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@@ -10,6 +10,87 @@
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#include "coresight-priv.h"
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#include "coresight-tmc.h"
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+/*
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+ * The TMC ETR SG has a page size of 4K. The SG table contains pointers
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+ * to 4KB buffers. However, the OS may use a PAGE_SIZE different from
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+ * 4K (i.e, 16KB or 64KB). This implies that a single OS page could
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+ * contain more than one SG buffer and tables.
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+ *
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+ * A table entry has the following format:
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+ *
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+ * ---Bit31------------Bit4-------Bit1-----Bit0--
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+ * | Address[39:12] | SBZ | Entry Type |
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+ * ----------------------------------------------
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+ *
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+ * Address: Bits [39:12] of a physical page address. Bits [11:0] are
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+ * always zero.
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+ *
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+ * Entry type:
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+ * b00 - Reserved.
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+ * b01 - Last entry in the tables, points to 4K page buffer.
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+ * b10 - Normal entry, points to 4K page buffer.
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+ * b11 - Link. The address points to the base of next table.
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+ */
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+
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+typedef u32 sgte_t;
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+
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+#define ETR_SG_PAGE_SHIFT 12
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+#define ETR_SG_PAGE_SIZE (1UL << ETR_SG_PAGE_SHIFT)
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+#define ETR_SG_PAGES_PER_SYSPAGE (PAGE_SIZE / ETR_SG_PAGE_SIZE)
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+#define ETR_SG_PTRS_PER_PAGE (ETR_SG_PAGE_SIZE / sizeof(sgte_t))
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+#define ETR_SG_PTRS_PER_SYSPAGE (PAGE_SIZE / sizeof(sgte_t))
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+
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+#define ETR_SG_ET_MASK 0x3
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+#define ETR_SG_ET_LAST 0x1
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+#define ETR_SG_ET_NORMAL 0x2
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+#define ETR_SG_ET_LINK 0x3
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+
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+#define ETR_SG_ADDR_SHIFT 4
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+
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+#define ETR_SG_ENTRY(addr, type) \
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+ (sgte_t)((((addr) >> ETR_SG_PAGE_SHIFT) << ETR_SG_ADDR_SHIFT) | \
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+ (type & ETR_SG_ET_MASK))
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+
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+#define ETR_SG_ADDR(entry) \
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+ (((dma_addr_t)(entry) >> ETR_SG_ADDR_SHIFT) << ETR_SG_PAGE_SHIFT)
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+#define ETR_SG_ET(entry) ((entry) & ETR_SG_ET_MASK)
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+
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+/*
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+ * struct etr_sg_table : ETR SG Table
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+ * @sg_table: Generic SG Table holding the data/table pages.
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+ * @hwaddr: hwaddress used by the TMC, which is the base
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+ * address of the table.
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+ */
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+struct etr_sg_table {
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+ struct tmc_sg_table *sg_table;
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+ dma_addr_t hwaddr;
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+};
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+
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+/*
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+ * tmc_etr_sg_table_entries: Total number of table entries required to map
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+ * @nr_pages system pages.
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+ *
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+ * We need to map @nr_pages * ETR_SG_PAGES_PER_SYSPAGE data pages.
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+ * Each TMC page can map (ETR_SG_PTRS_PER_PAGE - 1) buffer pointers,
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+ * with the last entry pointing to another page of table entries.
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+ * If we spill over to a new page for mapping 1 entry, we could as
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+ * well replace the link entry of the previous page with the last entry.
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+ */
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+static inline unsigned long __attribute_const__
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+tmc_etr_sg_table_entries(int nr_pages)
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+{
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+ unsigned long nr_sgpages = nr_pages * ETR_SG_PAGES_PER_SYSPAGE;
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+ unsigned long nr_sglinks = nr_sgpages / (ETR_SG_PTRS_PER_PAGE - 1);
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+ /*
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+ * If we spill over to a new page for 1 entry, we could as well
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+ * make it the LAST entry in the previous page, skipping the Link
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+ * address.
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+ */
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+ if (nr_sglinks && (nr_sgpages % (ETR_SG_PTRS_PER_PAGE - 1) < 2))
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+ nr_sglinks--;
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+ return nr_sgpages + nr_sglinks;
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+}
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+
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/*
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* tmc_pages_get_offset: Go through all the pages in the tmc_pages
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* and map the device address @addr to an offset within the virtual
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@@ -277,6 +358,188 @@ ssize_t tmc_sg_table_get_data(struct tmc_sg_table *sg_table,
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return len;
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}
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+#ifdef ETR_SG_DEBUG
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+/* Map a dma address to virtual address */
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+static unsigned long
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+tmc_sg_daddr_to_vaddr(struct tmc_sg_table *sg_table,
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+ dma_addr_t addr, bool table)
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+{
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+ long offset;
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+ unsigned long base;
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+ struct tmc_pages *tmc_pages;
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+
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+ if (table) {
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+ tmc_pages = &sg_table->table_pages;
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+ base = (unsigned long)sg_table->table_vaddr;
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+ } else {
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+ tmc_pages = &sg_table->data_pages;
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+ base = (unsigned long)sg_table->data_vaddr;
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+ }
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+
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+ offset = tmc_pages_get_offset(tmc_pages, addr);
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+ if (offset < 0)
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+ return 0;
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+ return base + offset;
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+}
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+
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+/* Dump the given sg_table */
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+static void tmc_etr_sg_table_dump(struct etr_sg_table *etr_table)
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+{
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+ sgte_t *ptr;
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+ int i = 0;
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+ dma_addr_t addr;
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+ struct tmc_sg_table *sg_table = etr_table->sg_table;
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+
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+ ptr = (sgte_t *)tmc_sg_daddr_to_vaddr(sg_table,
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+ etr_table->hwaddr, true);
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+ while (ptr) {
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+ addr = ETR_SG_ADDR(*ptr);
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+ switch (ETR_SG_ET(*ptr)) {
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+ case ETR_SG_ET_NORMAL:
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+ dev_dbg(sg_table->dev,
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+ "%05d: %p\t:[N] 0x%llx\n", i, ptr, addr);
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+ ptr++;
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+ break;
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+ case ETR_SG_ET_LINK:
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+ dev_dbg(sg_table->dev,
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+ "%05d: *** %p\t:{L} 0x%llx ***\n",
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+ i, ptr, addr);
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+ ptr = (sgte_t *)tmc_sg_daddr_to_vaddr(sg_table,
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+ addr, true);
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+ break;
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+ case ETR_SG_ET_LAST:
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+ dev_dbg(sg_table->dev,
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+ "%05d: ### %p\t:[L] 0x%llx ###\n",
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+ i, ptr, addr);
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+ return;
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+ default:
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+ dev_dbg(sg_table->dev,
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+ "%05d: xxx %p\t:[INVALID] 0x%llx xxx\n",
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+ i, ptr, addr);
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+ return;
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+ }
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+ i++;
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+ }
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+ dev_dbg(sg_table->dev, "******* End of Table *****\n");
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+}
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+#else
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+static inline void tmc_etr_sg_table_dump(struct etr_sg_table *etr_table) {}
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+#endif
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+
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+/*
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+ * Populate the SG Table page table entries from table/data
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+ * pages allocated. Each Data page has ETR_SG_PAGES_PER_SYSPAGE SG pages.
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+ * So does a Table page. So we keep track of indices of the tables
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+ * in each system page and move the pointers accordingly.
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+ */
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+#define INC_IDX_ROUND(idx, size) ((idx) = ((idx) + 1) % (size))
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+static void tmc_etr_sg_table_populate(struct etr_sg_table *etr_table)
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+{
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+ dma_addr_t paddr;
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+ int i, type, nr_entries;
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+ int tpidx = 0; /* index to the current system table_page */
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+ int sgtidx = 0; /* index to the sg_table within the current syspage */
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+ int sgtentry = 0; /* the entry within the sg_table */
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+ int dpidx = 0; /* index to the current system data_page */
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+ int spidx = 0; /* index to the SG page within the current data page */
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+ sgte_t *ptr; /* pointer to the table entry to fill */
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+ struct tmc_sg_table *sg_table = etr_table->sg_table;
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+ dma_addr_t *table_daddrs = sg_table->table_pages.daddrs;
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+ dma_addr_t *data_daddrs = sg_table->data_pages.daddrs;
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+
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+ nr_entries = tmc_etr_sg_table_entries(sg_table->data_pages.nr_pages);
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+ /*
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+ * Use the contiguous virtual address of the table to update entries.
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+ */
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+ ptr = sg_table->table_vaddr;
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+ /*
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+ * Fill all the entries, except the last entry to avoid special
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+ * checks within the loop.
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+ */
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+ for (i = 0; i < nr_entries - 1; i++) {
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+ if (sgtentry == ETR_SG_PTRS_PER_PAGE - 1) {
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+ /*
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+ * Last entry in a sg_table page is a link address to
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+ * the next table page. If this sg_table is the last
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+ * one in the system page, it links to the first
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+ * sg_table in the next system page. Otherwise, it
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+ * links to the next sg_table page within the system
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+ * page.
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+ */
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+ if (sgtidx == ETR_SG_PAGES_PER_SYSPAGE - 1) {
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+ paddr = table_daddrs[tpidx + 1];
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+ } else {
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+ paddr = table_daddrs[tpidx] +
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+ (ETR_SG_PAGE_SIZE * (sgtidx + 1));
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+ }
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+ type = ETR_SG_ET_LINK;
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+ } else {
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+ /*
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+ * Update the indices to the data_pages to point to the
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+ * next sg_page in the data buffer.
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+ */
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+ type = ETR_SG_ET_NORMAL;
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+ paddr = data_daddrs[dpidx] + spidx * ETR_SG_PAGE_SIZE;
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+ if (!INC_IDX_ROUND(spidx, ETR_SG_PAGES_PER_SYSPAGE))
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+ dpidx++;
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+ }
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+ *ptr++ = ETR_SG_ENTRY(paddr, type);
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+ /*
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+ * Move to the next table pointer, moving the table page index
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+ * if necessary
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+ */
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+ if (!INC_IDX_ROUND(sgtentry, ETR_SG_PTRS_PER_PAGE)) {
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+ if (!INC_IDX_ROUND(sgtidx, ETR_SG_PAGES_PER_SYSPAGE))
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+ tpidx++;
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+ }
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+ }
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+
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+ /* Set up the last entry, which is always a data pointer */
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+ paddr = data_daddrs[dpidx] + spidx * ETR_SG_PAGE_SIZE;
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+ *ptr++ = ETR_SG_ENTRY(paddr, ETR_SG_ET_LAST);
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+}
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+
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+/*
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+ * tmc_init_etr_sg_table: Allocate a TMC ETR SG table, data buffer of @size and
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+ * populate the table.
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+ *
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+ * @dev - Device pointer for the TMC
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+ * @node - NUMA node where the memory should be allocated
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+ * @size - Total size of the data buffer
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+ * @pages - Optional list of page virtual address
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+ */
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+static struct etr_sg_table __maybe_unused *
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+tmc_init_etr_sg_table(struct device *dev, int node,
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+ unsigned long size, void **pages)
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+{
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+ int nr_entries, nr_tpages;
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+ int nr_dpages = size >> PAGE_SHIFT;
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+ struct tmc_sg_table *sg_table;
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+ struct etr_sg_table *etr_table;
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+
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+ etr_table = kzalloc(sizeof(*etr_table), GFP_KERNEL);
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+ if (!etr_table)
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+ return ERR_PTR(-ENOMEM);
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+ nr_entries = tmc_etr_sg_table_entries(nr_dpages);
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+ nr_tpages = DIV_ROUND_UP(nr_entries, ETR_SG_PTRS_PER_SYSPAGE);
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+
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+ sg_table = tmc_alloc_sg_table(dev, node, nr_tpages, nr_dpages, pages);
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+ if (IS_ERR(sg_table)) {
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+ kfree(etr_table);
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+ return ERR_PTR(PTR_ERR(sg_table));
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+ }
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+
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+ etr_table->sg_table = sg_table;
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+ /* TMC should use table base address for DBA */
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+ etr_table->hwaddr = sg_table->table_daddr;
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+ tmc_etr_sg_table_populate(etr_table);
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+ /* Sync the table pages for the HW */
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+ tmc_sg_table_sync_table(sg_table);
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+ tmc_etr_sg_table_dump(etr_table);
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+
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+ return etr_table;
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+}
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+
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static void tmc_etr_enable_hw(struct tmc_drvdata *drvdata)
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{
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u32 axictl, sts;
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