| 1 | /*
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| 2 | * Copyright (c) 2014 Jan Vesely
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| 3 | * All rights reserved.
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| 4 | *
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| 5 | * Redistribution and use in source and binary forms, with or without
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| 6 | * modification, are permitted provided that the following conditions
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| 7 | * are met:
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| 8 | *
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| 9 | * - Redistributions of source code must retain the above copyright
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| 10 | * notice, this list of conditions and the following disclaimer.
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| 11 | * - Redistributions in binary form must reproduce the above copyright
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| 12 | * notice, this list of conditions and the following disclaimer in the
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| 13 | * documentation and/or other materials provided with the distribution.
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| 14 | * - The name of the author may not be used to endorse or promote products
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| 15 | * derived from this software without specific prior written permission.
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| 16 | *
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| 17 | * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
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| 18 | * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
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| 19 | * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
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| 20 | * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
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| 21 | * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
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| 22 | * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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| 23 | * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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| 24 | * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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| 25 | * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
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| 26 | * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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| 27 | */
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| 28 | /** @addtogroup drvusbehci
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| 29 | * @{
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| 30 | */
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| 31 | /** @file
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| 32 | * @brief EHCI driver USB transaction structure
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| 33 | */
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| 34 |
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| 35 | #include <assert.h>
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| 36 | #include <errno.h>
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| 37 | #include <macros.h>
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| 38 | #include <mem.h>
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| 39 | #include <stdbool.h>
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| 40 | #include <str_error.h>
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| 41 |
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| 42 | #include <usb/usb.h>
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| 43 | #include <usb/debug.h>
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| 44 | #include <usb/host/utils/malloc32.h>
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| 45 |
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| 46 | #include "ehci_batch.h"
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| 47 | #include "ehci_endpoint.h"
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| 48 |
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| 49 | /* The buffer pointer list in the qTD is long enough to support a maximum
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| 50 | * transfer size of 20K bytes. This case occurs when all five buffer pointers
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| 51 | * are used and the first offset is zero. A qTD handles a 16Kbyte buffer
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| 52 | * with any starting buffer alignment. EHCI specs p. 87 (pdf p. 97) */
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| 53 | #define EHCI_TD_MAX_TRANSFER (16 * 1024)
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| 54 |
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| 55 | static void (*const batch_setup[])(ehci_transfer_batch_t*, usb_direction_t);
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| 56 |
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| 57 | /** Safely destructs ehci_transfer_batch_t structure
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| 58 | *
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| 59 | * @param[in] ehci_batch Instance to destroy.
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| 60 | */
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| 61 | static void ehci_transfer_batch_dispose(ehci_transfer_batch_t *ehci_batch)
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| 62 | {
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| 63 | if (!ehci_batch)
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| 64 | return;
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| 65 | if (ehci_batch->tds) {
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| 66 | for (size_t i = 0; i < ehci_batch->td_count; ++i) {
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| 67 | free32(ehci_batch->tds[i]);
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| 68 | }
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| 69 | free(ehci_batch->tds);
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| 70 | }
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| 71 | usb_transfer_batch_destroy(ehci_batch->usb_batch);
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| 72 | free32(ehci_batch->device_buffer);
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| 73 | free(ehci_batch);
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| 74 | usb_log_debug2("Batch(%p): disposed", ehci_batch);
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| 75 | }
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| 76 |
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| 77 | /** Finishes usb_transfer_batch and destroys the structure.
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| 78 | *
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| 79 | * @param[in] uhci_batch Instance to finish and destroy.
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| 80 | */
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| 81 | void ehci_transfer_batch_finish_dispose(ehci_transfer_batch_t *ehci_batch)
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| 82 | {
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| 83 | assert(ehci_batch);
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| 84 | assert(ehci_batch->usb_batch);
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| 85 | usb_transfer_batch_finish(ehci_batch->usb_batch,
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| 86 | ehci_batch->device_buffer + ehci_batch->usb_batch->setup_size);
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| 87 | ehci_transfer_batch_dispose(ehci_batch);
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| 88 | }
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| 89 |
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| 90 | /** Allocate memory and initialize internal data structure.
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| 91 | *
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| 92 | * @param[in] usb_batch Pointer to generic USB batch structure.
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| 93 | * @return Valid pointer if all structures were successfully created,
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| 94 | * NULL otherwise.
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| 95 | *
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| 96 | * Determines the number of needed transfer descriptors (TDs).
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| 97 | * Prepares a transport buffer (that is accessible by the hardware).
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| 98 | * Initializes parameters needed for the transfer and callback.
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| 99 | */
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| 100 | ehci_transfer_batch_t * ehci_transfer_batch_get(usb_transfer_batch_t *usb_batch)
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| 101 | {
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| 102 | assert(usb_batch);
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| 103 |
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| 104 | ehci_transfer_batch_t *ehci_batch =
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| 105 | calloc(1, sizeof(ehci_transfer_batch_t));
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| 106 | if (!ehci_batch) {
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| 107 | usb_log_error("Batch %p: Failed to allocate EHCI batch data.",
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| 108 | usb_batch);
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| 109 | goto dispose;
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| 110 | }
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| 111 | link_initialize(&ehci_batch->link);
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| 112 | ehci_batch->td_count =
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| 113 | (usb_batch->buffer_size + EHCI_TD_MAX_TRANSFER - 1)
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| 114 | / EHCI_TD_MAX_TRANSFER;
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| 115 |
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| 116 | /* Control transfer need Setup and Status stage */
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| 117 | if (usb_batch->ep->transfer_type == USB_TRANSFER_CONTROL) {
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| 118 | ehci_batch->td_count += 2;
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| 119 | }
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| 120 |
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| 121 | ehci_batch->tds = calloc(ehci_batch->td_count, sizeof(td_t*));
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| 122 | if (!ehci_batch->tds) {
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| 123 | usb_log_error("Batch %p: Failed to allocate EHCI transfer "
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| 124 | "descriptors.", usb_batch);
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| 125 | goto dispose;
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| 126 | }
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| 127 |
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| 128 | /* Add TD left over by the previous transfer */
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| 129 | ehci_batch->qh = ehci_endpoint_get(usb_batch->ep)->qh;
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| 130 |
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| 131 | for (unsigned i = 0; i < ehci_batch->td_count; ++i) {
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| 132 | ehci_batch->tds[i] = malloc32(sizeof(td_t));
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| 133 | if (!ehci_batch->tds[i]) {
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| 134 | usb_log_error("Batch %p: Failed to allocate TD %d.",
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| 135 | usb_batch, i);
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| 136 | goto dispose;
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| 137 | }
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| 138 | memset(ehci_batch->tds[i], 0, sizeof(td_t));
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| 139 | }
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| 140 |
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| 141 |
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| 142 | /* Mix setup stage and data together, we have enough space */
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| 143 | if (usb_batch->setup_size + usb_batch->buffer_size > 0) {
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| 144 | /* Use one buffer for setup and data stage */
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| 145 | ehci_batch->device_buffer =
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| 146 | malloc32(usb_batch->setup_size + usb_batch->buffer_size);
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| 147 | if (!ehci_batch->device_buffer) {
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| 148 | usb_log_error("Batch %p: Failed to allocate device "
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| 149 | "buffer", usb_batch);
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| 150 | goto dispose;
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| 151 | }
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| 152 | /* Copy setup data */
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| 153 | memcpy(ehci_batch->device_buffer, usb_batch->setup_buffer,
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| 154 | usb_batch->setup_size);
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| 155 | /* Copy generic data */
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| 156 | if (usb_batch->ep->direction != USB_DIRECTION_IN)
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| 157 | memcpy(
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| 158 | ehci_batch->device_buffer + usb_batch->setup_size,
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| 159 | usb_batch->buffer, usb_batch->buffer_size);
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| 160 | }
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| 161 | ehci_batch->usb_batch = usb_batch;
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| 162 |
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| 163 | const usb_direction_t dir = usb_transfer_batch_direction(usb_batch);
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| 164 | assert(batch_setup[usb_batch->ep->transfer_type]);
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| 165 | batch_setup[usb_batch->ep->transfer_type](ehci_batch, dir);
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| 166 |
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| 167 | usb_log_debug("Batch %p %s " USB_TRANSFER_BATCH_FMT " initialized.\n",
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| 168 | usb_batch, usb_str_direction(dir),
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| 169 | USB_TRANSFER_BATCH_ARGS(*usb_batch));
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| 170 |
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| 171 | return ehci_batch;
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| 172 | dispose:
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| 173 | ehci_transfer_batch_dispose(ehci_batch);
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| 174 | return NULL;
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| 175 | }
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| 176 |
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| 177 | /** Check batch TDs' status.
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| 178 | *
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| 179 | * @param[in] ehci_batch Batch structure to use.
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| 180 | * @return False, if there is an active TD, true otherwise.
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| 181 | *
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| 182 | * Walk all TDs (usually there is just one). Stop with false if there is an
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| 183 | * active TD. Stop with true if an error is found. Return true if the walk
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| 184 | * completes with the last TD.
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| 185 | */
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| 186 | bool ehci_transfer_batch_is_complete(const ehci_transfer_batch_t *ehci_batch)
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| 187 | {
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| 188 | assert(ehci_batch);
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| 189 | assert(ehci_batch->usb_batch);
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| 190 |
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| 191 | usb_log_debug("Batch %p: checking %zu td(s) for completion.\n",
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| 192 | ehci_batch->usb_batch, ehci_batch->td_count);
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| 193 |
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| 194 | usb_log_debug2("Batch %p: QH: %08x:%08x:%08x:%08x:%08x:%08x.\n",
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| 195 | ehci_batch->usb_batch,
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| 196 | ehci_batch->qh->ep_char, ehci_batch->qh->ep_cap,
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| 197 | ehci_batch->qh->status, ehci_batch->qh->current,
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| 198 | ehci_batch->qh->next, ehci_batch->qh->alternate);
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| 199 |
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| 200 | if (!qh_halted(ehci_batch->qh) && (qh_transfer_pending(ehci_batch->qh)
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| 201 | || qh_transfer_active(ehci_batch->qh)))
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| 202 | return false;
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| 203 |
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| 204 | /* Now we may be sure that either the ED is inactive because of errors
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| 205 | * or all transfer descriptors completed successfully */
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| 206 |
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| 207 | /* Assume all data got through */
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| 208 | ehci_batch->usb_batch->transfered_size =
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| 209 | ehci_batch->usb_batch->buffer_size;
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| 210 |
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| 211 | /* Check all TDs */
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| 212 | for (size_t i = 0; i < ehci_batch->td_count; ++i) {
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| 213 | assert(ehci_batch->tds[i] != NULL);
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| 214 | usb_log_debug("Batch %p: TD %zu: %08x:%08x:%08x.",
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| 215 | ehci_batch->usb_batch, i,
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| 216 | ehci_batch->tds[i]->status, ehci_batch->tds[i]->next,
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| 217 | ehci_batch->tds[i]->alternate);
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| 218 |
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| 219 | ehci_batch->usb_batch->error = td_error(ehci_batch->tds[i]);
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| 220 | if (ehci_batch->usb_batch->error == EOK) {
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| 221 | /* If the TD got all its data through, it will report
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| 222 | * 0 bytes remain, the sole exception is INPUT with
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| 223 | * data rounding flag (short), i.e. every INPUT.
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| 224 | * Nice thing is that short packets will correctly
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| 225 | * report remaining data, thus making this computation
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| 226 | * correct (short packets need to be produced by the
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| 227 | * last TD)
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| 228 | * NOTE: This also works for CONTROL transfer as
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| 229 | * the first TD will return 0 remain.
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| 230 | * NOTE: Short packets don't break the assumption that
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| 231 | * we leave the very last(unused) TD behind.
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| 232 | */
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| 233 | ehci_batch->usb_batch->transfered_size
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| 234 | -= td_remain_size(ehci_batch->tds[i]);
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| 235 | } else {
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| 236 | usb_log_debug("Batch %p found error TD(%zu):%08x (%d).",
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| 237 | ehci_batch->usb_batch, i,
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| 238 | ehci_batch->tds[i]->status,
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| 239 | ehci_batch->usb_batch->error);
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| 240 | /* Clear possible ED HALT */
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| 241 | qh_clear_halt(ehci_batch->qh);
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| 242 | break;
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| 243 | }
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| 244 | }
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| 245 |
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| 246 | assert(ehci_batch->usb_batch->transfered_size <=
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| 247 | ehci_batch->usb_batch->buffer_size);
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| 248 | /* Clear TD pointers */
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| 249 | ehci_batch->qh->next = LINK_POINTER_TERM;
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| 250 | ehci_batch->qh->current = LINK_POINTER_TERM;
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| 251 | usb_log_debug("Batch %p complete: %s", ehci_batch->usb_batch,
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| 252 | str_error(ehci_batch->usb_batch->error));
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| 253 |
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| 254 | return true;
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| 255 | }
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| 256 |
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| 257 | /** Starts execution of the TD list
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| 258 | *
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| 259 | * @param[in] ehci_batch Batch structure to use
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| 260 | */
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| 261 | void ehci_transfer_batch_commit(const ehci_transfer_batch_t *ehci_batch)
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| 262 | {
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| 263 | assert(ehci_batch);
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| 264 | qh_set_next_td(ehci_batch->qh, ehci_batch->tds[0]);
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| 265 | }
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| 266 |
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| 267 | /** Prepare generic control transfer
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| 268 | *
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| 269 | * @param[in] ehci_batch Batch structure to use.
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| 270 | * @param[in] dir Communication direction
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| 271 | *
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| 272 | * Setup stage with toggle 0 and direction BOTH(SETUP_PID)
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| 273 | * Data stage with alternating toggle and direction supplied by parameter.
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| 274 | * Status stage with toggle 1 and direction supplied by parameter.
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| 275 | */
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| 276 | static void batch_control(ehci_transfer_batch_t *ehci_batch, usb_direction_t dir)
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| 277 | {
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| 278 | assert(ehci_batch);
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| 279 | assert(ehci_batch->usb_batch);
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| 280 | assert(dir == USB_DIRECTION_IN || dir == USB_DIRECTION_OUT);
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| 281 |
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| 282 | usb_log_debug2("Batch %p: Control QH(%"PRIxn"): "
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| 283 | "%08x:%08x:%08x:%08x:%08x:%08x", ehci_batch->usb_batch,
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| 284 | addr_to_phys(ehci_batch->qh),
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| 285 | ehci_batch->qh->ep_char, ehci_batch->qh->ep_cap,
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| 286 | ehci_batch->qh->status, ehci_batch->qh->current,
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| 287 | ehci_batch->qh->next, ehci_batch->qh->alternate);
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| 288 | static const usb_direction_t reverse_dir[] = {
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| 289 | [USB_DIRECTION_IN] = USB_DIRECTION_OUT,
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| 290 | [USB_DIRECTION_OUT] = USB_DIRECTION_IN,
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| 291 | };
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| 292 |
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| 293 | int toggle = 0;
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| 294 | const char* buffer = ehci_batch->device_buffer;
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| 295 | const usb_direction_t data_dir = dir;
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| 296 | const usb_direction_t status_dir = reverse_dir[dir];
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| 297 |
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| 298 | /* Setup stage */
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| 299 | td_init(ehci_batch->tds[0], ehci_batch->tds[1], USB_DIRECTION_BOTH,
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| 300 | buffer, ehci_batch->usb_batch->setup_size, toggle, false);
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| 301 | usb_log_debug2("Batch %p: Created CONTROL SETUP TD(%"PRIxn"): "
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| 302 | "%08x:%08x:%08x", ehci_batch->usb_batch,
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| 303 | addr_to_phys(ehci_batch->tds[0]),
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| 304 | ehci_batch->tds[0]->status, ehci_batch->tds[0]->next,
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| 305 | ehci_batch->tds[0]->alternate);
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| 306 | buffer += ehci_batch->usb_batch->setup_size;
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| 307 |
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| 308 | /* Data stage */
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| 309 | size_t td_current = 1;
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| 310 | size_t remain_size = ehci_batch->usb_batch->buffer_size;
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| 311 | while (remain_size > 0) {
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| 312 | const size_t transfer_size =
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| 313 | min(remain_size, EHCI_TD_MAX_TRANSFER);
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| 314 | toggle = 1 - toggle;
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| 315 |
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| 316 | td_init(ehci_batch->tds[td_current],
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| 317 | ehci_batch->tds[td_current + 1], data_dir, buffer,
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| 318 | transfer_size, toggle, false);
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| 319 | usb_log_debug2("Batch %p: Created CONTROL DATA TD(%"PRIxn"): "
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| 320 | "%08x:%08x:%08x", ehci_batch->usb_batch,
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| 321 | addr_to_phys(ehci_batch->tds[td_current]),
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| 322 | ehci_batch->tds[td_current]->status,
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| 323 | ehci_batch->tds[td_current]->next,
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| 324 | ehci_batch->tds[td_current]->alternate);
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| 325 |
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| 326 | buffer += transfer_size;
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| 327 | remain_size -= transfer_size;
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| 328 | assert(td_current < ehci_batch->td_count - 1);
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| 329 | ++td_current;
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| 330 | }
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| 331 |
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| 332 | /* Status stage */
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| 333 | assert(td_current == ehci_batch->td_count - 1);
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| 334 | td_init(ehci_batch->tds[td_current], NULL, status_dir, NULL, 0, 1, true);
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| 335 | usb_log_debug2("Batch %p: Created CONTROL STATUS TD(%"PRIxn"): "
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| 336 | "%08x:%08x:%08x", ehci_batch->usb_batch,
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| 337 | addr_to_phys(ehci_batch->tds[td_current]),
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| 338 | ehci_batch->tds[td_current]->status,
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| 339 | ehci_batch->tds[td_current]->next,
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| 340 | ehci_batch->tds[td_current]->alternate);
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| 341 | }
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| 342 |
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| 343 | /** Prepare generic data transfer
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| 344 | *
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| 345 | * @param[in] ehci_batch Batch structure to use.
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| 346 | * @paramp[in] dir Communication direction.
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| 347 | *
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| 348 | * Direction is supplied by the associated ep and toggle is maintained by the
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| 349 | * EHCI hw in ED.
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| 350 | */
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| 351 | static void batch_data(ehci_transfer_batch_t *ehci_batch, usb_direction_t dir)
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| 352 | {
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| 353 | assert(ehci_batch);
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| 354 | assert(ehci_batch->usb_batch);
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| 355 | assert(dir == USB_DIRECTION_IN || dir == USB_DIRECTION_OUT);
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| 356 |
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| 357 | usb_log_debug2("Batch %p: Data QH(%"PRIxn"): "
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| 358 | "%08x:%08x:%08x:%08x:%08x:%08x", ehci_batch->usb_batch,
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| 359 | addr_to_phys(ehci_batch->qh),
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| 360 | ehci_batch->qh->ep_char, ehci_batch->qh->ep_cap,
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| 361 | ehci_batch->qh->status, ehci_batch->qh->current,
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| 362 | ehci_batch->qh->next, ehci_batch->qh->alternate);
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| 363 |
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| 364 | size_t td_current = 0;
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| 365 | size_t remain_size = ehci_batch->usb_batch->buffer_size;
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| 366 | char *buffer = ehci_batch->device_buffer;
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| 367 | while (remain_size > 0) {
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| 368 | const size_t transfer_size = remain_size > EHCI_TD_MAX_TRANSFER
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| 369 | ? EHCI_TD_MAX_TRANSFER : remain_size;
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| 370 |
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| 371 | const bool last = (remain_size == transfer_size);
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| 372 | td_init(
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| 373 | ehci_batch->tds[td_current],
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| 374 | last ? NULL : ehci_batch->tds[td_current + 1],
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| 375 | dir, buffer, transfer_size, -1, last);
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| 376 |
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| 377 | usb_log_debug2("Batch %p: DATA TD(%"PRIxn": %08x:%08x:%08x",
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| 378 | ehci_batch->usb_batch,
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| 379 | addr_to_phys(ehci_batch->tds[td_current]),
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| 380 | ehci_batch->tds[td_current]->status,
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| 381 | ehci_batch->tds[td_current]->next,
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| 382 | ehci_batch->tds[td_current]->alternate);
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| 383 |
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| 384 | buffer += transfer_size;
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| 385 | remain_size -= transfer_size;
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| 386 | assert(td_current < ehci_batch->td_count);
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| 387 | ++td_current;
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| 388 | }
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| 389 | }
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| 390 |
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| 391 | /** Transfer setup table. */
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| 392 | static void (*const batch_setup[])(ehci_transfer_batch_t*, usb_direction_t) =
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| 393 | {
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| 394 | [USB_TRANSFER_CONTROL] = batch_control,
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| 395 | [USB_TRANSFER_BULK] = batch_data,
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| 396 | [USB_TRANSFER_INTERRUPT] = batch_data,
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| 397 | [USB_TRANSFER_ISOCHRONOUS] = NULL,
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| 398 | };
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| 399 | /**
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| 400 | * @}
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| 401 | */
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| 402 |
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