1.7      matt 		 */
    461       1.7      matt 		is->is_mpsafe = true;
    462       1.7      matt #endif
    463       1.1      matt 	}
    464       1.1      matt 
    465      1.16     skrll 	/*
    466       1.1      matt 	 * There are 4 irqs per PRIORITY register.  Map the IPL
    467       1.1      matt 	 * to GIC priority.
    468       1.1      matt 	 */
    469       1.1      matt 	const bus_size_t priority_reg = GICD_IPRIORITYRn(is->is_irq / 4);
    470       1.1      matt 	uint32_t priority = gicd_read(sc, priority_reg);
    471      1.39  jmcneill 	priority &= ~(0xffU << byte_shift);
    472       1.1      matt 	priority |= armgic_ipl_to_priority(is->is_ipl) << byte_shift;
    473       1.1      matt 	gicd_write(sc, priority_reg, priority);
    474       1.1      matt }
    475       1.1      matt 
    476       1.1      matt #ifdef MULTIPROCESSOR
    477       1.1      matt static void
    478       1.1      matt armgic_cpu_init_priorities(struct armgic_softc *sc)
    479       1.1      matt {
    480      1.22     skrll 	/* Set lowest priority, i.e. disable interrupts */
    481      1.34  jakllsch 	for (size_t i = 0; i < sc->sc_pic.pic_maxsources; i += 4) {
    482      1.22     skrll 		const bus_size_t priority_reg = GICD_IPRIORITYRn(i / 4);
    483      1.22     skrll 		gicd_write(sc, priority_reg, ~0);
    484      1.22     skrll 	}
    485      1.22     skrll }
    486      1.22     skrll 
    487      1.22     skrll static void
    488      1.22     skrll armgic_cpu_update_priorities(struct armgic_softc *sc)
    489      1.22     skrll {
    490       1.1      matt 	uint32_t enabled = sc->sc_enabled_local;
    491      1.34  jakllsch 	for (size_t i = 0; i < sc->sc_pic.pic_maxsources; i += 4, enabled >>= 4) {
    492       1.1      matt 		const bus_size_t priority_reg = GICD_IPRIORITYRn(i / 4);
    493       1.1      matt 		uint32_t priority = gicd_read(sc, priority_reg);
    494       1.1      matt 		uint32_t byte_mask = 0xff;
    495       1.1      matt 		size_t byte_shift = 0;
    496       1.1      matt 		for (size_t j = 0; j < 4; j++, byte_mask <<= 8, byte_shift += 8) {
    497       1.1      matt 			struct intrsource * const is = sc->sc_pic.pic_sources[i+j];
    498      1.22     skrll 			priority |= byte_mask;
    499       1.1      matt 			if (is == NULL || is == &armgic_dummy_source)
    500       1.1      matt 				continue;
    501       1.1      matt 			priority &= ~byte_mask;
    502       1.1      matt 			priority |= armgic_ipl_to_priority(is->is_ipl) << byte_shift;
    503       1.1      matt 		}
    504       1.1      matt 		gicd_write(sc, priority_reg, priority);
    505       1.1      matt 	}
    506       1.1      matt }
    507       1.1      matt 
    508       1.7      matt static void
    509       1.7      matt armgic_cpu_init_targets(struct armgic_softc *sc)
    510       1.7      matt {
    511       1.7      matt 	/*
    512      1.16     skrll 	 * Update the mpsafe targets
    513       1.7      matt 	 */
    514      1.13  jmcneill 	for (size_t irq = 32; irq < sc->sc_pic.pic_maxsources; irq++) {
    515       1.7      matt 		struct intrsource * const is = sc->sc_pic.pic_sources[irq];
    516       1.7      matt 		const bus_size_t targets_reg = GICD_ITARGETSRn(irq / 4);
    517       1.7      matt 		if (is != NULL && is->is_mpsafe) {
    518      1.12     skrll 			const u_int byte_shift = 8 * (irq & 3);
    519       1.7      matt 			uint32_t targets = gicd_read(sc, targets_reg);
    520  1.42.2.2   thorpej #if 0
    521       1.7      matt 			targets |= sc->sc_mptargets << byte_shift;
    522  1.42.2.2   thorpej #else
    523  1.42.2.2   thorpej 			targets |= sc->sc_bptargets << byte_shift;
    524  1.42.2.2   thorpej #endif
    525       1.7      matt 			gicd_write(sc, targets_reg, targets);
    526       1.7      matt 		}
    527       1.7      matt 	}
    528       1.7      matt }
    529       1.7      matt 
    530       1.1      matt void
    531       1.1      matt armgic_cpu_init(struct pic_softc *pic, struct cpu_info *ci)
    532       1.1      matt {
    533       1.1      matt 	struct armgic_softc * const sc = PICTOSOFTC(pic);
    534      1.35  jmcneill 	sc->sc_target[cpu_index(ci)] = gicd_find_targets(sc);
    535      1.36  jmcneill 	atomic_or_32(&sc->sc_mptargets, sc->sc_target[cpu_index(ci)]);
    536       1.7      matt 	KASSERTMSG(ci->ci_cpl == IPL_HIGH, "ipl %d not IPL_HIGH", ci->ci_cpl);
    537      1.22     skrll 	armgic_cpu_init_priorities(sc);
    538       1.7      matt 	if (!CPU_IS_PRIMARY(ci)) {
    539      1.24  jmcneill 		if (popcount(sc->sc_mptargets) != 1) {
    540       1.7      matt 			armgic_cpu_init_targets(sc);
    541       1.7      matt 		}
    542       1.7      matt 		if (sc->sc_enabled_local) {
    543      1.22     skrll 			armgic_cpu_update_priorities(sc);
    544       1.7      matt 			gicd_write(sc, GICD_ISENABLERn(0),
    545       1.7      matt 			    sc->sc_enabled_local);
    546       1.7      matt 		}
    547       1.1      matt 	}
    548  1.42.2.2   thorpej 	ci->ci_hwpl = armgic_ipl_to_priority(ci->ci_cpl);
    549       1.1      matt 	gicc_write(sc, GICC_PMR, armgic_ipl_to_priority(ci->ci_cpl));	// set PMR
    550       1.1      matt 	gicc_write(sc, GICC_CTRL, GICC_CTRL_V1_Enable);	// enable interrupt
    551  1.42.2.2   thorpej 	ENABLE_INTERRUPT();				// allow IRQ exceptions
    552       1.1      matt }
    553       1.1      matt 
    554       1.1      matt void
    555       1.1      matt armgic_ipi_send(struct pic_softc *pic, const kcpuset_t *kcp, u_long ipi)
    556       1.1      matt {
    557       1.1      matt 	struct armgic_softc * const sc = PICTOSOFTC(pic);
    558       1.1      matt 
    559       1.7      matt #if 0
    560       1.1      matt 	if (ipi == IPI_NOP) {
    561  1.42.2.1   thorpej 		sev();
    562       1.1      matt 		return;
    563       1.1      matt 	}
    564       1.7      matt #endif
    565       1.1      matt 
    566       1.7      matt 	uint32_t sgir = __SHIFTIN(ARMGIC_SGI_IPIBASE + ipi, GICD_SGIR_SGIINTID);
    567       1.7      matt 	if (kcp != NULL) {
    568      1.37  jmcneill 		uint32_t targets_val = 0;
    569      1.37  jmcneill 		for (int n = 0; n < MAXCPUS; n++) {
    570      1.37  jmcneill 			if (kcpuset_isset(kcp, n))
    571      1.37  jmcneill 				targets_val |= sc->sc_target[n];
    572      1.37  jmcneill 		}
    573      1.37  jmcneill 		sgir |= __SHIFTIN(targets_val, GICD_SGIR_TargetList);
    574       1.7      matt 		sgir |= GICD_SGIR_TargetListFilter_List;
    575       1.7      matt 	} else {
    576       1.7      matt 		if (ncpu == 1)
    577       1.7      matt 			return;
    578       1.7      matt 		sgir |= GICD_SGIR_TargetListFilter_NotMe;
    579       1.7      matt 	}
    580       1.1      matt 
    581       1.1      matt 	gicd_write(sc, GICD_SGIR, sgir);
    582       1.1      matt }
    583       1.1      matt #endif
    584       1.1      matt 
    585       1.1      matt int
    586       1.1      matt armgic_match(device_t parent, cfdata_t cf, void *aux)
    587       1.1      matt {
    588       1.1      matt 	struct mpcore_attach_args * const mpcaa = aux;
    589       1.1      matt 
    590       1.1      matt 	if (strcmp(cf->cf_name, mpcaa->mpcaa_name) != 0)
    591       1.1      matt 		return 0;
    592       1.1      matt 
    593       1.1      matt 	return 1;
    594       1.1      matt }
    595       1.1      matt 
    596       1.1      matt void
    597       1.1      matt armgic_attach(device_t parent, device_t self, void *aux)
    598       1.1      matt {
    599       1.1      matt 	struct armgic_softc * const sc = &armgic_softc;
    600       1.1      matt 	struct mpcore_attach_args * const mpcaa = aux;
    601       1.1      matt 
    602       1.1      matt 	sc->sc_dev = self;
    603       1.1      matt 	self->dv_private = sc;
    604       1.1      matt 
    605       1.1      matt 	sc->sc_memt = mpcaa->mpcaa_memt;	/* provided for us */
    606       1.4      matt 	bus_space_subregion(sc->sc_memt, mpcaa->mpcaa_memh, mpcaa->mpcaa_off1,
    607       1.4      matt 	    4096, &sc->sc_gicdh);
    608       1.4      matt 	bus_space_subregion(sc->sc_memt, mpcaa->mpcaa_memh, mpcaa->mpcaa_off2,
    609       1.4      matt 	    4096, &sc->sc_gicch);
    610       1.1      matt 
    611       1.1      matt 	sc->sc_gic_type = gicd_read(sc, GICD_TYPER);
    612       1.1      matt 	sc->sc_pic.pic_maxsources = GICD_TYPER_LINES(sc->sc_gic_type);
    613       1.1      matt 
    614       1.1      matt 	gicc_write(sc, GICC_CTRL, 0);	/* disable all interrupts */
    615       1.1      matt 	gicd_write(sc, GICD_CTRL, 0);	/* disable all interrupts */
    616       1.1      matt 
    617       1.1      matt 	gicc_write(sc, GICC_PMR, 0xff);
    618       1.1      matt 	uint32_t pmr = gicc_read(sc, GICC_PMR);
    619       1.1      matt 	u_int priorities = 1 << popcount32(pmr);
    620       1.1      matt 
    621      1.26     skrll 	const uint32_t iidr = gicc_read(sc, GICC_IIDR);
    622      1.26     skrll 	const int iidr_prod = __SHIFTOUT(iidr, GICC_IIDR_ProductID);
    623      1.26     skrll 	const int iidr_arch = __SHIFTOUT(iidr, GICC_IIDR_ArchVersion);
    624      1.26     skrll 	const int iidr_rev = __SHIFTOUT(iidr, GICC_IIDR_Revision);
    625      1.26     skrll 	const int iidr_imp = __SHIFTOUT(iidr, GICC_IIDR_Implementer);
    626      1.26     skrll 
    627       1.1      matt 	/*
    628      1.24  jmcneill 	 * Find the boot processor's CPU interface number.
    629      1.24  jmcneill 	 */
    630      1.24  jmcneill 	sc->sc_bptargets = gicd_find_targets(sc);
    631      1.24  jmcneill 
    632      1.24  jmcneill 	/*
    633       1.1      matt 	 * Let's find out how many real sources we have.
    634       1.1      matt 	 */
    635       1.1      matt 	for (size_t i = 0, group = 0;
    636       1.1      matt 	     i < sc->sc_pic.pic_maxsources;
    637       1.1      matt 	     i += 32, group++) {
    638       1.1      matt 		/*
    639       1.1      matt 		 * To figure what sources are real, one enables all interrupts
    640       1.1      matt 		 * and then reads back the enable mask so which ones really
    641       1.1      matt 		 * got enabled.
    642       1.1      matt 		 */
    643       1.1      matt 		gicd_write(sc, GICD_ISENABLERn(group), 0xffffffff);
    644       1.1      matt 		uint32_t valid = gicd_read(sc, GICD_ISENABLERn(group));
    645       1.1      matt 
    646       1.1      matt 		/*
    647       1.1      matt 		 * Now disable (clear enable) them again.
    648       1.1      matt 		 */
    649       1.1      matt 		gicd_write(sc, GICD_ICENABLERn(group), valid);
    650       1.1      matt 
    651       1.1      matt 		/*
    652       1.1      matt 		 * Count how many are valid.
    653       1.1      matt 		 */
    654       1.1      matt 		sc->sc_gic_lines += popcount32(valid);
    655       1.1      matt 		sc->sc_gic_valid_lines[group] = valid;
    656       1.1      matt 	}
    657       1.1      matt 
    658       1.8      matt 	aprint_normal(": Generic Interrupt Controller, "
    659       1.8      matt 	    "%zu sources (%zu valid)\n",
    660       1.8      matt 	    sc->sc_pic.pic_maxsources, sc->sc_gic_lines);
    661      1.26     skrll 	aprint_debug_dev(sc->sc_dev, "Architecture version %d"
    662      1.26     skrll 	    " (0x%x:%d rev %d)\n", iidr_arch, iidr_imp, iidr_prod,
    663      1.26     skrll 	    iidr_rev);
    664       1.8      matt 
    665      1.18      matt #ifdef MULTIPROCESSOR
    666      1.18      matt 	sc->sc_pic.pic_cpus = kcpuset_running;
    667      1.18      matt #endif
    668       1.1      matt 	pic_add(&sc->sc_pic, 0);
    669       1.1      matt 
    670       1.1      matt 	/*
    671       1.1      matt 	 * Force the GICD to IPL_HIGH and then enable interrupts.
    672       1.1      matt 	 */
    673       1.1      matt 	struct cpu_info * const ci = curcpu();
    674       1.1      matt 	KASSERTMSG(ci->ci_cpl == IPL_HIGH, "ipl %d not IPL_HIGH", ci->ci_cpl);
    675       1.1      matt 	armgic_set_priority(&sc->sc_pic, ci->ci_cpl);	// set PMR
    676       1.1      matt 	gicd_write(sc, GICD_CTRL, GICD_CTRL_Enable);	// enable Distributer
    677       1.1      matt 	gicc_write(sc, GICC_CTRL, GICC_CTRL_V1_Enable);	// enable CPU interrupts
    678  1.42.2.2   thorpej 	ENABLE_INTERRUPT();				// allow interrupt exceptions
    679       1.1      matt 
    680       1.1      matt 	/*
    681       1.1      matt 	 * For each line that isn't valid, we set the intrsource for it to
    682       1.1      matt 	 * point at a dummy source so that pic_intr_establish will fail for it.
    683       1.1      matt 	 */
    684       1.1      matt 	for (size_t i = 0, group = 0;
    685       1.1      matt 	     i < sc->sc_pic.pic_maxsources;
    686       1.1      matt 	     i += 32, group++) {
    687       1.1      matt 		uint32_t invalid = ~sc->sc_gic_valid_lines[group];
    688       1.1      matt 		for (size_t j = 0; invalid && j < 32; j++, invalid >>= 1) {
    689       1.1      matt 			if (invalid & 1) {
    690       1.1      matt 				sc->sc_pic.pic_sources[i + j] =
    691       1.1      matt 				     &armgic_dummy_source;
    692       1.1      matt 			}
    693       1.1      matt 		}
    694       1.1      matt 	}
    695       1.1      matt #ifdef __HAVE_PIC_FAST_SOFTINTS
    696      1.38  jmcneill 	intr_establish_xname(SOFTINT_BIO, IPL_SOFTBIO, IST_MPSAFE | IST_EDGE,
    697      1.38  jmcneill 	    pic_handle_softint, (void *)SOFTINT_BIO, "softint bio");
    698      1.38  jmcneill 	intr_establish_xname(SOFTINT_CLOCK, IPL_SOFTCLOCK, IST_MPSAFE | IST_EDGE,
    699      1.38  jmcneill 	    pic_handle_softint, (void *)SOFTINT_CLOCK, "softint clock");
    700      1.38  jmcneill 	intr_establish_xname(SOFTINT_NET, IPL_SOFTNET, IST_MPSAFE | IST_EDGE,
    701      1.38  jmcneill 	    pic_handle_softint, (void *)SOFTINT_NET, "softint net");
    702      1.38  jmcneill 	intr_establish_xname(SOFTINT_SERIAL, IPL_SOFTSERIAL, IST_MPSAFE | IST_EDGE,
    703      1.38  jmcneill 	    pic_handle_softint, (void *)SOFTINT_SERIAL, "softint serial");
    704       1.1      matt #endif
    705       1.1      matt #ifdef MULTIPROCESSOR
    706      1.22     skrll 	armgic_cpu_init(&sc->sc_pic, curcpu());
    707      1.22     skrll 
    708      1.38  jmcneill 	intr_establish_xname(ARMGIC_SGI_IPIBASE + IPI_AST, IPL_VM,
    709      1.38  jmcneill 	    IST_MPSAFE | IST_EDGE, pic_ipi_ast, (void *)-1, "IPI ast");
    710      1.38  jmcneill 	intr_establish_xname(ARMGIC_SGI_IPIBASE + IPI_XCALL, IPL_HIGH,
    711      1.38  jmcneill 	    IST_MPSAFE | IST_EDGE, pic_ipi_xcall, (void *)-1, "IPI xcall");
    712      1.38  jmcneill 	intr_establish_xname(ARMGIC_SGI_IPIBASE + IPI_GENERIC, IPL_HIGH,
    713      1.38  jmcneill 	    IST_MPSAFE | IST_EDGE, pic_ipi_generic, (void *)-1, "IPI generic");
    714      1.38  jmcneill 	intr_establish_xname(ARMGIC_SGI_IPIBASE + IPI_NOP, IPL_VM,
    715      1.38  jmcneill 	    IST_MPSAFE | IST_EDGE, pic_ipi_nop, (void *)-1, "IPI nop");
    716      1.38  jmcneill 	intr_establish_xname(ARMGIC_SGI_IPIBASE + IPI_SHOOTDOWN, IPL_SCHED,
    717      1.38  jmcneill 	    IST_MPSAFE | IST_EDGE, pic_ipi_shootdown, (void *)-1, "IPI shootdown");
    718       1.7      matt #ifdef DDB
    719      1.38  jmcneill 	intr_establish_xname(ARMGIC_SGI_IPIBASE + IPI_DDB, IPL_HIGH,
    720      1.38  jmcneill 	    IST_MPSAFE | IST_EDGE, pic_ipi_ddb, NULL, "IPI ddb");
    721       1.1      matt #endif
    722       1.1      matt #ifdef __HAVE_PREEMPTION
    723      1.38  jmcneill 	intr_establish_xname(ARMGIC_SGI_IPIBASE + IPI_KPREEMPT, IPL_VM,
    724      1.38  jmcneill 	    IST_MPSAFE | IST_EDGE, pic_ipi_kpreempt, (void *)-1, "IPI kpreempt");
    725       1.1      matt #endif
    726       1.1      matt #endif
    727       1.1      matt 
    728       1.1      matt 	const u_int ppis = popcount32(sc->sc_gic_valid_lines[0] >> 16);
    729       1.1      matt 	const u_int sgis = popcount32(sc->sc_gic_valid_lines[0] & 0xffff);
    730      1.27     skrll 	aprint_normal_dev(sc->sc_dev, "%u Priorities, %zu SPIs, %u PPIs, "
    731      1.27     skrll 	    "%u SGIs\n",  priorities, sc->sc_gic_lines - ppis - sgis, ppis,
    732      1.27     skrll 	    sgis);
    733       1.1      matt }
    734       1.1      matt 
    735       1.1      matt CFATTACH_DECL_NEW(armgic, 0,
    736       1.1      matt     armgic_match, armgic_attach, NULL, NULL);
    737