Home | History | Annotate | Line # | Download | only in cortex
gicv3.c revision 1.35
      1  1.35  jmcneill /* $NetBSD: gicv3.c,v 1.35 2020/11/24 23:31:56 jmcneill Exp $ */
      2   1.1  jmcneill 
      3   1.1  jmcneill /*-
      4   1.1  jmcneill  * Copyright (c) 2018 Jared McNeill <jmcneill (at) invisible.ca>
      5   1.1  jmcneill  * All rights reserved.
      6   1.1  jmcneill  *
      7   1.1  jmcneill  * Redistribution and use in source and binary forms, with or without
      8   1.1  jmcneill  * modification, are permitted provided that the following conditions
      9   1.1  jmcneill  * are met:
     10   1.1  jmcneill  * 1. Redistributions of source code must retain the above copyright
     11   1.1  jmcneill  *    notice, this list of conditions and the following disclaimer.
     12   1.1  jmcneill  * 2. Redistributions in binary form must reproduce the above copyright
     13   1.1  jmcneill  *    notice, this list of conditions and the following disclaimer in the
     14   1.1  jmcneill  *    documentation and/or other materials provided with the distribution.
     15   1.1  jmcneill  *
     16   1.1  jmcneill  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     17   1.1  jmcneill  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     18   1.1  jmcneill  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     19   1.1  jmcneill  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     20   1.1  jmcneill  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
     21   1.1  jmcneill  * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
     22   1.1  jmcneill  * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
     23   1.1  jmcneill  * AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
     24   1.1  jmcneill  * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     25   1.1  jmcneill  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     26   1.1  jmcneill  * SUCH DAMAGE.
     27   1.1  jmcneill  */
     28   1.1  jmcneill 
     29   1.1  jmcneill #include "opt_multiprocessor.h"
     30   1.1  jmcneill 
     31   1.1  jmcneill #define	_INTR_PRIVATE
     32   1.1  jmcneill 
     33   1.1  jmcneill #include <sys/cdefs.h>
     34  1.35  jmcneill __KERNEL_RCSID(0, "$NetBSD: gicv3.c,v 1.35 2020/11/24 23:31:56 jmcneill Exp $");
     35   1.1  jmcneill 
     36   1.1  jmcneill #include <sys/param.h>
     37   1.1  jmcneill #include <sys/kernel.h>
     38   1.1  jmcneill #include <sys/bus.h>
     39   1.1  jmcneill #include <sys/device.h>
     40   1.1  jmcneill #include <sys/intr.h>
     41   1.1  jmcneill #include <sys/systm.h>
     42   1.1  jmcneill #include <sys/cpu.h>
     43  1.23  jmcneill #include <sys/vmem.h>
     44  1.32  jmcneill #include <sys/atomic.h>
     45   1.1  jmcneill 
     46  1.20  jmcneill #include <machine/cpufunc.h>
     47  1.20  jmcneill 
     48   1.1  jmcneill #include <arm/locore.h>
     49   1.1  jmcneill #include <arm/armreg.h>
     50   1.1  jmcneill 
     51   1.1  jmcneill #include <arm/cortex/gicv3.h>
     52   1.1  jmcneill #include <arm/cortex/gic_reg.h>
     53   1.1  jmcneill 
     54   1.1  jmcneill #define	PICTOSOFTC(pic)	\
     55   1.1  jmcneill 	((void *)((uintptr_t)(pic) - offsetof(struct gicv3_softc, sc_pic)))
     56   1.5  jmcneill #define	LPITOSOFTC(lpi) \
     57   1.5  jmcneill 	((void *)((uintptr_t)(lpi) - offsetof(struct gicv3_softc, sc_lpi)))
     58   1.1  jmcneill 
     59  1.18  jmcneill #define	IPL_TO_PRIORITY(sc, ipl)	(((0xff - (ipl)) << (sc)->sc_priority_shift) & 0xff)
     60  1.18  jmcneill #define	IPL_TO_PMR(sc, ipl)		(((0xff - (ipl)) << (sc)->sc_pmr_shift) & 0xff)
     61  1.35  jmcneill 
     62  1.35  jmcneill #define	GIC_PRIO_SHIFT_NS		4
     63  1.35  jmcneill #define	GIC_PRIO_SHIFT_S		3
     64   1.1  jmcneill 
     65   1.1  jmcneill static struct gicv3_softc *gicv3_softc;
     66   1.1  jmcneill 
     67   1.1  jmcneill static inline uint32_t
     68   1.1  jmcneill gicd_read_4(struct gicv3_softc *sc, bus_size_t reg)
     69   1.1  jmcneill {
     70   1.1  jmcneill 	return bus_space_read_4(sc->sc_bst, sc->sc_bsh_d, reg);
     71   1.1  jmcneill }
     72   1.1  jmcneill 
     73   1.1  jmcneill static inline void
     74   1.1  jmcneill gicd_write_4(struct gicv3_softc *sc, bus_size_t reg, uint32_t val)
     75   1.1  jmcneill {
     76   1.1  jmcneill 	bus_space_write_4(sc->sc_bst, sc->sc_bsh_d, reg, val);
     77   1.1  jmcneill }
     78   1.1  jmcneill 
     79   1.6  jmcneill static inline uint64_t
     80   1.6  jmcneill gicd_read_8(struct gicv3_softc *sc, bus_size_t reg)
     81   1.6  jmcneill {
     82   1.6  jmcneill 	return bus_space_read_8(sc->sc_bst, sc->sc_bsh_d, reg);
     83   1.6  jmcneill }
     84   1.6  jmcneill 
     85   1.1  jmcneill static inline void
     86   1.1  jmcneill gicd_write_8(struct gicv3_softc *sc, bus_size_t reg, uint64_t val)
     87   1.1  jmcneill {
     88   1.1  jmcneill 	bus_space_write_8(sc->sc_bst, sc->sc_bsh_d, reg, val);
     89   1.1  jmcneill }
     90   1.1  jmcneill 
     91   1.1  jmcneill static inline uint32_t
     92   1.1  jmcneill gicr_read_4(struct gicv3_softc *sc, u_int index, bus_size_t reg)
     93   1.1  jmcneill {
     94   1.1  jmcneill 	KASSERT(index < sc->sc_bsh_r_count);
     95   1.1  jmcneill 	return bus_space_read_4(sc->sc_bst, sc->sc_bsh_r[index], reg);
     96   1.1  jmcneill }
     97   1.1  jmcneill 
     98   1.1  jmcneill static inline void
     99   1.1  jmcneill gicr_write_4(struct gicv3_softc *sc, u_int index, bus_size_t reg, uint32_t val)
    100   1.1  jmcneill {
    101   1.1  jmcneill 	KASSERT(index < sc->sc_bsh_r_count);
    102   1.1  jmcneill 	bus_space_write_4(sc->sc_bst, sc->sc_bsh_r[index], reg, val);
    103   1.1  jmcneill }
    104   1.1  jmcneill 
    105   1.1  jmcneill static inline uint64_t
    106   1.1  jmcneill gicr_read_8(struct gicv3_softc *sc, u_int index, bus_size_t reg)
    107   1.1  jmcneill {
    108   1.1  jmcneill 	KASSERT(index < sc->sc_bsh_r_count);
    109   1.1  jmcneill 	return bus_space_read_8(sc->sc_bst, sc->sc_bsh_r[index], reg);
    110   1.1  jmcneill }
    111   1.1  jmcneill 
    112   1.1  jmcneill static inline void
    113   1.1  jmcneill gicr_write_8(struct gicv3_softc *sc, u_int index, bus_size_t reg, uint64_t val)
    114   1.1  jmcneill {
    115   1.1  jmcneill 	KASSERT(index < sc->sc_bsh_r_count);
    116   1.1  jmcneill 	bus_space_write_8(sc->sc_bst, sc->sc_bsh_r[index], reg, val);
    117   1.1  jmcneill }
    118   1.1  jmcneill 
    119   1.1  jmcneill static void
    120   1.1  jmcneill gicv3_unblock_irqs(struct pic_softc *pic, size_t irqbase, uint32_t mask)
    121   1.1  jmcneill {
    122   1.1  jmcneill 	struct gicv3_softc * const sc = PICTOSOFTC(pic);
    123   1.1  jmcneill 	struct cpu_info * const ci = curcpu();
    124   1.1  jmcneill 	const u_int group = irqbase / 32;
    125   1.1  jmcneill 
    126   1.1  jmcneill 	if (group == 0) {
    127  1.32  jmcneill 		atomic_or_32(&sc->sc_enabled_sgippi, mask);
    128   1.1  jmcneill 		gicr_write_4(sc, ci->ci_gic_redist, GICR_ISENABLER0, mask);
    129   1.5  jmcneill 		while (gicr_read_4(sc, ci->ci_gic_redist, GICR_CTLR) & GICR_CTLR_RWP)
    130   1.1  jmcneill 			;
    131   1.1  jmcneill 	} else {
    132   1.1  jmcneill 		gicd_write_4(sc, GICD_ISENABLERn(group), mask);
    133   1.1  jmcneill 		while (gicd_read_4(sc, GICD_CTRL) & GICD_CTRL_RWP)
    134   1.1  jmcneill 			;
    135   1.1  jmcneill 	}
    136   1.1  jmcneill }
    137   1.1  jmcneill 
    138   1.1  jmcneill static void
    139   1.1  jmcneill gicv3_block_irqs(struct pic_softc *pic, size_t irqbase, uint32_t mask)
    140   1.1  jmcneill {
    141   1.1  jmcneill 	struct gicv3_softc * const sc = PICTOSOFTC(pic);
    142   1.1  jmcneill 	struct cpu_info * const ci = curcpu();
    143   1.1  jmcneill 	const u_int group = irqbase / 32;
    144   1.1  jmcneill 
    145   1.1  jmcneill 	if (group == 0) {
    146  1.32  jmcneill 		atomic_and_32(&sc->sc_enabled_sgippi, ~mask);
    147   1.1  jmcneill 		gicr_write_4(sc, ci->ci_gic_redist, GICR_ICENABLER0, mask);
    148   1.5  jmcneill 		while (gicr_read_4(sc, ci->ci_gic_redist, GICR_CTLR) & GICR_CTLR_RWP)
    149   1.1  jmcneill 			;
    150   1.1  jmcneill 	} else {
    151   1.1  jmcneill 		gicd_write_4(sc, GICD_ICENABLERn(group), mask);
    152   1.1  jmcneill 		while (gicd_read_4(sc, GICD_CTRL) & GICD_CTRL_RWP)
    153   1.1  jmcneill 			;
    154   1.1  jmcneill 	}
    155   1.1  jmcneill }
    156   1.1  jmcneill 
    157   1.1  jmcneill static void
    158   1.1  jmcneill gicv3_establish_irq(struct pic_softc *pic, struct intrsource *is)
    159   1.1  jmcneill {
    160   1.1  jmcneill 	struct gicv3_softc * const sc = PICTOSOFTC(pic);
    161   1.1  jmcneill 	const u_int group = is->is_irq / 32;
    162   1.1  jmcneill 	uint32_t ipriority, icfg;
    163   1.1  jmcneill 	uint64_t irouter;
    164   1.1  jmcneill 	u_int n;
    165   1.1  jmcneill 
    166  1.18  jmcneill 	const u_int ipriority_val = IPL_TO_PRIORITY(sc, is->is_ipl);
    167   1.1  jmcneill 	const u_int ipriority_shift = (is->is_irq & 0x3) * 8;
    168   1.1  jmcneill 	const u_int icfg_shift = (is->is_irq & 0xf) * 2;
    169   1.1  jmcneill 
    170   1.1  jmcneill 	if (group == 0) {
    171   1.1  jmcneill 		/* SGIs and PPIs are always MP-safe */
    172   1.1  jmcneill 		is->is_mpsafe = true;
    173   1.1  jmcneill 
    174   1.1  jmcneill 		/* Update interrupt configuration and priority on all redistributors */
    175   1.1  jmcneill 		for (n = 0; n < sc->sc_bsh_r_count; n++) {
    176   1.1  jmcneill 			icfg = gicr_read_4(sc, n, GICR_ICFGRn(is->is_irq / 16));
    177   1.1  jmcneill 			if (is->is_type == IST_LEVEL)
    178   1.1  jmcneill 				icfg &= ~(0x2 << icfg_shift);
    179   1.1  jmcneill 			if (is->is_type == IST_EDGE)
    180   1.1  jmcneill 				icfg |= (0x2 << icfg_shift);
    181   1.1  jmcneill 			gicr_write_4(sc, n, GICR_ICFGRn(is->is_irq / 16), icfg);
    182   1.1  jmcneill 
    183   1.1  jmcneill 			ipriority = gicr_read_4(sc, n, GICR_IPRIORITYRn(is->is_irq / 4));
    184  1.25  jmcneill 			ipriority &= ~(0xffU << ipriority_shift);
    185   1.2  jmcneill 			ipriority |= (ipriority_val << ipriority_shift);
    186   1.1  jmcneill 			gicr_write_4(sc, n, GICR_IPRIORITYRn(is->is_irq / 4), ipriority);
    187   1.1  jmcneill 		}
    188   1.1  jmcneill 	} else {
    189   1.1  jmcneill 		if (is->is_mpsafe) {
    190   1.1  jmcneill 			/* Route MP-safe interrupts to all participating PEs */
    191   1.1  jmcneill 			irouter = GICD_IROUTER_Interrupt_Routing_mode;
    192   1.1  jmcneill 		} else {
    193   1.1  jmcneill 			/* Route non-MP-safe interrupts to the primary PE only */
    194   1.6  jmcneill 			irouter = sc->sc_irouter[0];
    195   1.1  jmcneill 		}
    196   1.1  jmcneill 		gicd_write_8(sc, GICD_IROUTER(is->is_irq), irouter);
    197   1.1  jmcneill 
    198   1.1  jmcneill 		/* Update interrupt configuration */
    199   1.1  jmcneill 		icfg = gicd_read_4(sc, GICD_ICFGRn(is->is_irq / 16));
    200   1.1  jmcneill 		if (is->is_type == IST_LEVEL)
    201   1.1  jmcneill 			icfg &= ~(0x2 << icfg_shift);
    202   1.1  jmcneill 		if (is->is_type == IST_EDGE)
    203   1.1  jmcneill 			icfg |= (0x2 << icfg_shift);
    204   1.1  jmcneill 		gicd_write_4(sc, GICD_ICFGRn(is->is_irq / 16), icfg);
    205   1.1  jmcneill 
    206   1.1  jmcneill 		/* Update interrupt priority */
    207   1.1  jmcneill 		ipriority = gicd_read_4(sc, GICD_IPRIORITYRn(is->is_irq / 4));
    208  1.25  jmcneill 		ipriority &= ~(0xffU << ipriority_shift);
    209   1.2  jmcneill 		ipriority |= (ipriority_val << ipriority_shift);
    210   1.1  jmcneill 		gicd_write_4(sc, GICD_IPRIORITYRn(is->is_irq / 4), ipriority);
    211   1.1  jmcneill 	}
    212   1.1  jmcneill }
    213   1.1  jmcneill 
    214   1.1  jmcneill static void
    215   1.1  jmcneill gicv3_set_priority(struct pic_softc *pic, int ipl)
    216   1.1  jmcneill {
    217  1.18  jmcneill 	struct gicv3_softc * const sc = PICTOSOFTC(pic);
    218  1.18  jmcneill 
    219  1.18  jmcneill 	icc_pmr_write(IPL_TO_PMR(sc, ipl));
    220   1.1  jmcneill }
    221   1.1  jmcneill 
    222   1.1  jmcneill static void
    223   1.1  jmcneill gicv3_dist_enable(struct gicv3_softc *sc)
    224   1.1  jmcneill {
    225   1.1  jmcneill 	uint32_t gicd_ctrl;
    226   1.1  jmcneill 	u_int n;
    227   1.1  jmcneill 
    228   1.1  jmcneill 	/* Disable the distributor */
    229  1.35  jmcneill 	gicd_ctrl = gicd_read_4(sc, GICD_CTRL);
    230  1.35  jmcneill 	gicd_ctrl &= ~(GICD_CTRL_EnableGrp1A | GICD_CTRL_ARE_NS);
    231  1.35  jmcneill 	gicd_write_4(sc, GICD_CTRL, gicd_ctrl);
    232   1.1  jmcneill 
    233   1.1  jmcneill 	/* Wait for register write to complete */
    234   1.1  jmcneill 	while (gicd_read_4(sc, GICD_CTRL) & GICD_CTRL_RWP)
    235   1.1  jmcneill 		;
    236   1.1  jmcneill 
    237   1.1  jmcneill 	/* Clear all INTID enable bits */
    238   1.1  jmcneill 	for (n = 32; n < sc->sc_pic.pic_maxsources; n += 32)
    239   1.1  jmcneill 		gicd_write_4(sc, GICD_ICENABLERn(n / 32), ~0);
    240   1.1  jmcneill 
    241   1.1  jmcneill 	/* Set default priorities to lowest */
    242   1.1  jmcneill 	for (n = 32; n < sc->sc_pic.pic_maxsources; n += 4)
    243   1.1  jmcneill 		gicd_write_4(sc, GICD_IPRIORITYRn(n / 4), ~0);
    244   1.1  jmcneill 
    245   1.1  jmcneill 	/* Set all interrupts to G1NS */
    246   1.1  jmcneill 	for (n = 32; n < sc->sc_pic.pic_maxsources; n += 32) {
    247   1.1  jmcneill 		gicd_write_4(sc, GICD_IGROUPRn(n / 32), ~0);
    248   1.1  jmcneill 		gicd_write_4(sc, GICD_IGRPMODRn(n / 32), 0);
    249   1.1  jmcneill 	}
    250   1.1  jmcneill 
    251   1.1  jmcneill 	/* Set all interrupts level-sensitive by default */
    252   1.1  jmcneill 	for (n = 32; n < sc->sc_pic.pic_maxsources; n += 16)
    253   1.1  jmcneill 		gicd_write_4(sc, GICD_ICFGRn(n / 16), 0);
    254   1.1  jmcneill 
    255   1.1  jmcneill 	/* Wait for register writes to complete */
    256   1.1  jmcneill 	while (gicd_read_4(sc, GICD_CTRL) & GICD_CTRL_RWP)
    257   1.1  jmcneill 		;
    258   1.1  jmcneill 
    259   1.1  jmcneill 	/* Enable Affinity routing and G1NS interrupts */
    260  1.19  jmcneill 	gicd_ctrl = GICD_CTRL_EnableGrp1A | GICD_CTRL_ARE_NS;
    261   1.1  jmcneill 	gicd_write_4(sc, GICD_CTRL, gicd_ctrl);
    262   1.1  jmcneill }
    263   1.1  jmcneill 
    264   1.1  jmcneill static void
    265   1.1  jmcneill gicv3_redist_enable(struct gicv3_softc *sc, struct cpu_info *ci)
    266   1.1  jmcneill {
    267   1.1  jmcneill 	uint32_t icfg;
    268   1.1  jmcneill 	u_int n, o;
    269   1.1  jmcneill 
    270   1.1  jmcneill 	/* Clear INTID enable bits */
    271   1.1  jmcneill 	gicr_write_4(sc, ci->ci_gic_redist, GICR_ICENABLER0, ~0);
    272   1.1  jmcneill 
    273   1.1  jmcneill 	/* Wait for register write to complete */
    274   1.5  jmcneill 	while (gicr_read_4(sc, ci->ci_gic_redist, GICR_CTLR) & GICR_CTLR_RWP)
    275   1.1  jmcneill 		;
    276   1.1  jmcneill 
    277   1.1  jmcneill 	/* Set default priorities */
    278   1.1  jmcneill 	for (n = 0; n < 32; n += 4) {
    279   1.1  jmcneill 		uint32_t priority = 0;
    280   1.1  jmcneill 		size_t byte_shift = 0;
    281   1.1  jmcneill 		for (o = 0; o < 4; o++, byte_shift += 8) {
    282   1.1  jmcneill 			struct intrsource * const is = sc->sc_pic.pic_sources[n + o];
    283   1.1  jmcneill 			if (is == NULL)
    284  1.25  jmcneill 				priority |= (0xffU << byte_shift);
    285   1.2  jmcneill 			else {
    286  1.18  jmcneill 				const u_int ipriority_val = IPL_TO_PRIORITY(sc, is->is_ipl);
    287   1.2  jmcneill 				priority |= ipriority_val << byte_shift;
    288   1.2  jmcneill 			}
    289   1.1  jmcneill 		}
    290   1.1  jmcneill 		gicr_write_4(sc, ci->ci_gic_redist, GICR_IPRIORITYRn(n / 4), priority);
    291   1.1  jmcneill 	}
    292   1.1  jmcneill 
    293   1.1  jmcneill 	/* Set all interrupts to G1NS */
    294   1.1  jmcneill 	gicr_write_4(sc, ci->ci_gic_redist, GICR_IGROUPR0, ~0);
    295   1.1  jmcneill 	gicr_write_4(sc, ci->ci_gic_redist, GICR_IGRPMODR0, 0);
    296   1.1  jmcneill 
    297   1.1  jmcneill 	/* Restore PPI configs */
    298   1.1  jmcneill 	for (n = 0, icfg = 0; n < 16; n++) {
    299   1.1  jmcneill 		struct intrsource * const is = sc->sc_pic.pic_sources[16 + n];
    300   1.1  jmcneill 		if (is != NULL && is->is_type == IST_EDGE)
    301   1.1  jmcneill 			icfg |= (0x2 << (n * 2));
    302   1.1  jmcneill 	}
    303   1.1  jmcneill 	gicr_write_4(sc, ci->ci_gic_redist, GICR_ICFGRn(1), icfg);
    304   1.1  jmcneill 
    305   1.1  jmcneill 	/* Restore current enable bits */
    306   1.1  jmcneill 	gicr_write_4(sc, ci->ci_gic_redist, GICR_ISENABLER0, sc->sc_enabled_sgippi);
    307   1.1  jmcneill 
    308   1.1  jmcneill 	/* Wait for register write to complete */
    309   1.5  jmcneill 	while (gicr_read_4(sc, ci->ci_gic_redist, GICR_CTLR) & GICR_CTLR_RWP)
    310   1.1  jmcneill 		;
    311   1.1  jmcneill }
    312   1.1  jmcneill 
    313   1.1  jmcneill static uint64_t
    314   1.1  jmcneill gicv3_cpu_identity(void)
    315   1.1  jmcneill {
    316   1.1  jmcneill 	u_int aff3, aff2, aff1, aff0;
    317   1.1  jmcneill 
    318  1.18  jmcneill 	const register_t mpidr = cpu_mpidr_aff_read();
    319   1.1  jmcneill 	aff0 = __SHIFTOUT(mpidr, MPIDR_AFF0);
    320   1.1  jmcneill 	aff1 = __SHIFTOUT(mpidr, MPIDR_AFF1);
    321   1.1  jmcneill 	aff2 = __SHIFTOUT(mpidr, MPIDR_AFF2);
    322   1.1  jmcneill 	aff3 = __SHIFTOUT(mpidr, MPIDR_AFF3);
    323   1.1  jmcneill 
    324   1.1  jmcneill 	return __SHIFTIN(aff0, GICR_TYPER_Affinity_Value_Aff0) |
    325   1.1  jmcneill 	       __SHIFTIN(aff1, GICR_TYPER_Affinity_Value_Aff1) |
    326   1.1  jmcneill 	       __SHIFTIN(aff2, GICR_TYPER_Affinity_Value_Aff2) |
    327   1.1  jmcneill 	       __SHIFTIN(aff3, GICR_TYPER_Affinity_Value_Aff3);
    328   1.1  jmcneill }
    329   1.1  jmcneill 
    330   1.1  jmcneill static u_int
    331   1.1  jmcneill gicv3_find_redist(struct gicv3_softc *sc)
    332   1.1  jmcneill {
    333   1.1  jmcneill 	uint64_t gicr_typer;
    334   1.1  jmcneill 	u_int n;
    335   1.1  jmcneill 
    336   1.1  jmcneill 	const uint64_t cpu_identity = gicv3_cpu_identity();
    337   1.1  jmcneill 
    338   1.1  jmcneill 	for (n = 0; n < sc->sc_bsh_r_count; n++) {
    339   1.1  jmcneill 		gicr_typer = gicr_read_8(sc, n, GICR_TYPER);
    340   1.1  jmcneill 		if ((gicr_typer & GICR_TYPER_Affinity_Value) == cpu_identity)
    341   1.1  jmcneill 			return n;
    342   1.1  jmcneill 	}
    343   1.1  jmcneill 
    344   1.1  jmcneill 	const u_int aff0 = __SHIFTOUT(cpu_identity, GICR_TYPER_Affinity_Value_Aff0);
    345   1.1  jmcneill 	const u_int aff1 = __SHIFTOUT(cpu_identity, GICR_TYPER_Affinity_Value_Aff1);
    346   1.1  jmcneill 	const u_int aff2 = __SHIFTOUT(cpu_identity, GICR_TYPER_Affinity_Value_Aff2);
    347   1.1  jmcneill 	const u_int aff3 = __SHIFTOUT(cpu_identity, GICR_TYPER_Affinity_Value_Aff3);
    348   1.1  jmcneill 
    349   1.1  jmcneill 	panic("%s: could not find GICv3 redistributor for cpu %d.%d.%d.%d",
    350   1.1  jmcneill 	    cpu_name(curcpu()), aff3, aff2, aff1, aff0);
    351   1.1  jmcneill }
    352   1.1  jmcneill 
    353   1.1  jmcneill static uint64_t
    354   1.1  jmcneill gicv3_sgir(struct gicv3_softc *sc)
    355   1.1  jmcneill {
    356  1.22     skrll 	const uint64_t cpu_identity = gicv3_cpu_identity();
    357   1.1  jmcneill 
    358   1.1  jmcneill 	const u_int aff0 = __SHIFTOUT(cpu_identity, GICR_TYPER_Affinity_Value_Aff0);
    359   1.1  jmcneill 	const u_int aff1 = __SHIFTOUT(cpu_identity, GICR_TYPER_Affinity_Value_Aff1);
    360   1.1  jmcneill 	const u_int aff2 = __SHIFTOUT(cpu_identity, GICR_TYPER_Affinity_Value_Aff2);
    361   1.1  jmcneill 	const u_int aff3 = __SHIFTOUT(cpu_identity, GICR_TYPER_Affinity_Value_Aff3);
    362   1.1  jmcneill 
    363   1.1  jmcneill 	return __SHIFTIN(__BIT(aff0), ICC_SGIR_EL1_TargetList) |
    364   1.1  jmcneill 	       __SHIFTIN(aff1, ICC_SGIR_EL1_Aff1) |
    365   1.1  jmcneill 	       __SHIFTIN(aff2, ICC_SGIR_EL1_Aff2) |
    366  1.22     skrll 	       __SHIFTIN(aff3, ICC_SGIR_EL1_Aff3);
    367   1.1  jmcneill }
    368   1.1  jmcneill 
    369   1.1  jmcneill static void
    370   1.1  jmcneill gicv3_cpu_init(struct pic_softc *pic, struct cpu_info *ci)
    371   1.1  jmcneill {
    372   1.1  jmcneill 	struct gicv3_softc * const sc = PICTOSOFTC(pic);
    373   1.1  jmcneill 	uint32_t icc_sre, icc_ctlr, gicr_waker;
    374   1.1  jmcneill 
    375  1.33  jmcneill 	evcnt_attach_dynamic(&ci->ci_intr_preempt, EVCNT_TYPE_MISC, NULL,
    376  1.33  jmcneill 	    ci->ci_cpuname, "intr preempt");
    377  1.33  jmcneill 
    378   1.1  jmcneill 	ci->ci_gic_redist = gicv3_find_redist(sc);
    379   1.1  jmcneill 	ci->ci_gic_sgir = gicv3_sgir(sc);
    380   1.1  jmcneill 
    381   1.6  jmcneill 	/* Store route to CPU for SPIs */
    382   1.6  jmcneill 	const uint64_t cpu_identity = gicv3_cpu_identity();
    383   1.6  jmcneill 	const u_int aff0 = __SHIFTOUT(cpu_identity, GICR_TYPER_Affinity_Value_Aff0);
    384   1.6  jmcneill 	const u_int aff1 = __SHIFTOUT(cpu_identity, GICR_TYPER_Affinity_Value_Aff1);
    385   1.6  jmcneill 	const u_int aff2 = __SHIFTOUT(cpu_identity, GICR_TYPER_Affinity_Value_Aff2);
    386   1.6  jmcneill 	const u_int aff3 = __SHIFTOUT(cpu_identity, GICR_TYPER_Affinity_Value_Aff3);
    387   1.6  jmcneill 	sc->sc_irouter[cpu_index(ci)] =
    388   1.6  jmcneill 	    __SHIFTIN(aff0, GICD_IROUTER_Aff0) |
    389   1.6  jmcneill 	    __SHIFTIN(aff1, GICD_IROUTER_Aff1) |
    390   1.6  jmcneill 	    __SHIFTIN(aff2, GICD_IROUTER_Aff2) |
    391   1.6  jmcneill 	    __SHIFTIN(aff3, GICD_IROUTER_Aff3);
    392   1.1  jmcneill 
    393   1.1  jmcneill 	/* Enable System register access and disable IRQ/FIQ bypass */
    394   1.1  jmcneill 	icc_sre = ICC_SRE_EL1_SRE | ICC_SRE_EL1_DFB | ICC_SRE_EL1_DIB;
    395   1.1  jmcneill 	icc_sre_write(icc_sre);
    396   1.1  jmcneill 
    397   1.1  jmcneill 	/* Mark the connected PE as being awake */
    398   1.1  jmcneill 	gicr_waker = gicr_read_4(sc, ci->ci_gic_redist, GICR_WAKER);
    399   1.1  jmcneill 	gicr_waker &= ~GICR_WAKER_ProcessorSleep;
    400   1.1  jmcneill 	gicr_write_4(sc, ci->ci_gic_redist, GICR_WAKER, gicr_waker);
    401   1.1  jmcneill 	while (gicr_read_4(sc, ci->ci_gic_redist, GICR_WAKER) & GICR_WAKER_ChildrenAsleep)
    402   1.1  jmcneill 		;
    403   1.1  jmcneill 
    404   1.1  jmcneill 	/* Set initial priority mask */
    405   1.4  jmcneill 	gicv3_set_priority(pic, IPL_HIGH);
    406   1.1  jmcneill 
    407  1.10  jmcneill 	/* Set the binary point field to the minimum value */
    408  1.10  jmcneill 	icc_bpr1_write(0);
    409   1.1  jmcneill 
    410   1.1  jmcneill 	/* Enable group 1 interrupt signaling */
    411   1.1  jmcneill 	icc_igrpen1_write(ICC_IGRPEN_EL1_Enable);
    412   1.1  jmcneill 
    413   1.1  jmcneill 	/* Set EOI mode */
    414   1.1  jmcneill 	icc_ctlr = icc_ctlr_read();
    415   1.1  jmcneill 	icc_ctlr &= ~ICC_CTLR_EL1_EOImode;
    416   1.1  jmcneill 	icc_ctlr_write(icc_ctlr);
    417   1.1  jmcneill 
    418   1.1  jmcneill 	/* Enable redistributor */
    419   1.1  jmcneill 	gicv3_redist_enable(sc, ci);
    420   1.1  jmcneill 
    421   1.1  jmcneill 	/* Allow IRQ exceptions */
    422   1.1  jmcneill 	cpsie(I32_bit);
    423   1.1  jmcneill }
    424   1.1  jmcneill 
    425   1.1  jmcneill #ifdef MULTIPROCESSOR
    426   1.1  jmcneill static void
    427   1.1  jmcneill gicv3_ipi_send(struct pic_softc *pic, const kcpuset_t *kcp, u_long ipi)
    428   1.1  jmcneill {
    429   1.1  jmcneill 	struct cpu_info *ci;
    430  1.27  jmcneill 	uint64_t sgir;
    431   1.1  jmcneill 
    432  1.27  jmcneill 	sgir = __SHIFTIN(ipi, ICC_SGIR_EL1_INTID);
    433   1.1  jmcneill 	if (kcp == NULL) {
    434   1.1  jmcneill 		/* Interrupts routed to all PEs, excluding "self" */
    435   1.1  jmcneill 		if (ncpu == 1)
    436   1.1  jmcneill 			return;
    437  1.27  jmcneill 		sgir |= ICC_SGIR_EL1_IRM;
    438   1.1  jmcneill 	} else {
    439  1.27  jmcneill 		/* Interrupt to exactly one PE */
    440  1.27  jmcneill 		ci = cpu_lookup(kcpuset_ffs(kcp) - 1);
    441  1.27  jmcneill 		if (ci == curcpu())
    442  1.27  jmcneill 			return;
    443  1.27  jmcneill 		sgir |= ci->ci_gic_sgir;
    444   1.1  jmcneill 	}
    445  1.27  jmcneill 	icc_sgi1r_write(sgir);
    446  1.30  jmcneill 	isb();
    447   1.1  jmcneill }
    448   1.6  jmcneill 
    449   1.6  jmcneill static void
    450   1.6  jmcneill gicv3_get_affinity(struct pic_softc *pic, size_t irq, kcpuset_t *affinity)
    451   1.6  jmcneill {
    452   1.6  jmcneill 	struct gicv3_softc * const sc = PICTOSOFTC(pic);
    453   1.6  jmcneill 	const size_t group = irq / 32;
    454   1.6  jmcneill 	int n;
    455   1.6  jmcneill 
    456   1.6  jmcneill 	kcpuset_zero(affinity);
    457   1.6  jmcneill 	if (group == 0) {
    458   1.6  jmcneill 		/* All CPUs are targets for group 0 (SGI/PPI) */
    459   1.6  jmcneill 		for (n = 0; n < ncpu; n++) {
    460   1.6  jmcneill 			if (sc->sc_irouter[n] != UINT64_MAX)
    461   1.6  jmcneill 				kcpuset_set(affinity, n);
    462   1.6  jmcneill 		}
    463   1.6  jmcneill 	} else {
    464   1.6  jmcneill 		/* Find distributor targets (SPI) */
    465   1.6  jmcneill 		const uint64_t irouter = gicd_read_8(sc, GICD_IROUTER(irq));
    466   1.6  jmcneill 		for (n = 0; n < ncpu; n++) {
    467   1.6  jmcneill 			if (irouter == GICD_IROUTER_Interrupt_Routing_mode ||
    468   1.6  jmcneill 			    irouter == sc->sc_irouter[n])
    469   1.6  jmcneill 				kcpuset_set(affinity, n);
    470   1.6  jmcneill 		}
    471   1.6  jmcneill 	}
    472   1.6  jmcneill }
    473   1.6  jmcneill 
    474   1.6  jmcneill static int
    475   1.6  jmcneill gicv3_set_affinity(struct pic_softc *pic, size_t irq, const kcpuset_t *affinity)
    476   1.6  jmcneill {
    477   1.6  jmcneill 	struct gicv3_softc * const sc = PICTOSOFTC(pic);
    478   1.6  jmcneill 	const size_t group = irq / 32;
    479   1.6  jmcneill 	uint64_t irouter;
    480   1.6  jmcneill 
    481   1.6  jmcneill 	if (group == 0)
    482   1.6  jmcneill 		return EINVAL;
    483   1.6  jmcneill 
    484   1.6  jmcneill 	const int set = kcpuset_countset(affinity);
    485   1.6  jmcneill 	if (set == ncpu)
    486   1.6  jmcneill 		irouter = GICD_IROUTER_Interrupt_Routing_mode;
    487   1.6  jmcneill 	else if (set == 1)
    488  1.12  jmcneill 		irouter = sc->sc_irouter[kcpuset_ffs(affinity) - 1];
    489   1.6  jmcneill 	else
    490   1.6  jmcneill 		return EINVAL;
    491   1.6  jmcneill 
    492   1.6  jmcneill 	gicd_write_8(sc, GICD_IROUTER(irq), irouter);
    493   1.6  jmcneill 
    494   1.6  jmcneill 	return 0;
    495   1.6  jmcneill }
    496   1.1  jmcneill #endif
    497   1.1  jmcneill 
    498   1.1  jmcneill static const struct pic_ops gicv3_picops = {
    499   1.1  jmcneill 	.pic_unblock_irqs = gicv3_unblock_irqs,
    500   1.1  jmcneill 	.pic_block_irqs = gicv3_block_irqs,
    501   1.1  jmcneill 	.pic_establish_irq = gicv3_establish_irq,
    502   1.1  jmcneill 	.pic_set_priority = gicv3_set_priority,
    503   1.1  jmcneill #ifdef MULTIPROCESSOR
    504   1.1  jmcneill 	.pic_cpu_init = gicv3_cpu_init,
    505   1.1  jmcneill 	.pic_ipi_send = gicv3_ipi_send,
    506   1.6  jmcneill 	.pic_get_affinity = gicv3_get_affinity,
    507   1.6  jmcneill 	.pic_set_affinity = gicv3_set_affinity,
    508   1.1  jmcneill #endif
    509   1.1  jmcneill };
    510   1.1  jmcneill 
    511   1.5  jmcneill static void
    512   1.5  jmcneill gicv3_lpi_unblock_irqs(struct pic_softc *pic, size_t irqbase, uint32_t mask)
    513   1.5  jmcneill {
    514   1.5  jmcneill 	struct gicv3_softc * const sc = LPITOSOFTC(pic);
    515   1.5  jmcneill 	int bit;
    516   1.5  jmcneill 
    517   1.5  jmcneill 	while ((bit = ffs(mask)) != 0) {
    518   1.5  jmcneill 		sc->sc_lpiconf.base[irqbase + bit - 1] |= GIC_LPICONF_Enable;
    519  1.20  jmcneill 		if (sc->sc_lpiconf_flush)
    520  1.20  jmcneill 			cpu_dcache_wb_range((vaddr_t)&sc->sc_lpiconf.base[irqbase + bit - 1], 1);
    521   1.5  jmcneill 		mask &= ~__BIT(bit - 1);
    522   1.5  jmcneill 	}
    523   1.5  jmcneill 
    524  1.20  jmcneill 	if (!sc->sc_lpiconf_flush)
    525  1.26     skrll 		dsb(ishst);
    526   1.5  jmcneill }
    527   1.5  jmcneill 
    528   1.5  jmcneill static void
    529   1.5  jmcneill gicv3_lpi_block_irqs(struct pic_softc *pic, size_t irqbase, uint32_t mask)
    530   1.5  jmcneill {
    531   1.5  jmcneill 	struct gicv3_softc * const sc = LPITOSOFTC(pic);
    532   1.5  jmcneill 	int bit;
    533   1.5  jmcneill 
    534   1.5  jmcneill 	while ((bit = ffs(mask)) != 0) {
    535  1.13  jmcneill 		sc->sc_lpiconf.base[irqbase + bit - 1] &= ~GIC_LPICONF_Enable;
    536  1.20  jmcneill 		if (sc->sc_lpiconf_flush)
    537  1.20  jmcneill 			cpu_dcache_wb_range((vaddr_t)&sc->sc_lpiconf.base[irqbase + bit - 1], 1);
    538   1.5  jmcneill 		mask &= ~__BIT(bit - 1);
    539   1.5  jmcneill 	}
    540   1.5  jmcneill 
    541  1.20  jmcneill 	if (!sc->sc_lpiconf_flush)
    542  1.26     skrll 		dsb(ishst);
    543   1.5  jmcneill }
    544   1.5  jmcneill 
    545   1.5  jmcneill static void
    546   1.5  jmcneill gicv3_lpi_establish_irq(struct pic_softc *pic, struct intrsource *is)
    547   1.5  jmcneill {
    548   1.5  jmcneill 	struct gicv3_softc * const sc = LPITOSOFTC(pic);
    549   1.5  jmcneill 
    550  1.35  jmcneill 	sc->sc_lpiconf.base[is->is_irq] = IPL_TO_PRIORITY(sc, is->is_ipl) | GIC_LPICONF_Res1;
    551   1.5  jmcneill 
    552  1.20  jmcneill 	if (sc->sc_lpiconf_flush)
    553  1.20  jmcneill 		cpu_dcache_wb_range((vaddr_t)&sc->sc_lpiconf.base[is->is_irq], 1);
    554  1.20  jmcneill 	else
    555  1.26     skrll 		dsb(ishst);
    556   1.5  jmcneill }
    557   1.5  jmcneill 
    558   1.5  jmcneill static void
    559   1.5  jmcneill gicv3_lpi_cpu_init(struct pic_softc *pic, struct cpu_info *ci)
    560   1.5  jmcneill {
    561   1.5  jmcneill 	struct gicv3_softc * const sc = LPITOSOFTC(pic);
    562   1.7  jmcneill 	struct gicv3_lpi_callback *cb;
    563  1.20  jmcneill 	uint64_t propbase, pendbase;
    564   1.5  jmcneill 	uint32_t ctlr;
    565   1.5  jmcneill 
    566   1.5  jmcneill 	/* If physical LPIs are not supported on this redistributor, just return. */
    567   1.5  jmcneill 	const uint64_t typer = gicr_read_8(sc, ci->ci_gic_redist, GICR_TYPER);
    568   1.5  jmcneill 	if ((typer & GICR_TYPER_PLPIS) == 0)
    569   1.5  jmcneill 		return;
    570   1.5  jmcneill 
    571   1.5  jmcneill 	/* Interrupt target address for this CPU, used by ITS when GITS_TYPER.PTA == 0 */
    572   1.5  jmcneill 	sc->sc_processor_id[cpu_index(ci)] = __SHIFTOUT(typer, GICR_TYPER_Processor_Number);
    573   1.5  jmcneill 
    574   1.5  jmcneill 	/* Disable LPIs before making changes */
    575   1.5  jmcneill 	ctlr = gicr_read_4(sc, ci->ci_gic_redist, GICR_CTLR);
    576   1.5  jmcneill 	ctlr &= ~GICR_CTLR_Enable_LPIs;
    577   1.5  jmcneill 	gicr_write_4(sc, ci->ci_gic_redist, GICR_CTLR, ctlr);
    578  1.26     skrll 	dsb(sy);
    579   1.5  jmcneill 
    580   1.5  jmcneill 	/* Setup the LPI configuration table */
    581  1.20  jmcneill 	propbase = sc->sc_lpiconf.segs[0].ds_addr |
    582   1.5  jmcneill 	    __SHIFTIN(ffs(pic->pic_maxsources) - 1, GICR_PROPBASER_IDbits) |
    583  1.20  jmcneill 	    __SHIFTIN(GICR_Shareability_IS, GICR_PROPBASER_Shareability) |
    584  1.20  jmcneill 	    __SHIFTIN(GICR_Cache_NORMAL_RA_WA_WB, GICR_PROPBASER_InnerCache);
    585   1.5  jmcneill 	gicr_write_8(sc, ci->ci_gic_redist, GICR_PROPBASER, propbase);
    586  1.20  jmcneill 	propbase = gicr_read_8(sc, ci->ci_gic_redist, GICR_PROPBASER);
    587  1.20  jmcneill 	if (__SHIFTOUT(propbase, GICR_PROPBASER_Shareability) != GICR_Shareability_IS) {
    588  1.20  jmcneill 		if (__SHIFTOUT(propbase, GICR_PROPBASER_Shareability) == GICR_Shareability_NS) {
    589  1.20  jmcneill 			propbase &= ~GICR_PROPBASER_Shareability;
    590  1.20  jmcneill 			propbase |= __SHIFTIN(GICR_Shareability_NS, GICR_PROPBASER_Shareability);
    591  1.20  jmcneill 			propbase &= ~GICR_PROPBASER_InnerCache;
    592  1.20  jmcneill 			propbase |= __SHIFTIN(GICR_Cache_NORMAL_NC, GICR_PROPBASER_InnerCache);
    593  1.20  jmcneill 			gicr_write_8(sc, ci->ci_gic_redist, GICR_PROPBASER, propbase);
    594  1.20  jmcneill 		}
    595  1.20  jmcneill 		sc->sc_lpiconf_flush = true;
    596  1.20  jmcneill 	}
    597   1.5  jmcneill 
    598   1.5  jmcneill 	/* Setup the LPI pending table */
    599  1.20  jmcneill 	pendbase = sc->sc_lpipend[cpu_index(ci)].segs[0].ds_addr |
    600  1.20  jmcneill 	    __SHIFTIN(GICR_Shareability_IS, GICR_PENDBASER_Shareability) |
    601  1.20  jmcneill 	    __SHIFTIN(GICR_Cache_NORMAL_RA_WA_WB, GICR_PENDBASER_InnerCache);
    602   1.5  jmcneill 	gicr_write_8(sc, ci->ci_gic_redist, GICR_PENDBASER, pendbase);
    603  1.20  jmcneill 	pendbase = gicr_read_8(sc, ci->ci_gic_redist, GICR_PENDBASER);
    604  1.20  jmcneill 	if (__SHIFTOUT(pendbase, GICR_PENDBASER_Shareability) == GICR_Shareability_NS) {
    605  1.20  jmcneill 		pendbase &= ~GICR_PENDBASER_Shareability;
    606  1.20  jmcneill 		pendbase |= __SHIFTIN(GICR_Shareability_NS, GICR_PENDBASER_Shareability);
    607  1.20  jmcneill 		pendbase &= ~GICR_PENDBASER_InnerCache;
    608  1.20  jmcneill 		pendbase |= __SHIFTIN(GICR_Cache_NORMAL_NC, GICR_PENDBASER_InnerCache);
    609  1.20  jmcneill 		gicr_write_8(sc, ci->ci_gic_redist, GICR_PENDBASER, pendbase);
    610  1.20  jmcneill 	}
    611   1.5  jmcneill 
    612   1.5  jmcneill 	/* Enable LPIs */
    613   1.5  jmcneill 	ctlr = gicr_read_4(sc, ci->ci_gic_redist, GICR_CTLR);
    614   1.5  jmcneill 	ctlr |= GICR_CTLR_Enable_LPIs;
    615   1.5  jmcneill 	gicr_write_4(sc, ci->ci_gic_redist, GICR_CTLR, ctlr);
    616  1.26     skrll 	dsb(sy);
    617   1.5  jmcneill 
    618   1.5  jmcneill 	/* Setup ITS if present */
    619   1.7  jmcneill 	LIST_FOREACH(cb, &sc->sc_lpi_callbacks, list)
    620   1.7  jmcneill 		cb->cpu_init(cb->priv, ci);
    621   1.5  jmcneill }
    622   1.5  jmcneill 
    623   1.7  jmcneill #ifdef MULTIPROCESSOR
    624   1.7  jmcneill static void
    625   1.7  jmcneill gicv3_lpi_get_affinity(struct pic_softc *pic, size_t irq, kcpuset_t *affinity)
    626   1.7  jmcneill {
    627   1.7  jmcneill 	struct gicv3_softc * const sc = LPITOSOFTC(pic);
    628   1.7  jmcneill 	struct gicv3_lpi_callback *cb;
    629   1.7  jmcneill 
    630  1.24  jmcneill 	kcpuset_zero(affinity);
    631   1.7  jmcneill 	LIST_FOREACH(cb, &sc->sc_lpi_callbacks, list)
    632   1.7  jmcneill 		cb->get_affinity(cb->priv, irq, affinity);
    633   1.7  jmcneill }
    634   1.7  jmcneill 
    635   1.7  jmcneill static int
    636   1.7  jmcneill gicv3_lpi_set_affinity(struct pic_softc *pic, size_t irq, const kcpuset_t *affinity)
    637   1.7  jmcneill {
    638   1.7  jmcneill 	struct gicv3_softc * const sc = LPITOSOFTC(pic);
    639   1.7  jmcneill 	struct gicv3_lpi_callback *cb;
    640   1.7  jmcneill 	int error = EINVAL;
    641   1.7  jmcneill 
    642   1.7  jmcneill 	LIST_FOREACH(cb, &sc->sc_lpi_callbacks, list) {
    643   1.7  jmcneill 		error = cb->set_affinity(cb->priv, irq, affinity);
    644  1.24  jmcneill 		if (error != EPASSTHROUGH)
    645   1.7  jmcneill 			return error;
    646   1.7  jmcneill 	}
    647   1.7  jmcneill 
    648  1.24  jmcneill 	return EINVAL;
    649   1.7  jmcneill }
    650   1.7  jmcneill #endif
    651   1.7  jmcneill 
    652   1.5  jmcneill static const struct pic_ops gicv3_lpiops = {
    653   1.5  jmcneill 	.pic_unblock_irqs = gicv3_lpi_unblock_irqs,
    654   1.5  jmcneill 	.pic_block_irqs = gicv3_lpi_block_irqs,
    655   1.5  jmcneill 	.pic_establish_irq = gicv3_lpi_establish_irq,
    656   1.5  jmcneill #ifdef MULTIPROCESSOR
    657   1.5  jmcneill 	.pic_cpu_init = gicv3_lpi_cpu_init,
    658   1.7  jmcneill 	.pic_get_affinity = gicv3_lpi_get_affinity,
    659   1.7  jmcneill 	.pic_set_affinity = gicv3_lpi_set_affinity,
    660   1.5  jmcneill #endif
    661   1.5  jmcneill };
    662   1.5  jmcneill 
    663   1.5  jmcneill void
    664   1.5  jmcneill gicv3_dma_alloc(struct gicv3_softc *sc, struct gicv3_dma *dma, bus_size_t len, bus_size_t align)
    665   1.5  jmcneill {
    666   1.5  jmcneill 	int nsegs, error;
    667   1.5  jmcneill 
    668   1.5  jmcneill 	dma->len = len;
    669   1.5  jmcneill 	error = bus_dmamem_alloc(sc->sc_dmat, dma->len, align, 0, dma->segs, 1, &nsegs, BUS_DMA_WAITOK);
    670   1.5  jmcneill 	if (error)
    671   1.5  jmcneill 		panic("bus_dmamem_alloc failed: %d", error);
    672   1.5  jmcneill 	error = bus_dmamem_map(sc->sc_dmat, dma->segs, nsegs, len, (void **)&dma->base, BUS_DMA_WAITOK);
    673   1.5  jmcneill 	if (error)
    674   1.5  jmcneill 		panic("bus_dmamem_map failed: %d", error);
    675   1.5  jmcneill 	error = bus_dmamap_create(sc->sc_dmat, len, 1, len, 0, BUS_DMA_WAITOK, &dma->map);
    676   1.5  jmcneill 	if (error)
    677   1.5  jmcneill 		panic("bus_dmamap_create failed: %d", error);
    678   1.5  jmcneill 	error = bus_dmamap_load(sc->sc_dmat, dma->map, dma->base, dma->len, NULL, BUS_DMA_WAITOK);
    679   1.5  jmcneill 	if (error)
    680   1.5  jmcneill 		panic("bus_dmamap_load failed: %d", error);
    681   1.5  jmcneill 
    682   1.5  jmcneill 	memset(dma->base, 0, dma->len);
    683   1.5  jmcneill 	bus_dmamap_sync(sc->sc_dmat, dma->map, 0, dma->len, BUS_DMASYNC_PREWRITE);
    684   1.5  jmcneill }
    685   1.5  jmcneill 
    686   1.5  jmcneill static void
    687   1.5  jmcneill gicv3_lpi_init(struct gicv3_softc *sc)
    688   1.5  jmcneill {
    689   1.5  jmcneill 	/*
    690   1.5  jmcneill 	 * Allocate LPI configuration table
    691   1.5  jmcneill 	 */
    692   1.5  jmcneill 	gicv3_dma_alloc(sc, &sc->sc_lpiconf, sc->sc_lpi.pic_maxsources, 0x1000);
    693   1.5  jmcneill 	KASSERT((sc->sc_lpiconf.segs[0].ds_addr & ~GICR_PROPBASER_Physical_Address) == 0);
    694   1.5  jmcneill 
    695   1.5  jmcneill 	/*
    696   1.5  jmcneill 	 * Allocate LPI pending tables
    697   1.5  jmcneill 	 */
    698  1.20  jmcneill 	const bus_size_t lpipend_sz = (8192 + sc->sc_lpi.pic_maxsources) / NBBY;
    699   1.8  jmcneill 	for (int cpuindex = 0; cpuindex < ncpu; cpuindex++) {
    700   1.5  jmcneill 		gicv3_dma_alloc(sc, &sc->sc_lpipend[cpuindex], lpipend_sz, 0x10000);
    701   1.5  jmcneill 		KASSERT((sc->sc_lpipend[cpuindex].segs[0].ds_addr & ~GICR_PENDBASER_Physical_Address) == 0);
    702   1.5  jmcneill 	}
    703   1.5  jmcneill }
    704   1.5  jmcneill 
    705   1.1  jmcneill void
    706   1.1  jmcneill gicv3_irq_handler(void *frame)
    707   1.1  jmcneill {
    708   1.1  jmcneill 	struct cpu_info * const ci = curcpu();
    709   1.1  jmcneill 	struct gicv3_softc * const sc = gicv3_softc;
    710   1.5  jmcneill 	struct pic_softc *pic;
    711   1.1  jmcneill 	const int oldipl = ci->ci_cpl;
    712   1.1  jmcneill 
    713   1.1  jmcneill 	ci->ci_data.cpu_nintr++;
    714   1.1  jmcneill 
    715   1.1  jmcneill 	for (;;) {
    716   1.1  jmcneill 		const uint32_t iar = icc_iar1_read();
    717  1.26     skrll 		dsb(sy);
    718   1.1  jmcneill 		const uint32_t irq = __SHIFTOUT(iar, ICC_IAR_INTID);
    719   1.1  jmcneill 		if (irq == ICC_IAR_INTID_SPURIOUS)
    720   1.1  jmcneill 			break;
    721   1.1  jmcneill 
    722   1.5  jmcneill 		pic = irq >= GIC_LPI_BASE ? &sc->sc_lpi : &sc->sc_pic;
    723   1.5  jmcneill 		if (irq - pic->pic_irqbase >= pic->pic_maxsources)
    724   1.1  jmcneill 			continue;
    725   1.1  jmcneill 
    726   1.5  jmcneill 		struct intrsource * const is = pic->pic_sources[irq - pic->pic_irqbase];
    727   1.1  jmcneill 		KASSERT(is != NULL);
    728   1.1  jmcneill 
    729  1.21  jmcneill 		const bool early_eoi = irq < GIC_LPI_BASE && is->is_type == IST_EDGE;
    730  1.21  jmcneill 
    731   1.1  jmcneill 		const int ipl = is->is_ipl;
    732  1.21  jmcneill 		if (__predict_false(ipl < ci->ci_cpl)) {
    733  1.21  jmcneill 			pic_do_pending_ints(I32_bit, ipl, frame);
    734  1.28  jmcneill 		} else if (ci->ci_cpl != ipl) {
    735  1.21  jmcneill 			gicv3_set_priority(pic, ipl);
    736  1.21  jmcneill 			ci->ci_cpl = ipl;
    737  1.21  jmcneill 		}
    738  1.21  jmcneill 
    739  1.21  jmcneill 		if (early_eoi) {
    740  1.21  jmcneill 			icc_eoi1r_write(iar);
    741  1.26     skrll 			isb();
    742  1.21  jmcneill 		}
    743   1.1  jmcneill 
    744  1.33  jmcneill 		const int64_t nintr = ci->ci_data.cpu_nintr;
    745  1.33  jmcneill 
    746   1.1  jmcneill 		cpsie(I32_bit);
    747   1.1  jmcneill 		pic_dispatch(is, frame);
    748   1.1  jmcneill 		cpsid(I32_bit);
    749   1.1  jmcneill 
    750  1.33  jmcneill 		if (nintr != ci->ci_data.cpu_nintr)
    751  1.33  jmcneill 			ci->ci_intr_preempt.ev_count++;
    752  1.33  jmcneill 
    753  1.21  jmcneill 		if (!early_eoi) {
    754  1.21  jmcneill 			icc_eoi1r_write(iar);
    755  1.26     skrll 			isb();
    756  1.21  jmcneill 		}
    757   1.1  jmcneill 	}
    758   1.1  jmcneill 
    759  1.21  jmcneill 	pic_do_pending_ints(I32_bit, oldipl, frame);
    760   1.1  jmcneill }
    761   1.1  jmcneill 
    762  1.34  jmcneill static bool
    763  1.35  jmcneill gicv3_cpuif_is_nonsecure(struct gicv3_softc *sc)
    764  1.34  jmcneill {
    765  1.35  jmcneill 	/*
    766  1.35  jmcneill 	 * Write 0 to bit7 and see if it sticks. This is only possible if
    767  1.35  jmcneill 	 * we have a non-secure view of the PMR register.
    768  1.35  jmcneill 	 */
    769  1.35  jmcneill 	const uint32_t opmr = icc_pmr_read();
    770  1.35  jmcneill 	icc_pmr_write(0);
    771  1.35  jmcneill 	const uint32_t npmr = icc_pmr_read();
    772  1.35  jmcneill 	icc_pmr_write(opmr);
    773  1.34  jmcneill 
    774  1.35  jmcneill 	return (npmr & GICC_PMR_NONSECURE) == 0;
    775  1.34  jmcneill }
    776  1.34  jmcneill 
    777  1.35  jmcneill static bool
    778  1.35  jmcneill gicv3_dist_is_nonsecure(struct gicv3_softc *sc)
    779  1.19  jmcneill {
    780  1.35  jmcneill 	const uint32_t gicd_ctrl = gicd_read_4(sc, GICD_CTRL);
    781  1.19  jmcneill 
    782  1.35  jmcneill 	/*
    783  1.35  jmcneill 	 * If security is enabled, we have a non-secure view of the IPRIORITYRn
    784  1.35  jmcneill 	 * registers and LPI configuration priority fields.
    785  1.35  jmcneill 	 */
    786  1.35  jmcneill 	return (gicd_ctrl & GICD_CTRL_DS) == 0;
    787  1.19  jmcneill }
    788  1.19  jmcneill 
    789  1.35  jmcneill /*
    790  1.35  jmcneill  * Rockchip RK3399 provides a different view of int priority registers
    791  1.35  jmcneill  * depending on which firmware is in use. This is hard to detect in
    792  1.35  jmcneill  * a way that could possibly break other boards, so only do this
    793  1.35  jmcneill  * detection if we know we are on a RK3399 SoC.
    794  1.35  jmcneill  */
    795  1.35  jmcneill static void
    796  1.35  jmcneill gicv3_quirk_rockchip_rk3399(struct gicv3_softc *sc)
    797  1.19  jmcneill {
    798  1.35  jmcneill 	/* Detect the number of supported PMR bits */
    799  1.35  jmcneill 	icc_pmr_write(0xff);
    800  1.35  jmcneill 	const uint8_t pmrbits = icc_pmr_read();
    801  1.19  jmcneill 
    802  1.35  jmcneill 	/* Detect the number of supported IPRIORITYRn bits */
    803  1.35  jmcneill 	const uint32_t oiprio = gicd_read_4(sc, GICD_IPRIORITYRn(8));
    804  1.35  jmcneill 	gicd_write_4(sc, GICD_IPRIORITYRn(8), oiprio | 0xff);
    805  1.35  jmcneill 	const uint8_t pribits = gicd_read_4(sc, GICD_IPRIORITYRn(8)) & 0xff;
    806  1.35  jmcneill 	gicd_write_4(sc, GICD_IPRIORITYRn(8), oiprio);
    807  1.35  jmcneill 
    808  1.35  jmcneill 	/*
    809  1.35  jmcneill 	 * If we see fewer PMR bits than IPRIORITYRn bits here, it means
    810  1.35  jmcneill 	 * we have a secure view of IPRIORITYRn (this is not supposed to
    811  1.35  jmcneill 	 * happen!).
    812  1.35  jmcneill 	 */
    813  1.35  jmcneill 	if (pmrbits < pribits) {
    814  1.35  jmcneill 		aprint_verbose_dev(sc->sc_dev,
    815  1.35  jmcneill 		    "buggy RK3399 firmware detected; applying workaround\n");
    816  1.35  jmcneill 		sc->sc_priority_shift = GIC_PRIO_SHIFT_S;
    817  1.35  jmcneill 	}
    818  1.19  jmcneill }
    819  1.19  jmcneill 
    820   1.1  jmcneill int
    821   1.1  jmcneill gicv3_init(struct gicv3_softc *sc)
    822   1.1  jmcneill {
    823   1.1  jmcneill 	const uint32_t gicd_typer = gicd_read_4(sc, GICD_TYPER);
    824   1.6  jmcneill 	int n;
    825   1.1  jmcneill 
    826   1.1  jmcneill 	KASSERT(CPU_IS_PRIMARY(curcpu()));
    827   1.1  jmcneill 
    828   1.7  jmcneill 	LIST_INIT(&sc->sc_lpi_callbacks);
    829   1.5  jmcneill 
    830   1.6  jmcneill 	for (n = 0; n < MAXCPUS; n++)
    831   1.6  jmcneill 		sc->sc_irouter[n] = UINT64_MAX;
    832   1.6  jmcneill 
    833  1.35  jmcneill 	/*
    834  1.35  jmcneill 	 * We don't alwayst have a consistent view of priorities between the
    835  1.35  jmcneill 	 * CPU interface (ICC_PMR_EL1) and the GICD/GICR registers. Detect
    836  1.35  jmcneill 	 * if we are making secure or non-secure accesses to each, and adjust
    837  1.35  jmcneill 	 * the values that we write to each accordingly.
    838  1.35  jmcneill 	 */
    839  1.35  jmcneill 	const bool dist_ns = gicv3_dist_is_nonsecure(sc);
    840  1.35  jmcneill 	sc->sc_priority_shift = dist_ns ? GIC_PRIO_SHIFT_NS : GIC_PRIO_SHIFT_S;
    841  1.35  jmcneill 	const bool cpuif_ns = gicv3_cpuif_is_nonsecure(sc);
    842  1.35  jmcneill 	sc->sc_pmr_shift = cpuif_ns ? GIC_PRIO_SHIFT_NS : GIC_PRIO_SHIFT_S;
    843  1.34  jmcneill 
    844  1.35  jmcneill 	if ((sc->sc_quirks & GICV3_QUIRK_RK3399) != 0)
    845  1.35  jmcneill 		gicv3_quirk_rockchip_rk3399(sc);
    846  1.19  jmcneill 
    847  1.34  jmcneill 	aprint_verbose_dev(sc->sc_dev,
    848  1.35  jmcneill 	    "iidr 0x%08x, cpuif %ssecure, dist %ssecure, "
    849  1.35  jmcneill 	    "priority shift %d, pmr shift %d, quirks %#x\n",
    850  1.35  jmcneill 	    gicd_read_4(sc, GICD_IIDR),
    851  1.35  jmcneill 	    cpuif_ns ? "non-" : "",
    852  1.35  jmcneill 	    dist_ns ? "non-" : "",
    853  1.35  jmcneill 	    sc->sc_priority_shift,
    854  1.35  jmcneill 	    sc->sc_pmr_shift,
    855  1.35  jmcneill 	    sc->sc_quirks);
    856  1.18  jmcneill 
    857   1.1  jmcneill 	sc->sc_pic.pic_ops = &gicv3_picops;
    858   1.1  jmcneill 	sc->sc_pic.pic_maxsources = GICD_TYPER_LINES(gicd_typer);
    859   1.1  jmcneill 	snprintf(sc->sc_pic.pic_name, sizeof(sc->sc_pic.pic_name), "gicv3");
    860   1.1  jmcneill #ifdef MULTIPROCESSOR
    861   1.1  jmcneill 	sc->sc_pic.pic_cpus = kcpuset_running;
    862   1.1  jmcneill #endif
    863   1.1  jmcneill 	pic_add(&sc->sc_pic, 0);
    864   1.1  jmcneill 
    865   1.5  jmcneill 	if ((gicd_typer & GICD_TYPER_LPIS) != 0) {
    866   1.5  jmcneill 		sc->sc_lpi.pic_ops = &gicv3_lpiops;
    867   1.5  jmcneill 		sc->sc_lpi.pic_maxsources = 8192;	/* Min. required by GICv3 spec */
    868   1.5  jmcneill 		snprintf(sc->sc_lpi.pic_name, sizeof(sc->sc_lpi.pic_name), "gicv3-lpi");
    869   1.5  jmcneill 		pic_add(&sc->sc_lpi, GIC_LPI_BASE);
    870   1.5  jmcneill 
    871  1.23  jmcneill 		sc->sc_lpi_pool = vmem_create("gicv3-lpi", 0, sc->sc_lpi.pic_maxsources,
    872  1.23  jmcneill 		    1, NULL, NULL, NULL, 0, VM_SLEEP, IPL_HIGH);
    873  1.23  jmcneill 		if (sc->sc_lpi_pool == NULL)
    874  1.23  jmcneill 			panic("failed to create gicv3 lpi pool\n");
    875  1.23  jmcneill 
    876   1.5  jmcneill 		gicv3_lpi_init(sc);
    877   1.5  jmcneill 	}
    878   1.5  jmcneill 
    879   1.1  jmcneill 	KASSERT(gicv3_softc == NULL);
    880   1.1  jmcneill 	gicv3_softc = sc;
    881   1.1  jmcneill 
    882   1.1  jmcneill 	for (int i = 0; i < sc->sc_bsh_r_count; i++) {
    883   1.1  jmcneill 		const uint64_t gicr_typer = gicr_read_8(sc, i, GICR_TYPER);
    884   1.1  jmcneill 		const u_int aff0 = __SHIFTOUT(gicr_typer, GICR_TYPER_Affinity_Value_Aff0);
    885   1.1  jmcneill 		const u_int aff1 = __SHIFTOUT(gicr_typer, GICR_TYPER_Affinity_Value_Aff1);
    886   1.1  jmcneill 		const u_int aff2 = __SHIFTOUT(gicr_typer, GICR_TYPER_Affinity_Value_Aff2);
    887   1.1  jmcneill 		const u_int aff3 = __SHIFTOUT(gicr_typer, GICR_TYPER_Affinity_Value_Aff3);
    888   1.1  jmcneill 
    889   1.1  jmcneill 		aprint_debug_dev(sc->sc_dev, "redist %d: cpu %d.%d.%d.%d\n",
    890   1.1  jmcneill 		    i, aff3, aff2, aff1, aff0);
    891   1.1  jmcneill 	}
    892   1.1  jmcneill 
    893   1.1  jmcneill 	gicv3_dist_enable(sc);
    894   1.1  jmcneill 
    895   1.1  jmcneill 	gicv3_cpu_init(&sc->sc_pic, curcpu());
    896   1.5  jmcneill 	if ((gicd_typer & GICD_TYPER_LPIS) != 0)
    897   1.5  jmcneill 		gicv3_lpi_cpu_init(&sc->sc_lpi, curcpu());
    898   1.1  jmcneill 
    899   1.1  jmcneill #ifdef MULTIPROCESSOR
    900  1.11  jmcneill 	intr_establish_xname(IPI_AST, IPL_VM, IST_MPSAFE | IST_EDGE, pic_ipi_ast, (void *)-1, "IPI ast");
    901  1.11  jmcneill 	intr_establish_xname(IPI_XCALL, IPL_HIGH, IST_MPSAFE | IST_EDGE, pic_ipi_xcall, (void *)-1, "IPI xcall");
    902  1.11  jmcneill 	intr_establish_xname(IPI_GENERIC, IPL_HIGH, IST_MPSAFE | IST_EDGE, pic_ipi_generic, (void *)-1, "IPI generic");
    903  1.11  jmcneill 	intr_establish_xname(IPI_NOP, IPL_VM, IST_MPSAFE | IST_EDGE, pic_ipi_nop, (void *)-1, "IPI nop");
    904  1.11  jmcneill 	intr_establish_xname(IPI_SHOOTDOWN, IPL_SCHED, IST_MPSAFE | IST_EDGE, pic_ipi_shootdown, (void *)-1, "IPI shootdown");
    905   1.1  jmcneill #ifdef DDB
    906  1.11  jmcneill 	intr_establish_xname(IPI_DDB, IPL_HIGH, IST_MPSAFE | IST_EDGE, pic_ipi_ddb, NULL, "IPI ddb");
    907   1.1  jmcneill #endif
    908   1.1  jmcneill #ifdef __HAVE_PREEMPTION
    909  1.11  jmcneill 	intr_establish_xname(IPI_KPREEMPT, IPL_VM, IST_MPSAFE | IST_EDGE, pic_ipi_kpreempt, (void *)-1, "IPI kpreempt");
    910   1.1  jmcneill #endif
    911   1.1  jmcneill #endif
    912   1.1  jmcneill 
    913   1.1  jmcneill 	return 0;
    914   1.1  jmcneill }
    915