xref: /rk3399_ARM-atf/lib/gpt_rme/gpt_rme.c (revision b0f1c84035fb25e331b21f08f3f3e8e643c3394d)
1f19dc624Sjohpow01 /*
2*b0f1c840SAlexeiFedorov  * Copyright (c) 2022-2025, 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 <common/debug.h>
16f19dc624Sjohpow01 #include <lib/gpt_rme/gpt_rme.h>
17f19dc624Sjohpow01 #include <lib/smccc.h>
18f19dc624Sjohpow01 #include <lib/xlat_tables/xlat_tables_v2.h>
19f19dc624Sjohpow01 
20*b0f1c840SAlexeiFedorov #include "gpt_rme_private.h"
21*b0f1c840SAlexeiFedorov 
22f19dc624Sjohpow01 #if !ENABLE_RME
23b99926efSAlexeiFedorov #error "ENABLE_RME must be enabled to use the GPT library"
24f19dc624Sjohpow01 #endif
25f19dc624Sjohpow01 
26f19dc624Sjohpow01 /*
27f19dc624Sjohpow01  * Lookup T from PPS
28f19dc624Sjohpow01  *
29f19dc624Sjohpow01  *   PPS    Size    T
30f19dc624Sjohpow01  *   0b000  4GB     32
31f19dc624Sjohpow01  *   0b001  64GB    36
32f19dc624Sjohpow01  *   0b010  1TB     40
33f19dc624Sjohpow01  *   0b011  4TB     42
34f19dc624Sjohpow01  *   0b100  16TB    44
35f19dc624Sjohpow01  *   0b101  256TB   48
36f19dc624Sjohpow01  *   0b110  4PB     52
37f19dc624Sjohpow01  *
38f19dc624Sjohpow01  * See section 15.1.27 of the RME specification.
39f19dc624Sjohpow01  */
40f19dc624Sjohpow01 static const gpt_t_val_e gpt_t_lookup[] = {PPS_4GB_T, PPS_64GB_T,
41f19dc624Sjohpow01 					   PPS_1TB_T, PPS_4TB_T,
42f19dc624Sjohpow01 					   PPS_16TB_T, PPS_256TB_T,
43f19dc624Sjohpow01 					   PPS_4PB_T};
44f19dc624Sjohpow01 
45f19dc624Sjohpow01 /*
46f19dc624Sjohpow01  * Lookup P from PGS
47f19dc624Sjohpow01  *
48f19dc624Sjohpow01  *   PGS    Size    P
49f19dc624Sjohpow01  *   0b00   4KB     12
50f19dc624Sjohpow01  *   0b10   16KB    14
51f19dc624Sjohpow01  *   0b01   64KB    16
52f19dc624Sjohpow01  *
53f19dc624Sjohpow01  * Note that pgs=0b10 is 16KB and pgs=0b01 is 64KB, this is not a typo.
54f19dc624Sjohpow01  *
55f19dc624Sjohpow01  * See section 15.1.27 of the RME specification.
56f19dc624Sjohpow01  */
57f19dc624Sjohpow01 static const gpt_p_val_e gpt_p_lookup[] = {PGS_4KB_P, PGS_64KB_P, PGS_16KB_P};
58f19dc624Sjohpow01 
59ec0088bbSAlexeiFedorov static void shatter_2mb(uintptr_t base, const gpi_info_t *gpi_info,
60ec0088bbSAlexeiFedorov 				uint64_t l1_desc);
61ec0088bbSAlexeiFedorov static void shatter_32mb(uintptr_t base, const gpi_info_t *gpi_info,
62ec0088bbSAlexeiFedorov 				uint64_t l1_desc);
63ec0088bbSAlexeiFedorov static void shatter_512mb(uintptr_t base, const gpi_info_t *gpi_info,
64ec0088bbSAlexeiFedorov 				uint64_t l1_desc);
65ec0088bbSAlexeiFedorov 
66f19dc624Sjohpow01 /*
67b99926efSAlexeiFedorov  * This structure contains GPT configuration data
68f19dc624Sjohpow01  */
69f19dc624Sjohpow01 typedef struct {
70f19dc624Sjohpow01 	uintptr_t plat_gpt_l0_base;
71f19dc624Sjohpow01 	gpccr_pps_e pps;
72f19dc624Sjohpow01 	gpt_t_val_e t;
73f19dc624Sjohpow01 	gpccr_pgs_e pgs;
74f19dc624Sjohpow01 	gpt_p_val_e p;
75f19dc624Sjohpow01 } gpt_config_t;
76f19dc624Sjohpow01 
77f19dc624Sjohpow01 static gpt_config_t gpt_config;
78f19dc624Sjohpow01 
79ec0088bbSAlexeiFedorov /*
80ec0088bbSAlexeiFedorov  * Number of L1 entries in 2MB, depending on GPCCR_EL3.PGS:
81ec0088bbSAlexeiFedorov  * +-------+------------+
82ec0088bbSAlexeiFedorov  * |  PGS  | L1 entries |
83ec0088bbSAlexeiFedorov  * +-------+------------+
84ec0088bbSAlexeiFedorov  * |  4KB  |     32     |
85ec0088bbSAlexeiFedorov  * +-------+------------+
86ec0088bbSAlexeiFedorov  * |  16KB |     8      |
87ec0088bbSAlexeiFedorov  * +-------+------------+
88ec0088bbSAlexeiFedorov  * |  64KB |     2      |
89ec0088bbSAlexeiFedorov  * +-------+------------+
90ec0088bbSAlexeiFedorov  */
91ec0088bbSAlexeiFedorov static unsigned int gpt_l1_cnt_2mb;
92ec0088bbSAlexeiFedorov 
93ec0088bbSAlexeiFedorov /*
94ec0088bbSAlexeiFedorov  * Mask for the L1 index field, depending on
95ec0088bbSAlexeiFedorov  * GPCCR_EL3.L0GPTSZ and GPCCR_EL3.PGS:
96ec0088bbSAlexeiFedorov  * +---------+-------------------------------+
97ec0088bbSAlexeiFedorov  * |         |             PGS               |
98ec0088bbSAlexeiFedorov  * +---------+----------+----------+---------+
99ec0088bbSAlexeiFedorov  * | L0GPTSZ |   4KB    |   16KB   |   64KB  |
100ec0088bbSAlexeiFedorov  * +---------+----------+----------+---------+
101ec0088bbSAlexeiFedorov  * |  1GB    |  0x3FFF  |  0xFFF   |  0x3FF  |
102ec0088bbSAlexeiFedorov  * +---------+----------+----------+---------+
103ec0088bbSAlexeiFedorov  * |  16GB   | 0x3FFFF  |  0xFFFF  | 0x3FFF  |
104ec0088bbSAlexeiFedorov  * +---------+----------+----------+---------+
105ec0088bbSAlexeiFedorov  * |  64GB   | 0xFFFFF  | 0x3FFFF  | 0xFFFF  |
106ec0088bbSAlexeiFedorov  * +---------+----------+----------+---------+
107ec0088bbSAlexeiFedorov  * |  512GB  | 0x7FFFFF | 0x1FFFFF | 0x7FFFF |
108ec0088bbSAlexeiFedorov  * +---------+----------+----------+---------+
109ec0088bbSAlexeiFedorov  */
110ec0088bbSAlexeiFedorov static uint64_t gpt_l1_index_mask;
111ec0088bbSAlexeiFedorov 
112ec0088bbSAlexeiFedorov /* Number of 128-bit L1 entries in 2MB, 32MB and 512MB */
113ec0088bbSAlexeiFedorov #define L1_QWORDS_2MB	(gpt_l1_cnt_2mb / 2U)
114ec0088bbSAlexeiFedorov #define L1_QWORDS_32MB	(L1_QWORDS_2MB * 16U)
115ec0088bbSAlexeiFedorov #define L1_QWORDS_512MB	(L1_QWORDS_32MB * 16U)
116ec0088bbSAlexeiFedorov 
117ec0088bbSAlexeiFedorov /* Size in bytes of L1 entries in 2MB, 32MB */
118ec0088bbSAlexeiFedorov #define L1_BYTES_2MB	(gpt_l1_cnt_2mb * sizeof(uint64_t))
119ec0088bbSAlexeiFedorov #define L1_BYTES_32MB	(L1_BYTES_2MB * 16U)
120ec0088bbSAlexeiFedorov 
121ec0088bbSAlexeiFedorov /* Get the index into the L1 table from a physical address */
122ec0088bbSAlexeiFedorov #define GPT_L1_INDEX(_pa)	\
123ec0088bbSAlexeiFedorov 	(((_pa) >> (unsigned int)GPT_L1_IDX_SHIFT(gpt_config.p)) & gpt_l1_index_mask)
124ec0088bbSAlexeiFedorov 
125*b0f1c840SAlexeiFedorov /* This variable is used during initialization of the L1 tables */
126f19dc624Sjohpow01 static uintptr_t gpt_l1_tbl;
127f19dc624Sjohpow01 
128*b0f1c840SAlexeiFedorov /* These variables are used during runtime */
129d766084fSAlexeiFedorov #if (RME_GPT_BITLOCK_BLOCK == 0)
130d766084fSAlexeiFedorov /*
131d766084fSAlexeiFedorov  * The GPTs are protected by a global spinlock to ensure
132d766084fSAlexeiFedorov  * that multiple CPUs do not attempt to change the descriptors at once.
133d766084fSAlexeiFedorov  */
134d766084fSAlexeiFedorov static spinlock_t gpt_lock;
135ec0088bbSAlexeiFedorov 
136*b0f1c840SAlexeiFedorov /* Lock/unlock macros for GPT entries
137*b0f1c840SAlexeiFedorov  *
138d766084fSAlexeiFedorov  * Access to GPT is controlled by a global lock to ensure
139d766084fSAlexeiFedorov  * that no more than one CPU is allowed to make changes at any
140d766084fSAlexeiFedorov  * given time.
141d766084fSAlexeiFedorov  */
142d766084fSAlexeiFedorov #define GPT_LOCK	spin_lock(&gpt_lock)
143d766084fSAlexeiFedorov #define GPT_UNLOCK	spin_unlock(&gpt_lock)
144d766084fSAlexeiFedorov #else
145*b0f1c840SAlexeiFedorov 
146*b0f1c840SAlexeiFedorov /* Base address of bitlocks array */
147*b0f1c840SAlexeiFedorov static bitlock_t *gpt_bitlock;
148*b0f1c840SAlexeiFedorov 
149d766084fSAlexeiFedorov /*
150d766084fSAlexeiFedorov  * Access to a block of memory is controlled by a bitlock.
151d766084fSAlexeiFedorov  * Size of block = RME_GPT_BITLOCK_BLOCK * 512MB.
152d766084fSAlexeiFedorov  */
153d766084fSAlexeiFedorov #define GPT_LOCK	bit_lock(gpi_info.lock, gpi_info.mask)
154d766084fSAlexeiFedorov #define GPT_UNLOCK	bit_unlock(gpi_info.lock, gpi_info.mask)
155*b0f1c840SAlexeiFedorov #endif /* RME_GPT_BITLOCK_BLOCK */
156ec0088bbSAlexeiFedorov 
157ec0088bbSAlexeiFedorov static void tlbi_page_dsbosh(uintptr_t base)
158ec0088bbSAlexeiFedorov {
159ec0088bbSAlexeiFedorov 	/* Look-up table for invalidation TLBs for 4KB, 16KB and 64KB pages */
160ec0088bbSAlexeiFedorov 	static const gpt_tlbi_lookup_t tlbi_page_lookup[] = {
161ec0088bbSAlexeiFedorov 		{ tlbirpalos_4k, ~(SZ_4K - 1UL) },
162ec0088bbSAlexeiFedorov 		{ tlbirpalos_64k, ~(SZ_64K - 1UL) },
163ec0088bbSAlexeiFedorov 		{ tlbirpalos_16k, ~(SZ_16K - 1UL) }
164ec0088bbSAlexeiFedorov 	};
165ec0088bbSAlexeiFedorov 
166ec0088bbSAlexeiFedorov 	tlbi_page_lookup[gpt_config.pgs].function(
167ec0088bbSAlexeiFedorov 			base & tlbi_page_lookup[gpt_config.pgs].mask);
168ec0088bbSAlexeiFedorov 	dsbosh();
169ec0088bbSAlexeiFedorov }
170ec0088bbSAlexeiFedorov 
171ec0088bbSAlexeiFedorov /*
172ec0088bbSAlexeiFedorov  * Helper function to fill out GPI entries in a single L1 table
173ec0088bbSAlexeiFedorov  * with Granules or Contiguous descriptor.
174ec0088bbSAlexeiFedorov  *
175ec0088bbSAlexeiFedorov  * Parameters
176ec0088bbSAlexeiFedorov  *   l1			Pointer to 2MB, 32MB or 512MB aligned L1 table entry to fill out
177ec0088bbSAlexeiFedorov  *   l1_desc		GPT Granules or Contiguous descriptor set this range to
178ec0088bbSAlexeiFedorov  *   cnt		Number of double 128-bit L1 entries to fill
179ec0088bbSAlexeiFedorov  *
180ec0088bbSAlexeiFedorov  */
181ec0088bbSAlexeiFedorov static void fill_desc(uint64_t *l1, uint64_t l1_desc, unsigned int cnt)
182ec0088bbSAlexeiFedorov {
183ec0088bbSAlexeiFedorov 	uint128_t *l1_quad = (uint128_t *)l1;
184ec0088bbSAlexeiFedorov 	uint128_t l1_quad_desc = (uint128_t)l1_desc | ((uint128_t)l1_desc << 64);
185ec0088bbSAlexeiFedorov 
186ec0088bbSAlexeiFedorov 	VERBOSE("GPT: %s(%p 0x%"PRIx64" %u)\n", __func__, l1, l1_desc, cnt);
187ec0088bbSAlexeiFedorov 
188ec0088bbSAlexeiFedorov 	for (unsigned int i = 0U; i < cnt; i++) {
189ec0088bbSAlexeiFedorov 		*l1_quad++ = l1_quad_desc;
190ec0088bbSAlexeiFedorov 	}
191ec0088bbSAlexeiFedorov }
192ec0088bbSAlexeiFedorov 
193ec0088bbSAlexeiFedorov static void shatter_2mb(uintptr_t base, const gpi_info_t *gpi_info,
194ec0088bbSAlexeiFedorov 				uint64_t l1_desc)
195ec0088bbSAlexeiFedorov {
196ec0088bbSAlexeiFedorov 	unsigned long idx = GPT_L1_INDEX(ALIGN_2MB(base));
197ec0088bbSAlexeiFedorov 
198ec0088bbSAlexeiFedorov 	VERBOSE("GPT: %s(0x%"PRIxPTR" 0x%"PRIx64")\n",
199ec0088bbSAlexeiFedorov 				__func__, base, l1_desc);
200ec0088bbSAlexeiFedorov 
201ec0088bbSAlexeiFedorov 	/* Convert 2MB Contiguous block to Granules */
202ec0088bbSAlexeiFedorov 	fill_desc(&gpi_info->gpt_l1_addr[idx], l1_desc, L1_QWORDS_2MB);
203ec0088bbSAlexeiFedorov }
204ec0088bbSAlexeiFedorov 
205ec0088bbSAlexeiFedorov static void shatter_32mb(uintptr_t base, const gpi_info_t *gpi_info,
206ec0088bbSAlexeiFedorov 				uint64_t l1_desc)
207ec0088bbSAlexeiFedorov {
208ec0088bbSAlexeiFedorov 	unsigned long idx = GPT_L1_INDEX(ALIGN_2MB(base));
209ec0088bbSAlexeiFedorov 	const uint64_t *l1_gran = &gpi_info->gpt_l1_addr[idx];
210ec0088bbSAlexeiFedorov 	uint64_t l1_cont_desc = GPT_L1_CONT_DESC(l1_desc, 2MB);
211ec0088bbSAlexeiFedorov 	uint64_t *l1;
212ec0088bbSAlexeiFedorov 
213ec0088bbSAlexeiFedorov 	VERBOSE("GPT: %s(0x%"PRIxPTR" 0x%"PRIx64")\n",
214ec0088bbSAlexeiFedorov 				__func__, base, l1_desc);
215ec0088bbSAlexeiFedorov 
216ec0088bbSAlexeiFedorov 	/* Get index corresponding to 32MB aligned address */
217ec0088bbSAlexeiFedorov 	idx = GPT_L1_INDEX(ALIGN_32MB(base));
218ec0088bbSAlexeiFedorov 	l1 = &gpi_info->gpt_l1_addr[idx];
219ec0088bbSAlexeiFedorov 
220ec0088bbSAlexeiFedorov 	/* 16 x 2MB blocks in 32MB */
221ec0088bbSAlexeiFedorov 	for (unsigned int i = 0U; i < 16U; i++) {
222ec0088bbSAlexeiFedorov 		/* Fill with Granules or Contiguous descriptors */
223ec0088bbSAlexeiFedorov 		fill_desc(l1, (l1 == l1_gran) ? l1_desc : l1_cont_desc,
224ec0088bbSAlexeiFedorov 							L1_QWORDS_2MB);
225ec0088bbSAlexeiFedorov 		l1 = (uint64_t *)((uintptr_t)l1 + L1_BYTES_2MB);
226ec0088bbSAlexeiFedorov 	}
227ec0088bbSAlexeiFedorov }
228ec0088bbSAlexeiFedorov 
229ec0088bbSAlexeiFedorov static void shatter_512mb(uintptr_t base, const gpi_info_t *gpi_info,
230ec0088bbSAlexeiFedorov 				uint64_t l1_desc)
231ec0088bbSAlexeiFedorov {
232ec0088bbSAlexeiFedorov 	unsigned long idx = GPT_L1_INDEX(ALIGN_32MB(base));
233ec0088bbSAlexeiFedorov 	const uint64_t *l1_32mb = &gpi_info->gpt_l1_addr[idx];
234ec0088bbSAlexeiFedorov 	uint64_t l1_cont_desc = GPT_L1_CONT_DESC(l1_desc, 32MB);
235ec0088bbSAlexeiFedorov 	uint64_t *l1;
236ec0088bbSAlexeiFedorov 
237ec0088bbSAlexeiFedorov 	VERBOSE("GPT: %s(0x%"PRIxPTR" 0x%"PRIx64")\n",
238ec0088bbSAlexeiFedorov 				__func__, base, l1_desc);
239ec0088bbSAlexeiFedorov 
240ec0088bbSAlexeiFedorov 	/* Get index corresponding to 512MB aligned address */
241ec0088bbSAlexeiFedorov 	idx = GPT_L1_INDEX(ALIGN_512MB(base));
242ec0088bbSAlexeiFedorov 	l1 = &gpi_info->gpt_l1_addr[idx];
243ec0088bbSAlexeiFedorov 
244ec0088bbSAlexeiFedorov 	/* 16 x 32MB blocks in 512MB */
245ec0088bbSAlexeiFedorov 	for (unsigned int i = 0U; i < 16U; i++) {
246ec0088bbSAlexeiFedorov 		if (l1 == l1_32mb) {
247ec0088bbSAlexeiFedorov 			/* Shatter this 32MB block */
248ec0088bbSAlexeiFedorov 			shatter_32mb(base, gpi_info, l1_desc);
249ec0088bbSAlexeiFedorov 		} else {
250ec0088bbSAlexeiFedorov 			/* Fill 32MB with Contiguous descriptors */
251ec0088bbSAlexeiFedorov 			fill_desc(l1, l1_cont_desc, L1_QWORDS_32MB);
252ec0088bbSAlexeiFedorov 		}
253ec0088bbSAlexeiFedorov 
254ec0088bbSAlexeiFedorov 		l1 = (uint64_t *)((uintptr_t)l1 + L1_BYTES_32MB);
255ec0088bbSAlexeiFedorov 	}
256ec0088bbSAlexeiFedorov }
257ec0088bbSAlexeiFedorov 
258f19dc624Sjohpow01 /*
259f19dc624Sjohpow01  * This function checks to see if a GPI value is valid.
260f19dc624Sjohpow01  *
261f19dc624Sjohpow01  * These are valid GPI values.
262f19dc624Sjohpow01  *   GPT_GPI_NO_ACCESS   U(0x0)
263f19dc624Sjohpow01  *   GPT_GPI_SECURE      U(0x8)
264f19dc624Sjohpow01  *   GPT_GPI_NS          U(0x9)
265f19dc624Sjohpow01  *   GPT_GPI_ROOT        U(0xA)
266f19dc624Sjohpow01  *   GPT_GPI_REALM       U(0xB)
267f19dc624Sjohpow01  *   GPT_GPI_ANY         U(0xF)
268f19dc624Sjohpow01  *
269f19dc624Sjohpow01  * Parameters
270f19dc624Sjohpow01  *   gpi		GPI to check for validity.
271f19dc624Sjohpow01  *
272f19dc624Sjohpow01  * Return
273f19dc624Sjohpow01  *   true for a valid GPI, false for an invalid one.
274f19dc624Sjohpow01  */
27520e2683dSAlexeiFedorov static bool is_gpi_valid(unsigned int gpi)
276f19dc624Sjohpow01 {
277f19dc624Sjohpow01 	if ((gpi == GPT_GPI_NO_ACCESS) || (gpi == GPT_GPI_ANY) ||
278f19dc624Sjohpow01 	    ((gpi >= GPT_GPI_SECURE) && (gpi <= GPT_GPI_REALM))) {
279f19dc624Sjohpow01 		return true;
280f19dc624Sjohpow01 	}
2816a00e9b0SRobert Wakim 	return false;
282f19dc624Sjohpow01 }
283f19dc624Sjohpow01 
284f19dc624Sjohpow01 /*
285f19dc624Sjohpow01  * This function checks to see if two PAS regions overlap.
286f19dc624Sjohpow01  *
287f19dc624Sjohpow01  * Parameters
288f19dc624Sjohpow01  *   base_1: base address of first PAS
289f19dc624Sjohpow01  *   size_1: size of first PAS
290f19dc624Sjohpow01  *   base_2: base address of second PAS
291f19dc624Sjohpow01  *   size_2: size of second PAS
292f19dc624Sjohpow01  *
293f19dc624Sjohpow01  * Return
294f19dc624Sjohpow01  *   True if PAS regions overlap, false if they do not.
295f19dc624Sjohpow01  */
29620e2683dSAlexeiFedorov static bool check_pas_overlap(uintptr_t base_1, size_t size_1,
297f19dc624Sjohpow01 			      uintptr_t base_2, size_t size_2)
298f19dc624Sjohpow01 {
299f19dc624Sjohpow01 	if (((base_1 + size_1) > base_2) && ((base_2 + size_2) > base_1)) {
300f19dc624Sjohpow01 		return true;
301f19dc624Sjohpow01 	}
3026a00e9b0SRobert Wakim 	return false;
303f19dc624Sjohpow01 }
304f19dc624Sjohpow01 
305f19dc624Sjohpow01 /*
306f19dc624Sjohpow01  * This helper function checks to see if a PAS region from index 0 to
307f19dc624Sjohpow01  * (pas_idx - 1) occupies the L0 region at index l0_idx in the L0 table.
308f19dc624Sjohpow01  *
309f19dc624Sjohpow01  * Parameters
310f19dc624Sjohpow01  *   l0_idx:      Index of the L0 entry to check
311f19dc624Sjohpow01  *   pas_regions: PAS region array
312f19dc624Sjohpow01  *   pas_idx:     Upper bound of the PAS array index.
313f19dc624Sjohpow01  *
314f19dc624Sjohpow01  * Return
315f19dc624Sjohpow01  *   True if a PAS region occupies the L0 region in question, false if not.
316f19dc624Sjohpow01  */
31720e2683dSAlexeiFedorov static bool does_previous_pas_exist_here(unsigned int l0_idx,
318f19dc624Sjohpow01 					 pas_region_t *pas_regions,
319f19dc624Sjohpow01 					 unsigned int pas_idx)
320f19dc624Sjohpow01 {
321b99926efSAlexeiFedorov 	/* Iterate over PAS regions up to pas_idx */
322f19dc624Sjohpow01 	for (unsigned int i = 0U; i < pas_idx; i++) {
32320e2683dSAlexeiFedorov 		if (check_pas_overlap((GPT_L0GPTSZ_ACTUAL_SIZE * l0_idx),
324f19dc624Sjohpow01 		    GPT_L0GPTSZ_ACTUAL_SIZE,
325f19dc624Sjohpow01 		    pas_regions[i].base_pa, pas_regions[i].size)) {
326f19dc624Sjohpow01 			return true;
327f19dc624Sjohpow01 		}
328f19dc624Sjohpow01 	}
329f19dc624Sjohpow01 	return false;
330f19dc624Sjohpow01 }
331f19dc624Sjohpow01 
332f19dc624Sjohpow01 /*
333f19dc624Sjohpow01  * This function iterates over all of the PAS regions and checks them to ensure
334f19dc624Sjohpow01  * proper alignment of base and size, that the GPI is valid, and that no regions
335f19dc624Sjohpow01  * overlap. As a part of the overlap checks, this function checks existing L0
336f19dc624Sjohpow01  * mappings against the new PAS regions in the event that gpt_init_pas_l1_tables
337f19dc624Sjohpow01  * is called multiple times to place L1 tables in different areas of memory. It
338f19dc624Sjohpow01  * also counts the number of L1 tables needed and returns it on success.
339f19dc624Sjohpow01  *
340f19dc624Sjohpow01  * Parameters
341f19dc624Sjohpow01  *   *pas_regions	Pointer to array of PAS region structures.
342f19dc624Sjohpow01  *   pas_region_cnt	Total number of PAS regions in the array.
343f19dc624Sjohpow01  *
344f19dc624Sjohpow01  * Return
345f19dc624Sjohpow01  *   Negative Linux error code in the event of a failure, number of L1 regions
346f19dc624Sjohpow01  *   required when successful.
347f19dc624Sjohpow01  */
34820e2683dSAlexeiFedorov static int validate_pas_mappings(pas_region_t *pas_regions,
349f19dc624Sjohpow01 				 unsigned int pas_region_cnt)
350f19dc624Sjohpow01 {
351f19dc624Sjohpow01 	unsigned int idx;
352f19dc624Sjohpow01 	unsigned int l1_cnt = 0U;
353f19dc624Sjohpow01 	unsigned int pas_l1_cnt;
354f19dc624Sjohpow01 	uint64_t *l0_desc = (uint64_t *)gpt_config.plat_gpt_l0_base;
355f19dc624Sjohpow01 
356f19dc624Sjohpow01 	assert(pas_regions != NULL);
357f19dc624Sjohpow01 	assert(pas_region_cnt != 0U);
358f19dc624Sjohpow01 
359f19dc624Sjohpow01 	for (idx = 0U; idx < pas_region_cnt; idx++) {
360b99926efSAlexeiFedorov 		/* Check for arithmetic overflow in region */
361f19dc624Sjohpow01 		if ((ULONG_MAX - pas_regions[idx].base_pa) <
362f19dc624Sjohpow01 		    pas_regions[idx].size) {
363b99926efSAlexeiFedorov 			ERROR("GPT: Address overflow in PAS[%u]!\n", idx);
364f19dc624Sjohpow01 			return -EOVERFLOW;
365f19dc624Sjohpow01 		}
366f19dc624Sjohpow01 
367b99926efSAlexeiFedorov 		/* Initial checks for PAS validity */
368f19dc624Sjohpow01 		if (((pas_regions[idx].base_pa + pas_regions[idx].size) >
369f19dc624Sjohpow01 		    GPT_PPS_ACTUAL_SIZE(gpt_config.t)) ||
37020e2683dSAlexeiFedorov 		    !is_gpi_valid(GPT_PAS_ATTR_GPI(pas_regions[idx].attrs))) {
371b99926efSAlexeiFedorov 			ERROR("GPT: PAS[%u] is invalid!\n", idx);
372f19dc624Sjohpow01 			return -EFAULT;
373f19dc624Sjohpow01 		}
374f19dc624Sjohpow01 
375f19dc624Sjohpow01 		/*
376f19dc624Sjohpow01 		 * Make sure this PAS does not overlap with another one. We
377f19dc624Sjohpow01 		 * start from idx + 1 instead of 0 since prior PAS mappings will
378f19dc624Sjohpow01 		 * have already checked themselves against this one.
379f19dc624Sjohpow01 		 */
380b99926efSAlexeiFedorov 		for (unsigned int i = idx + 1U; i < pas_region_cnt; i++) {
38120e2683dSAlexeiFedorov 			if (check_pas_overlap(pas_regions[idx].base_pa,
382f19dc624Sjohpow01 			    pas_regions[idx].size,
383f19dc624Sjohpow01 			    pas_regions[i].base_pa,
384f19dc624Sjohpow01 			    pas_regions[i].size)) {
385b99926efSAlexeiFedorov 				ERROR("GPT: PAS[%u] overlaps with PAS[%u]\n",
386f19dc624Sjohpow01 					i, idx);
387f19dc624Sjohpow01 				return -EFAULT;
388f19dc624Sjohpow01 			}
389f19dc624Sjohpow01 		}
390f19dc624Sjohpow01 
391f19dc624Sjohpow01 		/*
392f19dc624Sjohpow01 		 * Since this function can be called multiple times with
393f19dc624Sjohpow01 		 * separate L1 tables we need to check the existing L0 mapping
394f19dc624Sjohpow01 		 * to see if this PAS would fall into one that has already been
395f19dc624Sjohpow01 		 * initialized.
396f19dc624Sjohpow01 		 */
397ec0088bbSAlexeiFedorov 		for (unsigned int i =
398ec0088bbSAlexeiFedorov 			(unsigned int)GPT_L0_IDX(pas_regions[idx].base_pa);
399b99926efSAlexeiFedorov 			i <= GPT_L0_IDX(pas_regions[idx].base_pa +
400b99926efSAlexeiFedorov 					pas_regions[idx].size - 1UL);
401f19dc624Sjohpow01 			i++) {
402f19dc624Sjohpow01 			if ((GPT_L0_TYPE(l0_desc[i]) == GPT_L0_TYPE_BLK_DESC) &&
403f19dc624Sjohpow01 			    (GPT_L0_BLKD_GPI(l0_desc[i]) == GPT_GPI_ANY)) {
404b99926efSAlexeiFedorov 				/* This descriptor is unused so continue */
405f19dc624Sjohpow01 				continue;
406f19dc624Sjohpow01 			}
407f19dc624Sjohpow01 
408f19dc624Sjohpow01 			/*
409f19dc624Sjohpow01 			 * This descriptor has been initialized in a previous
410f19dc624Sjohpow01 			 * call to this function so cannot be initialized again.
411f19dc624Sjohpow01 			 */
412ec0088bbSAlexeiFedorov 			ERROR("GPT: PAS[%u] overlaps with previous L0[%u]!\n",
413f19dc624Sjohpow01 			      idx, i);
414f19dc624Sjohpow01 			return -EFAULT;
415f19dc624Sjohpow01 		}
416f19dc624Sjohpow01 
417b99926efSAlexeiFedorov 		/* Check for block mapping (L0) type */
418f19dc624Sjohpow01 		if (GPT_PAS_ATTR_MAP_TYPE(pas_regions[idx].attrs) ==
419f19dc624Sjohpow01 		    GPT_PAS_ATTR_MAP_TYPE_BLOCK) {
420b99926efSAlexeiFedorov 			/* Make sure base and size are block-aligned */
421f19dc624Sjohpow01 			if (!GPT_IS_L0_ALIGNED(pas_regions[idx].base_pa) ||
422f19dc624Sjohpow01 			    !GPT_IS_L0_ALIGNED(pas_regions[idx].size)) {
423b99926efSAlexeiFedorov 				ERROR("GPT: PAS[%u] is not block-aligned!\n",
424f19dc624Sjohpow01 				      idx);
425f19dc624Sjohpow01 				return -EFAULT;
426f19dc624Sjohpow01 			}
427f19dc624Sjohpow01 
428f19dc624Sjohpow01 			continue;
429f19dc624Sjohpow01 		}
430f19dc624Sjohpow01 
431b99926efSAlexeiFedorov 		/* Check for granule mapping (L1) type */
432f19dc624Sjohpow01 		if (GPT_PAS_ATTR_MAP_TYPE(pas_regions[idx].attrs) ==
433f19dc624Sjohpow01 		    GPT_PAS_ATTR_MAP_TYPE_GRANULE) {
434b99926efSAlexeiFedorov 			/* Make sure base and size are granule-aligned */
435f19dc624Sjohpow01 			if (!GPT_IS_L1_ALIGNED(gpt_config.p, pas_regions[idx].base_pa) ||
436f19dc624Sjohpow01 			    !GPT_IS_L1_ALIGNED(gpt_config.p, pas_regions[idx].size)) {
437b99926efSAlexeiFedorov 				ERROR("GPT: PAS[%u] is not granule-aligned!\n",
438f19dc624Sjohpow01 				      idx);
439f19dc624Sjohpow01 				return -EFAULT;
440f19dc624Sjohpow01 			}
441f19dc624Sjohpow01 
442b99926efSAlexeiFedorov 			/* Find how many L1 tables this PAS occupies */
443f19dc624Sjohpow01 			pas_l1_cnt = (GPT_L0_IDX(pas_regions[idx].base_pa +
444b99926efSAlexeiFedorov 				     pas_regions[idx].size - 1UL) -
445b99926efSAlexeiFedorov 				     GPT_L0_IDX(pas_regions[idx].base_pa) + 1U);
446f19dc624Sjohpow01 
447f19dc624Sjohpow01 			/*
448f19dc624Sjohpow01 			 * This creates a situation where, if multiple PAS
449f19dc624Sjohpow01 			 * regions occupy the same table descriptor, we can get
450f19dc624Sjohpow01 			 * an artificially high total L1 table count. The way we
451f19dc624Sjohpow01 			 * handle this is by checking each PAS against those
452f19dc624Sjohpow01 			 * before it in the array, and if they both occupy the
453f19dc624Sjohpow01 			 * same PAS we subtract from pas_l1_cnt and only the
454f19dc624Sjohpow01 			 * first PAS in the array gets to count it.
455f19dc624Sjohpow01 			 */
456f19dc624Sjohpow01 
457f19dc624Sjohpow01 			/*
458f19dc624Sjohpow01 			 * If L1 count is greater than 1 we know the start and
459f19dc624Sjohpow01 			 * end PAs are in different L0 regions so we must check
460f19dc624Sjohpow01 			 * both for overlap against other PAS.
461f19dc624Sjohpow01 			 */
462f19dc624Sjohpow01 			if (pas_l1_cnt > 1) {
46320e2683dSAlexeiFedorov 				if (does_previous_pas_exist_here(
464f19dc624Sjohpow01 				    GPT_L0_IDX(pas_regions[idx].base_pa +
465b99926efSAlexeiFedorov 				    pas_regions[idx].size - 1UL),
466f19dc624Sjohpow01 				    pas_regions, idx)) {
467b99926efSAlexeiFedorov 					pas_l1_cnt--;
468f19dc624Sjohpow01 				}
469f19dc624Sjohpow01 			}
470f19dc624Sjohpow01 
47120e2683dSAlexeiFedorov 			if (does_previous_pas_exist_here(
472f19dc624Sjohpow01 			    GPT_L0_IDX(pas_regions[idx].base_pa),
473f19dc624Sjohpow01 			    pas_regions, idx)) {
474b99926efSAlexeiFedorov 				pas_l1_cnt--;
475f19dc624Sjohpow01 			}
476f19dc624Sjohpow01 
477f19dc624Sjohpow01 			l1_cnt += pas_l1_cnt;
478f19dc624Sjohpow01 			continue;
479f19dc624Sjohpow01 		}
480f19dc624Sjohpow01 
481b99926efSAlexeiFedorov 		/* If execution reaches this point, mapping type is invalid */
482b99926efSAlexeiFedorov 		ERROR("GPT: PAS[%u] has invalid mapping type 0x%x.\n", idx,
483f19dc624Sjohpow01 		      GPT_PAS_ATTR_MAP_TYPE(pas_regions[idx].attrs));
484f19dc624Sjohpow01 		return -EINVAL;
485f19dc624Sjohpow01 	}
486f19dc624Sjohpow01 
487f19dc624Sjohpow01 	return l1_cnt;
488f19dc624Sjohpow01 }
489f19dc624Sjohpow01 
490f19dc624Sjohpow01 /*
491f19dc624Sjohpow01  * This function validates L0 initialization parameters.
492f19dc624Sjohpow01  *
493f19dc624Sjohpow01  * Parameters
494*b0f1c840SAlexeiFedorov  *   l0_mem_base	Base address of memory used for L0 table.
495*b0f1c840SAlexeiFedorov  *   l0_mem_size	Size of memory available for L0 table.
496f19dc624Sjohpow01  *
497f19dc624Sjohpow01  * Return
498f19dc624Sjohpow01  *   Negative Linux error code in the event of a failure, 0 for success.
499f19dc624Sjohpow01  */
50020e2683dSAlexeiFedorov static int validate_l0_params(gpccr_pps_e pps, uintptr_t l0_mem_base,
501f19dc624Sjohpow01 				size_t l0_mem_size)
502f19dc624Sjohpow01 {
503*b0f1c840SAlexeiFedorov 	size_t l0_alignment;
504f19dc624Sjohpow01 
505f19dc624Sjohpow01 	/*
506f19dc624Sjohpow01 	 * Make sure PPS is valid and then store it since macros need this value
507f19dc624Sjohpow01 	 * to work.
508f19dc624Sjohpow01 	 */
509f19dc624Sjohpow01 	if (pps > GPT_PPS_MAX) {
510b99926efSAlexeiFedorov 		ERROR("GPT: Invalid PPS: 0x%x\n", pps);
511f19dc624Sjohpow01 		return -EINVAL;
512f19dc624Sjohpow01 	}
513f19dc624Sjohpow01 	gpt_config.pps = pps;
514f19dc624Sjohpow01 	gpt_config.t = gpt_t_lookup[pps];
515f19dc624Sjohpow01 
516*b0f1c840SAlexeiFedorov 	/* Alignment must be the greater of 4KB or L0 table size */
517*b0f1c840SAlexeiFedorov 	l0_alignment = SZ_4K;
518f19dc624Sjohpow01 	if (l0_alignment < GPT_L0_TABLE_SIZE(gpt_config.t)) {
519f19dc624Sjohpow01 		l0_alignment = GPT_L0_TABLE_SIZE(gpt_config.t);
520f19dc624Sjohpow01 	}
521f19dc624Sjohpow01 
522b99926efSAlexeiFedorov 	/* Check base address */
523b99926efSAlexeiFedorov 	if ((l0_mem_base == 0UL) ||
524b99926efSAlexeiFedorov 	   ((l0_mem_base & (l0_alignment - 1UL)) != 0UL)) {
525b99926efSAlexeiFedorov 		ERROR("GPT: Invalid L0 base address: 0x%lx\n", l0_mem_base);
526f19dc624Sjohpow01 		return -EFAULT;
527f19dc624Sjohpow01 	}
528f19dc624Sjohpow01 
529*b0f1c840SAlexeiFedorov 	/* Check memory size for L0 table */
530*b0f1c840SAlexeiFedorov 	if (l0_mem_size < GPT_L0_TABLE_SIZE(gpt_config.t)) {
531d766084fSAlexeiFedorov 		ERROR("GPT: Inadequate L0 memory\n");
532*b0f1c840SAlexeiFedorov 		ERROR("      Expected 0x%lx bytes, got 0x%lx\n",
533*b0f1c840SAlexeiFedorov 				GPT_L0_TABLE_SIZE(gpt_config.t), l0_mem_size);
534f19dc624Sjohpow01 		return -ENOMEM;
535f19dc624Sjohpow01 	}
536f19dc624Sjohpow01 
537f19dc624Sjohpow01 	return 0;
538f19dc624Sjohpow01 }
539f19dc624Sjohpow01 
540f19dc624Sjohpow01 /*
541f19dc624Sjohpow01  * In the event that L1 tables are needed, this function validates
542f19dc624Sjohpow01  * the L1 table generation parameters.
543f19dc624Sjohpow01  *
544f19dc624Sjohpow01  * Parameters
545f19dc624Sjohpow01  *   l1_mem_base	Base address of memory used for L1 table allocation.
546f19dc624Sjohpow01  *   l1_mem_size	Total size of memory available for L1 tables.
547f19dc624Sjohpow01  *   l1_gpt_cnt		Number of L1 tables needed.
548f19dc624Sjohpow01  *
549f19dc624Sjohpow01  * Return
550f19dc624Sjohpow01  *   Negative Linux error code in the event of a failure, 0 for success.
551f19dc624Sjohpow01  */
55220e2683dSAlexeiFedorov static int validate_l1_params(uintptr_t l1_mem_base, size_t l1_mem_size,
553f19dc624Sjohpow01 				unsigned int l1_gpt_cnt)
554f19dc624Sjohpow01 {
555f19dc624Sjohpow01 	size_t l1_gpt_mem_sz;
556f19dc624Sjohpow01 
557f19dc624Sjohpow01 	/* Check if the granularity is supported */
558f19dc624Sjohpow01 	if (!xlat_arch_is_granule_size_supported(
559f19dc624Sjohpow01 	    GPT_PGS_ACTUAL_SIZE(gpt_config.p))) {
560f19dc624Sjohpow01 		return -EPERM;
561f19dc624Sjohpow01 	}
562f19dc624Sjohpow01 
563b99926efSAlexeiFedorov 	/* Make sure L1 tables are aligned to their size */
564b99926efSAlexeiFedorov 	if ((l1_mem_base & (GPT_L1_TABLE_SIZE(gpt_config.p) - 1UL)) != 0UL) {
565b99926efSAlexeiFedorov 		ERROR("GPT: Unaligned L1 GPT base address: 0x%"PRIxPTR"\n",
566f19dc624Sjohpow01 		      l1_mem_base);
567f19dc624Sjohpow01 		return -EFAULT;
568f19dc624Sjohpow01 	}
569f19dc624Sjohpow01 
570b99926efSAlexeiFedorov 	/* Get total memory needed for L1 tables */
571f19dc624Sjohpow01 	l1_gpt_mem_sz = l1_gpt_cnt * GPT_L1_TABLE_SIZE(gpt_config.p);
572f19dc624Sjohpow01 
573b99926efSAlexeiFedorov 	/* Check for overflow */
574f19dc624Sjohpow01 	if ((l1_gpt_mem_sz / GPT_L1_TABLE_SIZE(gpt_config.p)) != l1_gpt_cnt) {
575b99926efSAlexeiFedorov 		ERROR("GPT: Overflow calculating L1 memory size\n");
576f19dc624Sjohpow01 		return -ENOMEM;
577f19dc624Sjohpow01 	}
578f19dc624Sjohpow01 
579b99926efSAlexeiFedorov 	/* Make sure enough space was supplied */
580f19dc624Sjohpow01 	if (l1_mem_size < l1_gpt_mem_sz) {
581ec0088bbSAlexeiFedorov 		ERROR("%sL1 GPTs%s", (const char *)"GPT: Inadequate ",
582ec0088bbSAlexeiFedorov 			(const char *)" memory\n");
583*b0f1c840SAlexeiFedorov 		ERROR("      Expected 0x%lx bytes, got 0x%lx\n",
584f19dc624Sjohpow01 			l1_gpt_mem_sz, l1_mem_size);
585f19dc624Sjohpow01 		return -ENOMEM;
586f19dc624Sjohpow01 	}
587f19dc624Sjohpow01 
588b99926efSAlexeiFedorov 	VERBOSE("GPT: Requested 0x%lx bytes for L1 GPTs\n", l1_gpt_mem_sz);
589f19dc624Sjohpow01 	return 0;
590f19dc624Sjohpow01 }
591f19dc624Sjohpow01 
592f19dc624Sjohpow01 /*
593f19dc624Sjohpow01  * This function initializes L0 block descriptors (regions that cannot be
594f19dc624Sjohpow01  * transitioned at the granule level) according to the provided PAS.
595f19dc624Sjohpow01  *
596f19dc624Sjohpow01  * Parameters
597f19dc624Sjohpow01  *   *pas		Pointer to the structure defining the PAS region to
598f19dc624Sjohpow01  *			initialize.
599f19dc624Sjohpow01  */
60020e2683dSAlexeiFedorov static void generate_l0_blk_desc(pas_region_t *pas)
601f19dc624Sjohpow01 {
602f19dc624Sjohpow01 	uint64_t gpt_desc;
603ec0088bbSAlexeiFedorov 	unsigned long idx, end_idx;
604f19dc624Sjohpow01 	uint64_t *l0_gpt_arr;
605f19dc624Sjohpow01 
606*b0f1c840SAlexeiFedorov 	assert(gpt_config.plat_gpt_l0_base != 0UL);
607f19dc624Sjohpow01 	assert(pas != NULL);
608f19dc624Sjohpow01 
609f19dc624Sjohpow01 	/*
610f19dc624Sjohpow01 	 * Checking of PAS parameters has already been done in
61120e2683dSAlexeiFedorov 	 * validate_pas_mappings so no need to check the same things again.
612f19dc624Sjohpow01 	 */
613f19dc624Sjohpow01 
614f19dc624Sjohpow01 	l0_gpt_arr = (uint64_t *)gpt_config.plat_gpt_l0_base;
615f19dc624Sjohpow01 
616f19dc624Sjohpow01 	/* Create the GPT Block descriptor for this PAS region */
617f19dc624Sjohpow01 	gpt_desc = GPT_L0_BLK_DESC(GPT_PAS_ATTR_GPI(pas->attrs));
618f19dc624Sjohpow01 
619f19dc624Sjohpow01 	/* Start index of this region in L0 GPTs */
6206a00e9b0SRobert Wakim 	idx = GPT_L0_IDX(pas->base_pa);
621f19dc624Sjohpow01 
622f19dc624Sjohpow01 	/*
623f19dc624Sjohpow01 	 * Determine number of L0 GPT descriptors covered by
624f19dc624Sjohpow01 	 * this PAS region and use the count to populate these
625f19dc624Sjohpow01 	 * descriptors.
626f19dc624Sjohpow01 	 */
6276a00e9b0SRobert Wakim 	end_idx = GPT_L0_IDX(pas->base_pa + pas->size);
628f19dc624Sjohpow01 
629b99926efSAlexeiFedorov 	/* Generate the needed block descriptors */
630f19dc624Sjohpow01 	for (; idx < end_idx; idx++) {
631f19dc624Sjohpow01 		l0_gpt_arr[idx] = gpt_desc;
632ec0088bbSAlexeiFedorov 		VERBOSE("GPT: L0 entry (BLOCK) index %lu [%p]: GPI = 0x%"PRIx64" (0x%"PRIx64")\n",
633f19dc624Sjohpow01 			idx, &l0_gpt_arr[idx],
634f19dc624Sjohpow01 			(gpt_desc >> GPT_L0_BLK_DESC_GPI_SHIFT) &
635f19dc624Sjohpow01 			GPT_L0_BLK_DESC_GPI_MASK, l0_gpt_arr[idx]);
636f19dc624Sjohpow01 	}
637f19dc624Sjohpow01 }
638f19dc624Sjohpow01 
639f19dc624Sjohpow01 /*
640f19dc624Sjohpow01  * Helper function to determine if the end physical address lies in the same L0
641f19dc624Sjohpow01  * region as the current physical address. If true, the end physical address is
642f19dc624Sjohpow01  * returned else, the start address of the next region is returned.
643f19dc624Sjohpow01  *
644f19dc624Sjohpow01  * Parameters
645f19dc624Sjohpow01  *   cur_pa		Physical address of the current PA in the loop through
646f19dc624Sjohpow01  *			the range.
647f19dc624Sjohpow01  *   end_pa		Physical address of the end PA in a PAS range.
648f19dc624Sjohpow01  *
649f19dc624Sjohpow01  * Return
650f19dc624Sjohpow01  *   The PA of the end of the current range.
651f19dc624Sjohpow01  */
65220e2683dSAlexeiFedorov static uintptr_t get_l1_end_pa(uintptr_t cur_pa, uintptr_t end_pa)
653f19dc624Sjohpow01 {
654f19dc624Sjohpow01 	uintptr_t cur_idx;
655f19dc624Sjohpow01 	uintptr_t end_idx;
656f19dc624Sjohpow01 
6576a00e9b0SRobert Wakim 	cur_idx = GPT_L0_IDX(cur_pa);
6586a00e9b0SRobert Wakim 	end_idx = GPT_L0_IDX(end_pa);
659f19dc624Sjohpow01 
660f19dc624Sjohpow01 	assert(cur_idx <= end_idx);
661f19dc624Sjohpow01 
662f19dc624Sjohpow01 	if (cur_idx == end_idx) {
663f19dc624Sjohpow01 		return end_pa;
664f19dc624Sjohpow01 	}
665f19dc624Sjohpow01 
666ec0088bbSAlexeiFedorov 	return (cur_idx + 1UL) << GPT_L0_IDX_SHIFT;
667f19dc624Sjohpow01 }
668f19dc624Sjohpow01 
669f19dc624Sjohpow01 /*
670ec0088bbSAlexeiFedorov  * Helper function to fill out GPI entries from 'first' granule address of
671ec0088bbSAlexeiFedorov  * the specified 'length' in a single L1 table with 'l1_desc' Contiguous
672ec0088bbSAlexeiFedorov  * descriptor.
673f19dc624Sjohpow01  *
674f19dc624Sjohpow01  * Parameters
675f19dc624Sjohpow01  *   l1			Pointer to L1 table to fill out
676ec0088bbSAlexeiFedorov  *   first		Address of first granule in range
677ec0088bbSAlexeiFedorov  *   length		Length of the range in bytes
678ec0088bbSAlexeiFedorov  *   gpi		GPI set this range to
679ec0088bbSAlexeiFedorov  *
680ec0088bbSAlexeiFedorov  * Return
681ec0088bbSAlexeiFedorov  *   Address of next granule in range.
682f19dc624Sjohpow01  */
6836350aea2SAlexeiFedorov __unused static uintptr_t fill_l1_cont_desc(uint64_t *l1, uintptr_t first,
684ec0088bbSAlexeiFedorov 					    size_t length, unsigned int gpi)
685f19dc624Sjohpow01 {
686ec0088bbSAlexeiFedorov 	/*
687ec0088bbSAlexeiFedorov 	 * Look up table for contiguous blocks and descriptors.
688ec0088bbSAlexeiFedorov 	 * Entries should be defined in descending block sizes:
689ec0088bbSAlexeiFedorov 	 * 512MB, 32MB and 2MB.
690ec0088bbSAlexeiFedorov 	 */
691ec0088bbSAlexeiFedorov 	static const gpt_fill_lookup_t gpt_fill_lookup[] = {
692ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK == 512)
693ec0088bbSAlexeiFedorov 		{ SZ_512M, GPT_L1_CONT_DESC_512MB },
694ec0088bbSAlexeiFedorov #endif
695ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK >= 32)
696ec0088bbSAlexeiFedorov 		{ SZ_32M, GPT_L1_CONT_DESC_32MB },
697ec0088bbSAlexeiFedorov #endif
698ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK != 0)
699ec0088bbSAlexeiFedorov 		{ SZ_2M, GPT_L1_CONT_DESC_2MB }
700ec0088bbSAlexeiFedorov #endif
701ec0088bbSAlexeiFedorov 	};
702f19dc624Sjohpow01 
703ec0088bbSAlexeiFedorov 	/*
704ec0088bbSAlexeiFedorov 	 * Iterate through all block sizes (512MB, 32MB and 2MB)
705ec0088bbSAlexeiFedorov 	 * starting with maximum supported.
706ec0088bbSAlexeiFedorov 	 */
707ec0088bbSAlexeiFedorov 	for (unsigned long i = 0UL; i < ARRAY_SIZE(gpt_fill_lookup); i++) {
708ec0088bbSAlexeiFedorov 		/* Calculate index */
709ec0088bbSAlexeiFedorov 		unsigned long idx = GPT_L1_INDEX(first);
710ec0088bbSAlexeiFedorov 
711ec0088bbSAlexeiFedorov 		/* Contiguous block size */
712ec0088bbSAlexeiFedorov 		size_t cont_size = gpt_fill_lookup[i].size;
713ec0088bbSAlexeiFedorov 
714ec0088bbSAlexeiFedorov 		if (GPT_REGION_IS_CONT(length, first, cont_size)) {
715ec0088bbSAlexeiFedorov 
716ec0088bbSAlexeiFedorov 			/* Generate Contiguous descriptor */
717ec0088bbSAlexeiFedorov 			uint64_t l1_desc = GPT_L1_GPI_CONT_DESC(gpi,
718ec0088bbSAlexeiFedorov 						gpt_fill_lookup[i].desc);
719ec0088bbSAlexeiFedorov 
720ec0088bbSAlexeiFedorov 			/* Number of 128-bit L1 entries in block */
721ec0088bbSAlexeiFedorov 			unsigned int cnt;
722ec0088bbSAlexeiFedorov 
723ec0088bbSAlexeiFedorov 			switch (cont_size) {
724ec0088bbSAlexeiFedorov 			case SZ_512M:
725ec0088bbSAlexeiFedorov 				cnt = L1_QWORDS_512MB;
726ec0088bbSAlexeiFedorov 				break;
727ec0088bbSAlexeiFedorov 			case SZ_32M:
728ec0088bbSAlexeiFedorov 				cnt = L1_QWORDS_32MB;
729ec0088bbSAlexeiFedorov 				break;
730ec0088bbSAlexeiFedorov 			default:			/* SZ_2MB */
731ec0088bbSAlexeiFedorov 				cnt = L1_QWORDS_2MB;
732ec0088bbSAlexeiFedorov 			}
733ec0088bbSAlexeiFedorov 
734ec0088bbSAlexeiFedorov 			VERBOSE("GPT: Contiguous descriptor 0x%"PRIxPTR" %luMB\n",
735ec0088bbSAlexeiFedorov 				first, cont_size / SZ_1M);
736ec0088bbSAlexeiFedorov 
737ec0088bbSAlexeiFedorov 			/* Fill Contiguous descriptors */
738ec0088bbSAlexeiFedorov 			fill_desc(&l1[idx], l1_desc, cnt);
739ec0088bbSAlexeiFedorov 			first += cont_size;
740ec0088bbSAlexeiFedorov 			length -= cont_size;
741ec0088bbSAlexeiFedorov 
742ec0088bbSAlexeiFedorov 			if (length == 0UL) {
743ec0088bbSAlexeiFedorov 				break;
744ec0088bbSAlexeiFedorov 			}
745ec0088bbSAlexeiFedorov 		}
746ec0088bbSAlexeiFedorov 	}
747ec0088bbSAlexeiFedorov 
748ec0088bbSAlexeiFedorov 	return first;
749ec0088bbSAlexeiFedorov }
750ec0088bbSAlexeiFedorov 
751ec0088bbSAlexeiFedorov /* Build Granules descriptor with the same 'gpi' for every GPI entry */
752ec0088bbSAlexeiFedorov static uint64_t build_l1_desc(unsigned int gpi)
753ec0088bbSAlexeiFedorov {
754ec0088bbSAlexeiFedorov 	uint64_t l1_desc = (uint64_t)gpi | ((uint64_t)gpi << 4);
755ec0088bbSAlexeiFedorov 
756ec0088bbSAlexeiFedorov 	l1_desc |= (l1_desc << 8);
757ec0088bbSAlexeiFedorov 	l1_desc |= (l1_desc << 16);
758ec0088bbSAlexeiFedorov 	return (l1_desc | (l1_desc << 32));
759ec0088bbSAlexeiFedorov }
760ec0088bbSAlexeiFedorov 
761ec0088bbSAlexeiFedorov /*
762ec0088bbSAlexeiFedorov  * Helper function to fill out GPI entries from 'first' to 'last' granule
763ec0088bbSAlexeiFedorov  * address in a single L1 table with 'l1_desc' Granules descriptor.
764ec0088bbSAlexeiFedorov  *
765ec0088bbSAlexeiFedorov  * Parameters
766ec0088bbSAlexeiFedorov  *   l1			Pointer to L1 table to fill out
767ec0088bbSAlexeiFedorov  *   first		Address of first granule in range
768ec0088bbSAlexeiFedorov  *   last		Address of last granule in range (inclusive)
769ec0088bbSAlexeiFedorov  *   gpi		GPI set this range to
770ec0088bbSAlexeiFedorov  *
771ec0088bbSAlexeiFedorov  * Return
772ec0088bbSAlexeiFedorov  *   Address of next granule in range.
773ec0088bbSAlexeiFedorov  */
774ec0088bbSAlexeiFedorov static uintptr_t fill_l1_gran_desc(uint64_t *l1, uintptr_t first,
775ec0088bbSAlexeiFedorov 				   uintptr_t last, unsigned int gpi)
776ec0088bbSAlexeiFedorov {
777ec0088bbSAlexeiFedorov 	uint64_t gpi_mask;
778ec0088bbSAlexeiFedorov 	unsigned long i;
779ec0088bbSAlexeiFedorov 
780ec0088bbSAlexeiFedorov 	/* Generate Granules descriptor */
781ec0088bbSAlexeiFedorov 	uint64_t l1_desc = build_l1_desc(gpi);
782f19dc624Sjohpow01 
783b99926efSAlexeiFedorov 	/* Shift the mask if we're starting in the middle of an L1 entry */
784ec0088bbSAlexeiFedorov 	gpi_mask = ULONG_MAX << (GPT_L1_GPI_IDX(gpt_config.p, first) << 2);
785f19dc624Sjohpow01 
786b99926efSAlexeiFedorov 	/* Fill out each L1 entry for this region */
787ec0088bbSAlexeiFedorov 	for (i = GPT_L1_INDEX(first); i <= GPT_L1_INDEX(last); i++) {
788ec0088bbSAlexeiFedorov 
789b99926efSAlexeiFedorov 		/* Account for stopping in the middle of an L1 entry */
790ec0088bbSAlexeiFedorov 		if (i == GPT_L1_INDEX(last)) {
791b99926efSAlexeiFedorov 			gpi_mask &= (gpi_mask >> ((15U -
792f19dc624Sjohpow01 				    GPT_L1_GPI_IDX(gpt_config.p, last)) << 2));
793f19dc624Sjohpow01 		}
794f19dc624Sjohpow01 
795ec0088bbSAlexeiFedorov 		assert((l1[i] & gpi_mask) == (GPT_L1_ANY_DESC & gpi_mask));
796ec0088bbSAlexeiFedorov 
797b99926efSAlexeiFedorov 		/* Write GPI values */
798ec0088bbSAlexeiFedorov 		l1[i] = (l1[i] & ~gpi_mask) | (l1_desc & gpi_mask);
799f19dc624Sjohpow01 
800b99926efSAlexeiFedorov 		/* Reset mask */
801b99926efSAlexeiFedorov 		gpi_mask = ULONG_MAX;
802f19dc624Sjohpow01 	}
803ec0088bbSAlexeiFedorov 
804ec0088bbSAlexeiFedorov 	return last + GPT_PGS_ACTUAL_SIZE(gpt_config.p);
805ec0088bbSAlexeiFedorov }
806ec0088bbSAlexeiFedorov 
807ec0088bbSAlexeiFedorov /*
808ec0088bbSAlexeiFedorov  * Helper function to fill out GPI entries in a single L1 table.
8096350aea2SAlexeiFedorov  * This function fills out an entire L1 table with either Granules or Contiguous
8106350aea2SAlexeiFedorov  * (RME_GPT_MAX_BLOCK != 0) descriptors depending on region length and alignment.
8116350aea2SAlexeiFedorov  * Note. If RME_GPT_MAX_BLOCK == 0, then the L1 tables are filled with regular
8126350aea2SAlexeiFedorov  * Granules descriptors.
813ec0088bbSAlexeiFedorov  *
814ec0088bbSAlexeiFedorov  * Parameters
815ec0088bbSAlexeiFedorov  *   l1			Pointer to L1 table to fill out
816ec0088bbSAlexeiFedorov  *   first		Address of first granule in range
817ec0088bbSAlexeiFedorov  *   last		Address of last granule in range (inclusive)
818ec0088bbSAlexeiFedorov  *   gpi		GPI set this range to
819ec0088bbSAlexeiFedorov  */
820ec0088bbSAlexeiFedorov static void fill_l1_tbl(uint64_t *l1, uintptr_t first, uintptr_t last,
821ec0088bbSAlexeiFedorov 			unsigned int gpi)
822ec0088bbSAlexeiFedorov {
823ec0088bbSAlexeiFedorov 	assert(l1 != NULL);
824ec0088bbSAlexeiFedorov 	assert(first <= last);
825ec0088bbSAlexeiFedorov 	assert((first & (GPT_PGS_ACTUAL_SIZE(gpt_config.p) - 1UL)) == 0UL);
826ec0088bbSAlexeiFedorov 	assert((last & (GPT_PGS_ACTUAL_SIZE(gpt_config.p) - 1UL)) == 0UL);
827ec0088bbSAlexeiFedorov 	assert(GPT_L0_IDX(first) == GPT_L0_IDX(last));
828ec0088bbSAlexeiFedorov 
8296350aea2SAlexeiFedorov #if (RME_GPT_MAX_BLOCK != 0)
830d024cce3SAlexeiFedorov 	while (first <= last) {
831ec0088bbSAlexeiFedorov 		/* Region length */
832ec0088bbSAlexeiFedorov 		size_t length = last - first + GPT_PGS_ACTUAL_SIZE(gpt_config.p);
833ec0088bbSAlexeiFedorov 
834ec0088bbSAlexeiFedorov 		if (length < SZ_2M) {
835ec0088bbSAlexeiFedorov 			/*
8366350aea2SAlexeiFedorov 			 * Fill with Granule descriptors in case of
837ec0088bbSAlexeiFedorov 			 * region length < 2MB.
838ec0088bbSAlexeiFedorov 			 */
839ec0088bbSAlexeiFedorov 			first = fill_l1_gran_desc(l1, first, last, gpi);
840ec0088bbSAlexeiFedorov 
841ec0088bbSAlexeiFedorov 		} else if ((first & (SZ_2M - UL(1))) == UL(0)) {
842ec0088bbSAlexeiFedorov 			/*
843ec0088bbSAlexeiFedorov 			 * For region length >= 2MB and at least 2MB aligned
844ec0088bbSAlexeiFedorov 			 * call to fill_l1_cont_desc will iterate through
845ec0088bbSAlexeiFedorov 			 * all block sizes (512MB, 32MB and 2MB) supported and
846ec0088bbSAlexeiFedorov 			 * fill corresponding Contiguous descriptors.
847ec0088bbSAlexeiFedorov 			 */
848ec0088bbSAlexeiFedorov 			first = fill_l1_cont_desc(l1, first, length, gpi);
849ec0088bbSAlexeiFedorov 		} else {
850ec0088bbSAlexeiFedorov 			/*
851ec0088bbSAlexeiFedorov 			 * For not aligned region >= 2MB fill with Granules
852ec0088bbSAlexeiFedorov 			 * descriptors up to the next 2MB aligned address.
853ec0088bbSAlexeiFedorov 			 */
854ec0088bbSAlexeiFedorov 			uintptr_t new_last = ALIGN_2MB(first + SZ_2M) -
855ec0088bbSAlexeiFedorov 					GPT_PGS_ACTUAL_SIZE(gpt_config.p);
856ec0088bbSAlexeiFedorov 
857ec0088bbSAlexeiFedorov 			first = fill_l1_gran_desc(l1, first, new_last, gpi);
858ec0088bbSAlexeiFedorov 		}
859ec0088bbSAlexeiFedorov 	}
8606350aea2SAlexeiFedorov #else
8616350aea2SAlexeiFedorov 	/* Fill with Granule descriptors */
8626350aea2SAlexeiFedorov 	first = fill_l1_gran_desc(l1, first, last, gpi);
8636350aea2SAlexeiFedorov #endif
864ec0088bbSAlexeiFedorov 	assert(first == (last + GPT_PGS_ACTUAL_SIZE(gpt_config.p)));
865f19dc624Sjohpow01 }
866f19dc624Sjohpow01 
867f19dc624Sjohpow01 /*
868f19dc624Sjohpow01  * This function finds the next available unused L1 table and initializes all
869f19dc624Sjohpow01  * granules descriptor entries to GPI_ANY. This ensures that there are no chunks
870f19dc624Sjohpow01  * of GPI_NO_ACCESS (0b0000) memory floating around in the system in the
871f19dc624Sjohpow01  * event that a PAS region stops midway through an L1 table, thus guaranteeing
872f19dc624Sjohpow01  * that all memory not explicitly assigned is GPI_ANY. This function does not
873f19dc624Sjohpow01  * check for overflow conditions, that should be done by the caller.
874f19dc624Sjohpow01  *
875f19dc624Sjohpow01  * Return
876f19dc624Sjohpow01  *   Pointer to the next available L1 table.
877f19dc624Sjohpow01  */
87820e2683dSAlexeiFedorov static uint64_t *get_new_l1_tbl(void)
879f19dc624Sjohpow01 {
880b99926efSAlexeiFedorov 	/* Retrieve the next L1 table */
881ec0088bbSAlexeiFedorov 	uint64_t *l1 = (uint64_t *)gpt_l1_tbl;
882f19dc624Sjohpow01 
883ec0088bbSAlexeiFedorov 	/* Increment L1 GPT address */
884ec0088bbSAlexeiFedorov 	gpt_l1_tbl += GPT_L1_TABLE_SIZE(gpt_config.p);
885f19dc624Sjohpow01 
886f19dc624Sjohpow01 	/* Initialize all GPIs to GPT_GPI_ANY */
887f19dc624Sjohpow01 	for (unsigned int i = 0U; i < GPT_L1_ENTRY_COUNT(gpt_config.p); i++) {
888ec0088bbSAlexeiFedorov 		l1[i] = GPT_L1_ANY_DESC;
889f19dc624Sjohpow01 	}
890f19dc624Sjohpow01 
891f19dc624Sjohpow01 	return l1;
892f19dc624Sjohpow01 }
893f19dc624Sjohpow01 
894f19dc624Sjohpow01 /*
895f19dc624Sjohpow01  * When L1 tables are needed, this function creates the necessary L0 table
896f19dc624Sjohpow01  * descriptors and fills out the L1 table entries according to the supplied
897f19dc624Sjohpow01  * PAS range.
898f19dc624Sjohpow01  *
899f19dc624Sjohpow01  * Parameters
900f19dc624Sjohpow01  *   *pas		Pointer to the structure defining the PAS region.
901f19dc624Sjohpow01  */
90220e2683dSAlexeiFedorov static void generate_l0_tbl_desc(pas_region_t *pas)
903f19dc624Sjohpow01 {
904f19dc624Sjohpow01 	uintptr_t end_pa;
905f19dc624Sjohpow01 	uintptr_t cur_pa;
906f19dc624Sjohpow01 	uintptr_t last_gran_pa;
907f19dc624Sjohpow01 	uint64_t *l0_gpt_base;
908f19dc624Sjohpow01 	uint64_t *l1_gpt_arr;
909ec0088bbSAlexeiFedorov 	unsigned int l0_idx, gpi;
910f19dc624Sjohpow01 
911*b0f1c840SAlexeiFedorov 	assert(gpt_config.plat_gpt_l0_base != 0UL);
912f19dc624Sjohpow01 	assert(pas != NULL);
913f19dc624Sjohpow01 
914f19dc624Sjohpow01 	/*
915f19dc624Sjohpow01 	 * Checking of PAS parameters has already been done in
91620e2683dSAlexeiFedorov 	 * validate_pas_mappings so no need to check the same things again.
917f19dc624Sjohpow01 	 */
918f19dc624Sjohpow01 	end_pa = pas->base_pa + pas->size;
919f19dc624Sjohpow01 	l0_gpt_base = (uint64_t *)gpt_config.plat_gpt_l0_base;
920f19dc624Sjohpow01 
921f19dc624Sjohpow01 	/* We start working from the granule at base PA */
922f19dc624Sjohpow01 	cur_pa = pas->base_pa;
923f19dc624Sjohpow01 
924ec0088bbSAlexeiFedorov 	/* Get GPI */
925ec0088bbSAlexeiFedorov 	gpi = GPT_PAS_ATTR_GPI(pas->attrs);
926f19dc624Sjohpow01 
927ec0088bbSAlexeiFedorov 	/* Iterate over each L0 region in this memory range */
928ec0088bbSAlexeiFedorov 	for (l0_idx = (unsigned int)GPT_L0_IDX(pas->base_pa);
929ec0088bbSAlexeiFedorov 	     l0_idx <= (unsigned int)GPT_L0_IDX(end_pa - 1UL);
930ec0088bbSAlexeiFedorov 	     l0_idx++) {
931f19dc624Sjohpow01 		/*
932f19dc624Sjohpow01 		 * See if the L0 entry is already a table descriptor or if we
933f19dc624Sjohpow01 		 * need to create one.
934f19dc624Sjohpow01 		 */
935f19dc624Sjohpow01 		if (GPT_L0_TYPE(l0_gpt_base[l0_idx]) == GPT_L0_TYPE_TBL_DESC) {
936b99926efSAlexeiFedorov 			/* Get the L1 array from the L0 entry */
937f19dc624Sjohpow01 			l1_gpt_arr = GPT_L0_TBLD_ADDR(l0_gpt_base[l0_idx]);
938f19dc624Sjohpow01 		} else {
939b99926efSAlexeiFedorov 			/* Get a new L1 table from the L1 memory space */
94020e2683dSAlexeiFedorov 			l1_gpt_arr = get_new_l1_tbl();
941f19dc624Sjohpow01 
942b99926efSAlexeiFedorov 			/* Fill out the L0 descriptor and flush it */
943f19dc624Sjohpow01 			l0_gpt_base[l0_idx] = GPT_L0_TBL_DESC(l1_gpt_arr);
944f19dc624Sjohpow01 		}
945f19dc624Sjohpow01 
946b99926efSAlexeiFedorov 		VERBOSE("GPT: L0 entry (TABLE) index %u [%p] ==> L1 Addr %p (0x%"PRIx64")\n",
947b99926efSAlexeiFedorov 			l0_idx, &l0_gpt_base[l0_idx], l1_gpt_arr, l0_gpt_base[l0_idx]);
948f19dc624Sjohpow01 
949f19dc624Sjohpow01 		/*
950f19dc624Sjohpow01 		 * Determine the PA of the last granule in this L0 descriptor.
951f19dc624Sjohpow01 		 */
95220e2683dSAlexeiFedorov 		last_gran_pa = get_l1_end_pa(cur_pa, end_pa) -
953f19dc624Sjohpow01 			       GPT_PGS_ACTUAL_SIZE(gpt_config.p);
954f19dc624Sjohpow01 
955f19dc624Sjohpow01 		/*
956f19dc624Sjohpow01 		 * Fill up L1 GPT entries between these two addresses. This
957f19dc624Sjohpow01 		 * function needs the addresses of the first granule and last
958f19dc624Sjohpow01 		 * granule in the range.
959f19dc624Sjohpow01 		 */
960ec0088bbSAlexeiFedorov 		fill_l1_tbl(l1_gpt_arr, cur_pa, last_gran_pa, gpi);
961f19dc624Sjohpow01 
962b99926efSAlexeiFedorov 		/* Advance cur_pa to first granule in next L0 region */
96320e2683dSAlexeiFedorov 		cur_pa = get_l1_end_pa(cur_pa, end_pa);
964f19dc624Sjohpow01 	}
965f19dc624Sjohpow01 }
966f19dc624Sjohpow01 
967f19dc624Sjohpow01 /*
968f19dc624Sjohpow01  * This function flushes a range of L0 descriptors used by a given PAS region
969f19dc624Sjohpow01  * array. There is a chance that some unmodified L0 descriptors would be flushed
970f19dc624Sjohpow01  * in the case that there are "holes" in an array of PAS regions but overall
971f19dc624Sjohpow01  * this should be faster than individually flushing each modified L0 descriptor
972f19dc624Sjohpow01  * as they are created.
973f19dc624Sjohpow01  *
974f19dc624Sjohpow01  * Parameters
975f19dc624Sjohpow01  *   *pas		Pointer to an array of PAS regions.
976f19dc624Sjohpow01  *   pas_count		Number of entries in the PAS array.
977f19dc624Sjohpow01  */
978f19dc624Sjohpow01 static void flush_l0_for_pas_array(pas_region_t *pas, unsigned int pas_count)
979f19dc624Sjohpow01 {
980ec0088bbSAlexeiFedorov 	unsigned long idx;
981ec0088bbSAlexeiFedorov 	unsigned long start_idx;
982ec0088bbSAlexeiFedorov 	unsigned long end_idx;
983f19dc624Sjohpow01 	uint64_t *l0 = (uint64_t *)gpt_config.plat_gpt_l0_base;
984f19dc624Sjohpow01 
985f19dc624Sjohpow01 	assert(pas != NULL);
986b99926efSAlexeiFedorov 	assert(pas_count != 0U);
987f19dc624Sjohpow01 
988b99926efSAlexeiFedorov 	/* Initial start and end values */
989f19dc624Sjohpow01 	start_idx = GPT_L0_IDX(pas[0].base_pa);
990b99926efSAlexeiFedorov 	end_idx = GPT_L0_IDX(pas[0].base_pa + pas[0].size - 1UL);
991f19dc624Sjohpow01 
992b99926efSAlexeiFedorov 	/* Find lowest and highest L0 indices used in this PAS array */
993ec0088bbSAlexeiFedorov 	for (idx = 1UL; idx < pas_count; idx++) {
994f19dc624Sjohpow01 		if (GPT_L0_IDX(pas[idx].base_pa) < start_idx) {
995f19dc624Sjohpow01 			start_idx = GPT_L0_IDX(pas[idx].base_pa);
996f19dc624Sjohpow01 		}
997b99926efSAlexeiFedorov 		if (GPT_L0_IDX(pas[idx].base_pa + pas[idx].size - 1UL) > end_idx) {
998b99926efSAlexeiFedorov 			end_idx = GPT_L0_IDX(pas[idx].base_pa + pas[idx].size - 1UL);
999f19dc624Sjohpow01 		}
1000f19dc624Sjohpow01 	}
1001f19dc624Sjohpow01 
1002f19dc624Sjohpow01 	/*
1003f19dc624Sjohpow01 	 * Flush all covered L0 descriptors, add 1 because we need to include
1004f19dc624Sjohpow01 	 * the end index value.
1005f19dc624Sjohpow01 	 */
1006f19dc624Sjohpow01 	flush_dcache_range((uintptr_t)&l0[start_idx],
1007ec0088bbSAlexeiFedorov 			   ((end_idx + 1UL) - start_idx) * sizeof(uint64_t));
1008f19dc624Sjohpow01 }
1009f19dc624Sjohpow01 
1010f19dc624Sjohpow01 /*
1011f19dc624Sjohpow01  * Public API to enable granule protection checks once the tables have all been
1012f19dc624Sjohpow01  * initialized. This function is called at first initialization and then again
1013f19dc624Sjohpow01  * later during warm boots of CPU cores.
1014f19dc624Sjohpow01  *
1015f19dc624Sjohpow01  * Return
1016f19dc624Sjohpow01  *   Negative Linux error code in the event of a failure, 0 for success.
1017f19dc624Sjohpow01  */
1018f19dc624Sjohpow01 int gpt_enable(void)
1019f19dc624Sjohpow01 {
1020f19dc624Sjohpow01 	u_register_t gpccr_el3;
1021f19dc624Sjohpow01 
1022f19dc624Sjohpow01 	/*
1023f19dc624Sjohpow01 	 * Granule tables must be initialised before enabling
1024f19dc624Sjohpow01 	 * granule protection.
1025f19dc624Sjohpow01 	 */
1026b99926efSAlexeiFedorov 	if (gpt_config.plat_gpt_l0_base == 0UL) {
1027b99926efSAlexeiFedorov 		ERROR("GPT: Tables have not been initialized!\n");
1028f19dc624Sjohpow01 		return -EPERM;
1029f19dc624Sjohpow01 	}
1030f19dc624Sjohpow01 
1031f19dc624Sjohpow01 	/* Write the base address of the L0 tables into GPTBR */
1032f19dc624Sjohpow01 	write_gptbr_el3(((gpt_config.plat_gpt_l0_base >> GPTBR_BADDR_VAL_SHIFT)
1033f19dc624Sjohpow01 			>> GPTBR_BADDR_SHIFT) & GPTBR_BADDR_MASK);
1034f19dc624Sjohpow01 
1035f19dc624Sjohpow01 	/* GPCCR_EL3.PPS */
1036f19dc624Sjohpow01 	gpccr_el3 = SET_GPCCR_PPS(gpt_config.pps);
1037f19dc624Sjohpow01 
1038f19dc624Sjohpow01 	/* GPCCR_EL3.PGS */
1039f19dc624Sjohpow01 	gpccr_el3 |= SET_GPCCR_PGS(gpt_config.pgs);
1040f19dc624Sjohpow01 
104177612b90SSoby Mathew 	/*
104277612b90SSoby Mathew 	 * Since EL3 maps the L1 region as Inner shareable, use the same
104377612b90SSoby Mathew 	 * shareability attribute for GPC as well so that
104477612b90SSoby Mathew 	 * GPC fetches are visible to PEs
104577612b90SSoby Mathew 	 */
104677612b90SSoby Mathew 	gpccr_el3 |= SET_GPCCR_SH(GPCCR_SH_IS);
1047f19dc624Sjohpow01 
1048b99926efSAlexeiFedorov 	/* Outer and Inner cacheability set to Normal memory, WB, RA, WA */
1049f19dc624Sjohpow01 	gpccr_el3 |= SET_GPCCR_ORGN(GPCCR_ORGN_WB_RA_WA);
1050f19dc624Sjohpow01 	gpccr_el3 |= SET_GPCCR_IRGN(GPCCR_IRGN_WB_RA_WA);
1051f19dc624Sjohpow01 
105214cddd7aSKathleen Capella 	/* Prepopulate GPCCR_EL3 but don't enable GPC yet */
105314cddd7aSKathleen Capella 	write_gpccr_el3(gpccr_el3);
105414cddd7aSKathleen Capella 	isb();
105514cddd7aSKathleen Capella 
105614cddd7aSKathleen Capella 	/* Invalidate any stale TLB entries and any cached register fields */
105714cddd7aSKathleen Capella 	tlbipaallos();
105814cddd7aSKathleen Capella 	dsb();
105914cddd7aSKathleen Capella 	isb();
106014cddd7aSKathleen Capella 
1061f19dc624Sjohpow01 	/* Enable GPT */
1062f19dc624Sjohpow01 	gpccr_el3 |= GPCCR_GPC_BIT;
1063f19dc624Sjohpow01 
1064b99926efSAlexeiFedorov 	/* TODO: Configure GPCCR_EL3_GPCP for Fault control */
1065f19dc624Sjohpow01 	write_gpccr_el3(gpccr_el3);
106677612b90SSoby Mathew 	isb();
1067f19dc624Sjohpow01 	tlbipaallos();
1068f19dc624Sjohpow01 	dsb();
1069f19dc624Sjohpow01 	isb();
1070f19dc624Sjohpow01 
1071f19dc624Sjohpow01 	return 0;
1072f19dc624Sjohpow01 }
1073f19dc624Sjohpow01 
1074f19dc624Sjohpow01 /*
1075f19dc624Sjohpow01  * Public API to disable granule protection checks.
1076f19dc624Sjohpow01  */
1077f19dc624Sjohpow01 void gpt_disable(void)
1078f19dc624Sjohpow01 {
1079f19dc624Sjohpow01 	u_register_t gpccr_el3 = read_gpccr_el3();
1080f19dc624Sjohpow01 
1081f19dc624Sjohpow01 	write_gpccr_el3(gpccr_el3 & ~GPCCR_GPC_BIT);
1082f19dc624Sjohpow01 	dsbsy();
1083f19dc624Sjohpow01 	isb();
1084f19dc624Sjohpow01 }
1085f19dc624Sjohpow01 
1086f19dc624Sjohpow01 /*
1087f19dc624Sjohpow01  * Public API that initializes the entire protected space to GPT_GPI_ANY using
1088f19dc624Sjohpow01  * the L0 tables (block descriptors). Ideally, this function is invoked prior
1089f19dc624Sjohpow01  * to DDR discovery and initialization. The MMU must be initialized before
1090f19dc624Sjohpow01  * calling this function.
1091f19dc624Sjohpow01  *
1092f19dc624Sjohpow01  * Parameters
1093f19dc624Sjohpow01  *   pps		PPS value to use for table generation
1094f19dc624Sjohpow01  *   l0_mem_base	Base address of L0 tables in memory.
1095f19dc624Sjohpow01  *   l0_mem_size	Total size of memory available for L0 tables.
1096f19dc624Sjohpow01  *
1097f19dc624Sjohpow01  * Return
1098f19dc624Sjohpow01  *   Negative Linux error code in the event of a failure, 0 for success.
1099f19dc624Sjohpow01  */
1100a0d5147bSAlexeiFedorov int gpt_init_l0_tables(gpccr_pps_e pps, uintptr_t l0_mem_base,
1101f19dc624Sjohpow01 		       size_t l0_mem_size)
1102f19dc624Sjohpow01 {
1103f19dc624Sjohpow01 	uint64_t gpt_desc;
1104ec0088bbSAlexeiFedorov 	int ret;
1105f19dc624Sjohpow01 
1106b99926efSAlexeiFedorov 	/* Ensure that MMU and Data caches are enabled */
1107*b0f1c840SAlexeiFedorov 	assert((read_sctlr_el3() & SCTLR_C_BIT) != 0UL);
1108f19dc624Sjohpow01 
1109b99926efSAlexeiFedorov 	/* Validate other parameters */
111020e2683dSAlexeiFedorov 	ret = validate_l0_params(pps, l0_mem_base, l0_mem_size);
11116a00e9b0SRobert Wakim 	if (ret != 0) {
1112f19dc624Sjohpow01 		return ret;
1113f19dc624Sjohpow01 	}
1114f19dc624Sjohpow01 
1115b99926efSAlexeiFedorov 	/* Create the descriptor to initialize L0 entries with */
1116f19dc624Sjohpow01 	gpt_desc = GPT_L0_BLK_DESC(GPT_GPI_ANY);
1117f19dc624Sjohpow01 
1118f19dc624Sjohpow01 	/* Iterate through all L0 entries */
1119f19dc624Sjohpow01 	for (unsigned int i = 0U; i < GPT_L0_REGION_COUNT(gpt_config.t); i++) {
1120f19dc624Sjohpow01 		((uint64_t *)l0_mem_base)[i] = gpt_desc;
1121f19dc624Sjohpow01 	}
1122f19dc624Sjohpow01 
1123*b0f1c840SAlexeiFedorov 	/* Flush updated L0 table to memory */
1124*b0f1c840SAlexeiFedorov 	flush_dcache_range((uintptr_t)l0_mem_base, GPT_L0_TABLE_SIZE(gpt_config.t));
1125f19dc624Sjohpow01 
1126b99926efSAlexeiFedorov 	/* Stash the L0 base address once initial setup is complete */
1127f19dc624Sjohpow01 	gpt_config.plat_gpt_l0_base = l0_mem_base;
1128f19dc624Sjohpow01 
1129f19dc624Sjohpow01 	return 0;
1130f19dc624Sjohpow01 }
1131f19dc624Sjohpow01 
1132f19dc624Sjohpow01 /*
1133f19dc624Sjohpow01  * Public API that carves out PAS regions from the L0 tables and builds any L1
1134f19dc624Sjohpow01  * tables that are needed. This function ideally is run after DDR discovery and
1135f19dc624Sjohpow01  * initialization. The L0 tables must have already been initialized to GPI_ANY
1136f19dc624Sjohpow01  * when this function is called.
1137f19dc624Sjohpow01  *
1138f19dc624Sjohpow01  * This function can be called multiple times with different L1 memory ranges
1139f19dc624Sjohpow01  * and PAS regions if it is desirable to place L1 tables in different locations
1140f19dc624Sjohpow01  * in memory. (ex: you have multiple DDR banks and want to place the L1 tables
1141ec0088bbSAlexeiFedorov  * in the DDR bank that they control).
1142f19dc624Sjohpow01  *
1143f19dc624Sjohpow01  * Parameters
1144f19dc624Sjohpow01  *   pgs		PGS value to use for table generation.
1145f19dc624Sjohpow01  *   l1_mem_base	Base address of memory used for L1 tables.
1146f19dc624Sjohpow01  *   l1_mem_size	Total size of memory available for L1 tables.
1147f19dc624Sjohpow01  *   *pas_regions	Pointer to PAS regions structure array.
1148f19dc624Sjohpow01  *   pas_count		Total number of PAS regions.
1149f19dc624Sjohpow01  *
1150f19dc624Sjohpow01  * Return
1151f19dc624Sjohpow01  *   Negative Linux error code in the event of a failure, 0 for success.
1152f19dc624Sjohpow01  */
1153f19dc624Sjohpow01 int gpt_init_pas_l1_tables(gpccr_pgs_e pgs, uintptr_t l1_mem_base,
1154f19dc624Sjohpow01 			   size_t l1_mem_size, pas_region_t *pas_regions,
1155f19dc624Sjohpow01 			   unsigned int pas_count)
1156f19dc624Sjohpow01 {
1157ec0088bbSAlexeiFedorov 	int l1_gpt_cnt, ret;
1158f19dc624Sjohpow01 
1159b99926efSAlexeiFedorov 	/* Ensure that MMU and Data caches are enabled */
1160*b0f1c840SAlexeiFedorov 	assert((read_sctlr_el3() & SCTLR_C_BIT) != 0UL);
1161f19dc624Sjohpow01 
1162b99926efSAlexeiFedorov 	/* PGS is needed for validate_pas_mappings so check it now */
1163f19dc624Sjohpow01 	if (pgs > GPT_PGS_MAX) {
1164b99926efSAlexeiFedorov 		ERROR("GPT: Invalid PGS: 0x%x\n", pgs);
1165f19dc624Sjohpow01 		return -EINVAL;
1166f19dc624Sjohpow01 	}
1167f19dc624Sjohpow01 	gpt_config.pgs = pgs;
1168f19dc624Sjohpow01 	gpt_config.p = gpt_p_lookup[pgs];
1169f19dc624Sjohpow01 
1170b99926efSAlexeiFedorov 	/* Make sure L0 tables have been initialized */
1171*b0f1c840SAlexeiFedorov 	if (gpt_config.plat_gpt_l0_base == 0UL) {
1172b99926efSAlexeiFedorov 		ERROR("GPT: L0 tables must be initialized first!\n");
1173f19dc624Sjohpow01 		return -EPERM;
1174f19dc624Sjohpow01 	}
1175f19dc624Sjohpow01 
1176b99926efSAlexeiFedorov 	/* Check if L1 GPTs are required and how many */
117720e2683dSAlexeiFedorov 	l1_gpt_cnt = validate_pas_mappings(pas_regions, pas_count);
1178f19dc624Sjohpow01 	if (l1_gpt_cnt < 0) {
1179f19dc624Sjohpow01 		return l1_gpt_cnt;
1180f19dc624Sjohpow01 	}
1181f19dc624Sjohpow01 
1182b99926efSAlexeiFedorov 	VERBOSE("GPT: %i L1 GPTs requested\n", l1_gpt_cnt);
1183f19dc624Sjohpow01 
1184b99926efSAlexeiFedorov 	/* If L1 tables are needed then validate the L1 parameters */
1185f19dc624Sjohpow01 	if (l1_gpt_cnt > 0) {
118620e2683dSAlexeiFedorov 		ret = validate_l1_params(l1_mem_base, l1_mem_size,
1187b99926efSAlexeiFedorov 					(unsigned int)l1_gpt_cnt);
11886a00e9b0SRobert Wakim 		if (ret != 0) {
1189f19dc624Sjohpow01 			return ret;
1190f19dc624Sjohpow01 		}
1191f19dc624Sjohpow01 
1192b99926efSAlexeiFedorov 		/* Set up parameters for L1 table generation */
1193f19dc624Sjohpow01 		gpt_l1_tbl = l1_mem_base;
1194f19dc624Sjohpow01 	}
1195f19dc624Sjohpow01 
1196ec0088bbSAlexeiFedorov 	/* Number of L1 entries in 2MB depends on GPCCR_EL3.PGS value */
1197ec0088bbSAlexeiFedorov 	gpt_l1_cnt_2mb = (unsigned int)GPT_L1_ENTRY_COUNT_2MB(gpt_config.p);
1198ec0088bbSAlexeiFedorov 
1199ec0088bbSAlexeiFedorov 	/* Mask for the L1 index field */
1200ec0088bbSAlexeiFedorov 	gpt_l1_index_mask = GPT_L1_IDX_MASK(gpt_config.p);
1201ec0088bbSAlexeiFedorov 
1202b99926efSAlexeiFedorov 	INFO("GPT: Boot Configuration\n");
1203f19dc624Sjohpow01 	INFO("  PPS/T:     0x%x/%u\n", gpt_config.pps, gpt_config.t);
1204f19dc624Sjohpow01 	INFO("  PGS/P:     0x%x/%u\n", gpt_config.pgs, gpt_config.p);
1205f19dc624Sjohpow01 	INFO("  L0GPTSZ/S: 0x%x/%u\n", GPT_L0GPTSZ, GPT_S_VAL);
1206b99926efSAlexeiFedorov 	INFO("  PAS count: %u\n", pas_count);
1207b99926efSAlexeiFedorov 	INFO("  L0 base:   0x%"PRIxPTR"\n", gpt_config.plat_gpt_l0_base);
1208f19dc624Sjohpow01 
1209b99926efSAlexeiFedorov 	/* Generate the tables in memory */
1210f19dc624Sjohpow01 	for (unsigned int idx = 0U; idx < pas_count; idx++) {
1211b99926efSAlexeiFedorov 		VERBOSE("GPT: PAS[%u]: base 0x%"PRIxPTR"\tsize 0x%lx\tGPI 0x%x\ttype 0x%x\n",
1212f19dc624Sjohpow01 			idx, pas_regions[idx].base_pa, pas_regions[idx].size,
1213f19dc624Sjohpow01 			GPT_PAS_ATTR_GPI(pas_regions[idx].attrs),
1214f19dc624Sjohpow01 			GPT_PAS_ATTR_MAP_TYPE(pas_regions[idx].attrs));
1215f19dc624Sjohpow01 
1216f19dc624Sjohpow01 		/* Check if a block or table descriptor is required */
1217f19dc624Sjohpow01 		if (GPT_PAS_ATTR_MAP_TYPE(pas_regions[idx].attrs) ==
1218f19dc624Sjohpow01 		    GPT_PAS_ATTR_MAP_TYPE_BLOCK) {
121920e2683dSAlexeiFedorov 			generate_l0_blk_desc(&pas_regions[idx]);
1220f19dc624Sjohpow01 
1221f19dc624Sjohpow01 		} else {
122220e2683dSAlexeiFedorov 			generate_l0_tbl_desc(&pas_regions[idx]);
1223f19dc624Sjohpow01 		}
1224f19dc624Sjohpow01 	}
1225f19dc624Sjohpow01 
1226b99926efSAlexeiFedorov 	/* Flush modified L0 tables */
1227f19dc624Sjohpow01 	flush_l0_for_pas_array(pas_regions, pas_count);
1228f19dc624Sjohpow01 
1229b99926efSAlexeiFedorov 	/* Flush L1 tables if needed */
1230f19dc624Sjohpow01 	if (l1_gpt_cnt > 0) {
1231f19dc624Sjohpow01 		flush_dcache_range(l1_mem_base,
1232f19dc624Sjohpow01 				   GPT_L1_TABLE_SIZE(gpt_config.p) *
1233ec0088bbSAlexeiFedorov 				   (size_t)l1_gpt_cnt);
1234f19dc624Sjohpow01 	}
1235f19dc624Sjohpow01 
1236b99926efSAlexeiFedorov 	/* Make sure that all the entries are written to the memory */
1237f19dc624Sjohpow01 	dsbishst();
123877612b90SSoby Mathew 	tlbipaallos();
123977612b90SSoby Mathew 	dsb();
124077612b90SSoby Mathew 	isb();
1241f19dc624Sjohpow01 
1242f19dc624Sjohpow01 	return 0;
1243f19dc624Sjohpow01 }
1244f19dc624Sjohpow01 
1245f19dc624Sjohpow01 /*
1246f19dc624Sjohpow01  * Public API to initialize the runtime gpt_config structure based on the values
1247f19dc624Sjohpow01  * present in the GPTBR_EL3 and GPCCR_EL3 registers. GPT initialization
1248f19dc624Sjohpow01  * typically happens in a bootloader stage prior to setting up the EL3 runtime
1249f19dc624Sjohpow01  * environment for the granule transition service so this function detects the
1250f19dc624Sjohpow01  * initialization from a previous stage. Granule protection checks must be
1251f19dc624Sjohpow01  * enabled already or this function will return an error.
1252f19dc624Sjohpow01  *
1253*b0f1c840SAlexeiFedorov  * Parameters
1254*b0f1c840SAlexeiFedorov  *   l1_bitlocks_base	Base address of memory for L1 tables bitlocks.
1255*b0f1c840SAlexeiFedorov  *   l1_bitlocks_size	Total size of memory available for L1 tables bitlocks.
1256*b0f1c840SAlexeiFedorov  *
1257f19dc624Sjohpow01  * Return
1258f19dc624Sjohpow01  *   Negative Linux error code in the event of a failure, 0 for success.
1259f19dc624Sjohpow01  */
1260*b0f1c840SAlexeiFedorov int gpt_runtime_init(uintptr_t l1_bitlocks_base, size_t l1_bitlocks_size)
1261f19dc624Sjohpow01 {
1262f19dc624Sjohpow01 	u_register_t reg;
1263*b0f1c840SAlexeiFedorov 	__unused size_t locks_size;
1264f19dc624Sjohpow01 
1265b99926efSAlexeiFedorov 	/* Ensure that MMU and Data caches are enabled */
1266*b0f1c840SAlexeiFedorov 	assert((read_sctlr_el3() & SCTLR_C_BIT) != 0UL);
1267f19dc624Sjohpow01 
1268b99926efSAlexeiFedorov 	/* Ensure GPC are already enabled */
1269*b0f1c840SAlexeiFedorov 	if ((read_gpccr_el3() & GPCCR_GPC_BIT) == 0UL) {
1270b99926efSAlexeiFedorov 		ERROR("GPT: Granule protection checks are not enabled!\n");
1271f19dc624Sjohpow01 		return -EPERM;
1272f19dc624Sjohpow01 	}
1273f19dc624Sjohpow01 
1274f19dc624Sjohpow01 	/*
1275f19dc624Sjohpow01 	 * Read the L0 table address from GPTBR, we don't need the L1 base
1276f19dc624Sjohpow01 	 * address since those are included in the L0 tables as needed.
1277f19dc624Sjohpow01 	 */
1278f19dc624Sjohpow01 	reg = read_gptbr_el3();
1279f19dc624Sjohpow01 	gpt_config.plat_gpt_l0_base = ((reg >> GPTBR_BADDR_SHIFT) &
1280f19dc624Sjohpow01 				      GPTBR_BADDR_MASK) <<
1281f19dc624Sjohpow01 				      GPTBR_BADDR_VAL_SHIFT;
1282f19dc624Sjohpow01 
1283b99926efSAlexeiFedorov 	/* Read GPCCR to get PGS and PPS values */
1284f19dc624Sjohpow01 	reg = read_gpccr_el3();
1285f19dc624Sjohpow01 	gpt_config.pps = (reg >> GPCCR_PPS_SHIFT) & GPCCR_PPS_MASK;
1286f19dc624Sjohpow01 	gpt_config.t = gpt_t_lookup[gpt_config.pps];
1287f19dc624Sjohpow01 	gpt_config.pgs = (reg >> GPCCR_PGS_SHIFT) & GPCCR_PGS_MASK;
1288f19dc624Sjohpow01 	gpt_config.p = gpt_p_lookup[gpt_config.pgs];
1289f19dc624Sjohpow01 
1290ec0088bbSAlexeiFedorov 	/* Number of L1 entries in 2MB depends on GPCCR_EL3.PGS value */
1291ec0088bbSAlexeiFedorov 	gpt_l1_cnt_2mb = (unsigned int)GPT_L1_ENTRY_COUNT_2MB(gpt_config.p);
1292ec0088bbSAlexeiFedorov 
1293ec0088bbSAlexeiFedorov 	/* Mask for the L1 index field */
1294ec0088bbSAlexeiFedorov 	gpt_l1_index_mask = GPT_L1_IDX_MASK(gpt_config.p);
1295ec0088bbSAlexeiFedorov 
1296d766084fSAlexeiFedorov #if (RME_GPT_BITLOCK_BLOCK != 0)
1297*b0f1c840SAlexeiFedorov 	/*
1298*b0f1c840SAlexeiFedorov 	 * Size of GPT bitlocks in bytes for the protected address space
1299*b0f1c840SAlexeiFedorov 	 * with RME_GPT_BITLOCK_BLOCK * 512MB per bitlock.
1300*b0f1c840SAlexeiFedorov 	 */
1301*b0f1c840SAlexeiFedorov 	locks_size = GPT_PPS_ACTUAL_SIZE(gpt_config.t) /
1302*b0f1c840SAlexeiFedorov 			(RME_GPT_BITLOCK_BLOCK * SZ_512M * 8U);
1303*b0f1c840SAlexeiFedorov 	/*
1304*b0f1c840SAlexeiFedorov 	 * If protected space size is less than the size covered
1305*b0f1c840SAlexeiFedorov 	 * by 'bitlock' structure, check for a single bitlock.
1306*b0f1c840SAlexeiFedorov 	 */
1307*b0f1c840SAlexeiFedorov 	if (locks_size < LOCK_SIZE) {
1308*b0f1c840SAlexeiFedorov 		locks_size = LOCK_SIZE;
1309*b0f1c840SAlexeiFedorov 	/* Check bitlocks array size */
1310*b0f1c840SAlexeiFedorov 	} else if (locks_size > l1_bitlocks_size) {
1311*b0f1c840SAlexeiFedorov 		ERROR("GPT: Inadequate GPT bitlocks memory\n");
1312*b0f1c840SAlexeiFedorov 		ERROR("      Expected 0x%lx bytes, got 0x%lx\n",
1313*b0f1c840SAlexeiFedorov 			locks_size, l1_bitlocks_size);
1314*b0f1c840SAlexeiFedorov 		return -ENOMEM;
1315*b0f1c840SAlexeiFedorov 	}
1316*b0f1c840SAlexeiFedorov 
1317*b0f1c840SAlexeiFedorov 	gpt_bitlock = (bitlock_t *)l1_bitlocks_base;
1318*b0f1c840SAlexeiFedorov 
1319*b0f1c840SAlexeiFedorov 	/* Initialise GPT bitlocks */
1320*b0f1c840SAlexeiFedorov 	(void)memset((void *)gpt_bitlock, 0, locks_size);
1321*b0f1c840SAlexeiFedorov 
1322*b0f1c840SAlexeiFedorov 	/* Flush GPT bitlocks to memory */
1323*b0f1c840SAlexeiFedorov 	flush_dcache_range((uintptr_t)gpt_bitlock, locks_size);
1324*b0f1c840SAlexeiFedorov #endif /* RME_GPT_BITLOCK_BLOCK */
1325*b0f1c840SAlexeiFedorov 
1326b99926efSAlexeiFedorov 	VERBOSE("GPT: Runtime Configuration\n");
1327f19dc624Sjohpow01 	VERBOSE("  PPS/T:     0x%x/%u\n", gpt_config.pps, gpt_config.t);
1328f19dc624Sjohpow01 	VERBOSE("  PGS/P:     0x%x/%u\n", gpt_config.pgs, gpt_config.p);
1329f19dc624Sjohpow01 	VERBOSE("  L0GPTSZ/S: 0x%x/%u\n", GPT_L0GPTSZ, GPT_S_VAL);
1330b99926efSAlexeiFedorov 	VERBOSE("  L0 base:   0x%"PRIxPTR"\n", gpt_config.plat_gpt_l0_base);
1331d766084fSAlexeiFedorov #if (RME_GPT_BITLOCK_BLOCK != 0)
1332*b0f1c840SAlexeiFedorov 	VERBOSE("  Bitlocks:  0x%"PRIxPTR"/0x%lx\n", (uintptr_t)gpt_bitlock,
1333*b0f1c840SAlexeiFedorov 					locks_size);
1334d766084fSAlexeiFedorov #endif
1335f19dc624Sjohpow01 	return 0;
1336f19dc624Sjohpow01 }
1337f19dc624Sjohpow01 
1338f19dc624Sjohpow01 /*
13396a00e9b0SRobert Wakim  * A helper to write the value (target_pas << gpi_shift) to the index of
1340b99926efSAlexeiFedorov  * the gpt_l1_addr.
13416a00e9b0SRobert Wakim  */
13426a00e9b0SRobert Wakim static inline void write_gpt(uint64_t *gpt_l1_desc, uint64_t *gpt_l1_addr,
13436a00e9b0SRobert Wakim 			     unsigned int gpi_shift, unsigned int idx,
13446a00e9b0SRobert Wakim 			     unsigned int target_pas)
13456a00e9b0SRobert Wakim {
13466a00e9b0SRobert Wakim 	*gpt_l1_desc &= ~(GPT_L1_GRAN_DESC_GPI_MASK << gpi_shift);
13476a00e9b0SRobert Wakim 	*gpt_l1_desc |= ((uint64_t)target_pas << gpi_shift);
13486a00e9b0SRobert Wakim 	gpt_l1_addr[idx] = *gpt_l1_desc;
1349ec0088bbSAlexeiFedorov 
1350ec0088bbSAlexeiFedorov 	dsboshst();
13516a00e9b0SRobert Wakim }
13526a00e9b0SRobert Wakim 
13536a00e9b0SRobert Wakim /*
13546a00e9b0SRobert Wakim  * Helper to retrieve the gpt_l1_* information from the base address
1355b99926efSAlexeiFedorov  * returned in gpi_info.
13566a00e9b0SRobert Wakim  */
13576a00e9b0SRobert Wakim static int get_gpi_params(uint64_t base, gpi_info_t *gpi_info)
13586a00e9b0SRobert Wakim {
13596a00e9b0SRobert Wakim 	uint64_t gpt_l0_desc, *gpt_l0_base;
1360d766084fSAlexeiFedorov 	__unused unsigned int block_idx;
13616a00e9b0SRobert Wakim 
13626a00e9b0SRobert Wakim 	gpt_l0_base = (uint64_t *)gpt_config.plat_gpt_l0_base;
13636a00e9b0SRobert Wakim 	gpt_l0_desc = gpt_l0_base[GPT_L0_IDX(base)];
13646a00e9b0SRobert Wakim 	if (GPT_L0_TYPE(gpt_l0_desc) != GPT_L0_TYPE_TBL_DESC) {
1365b99926efSAlexeiFedorov 		VERBOSE("GPT: Granule is not covered by a table descriptor!\n");
13666a00e9b0SRobert Wakim 		VERBOSE("      Base=0x%"PRIx64"\n", base);
13676a00e9b0SRobert Wakim 		return -EINVAL;
13686a00e9b0SRobert Wakim 	}
13696a00e9b0SRobert Wakim 
1370b99926efSAlexeiFedorov 	/* Get the table index and GPI shift from PA */
13716a00e9b0SRobert Wakim 	gpi_info->gpt_l1_addr = GPT_L0_TBLD_ADDR(gpt_l0_desc);
1372ec0088bbSAlexeiFedorov 	gpi_info->idx = (unsigned int)GPT_L1_INDEX(base);
13736a00e9b0SRobert Wakim 	gpi_info->gpi_shift = GPT_L1_GPI_IDX(gpt_config.p, base) << 2;
13746a00e9b0SRobert Wakim 
1375d766084fSAlexeiFedorov #if (RME_GPT_BITLOCK_BLOCK != 0)
1376d766084fSAlexeiFedorov 	/* Block index */
1377d766084fSAlexeiFedorov 	block_idx = (unsigned int)(base / (RME_GPT_BITLOCK_BLOCK * SZ_512M));
1378ec0088bbSAlexeiFedorov 
1379ec0088bbSAlexeiFedorov 	/* Bitlock address and mask */
1380*b0f1c840SAlexeiFedorov 	gpi_info->lock = &gpt_bitlock[block_idx / LOCK_BITS];
1381d766084fSAlexeiFedorov 	gpi_info->mask = 1U << (block_idx & (LOCK_BITS - 1U));
1382d766084fSAlexeiFedorov #endif
13836a00e9b0SRobert Wakim 	return 0;
13846a00e9b0SRobert Wakim }
13856a00e9b0SRobert Wakim 
13866a00e9b0SRobert Wakim /*
1387ec0088bbSAlexeiFedorov  * Helper to retrieve the gpt_l1_desc and GPI information from gpi_info.
1388d766084fSAlexeiFedorov  * This function is called with bitlock or spinlock acquired.
1389ec0088bbSAlexeiFedorov  */
1390ec0088bbSAlexeiFedorov static void read_gpi(gpi_info_t *gpi_info)
1391ec0088bbSAlexeiFedorov {
1392ec0088bbSAlexeiFedorov 	gpi_info->gpt_l1_desc = (gpi_info->gpt_l1_addr)[gpi_info->idx];
1393ec0088bbSAlexeiFedorov 
1394ec0088bbSAlexeiFedorov 	if ((gpi_info->gpt_l1_desc & GPT_L1_TYPE_CONT_DESC_MASK) ==
1395ec0088bbSAlexeiFedorov 				 GPT_L1_TYPE_CONT_DESC) {
1396ec0088bbSAlexeiFedorov 		/* Read GPI from Contiguous descriptor */
1397ec0088bbSAlexeiFedorov 		gpi_info->gpi = (unsigned int)GPT_L1_CONT_GPI(gpi_info->gpt_l1_desc);
1398ec0088bbSAlexeiFedorov 	} else {
1399ec0088bbSAlexeiFedorov 		/* Read GPI from Granules descriptor */
1400ec0088bbSAlexeiFedorov 		gpi_info->gpi = (unsigned int)((gpi_info->gpt_l1_desc >> gpi_info->gpi_shift) &
1401ec0088bbSAlexeiFedorov 						GPT_L1_GRAN_DESC_GPI_MASK);
1402ec0088bbSAlexeiFedorov 	}
1403ec0088bbSAlexeiFedorov }
1404ec0088bbSAlexeiFedorov 
1405ec0088bbSAlexeiFedorov static void flush_page_to_popa(uintptr_t addr)
1406ec0088bbSAlexeiFedorov {
1407ec0088bbSAlexeiFedorov 	size_t size = GPT_PGS_ACTUAL_SIZE(gpt_config.p);
1408ec0088bbSAlexeiFedorov 
1409ec0088bbSAlexeiFedorov 	if (is_feat_mte2_supported()) {
1410ec0088bbSAlexeiFedorov 		flush_dcache_to_popa_range_mte2(addr, size);
1411ec0088bbSAlexeiFedorov 	} else {
1412ec0088bbSAlexeiFedorov 		flush_dcache_to_popa_range(addr, size);
1413ec0088bbSAlexeiFedorov 	}
1414ec0088bbSAlexeiFedorov }
1415ec0088bbSAlexeiFedorov 
1416ec0088bbSAlexeiFedorov /*
1417ec0088bbSAlexeiFedorov  * Helper function to check if all L1 entries in 2MB block have
1418ec0088bbSAlexeiFedorov  * the same Granules descriptor value.
1419ec0088bbSAlexeiFedorov  *
1420ec0088bbSAlexeiFedorov  * Parameters
1421ec0088bbSAlexeiFedorov  *   base		Base address of the region to be checked
1422ec0088bbSAlexeiFedorov  *   gpi_info		Pointer to 'gpt_config_t' structure
1423ec0088bbSAlexeiFedorov  *   l1_desc		GPT Granules descriptor with all entries
1424ec0088bbSAlexeiFedorov  *			set to the same GPI.
1425ec0088bbSAlexeiFedorov  *
1426ec0088bbSAlexeiFedorov  * Return
1427ec0088bbSAlexeiFedorov  *   true if L1 all entries have the same descriptor value, false otherwise.
1428ec0088bbSAlexeiFedorov  */
1429ec0088bbSAlexeiFedorov __unused static bool check_fuse_2mb(uint64_t base, const gpi_info_t *gpi_info,
1430ec0088bbSAlexeiFedorov 					uint64_t l1_desc)
1431ec0088bbSAlexeiFedorov {
1432ec0088bbSAlexeiFedorov 	/* Last L1 entry index in 2MB block */
1433ec0088bbSAlexeiFedorov 	unsigned int long idx = GPT_L1_INDEX(ALIGN_2MB(base)) +
1434ec0088bbSAlexeiFedorov 						gpt_l1_cnt_2mb - 1UL;
1435ec0088bbSAlexeiFedorov 
1436ec0088bbSAlexeiFedorov 	/* Number of L1 entries in 2MB block */
1437ec0088bbSAlexeiFedorov 	unsigned int cnt = gpt_l1_cnt_2mb;
1438ec0088bbSAlexeiFedorov 
1439ec0088bbSAlexeiFedorov 	/*
1440ec0088bbSAlexeiFedorov 	 * Start check from the last L1 entry and continue until the first
1441ec0088bbSAlexeiFedorov 	 * non-matching to the passed Granules descriptor value is found.
1442ec0088bbSAlexeiFedorov 	 */
1443ec0088bbSAlexeiFedorov 	while (cnt-- != 0U) {
1444ec0088bbSAlexeiFedorov 		if (gpi_info->gpt_l1_addr[idx--] != l1_desc) {
1445ec0088bbSAlexeiFedorov 			/* Non-matching L1 entry found */
1446ec0088bbSAlexeiFedorov 			return false;
1447ec0088bbSAlexeiFedorov 		}
1448ec0088bbSAlexeiFedorov 	}
1449ec0088bbSAlexeiFedorov 
1450ec0088bbSAlexeiFedorov 	return true;
1451ec0088bbSAlexeiFedorov }
1452ec0088bbSAlexeiFedorov 
1453ec0088bbSAlexeiFedorov __unused static void fuse_2mb(uint64_t base, const gpi_info_t *gpi_info,
1454ec0088bbSAlexeiFedorov 				uint64_t l1_desc)
1455ec0088bbSAlexeiFedorov {
1456ec0088bbSAlexeiFedorov 	/* L1 entry index of the start of 2MB block */
1457ec0088bbSAlexeiFedorov 	unsigned long idx_2 = GPT_L1_INDEX(ALIGN_2MB(base));
1458ec0088bbSAlexeiFedorov 
1459ec0088bbSAlexeiFedorov 	/* 2MB Contiguous descriptor */
1460ec0088bbSAlexeiFedorov 	uint64_t l1_cont_desc = GPT_L1_CONT_DESC(l1_desc, 2MB);
1461ec0088bbSAlexeiFedorov 
1462ec0088bbSAlexeiFedorov 	VERBOSE("GPT: %s(0x%"PRIxPTR" 0x%"PRIx64")\n", __func__, base, l1_desc);
1463ec0088bbSAlexeiFedorov 
1464ec0088bbSAlexeiFedorov 	fill_desc(&gpi_info->gpt_l1_addr[idx_2], l1_cont_desc, L1_QWORDS_2MB);
1465ec0088bbSAlexeiFedorov }
1466ec0088bbSAlexeiFedorov 
1467ec0088bbSAlexeiFedorov /*
1468ec0088bbSAlexeiFedorov  * Helper function to check if all 1st L1 entries of 2MB blocks
1469ec0088bbSAlexeiFedorov  * in 32MB have the same 2MB Contiguous descriptor value.
1470ec0088bbSAlexeiFedorov  *
1471ec0088bbSAlexeiFedorov  * Parameters
1472ec0088bbSAlexeiFedorov  *   base		Base address of the region to be checked
1473ec0088bbSAlexeiFedorov  *   gpi_info		Pointer to 'gpt_config_t' structure
1474ec0088bbSAlexeiFedorov  *   l1_desc		GPT Granules descriptor.
1475ec0088bbSAlexeiFedorov  *
1476ec0088bbSAlexeiFedorov  * Return
1477ec0088bbSAlexeiFedorov  *   true if all L1 entries have the same descriptor value, false otherwise.
1478ec0088bbSAlexeiFedorov  */
1479ec0088bbSAlexeiFedorov __unused static bool check_fuse_32mb(uint64_t base, const gpi_info_t *gpi_info,
1480ec0088bbSAlexeiFedorov 					uint64_t l1_desc)
1481ec0088bbSAlexeiFedorov {
1482ec0088bbSAlexeiFedorov 	/* The 1st L1 entry index of the last 2MB block in 32MB */
1483ec0088bbSAlexeiFedorov 	unsigned long idx = GPT_L1_INDEX(ALIGN_32MB(base)) +
1484ec0088bbSAlexeiFedorov 					(15UL * gpt_l1_cnt_2mb);
1485ec0088bbSAlexeiFedorov 
1486ec0088bbSAlexeiFedorov 	/* 2MB Contiguous descriptor */
1487ec0088bbSAlexeiFedorov 	uint64_t l1_cont_desc = GPT_L1_CONT_DESC(l1_desc, 2MB);
1488ec0088bbSAlexeiFedorov 
1489ec0088bbSAlexeiFedorov 	/* Number of 2MB blocks in 32MB */
1490ec0088bbSAlexeiFedorov 	unsigned int cnt = 16U;
1491ec0088bbSAlexeiFedorov 
1492ec0088bbSAlexeiFedorov 	/* Set the first L1 entry to 2MB Contiguous descriptor */
1493ec0088bbSAlexeiFedorov 	gpi_info->gpt_l1_addr[GPT_L1_INDEX(ALIGN_2MB(base))] = l1_cont_desc;
1494ec0088bbSAlexeiFedorov 
1495ec0088bbSAlexeiFedorov 	/*
1496ec0088bbSAlexeiFedorov 	 * Start check from the 1st L1 entry of the last 2MB block and
1497ec0088bbSAlexeiFedorov 	 * continue until the first non-matching to 2MB Contiguous descriptor
1498ec0088bbSAlexeiFedorov 	 * value is found.
1499ec0088bbSAlexeiFedorov 	 */
1500ec0088bbSAlexeiFedorov 	while (cnt-- != 0U) {
1501ec0088bbSAlexeiFedorov 		if (gpi_info->gpt_l1_addr[idx] != l1_cont_desc) {
1502ec0088bbSAlexeiFedorov 			/* Non-matching L1 entry found */
1503ec0088bbSAlexeiFedorov 			return false;
1504ec0088bbSAlexeiFedorov 		}
1505ec0088bbSAlexeiFedorov 		idx -= gpt_l1_cnt_2mb;
1506ec0088bbSAlexeiFedorov 	}
1507ec0088bbSAlexeiFedorov 
1508ec0088bbSAlexeiFedorov 	return true;
1509ec0088bbSAlexeiFedorov }
1510ec0088bbSAlexeiFedorov 
1511ec0088bbSAlexeiFedorov __unused static void fuse_32mb(uint64_t base, const gpi_info_t *gpi_info,
1512ec0088bbSAlexeiFedorov 				uint64_t l1_desc)
1513ec0088bbSAlexeiFedorov {
1514ec0088bbSAlexeiFedorov 	/* L1 entry index of the start of 32MB block */
1515ec0088bbSAlexeiFedorov 	unsigned long idx_32 = GPT_L1_INDEX(ALIGN_32MB(base));
1516ec0088bbSAlexeiFedorov 
1517ec0088bbSAlexeiFedorov 	/* 32MB Contiguous descriptor */
1518ec0088bbSAlexeiFedorov 	uint64_t l1_cont_desc = GPT_L1_CONT_DESC(l1_desc, 32MB);
1519ec0088bbSAlexeiFedorov 
1520ec0088bbSAlexeiFedorov 	VERBOSE("GPT: %s(0x%"PRIxPTR" 0x%"PRIx64")\n", __func__, base, l1_desc);
1521ec0088bbSAlexeiFedorov 
1522ec0088bbSAlexeiFedorov 	fill_desc(&gpi_info->gpt_l1_addr[idx_32], l1_cont_desc, L1_QWORDS_32MB);
1523ec0088bbSAlexeiFedorov }
1524ec0088bbSAlexeiFedorov 
1525ec0088bbSAlexeiFedorov /*
1526ec0088bbSAlexeiFedorov  * Helper function to check if all 1st L1 entries of 32MB blocks
1527ec0088bbSAlexeiFedorov  * in 512MB have the same 32MB Contiguous descriptor value.
1528ec0088bbSAlexeiFedorov  *
1529ec0088bbSAlexeiFedorov  * Parameters
1530ec0088bbSAlexeiFedorov  *   base		Base address of the region to be checked
1531ec0088bbSAlexeiFedorov  *   gpi_info		Pointer to 'gpt_config_t' structure
1532ec0088bbSAlexeiFedorov  *   l1_desc		GPT Granules descriptor.
1533ec0088bbSAlexeiFedorov  *
1534ec0088bbSAlexeiFedorov  * Return
1535ec0088bbSAlexeiFedorov  *   true if all L1 entries have the same descriptor value, false otherwise.
1536ec0088bbSAlexeiFedorov  */
1537ec0088bbSAlexeiFedorov __unused static bool check_fuse_512mb(uint64_t base, const gpi_info_t *gpi_info,
1538ec0088bbSAlexeiFedorov 					uint64_t l1_desc)
1539ec0088bbSAlexeiFedorov {
1540ec0088bbSAlexeiFedorov 	/* The 1st L1 entry index of the last 32MB block in 512MB */
1541ec0088bbSAlexeiFedorov 	unsigned long idx = GPT_L1_INDEX(ALIGN_512MB(base)) +
1542ec0088bbSAlexeiFedorov 					(15UL * 16UL * gpt_l1_cnt_2mb);
1543ec0088bbSAlexeiFedorov 
1544ec0088bbSAlexeiFedorov 	/* 32MB Contiguous descriptor */
1545ec0088bbSAlexeiFedorov 	uint64_t l1_cont_desc = GPT_L1_CONT_DESC(l1_desc, 32MB);
1546ec0088bbSAlexeiFedorov 
1547ec0088bbSAlexeiFedorov 	/* Number of 32MB blocks in 512MB */
1548ec0088bbSAlexeiFedorov 	unsigned int cnt = 16U;
1549ec0088bbSAlexeiFedorov 
1550ec0088bbSAlexeiFedorov 	/* Set the first L1 entry to 2MB Contiguous descriptor */
1551ec0088bbSAlexeiFedorov 	gpi_info->gpt_l1_addr[GPT_L1_INDEX(ALIGN_32MB(base))] = l1_cont_desc;
1552ec0088bbSAlexeiFedorov 
1553ec0088bbSAlexeiFedorov 	/*
1554ec0088bbSAlexeiFedorov 	 * Start check from the 1st L1 entry of the last 32MB block and
1555ec0088bbSAlexeiFedorov 	 * continue until the first non-matching to 32MB Contiguous descriptor
1556ec0088bbSAlexeiFedorov 	 * value is found.
1557ec0088bbSAlexeiFedorov 	 */
1558ec0088bbSAlexeiFedorov 	while (cnt-- != 0U) {
1559ec0088bbSAlexeiFedorov 		if (gpi_info->gpt_l1_addr[idx] != l1_cont_desc) {
1560ec0088bbSAlexeiFedorov 			/* Non-matching L1 entry found */
1561ec0088bbSAlexeiFedorov 			return false;
1562ec0088bbSAlexeiFedorov 		}
1563ec0088bbSAlexeiFedorov 		idx -= 16UL * gpt_l1_cnt_2mb;
1564ec0088bbSAlexeiFedorov 	}
1565ec0088bbSAlexeiFedorov 
1566ec0088bbSAlexeiFedorov 	return true;
1567ec0088bbSAlexeiFedorov }
1568ec0088bbSAlexeiFedorov 
1569ec0088bbSAlexeiFedorov __unused static void fuse_512mb(uint64_t base, const gpi_info_t *gpi_info,
1570ec0088bbSAlexeiFedorov 				uint64_t l1_desc)
1571ec0088bbSAlexeiFedorov {
1572ec0088bbSAlexeiFedorov 	/* L1 entry index of the start of 512MB block */
1573ec0088bbSAlexeiFedorov 	unsigned long idx_512 = GPT_L1_INDEX(ALIGN_512MB(base));
1574ec0088bbSAlexeiFedorov 
1575ec0088bbSAlexeiFedorov 	/* 512MB Contiguous descriptor */
1576ec0088bbSAlexeiFedorov 	uint64_t l1_cont_desc = GPT_L1_CONT_DESC(l1_desc, 512MB);
1577ec0088bbSAlexeiFedorov 
1578ec0088bbSAlexeiFedorov 	VERBOSE("GPT: %s(0x%"PRIxPTR" 0x%"PRIx64")\n", __func__, base, l1_desc);
1579ec0088bbSAlexeiFedorov 
1580ec0088bbSAlexeiFedorov 	fill_desc(&gpi_info->gpt_l1_addr[idx_512], l1_cont_desc, L1_QWORDS_512MB);
1581ec0088bbSAlexeiFedorov }
1582ec0088bbSAlexeiFedorov 
1583ec0088bbSAlexeiFedorov /*
1584ec0088bbSAlexeiFedorov  * Helper function to convert GPI entries in a single L1 table
1585ec0088bbSAlexeiFedorov  * from Granules to Contiguous descriptor.
1586ec0088bbSAlexeiFedorov  *
1587ec0088bbSAlexeiFedorov  * Parameters
1588ec0088bbSAlexeiFedorov  *   base		Base address of the region to be written
1589ec0088bbSAlexeiFedorov  *   gpi_info		Pointer to 'gpt_config_t' structure
1590ec0088bbSAlexeiFedorov  *   l1_desc		GPT Granules descriptor with all entries
1591ec0088bbSAlexeiFedorov  *			set to the same GPI.
1592ec0088bbSAlexeiFedorov  */
1593ec0088bbSAlexeiFedorov __unused static void fuse_block(uint64_t base, const gpi_info_t *gpi_info,
1594ec0088bbSAlexeiFedorov 				uint64_t l1_desc)
1595ec0088bbSAlexeiFedorov {
1596ec0088bbSAlexeiFedorov 	/* Start with check for 2MB block */
1597ec0088bbSAlexeiFedorov 	if (!check_fuse_2mb(base, gpi_info, l1_desc)) {
1598ec0088bbSAlexeiFedorov 		/* Check for 2MB fusing failed */
1599ec0088bbSAlexeiFedorov 		return;
1600ec0088bbSAlexeiFedorov 	}
1601ec0088bbSAlexeiFedorov 
1602ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK == 2)
1603ec0088bbSAlexeiFedorov 	fuse_2mb(base, gpi_info, l1_desc);
1604ec0088bbSAlexeiFedorov #else
1605ec0088bbSAlexeiFedorov 	/* Check for 32MB block */
1606ec0088bbSAlexeiFedorov 	if (!check_fuse_32mb(base, gpi_info, l1_desc)) {
1607ec0088bbSAlexeiFedorov 		/* Check for 32MB fusing failed, fuse to 2MB */
1608ec0088bbSAlexeiFedorov 		fuse_2mb(base, gpi_info, l1_desc);
1609ec0088bbSAlexeiFedorov 		return;
1610ec0088bbSAlexeiFedorov 	}
1611ec0088bbSAlexeiFedorov 
1612ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK == 32)
1613ec0088bbSAlexeiFedorov 	fuse_32mb(base, gpi_info, l1_desc);
1614ec0088bbSAlexeiFedorov #else
1615ec0088bbSAlexeiFedorov 	/* Check for 512MB block */
1616ec0088bbSAlexeiFedorov 	if (!check_fuse_512mb(base, gpi_info, l1_desc)) {
1617ec0088bbSAlexeiFedorov 		/* Check for 512MB fusing failed, fuse to 32MB */
1618ec0088bbSAlexeiFedorov 		fuse_32mb(base, gpi_info, l1_desc);
1619ec0088bbSAlexeiFedorov 		return;
1620ec0088bbSAlexeiFedorov 	}
1621ec0088bbSAlexeiFedorov 
1622ec0088bbSAlexeiFedorov 	/* Fuse to 512MB */
1623ec0088bbSAlexeiFedorov 	fuse_512mb(base, gpi_info, l1_desc);
1624ec0088bbSAlexeiFedorov 
1625ec0088bbSAlexeiFedorov #endif	/* RME_GPT_MAX_BLOCK == 32 */
1626ec0088bbSAlexeiFedorov #endif	/* RME_GPT_MAX_BLOCK == 2 */
1627ec0088bbSAlexeiFedorov }
1628ec0088bbSAlexeiFedorov 
1629ec0088bbSAlexeiFedorov /*
1630ec0088bbSAlexeiFedorov  * Helper function to convert GPI entries in a single L1 table
1631ec0088bbSAlexeiFedorov  * from Contiguous to Granules descriptor. This function updates
1632ec0088bbSAlexeiFedorov  * descriptor to Granules in passed 'gpt_config_t' structure as
1633ec0088bbSAlexeiFedorov  * the result of shuttering.
1634ec0088bbSAlexeiFedorov  *
1635ec0088bbSAlexeiFedorov  * Parameters
1636ec0088bbSAlexeiFedorov  *   base		Base address of the region to be written
1637ec0088bbSAlexeiFedorov  *   gpi_info		Pointer to 'gpt_config_t' structure
1638ec0088bbSAlexeiFedorov  *   l1_desc		GPT Granules descriptor set this range to.
1639ec0088bbSAlexeiFedorov  */
1640ec0088bbSAlexeiFedorov __unused static void shatter_block(uint64_t base, gpi_info_t *gpi_info,
1641ec0088bbSAlexeiFedorov 				   uint64_t l1_desc)
1642ec0088bbSAlexeiFedorov {
1643ec0088bbSAlexeiFedorov 	/* Look-up table for 2MB, 32MB and 512MB locks shattering */
1644ec0088bbSAlexeiFedorov 	static const gpt_shatter_func gpt_shatter_lookup[] = {
1645ec0088bbSAlexeiFedorov 		shatter_2mb,
1646ec0088bbSAlexeiFedorov 		shatter_32mb,
1647ec0088bbSAlexeiFedorov 		shatter_512mb
1648ec0088bbSAlexeiFedorov 	};
1649ec0088bbSAlexeiFedorov 
1650ec0088bbSAlexeiFedorov 	/* Look-up table for invalidation TLBs for 2MB, 32MB and 512MB blocks */
1651ec0088bbSAlexeiFedorov 	static const gpt_tlbi_lookup_t tlbi_lookup[] = {
1652ec0088bbSAlexeiFedorov 		{ tlbirpalos_2m, ~(SZ_2M - 1UL) },
1653ec0088bbSAlexeiFedorov 		{ tlbirpalos_32m, ~(SZ_32M - 1UL) },
1654ec0088bbSAlexeiFedorov 		{ tlbirpalos_512m, ~(SZ_512M - 1UL) }
1655ec0088bbSAlexeiFedorov 	};
1656ec0088bbSAlexeiFedorov 
1657ec0088bbSAlexeiFedorov 	/* Get shattering level from Contig field of Contiguous descriptor */
1658ec0088bbSAlexeiFedorov 	unsigned long level = GPT_L1_CONT_CONTIG(gpi_info->gpt_l1_desc) - 1UL;
1659ec0088bbSAlexeiFedorov 
1660ec0088bbSAlexeiFedorov 	/* Shatter contiguous block */
1661ec0088bbSAlexeiFedorov 	gpt_shatter_lookup[level](base, gpi_info, l1_desc);
1662ec0088bbSAlexeiFedorov 
1663ec0088bbSAlexeiFedorov 	tlbi_lookup[level].function(base & tlbi_lookup[level].mask);
1664ec0088bbSAlexeiFedorov 	dsbosh();
1665ec0088bbSAlexeiFedorov 
1666ec0088bbSAlexeiFedorov 	/*
1667ec0088bbSAlexeiFedorov 	 * Update 'gpt_config_t' structure's descriptor to Granules to reflect
1668ec0088bbSAlexeiFedorov 	 * the shattered GPI back to caller.
1669ec0088bbSAlexeiFedorov 	 */
1670ec0088bbSAlexeiFedorov 	gpi_info->gpt_l1_desc = l1_desc;
1671ec0088bbSAlexeiFedorov }
1672ec0088bbSAlexeiFedorov 
1673ec0088bbSAlexeiFedorov /*
16746a00e9b0SRobert Wakim  * This function is the granule transition delegate service. When a granule
16756a00e9b0SRobert Wakim  * transition request occurs it is routed to this function to have the request,
1676ec0088bbSAlexeiFedorov  * if valid, fulfilled following A1.1.1 Delegate of RME supplement.
1677f19dc624Sjohpow01  *
16786a00e9b0SRobert Wakim  * TODO: implement support for transitioning multiple granules at once.
1679f19dc624Sjohpow01  *
1680f19dc624Sjohpow01  * Parameters
16816a00e9b0SRobert Wakim  *   base		Base address of the region to transition, must be
16826a00e9b0SRobert Wakim  *			aligned to granule size.
16836a00e9b0SRobert Wakim  *   size		Size of region to transition, must be aligned to granule
16846a00e9b0SRobert Wakim  *			size.
1685f19dc624Sjohpow01  *   src_sec_state	Security state of the caller.
1686f19dc624Sjohpow01  *
1687f19dc624Sjohpow01  * Return
1688f19dc624Sjohpow01  *   Negative Linux error code in the event of a failure, 0 for success.
1689f19dc624Sjohpow01  */
16906a00e9b0SRobert Wakim int gpt_delegate_pas(uint64_t base, size_t size, unsigned int src_sec_state)
1691f19dc624Sjohpow01 {
16926a00e9b0SRobert Wakim 	gpi_info_t gpi_info;
1693ec0088bbSAlexeiFedorov 	uint64_t nse, __unused l1_desc;
16946a00e9b0SRobert Wakim 	unsigned int target_pas;
1695ec0088bbSAlexeiFedorov 	int res;
1696f19dc624Sjohpow01 
1697b99926efSAlexeiFedorov 	/* Ensure that the tables have been set up before taking requests */
16986a00e9b0SRobert Wakim 	assert(gpt_config.plat_gpt_l0_base != 0UL);
16996a00e9b0SRobert Wakim 
1700b99926efSAlexeiFedorov 	/* Ensure that caches are enabled */
17016a00e9b0SRobert Wakim 	assert((read_sctlr_el3() & SCTLR_C_BIT) != 0UL);
17026a00e9b0SRobert Wakim 
1703b99926efSAlexeiFedorov 	/* See if this is a single or a range of granule transition */
17046a00e9b0SRobert Wakim 	if (size != GPT_PGS_ACTUAL_SIZE(gpt_config.p)) {
1705f19dc624Sjohpow01 		return -EINVAL;
1706f19dc624Sjohpow01 	}
1707f19dc624Sjohpow01 
17086a00e9b0SRobert Wakim 	/* Check that base and size are valid */
17096a00e9b0SRobert Wakim 	if ((ULONG_MAX - base) < size) {
1710b99926efSAlexeiFedorov 		VERBOSE("GPT: Transition request address overflow!\n");
17116a00e9b0SRobert Wakim 		VERBOSE("      Base=0x%"PRIx64"\n", base);
17126a00e9b0SRobert Wakim 		VERBOSE("      Size=0x%lx\n", size);
17136a00e9b0SRobert Wakim 		return -EINVAL;
17146a00e9b0SRobert Wakim 	}
17156a00e9b0SRobert Wakim 
1716b99926efSAlexeiFedorov 	/* Make sure base and size are valid */
1717b99926efSAlexeiFedorov 	if (((base & (GPT_PGS_ACTUAL_SIZE(gpt_config.p) - 1UL)) != 0UL) ||
1718b99926efSAlexeiFedorov 	    ((size & (GPT_PGS_ACTUAL_SIZE(gpt_config.p) - 1UL)) != 0UL) ||
17196a00e9b0SRobert Wakim 	    (size == 0UL) ||
17206a00e9b0SRobert Wakim 	    ((base + size) >= GPT_PPS_ACTUAL_SIZE(gpt_config.t))) {
1721b99926efSAlexeiFedorov 		VERBOSE("GPT: Invalid granule transition address range!\n");
17226a00e9b0SRobert Wakim 		VERBOSE("      Base=0x%"PRIx64"\n", base);
17236a00e9b0SRobert Wakim 		VERBOSE("      Size=0x%lx\n", size);
17246a00e9b0SRobert Wakim 		return -EINVAL;
17256a00e9b0SRobert Wakim 	}
17266a00e9b0SRobert Wakim 
1727ec0088bbSAlexeiFedorov 	/* Delegate request can only come from REALM or SECURE */
1728ec0088bbSAlexeiFedorov 	if ((src_sec_state != SMC_FROM_REALM) &&
1729ec0088bbSAlexeiFedorov 	    (src_sec_state != SMC_FROM_SECURE)) {
1730ec0088bbSAlexeiFedorov 		VERBOSE("GPT: Invalid caller security state 0x%x\n",
1731ec0088bbSAlexeiFedorov 							src_sec_state);
1732ec0088bbSAlexeiFedorov 		return -EINVAL;
1733ec0088bbSAlexeiFedorov 	}
1734ec0088bbSAlexeiFedorov 
1735ec0088bbSAlexeiFedorov 	if (src_sec_state == SMC_FROM_REALM) {
17366a00e9b0SRobert Wakim 		target_pas = GPT_GPI_REALM;
1737ec0088bbSAlexeiFedorov 		nse = (uint64_t)GPT_NSE_REALM << GPT_NSE_SHIFT;
1738ec0088bbSAlexeiFedorov 		l1_desc = GPT_L1_REALM_DESC;
1739ec0088bbSAlexeiFedorov 	} else {
17406a00e9b0SRobert Wakim 		target_pas = GPT_GPI_SECURE;
1741ec0088bbSAlexeiFedorov 		nse = (uint64_t)GPT_NSE_SECURE << GPT_NSE_SHIFT;
1742ec0088bbSAlexeiFedorov 		l1_desc = GPT_L1_SECURE_DESC;
1743ec0088bbSAlexeiFedorov 	}
1744ec0088bbSAlexeiFedorov 
1745ec0088bbSAlexeiFedorov 	res = get_gpi_params(base, &gpi_info);
1746ec0088bbSAlexeiFedorov 	if (res != 0) {
1747ec0088bbSAlexeiFedorov 		return res;
17486a00e9b0SRobert Wakim 	}
17496a00e9b0SRobert Wakim 
17506a00e9b0SRobert Wakim 	/*
1751d766084fSAlexeiFedorov 	 * Access to GPT is controlled by a lock to ensure that no more
1752d766084fSAlexeiFedorov 	 * than one CPU is allowed to make changes at any given time.
17536a00e9b0SRobert Wakim 	 */
1754d766084fSAlexeiFedorov 	GPT_LOCK;
1755ec0088bbSAlexeiFedorov 	read_gpi(&gpi_info);
17566a00e9b0SRobert Wakim 
17576a00e9b0SRobert Wakim 	/* Check that the current address is in NS state */
17586a00e9b0SRobert Wakim 	if (gpi_info.gpi != GPT_GPI_NS) {
1759b99926efSAlexeiFedorov 		VERBOSE("GPT: Only Granule in NS state can be delegated.\n");
17606a00e9b0SRobert Wakim 		VERBOSE("      Caller: %u, Current GPI: %u\n", src_sec_state,
17616a00e9b0SRobert Wakim 			gpi_info.gpi);
1762d766084fSAlexeiFedorov 		GPT_UNLOCK;
1763e50fedbcSJavier Almansa Sobrino 		return -EPERM;
17646a00e9b0SRobert Wakim 	}
17656a00e9b0SRobert Wakim 
1766ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK != 0)
1767ec0088bbSAlexeiFedorov 	/* Check for Contiguous descriptor */
1768ec0088bbSAlexeiFedorov 	if ((gpi_info.gpt_l1_desc & GPT_L1_TYPE_CONT_DESC_MASK) ==
1769ec0088bbSAlexeiFedorov 					GPT_L1_TYPE_CONT_DESC) {
1770ec0088bbSAlexeiFedorov 		shatter_block(base, &gpi_info, GPT_L1_NS_DESC);
1771f19dc624Sjohpow01 	}
1772ec0088bbSAlexeiFedorov #endif
17736a00e9b0SRobert Wakim 	/*
17746a00e9b0SRobert Wakim 	 * In order to maintain mutual distrust between Realm and Secure
17756a00e9b0SRobert Wakim 	 * states, remove any data speculatively fetched into the target
1776ec0088bbSAlexeiFedorov 	 * physical address space.
1777ec0088bbSAlexeiFedorov 	 * Issue DC CIPAPA or DC_CIGDPAPA on implementations with FEAT_MTE2.
17786a00e9b0SRobert Wakim 	 */
1779ec0088bbSAlexeiFedorov 	flush_page_to_popa(base | nse);
17806a00e9b0SRobert Wakim 
17816a00e9b0SRobert Wakim 	write_gpt(&gpi_info.gpt_l1_desc, gpi_info.gpt_l1_addr,
17826a00e9b0SRobert Wakim 		  gpi_info.gpi_shift, gpi_info.idx, target_pas);
17836a00e9b0SRobert Wakim 
1784ec0088bbSAlexeiFedorov 	/* Ensure that all agents observe the new configuration */
1785ec0088bbSAlexeiFedorov 	tlbi_page_dsbosh(base);
17866a00e9b0SRobert Wakim 
17876a00e9b0SRobert Wakim 	nse = (uint64_t)GPT_NSE_NS << GPT_NSE_SHIFT;
17886a00e9b0SRobert Wakim 
1789ec0088bbSAlexeiFedorov 	/* Ensure that the scrubbed data have made it past the PoPA */
1790ec0088bbSAlexeiFedorov 	flush_page_to_popa(base | nse);
17916a00e9b0SRobert Wakim 
1792ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK != 0)
1793ec0088bbSAlexeiFedorov 	if (gpi_info.gpt_l1_desc == l1_desc) {
1794ec0088bbSAlexeiFedorov 		/* Try to fuse */
1795ec0088bbSAlexeiFedorov 		fuse_block(base, &gpi_info, l1_desc);
1796ec0088bbSAlexeiFedorov 	}
1797ec0088bbSAlexeiFedorov #endif
1798ec0088bbSAlexeiFedorov 
1799d766084fSAlexeiFedorov 	/* Unlock the lock to GPT */
1800d766084fSAlexeiFedorov 	GPT_UNLOCK;
18016a00e9b0SRobert Wakim 
18026a00e9b0SRobert Wakim 	/*
18036a00e9b0SRobert Wakim 	 * The isb() will be done as part of context
1804b99926efSAlexeiFedorov 	 * synchronization when returning to lower EL.
18056a00e9b0SRobert Wakim 	 */
1806b99926efSAlexeiFedorov 	VERBOSE("GPT: Granule 0x%"PRIx64" GPI 0x%x->0x%x\n",
18076a00e9b0SRobert Wakim 		base, gpi_info.gpi, target_pas);
1808f19dc624Sjohpow01 
1809f19dc624Sjohpow01 	return 0;
1810f19dc624Sjohpow01 }
1811f19dc624Sjohpow01 
1812f19dc624Sjohpow01 /*
18136a00e9b0SRobert Wakim  * This function is the granule transition undelegate service. When a granule
1814f19dc624Sjohpow01  * transition request occurs it is routed to this function where the request is
1815f19dc624Sjohpow01  * validated then fulfilled if possible.
1816f19dc624Sjohpow01  *
1817f19dc624Sjohpow01  * TODO: implement support for transitioning multiple granules at once.
1818f19dc624Sjohpow01  *
1819f19dc624Sjohpow01  * Parameters
1820f19dc624Sjohpow01  *   base		Base address of the region to transition, must be
1821f19dc624Sjohpow01  *			aligned to granule size.
1822f19dc624Sjohpow01  *   size		Size of region to transition, must be aligned to granule
1823f19dc624Sjohpow01  *			size.
1824f19dc624Sjohpow01  *   src_sec_state	Security state of the caller.
1825f19dc624Sjohpow01  *
1826f19dc624Sjohpow01  * Return
1827f19dc624Sjohpow01  *    Negative Linux error code in the event of a failure, 0 for success.
1828f19dc624Sjohpow01  */
18296a00e9b0SRobert Wakim int gpt_undelegate_pas(uint64_t base, size_t size, unsigned int src_sec_state)
1830f19dc624Sjohpow01 {
18316a00e9b0SRobert Wakim 	gpi_info_t gpi_info;
1832ec0088bbSAlexeiFedorov 	uint64_t nse, __unused l1_desc;
18336a00e9b0SRobert Wakim 	int res;
1834f19dc624Sjohpow01 
1835b99926efSAlexeiFedorov 	/* Ensure that the tables have been set up before taking requests */
18366a00e9b0SRobert Wakim 	assert(gpt_config.plat_gpt_l0_base != 0UL);
1837f19dc624Sjohpow01 
1838b99926efSAlexeiFedorov 	/* Ensure that MMU and caches are enabled */
18396a00e9b0SRobert Wakim 	assert((read_sctlr_el3() & SCTLR_C_BIT) != 0UL);
184077612b90SSoby Mathew 
1841b99926efSAlexeiFedorov 	/* See if this is a single or a range of granule transition */
18426a00e9b0SRobert Wakim 	if (size != GPT_PGS_ACTUAL_SIZE(gpt_config.p)) {
18436a00e9b0SRobert Wakim 		return -EINVAL;
18446a00e9b0SRobert Wakim 	}
18456a00e9b0SRobert Wakim 
18466a00e9b0SRobert Wakim 	/* Check that base and size are valid */
1847f19dc624Sjohpow01 	if ((ULONG_MAX - base) < size) {
1848b99926efSAlexeiFedorov 		VERBOSE("GPT: Transition request address overflow!\n");
18492461bd3aSManish Pandey 		VERBOSE("      Base=0x%"PRIx64"\n", base);
1850f19dc624Sjohpow01 		VERBOSE("      Size=0x%lx\n", size);
1851f19dc624Sjohpow01 		return -EINVAL;
1852f19dc624Sjohpow01 	}
1853f19dc624Sjohpow01 
1854b99926efSAlexeiFedorov 	/* Make sure base and size are valid */
1855b99926efSAlexeiFedorov 	if (((base & (GPT_PGS_ACTUAL_SIZE(gpt_config.p) - 1UL)) != 0UL) ||
1856b99926efSAlexeiFedorov 	    ((size & (GPT_PGS_ACTUAL_SIZE(gpt_config.p) - 1UL)) != 0UL) ||
18576a00e9b0SRobert Wakim 	    (size == 0UL) ||
1858f19dc624Sjohpow01 	    ((base + size) >= GPT_PPS_ACTUAL_SIZE(gpt_config.t))) {
1859b99926efSAlexeiFedorov 		VERBOSE("GPT: Invalid granule transition address range!\n");
18602461bd3aSManish Pandey 		VERBOSE("      Base=0x%"PRIx64"\n", base);
1861f19dc624Sjohpow01 		VERBOSE("      Size=0x%lx\n", size);
1862f19dc624Sjohpow01 		return -EINVAL;
1863f19dc624Sjohpow01 	}
1864f19dc624Sjohpow01 
18656a00e9b0SRobert Wakim 	res = get_gpi_params(base, &gpi_info);
18666a00e9b0SRobert Wakim 	if (res != 0) {
18676a00e9b0SRobert Wakim 		return res;
1868f19dc624Sjohpow01 	}
1869f19dc624Sjohpow01 
1870ec0088bbSAlexeiFedorov 	/*
1871d766084fSAlexeiFedorov 	 * Access to GPT is controlled by a lock to ensure that no more
1872d766084fSAlexeiFedorov 	 * than one CPU is allowed to make changes at any given time.
1873ec0088bbSAlexeiFedorov 	 */
1874d766084fSAlexeiFedorov 	GPT_LOCK;
1875ec0088bbSAlexeiFedorov 	read_gpi(&gpi_info);
1876ec0088bbSAlexeiFedorov 
18776a00e9b0SRobert Wakim 	/* Check that the current address is in the delegated state */
1878ec0088bbSAlexeiFedorov 	if ((src_sec_state == SMC_FROM_REALM) &&
1879ec0088bbSAlexeiFedorov 		(gpi_info.gpi == GPT_GPI_REALM)) {
1880ec0088bbSAlexeiFedorov 		l1_desc = GPT_L1_REALM_DESC;
1881ec0088bbSAlexeiFedorov 		nse = (uint64_t)GPT_NSE_REALM << GPT_NSE_SHIFT;
1882ec0088bbSAlexeiFedorov 	} else if ((src_sec_state == SMC_FROM_SECURE) &&
1883ec0088bbSAlexeiFedorov 		(gpi_info.gpi == GPT_GPI_SECURE)) {
1884ec0088bbSAlexeiFedorov 		l1_desc = GPT_L1_SECURE_DESC;
1885ec0088bbSAlexeiFedorov 		nse = (uint64_t)GPT_NSE_SECURE << GPT_NSE_SHIFT;
1886ec0088bbSAlexeiFedorov 	} else {
1887ec0088bbSAlexeiFedorov 		VERBOSE("GPT: Only Granule in REALM or SECURE state can be undelegated\n");
1888b99926efSAlexeiFedorov 		VERBOSE("      Caller: %u Current GPI: %u\n", src_sec_state,
18896a00e9b0SRobert Wakim 			gpi_info.gpi);
1890d766084fSAlexeiFedorov 		GPT_UNLOCK;
1891e50fedbcSJavier Almansa Sobrino 		return -EPERM;
18926a00e9b0SRobert Wakim 	}
1893f19dc624Sjohpow01 
1894ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK != 0)
1895ec0088bbSAlexeiFedorov 	/* Check for Contiguous descriptor */
1896ec0088bbSAlexeiFedorov 	if ((gpi_info.gpt_l1_desc & GPT_L1_TYPE_CONT_DESC_MASK) ==
1897ec0088bbSAlexeiFedorov 					GPT_L1_TYPE_CONT_DESC) {
1898ec0088bbSAlexeiFedorov 		shatter_block(base, &gpi_info, l1_desc);
1899ec0088bbSAlexeiFedorov 	}
1900ec0088bbSAlexeiFedorov #endif
1901ec0088bbSAlexeiFedorov 	/*
1902ec0088bbSAlexeiFedorov 	 * In order to maintain mutual distrust between Realm and Secure
19036a00e9b0SRobert Wakim 	 * states, remove access now, in order to guarantee that writes
19046a00e9b0SRobert Wakim 	 * to the currently-accessible physical address space will not
19056a00e9b0SRobert Wakim 	 * later become observable.
19066a00e9b0SRobert Wakim 	 */
19076a00e9b0SRobert Wakim 	write_gpt(&gpi_info.gpt_l1_desc, gpi_info.gpt_l1_addr,
19086a00e9b0SRobert Wakim 		  gpi_info.gpi_shift, gpi_info.idx, GPT_GPI_NO_ACCESS);
19096a00e9b0SRobert Wakim 
1910ec0088bbSAlexeiFedorov 	/* Ensure that all agents observe the new NO_ACCESS configuration */
1911ec0088bbSAlexeiFedorov 	tlbi_page_dsbosh(base);
19126a00e9b0SRobert Wakim 
1913ec0088bbSAlexeiFedorov 	/* Ensure that the scrubbed data have made it past the PoPA */
1914ec0088bbSAlexeiFedorov 	flush_page_to_popa(base | nse);
19156a00e9b0SRobert Wakim 
19166a00e9b0SRobert Wakim 	/*
1917ec0088bbSAlexeiFedorov 	 * Remove any data loaded speculatively in NS space from before
1918ec0088bbSAlexeiFedorov 	 * the scrubbing.
19196a00e9b0SRobert Wakim 	 */
19206a00e9b0SRobert Wakim 	nse = (uint64_t)GPT_NSE_NS << GPT_NSE_SHIFT;
19216a00e9b0SRobert Wakim 
1922ec0088bbSAlexeiFedorov 	flush_page_to_popa(base | nse);
19236a00e9b0SRobert Wakim 
1924ec0088bbSAlexeiFedorov 	/* Clear existing GPI encoding and transition granule */
19256a00e9b0SRobert Wakim 	write_gpt(&gpi_info.gpt_l1_desc, gpi_info.gpt_l1_addr,
19266a00e9b0SRobert Wakim 		  gpi_info.gpi_shift, gpi_info.idx, GPT_GPI_NS);
19276a00e9b0SRobert Wakim 
19286a00e9b0SRobert Wakim 	/* Ensure that all agents observe the new NS configuration */
1929ec0088bbSAlexeiFedorov 	tlbi_page_dsbosh(base);
1930f19dc624Sjohpow01 
1931ec0088bbSAlexeiFedorov #if (RME_GPT_MAX_BLOCK != 0)
1932ec0088bbSAlexeiFedorov 	if (gpi_info.gpt_l1_desc == GPT_L1_NS_DESC) {
1933ec0088bbSAlexeiFedorov 		/* Try to fuse */
1934ec0088bbSAlexeiFedorov 		fuse_block(base, &gpi_info, GPT_L1_NS_DESC);
1935ec0088bbSAlexeiFedorov 	}
1936ec0088bbSAlexeiFedorov #endif
1937d766084fSAlexeiFedorov 	/* Unlock the lock to GPT */
1938d766084fSAlexeiFedorov 	GPT_UNLOCK;
1939f19dc624Sjohpow01 
194077612b90SSoby Mathew 	/*
194177612b90SSoby Mathew 	 * The isb() will be done as part of context
1942b99926efSAlexeiFedorov 	 * synchronization when returning to lower EL.
194377612b90SSoby Mathew 	 */
1944b99926efSAlexeiFedorov 	VERBOSE("GPT: Granule 0x%"PRIx64" GPI 0x%x->0x%x\n",
19456a00e9b0SRobert Wakim 		base, gpi_info.gpi, GPT_GPI_NS);
1946f19dc624Sjohpow01 
1947f19dc624Sjohpow01 	return 0;
1948f19dc624Sjohpow01 }
1949