1f19dc624Sjohpow01 /* 220e2683dSAlexeiFedorov * Copyright (c) 2022-2024, Arm Limited. All rights reserved. 3f19dc624Sjohpow01 * 4f19dc624Sjohpow01 * SPDX-License-Identifier: BSD-3-Clause 5f19dc624Sjohpow01 */ 6f19dc624Sjohpow01 7f19dc624Sjohpow01 #include <assert.h> 8f19dc624Sjohpow01 #include <errno.h> 92461bd3aSManish Pandey #include <inttypes.h> 10f19dc624Sjohpow01 #include <limits.h> 11f19dc624Sjohpow01 #include <stdint.h> 12f19dc624Sjohpow01 13f19dc624Sjohpow01 #include <arch.h> 1462d64652SOlivier Deprez #include <arch_features.h> 15f19dc624Sjohpow01 #include <arch_helpers.h> 16f19dc624Sjohpow01 #include <common/debug.h> 17f19dc624Sjohpow01 #include "gpt_rme_private.h" 18f19dc624Sjohpow01 #include <lib/gpt_rme/gpt_rme.h> 19f19dc624Sjohpow01 #include <lib/smccc.h> 20f19dc624Sjohpow01 #include <lib/spinlock.h> 21f19dc624Sjohpow01 #include <lib/xlat_tables/xlat_tables_v2.h> 22f19dc624Sjohpow01 23f19dc624Sjohpow01 #if !ENABLE_RME 24b99926efSAlexeiFedorov #error "ENABLE_RME must be enabled to use the GPT library" 25f19dc624Sjohpow01 #endif 26f19dc624Sjohpow01 27f19dc624Sjohpow01 /* 28f19dc624Sjohpow01 * Lookup T from PPS 29f19dc624Sjohpow01 * 30f19dc624Sjohpow01 * PPS Size T 31f19dc624Sjohpow01 * 0b000 4GB 32 32f19dc624Sjohpow01 * 0b001 64GB 36 33f19dc624Sjohpow01 * 0b010 1TB 40 34f19dc624Sjohpow01 * 0b011 4TB 42 35f19dc624Sjohpow01 * 0b100 16TB 44 36f19dc624Sjohpow01 * 0b101 256TB 48 37f19dc624Sjohpow01 * 0b110 4PB 52 38f19dc624Sjohpow01 * 39f19dc624Sjohpow01 * See section 15.1.27 of the RME specification. 40f19dc624Sjohpow01 */ 41f19dc624Sjohpow01 static const gpt_t_val_e gpt_t_lookup[] = {PPS_4GB_T, PPS_64GB_T, 42f19dc624Sjohpow01 PPS_1TB_T, PPS_4TB_T, 43f19dc624Sjohpow01 PPS_16TB_T, PPS_256TB_T, 44f19dc624Sjohpow01 PPS_4PB_T}; 45f19dc624Sjohpow01 46f19dc624Sjohpow01 /* 47f19dc624Sjohpow01 * Lookup P from PGS 48f19dc624Sjohpow01 * 49f19dc624Sjohpow01 * PGS Size P 50f19dc624Sjohpow01 * 0b00 4KB 12 51f19dc624Sjohpow01 * 0b10 16KB 14 52f19dc624Sjohpow01 * 0b01 64KB 16 53f19dc624Sjohpow01 * 54f19dc624Sjohpow01 * Note that pgs=0b10 is 16KB and pgs=0b01 is 64KB, this is not a typo. 55f19dc624Sjohpow01 * 56f19dc624Sjohpow01 * See section 15.1.27 of the RME specification. 57f19dc624Sjohpow01 */ 58f19dc624Sjohpow01 static const gpt_p_val_e gpt_p_lookup[] = {PGS_4KB_P, PGS_64KB_P, PGS_16KB_P}; 59f19dc624Sjohpow01 60ec0088bbSAlexeiFedorov static void shatter_2mb(uintptr_t base, const gpi_info_t *gpi_info, 61ec0088bbSAlexeiFedorov uint64_t l1_desc); 62ec0088bbSAlexeiFedorov static void shatter_32mb(uintptr_t base, const gpi_info_t *gpi_info, 63ec0088bbSAlexeiFedorov uint64_t l1_desc); 64ec0088bbSAlexeiFedorov static void shatter_512mb(uintptr_t base, const gpi_info_t *gpi_info, 65ec0088bbSAlexeiFedorov uint64_t l1_desc); 66ec0088bbSAlexeiFedorov 67f19dc624Sjohpow01 /* 68b99926efSAlexeiFedorov * This structure contains GPT configuration data 69f19dc624Sjohpow01 */ 70f19dc624Sjohpow01 typedef struct { 71f19dc624Sjohpow01 uintptr_t plat_gpt_l0_base; 72f19dc624Sjohpow01 gpccr_pps_e pps; 73f19dc624Sjohpow01 gpt_t_val_e t; 74f19dc624Sjohpow01 gpccr_pgs_e pgs; 75f19dc624Sjohpow01 gpt_p_val_e p; 76f19dc624Sjohpow01 } gpt_config_t; 77f19dc624Sjohpow01 78f19dc624Sjohpow01 static gpt_config_t gpt_config; 79f19dc624Sjohpow01 80ec0088bbSAlexeiFedorov /* 81ec0088bbSAlexeiFedorov * Number of L1 entries in 2MB, depending on GPCCR_EL3.PGS: 82ec0088bbSAlexeiFedorov * +-------+------------+ 83ec0088bbSAlexeiFedorov * | PGS | L1 entries | 84ec0088bbSAlexeiFedorov * +-------+------------+ 85ec0088bbSAlexeiFedorov * | 4KB | 32 | 86ec0088bbSAlexeiFedorov * +-------+------------+ 87ec0088bbSAlexeiFedorov * | 16KB | 8 | 88ec0088bbSAlexeiFedorov * +-------+------------+ 89ec0088bbSAlexeiFedorov * | 64KB | 2 | 90ec0088bbSAlexeiFedorov * +-------+------------+ 91ec0088bbSAlexeiFedorov */ 92ec0088bbSAlexeiFedorov static unsigned int gpt_l1_cnt_2mb; 93ec0088bbSAlexeiFedorov 94ec0088bbSAlexeiFedorov /* 95ec0088bbSAlexeiFedorov * Mask for the L1 index field, depending on 96ec0088bbSAlexeiFedorov * GPCCR_EL3.L0GPTSZ and GPCCR_EL3.PGS: 97ec0088bbSAlexeiFedorov * +---------+-------------------------------+ 98ec0088bbSAlexeiFedorov * | | PGS | 99ec0088bbSAlexeiFedorov * +---------+----------+----------+---------+ 100ec0088bbSAlexeiFedorov * | L0GPTSZ | 4KB | 16KB | 64KB | 101ec0088bbSAlexeiFedorov * +---------+----------+----------+---------+ 102ec0088bbSAlexeiFedorov * | 1GB | 0x3FFF | 0xFFF | 0x3FF | 103ec0088bbSAlexeiFedorov * +---------+----------+----------+---------+ 104ec0088bbSAlexeiFedorov * | 16GB | 0x3FFFF | 0xFFFF | 0x3FFF | 105ec0088bbSAlexeiFedorov * +---------+----------+----------+---------+ 106ec0088bbSAlexeiFedorov * | 64GB | 0xFFFFF | 0x3FFFF | 0xFFFF | 107ec0088bbSAlexeiFedorov * +---------+----------+----------+---------+ 108ec0088bbSAlexeiFedorov * | 512GB | 0x7FFFFF | 0x1FFFFF | 0x7FFFF | 109ec0088bbSAlexeiFedorov * +---------+----------+----------+---------+ 110ec0088bbSAlexeiFedorov */ 111ec0088bbSAlexeiFedorov static uint64_t gpt_l1_index_mask; 112ec0088bbSAlexeiFedorov 113ec0088bbSAlexeiFedorov /* Number of 128-bit L1 entries in 2MB, 32MB and 512MB */ 114ec0088bbSAlexeiFedorov #define L1_QWORDS_2MB (gpt_l1_cnt_2mb / 2U) 115ec0088bbSAlexeiFedorov #define L1_QWORDS_32MB (L1_QWORDS_2MB * 16U) 116ec0088bbSAlexeiFedorov #define L1_QWORDS_512MB (L1_QWORDS_32MB * 16U) 117ec0088bbSAlexeiFedorov 118ec0088bbSAlexeiFedorov /* Size in bytes of L1 entries in 2MB, 32MB */ 119ec0088bbSAlexeiFedorov #define L1_BYTES_2MB (gpt_l1_cnt_2mb * sizeof(uint64_t)) 120ec0088bbSAlexeiFedorov #define L1_BYTES_32MB (L1_BYTES_2MB * 16U) 121ec0088bbSAlexeiFedorov 122ec0088bbSAlexeiFedorov /* Get the index into the L1 table from a physical address */ 123ec0088bbSAlexeiFedorov #define GPT_L1_INDEX(_pa) \ 124ec0088bbSAlexeiFedorov (((_pa) >> (unsigned int)GPT_L1_IDX_SHIFT(gpt_config.p)) & gpt_l1_index_mask) 125ec0088bbSAlexeiFedorov 126b99926efSAlexeiFedorov /* These variables are used during initialization of the L1 tables */ 127f19dc624Sjohpow01 static uintptr_t gpt_l1_tbl; 128f19dc624Sjohpow01 129ec0088bbSAlexeiFedorov /* These variable is used during runtime */ 130d766084fSAlexeiFedorov #if (RME_GPT_BITLOCK_BLOCK == 0) 131d766084fSAlexeiFedorov /* 132d766084fSAlexeiFedorov * The GPTs are protected by a global spinlock to ensure 133d766084fSAlexeiFedorov * that multiple CPUs do not attempt to change the descriptors at once. 134d766084fSAlexeiFedorov */ 135d766084fSAlexeiFedorov static spinlock_t gpt_lock; 136d766084fSAlexeiFedorov #else 137ec0088bbSAlexeiFedorov 138d766084fSAlexeiFedorov /* Bitlocks base address */ 139ec0088bbSAlexeiFedorov static bitlock_t *gpt_bitlock_base; 140d766084fSAlexeiFedorov #endif 141d766084fSAlexeiFedorov 142d766084fSAlexeiFedorov /* Lock/unlock macros for GPT entries */ 143d766084fSAlexeiFedorov #if (RME_GPT_BITLOCK_BLOCK == 0) 144d766084fSAlexeiFedorov /* 145d766084fSAlexeiFedorov * Access to GPT is controlled by a global lock to ensure 146d766084fSAlexeiFedorov * that no more than one CPU is allowed to make changes at any 147d766084fSAlexeiFedorov * given time. 148d766084fSAlexeiFedorov */ 149d766084fSAlexeiFedorov #define GPT_LOCK spin_lock(&gpt_lock) 150d766084fSAlexeiFedorov #define GPT_UNLOCK spin_unlock(&gpt_lock) 151d766084fSAlexeiFedorov #else 152d766084fSAlexeiFedorov /* 153d766084fSAlexeiFedorov * Access to a block of memory is controlled by a bitlock. 154d766084fSAlexeiFedorov * Size of block = RME_GPT_BITLOCK_BLOCK * 512MB. 155d766084fSAlexeiFedorov */ 156d766084fSAlexeiFedorov #define GPT_LOCK bit_lock(gpi_info.lock, gpi_info.mask) 157d766084fSAlexeiFedorov #define GPT_UNLOCK bit_unlock(gpi_info.lock, gpi_info.mask) 158d766084fSAlexeiFedorov #endif 159ec0088bbSAlexeiFedorov 160ec0088bbSAlexeiFedorov static void tlbi_page_dsbosh(uintptr_t base) 161ec0088bbSAlexeiFedorov { 162ec0088bbSAlexeiFedorov /* Look-up table for invalidation TLBs for 4KB, 16KB and 64KB pages */ 163ec0088bbSAlexeiFedorov static const gpt_tlbi_lookup_t tlbi_page_lookup[] = { 164ec0088bbSAlexeiFedorov { tlbirpalos_4k, ~(SZ_4K - 1UL) }, 165ec0088bbSAlexeiFedorov { tlbirpalos_64k, ~(SZ_64K - 1UL) }, 166ec0088bbSAlexeiFedorov { tlbirpalos_16k, ~(SZ_16K - 1UL) } 167ec0088bbSAlexeiFedorov }; 168ec0088bbSAlexeiFedorov 169ec0088bbSAlexeiFedorov tlbi_page_lookup[gpt_config.pgs].function( 170ec0088bbSAlexeiFedorov base & tlbi_page_lookup[gpt_config.pgs].mask); 171ec0088bbSAlexeiFedorov dsbosh(); 172ec0088bbSAlexeiFedorov } 173ec0088bbSAlexeiFedorov 174ec0088bbSAlexeiFedorov /* 175ec0088bbSAlexeiFedorov * Helper function to fill out GPI entries in a single L1 table 176ec0088bbSAlexeiFedorov * with Granules or Contiguous descriptor. 177ec0088bbSAlexeiFedorov * 178ec0088bbSAlexeiFedorov * Parameters 179ec0088bbSAlexeiFedorov * l1 Pointer to 2MB, 32MB or 512MB aligned L1 table entry to fill out 180ec0088bbSAlexeiFedorov * l1_desc GPT Granules or Contiguous descriptor set this range to 181ec0088bbSAlexeiFedorov * cnt Number of double 128-bit L1 entries to fill 182ec0088bbSAlexeiFedorov * 183ec0088bbSAlexeiFedorov */ 184ec0088bbSAlexeiFedorov static void fill_desc(uint64_t *l1, uint64_t l1_desc, unsigned int cnt) 185ec0088bbSAlexeiFedorov { 186ec0088bbSAlexeiFedorov uint128_t *l1_quad = (uint128_t *)l1; 187ec0088bbSAlexeiFedorov uint128_t l1_quad_desc = (uint128_t)l1_desc | ((uint128_t)l1_desc << 64); 188ec0088bbSAlexeiFedorov 189ec0088bbSAlexeiFedorov VERBOSE("GPT: %s(%p 0x%"PRIx64" %u)\n", __func__, l1, l1_desc, cnt); 190ec0088bbSAlexeiFedorov 191ec0088bbSAlexeiFedorov for (unsigned int i = 0U; i < cnt; i++) { 192ec0088bbSAlexeiFedorov *l1_quad++ = l1_quad_desc; 193ec0088bbSAlexeiFedorov } 194ec0088bbSAlexeiFedorov } 195ec0088bbSAlexeiFedorov 196ec0088bbSAlexeiFedorov static void shatter_2mb(uintptr_t base, const gpi_info_t *gpi_info, 197ec0088bbSAlexeiFedorov uint64_t l1_desc) 198ec0088bbSAlexeiFedorov { 199ec0088bbSAlexeiFedorov unsigned long idx = GPT_L1_INDEX(ALIGN_2MB(base)); 200ec0088bbSAlexeiFedorov 201ec0088bbSAlexeiFedorov VERBOSE("GPT: %s(0x%"PRIxPTR" 0x%"PRIx64")\n", 202ec0088bbSAlexeiFedorov __func__, base, l1_desc); 203ec0088bbSAlexeiFedorov 204ec0088bbSAlexeiFedorov /* Convert 2MB Contiguous block to Granules */ 205ec0088bbSAlexeiFedorov fill_desc(&gpi_info->gpt_l1_addr[idx], l1_desc, L1_QWORDS_2MB); 206ec0088bbSAlexeiFedorov } 207ec0088bbSAlexeiFedorov 208ec0088bbSAlexeiFedorov static void shatter_32mb(uintptr_t base, const gpi_info_t *gpi_info, 209ec0088bbSAlexeiFedorov uint64_t l1_desc) 210ec0088bbSAlexeiFedorov { 211ec0088bbSAlexeiFedorov unsigned long idx = GPT_L1_INDEX(ALIGN_2MB(base)); 212ec0088bbSAlexeiFedorov const uint64_t *l1_gran = &gpi_info->gpt_l1_addr[idx]; 213ec0088bbSAlexeiFedorov uint64_t l1_cont_desc = GPT_L1_CONT_DESC(l1_desc, 2MB); 214ec0088bbSAlexeiFedorov uint64_t *l1; 215ec0088bbSAlexeiFedorov 216ec0088bbSAlexeiFedorov VERBOSE("GPT: %s(0x%"PRIxPTR" 0x%"PRIx64")\n", 217ec0088bbSAlexeiFedorov __func__, base, l1_desc); 218ec0088bbSAlexeiFedorov 219ec0088bbSAlexeiFedorov /* Get index corresponding to 32MB aligned address */ 220ec0088bbSAlexeiFedorov idx = GPT_L1_INDEX(ALIGN_32MB(base)); 221ec0088bbSAlexeiFedorov l1 = &gpi_info->gpt_l1_addr[idx]; 222ec0088bbSAlexeiFedorov 223ec0088bbSAlexeiFedorov /* 16 x 2MB blocks in 32MB */ 224ec0088bbSAlexeiFedorov for (unsigned int i = 0U; i < 16U; i++) { 225ec0088bbSAlexeiFedorov /* Fill with Granules or Contiguous descriptors */ 226ec0088bbSAlexeiFedorov fill_desc(l1, (l1 == l1_gran) ? l1_desc : l1_cont_desc, 227ec0088bbSAlexeiFedorov L1_QWORDS_2MB); 228ec0088bbSAlexeiFedorov l1 = (uint64_t *)((uintptr_t)l1 + L1_BYTES_2MB); 229ec0088bbSAlexeiFedorov } 230ec0088bbSAlexeiFedorov } 231ec0088bbSAlexeiFedorov 232ec0088bbSAlexeiFedorov static void shatter_512mb(uintptr_t base, const gpi_info_t *gpi_info, 233ec0088bbSAlexeiFedorov uint64_t l1_desc) 234ec0088bbSAlexeiFedorov { 235ec0088bbSAlexeiFedorov unsigned long idx = GPT_L1_INDEX(ALIGN_32MB(base)); 236ec0088bbSAlexeiFedorov const uint64_t *l1_32mb = &gpi_info->gpt_l1_addr[idx]; 237ec0088bbSAlexeiFedorov uint64_t l1_cont_desc = GPT_L1_CONT_DESC(l1_desc, 32MB); 238ec0088bbSAlexeiFedorov uint64_t *l1; 239ec0088bbSAlexeiFedorov 240ec0088bbSAlexeiFedorov VERBOSE("GPT: %s(0x%"PRIxPTR" 0x%"PRIx64")\n", 241ec0088bbSAlexeiFedorov __func__, base, l1_desc); 242ec0088bbSAlexeiFedorov 243ec0088bbSAlexeiFedorov /* Get index corresponding to 512MB aligned address */ 244ec0088bbSAlexeiFedorov idx = GPT_L1_INDEX(ALIGN_512MB(base)); 245ec0088bbSAlexeiFedorov l1 = &gpi_info->gpt_l1_addr[idx]; 246ec0088bbSAlexeiFedorov 247ec0088bbSAlexeiFedorov /* 16 x 32MB blocks in 512MB */ 248ec0088bbSAlexeiFedorov for (unsigned int i = 0U; i < 16U; i++) { 249ec0088bbSAlexeiFedorov if (l1 == l1_32mb) { 250ec0088bbSAlexeiFedorov /* Shatter this 32MB block */ 251ec0088bbSAlexeiFedorov shatter_32mb(base, gpi_info, l1_desc); 252ec0088bbSAlexeiFedorov } else { 253ec0088bbSAlexeiFedorov /* Fill 32MB with Contiguous descriptors */ 254ec0088bbSAlexeiFedorov fill_desc(l1, l1_cont_desc, L1_QWORDS_32MB); 255ec0088bbSAlexeiFedorov } 256ec0088bbSAlexeiFedorov 257ec0088bbSAlexeiFedorov l1 = (uint64_t *)((uintptr_t)l1 + L1_BYTES_32MB); 258ec0088bbSAlexeiFedorov } 259ec0088bbSAlexeiFedorov } 260ec0088bbSAlexeiFedorov 261f19dc624Sjohpow01 /* 262f19dc624Sjohpow01 * This function checks to see if a GPI value is valid. 263f19dc624Sjohpow01 * 264f19dc624Sjohpow01 * These are valid GPI values. 265f19dc624Sjohpow01 * GPT_GPI_NO_ACCESS U(0x0) 266f19dc624Sjohpow01 * GPT_GPI_SECURE U(0x8) 267f19dc624Sjohpow01 * GPT_GPI_NS U(0x9) 268f19dc624Sjohpow01 * GPT_GPI_ROOT U(0xA) 269f19dc624Sjohpow01 * GPT_GPI_REALM U(0xB) 270f19dc624Sjohpow01 * GPT_GPI_ANY U(0xF) 271f19dc624Sjohpow01 * 272f19dc624Sjohpow01 * Parameters 273f19dc624Sjohpow01 * gpi GPI to check for validity. 274f19dc624Sjohpow01 * 275f19dc624Sjohpow01 * Return 276f19dc624Sjohpow01 * true for a valid GPI, false for an invalid one. 277f19dc624Sjohpow01 */ 27820e2683dSAlexeiFedorov static bool is_gpi_valid(unsigned int gpi) 279f19dc624Sjohpow01 { 280f19dc624Sjohpow01 if ((gpi == GPT_GPI_NO_ACCESS) || (gpi == GPT_GPI_ANY) || 281f19dc624Sjohpow01 ((gpi >= GPT_GPI_SECURE) && (gpi <= GPT_GPI_REALM))) { 282f19dc624Sjohpow01 return true; 283f19dc624Sjohpow01 } 2846a00e9b0SRobert Wakim return false; 285f19dc624Sjohpow01 } 286f19dc624Sjohpow01 287f19dc624Sjohpow01 /* 288f19dc624Sjohpow01 * This function checks to see if two PAS regions overlap. 289f19dc624Sjohpow01 * 290f19dc624Sjohpow01 * Parameters 291f19dc624Sjohpow01 * base_1: base address of first PAS 292f19dc624Sjohpow01 * size_1: size of first PAS 293f19dc624Sjohpow01 * base_2: base address of second PAS 294f19dc624Sjohpow01 * size_2: size of second PAS 295f19dc624Sjohpow01 * 296f19dc624Sjohpow01 * Return 297f19dc624Sjohpow01 * True if PAS regions overlap, false if they do not. 298f19dc624Sjohpow01 */ 29920e2683dSAlexeiFedorov static bool check_pas_overlap(uintptr_t base_1, size_t size_1, 300f19dc624Sjohpow01 uintptr_t base_2, size_t size_2) 301f19dc624Sjohpow01 { 302f19dc624Sjohpow01 if (((base_1 + size_1) > base_2) && ((base_2 + size_2) > base_1)) { 303f19dc624Sjohpow01 return true; 304f19dc624Sjohpow01 } 3056a00e9b0SRobert Wakim return false; 306f19dc624Sjohpow01 } 307f19dc624Sjohpow01 308f19dc624Sjohpow01 /* 309f19dc624Sjohpow01 * This helper function checks to see if a PAS region from index 0 to 310f19dc624Sjohpow01 * (pas_idx - 1) occupies the L0 region at index l0_idx in the L0 table. 311f19dc624Sjohpow01 * 312f19dc624Sjohpow01 * Parameters 313f19dc624Sjohpow01 * l0_idx: Index of the L0 entry to check 314f19dc624Sjohpow01 * pas_regions: PAS region array 315f19dc624Sjohpow01 * pas_idx: Upper bound of the PAS array index. 316f19dc624Sjohpow01 * 317f19dc624Sjohpow01 * Return 318f19dc624Sjohpow01 * True if a PAS region occupies the L0 region in question, false if not. 319f19dc624Sjohpow01 */ 32020e2683dSAlexeiFedorov static bool does_previous_pas_exist_here(unsigned int l0_idx, 321f19dc624Sjohpow01 pas_region_t *pas_regions, 322f19dc624Sjohpow01 unsigned int pas_idx) 323f19dc624Sjohpow01 { 324b99926efSAlexeiFedorov /* Iterate over PAS regions up to pas_idx */ 325f19dc624Sjohpow01 for (unsigned int i = 0U; i < pas_idx; i++) { 32620e2683dSAlexeiFedorov if (check_pas_overlap((GPT_L0GPTSZ_ACTUAL_SIZE * l0_idx), 327f19dc624Sjohpow01 GPT_L0GPTSZ_ACTUAL_SIZE, 328f19dc624Sjohpow01 pas_regions[i].base_pa, pas_regions[i].size)) { 329f19dc624Sjohpow01 return true; 330f19dc624Sjohpow01 } 331f19dc624Sjohpow01 } 332f19dc624Sjohpow01 return false; 333f19dc624Sjohpow01 } 334f19dc624Sjohpow01 335f19dc624Sjohpow01 /* 336f19dc624Sjohpow01 * This function iterates over all of the PAS regions and checks them to ensure 337f19dc624Sjohpow01 * proper alignment of base and size, that the GPI is valid, and that no regions 338f19dc624Sjohpow01 * overlap. As a part of the overlap checks, this function checks existing L0 339f19dc624Sjohpow01 * mappings against the new PAS regions in the event that gpt_init_pas_l1_tables 340f19dc624Sjohpow01 * is called multiple times to place L1 tables in different areas of memory. It 341f19dc624Sjohpow01 * also counts the number of L1 tables needed and returns it on success. 342f19dc624Sjohpow01 * 343f19dc624Sjohpow01 * Parameters 344f19dc624Sjohpow01 * *pas_regions Pointer to array of PAS region structures. 345f19dc624Sjohpow01 * pas_region_cnt Total number of PAS regions in the array. 346f19dc624Sjohpow01 * 347f19dc624Sjohpow01 * Return 348f19dc624Sjohpow01 * Negative Linux error code in the event of a failure, number of L1 regions 349f19dc624Sjohpow01 * required when successful. 350f19dc624Sjohpow01 */ 35120e2683dSAlexeiFedorov static int validate_pas_mappings(pas_region_t *pas_regions, 352f19dc624Sjohpow01 unsigned int pas_region_cnt) 353f19dc624Sjohpow01 { 354f19dc624Sjohpow01 unsigned int idx; 355f19dc624Sjohpow01 unsigned int l1_cnt = 0U; 356f19dc624Sjohpow01 unsigned int pas_l1_cnt; 357f19dc624Sjohpow01 uint64_t *l0_desc = (uint64_t *)gpt_config.plat_gpt_l0_base; 358f19dc624Sjohpow01 359f19dc624Sjohpow01 assert(pas_regions != NULL); 360f19dc624Sjohpow01 assert(pas_region_cnt != 0U); 361f19dc624Sjohpow01 362f19dc624Sjohpow01 for (idx = 0U; idx < pas_region_cnt; idx++) { 363b99926efSAlexeiFedorov /* Check for arithmetic overflow in region */ 364f19dc624Sjohpow01 if ((ULONG_MAX - pas_regions[idx].base_pa) < 365f19dc624Sjohpow01 pas_regions[idx].size) { 366b99926efSAlexeiFedorov ERROR("GPT: Address overflow in PAS[%u]!\n", idx); 367f19dc624Sjohpow01 return -EOVERFLOW; 368f19dc624Sjohpow01 } 369f19dc624Sjohpow01 370b99926efSAlexeiFedorov /* Initial checks for PAS validity */ 371f19dc624Sjohpow01 if (((pas_regions[idx].base_pa + pas_regions[idx].size) > 372f19dc624Sjohpow01 GPT_PPS_ACTUAL_SIZE(gpt_config.t)) || 37320e2683dSAlexeiFedorov !is_gpi_valid(GPT_PAS_ATTR_GPI(pas_regions[idx].attrs))) { 374b99926efSAlexeiFedorov ERROR("GPT: PAS[%u] is invalid!\n", idx); 375f19dc624Sjohpow01 return -EFAULT; 376f19dc624Sjohpow01 } 377f19dc624Sjohpow01 378f19dc624Sjohpow01 /* 379f19dc624Sjohpow01 * Make sure this PAS does not overlap with another one. We 380f19dc624Sjohpow01 * start from idx + 1 instead of 0 since prior PAS mappings will 381f19dc624Sjohpow01 * have already checked themselves against this one. 382f19dc624Sjohpow01 */ 383b99926efSAlexeiFedorov for (unsigned int i = idx + 1U; i < pas_region_cnt; i++) { 38420e2683dSAlexeiFedorov if (check_pas_overlap(pas_regions[idx].base_pa, 385f19dc624Sjohpow01 pas_regions[idx].size, 386f19dc624Sjohpow01 pas_regions[i].base_pa, 387f19dc624Sjohpow01 pas_regions[i].size)) { 388b99926efSAlexeiFedorov ERROR("GPT: PAS[%u] overlaps with PAS[%u]\n", 389f19dc624Sjohpow01 i, idx); 390f19dc624Sjohpow01 return -EFAULT; 391f19dc624Sjohpow01 } 392f19dc624Sjohpow01 } 393f19dc624Sjohpow01 394f19dc624Sjohpow01 /* 395f19dc624Sjohpow01 * Since this function can be called multiple times with 396f19dc624Sjohpow01 * separate L1 tables we need to check the existing L0 mapping 397f19dc624Sjohpow01 * to see if this PAS would fall into one that has already been 398f19dc624Sjohpow01 * initialized. 399f19dc624Sjohpow01 */ 400ec0088bbSAlexeiFedorov for (unsigned int i = 401ec0088bbSAlexeiFedorov (unsigned int)GPT_L0_IDX(pas_regions[idx].base_pa); 402b99926efSAlexeiFedorov i <= GPT_L0_IDX(pas_regions[idx].base_pa + 403b99926efSAlexeiFedorov pas_regions[idx].size - 1UL); 404f19dc624Sjohpow01 i++) { 405f19dc624Sjohpow01 if ((GPT_L0_TYPE(l0_desc[i]) == GPT_L0_TYPE_BLK_DESC) && 406f19dc624Sjohpow01 (GPT_L0_BLKD_GPI(l0_desc[i]) == GPT_GPI_ANY)) { 407b99926efSAlexeiFedorov /* This descriptor is unused so continue */ 408f19dc624Sjohpow01 continue; 409f19dc624Sjohpow01 } 410f19dc624Sjohpow01 411f19dc624Sjohpow01 /* 412f19dc624Sjohpow01 * This descriptor has been initialized in a previous 413f19dc624Sjohpow01 * call to this function so cannot be initialized again. 414f19dc624Sjohpow01 */ 415ec0088bbSAlexeiFedorov ERROR("GPT: PAS[%u] overlaps with previous L0[%u]!\n", 416f19dc624Sjohpow01 idx, i); 417f19dc624Sjohpow01 return -EFAULT; 418f19dc624Sjohpow01 } 419f19dc624Sjohpow01 420b99926efSAlexeiFedorov /* Check for block mapping (L0) type */ 421f19dc624Sjohpow01 if (GPT_PAS_ATTR_MAP_TYPE(pas_regions[idx].attrs) == 422f19dc624Sjohpow01 GPT_PAS_ATTR_MAP_TYPE_BLOCK) { 423b99926efSAlexeiFedorov /* Make sure base and size are block-aligned */ 424f19dc624Sjohpow01 if (!GPT_IS_L0_ALIGNED(pas_regions[idx].base_pa) || 425f19dc624Sjohpow01 !GPT_IS_L0_ALIGNED(pas_regions[idx].size)) { 426b99926efSAlexeiFedorov ERROR("GPT: PAS[%u] is not block-aligned!\n", 427f19dc624Sjohpow01 idx); 428f19dc624Sjohpow01 return -EFAULT; 429f19dc624Sjohpow01 } 430f19dc624Sjohpow01 431f19dc624Sjohpow01 continue; 432f19dc624Sjohpow01 } 433f19dc624Sjohpow01 434b99926efSAlexeiFedorov /* Check for granule mapping (L1) type */ 435f19dc624Sjohpow01 if (GPT_PAS_ATTR_MAP_TYPE(pas_regions[idx].attrs) == 436f19dc624Sjohpow01 GPT_PAS_ATTR_MAP_TYPE_GRANULE) { 437b99926efSAlexeiFedorov /* Make sure base and size are granule-aligned */ 438f19dc624Sjohpow01 if (!GPT_IS_L1_ALIGNED(gpt_config.p, pas_regions[idx].base_pa) || 439f19dc624Sjohpow01 !GPT_IS_L1_ALIGNED(gpt_config.p, pas_regions[idx].size)) { 440b99926efSAlexeiFedorov ERROR("GPT: PAS[%u] is not granule-aligned!\n", 441f19dc624Sjohpow01 idx); 442f19dc624Sjohpow01 return -EFAULT; 443f19dc624Sjohpow01 } 444f19dc624Sjohpow01 445b99926efSAlexeiFedorov /* Find how many L1 tables this PAS occupies */ 446f19dc624Sjohpow01 pas_l1_cnt = (GPT_L0_IDX(pas_regions[idx].base_pa + 447b99926efSAlexeiFedorov pas_regions[idx].size - 1UL) - 448b99926efSAlexeiFedorov GPT_L0_IDX(pas_regions[idx].base_pa) + 1U); 449f19dc624Sjohpow01 450f19dc624Sjohpow01 /* 451f19dc624Sjohpow01 * This creates a situation where, if multiple PAS 452f19dc624Sjohpow01 * regions occupy the same table descriptor, we can get 453f19dc624Sjohpow01 * an artificially high total L1 table count. The way we 454f19dc624Sjohpow01 * handle this is by checking each PAS against those 455f19dc624Sjohpow01 * before it in the array, and if they both occupy the 456f19dc624Sjohpow01 * same PAS we subtract from pas_l1_cnt and only the 457f19dc624Sjohpow01 * first PAS in the array gets to count it. 458f19dc624Sjohpow01 */ 459f19dc624Sjohpow01 460f19dc624Sjohpow01 /* 461f19dc624Sjohpow01 * If L1 count is greater than 1 we know the start and 462f19dc624Sjohpow01 * end PAs are in different L0 regions so we must check 463f19dc624Sjohpow01 * both for overlap against other PAS. 464f19dc624Sjohpow01 */ 465f19dc624Sjohpow01 if (pas_l1_cnt > 1) { 46620e2683dSAlexeiFedorov if (does_previous_pas_exist_here( 467f19dc624Sjohpow01 GPT_L0_IDX(pas_regions[idx].base_pa + 468b99926efSAlexeiFedorov pas_regions[idx].size - 1UL), 469f19dc624Sjohpow01 pas_regions, idx)) { 470b99926efSAlexeiFedorov pas_l1_cnt--; 471f19dc624Sjohpow01 } 472f19dc624Sjohpow01 } 473f19dc624Sjohpow01 47420e2683dSAlexeiFedorov if (does_previous_pas_exist_here( 475f19dc624Sjohpow01 GPT_L0_IDX(pas_regions[idx].base_pa), 476f19dc624Sjohpow01 pas_regions, idx)) { 477b99926efSAlexeiFedorov pas_l1_cnt--; 478f19dc624Sjohpow01 } 479f19dc624Sjohpow01 480f19dc624Sjohpow01 l1_cnt += pas_l1_cnt; 481f19dc624Sjohpow01 continue; 482f19dc624Sjohpow01 } 483f19dc624Sjohpow01 484b99926efSAlexeiFedorov /* If execution reaches this point, mapping type is invalid */ 485b99926efSAlexeiFedorov ERROR("GPT: PAS[%u] has invalid mapping type 0x%x.\n", idx, 486f19dc624Sjohpow01 GPT_PAS_ATTR_MAP_TYPE(pas_regions[idx].attrs)); 487f19dc624Sjohpow01 return -EINVAL; 488f19dc624Sjohpow01 } 489f19dc624Sjohpow01 490f19dc624Sjohpow01 return l1_cnt; 491f19dc624Sjohpow01 } 492f19dc624Sjohpow01 493f19dc624Sjohpow01 /* 494f19dc624Sjohpow01 * This function validates L0 initialization parameters. 495f19dc624Sjohpow01 * 496f19dc624Sjohpow01 * Parameters 497f19dc624Sjohpow01 * l0_mem_base Base address of memory used for L0 tables. 498f19dc624Sjohpow01 * l1_mem_size Size of memory available for L0 tables. 499f19dc624Sjohpow01 * 500f19dc624Sjohpow01 * Return 501f19dc624Sjohpow01 * Negative Linux error code in the event of a failure, 0 for success. 502f19dc624Sjohpow01 */ 50320e2683dSAlexeiFedorov static int validate_l0_params(gpccr_pps_e pps, uintptr_t l0_mem_base, 504f19dc624Sjohpow01 size_t l0_mem_size) 505f19dc624Sjohpow01 { 506d766084fSAlexeiFedorov size_t l0_alignment, locks_size = 0; 507f19dc624Sjohpow01 508f19dc624Sjohpow01 /* 509f19dc624Sjohpow01 * Make sure PPS is valid and then store it since macros need this value 510f19dc624Sjohpow01 * to work. 511f19dc624Sjohpow01 */ 512f19dc624Sjohpow01 if (pps > GPT_PPS_MAX) { 513b99926efSAlexeiFedorov ERROR("GPT: Invalid PPS: 0x%x\n", pps); 514f19dc624Sjohpow01 return -EINVAL; 515f19dc624Sjohpow01 } 516f19dc624Sjohpow01 gpt_config.pps = pps; 517f19dc624Sjohpow01 gpt_config.t = gpt_t_lookup[pps]; 518f19dc624Sjohpow01 519b99926efSAlexeiFedorov /* Alignment must be the greater of 4KB or l0 table size */ 520f19dc624Sjohpow01 l0_alignment = PAGE_SIZE_4KB; 521f19dc624Sjohpow01 if (l0_alignment < GPT_L0_TABLE_SIZE(gpt_config.t)) { 522f19dc624Sjohpow01 l0_alignment = GPT_L0_TABLE_SIZE(gpt_config.t); 523f19dc624Sjohpow01 } 524f19dc624Sjohpow01 525b99926efSAlexeiFedorov /* Check base address */ 526b99926efSAlexeiFedorov if ((l0_mem_base == 0UL) || 527b99926efSAlexeiFedorov ((l0_mem_base & (l0_alignment - 1UL)) != 0UL)) { 528b99926efSAlexeiFedorov ERROR("GPT: Invalid L0 base address: 0x%lx\n", l0_mem_base); 529f19dc624Sjohpow01 return -EFAULT; 530f19dc624Sjohpow01 } 531f19dc624Sjohpow01 532d766084fSAlexeiFedorov #if (RME_GPT_BITLOCK_BLOCK != 0) 533ec0088bbSAlexeiFedorov /* 534ec0088bbSAlexeiFedorov * Size of bitlocks in bytes for the protected address space 535d766084fSAlexeiFedorov * with RME_GPT_BITLOCK_BLOCK * 512MB per bitlock. 536ec0088bbSAlexeiFedorov */ 537d766084fSAlexeiFedorov locks_size = GPT_PPS_ACTUAL_SIZE(gpt_config.t) / 538d766084fSAlexeiFedorov (RME_GPT_BITLOCK_BLOCK * SZ_512M * 8U); 539ec0088bbSAlexeiFedorov 540d766084fSAlexeiFedorov /* 541d766084fSAlexeiFedorov * If protected space size is less than the size covered 542d766084fSAlexeiFedorov * by 'bitlock' structure, check for a single bitlock. 543d766084fSAlexeiFedorov */ 544d766084fSAlexeiFedorov if (locks_size < LOCK_SIZE) { 545d766084fSAlexeiFedorov locks_size = LOCK_SIZE; 546d766084fSAlexeiFedorov } 547d766084fSAlexeiFedorov #endif 548d766084fSAlexeiFedorov /* Check size for L0 tables and bitlocks */ 549d766084fSAlexeiFedorov if (l0_mem_size < (GPT_L0_TABLE_SIZE(gpt_config.t) + locks_size)) { 550d766084fSAlexeiFedorov ERROR("GPT: Inadequate L0 memory\n"); 551ec0088bbSAlexeiFedorov ERROR(" Expected 0x%lx bytes, got 0x%lx bytes\n", 552d766084fSAlexeiFedorov GPT_L0_TABLE_SIZE(gpt_config.t) + locks_size, 553d766084fSAlexeiFedorov l0_mem_size); 554f19dc624Sjohpow01 return -ENOMEM; 555f19dc624Sjohpow01 } 556f19dc624Sjohpow01 557f19dc624Sjohpow01 return 0; 558f19dc624Sjohpow01 } 559f19dc624Sjohpow01 560f19dc624Sjohpow01 /* 561f19dc624Sjohpow01 * In the event that L1 tables are needed, this function validates 562f19dc624Sjohpow01 * the L1 table generation parameters. 563f19dc624Sjohpow01 * 564f19dc624Sjohpow01 * Parameters 565f19dc624Sjohpow01 * l1_mem_base Base address of memory used for L1 table allocation. 566f19dc624Sjohpow01 * l1_mem_size Total size of memory available for L1 tables. 567f19dc624Sjohpow01 * l1_gpt_cnt Number of L1 tables needed. 568f19dc624Sjohpow01 * 569f19dc624Sjohpow01 * Return 570f19dc624Sjohpow01 * Negative Linux error code in the event of a failure, 0 for success. 571f19dc624Sjohpow01 */ 57220e2683dSAlexeiFedorov static int validate_l1_params(uintptr_t l1_mem_base, size_t l1_mem_size, 573f19dc624Sjohpow01 unsigned int l1_gpt_cnt) 574f19dc624Sjohpow01 { 575f19dc624Sjohpow01 size_t l1_gpt_mem_sz; 576f19dc624Sjohpow01 577f19dc624Sjohpow01 /* Check if the granularity is supported */ 578f19dc624Sjohpow01 if (!xlat_arch_is_granule_size_supported( 579f19dc624Sjohpow01 GPT_PGS_ACTUAL_SIZE(gpt_config.p))) { 580f19dc624Sjohpow01 return -EPERM; 581f19dc624Sjohpow01 } 582f19dc624Sjohpow01 583b99926efSAlexeiFedorov /* Make sure L1 tables are aligned to their size */ 584b99926efSAlexeiFedorov if ((l1_mem_base & (GPT_L1_TABLE_SIZE(gpt_config.p) - 1UL)) != 0UL) { 585b99926efSAlexeiFedorov ERROR("GPT: Unaligned L1 GPT base address: 0x%"PRIxPTR"\n", 586f19dc624Sjohpow01 l1_mem_base); 587f19dc624Sjohpow01 return -EFAULT; 588f19dc624Sjohpow01 } 589f19dc624Sjohpow01 590b99926efSAlexeiFedorov /* Get total memory needed for L1 tables */ 591f19dc624Sjohpow01 l1_gpt_mem_sz = l1_gpt_cnt * GPT_L1_TABLE_SIZE(gpt_config.p); 592f19dc624Sjohpow01 593b99926efSAlexeiFedorov /* Check for overflow */ 594f19dc624Sjohpow01 if ((l1_gpt_mem_sz / GPT_L1_TABLE_SIZE(gpt_config.p)) != l1_gpt_cnt) { 595b99926efSAlexeiFedorov ERROR("GPT: Overflow calculating L1 memory size\n"); 596f19dc624Sjohpow01 return -ENOMEM; 597f19dc624Sjohpow01 } 598f19dc624Sjohpow01 599b99926efSAlexeiFedorov /* Make sure enough space was supplied */ 600f19dc624Sjohpow01 if (l1_mem_size < l1_gpt_mem_sz) { 601ec0088bbSAlexeiFedorov ERROR("%sL1 GPTs%s", (const char *)"GPT: Inadequate ", 602ec0088bbSAlexeiFedorov (const char *)" memory\n"); 603b99926efSAlexeiFedorov ERROR(" Expected 0x%lx bytes, got 0x%lx bytes\n", 604f19dc624Sjohpow01 l1_gpt_mem_sz, l1_mem_size); 605f19dc624Sjohpow01 return -ENOMEM; 606f19dc624Sjohpow01 } 607f19dc624Sjohpow01 608b99926efSAlexeiFedorov VERBOSE("GPT: Requested 0x%lx bytes for L1 GPTs\n", l1_gpt_mem_sz); 609f19dc624Sjohpow01 return 0; 610f19dc624Sjohpow01 } 611f19dc624Sjohpow01 612f19dc624Sjohpow01 /* 613f19dc624Sjohpow01 * This function initializes L0 block descriptors (regions that cannot be 614f19dc624Sjohpow01 * transitioned at the granule level) according to the provided PAS. 615f19dc624Sjohpow01 * 616f19dc624Sjohpow01 * Parameters 617f19dc624Sjohpow01 * *pas Pointer to the structure defining the PAS region to 618f19dc624Sjohpow01 * initialize. 619f19dc624Sjohpow01 */ 62020e2683dSAlexeiFedorov static void generate_l0_blk_desc(pas_region_t *pas) 621f19dc624Sjohpow01 { 622f19dc624Sjohpow01 uint64_t gpt_desc; 623ec0088bbSAlexeiFedorov unsigned long idx, end_idx; 624f19dc624Sjohpow01 uint64_t *l0_gpt_arr; 625f19dc624Sjohpow01 626f19dc624Sjohpow01 assert(gpt_config.plat_gpt_l0_base != 0U); 627f19dc624Sjohpow01 assert(pas != NULL); 628f19dc624Sjohpow01 629f19dc624Sjohpow01 /* 630f19dc624Sjohpow01 * Checking of PAS parameters has already been done in 63120e2683dSAlexeiFedorov * validate_pas_mappings so no need to check the same things again. 632f19dc624Sjohpow01 */ 633f19dc624Sjohpow01 634f19dc624Sjohpow01 l0_gpt_arr = (uint64_t *)gpt_config.plat_gpt_l0_base; 635f19dc624Sjohpow01 636f19dc624Sjohpow01 /* Create the GPT Block descriptor for this PAS region */ 637f19dc624Sjohpow01 gpt_desc = GPT_L0_BLK_DESC(GPT_PAS_ATTR_GPI(pas->attrs)); 638f19dc624Sjohpow01 639f19dc624Sjohpow01 /* Start index of this region in L0 GPTs */ 6406a00e9b0SRobert Wakim idx = GPT_L0_IDX(pas->base_pa); 641f19dc624Sjohpow01 642f19dc624Sjohpow01 /* 643f19dc624Sjohpow01 * Determine number of L0 GPT descriptors covered by 644f19dc624Sjohpow01 * this PAS region and use the count to populate these 645f19dc624Sjohpow01 * descriptors. 646f19dc624Sjohpow01 */ 6476a00e9b0SRobert Wakim end_idx = GPT_L0_IDX(pas->base_pa + pas->size); 648f19dc624Sjohpow01 649b99926efSAlexeiFedorov /* Generate the needed block descriptors */ 650f19dc624Sjohpow01 for (; idx < end_idx; idx++) { 651f19dc624Sjohpow01 l0_gpt_arr[idx] = gpt_desc; 652ec0088bbSAlexeiFedorov VERBOSE("GPT: L0 entry (BLOCK) index %lu [%p]: GPI = 0x%"PRIx64" (0x%"PRIx64")\n", 653f19dc624Sjohpow01 idx, &l0_gpt_arr[idx], 654f19dc624Sjohpow01 (gpt_desc >> GPT_L0_BLK_DESC_GPI_SHIFT) & 655f19dc624Sjohpow01 GPT_L0_BLK_DESC_GPI_MASK, l0_gpt_arr[idx]); 656f19dc624Sjohpow01 } 657f19dc624Sjohpow01 } 658f19dc624Sjohpow01 659f19dc624Sjohpow01 /* 660f19dc624Sjohpow01 * Helper function to determine if the end physical address lies in the same L0 661f19dc624Sjohpow01 * region as the current physical address. If true, the end physical address is 662f19dc624Sjohpow01 * returned else, the start address of the next region is returned. 663f19dc624Sjohpow01 * 664f19dc624Sjohpow01 * Parameters 665f19dc624Sjohpow01 * cur_pa Physical address of the current PA in the loop through 666f19dc624Sjohpow01 * the range. 667f19dc624Sjohpow01 * end_pa Physical address of the end PA in a PAS range. 668f19dc624Sjohpow01 * 669f19dc624Sjohpow01 * Return 670f19dc624Sjohpow01 * The PA of the end of the current range. 671f19dc624Sjohpow01 */ 67220e2683dSAlexeiFedorov static uintptr_t get_l1_end_pa(uintptr_t cur_pa, uintptr_t end_pa) 673f19dc624Sjohpow01 { 674f19dc624Sjohpow01 uintptr_t cur_idx; 675f19dc624Sjohpow01 uintptr_t end_idx; 676f19dc624Sjohpow01 6776a00e9b0SRobert Wakim cur_idx = GPT_L0_IDX(cur_pa); 6786a00e9b0SRobert Wakim end_idx = GPT_L0_IDX(end_pa); 679f19dc624Sjohpow01 680f19dc624Sjohpow01 assert(cur_idx <= end_idx); 681f19dc624Sjohpow01 682f19dc624Sjohpow01 if (cur_idx == end_idx) { 683f19dc624Sjohpow01 return end_pa; 684f19dc624Sjohpow01 } 685f19dc624Sjohpow01 686ec0088bbSAlexeiFedorov return (cur_idx + 1UL) << GPT_L0_IDX_SHIFT; 687f19dc624Sjohpow01 } 688f19dc624Sjohpow01 689f19dc624Sjohpow01 /* 690ec0088bbSAlexeiFedorov * Helper function to fill out GPI entries from 'first' granule address of 691ec0088bbSAlexeiFedorov * the specified 'length' in a single L1 table with 'l1_desc' Contiguous 692ec0088bbSAlexeiFedorov * descriptor. 693f19dc624Sjohpow01 * 694f19dc624Sjohpow01 * Parameters 695f19dc624Sjohpow01 * l1 Pointer to L1 table to fill out 696ec0088bbSAlexeiFedorov * first Address of first granule in range 697ec0088bbSAlexeiFedorov * length Length of the range in bytes 698ec0088bbSAlexeiFedorov * gpi GPI set this range to 699ec0088bbSAlexeiFedorov * 700ec0088bbSAlexeiFedorov * Return 701ec0088bbSAlexeiFedorov * Address of next granule in range. 702f19dc624Sjohpow01 */ 7036350aea2SAlexeiFedorov __unused static uintptr_t fill_l1_cont_desc(uint64_t *l1, uintptr_t first, 704ec0088bbSAlexeiFedorov size_t length, unsigned int gpi) 705f19dc624Sjohpow01 { 706ec0088bbSAlexeiFedorov /* 707ec0088bbSAlexeiFedorov * Look up table for contiguous blocks and descriptors. 708ec0088bbSAlexeiFedorov * Entries should be defined in descending block sizes: 709ec0088bbSAlexeiFedorov * 512MB, 32MB and 2MB. 710ec0088bbSAlexeiFedorov */ 711ec0088bbSAlexeiFedorov static const gpt_fill_lookup_t gpt_fill_lookup[] = { 712ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK == 512) 713ec0088bbSAlexeiFedorov { SZ_512M, GPT_L1_CONT_DESC_512MB }, 714ec0088bbSAlexeiFedorov #endif 715ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK >= 32) 716ec0088bbSAlexeiFedorov { SZ_32M, GPT_L1_CONT_DESC_32MB }, 717ec0088bbSAlexeiFedorov #endif 718ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK != 0) 719ec0088bbSAlexeiFedorov { SZ_2M, GPT_L1_CONT_DESC_2MB } 720ec0088bbSAlexeiFedorov #endif 721ec0088bbSAlexeiFedorov }; 722f19dc624Sjohpow01 723ec0088bbSAlexeiFedorov /* 724ec0088bbSAlexeiFedorov * Iterate through all block sizes (512MB, 32MB and 2MB) 725ec0088bbSAlexeiFedorov * starting with maximum supported. 726ec0088bbSAlexeiFedorov */ 727ec0088bbSAlexeiFedorov for (unsigned long i = 0UL; i < ARRAY_SIZE(gpt_fill_lookup); i++) { 728ec0088bbSAlexeiFedorov /* Calculate index */ 729ec0088bbSAlexeiFedorov unsigned long idx = GPT_L1_INDEX(first); 730ec0088bbSAlexeiFedorov 731ec0088bbSAlexeiFedorov /* Contiguous block size */ 732ec0088bbSAlexeiFedorov size_t cont_size = gpt_fill_lookup[i].size; 733ec0088bbSAlexeiFedorov 734ec0088bbSAlexeiFedorov if (GPT_REGION_IS_CONT(length, first, cont_size)) { 735ec0088bbSAlexeiFedorov 736ec0088bbSAlexeiFedorov /* Generate Contiguous descriptor */ 737ec0088bbSAlexeiFedorov uint64_t l1_desc = GPT_L1_GPI_CONT_DESC(gpi, 738ec0088bbSAlexeiFedorov gpt_fill_lookup[i].desc); 739ec0088bbSAlexeiFedorov 740ec0088bbSAlexeiFedorov /* Number of 128-bit L1 entries in block */ 741ec0088bbSAlexeiFedorov unsigned int cnt; 742ec0088bbSAlexeiFedorov 743ec0088bbSAlexeiFedorov switch (cont_size) { 744ec0088bbSAlexeiFedorov case SZ_512M: 745ec0088bbSAlexeiFedorov cnt = L1_QWORDS_512MB; 746ec0088bbSAlexeiFedorov break; 747ec0088bbSAlexeiFedorov case SZ_32M: 748ec0088bbSAlexeiFedorov cnt = L1_QWORDS_32MB; 749ec0088bbSAlexeiFedorov break; 750ec0088bbSAlexeiFedorov default: /* SZ_2MB */ 751ec0088bbSAlexeiFedorov cnt = L1_QWORDS_2MB; 752ec0088bbSAlexeiFedorov } 753ec0088bbSAlexeiFedorov 754ec0088bbSAlexeiFedorov VERBOSE("GPT: Contiguous descriptor 0x%"PRIxPTR" %luMB\n", 755ec0088bbSAlexeiFedorov first, cont_size / SZ_1M); 756ec0088bbSAlexeiFedorov 757ec0088bbSAlexeiFedorov /* Fill Contiguous descriptors */ 758ec0088bbSAlexeiFedorov fill_desc(&l1[idx], l1_desc, cnt); 759ec0088bbSAlexeiFedorov first += cont_size; 760ec0088bbSAlexeiFedorov length -= cont_size; 761ec0088bbSAlexeiFedorov 762ec0088bbSAlexeiFedorov if (length == 0UL) { 763ec0088bbSAlexeiFedorov break; 764ec0088bbSAlexeiFedorov } 765ec0088bbSAlexeiFedorov } 766ec0088bbSAlexeiFedorov } 767ec0088bbSAlexeiFedorov 768ec0088bbSAlexeiFedorov return first; 769ec0088bbSAlexeiFedorov } 770ec0088bbSAlexeiFedorov 771ec0088bbSAlexeiFedorov /* Build Granules descriptor with the same 'gpi' for every GPI entry */ 772ec0088bbSAlexeiFedorov static uint64_t build_l1_desc(unsigned int gpi) 773ec0088bbSAlexeiFedorov { 774ec0088bbSAlexeiFedorov uint64_t l1_desc = (uint64_t)gpi | ((uint64_t)gpi << 4); 775ec0088bbSAlexeiFedorov 776ec0088bbSAlexeiFedorov l1_desc |= (l1_desc << 8); 777ec0088bbSAlexeiFedorov l1_desc |= (l1_desc << 16); 778ec0088bbSAlexeiFedorov return (l1_desc | (l1_desc << 32)); 779ec0088bbSAlexeiFedorov } 780ec0088bbSAlexeiFedorov 781ec0088bbSAlexeiFedorov /* 782ec0088bbSAlexeiFedorov * Helper function to fill out GPI entries from 'first' to 'last' granule 783ec0088bbSAlexeiFedorov * address in a single L1 table with 'l1_desc' Granules descriptor. 784ec0088bbSAlexeiFedorov * 785ec0088bbSAlexeiFedorov * Parameters 786ec0088bbSAlexeiFedorov * l1 Pointer to L1 table to fill out 787ec0088bbSAlexeiFedorov * first Address of first granule in range 788ec0088bbSAlexeiFedorov * last Address of last granule in range (inclusive) 789ec0088bbSAlexeiFedorov * gpi GPI set this range to 790ec0088bbSAlexeiFedorov * 791ec0088bbSAlexeiFedorov * Return 792ec0088bbSAlexeiFedorov * Address of next granule in range. 793ec0088bbSAlexeiFedorov */ 794ec0088bbSAlexeiFedorov static uintptr_t fill_l1_gran_desc(uint64_t *l1, uintptr_t first, 795ec0088bbSAlexeiFedorov uintptr_t last, unsigned int gpi) 796ec0088bbSAlexeiFedorov { 797ec0088bbSAlexeiFedorov uint64_t gpi_mask; 798ec0088bbSAlexeiFedorov unsigned long i; 799ec0088bbSAlexeiFedorov 800ec0088bbSAlexeiFedorov /* Generate Granules descriptor */ 801ec0088bbSAlexeiFedorov uint64_t l1_desc = build_l1_desc(gpi); 802f19dc624Sjohpow01 803b99926efSAlexeiFedorov /* Shift the mask if we're starting in the middle of an L1 entry */ 804ec0088bbSAlexeiFedorov gpi_mask = ULONG_MAX << (GPT_L1_GPI_IDX(gpt_config.p, first) << 2); 805f19dc624Sjohpow01 806b99926efSAlexeiFedorov /* Fill out each L1 entry for this region */ 807ec0088bbSAlexeiFedorov for (i = GPT_L1_INDEX(first); i <= GPT_L1_INDEX(last); i++) { 808ec0088bbSAlexeiFedorov 809b99926efSAlexeiFedorov /* Account for stopping in the middle of an L1 entry */ 810ec0088bbSAlexeiFedorov if (i == GPT_L1_INDEX(last)) { 811b99926efSAlexeiFedorov gpi_mask &= (gpi_mask >> ((15U - 812f19dc624Sjohpow01 GPT_L1_GPI_IDX(gpt_config.p, last)) << 2)); 813f19dc624Sjohpow01 } 814f19dc624Sjohpow01 815ec0088bbSAlexeiFedorov assert((l1[i] & gpi_mask) == (GPT_L1_ANY_DESC & gpi_mask)); 816ec0088bbSAlexeiFedorov 817b99926efSAlexeiFedorov /* Write GPI values */ 818ec0088bbSAlexeiFedorov l1[i] = (l1[i] & ~gpi_mask) | (l1_desc & gpi_mask); 819f19dc624Sjohpow01 820b99926efSAlexeiFedorov /* Reset mask */ 821b99926efSAlexeiFedorov gpi_mask = ULONG_MAX; 822f19dc624Sjohpow01 } 823ec0088bbSAlexeiFedorov 824ec0088bbSAlexeiFedorov return last + GPT_PGS_ACTUAL_SIZE(gpt_config.p); 825ec0088bbSAlexeiFedorov } 826ec0088bbSAlexeiFedorov 827ec0088bbSAlexeiFedorov /* 828ec0088bbSAlexeiFedorov * Helper function to fill out GPI entries in a single L1 table. 8296350aea2SAlexeiFedorov * This function fills out an entire L1 table with either Granules or Contiguous 8306350aea2SAlexeiFedorov * (RME_GPT_MAX_BLOCK != 0) descriptors depending on region length and alignment. 8316350aea2SAlexeiFedorov * Note. If RME_GPT_MAX_BLOCK == 0, then the L1 tables are filled with regular 8326350aea2SAlexeiFedorov * Granules descriptors. 833ec0088bbSAlexeiFedorov * 834ec0088bbSAlexeiFedorov * Parameters 835ec0088bbSAlexeiFedorov * l1 Pointer to L1 table to fill out 836ec0088bbSAlexeiFedorov * first Address of first granule in range 837ec0088bbSAlexeiFedorov * last Address of last granule in range (inclusive) 838ec0088bbSAlexeiFedorov * gpi GPI set this range to 839ec0088bbSAlexeiFedorov */ 840ec0088bbSAlexeiFedorov static void fill_l1_tbl(uint64_t *l1, uintptr_t first, uintptr_t last, 841ec0088bbSAlexeiFedorov unsigned int gpi) 842ec0088bbSAlexeiFedorov { 843ec0088bbSAlexeiFedorov assert(l1 != NULL); 844ec0088bbSAlexeiFedorov assert(first <= last); 845ec0088bbSAlexeiFedorov assert((first & (GPT_PGS_ACTUAL_SIZE(gpt_config.p) - 1UL)) == 0UL); 846ec0088bbSAlexeiFedorov assert((last & (GPT_PGS_ACTUAL_SIZE(gpt_config.p) - 1UL)) == 0UL); 847ec0088bbSAlexeiFedorov assert(GPT_L0_IDX(first) == GPT_L0_IDX(last)); 848ec0088bbSAlexeiFedorov 8496350aea2SAlexeiFedorov #if (RME_GPT_MAX_BLOCK != 0) 850*d024cce3SAlexeiFedorov while (first <= last) { 851ec0088bbSAlexeiFedorov /* Region length */ 852ec0088bbSAlexeiFedorov size_t length = last - first + GPT_PGS_ACTUAL_SIZE(gpt_config.p); 853ec0088bbSAlexeiFedorov 854ec0088bbSAlexeiFedorov if (length < SZ_2M) { 855ec0088bbSAlexeiFedorov /* 8566350aea2SAlexeiFedorov * Fill with Granule descriptors in case of 857ec0088bbSAlexeiFedorov * region length < 2MB. 858ec0088bbSAlexeiFedorov */ 859ec0088bbSAlexeiFedorov first = fill_l1_gran_desc(l1, first, last, gpi); 860ec0088bbSAlexeiFedorov 861ec0088bbSAlexeiFedorov } else if ((first & (SZ_2M - UL(1))) == UL(0)) { 862ec0088bbSAlexeiFedorov /* 863ec0088bbSAlexeiFedorov * For region length >= 2MB and at least 2MB aligned 864ec0088bbSAlexeiFedorov * call to fill_l1_cont_desc will iterate through 865ec0088bbSAlexeiFedorov * all block sizes (512MB, 32MB and 2MB) supported and 866ec0088bbSAlexeiFedorov * fill corresponding Contiguous descriptors. 867ec0088bbSAlexeiFedorov */ 868ec0088bbSAlexeiFedorov first = fill_l1_cont_desc(l1, first, length, gpi); 869ec0088bbSAlexeiFedorov } else { 870ec0088bbSAlexeiFedorov /* 871ec0088bbSAlexeiFedorov * For not aligned region >= 2MB fill with Granules 872ec0088bbSAlexeiFedorov * descriptors up to the next 2MB aligned address. 873ec0088bbSAlexeiFedorov */ 874ec0088bbSAlexeiFedorov uintptr_t new_last = ALIGN_2MB(first + SZ_2M) - 875ec0088bbSAlexeiFedorov GPT_PGS_ACTUAL_SIZE(gpt_config.p); 876ec0088bbSAlexeiFedorov 877ec0088bbSAlexeiFedorov first = fill_l1_gran_desc(l1, first, new_last, gpi); 878ec0088bbSAlexeiFedorov } 879ec0088bbSAlexeiFedorov } 8806350aea2SAlexeiFedorov #else 8816350aea2SAlexeiFedorov /* Fill with Granule descriptors */ 8826350aea2SAlexeiFedorov first = fill_l1_gran_desc(l1, first, last, gpi); 8836350aea2SAlexeiFedorov #endif 884ec0088bbSAlexeiFedorov assert(first == (last + GPT_PGS_ACTUAL_SIZE(gpt_config.p))); 885f19dc624Sjohpow01 } 886f19dc624Sjohpow01 887f19dc624Sjohpow01 /* 888f19dc624Sjohpow01 * This function finds the next available unused L1 table and initializes all 889f19dc624Sjohpow01 * granules descriptor entries to GPI_ANY. This ensures that there are no chunks 890f19dc624Sjohpow01 * of GPI_NO_ACCESS (0b0000) memory floating around in the system in the 891f19dc624Sjohpow01 * event that a PAS region stops midway through an L1 table, thus guaranteeing 892f19dc624Sjohpow01 * that all memory not explicitly assigned is GPI_ANY. This function does not 893f19dc624Sjohpow01 * check for overflow conditions, that should be done by the caller. 894f19dc624Sjohpow01 * 895f19dc624Sjohpow01 * Return 896f19dc624Sjohpow01 * Pointer to the next available L1 table. 897f19dc624Sjohpow01 */ 89820e2683dSAlexeiFedorov static uint64_t *get_new_l1_tbl(void) 899f19dc624Sjohpow01 { 900b99926efSAlexeiFedorov /* Retrieve the next L1 table */ 901ec0088bbSAlexeiFedorov uint64_t *l1 = (uint64_t *)gpt_l1_tbl; 902f19dc624Sjohpow01 903ec0088bbSAlexeiFedorov /* Increment L1 GPT address */ 904ec0088bbSAlexeiFedorov gpt_l1_tbl += GPT_L1_TABLE_SIZE(gpt_config.p); 905f19dc624Sjohpow01 906f19dc624Sjohpow01 /* Initialize all GPIs to GPT_GPI_ANY */ 907f19dc624Sjohpow01 for (unsigned int i = 0U; i < GPT_L1_ENTRY_COUNT(gpt_config.p); i++) { 908ec0088bbSAlexeiFedorov l1[i] = GPT_L1_ANY_DESC; 909f19dc624Sjohpow01 } 910f19dc624Sjohpow01 911f19dc624Sjohpow01 return l1; 912f19dc624Sjohpow01 } 913f19dc624Sjohpow01 914f19dc624Sjohpow01 /* 915f19dc624Sjohpow01 * When L1 tables are needed, this function creates the necessary L0 table 916f19dc624Sjohpow01 * descriptors and fills out the L1 table entries according to the supplied 917f19dc624Sjohpow01 * PAS range. 918f19dc624Sjohpow01 * 919f19dc624Sjohpow01 * Parameters 920f19dc624Sjohpow01 * *pas Pointer to the structure defining the PAS region. 921f19dc624Sjohpow01 */ 92220e2683dSAlexeiFedorov static void generate_l0_tbl_desc(pas_region_t *pas) 923f19dc624Sjohpow01 { 924f19dc624Sjohpow01 uintptr_t end_pa; 925f19dc624Sjohpow01 uintptr_t cur_pa; 926f19dc624Sjohpow01 uintptr_t last_gran_pa; 927f19dc624Sjohpow01 uint64_t *l0_gpt_base; 928f19dc624Sjohpow01 uint64_t *l1_gpt_arr; 929ec0088bbSAlexeiFedorov unsigned int l0_idx, gpi; 930f19dc624Sjohpow01 931f19dc624Sjohpow01 assert(gpt_config.plat_gpt_l0_base != 0U); 932f19dc624Sjohpow01 assert(pas != NULL); 933f19dc624Sjohpow01 934f19dc624Sjohpow01 /* 935f19dc624Sjohpow01 * Checking of PAS parameters has already been done in 93620e2683dSAlexeiFedorov * validate_pas_mappings so no need to check the same things again. 937f19dc624Sjohpow01 */ 938f19dc624Sjohpow01 end_pa = pas->base_pa + pas->size; 939f19dc624Sjohpow01 l0_gpt_base = (uint64_t *)gpt_config.plat_gpt_l0_base; 940f19dc624Sjohpow01 941f19dc624Sjohpow01 /* We start working from the granule at base PA */ 942f19dc624Sjohpow01 cur_pa = pas->base_pa; 943f19dc624Sjohpow01 944ec0088bbSAlexeiFedorov /* Get GPI */ 945ec0088bbSAlexeiFedorov gpi = GPT_PAS_ATTR_GPI(pas->attrs); 946f19dc624Sjohpow01 947ec0088bbSAlexeiFedorov /* Iterate over each L0 region in this memory range */ 948ec0088bbSAlexeiFedorov for (l0_idx = (unsigned int)GPT_L0_IDX(pas->base_pa); 949ec0088bbSAlexeiFedorov l0_idx <= (unsigned int)GPT_L0_IDX(end_pa - 1UL); 950ec0088bbSAlexeiFedorov l0_idx++) { 951f19dc624Sjohpow01 /* 952f19dc624Sjohpow01 * See if the L0 entry is already a table descriptor or if we 953f19dc624Sjohpow01 * need to create one. 954f19dc624Sjohpow01 */ 955f19dc624Sjohpow01 if (GPT_L0_TYPE(l0_gpt_base[l0_idx]) == GPT_L0_TYPE_TBL_DESC) { 956b99926efSAlexeiFedorov /* Get the L1 array from the L0 entry */ 957f19dc624Sjohpow01 l1_gpt_arr = GPT_L0_TBLD_ADDR(l0_gpt_base[l0_idx]); 958f19dc624Sjohpow01 } else { 959b99926efSAlexeiFedorov /* Get a new L1 table from the L1 memory space */ 96020e2683dSAlexeiFedorov l1_gpt_arr = get_new_l1_tbl(); 961f19dc624Sjohpow01 962b99926efSAlexeiFedorov /* Fill out the L0 descriptor and flush it */ 963f19dc624Sjohpow01 l0_gpt_base[l0_idx] = GPT_L0_TBL_DESC(l1_gpt_arr); 964f19dc624Sjohpow01 } 965f19dc624Sjohpow01 966b99926efSAlexeiFedorov VERBOSE("GPT: L0 entry (TABLE) index %u [%p] ==> L1 Addr %p (0x%"PRIx64")\n", 967b99926efSAlexeiFedorov l0_idx, &l0_gpt_base[l0_idx], l1_gpt_arr, l0_gpt_base[l0_idx]); 968f19dc624Sjohpow01 969f19dc624Sjohpow01 /* 970f19dc624Sjohpow01 * Determine the PA of the last granule in this L0 descriptor. 971f19dc624Sjohpow01 */ 97220e2683dSAlexeiFedorov last_gran_pa = get_l1_end_pa(cur_pa, end_pa) - 973f19dc624Sjohpow01 GPT_PGS_ACTUAL_SIZE(gpt_config.p); 974f19dc624Sjohpow01 975f19dc624Sjohpow01 /* 976f19dc624Sjohpow01 * Fill up L1 GPT entries between these two addresses. This 977f19dc624Sjohpow01 * function needs the addresses of the first granule and last 978f19dc624Sjohpow01 * granule in the range. 979f19dc624Sjohpow01 */ 980ec0088bbSAlexeiFedorov fill_l1_tbl(l1_gpt_arr, cur_pa, last_gran_pa, gpi); 981f19dc624Sjohpow01 982b99926efSAlexeiFedorov /* Advance cur_pa to first granule in next L0 region */ 98320e2683dSAlexeiFedorov cur_pa = get_l1_end_pa(cur_pa, end_pa); 984f19dc624Sjohpow01 } 985f19dc624Sjohpow01 } 986f19dc624Sjohpow01 987f19dc624Sjohpow01 /* 988f19dc624Sjohpow01 * This function flushes a range of L0 descriptors used by a given PAS region 989f19dc624Sjohpow01 * array. There is a chance that some unmodified L0 descriptors would be flushed 990f19dc624Sjohpow01 * in the case that there are "holes" in an array of PAS regions but overall 991f19dc624Sjohpow01 * this should be faster than individually flushing each modified L0 descriptor 992f19dc624Sjohpow01 * as they are created. 993f19dc624Sjohpow01 * 994f19dc624Sjohpow01 * Parameters 995f19dc624Sjohpow01 * *pas Pointer to an array of PAS regions. 996f19dc624Sjohpow01 * pas_count Number of entries in the PAS array. 997f19dc624Sjohpow01 */ 998f19dc624Sjohpow01 static void flush_l0_for_pas_array(pas_region_t *pas, unsigned int pas_count) 999f19dc624Sjohpow01 { 1000ec0088bbSAlexeiFedorov unsigned long idx; 1001ec0088bbSAlexeiFedorov unsigned long start_idx; 1002ec0088bbSAlexeiFedorov unsigned long end_idx; 1003f19dc624Sjohpow01 uint64_t *l0 = (uint64_t *)gpt_config.plat_gpt_l0_base; 1004f19dc624Sjohpow01 1005f19dc624Sjohpow01 assert(pas != NULL); 1006b99926efSAlexeiFedorov assert(pas_count != 0U); 1007f19dc624Sjohpow01 1008b99926efSAlexeiFedorov /* Initial start and end values */ 1009f19dc624Sjohpow01 start_idx = GPT_L0_IDX(pas[0].base_pa); 1010b99926efSAlexeiFedorov end_idx = GPT_L0_IDX(pas[0].base_pa + pas[0].size - 1UL); 1011f19dc624Sjohpow01 1012b99926efSAlexeiFedorov /* Find lowest and highest L0 indices used in this PAS array */ 1013ec0088bbSAlexeiFedorov for (idx = 1UL; idx < pas_count; idx++) { 1014f19dc624Sjohpow01 if (GPT_L0_IDX(pas[idx].base_pa) < start_idx) { 1015f19dc624Sjohpow01 start_idx = GPT_L0_IDX(pas[idx].base_pa); 1016f19dc624Sjohpow01 } 1017b99926efSAlexeiFedorov if (GPT_L0_IDX(pas[idx].base_pa + pas[idx].size - 1UL) > end_idx) { 1018b99926efSAlexeiFedorov end_idx = GPT_L0_IDX(pas[idx].base_pa + pas[idx].size - 1UL); 1019f19dc624Sjohpow01 } 1020f19dc624Sjohpow01 } 1021f19dc624Sjohpow01 1022f19dc624Sjohpow01 /* 1023f19dc624Sjohpow01 * Flush all covered L0 descriptors, add 1 because we need to include 1024f19dc624Sjohpow01 * the end index value. 1025f19dc624Sjohpow01 */ 1026f19dc624Sjohpow01 flush_dcache_range((uintptr_t)&l0[start_idx], 1027ec0088bbSAlexeiFedorov ((end_idx + 1UL) - start_idx) * sizeof(uint64_t)); 1028f19dc624Sjohpow01 } 1029f19dc624Sjohpow01 1030f19dc624Sjohpow01 /* 1031f19dc624Sjohpow01 * Public API to enable granule protection checks once the tables have all been 1032f19dc624Sjohpow01 * initialized. This function is called at first initialization and then again 1033f19dc624Sjohpow01 * later during warm boots of CPU cores. 1034f19dc624Sjohpow01 * 1035f19dc624Sjohpow01 * Return 1036f19dc624Sjohpow01 * Negative Linux error code in the event of a failure, 0 for success. 1037f19dc624Sjohpow01 */ 1038f19dc624Sjohpow01 int gpt_enable(void) 1039f19dc624Sjohpow01 { 1040f19dc624Sjohpow01 u_register_t gpccr_el3; 1041f19dc624Sjohpow01 1042f19dc624Sjohpow01 /* 1043f19dc624Sjohpow01 * Granule tables must be initialised before enabling 1044f19dc624Sjohpow01 * granule protection. 1045f19dc624Sjohpow01 */ 1046b99926efSAlexeiFedorov if (gpt_config.plat_gpt_l0_base == 0UL) { 1047b99926efSAlexeiFedorov ERROR("GPT: Tables have not been initialized!\n"); 1048f19dc624Sjohpow01 return -EPERM; 1049f19dc624Sjohpow01 } 1050f19dc624Sjohpow01 1051f19dc624Sjohpow01 /* Write the base address of the L0 tables into GPTBR */ 1052f19dc624Sjohpow01 write_gptbr_el3(((gpt_config.plat_gpt_l0_base >> GPTBR_BADDR_VAL_SHIFT) 1053f19dc624Sjohpow01 >> GPTBR_BADDR_SHIFT) & GPTBR_BADDR_MASK); 1054f19dc624Sjohpow01 1055f19dc624Sjohpow01 /* GPCCR_EL3.PPS */ 1056f19dc624Sjohpow01 gpccr_el3 = SET_GPCCR_PPS(gpt_config.pps); 1057f19dc624Sjohpow01 1058f19dc624Sjohpow01 /* GPCCR_EL3.PGS */ 1059f19dc624Sjohpow01 gpccr_el3 |= SET_GPCCR_PGS(gpt_config.pgs); 1060f19dc624Sjohpow01 106177612b90SSoby Mathew /* 106277612b90SSoby Mathew * Since EL3 maps the L1 region as Inner shareable, use the same 106377612b90SSoby Mathew * shareability attribute for GPC as well so that 106477612b90SSoby Mathew * GPC fetches are visible to PEs 106577612b90SSoby Mathew */ 106677612b90SSoby Mathew gpccr_el3 |= SET_GPCCR_SH(GPCCR_SH_IS); 1067f19dc624Sjohpow01 1068b99926efSAlexeiFedorov /* Outer and Inner cacheability set to Normal memory, WB, RA, WA */ 1069f19dc624Sjohpow01 gpccr_el3 |= SET_GPCCR_ORGN(GPCCR_ORGN_WB_RA_WA); 1070f19dc624Sjohpow01 gpccr_el3 |= SET_GPCCR_IRGN(GPCCR_IRGN_WB_RA_WA); 1071f19dc624Sjohpow01 107214cddd7aSKathleen Capella /* Prepopulate GPCCR_EL3 but don't enable GPC yet */ 107314cddd7aSKathleen Capella write_gpccr_el3(gpccr_el3); 107414cddd7aSKathleen Capella isb(); 107514cddd7aSKathleen Capella 107614cddd7aSKathleen Capella /* Invalidate any stale TLB entries and any cached register fields */ 107714cddd7aSKathleen Capella tlbipaallos(); 107814cddd7aSKathleen Capella dsb(); 107914cddd7aSKathleen Capella isb(); 108014cddd7aSKathleen Capella 1081f19dc624Sjohpow01 /* Enable GPT */ 1082f19dc624Sjohpow01 gpccr_el3 |= GPCCR_GPC_BIT; 1083f19dc624Sjohpow01 1084b99926efSAlexeiFedorov /* TODO: Configure GPCCR_EL3_GPCP for Fault control */ 1085f19dc624Sjohpow01 write_gpccr_el3(gpccr_el3); 108677612b90SSoby Mathew isb(); 1087f19dc624Sjohpow01 tlbipaallos(); 1088f19dc624Sjohpow01 dsb(); 1089f19dc624Sjohpow01 isb(); 1090f19dc624Sjohpow01 1091f19dc624Sjohpow01 return 0; 1092f19dc624Sjohpow01 } 1093f19dc624Sjohpow01 1094f19dc624Sjohpow01 /* 1095f19dc624Sjohpow01 * Public API to disable granule protection checks. 1096f19dc624Sjohpow01 */ 1097f19dc624Sjohpow01 void gpt_disable(void) 1098f19dc624Sjohpow01 { 1099f19dc624Sjohpow01 u_register_t gpccr_el3 = read_gpccr_el3(); 1100f19dc624Sjohpow01 1101f19dc624Sjohpow01 write_gpccr_el3(gpccr_el3 & ~GPCCR_GPC_BIT); 1102f19dc624Sjohpow01 dsbsy(); 1103f19dc624Sjohpow01 isb(); 1104f19dc624Sjohpow01 } 1105f19dc624Sjohpow01 1106f19dc624Sjohpow01 /* 1107f19dc624Sjohpow01 * Public API that initializes the entire protected space to GPT_GPI_ANY using 1108f19dc624Sjohpow01 * the L0 tables (block descriptors). Ideally, this function is invoked prior 1109f19dc624Sjohpow01 * to DDR discovery and initialization. The MMU must be initialized before 1110f19dc624Sjohpow01 * calling this function. 1111f19dc624Sjohpow01 * 1112f19dc624Sjohpow01 * Parameters 1113f19dc624Sjohpow01 * pps PPS value to use for table generation 1114f19dc624Sjohpow01 * l0_mem_base Base address of L0 tables in memory. 1115f19dc624Sjohpow01 * l0_mem_size Total size of memory available for L0 tables. 1116f19dc624Sjohpow01 * 1117f19dc624Sjohpow01 * Return 1118f19dc624Sjohpow01 * Negative Linux error code in the event of a failure, 0 for success. 1119f19dc624Sjohpow01 */ 1120a0d5147bSAlexeiFedorov int gpt_init_l0_tables(gpccr_pps_e pps, uintptr_t l0_mem_base, 1121f19dc624Sjohpow01 size_t l0_mem_size) 1122f19dc624Sjohpow01 { 1123f19dc624Sjohpow01 uint64_t gpt_desc; 1124d766084fSAlexeiFedorov size_t locks_size = 0; 1125d766084fSAlexeiFedorov __unused bitlock_t *bit_locks; 1126ec0088bbSAlexeiFedorov int ret; 1127f19dc624Sjohpow01 1128b99926efSAlexeiFedorov /* Ensure that MMU and Data caches are enabled */ 1129f19dc624Sjohpow01 assert((read_sctlr_el3() & SCTLR_C_BIT) != 0U); 1130f19dc624Sjohpow01 1131b99926efSAlexeiFedorov /* Validate other parameters */ 113220e2683dSAlexeiFedorov ret = validate_l0_params(pps, l0_mem_base, l0_mem_size); 11336a00e9b0SRobert Wakim if (ret != 0) { 1134f19dc624Sjohpow01 return ret; 1135f19dc624Sjohpow01 } 1136f19dc624Sjohpow01 1137b99926efSAlexeiFedorov /* Create the descriptor to initialize L0 entries with */ 1138f19dc624Sjohpow01 gpt_desc = GPT_L0_BLK_DESC(GPT_GPI_ANY); 1139f19dc624Sjohpow01 1140f19dc624Sjohpow01 /* Iterate through all L0 entries */ 1141f19dc624Sjohpow01 for (unsigned int i = 0U; i < GPT_L0_REGION_COUNT(gpt_config.t); i++) { 1142f19dc624Sjohpow01 ((uint64_t *)l0_mem_base)[i] = gpt_desc; 1143f19dc624Sjohpow01 } 1144f19dc624Sjohpow01 1145d766084fSAlexeiFedorov #if (RME_GPT_BITLOCK_BLOCK != 0) 1146ec0088bbSAlexeiFedorov /* Initialise bitlocks at the end of L0 table */ 1147ec0088bbSAlexeiFedorov bit_locks = (bitlock_t *)(l0_mem_base + 1148ec0088bbSAlexeiFedorov GPT_L0_TABLE_SIZE(gpt_config.t)); 1149ec0088bbSAlexeiFedorov 1150ec0088bbSAlexeiFedorov /* Size of bitlocks in bytes */ 1151d766084fSAlexeiFedorov locks_size = GPT_PPS_ACTUAL_SIZE(gpt_config.t) / 1152d766084fSAlexeiFedorov (RME_GPT_BITLOCK_BLOCK * SZ_512M * 8U); 1153d766084fSAlexeiFedorov 1154d766084fSAlexeiFedorov /* 1155d766084fSAlexeiFedorov * If protected space size is less than the size covered 1156d766084fSAlexeiFedorov * by 'bitlock' structure, initialise a single bitlock. 1157d766084fSAlexeiFedorov */ 1158d766084fSAlexeiFedorov if (locks_size < LOCK_SIZE) { 1159d766084fSAlexeiFedorov locks_size = LOCK_SIZE; 1160d766084fSAlexeiFedorov } 1161ec0088bbSAlexeiFedorov 1162ec0088bbSAlexeiFedorov for (size_t i = 0UL; i < (locks_size/LOCK_SIZE); i++) { 1163ec0088bbSAlexeiFedorov bit_locks[i].lock = 0U; 1164ec0088bbSAlexeiFedorov } 1165d766084fSAlexeiFedorov #endif 1166ec0088bbSAlexeiFedorov 1167ec0088bbSAlexeiFedorov /* Flush updated L0 tables and bitlocks to memory */ 1168f19dc624Sjohpow01 flush_dcache_range((uintptr_t)l0_mem_base, 1169ec0088bbSAlexeiFedorov GPT_L0_TABLE_SIZE(gpt_config.t) + locks_size); 1170f19dc624Sjohpow01 1171b99926efSAlexeiFedorov /* Stash the L0 base address once initial setup is complete */ 1172f19dc624Sjohpow01 gpt_config.plat_gpt_l0_base = l0_mem_base; 1173f19dc624Sjohpow01 1174f19dc624Sjohpow01 return 0; 1175f19dc624Sjohpow01 } 1176f19dc624Sjohpow01 1177f19dc624Sjohpow01 /* 1178f19dc624Sjohpow01 * Public API that carves out PAS regions from the L0 tables and builds any L1 1179f19dc624Sjohpow01 * tables that are needed. This function ideally is run after DDR discovery and 1180f19dc624Sjohpow01 * initialization. The L0 tables must have already been initialized to GPI_ANY 1181f19dc624Sjohpow01 * when this function is called. 1182f19dc624Sjohpow01 * 1183f19dc624Sjohpow01 * This function can be called multiple times with different L1 memory ranges 1184f19dc624Sjohpow01 * and PAS regions if it is desirable to place L1 tables in different locations 1185f19dc624Sjohpow01 * in memory. (ex: you have multiple DDR banks and want to place the L1 tables 1186ec0088bbSAlexeiFedorov * in the DDR bank that they control). 1187f19dc624Sjohpow01 * 1188f19dc624Sjohpow01 * Parameters 1189f19dc624Sjohpow01 * pgs PGS value to use for table generation. 1190f19dc624Sjohpow01 * l1_mem_base Base address of memory used for L1 tables. 1191f19dc624Sjohpow01 * l1_mem_size Total size of memory available for L1 tables. 1192f19dc624Sjohpow01 * *pas_regions Pointer to PAS regions structure array. 1193f19dc624Sjohpow01 * pas_count Total number of PAS regions. 1194f19dc624Sjohpow01 * 1195f19dc624Sjohpow01 * Return 1196f19dc624Sjohpow01 * Negative Linux error code in the event of a failure, 0 for success. 1197f19dc624Sjohpow01 */ 1198f19dc624Sjohpow01 int gpt_init_pas_l1_tables(gpccr_pgs_e pgs, uintptr_t l1_mem_base, 1199f19dc624Sjohpow01 size_t l1_mem_size, pas_region_t *pas_regions, 1200f19dc624Sjohpow01 unsigned int pas_count) 1201f19dc624Sjohpow01 { 1202ec0088bbSAlexeiFedorov int l1_gpt_cnt, ret; 1203f19dc624Sjohpow01 1204b99926efSAlexeiFedorov /* Ensure that MMU and Data caches are enabled */ 1205f19dc624Sjohpow01 assert((read_sctlr_el3() & SCTLR_C_BIT) != 0U); 1206f19dc624Sjohpow01 1207b99926efSAlexeiFedorov /* PGS is needed for validate_pas_mappings so check it now */ 1208f19dc624Sjohpow01 if (pgs > GPT_PGS_MAX) { 1209b99926efSAlexeiFedorov ERROR("GPT: Invalid PGS: 0x%x\n", pgs); 1210f19dc624Sjohpow01 return -EINVAL; 1211f19dc624Sjohpow01 } 1212f19dc624Sjohpow01 gpt_config.pgs = pgs; 1213f19dc624Sjohpow01 gpt_config.p = gpt_p_lookup[pgs]; 1214f19dc624Sjohpow01 1215b99926efSAlexeiFedorov /* Make sure L0 tables have been initialized */ 1216f19dc624Sjohpow01 if (gpt_config.plat_gpt_l0_base == 0U) { 1217b99926efSAlexeiFedorov ERROR("GPT: L0 tables must be initialized first!\n"); 1218f19dc624Sjohpow01 return -EPERM; 1219f19dc624Sjohpow01 } 1220f19dc624Sjohpow01 1221b99926efSAlexeiFedorov /* Check if L1 GPTs are required and how many */ 122220e2683dSAlexeiFedorov l1_gpt_cnt = validate_pas_mappings(pas_regions, pas_count); 1223f19dc624Sjohpow01 if (l1_gpt_cnt < 0) { 1224f19dc624Sjohpow01 return l1_gpt_cnt; 1225f19dc624Sjohpow01 } 1226f19dc624Sjohpow01 1227b99926efSAlexeiFedorov VERBOSE("GPT: %i L1 GPTs requested\n", l1_gpt_cnt); 1228f19dc624Sjohpow01 1229b99926efSAlexeiFedorov /* If L1 tables are needed then validate the L1 parameters */ 1230f19dc624Sjohpow01 if (l1_gpt_cnt > 0) { 123120e2683dSAlexeiFedorov ret = validate_l1_params(l1_mem_base, l1_mem_size, 1232b99926efSAlexeiFedorov (unsigned int)l1_gpt_cnt); 12336a00e9b0SRobert Wakim if (ret != 0) { 1234f19dc624Sjohpow01 return ret; 1235f19dc624Sjohpow01 } 1236f19dc624Sjohpow01 1237b99926efSAlexeiFedorov /* Set up parameters for L1 table generation */ 1238f19dc624Sjohpow01 gpt_l1_tbl = l1_mem_base; 1239f19dc624Sjohpow01 } 1240f19dc624Sjohpow01 1241ec0088bbSAlexeiFedorov /* Number of L1 entries in 2MB depends on GPCCR_EL3.PGS value */ 1242ec0088bbSAlexeiFedorov gpt_l1_cnt_2mb = (unsigned int)GPT_L1_ENTRY_COUNT_2MB(gpt_config.p); 1243ec0088bbSAlexeiFedorov 1244ec0088bbSAlexeiFedorov /* Mask for the L1 index field */ 1245ec0088bbSAlexeiFedorov gpt_l1_index_mask = GPT_L1_IDX_MASK(gpt_config.p); 1246ec0088bbSAlexeiFedorov 1247b99926efSAlexeiFedorov INFO("GPT: Boot Configuration\n"); 1248f19dc624Sjohpow01 INFO(" PPS/T: 0x%x/%u\n", gpt_config.pps, gpt_config.t); 1249f19dc624Sjohpow01 INFO(" PGS/P: 0x%x/%u\n", gpt_config.pgs, gpt_config.p); 1250f19dc624Sjohpow01 INFO(" L0GPTSZ/S: 0x%x/%u\n", GPT_L0GPTSZ, GPT_S_VAL); 1251b99926efSAlexeiFedorov INFO(" PAS count: %u\n", pas_count); 1252b99926efSAlexeiFedorov INFO(" L0 base: 0x%"PRIxPTR"\n", gpt_config.plat_gpt_l0_base); 1253f19dc624Sjohpow01 1254b99926efSAlexeiFedorov /* Generate the tables in memory */ 1255f19dc624Sjohpow01 for (unsigned int idx = 0U; idx < pas_count; idx++) { 1256b99926efSAlexeiFedorov VERBOSE("GPT: PAS[%u]: base 0x%"PRIxPTR"\tsize 0x%lx\tGPI 0x%x\ttype 0x%x\n", 1257f19dc624Sjohpow01 idx, pas_regions[idx].base_pa, pas_regions[idx].size, 1258f19dc624Sjohpow01 GPT_PAS_ATTR_GPI(pas_regions[idx].attrs), 1259f19dc624Sjohpow01 GPT_PAS_ATTR_MAP_TYPE(pas_regions[idx].attrs)); 1260f19dc624Sjohpow01 1261f19dc624Sjohpow01 /* Check if a block or table descriptor is required */ 1262f19dc624Sjohpow01 if (GPT_PAS_ATTR_MAP_TYPE(pas_regions[idx].attrs) == 1263f19dc624Sjohpow01 GPT_PAS_ATTR_MAP_TYPE_BLOCK) { 126420e2683dSAlexeiFedorov generate_l0_blk_desc(&pas_regions[idx]); 1265f19dc624Sjohpow01 1266f19dc624Sjohpow01 } else { 126720e2683dSAlexeiFedorov generate_l0_tbl_desc(&pas_regions[idx]); 1268f19dc624Sjohpow01 } 1269f19dc624Sjohpow01 } 1270f19dc624Sjohpow01 1271b99926efSAlexeiFedorov /* Flush modified L0 tables */ 1272f19dc624Sjohpow01 flush_l0_for_pas_array(pas_regions, pas_count); 1273f19dc624Sjohpow01 1274b99926efSAlexeiFedorov /* Flush L1 tables if needed */ 1275f19dc624Sjohpow01 if (l1_gpt_cnt > 0) { 1276f19dc624Sjohpow01 flush_dcache_range(l1_mem_base, 1277f19dc624Sjohpow01 GPT_L1_TABLE_SIZE(gpt_config.p) * 1278ec0088bbSAlexeiFedorov (size_t)l1_gpt_cnt); 1279f19dc624Sjohpow01 } 1280f19dc624Sjohpow01 1281b99926efSAlexeiFedorov /* Make sure that all the entries are written to the memory */ 1282f19dc624Sjohpow01 dsbishst(); 128377612b90SSoby Mathew tlbipaallos(); 128477612b90SSoby Mathew dsb(); 128577612b90SSoby Mathew isb(); 1286f19dc624Sjohpow01 1287f19dc624Sjohpow01 return 0; 1288f19dc624Sjohpow01 } 1289f19dc624Sjohpow01 1290f19dc624Sjohpow01 /* 1291f19dc624Sjohpow01 * Public API to initialize the runtime gpt_config structure based on the values 1292f19dc624Sjohpow01 * present in the GPTBR_EL3 and GPCCR_EL3 registers. GPT initialization 1293f19dc624Sjohpow01 * typically happens in a bootloader stage prior to setting up the EL3 runtime 1294f19dc624Sjohpow01 * environment for the granule transition service so this function detects the 1295f19dc624Sjohpow01 * initialization from a previous stage. Granule protection checks must be 1296f19dc624Sjohpow01 * enabled already or this function will return an error. 1297f19dc624Sjohpow01 * 1298f19dc624Sjohpow01 * Return 1299f19dc624Sjohpow01 * Negative Linux error code in the event of a failure, 0 for success. 1300f19dc624Sjohpow01 */ 1301f19dc624Sjohpow01 int gpt_runtime_init(void) 1302f19dc624Sjohpow01 { 1303f19dc624Sjohpow01 u_register_t reg; 1304f19dc624Sjohpow01 1305b99926efSAlexeiFedorov /* Ensure that MMU and Data caches are enabled */ 1306f19dc624Sjohpow01 assert((read_sctlr_el3() & SCTLR_C_BIT) != 0U); 1307f19dc624Sjohpow01 1308b99926efSAlexeiFedorov /* Ensure GPC are already enabled */ 1309f19dc624Sjohpow01 if ((read_gpccr_el3() & GPCCR_GPC_BIT) == 0U) { 1310b99926efSAlexeiFedorov ERROR("GPT: Granule protection checks are not enabled!\n"); 1311f19dc624Sjohpow01 return -EPERM; 1312f19dc624Sjohpow01 } 1313f19dc624Sjohpow01 1314f19dc624Sjohpow01 /* 1315f19dc624Sjohpow01 * Read the L0 table address from GPTBR, we don't need the L1 base 1316f19dc624Sjohpow01 * address since those are included in the L0 tables as needed. 1317f19dc624Sjohpow01 */ 1318f19dc624Sjohpow01 reg = read_gptbr_el3(); 1319f19dc624Sjohpow01 gpt_config.plat_gpt_l0_base = ((reg >> GPTBR_BADDR_SHIFT) & 1320f19dc624Sjohpow01 GPTBR_BADDR_MASK) << 1321f19dc624Sjohpow01 GPTBR_BADDR_VAL_SHIFT; 1322f19dc624Sjohpow01 1323b99926efSAlexeiFedorov /* Read GPCCR to get PGS and PPS values */ 1324f19dc624Sjohpow01 reg = read_gpccr_el3(); 1325f19dc624Sjohpow01 gpt_config.pps = (reg >> GPCCR_PPS_SHIFT) & GPCCR_PPS_MASK; 1326f19dc624Sjohpow01 gpt_config.t = gpt_t_lookup[gpt_config.pps]; 1327f19dc624Sjohpow01 gpt_config.pgs = (reg >> GPCCR_PGS_SHIFT) & GPCCR_PGS_MASK; 1328f19dc624Sjohpow01 gpt_config.p = gpt_p_lookup[gpt_config.pgs]; 1329f19dc624Sjohpow01 1330ec0088bbSAlexeiFedorov /* Number of L1 entries in 2MB depends on GPCCR_EL3.PGS value */ 1331ec0088bbSAlexeiFedorov gpt_l1_cnt_2mb = (unsigned int)GPT_L1_ENTRY_COUNT_2MB(gpt_config.p); 1332ec0088bbSAlexeiFedorov 1333ec0088bbSAlexeiFedorov /* Mask for the L1 index field */ 1334ec0088bbSAlexeiFedorov gpt_l1_index_mask = GPT_L1_IDX_MASK(gpt_config.p); 1335ec0088bbSAlexeiFedorov 1336d766084fSAlexeiFedorov #if (RME_GPT_BITLOCK_BLOCK != 0) 1337ec0088bbSAlexeiFedorov /* Bitlocks at the end of L0 table */ 1338ec0088bbSAlexeiFedorov gpt_bitlock_base = (bitlock_t *)(gpt_config.plat_gpt_l0_base + 1339ec0088bbSAlexeiFedorov GPT_L0_TABLE_SIZE(gpt_config.t)); 1340d766084fSAlexeiFedorov #endif 1341b99926efSAlexeiFedorov VERBOSE("GPT: Runtime Configuration\n"); 1342f19dc624Sjohpow01 VERBOSE(" PPS/T: 0x%x/%u\n", gpt_config.pps, gpt_config.t); 1343f19dc624Sjohpow01 VERBOSE(" PGS/P: 0x%x/%u\n", gpt_config.pgs, gpt_config.p); 1344f19dc624Sjohpow01 VERBOSE(" L0GPTSZ/S: 0x%x/%u\n", GPT_L0GPTSZ, GPT_S_VAL); 1345b99926efSAlexeiFedorov VERBOSE(" L0 base: 0x%"PRIxPTR"\n", gpt_config.plat_gpt_l0_base); 1346d766084fSAlexeiFedorov #if (RME_GPT_BITLOCK_BLOCK != 0) 1347ec0088bbSAlexeiFedorov VERBOSE(" Bitlocks: 0x%"PRIxPTR"\n", (uintptr_t)gpt_bitlock_base); 1348d766084fSAlexeiFedorov #endif 1349f19dc624Sjohpow01 return 0; 1350f19dc624Sjohpow01 } 1351f19dc624Sjohpow01 1352f19dc624Sjohpow01 /* 13536a00e9b0SRobert Wakim * A helper to write the value (target_pas << gpi_shift) to the index of 1354b99926efSAlexeiFedorov * the gpt_l1_addr. 13556a00e9b0SRobert Wakim */ 13566a00e9b0SRobert Wakim static inline void write_gpt(uint64_t *gpt_l1_desc, uint64_t *gpt_l1_addr, 13576a00e9b0SRobert Wakim unsigned int gpi_shift, unsigned int idx, 13586a00e9b0SRobert Wakim unsigned int target_pas) 13596a00e9b0SRobert Wakim { 13606a00e9b0SRobert Wakim *gpt_l1_desc &= ~(GPT_L1_GRAN_DESC_GPI_MASK << gpi_shift); 13616a00e9b0SRobert Wakim *gpt_l1_desc |= ((uint64_t)target_pas << gpi_shift); 13626a00e9b0SRobert Wakim gpt_l1_addr[idx] = *gpt_l1_desc; 1363ec0088bbSAlexeiFedorov 1364ec0088bbSAlexeiFedorov dsboshst(); 13656a00e9b0SRobert Wakim } 13666a00e9b0SRobert Wakim 13676a00e9b0SRobert Wakim /* 13686a00e9b0SRobert Wakim * Helper to retrieve the gpt_l1_* information from the base address 1369b99926efSAlexeiFedorov * returned in gpi_info. 13706a00e9b0SRobert Wakim */ 13716a00e9b0SRobert Wakim static int get_gpi_params(uint64_t base, gpi_info_t *gpi_info) 13726a00e9b0SRobert Wakim { 13736a00e9b0SRobert Wakim uint64_t gpt_l0_desc, *gpt_l0_base; 1374d766084fSAlexeiFedorov __unused unsigned int block_idx; 13756a00e9b0SRobert Wakim 13766a00e9b0SRobert Wakim gpt_l0_base = (uint64_t *)gpt_config.plat_gpt_l0_base; 13776a00e9b0SRobert Wakim gpt_l0_desc = gpt_l0_base[GPT_L0_IDX(base)]; 13786a00e9b0SRobert Wakim if (GPT_L0_TYPE(gpt_l0_desc) != GPT_L0_TYPE_TBL_DESC) { 1379b99926efSAlexeiFedorov VERBOSE("GPT: Granule is not covered by a table descriptor!\n"); 13806a00e9b0SRobert Wakim VERBOSE(" Base=0x%"PRIx64"\n", base); 13816a00e9b0SRobert Wakim return -EINVAL; 13826a00e9b0SRobert Wakim } 13836a00e9b0SRobert Wakim 1384b99926efSAlexeiFedorov /* Get the table index and GPI shift from PA */ 13856a00e9b0SRobert Wakim gpi_info->gpt_l1_addr = GPT_L0_TBLD_ADDR(gpt_l0_desc); 1386ec0088bbSAlexeiFedorov gpi_info->idx = (unsigned int)GPT_L1_INDEX(base); 13876a00e9b0SRobert Wakim gpi_info->gpi_shift = GPT_L1_GPI_IDX(gpt_config.p, base) << 2; 13886a00e9b0SRobert Wakim 1389d766084fSAlexeiFedorov #if (RME_GPT_BITLOCK_BLOCK != 0) 1390d766084fSAlexeiFedorov /* Block index */ 1391d766084fSAlexeiFedorov block_idx = (unsigned int)(base / (RME_GPT_BITLOCK_BLOCK * SZ_512M)); 1392ec0088bbSAlexeiFedorov 1393ec0088bbSAlexeiFedorov /* Bitlock address and mask */ 1394d766084fSAlexeiFedorov gpi_info->lock = &gpt_bitlock_base[block_idx / LOCK_BITS]; 1395d766084fSAlexeiFedorov gpi_info->mask = 1U << (block_idx & (LOCK_BITS - 1U)); 1396d766084fSAlexeiFedorov #endif 13976a00e9b0SRobert Wakim return 0; 13986a00e9b0SRobert Wakim } 13996a00e9b0SRobert Wakim 14006a00e9b0SRobert Wakim /* 1401ec0088bbSAlexeiFedorov * Helper to retrieve the gpt_l1_desc and GPI information from gpi_info. 1402d766084fSAlexeiFedorov * This function is called with bitlock or spinlock acquired. 1403ec0088bbSAlexeiFedorov */ 1404ec0088bbSAlexeiFedorov static void read_gpi(gpi_info_t *gpi_info) 1405ec0088bbSAlexeiFedorov { 1406ec0088bbSAlexeiFedorov gpi_info->gpt_l1_desc = (gpi_info->gpt_l1_addr)[gpi_info->idx]; 1407ec0088bbSAlexeiFedorov 1408ec0088bbSAlexeiFedorov if ((gpi_info->gpt_l1_desc & GPT_L1_TYPE_CONT_DESC_MASK) == 1409ec0088bbSAlexeiFedorov GPT_L1_TYPE_CONT_DESC) { 1410ec0088bbSAlexeiFedorov /* Read GPI from Contiguous descriptor */ 1411ec0088bbSAlexeiFedorov gpi_info->gpi = (unsigned int)GPT_L1_CONT_GPI(gpi_info->gpt_l1_desc); 1412ec0088bbSAlexeiFedorov } else { 1413ec0088bbSAlexeiFedorov /* Read GPI from Granules descriptor */ 1414ec0088bbSAlexeiFedorov gpi_info->gpi = (unsigned int)((gpi_info->gpt_l1_desc >> gpi_info->gpi_shift) & 1415ec0088bbSAlexeiFedorov GPT_L1_GRAN_DESC_GPI_MASK); 1416ec0088bbSAlexeiFedorov } 1417ec0088bbSAlexeiFedorov } 1418ec0088bbSAlexeiFedorov 1419ec0088bbSAlexeiFedorov static void flush_page_to_popa(uintptr_t addr) 1420ec0088bbSAlexeiFedorov { 1421ec0088bbSAlexeiFedorov size_t size = GPT_PGS_ACTUAL_SIZE(gpt_config.p); 1422ec0088bbSAlexeiFedorov 1423ec0088bbSAlexeiFedorov if (is_feat_mte2_supported()) { 1424ec0088bbSAlexeiFedorov flush_dcache_to_popa_range_mte2(addr, size); 1425ec0088bbSAlexeiFedorov } else { 1426ec0088bbSAlexeiFedorov flush_dcache_to_popa_range(addr, size); 1427ec0088bbSAlexeiFedorov } 1428ec0088bbSAlexeiFedorov } 1429ec0088bbSAlexeiFedorov 1430ec0088bbSAlexeiFedorov /* 1431ec0088bbSAlexeiFedorov * Helper function to check if all L1 entries in 2MB block have 1432ec0088bbSAlexeiFedorov * the same Granules descriptor value. 1433ec0088bbSAlexeiFedorov * 1434ec0088bbSAlexeiFedorov * Parameters 1435ec0088bbSAlexeiFedorov * base Base address of the region to be checked 1436ec0088bbSAlexeiFedorov * gpi_info Pointer to 'gpt_config_t' structure 1437ec0088bbSAlexeiFedorov * l1_desc GPT Granules descriptor with all entries 1438ec0088bbSAlexeiFedorov * set to the same GPI. 1439ec0088bbSAlexeiFedorov * 1440ec0088bbSAlexeiFedorov * Return 1441ec0088bbSAlexeiFedorov * true if L1 all entries have the same descriptor value, false otherwise. 1442ec0088bbSAlexeiFedorov */ 1443ec0088bbSAlexeiFedorov __unused static bool check_fuse_2mb(uint64_t base, const gpi_info_t *gpi_info, 1444ec0088bbSAlexeiFedorov uint64_t l1_desc) 1445ec0088bbSAlexeiFedorov { 1446ec0088bbSAlexeiFedorov /* Last L1 entry index in 2MB block */ 1447ec0088bbSAlexeiFedorov unsigned int long idx = GPT_L1_INDEX(ALIGN_2MB(base)) + 1448ec0088bbSAlexeiFedorov gpt_l1_cnt_2mb - 1UL; 1449ec0088bbSAlexeiFedorov 1450ec0088bbSAlexeiFedorov /* Number of L1 entries in 2MB block */ 1451ec0088bbSAlexeiFedorov unsigned int cnt = gpt_l1_cnt_2mb; 1452ec0088bbSAlexeiFedorov 1453ec0088bbSAlexeiFedorov /* 1454ec0088bbSAlexeiFedorov * Start check from the last L1 entry and continue until the first 1455ec0088bbSAlexeiFedorov * non-matching to the passed Granules descriptor value is found. 1456ec0088bbSAlexeiFedorov */ 1457ec0088bbSAlexeiFedorov while (cnt-- != 0U) { 1458ec0088bbSAlexeiFedorov if (gpi_info->gpt_l1_addr[idx--] != l1_desc) { 1459ec0088bbSAlexeiFedorov /* Non-matching L1 entry found */ 1460ec0088bbSAlexeiFedorov return false; 1461ec0088bbSAlexeiFedorov } 1462ec0088bbSAlexeiFedorov } 1463ec0088bbSAlexeiFedorov 1464ec0088bbSAlexeiFedorov return true; 1465ec0088bbSAlexeiFedorov } 1466ec0088bbSAlexeiFedorov 1467ec0088bbSAlexeiFedorov __unused static void fuse_2mb(uint64_t base, const gpi_info_t *gpi_info, 1468ec0088bbSAlexeiFedorov uint64_t l1_desc) 1469ec0088bbSAlexeiFedorov { 1470ec0088bbSAlexeiFedorov /* L1 entry index of the start of 2MB block */ 1471ec0088bbSAlexeiFedorov unsigned long idx_2 = GPT_L1_INDEX(ALIGN_2MB(base)); 1472ec0088bbSAlexeiFedorov 1473ec0088bbSAlexeiFedorov /* 2MB Contiguous descriptor */ 1474ec0088bbSAlexeiFedorov uint64_t l1_cont_desc = GPT_L1_CONT_DESC(l1_desc, 2MB); 1475ec0088bbSAlexeiFedorov 1476ec0088bbSAlexeiFedorov VERBOSE("GPT: %s(0x%"PRIxPTR" 0x%"PRIx64")\n", __func__, base, l1_desc); 1477ec0088bbSAlexeiFedorov 1478ec0088bbSAlexeiFedorov fill_desc(&gpi_info->gpt_l1_addr[idx_2], l1_cont_desc, L1_QWORDS_2MB); 1479ec0088bbSAlexeiFedorov } 1480ec0088bbSAlexeiFedorov 1481ec0088bbSAlexeiFedorov /* 1482ec0088bbSAlexeiFedorov * Helper function to check if all 1st L1 entries of 2MB blocks 1483ec0088bbSAlexeiFedorov * in 32MB have the same 2MB Contiguous descriptor value. 1484ec0088bbSAlexeiFedorov * 1485ec0088bbSAlexeiFedorov * Parameters 1486ec0088bbSAlexeiFedorov * base Base address of the region to be checked 1487ec0088bbSAlexeiFedorov * gpi_info Pointer to 'gpt_config_t' structure 1488ec0088bbSAlexeiFedorov * l1_desc GPT Granules descriptor. 1489ec0088bbSAlexeiFedorov * 1490ec0088bbSAlexeiFedorov * Return 1491ec0088bbSAlexeiFedorov * true if all L1 entries have the same descriptor value, false otherwise. 1492ec0088bbSAlexeiFedorov */ 1493ec0088bbSAlexeiFedorov __unused static bool check_fuse_32mb(uint64_t base, const gpi_info_t *gpi_info, 1494ec0088bbSAlexeiFedorov uint64_t l1_desc) 1495ec0088bbSAlexeiFedorov { 1496ec0088bbSAlexeiFedorov /* The 1st L1 entry index of the last 2MB block in 32MB */ 1497ec0088bbSAlexeiFedorov unsigned long idx = GPT_L1_INDEX(ALIGN_32MB(base)) + 1498ec0088bbSAlexeiFedorov (15UL * gpt_l1_cnt_2mb); 1499ec0088bbSAlexeiFedorov 1500ec0088bbSAlexeiFedorov /* 2MB Contiguous descriptor */ 1501ec0088bbSAlexeiFedorov uint64_t l1_cont_desc = GPT_L1_CONT_DESC(l1_desc, 2MB); 1502ec0088bbSAlexeiFedorov 1503ec0088bbSAlexeiFedorov /* Number of 2MB blocks in 32MB */ 1504ec0088bbSAlexeiFedorov unsigned int cnt = 16U; 1505ec0088bbSAlexeiFedorov 1506ec0088bbSAlexeiFedorov /* Set the first L1 entry to 2MB Contiguous descriptor */ 1507ec0088bbSAlexeiFedorov gpi_info->gpt_l1_addr[GPT_L1_INDEX(ALIGN_2MB(base))] = l1_cont_desc; 1508ec0088bbSAlexeiFedorov 1509ec0088bbSAlexeiFedorov /* 1510ec0088bbSAlexeiFedorov * Start check from the 1st L1 entry of the last 2MB block and 1511ec0088bbSAlexeiFedorov * continue until the first non-matching to 2MB Contiguous descriptor 1512ec0088bbSAlexeiFedorov * value is found. 1513ec0088bbSAlexeiFedorov */ 1514ec0088bbSAlexeiFedorov while (cnt-- != 0U) { 1515ec0088bbSAlexeiFedorov if (gpi_info->gpt_l1_addr[idx] != l1_cont_desc) { 1516ec0088bbSAlexeiFedorov /* Non-matching L1 entry found */ 1517ec0088bbSAlexeiFedorov return false; 1518ec0088bbSAlexeiFedorov } 1519ec0088bbSAlexeiFedorov idx -= gpt_l1_cnt_2mb; 1520ec0088bbSAlexeiFedorov } 1521ec0088bbSAlexeiFedorov 1522ec0088bbSAlexeiFedorov return true; 1523ec0088bbSAlexeiFedorov } 1524ec0088bbSAlexeiFedorov 1525ec0088bbSAlexeiFedorov __unused static void fuse_32mb(uint64_t base, const gpi_info_t *gpi_info, 1526ec0088bbSAlexeiFedorov uint64_t l1_desc) 1527ec0088bbSAlexeiFedorov { 1528ec0088bbSAlexeiFedorov /* L1 entry index of the start of 32MB block */ 1529ec0088bbSAlexeiFedorov unsigned long idx_32 = GPT_L1_INDEX(ALIGN_32MB(base)); 1530ec0088bbSAlexeiFedorov 1531ec0088bbSAlexeiFedorov /* 32MB Contiguous descriptor */ 1532ec0088bbSAlexeiFedorov uint64_t l1_cont_desc = GPT_L1_CONT_DESC(l1_desc, 32MB); 1533ec0088bbSAlexeiFedorov 1534ec0088bbSAlexeiFedorov VERBOSE("GPT: %s(0x%"PRIxPTR" 0x%"PRIx64")\n", __func__, base, l1_desc); 1535ec0088bbSAlexeiFedorov 1536ec0088bbSAlexeiFedorov fill_desc(&gpi_info->gpt_l1_addr[idx_32], l1_cont_desc, L1_QWORDS_32MB); 1537ec0088bbSAlexeiFedorov } 1538ec0088bbSAlexeiFedorov 1539ec0088bbSAlexeiFedorov /* 1540ec0088bbSAlexeiFedorov * Helper function to check if all 1st L1 entries of 32MB blocks 1541ec0088bbSAlexeiFedorov * in 512MB have the same 32MB Contiguous descriptor value. 1542ec0088bbSAlexeiFedorov * 1543ec0088bbSAlexeiFedorov * Parameters 1544ec0088bbSAlexeiFedorov * base Base address of the region to be checked 1545ec0088bbSAlexeiFedorov * gpi_info Pointer to 'gpt_config_t' structure 1546ec0088bbSAlexeiFedorov * l1_desc GPT Granules descriptor. 1547ec0088bbSAlexeiFedorov * 1548ec0088bbSAlexeiFedorov * Return 1549ec0088bbSAlexeiFedorov * true if all L1 entries have the same descriptor value, false otherwise. 1550ec0088bbSAlexeiFedorov */ 1551ec0088bbSAlexeiFedorov __unused static bool check_fuse_512mb(uint64_t base, const gpi_info_t *gpi_info, 1552ec0088bbSAlexeiFedorov uint64_t l1_desc) 1553ec0088bbSAlexeiFedorov { 1554ec0088bbSAlexeiFedorov /* The 1st L1 entry index of the last 32MB block in 512MB */ 1555ec0088bbSAlexeiFedorov unsigned long idx = GPT_L1_INDEX(ALIGN_512MB(base)) + 1556ec0088bbSAlexeiFedorov (15UL * 16UL * gpt_l1_cnt_2mb); 1557ec0088bbSAlexeiFedorov 1558ec0088bbSAlexeiFedorov /* 32MB Contiguous descriptor */ 1559ec0088bbSAlexeiFedorov uint64_t l1_cont_desc = GPT_L1_CONT_DESC(l1_desc, 32MB); 1560ec0088bbSAlexeiFedorov 1561ec0088bbSAlexeiFedorov /* Number of 32MB blocks in 512MB */ 1562ec0088bbSAlexeiFedorov unsigned int cnt = 16U; 1563ec0088bbSAlexeiFedorov 1564ec0088bbSAlexeiFedorov /* Set the first L1 entry to 2MB Contiguous descriptor */ 1565ec0088bbSAlexeiFedorov gpi_info->gpt_l1_addr[GPT_L1_INDEX(ALIGN_32MB(base))] = l1_cont_desc; 1566ec0088bbSAlexeiFedorov 1567ec0088bbSAlexeiFedorov /* 1568ec0088bbSAlexeiFedorov * Start check from the 1st L1 entry of the last 32MB block and 1569ec0088bbSAlexeiFedorov * continue until the first non-matching to 32MB Contiguous descriptor 1570ec0088bbSAlexeiFedorov * value is found. 1571ec0088bbSAlexeiFedorov */ 1572ec0088bbSAlexeiFedorov while (cnt-- != 0U) { 1573ec0088bbSAlexeiFedorov if (gpi_info->gpt_l1_addr[idx] != l1_cont_desc) { 1574ec0088bbSAlexeiFedorov /* Non-matching L1 entry found */ 1575ec0088bbSAlexeiFedorov return false; 1576ec0088bbSAlexeiFedorov } 1577ec0088bbSAlexeiFedorov idx -= 16UL * gpt_l1_cnt_2mb; 1578ec0088bbSAlexeiFedorov } 1579ec0088bbSAlexeiFedorov 1580ec0088bbSAlexeiFedorov return true; 1581ec0088bbSAlexeiFedorov } 1582ec0088bbSAlexeiFedorov 1583ec0088bbSAlexeiFedorov __unused static void fuse_512mb(uint64_t base, const gpi_info_t *gpi_info, 1584ec0088bbSAlexeiFedorov uint64_t l1_desc) 1585ec0088bbSAlexeiFedorov { 1586ec0088bbSAlexeiFedorov /* L1 entry index of the start of 512MB block */ 1587ec0088bbSAlexeiFedorov unsigned long idx_512 = GPT_L1_INDEX(ALIGN_512MB(base)); 1588ec0088bbSAlexeiFedorov 1589ec0088bbSAlexeiFedorov /* 512MB Contiguous descriptor */ 1590ec0088bbSAlexeiFedorov uint64_t l1_cont_desc = GPT_L1_CONT_DESC(l1_desc, 512MB); 1591ec0088bbSAlexeiFedorov 1592ec0088bbSAlexeiFedorov VERBOSE("GPT: %s(0x%"PRIxPTR" 0x%"PRIx64")\n", __func__, base, l1_desc); 1593ec0088bbSAlexeiFedorov 1594ec0088bbSAlexeiFedorov fill_desc(&gpi_info->gpt_l1_addr[idx_512], l1_cont_desc, L1_QWORDS_512MB); 1595ec0088bbSAlexeiFedorov } 1596ec0088bbSAlexeiFedorov 1597ec0088bbSAlexeiFedorov /* 1598ec0088bbSAlexeiFedorov * Helper function to convert GPI entries in a single L1 table 1599ec0088bbSAlexeiFedorov * from Granules to Contiguous descriptor. 1600ec0088bbSAlexeiFedorov * 1601ec0088bbSAlexeiFedorov * Parameters 1602ec0088bbSAlexeiFedorov * base Base address of the region to be written 1603ec0088bbSAlexeiFedorov * gpi_info Pointer to 'gpt_config_t' structure 1604ec0088bbSAlexeiFedorov * l1_desc GPT Granules descriptor with all entries 1605ec0088bbSAlexeiFedorov * set to the same GPI. 1606ec0088bbSAlexeiFedorov */ 1607ec0088bbSAlexeiFedorov __unused static void fuse_block(uint64_t base, const gpi_info_t *gpi_info, 1608ec0088bbSAlexeiFedorov uint64_t l1_desc) 1609ec0088bbSAlexeiFedorov { 1610ec0088bbSAlexeiFedorov /* Start with check for 2MB block */ 1611ec0088bbSAlexeiFedorov if (!check_fuse_2mb(base, gpi_info, l1_desc)) { 1612ec0088bbSAlexeiFedorov /* Check for 2MB fusing failed */ 1613ec0088bbSAlexeiFedorov return; 1614ec0088bbSAlexeiFedorov } 1615ec0088bbSAlexeiFedorov 1616ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK == 2) 1617ec0088bbSAlexeiFedorov fuse_2mb(base, gpi_info, l1_desc); 1618ec0088bbSAlexeiFedorov #else 1619ec0088bbSAlexeiFedorov /* Check for 32MB block */ 1620ec0088bbSAlexeiFedorov if (!check_fuse_32mb(base, gpi_info, l1_desc)) { 1621ec0088bbSAlexeiFedorov /* Check for 32MB fusing failed, fuse to 2MB */ 1622ec0088bbSAlexeiFedorov fuse_2mb(base, gpi_info, l1_desc); 1623ec0088bbSAlexeiFedorov return; 1624ec0088bbSAlexeiFedorov } 1625ec0088bbSAlexeiFedorov 1626ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK == 32) 1627ec0088bbSAlexeiFedorov fuse_32mb(base, gpi_info, l1_desc); 1628ec0088bbSAlexeiFedorov #else 1629ec0088bbSAlexeiFedorov /* Check for 512MB block */ 1630ec0088bbSAlexeiFedorov if (!check_fuse_512mb(base, gpi_info, l1_desc)) { 1631ec0088bbSAlexeiFedorov /* Check for 512MB fusing failed, fuse to 32MB */ 1632ec0088bbSAlexeiFedorov fuse_32mb(base, gpi_info, l1_desc); 1633ec0088bbSAlexeiFedorov return; 1634ec0088bbSAlexeiFedorov } 1635ec0088bbSAlexeiFedorov 1636ec0088bbSAlexeiFedorov /* Fuse to 512MB */ 1637ec0088bbSAlexeiFedorov fuse_512mb(base, gpi_info, l1_desc); 1638ec0088bbSAlexeiFedorov 1639ec0088bbSAlexeiFedorov #endif /* RME_GPT_MAX_BLOCK == 32 */ 1640ec0088bbSAlexeiFedorov #endif /* RME_GPT_MAX_BLOCK == 2 */ 1641ec0088bbSAlexeiFedorov } 1642ec0088bbSAlexeiFedorov 1643ec0088bbSAlexeiFedorov /* 1644ec0088bbSAlexeiFedorov * Helper function to convert GPI entries in a single L1 table 1645ec0088bbSAlexeiFedorov * from Contiguous to Granules descriptor. This function updates 1646ec0088bbSAlexeiFedorov * descriptor to Granules in passed 'gpt_config_t' structure as 1647ec0088bbSAlexeiFedorov * the result of shuttering. 1648ec0088bbSAlexeiFedorov * 1649ec0088bbSAlexeiFedorov * Parameters 1650ec0088bbSAlexeiFedorov * base Base address of the region to be written 1651ec0088bbSAlexeiFedorov * gpi_info Pointer to 'gpt_config_t' structure 1652ec0088bbSAlexeiFedorov * l1_desc GPT Granules descriptor set this range to. 1653ec0088bbSAlexeiFedorov */ 1654ec0088bbSAlexeiFedorov __unused static void shatter_block(uint64_t base, gpi_info_t *gpi_info, 1655ec0088bbSAlexeiFedorov uint64_t l1_desc) 1656ec0088bbSAlexeiFedorov { 1657ec0088bbSAlexeiFedorov /* Look-up table for 2MB, 32MB and 512MB locks shattering */ 1658ec0088bbSAlexeiFedorov static const gpt_shatter_func gpt_shatter_lookup[] = { 1659ec0088bbSAlexeiFedorov shatter_2mb, 1660ec0088bbSAlexeiFedorov shatter_32mb, 1661ec0088bbSAlexeiFedorov shatter_512mb 1662ec0088bbSAlexeiFedorov }; 1663ec0088bbSAlexeiFedorov 1664ec0088bbSAlexeiFedorov /* Look-up table for invalidation TLBs for 2MB, 32MB and 512MB blocks */ 1665ec0088bbSAlexeiFedorov static const gpt_tlbi_lookup_t tlbi_lookup[] = { 1666ec0088bbSAlexeiFedorov { tlbirpalos_2m, ~(SZ_2M - 1UL) }, 1667ec0088bbSAlexeiFedorov { tlbirpalos_32m, ~(SZ_32M - 1UL) }, 1668ec0088bbSAlexeiFedorov { tlbirpalos_512m, ~(SZ_512M - 1UL) } 1669ec0088bbSAlexeiFedorov }; 1670ec0088bbSAlexeiFedorov 1671ec0088bbSAlexeiFedorov /* Get shattering level from Contig field of Contiguous descriptor */ 1672ec0088bbSAlexeiFedorov unsigned long level = GPT_L1_CONT_CONTIG(gpi_info->gpt_l1_desc) - 1UL; 1673ec0088bbSAlexeiFedorov 1674ec0088bbSAlexeiFedorov /* Shatter contiguous block */ 1675ec0088bbSAlexeiFedorov gpt_shatter_lookup[level](base, gpi_info, l1_desc); 1676ec0088bbSAlexeiFedorov 1677ec0088bbSAlexeiFedorov tlbi_lookup[level].function(base & tlbi_lookup[level].mask); 1678ec0088bbSAlexeiFedorov dsbosh(); 1679ec0088bbSAlexeiFedorov 1680ec0088bbSAlexeiFedorov /* 1681ec0088bbSAlexeiFedorov * Update 'gpt_config_t' structure's descriptor to Granules to reflect 1682ec0088bbSAlexeiFedorov * the shattered GPI back to caller. 1683ec0088bbSAlexeiFedorov */ 1684ec0088bbSAlexeiFedorov gpi_info->gpt_l1_desc = l1_desc; 1685ec0088bbSAlexeiFedorov } 1686ec0088bbSAlexeiFedorov 1687ec0088bbSAlexeiFedorov /* 16886a00e9b0SRobert Wakim * This function is the granule transition delegate service. When a granule 16896a00e9b0SRobert Wakim * transition request occurs it is routed to this function to have the request, 1690ec0088bbSAlexeiFedorov * if valid, fulfilled following A1.1.1 Delegate of RME supplement. 1691f19dc624Sjohpow01 * 16926a00e9b0SRobert Wakim * TODO: implement support for transitioning multiple granules at once. 1693f19dc624Sjohpow01 * 1694f19dc624Sjohpow01 * Parameters 16956a00e9b0SRobert Wakim * base Base address of the region to transition, must be 16966a00e9b0SRobert Wakim * aligned to granule size. 16976a00e9b0SRobert Wakim * size Size of region to transition, must be aligned to granule 16986a00e9b0SRobert Wakim * size. 1699f19dc624Sjohpow01 * src_sec_state Security state of the caller. 1700f19dc624Sjohpow01 * 1701f19dc624Sjohpow01 * Return 1702f19dc624Sjohpow01 * Negative Linux error code in the event of a failure, 0 for success. 1703f19dc624Sjohpow01 */ 17046a00e9b0SRobert Wakim int gpt_delegate_pas(uint64_t base, size_t size, unsigned int src_sec_state) 1705f19dc624Sjohpow01 { 17066a00e9b0SRobert Wakim gpi_info_t gpi_info; 1707ec0088bbSAlexeiFedorov uint64_t nse, __unused l1_desc; 17086a00e9b0SRobert Wakim unsigned int target_pas; 1709ec0088bbSAlexeiFedorov int res; 1710f19dc624Sjohpow01 1711b99926efSAlexeiFedorov /* Ensure that the tables have been set up before taking requests */ 17126a00e9b0SRobert Wakim assert(gpt_config.plat_gpt_l0_base != 0UL); 17136a00e9b0SRobert Wakim 1714b99926efSAlexeiFedorov /* Ensure that caches are enabled */ 17156a00e9b0SRobert Wakim assert((read_sctlr_el3() & SCTLR_C_BIT) != 0UL); 17166a00e9b0SRobert Wakim 1717b99926efSAlexeiFedorov /* See if this is a single or a range of granule transition */ 17186a00e9b0SRobert Wakim if (size != GPT_PGS_ACTUAL_SIZE(gpt_config.p)) { 1719f19dc624Sjohpow01 return -EINVAL; 1720f19dc624Sjohpow01 } 1721f19dc624Sjohpow01 17226a00e9b0SRobert Wakim /* Check that base and size are valid */ 17236a00e9b0SRobert Wakim if ((ULONG_MAX - base) < size) { 1724b99926efSAlexeiFedorov VERBOSE("GPT: Transition request address overflow!\n"); 17256a00e9b0SRobert Wakim VERBOSE(" Base=0x%"PRIx64"\n", base); 17266a00e9b0SRobert Wakim VERBOSE(" Size=0x%lx\n", size); 17276a00e9b0SRobert Wakim return -EINVAL; 17286a00e9b0SRobert Wakim } 17296a00e9b0SRobert Wakim 1730b99926efSAlexeiFedorov /* Make sure base and size are valid */ 1731b99926efSAlexeiFedorov if (((base & (GPT_PGS_ACTUAL_SIZE(gpt_config.p) - 1UL)) != 0UL) || 1732b99926efSAlexeiFedorov ((size & (GPT_PGS_ACTUAL_SIZE(gpt_config.p) - 1UL)) != 0UL) || 17336a00e9b0SRobert Wakim (size == 0UL) || 17346a00e9b0SRobert Wakim ((base + size) >= GPT_PPS_ACTUAL_SIZE(gpt_config.t))) { 1735b99926efSAlexeiFedorov VERBOSE("GPT: Invalid granule transition address range!\n"); 17366a00e9b0SRobert Wakim VERBOSE(" Base=0x%"PRIx64"\n", base); 17376a00e9b0SRobert Wakim VERBOSE(" Size=0x%lx\n", size); 17386a00e9b0SRobert Wakim return -EINVAL; 17396a00e9b0SRobert Wakim } 17406a00e9b0SRobert Wakim 1741ec0088bbSAlexeiFedorov /* Delegate request can only come from REALM or SECURE */ 1742ec0088bbSAlexeiFedorov if ((src_sec_state != SMC_FROM_REALM) && 1743ec0088bbSAlexeiFedorov (src_sec_state != SMC_FROM_SECURE)) { 1744ec0088bbSAlexeiFedorov VERBOSE("GPT: Invalid caller security state 0x%x\n", 1745ec0088bbSAlexeiFedorov src_sec_state); 1746ec0088bbSAlexeiFedorov return -EINVAL; 1747ec0088bbSAlexeiFedorov } 1748ec0088bbSAlexeiFedorov 1749ec0088bbSAlexeiFedorov if (src_sec_state == SMC_FROM_REALM) { 17506a00e9b0SRobert Wakim target_pas = GPT_GPI_REALM; 1751ec0088bbSAlexeiFedorov nse = (uint64_t)GPT_NSE_REALM << GPT_NSE_SHIFT; 1752ec0088bbSAlexeiFedorov l1_desc = GPT_L1_REALM_DESC; 1753ec0088bbSAlexeiFedorov } else { 17546a00e9b0SRobert Wakim target_pas = GPT_GPI_SECURE; 1755ec0088bbSAlexeiFedorov nse = (uint64_t)GPT_NSE_SECURE << GPT_NSE_SHIFT; 1756ec0088bbSAlexeiFedorov l1_desc = GPT_L1_SECURE_DESC; 1757ec0088bbSAlexeiFedorov } 1758ec0088bbSAlexeiFedorov 1759ec0088bbSAlexeiFedorov res = get_gpi_params(base, &gpi_info); 1760ec0088bbSAlexeiFedorov if (res != 0) { 1761ec0088bbSAlexeiFedorov return res; 17626a00e9b0SRobert Wakim } 17636a00e9b0SRobert Wakim 17646a00e9b0SRobert Wakim /* 1765d766084fSAlexeiFedorov * Access to GPT is controlled by a lock to ensure that no more 1766d766084fSAlexeiFedorov * than one CPU is allowed to make changes at any given time. 17676a00e9b0SRobert Wakim */ 1768d766084fSAlexeiFedorov GPT_LOCK; 1769ec0088bbSAlexeiFedorov read_gpi(&gpi_info); 17706a00e9b0SRobert Wakim 17716a00e9b0SRobert Wakim /* Check that the current address is in NS state */ 17726a00e9b0SRobert Wakim if (gpi_info.gpi != GPT_GPI_NS) { 1773b99926efSAlexeiFedorov VERBOSE("GPT: Only Granule in NS state can be delegated.\n"); 17746a00e9b0SRobert Wakim VERBOSE(" Caller: %u, Current GPI: %u\n", src_sec_state, 17756a00e9b0SRobert Wakim gpi_info.gpi); 1776d766084fSAlexeiFedorov GPT_UNLOCK; 1777e50fedbcSJavier Almansa Sobrino return -EPERM; 17786a00e9b0SRobert Wakim } 17796a00e9b0SRobert Wakim 1780ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK != 0) 1781ec0088bbSAlexeiFedorov /* Check for Contiguous descriptor */ 1782ec0088bbSAlexeiFedorov if ((gpi_info.gpt_l1_desc & GPT_L1_TYPE_CONT_DESC_MASK) == 1783ec0088bbSAlexeiFedorov GPT_L1_TYPE_CONT_DESC) { 1784ec0088bbSAlexeiFedorov shatter_block(base, &gpi_info, GPT_L1_NS_DESC); 1785f19dc624Sjohpow01 } 1786ec0088bbSAlexeiFedorov #endif 17876a00e9b0SRobert Wakim /* 17886a00e9b0SRobert Wakim * In order to maintain mutual distrust between Realm and Secure 17896a00e9b0SRobert Wakim * states, remove any data speculatively fetched into the target 1790ec0088bbSAlexeiFedorov * physical address space. 1791ec0088bbSAlexeiFedorov * Issue DC CIPAPA or DC_CIGDPAPA on implementations with FEAT_MTE2. 17926a00e9b0SRobert Wakim */ 1793ec0088bbSAlexeiFedorov flush_page_to_popa(base | nse); 17946a00e9b0SRobert Wakim 17956a00e9b0SRobert Wakim write_gpt(&gpi_info.gpt_l1_desc, gpi_info.gpt_l1_addr, 17966a00e9b0SRobert Wakim gpi_info.gpi_shift, gpi_info.idx, target_pas); 17976a00e9b0SRobert Wakim 1798ec0088bbSAlexeiFedorov /* Ensure that all agents observe the new configuration */ 1799ec0088bbSAlexeiFedorov tlbi_page_dsbosh(base); 18006a00e9b0SRobert Wakim 18016a00e9b0SRobert Wakim nse = (uint64_t)GPT_NSE_NS << GPT_NSE_SHIFT; 18026a00e9b0SRobert Wakim 1803ec0088bbSAlexeiFedorov /* Ensure that the scrubbed data have made it past the PoPA */ 1804ec0088bbSAlexeiFedorov flush_page_to_popa(base | nse); 18056a00e9b0SRobert Wakim 1806ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK != 0) 1807ec0088bbSAlexeiFedorov if (gpi_info.gpt_l1_desc == l1_desc) { 1808ec0088bbSAlexeiFedorov /* Try to fuse */ 1809ec0088bbSAlexeiFedorov fuse_block(base, &gpi_info, l1_desc); 1810ec0088bbSAlexeiFedorov } 1811ec0088bbSAlexeiFedorov #endif 1812ec0088bbSAlexeiFedorov 1813d766084fSAlexeiFedorov /* Unlock the lock to GPT */ 1814d766084fSAlexeiFedorov GPT_UNLOCK; 18156a00e9b0SRobert Wakim 18166a00e9b0SRobert Wakim /* 18176a00e9b0SRobert Wakim * The isb() will be done as part of context 1818b99926efSAlexeiFedorov * synchronization when returning to lower EL. 18196a00e9b0SRobert Wakim */ 1820b99926efSAlexeiFedorov VERBOSE("GPT: Granule 0x%"PRIx64" GPI 0x%x->0x%x\n", 18216a00e9b0SRobert Wakim base, gpi_info.gpi, target_pas); 1822f19dc624Sjohpow01 1823f19dc624Sjohpow01 return 0; 1824f19dc624Sjohpow01 } 1825f19dc624Sjohpow01 1826f19dc624Sjohpow01 /* 18276a00e9b0SRobert Wakim * This function is the granule transition undelegate service. When a granule 1828f19dc624Sjohpow01 * transition request occurs it is routed to this function where the request is 1829f19dc624Sjohpow01 * validated then fulfilled if possible. 1830f19dc624Sjohpow01 * 1831f19dc624Sjohpow01 * TODO: implement support for transitioning multiple granules at once. 1832f19dc624Sjohpow01 * 1833f19dc624Sjohpow01 * Parameters 1834f19dc624Sjohpow01 * base Base address of the region to transition, must be 1835f19dc624Sjohpow01 * aligned to granule size. 1836f19dc624Sjohpow01 * size Size of region to transition, must be aligned to granule 1837f19dc624Sjohpow01 * size. 1838f19dc624Sjohpow01 * src_sec_state Security state of the caller. 1839f19dc624Sjohpow01 * 1840f19dc624Sjohpow01 * Return 1841f19dc624Sjohpow01 * Negative Linux error code in the event of a failure, 0 for success. 1842f19dc624Sjohpow01 */ 18436a00e9b0SRobert Wakim int gpt_undelegate_pas(uint64_t base, size_t size, unsigned int src_sec_state) 1844f19dc624Sjohpow01 { 18456a00e9b0SRobert Wakim gpi_info_t gpi_info; 1846ec0088bbSAlexeiFedorov uint64_t nse, __unused l1_desc; 18476a00e9b0SRobert Wakim int res; 1848f19dc624Sjohpow01 1849b99926efSAlexeiFedorov /* Ensure that the tables have been set up before taking requests */ 18506a00e9b0SRobert Wakim assert(gpt_config.plat_gpt_l0_base != 0UL); 1851f19dc624Sjohpow01 1852b99926efSAlexeiFedorov /* Ensure that MMU and caches are enabled */ 18536a00e9b0SRobert Wakim assert((read_sctlr_el3() & SCTLR_C_BIT) != 0UL); 185477612b90SSoby Mathew 1855b99926efSAlexeiFedorov /* See if this is a single or a range of granule transition */ 18566a00e9b0SRobert Wakim if (size != GPT_PGS_ACTUAL_SIZE(gpt_config.p)) { 18576a00e9b0SRobert Wakim return -EINVAL; 18586a00e9b0SRobert Wakim } 18596a00e9b0SRobert Wakim 18606a00e9b0SRobert Wakim /* Check that base and size are valid */ 1861f19dc624Sjohpow01 if ((ULONG_MAX - base) < size) { 1862b99926efSAlexeiFedorov VERBOSE("GPT: Transition request address overflow!\n"); 18632461bd3aSManish Pandey VERBOSE(" Base=0x%"PRIx64"\n", base); 1864f19dc624Sjohpow01 VERBOSE(" Size=0x%lx\n", size); 1865f19dc624Sjohpow01 return -EINVAL; 1866f19dc624Sjohpow01 } 1867f19dc624Sjohpow01 1868b99926efSAlexeiFedorov /* Make sure base and size are valid */ 1869b99926efSAlexeiFedorov if (((base & (GPT_PGS_ACTUAL_SIZE(gpt_config.p) - 1UL)) != 0UL) || 1870b99926efSAlexeiFedorov ((size & (GPT_PGS_ACTUAL_SIZE(gpt_config.p) - 1UL)) != 0UL) || 18716a00e9b0SRobert Wakim (size == 0UL) || 1872f19dc624Sjohpow01 ((base + size) >= GPT_PPS_ACTUAL_SIZE(gpt_config.t))) { 1873b99926efSAlexeiFedorov VERBOSE("GPT: Invalid granule transition address range!\n"); 18742461bd3aSManish Pandey VERBOSE(" Base=0x%"PRIx64"\n", base); 1875f19dc624Sjohpow01 VERBOSE(" Size=0x%lx\n", size); 1876f19dc624Sjohpow01 return -EINVAL; 1877f19dc624Sjohpow01 } 1878f19dc624Sjohpow01 18796a00e9b0SRobert Wakim res = get_gpi_params(base, &gpi_info); 18806a00e9b0SRobert Wakim if (res != 0) { 18816a00e9b0SRobert Wakim return res; 1882f19dc624Sjohpow01 } 1883f19dc624Sjohpow01 1884ec0088bbSAlexeiFedorov /* 1885d766084fSAlexeiFedorov * Access to GPT is controlled by a lock to ensure that no more 1886d766084fSAlexeiFedorov * than one CPU is allowed to make changes at any given time. 1887ec0088bbSAlexeiFedorov */ 1888d766084fSAlexeiFedorov GPT_LOCK; 1889ec0088bbSAlexeiFedorov read_gpi(&gpi_info); 1890ec0088bbSAlexeiFedorov 18916a00e9b0SRobert Wakim /* Check that the current address is in the delegated state */ 1892ec0088bbSAlexeiFedorov if ((src_sec_state == SMC_FROM_REALM) && 1893ec0088bbSAlexeiFedorov (gpi_info.gpi == GPT_GPI_REALM)) { 1894ec0088bbSAlexeiFedorov l1_desc = GPT_L1_REALM_DESC; 1895ec0088bbSAlexeiFedorov nse = (uint64_t)GPT_NSE_REALM << GPT_NSE_SHIFT; 1896ec0088bbSAlexeiFedorov } else if ((src_sec_state == SMC_FROM_SECURE) && 1897ec0088bbSAlexeiFedorov (gpi_info.gpi == GPT_GPI_SECURE)) { 1898ec0088bbSAlexeiFedorov l1_desc = GPT_L1_SECURE_DESC; 1899ec0088bbSAlexeiFedorov nse = (uint64_t)GPT_NSE_SECURE << GPT_NSE_SHIFT; 1900ec0088bbSAlexeiFedorov } else { 1901ec0088bbSAlexeiFedorov VERBOSE("GPT: Only Granule in REALM or SECURE state can be undelegated\n"); 1902b99926efSAlexeiFedorov VERBOSE(" Caller: %u Current GPI: %u\n", src_sec_state, 19036a00e9b0SRobert Wakim gpi_info.gpi); 1904d766084fSAlexeiFedorov GPT_UNLOCK; 1905e50fedbcSJavier Almansa Sobrino return -EPERM; 19066a00e9b0SRobert Wakim } 1907f19dc624Sjohpow01 1908ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK != 0) 1909ec0088bbSAlexeiFedorov /* Check for Contiguous descriptor */ 1910ec0088bbSAlexeiFedorov if ((gpi_info.gpt_l1_desc & GPT_L1_TYPE_CONT_DESC_MASK) == 1911ec0088bbSAlexeiFedorov GPT_L1_TYPE_CONT_DESC) { 1912ec0088bbSAlexeiFedorov shatter_block(base, &gpi_info, l1_desc); 1913ec0088bbSAlexeiFedorov } 1914ec0088bbSAlexeiFedorov #endif 1915ec0088bbSAlexeiFedorov /* 1916ec0088bbSAlexeiFedorov * In order to maintain mutual distrust between Realm and Secure 19176a00e9b0SRobert Wakim * states, remove access now, in order to guarantee that writes 19186a00e9b0SRobert Wakim * to the currently-accessible physical address space will not 19196a00e9b0SRobert Wakim * later become observable. 19206a00e9b0SRobert Wakim */ 19216a00e9b0SRobert Wakim write_gpt(&gpi_info.gpt_l1_desc, gpi_info.gpt_l1_addr, 19226a00e9b0SRobert Wakim gpi_info.gpi_shift, gpi_info.idx, GPT_GPI_NO_ACCESS); 19236a00e9b0SRobert Wakim 1924ec0088bbSAlexeiFedorov /* Ensure that all agents observe the new NO_ACCESS configuration */ 1925ec0088bbSAlexeiFedorov tlbi_page_dsbosh(base); 19266a00e9b0SRobert Wakim 1927ec0088bbSAlexeiFedorov /* Ensure that the scrubbed data have made it past the PoPA */ 1928ec0088bbSAlexeiFedorov flush_page_to_popa(base | nse); 19296a00e9b0SRobert Wakim 19306a00e9b0SRobert Wakim /* 1931ec0088bbSAlexeiFedorov * Remove any data loaded speculatively in NS space from before 1932ec0088bbSAlexeiFedorov * the scrubbing. 19336a00e9b0SRobert Wakim */ 19346a00e9b0SRobert Wakim nse = (uint64_t)GPT_NSE_NS << GPT_NSE_SHIFT; 19356a00e9b0SRobert Wakim 1936ec0088bbSAlexeiFedorov flush_page_to_popa(base | nse); 19376a00e9b0SRobert Wakim 1938ec0088bbSAlexeiFedorov /* Clear existing GPI encoding and transition granule */ 19396a00e9b0SRobert Wakim write_gpt(&gpi_info.gpt_l1_desc, gpi_info.gpt_l1_addr, 19406a00e9b0SRobert Wakim gpi_info.gpi_shift, gpi_info.idx, GPT_GPI_NS); 19416a00e9b0SRobert Wakim 19426a00e9b0SRobert Wakim /* Ensure that all agents observe the new NS configuration */ 1943ec0088bbSAlexeiFedorov tlbi_page_dsbosh(base); 1944f19dc624Sjohpow01 1945ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK != 0) 1946ec0088bbSAlexeiFedorov if (gpi_info.gpt_l1_desc == GPT_L1_NS_DESC) { 1947ec0088bbSAlexeiFedorov /* Try to fuse */ 1948ec0088bbSAlexeiFedorov fuse_block(base, &gpi_info, GPT_L1_NS_DESC); 1949ec0088bbSAlexeiFedorov } 1950ec0088bbSAlexeiFedorov #endif 1951d766084fSAlexeiFedorov /* Unlock the lock to GPT */ 1952d766084fSAlexeiFedorov GPT_UNLOCK; 1953f19dc624Sjohpow01 195477612b90SSoby Mathew /* 195577612b90SSoby Mathew * The isb() will be done as part of context 1956b99926efSAlexeiFedorov * synchronization when returning to lower EL. 195777612b90SSoby Mathew */ 1958b99926efSAlexeiFedorov VERBOSE("GPT: Granule 0x%"PRIx64" GPI 0x%x->0x%x\n", 19596a00e9b0SRobert Wakim base, gpi_info.gpi, GPT_GPI_NS); 1960f19dc624Sjohpow01 1961f19dc624Sjohpow01 return 0; 1962f19dc624Sjohpow01 } 1963