xref: /openbmc/qemu/include/hw/intc/arm_gicv3_common.h (revision 3faf2b0cd5451c452fdaab32f9d2fb870b084f80)
1 /*
2  * ARM GIC support
3  *
4  * Copyright (c) 2012 Linaro Limited
5  * Copyright (c) 2015 Huawei.
6  * Copyright (c) 2015 Samsung Electronics Co., Ltd.
7  * Written by Peter Maydell
8  * Reworked for GICv3 by Shlomo Pongratz and Pavel Fedin
9  *
10  * This program is free software; you can redistribute it and/or modify
11  * it under the terms of the GNU General Public License as published by
12  * the Free Software Foundation, either version 2 of the License, or
13  * (at your option) any later version.
14  *
15  * This program is distributed in the hope that it will be useful,
16  * but WITHOUT ANY WARRANTY; without even the implied warranty of
17  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
18  * GNU General Public License for more details.
19  *
20  * You should have received a copy of the GNU General Public License along
21  * with this program; if not, see <http://www.gnu.org/licenses/>.
22  */
23 
24 #ifndef HW_ARM_GICV3_COMMON_H
25 #define HW_ARM_GICV3_COMMON_H
26 
27 #include "hw/sysbus.h"
28 #include "hw/intc/arm_gic_common.h"
29 
30 /*
31  * Maximum number of possible interrupts, determined by the GIC architecture.
32  * Note that this does not include LPIs. When implemented, these should be
33  * dealt with separately.
34  */
35 #define GICV3_MAXIRQ 1020
36 #define GICV3_MAXSPI (GICV3_MAXIRQ - GIC_INTERNAL)
37 
38 /* Minimum BPR for Secure, or when security not enabled */
39 #define GIC_MIN_BPR 0
40 /* Minimum BPR for Nonsecure when security is enabled */
41 #define GIC_MIN_BPR_NS (GIC_MIN_BPR + 1)
42 
43 /* For some distributor fields we want to model the array of 32-bit
44  * register values which hold various bitmaps corresponding to enabled,
45  * pending, etc bits. These macros and functions facilitate that; the
46  * APIs are generally modelled on the generic bitmap.h functions
47  * (which are unsuitable here because they use 'unsigned long' as the
48  * underlying storage type, which is very awkward when you need to
49  * access the data as 32-bit values.)
50  * Each bitmap contains a bit for each interrupt. Although there is
51  * space for the PPIs and SGIs, those bits (the first 32) are never
52  * used as that state lives in the redistributor. The unused bits are
53  * provided purely so that interrupt X's state is always in bit X; this
54  * avoids bugs where we forget to subtract GIC_INTERNAL from an
55  * interrupt number.
56  */
57 #define GICV3_BMP_SIZE (DIV_ROUND_UP(GICV3_MAXIRQ, 32))
58 
59 #define GIC_DECLARE_BITMAP(name) \
60     uint32_t name[GICV3_BMP_SIZE]
61 
62 #define GIC_BIT_MASK(nr) (1U << ((nr) % 32))
63 #define GIC_BIT_WORD(nr) ((nr) / 32)
64 
65 static inline void gic_bmp_set_bit(int nr, uint32_t *addr)
66 {
67     uint32_t mask = GIC_BIT_MASK(nr);
68     uint32_t *p = addr + GIC_BIT_WORD(nr);
69 
70     *p |= mask;
71 }
72 
73 static inline void gic_bmp_clear_bit(int nr, uint32_t *addr)
74 {
75     uint32_t mask = GIC_BIT_MASK(nr);
76     uint32_t *p = addr + GIC_BIT_WORD(nr);
77 
78     *p &= ~mask;
79 }
80 
81 static inline int gic_bmp_test_bit(int nr, const uint32_t *addr)
82 {
83     return 1U & (addr[GIC_BIT_WORD(nr)] >> (nr & 31));
84 }
85 
86 static inline void gic_bmp_replace_bit(int nr, uint32_t *addr, int val)
87 {
88     uint32_t mask = GIC_BIT_MASK(nr);
89     uint32_t *p = addr + GIC_BIT_WORD(nr);
90 
91     *p &= ~mask;
92     *p |= (val & 1U) << (nr % 32);
93 }
94 
95 /* Return a pointer to the 32-bit word containing the specified bit. */
96 static inline uint32_t *gic_bmp_ptr32(uint32_t *addr, int nr)
97 {
98     return addr + GIC_BIT_WORD(nr);
99 }
100 
101 typedef struct GICv3State GICv3State;
102 typedef struct GICv3CPUState GICv3CPUState;
103 
104 /* Some CPU interface registers come in three flavours:
105  * Group0, Group1 (Secure) and Group1 (NonSecure)
106  * (where the latter two are exposed as a single banked system register).
107  * In the state struct they are implemented as a 3-element array which
108  * can be indexed into by the GICV3_G0, GICV3_G1 and GICV3_G1NS constants.
109  * If the CPU doesn't support EL3 then the G1 element is unused.
110  *
111  * These constants are also used to communicate the group to use for
112  * an interrupt or SGI when it is passed between the cpu interface and
113  * the redistributor or distributor. For those purposes the receiving end
114  * must be prepared to cope with a Group 1 Secure interrupt even if it does
115  * not have security support enabled, because security can be disabled
116  * independently in the CPU and in the GIC. In that case the receiver should
117  * treat an incoming Group 1 Secure interrupt as if it were Group 0.
118  * (This architectural requirement is why the _G1 element is the unused one
119  * in a no-EL3 CPU:  we would otherwise have to translate back and forth
120  * between (G0, G1NS) from the distributor and (G0, G1) in the CPU i/f.)
121  */
122 #define GICV3_G0 0
123 #define GICV3_G1 1
124 #define GICV3_G1NS 2
125 
126 /* ICC_CTLR_EL1, GICD_STATUSR and GICR_STATUSR are banked but not
127  * group-related, so those indices are just 0 for S and 1 for NS.
128  * (If the CPU or the GIC, respectively, don't support the Security
129  * extensions then the S element is unused.)
130  */
131 #define GICV3_S 0
132 #define GICV3_NS 1
133 
134 struct GICv3CPUState {
135     GICv3State *gic;
136     CPUState *cpu;
137     qemu_irq parent_irq;
138     qemu_irq parent_fiq;
139 
140     /* Redistributor */
141     uint32_t level;                  /* Current IRQ level */
142     /* RD_base page registers */
143     uint32_t gicr_ctlr;
144     uint64_t gicr_typer;
145     uint32_t gicr_statusr[2];
146     uint32_t gicr_waker;
147     uint64_t gicr_propbaser;
148     uint64_t gicr_pendbaser;
149     /* SGI_base page registers */
150     uint32_t gicr_igroupr0;
151     uint32_t gicr_ienabler0;
152     uint32_t gicr_ipendr0;
153     uint32_t gicr_iactiver0;
154     uint32_t edge_trigger; /* ICFGR0 and ICFGR1 even bits */
155     uint32_t gicr_igrpmodr0;
156     uint32_t gicr_nsacr;
157     uint8_t gicr_ipriorityr[GIC_INTERNAL];
158 
159     /* CPU interface */
160     uint64_t icc_ctlr_el1[2];
161     uint64_t icc_pmr_el1;
162     uint64_t icc_bpr[3];
163     uint64_t icc_apr[3][4];
164     uint64_t icc_igrpen[3];
165     uint64_t icc_ctlr_el3;
166 };
167 
168 struct GICv3State {
169     /*< private >*/
170     SysBusDevice parent_obj;
171     /*< public >*/
172 
173     MemoryRegion iomem_dist; /* Distributor */
174     MemoryRegion iomem_redist; /* Redistributors */
175 
176     uint32_t num_cpu;
177     uint32_t num_irq;
178     uint32_t revision;
179     bool security_extn;
180     bool irq_reset_nonsecure;
181 
182     int dev_fd; /* kvm device fd if backed by kvm vgic support */
183     Error *migration_blocker;
184 
185     /* Distributor */
186 
187     /* for a GIC with the security extensions the NS banked version of this
188      * register is just an alias of bit 1 of the S banked version.
189      */
190     uint32_t gicd_ctlr;
191     uint32_t gicd_statusr[2];
192     GIC_DECLARE_BITMAP(group);        /* GICD_IGROUPR */
193     GIC_DECLARE_BITMAP(grpmod);       /* GICD_IGRPMODR */
194     GIC_DECLARE_BITMAP(enabled);      /* GICD_ISENABLER */
195     GIC_DECLARE_BITMAP(pending);      /* GICD_ISPENDR */
196     GIC_DECLARE_BITMAP(active);       /* GICD_ISACTIVER */
197     GIC_DECLARE_BITMAP(level);        /* Current level */
198     GIC_DECLARE_BITMAP(edge_trigger); /* GICD_ICFGR even bits */
199     uint8_t gicd_ipriority[GICV3_MAXIRQ];
200     uint64_t gicd_irouter[GICV3_MAXIRQ];
201     uint32_t gicd_nsacr[DIV_ROUND_UP(GICV3_MAXIRQ, 16)];
202 
203     GICv3CPUState *cpu;
204 };
205 
206 #define GICV3_BITMAP_ACCESSORS(BMP)                                     \
207     static inline void gicv3_gicd_##BMP##_set(GICv3State *s, int irq)   \
208     {                                                                   \
209         gic_bmp_set_bit(irq, s->BMP);                                   \
210     }                                                                   \
211     static inline int gicv3_gicd_##BMP##_test(GICv3State *s, int irq)   \
212     {                                                                   \
213         return gic_bmp_test_bit(irq, s->BMP);                           \
214     }                                                                   \
215     static inline void gicv3_gicd_##BMP##_clear(GICv3State *s, int irq) \
216     {                                                                   \
217         gic_bmp_clear_bit(irq, s->BMP);                                 \
218     }                                                                   \
219     static inline void gicv3_gicd_##BMP##_replace(GICv3State *s,        \
220                                                   int irq, int value)   \
221     {                                                                   \
222         gic_bmp_replace_bit(irq, s->BMP, value);                        \
223     }
224 
225 GICV3_BITMAP_ACCESSORS(group)
226 GICV3_BITMAP_ACCESSORS(grpmod)
227 GICV3_BITMAP_ACCESSORS(enabled)
228 GICV3_BITMAP_ACCESSORS(pending)
229 GICV3_BITMAP_ACCESSORS(active)
230 GICV3_BITMAP_ACCESSORS(level)
231 GICV3_BITMAP_ACCESSORS(edge_trigger)
232 
233 #define TYPE_ARM_GICV3_COMMON "arm-gicv3-common"
234 #define ARM_GICV3_COMMON(obj) \
235      OBJECT_CHECK(GICv3State, (obj), TYPE_ARM_GICV3_COMMON)
236 #define ARM_GICV3_COMMON_CLASS(klass) \
237      OBJECT_CLASS_CHECK(ARMGICv3CommonClass, (klass), TYPE_ARM_GICV3_COMMON)
238 #define ARM_GICV3_COMMON_GET_CLASS(obj) \
239      OBJECT_GET_CLASS(ARMGICv3CommonClass, (obj), TYPE_ARM_GICV3_COMMON)
240 
241 typedef struct ARMGICv3CommonClass {
242     /*< private >*/
243     SysBusDeviceClass parent_class;
244     /*< public >*/
245 
246     void (*pre_save)(GICv3State *s);
247     void (*post_load)(GICv3State *s);
248 } ARMGICv3CommonClass;
249 
250 void gicv3_init_irqs_and_mmio(GICv3State *s, qemu_irq_handler handler,
251                               const MemoryRegionOps *ops);
252 
253 #endif
254