mirror of
https://github.com/Telecominfraproject/OpenCellular.git
synced 2026-01-08 00:21:46 +00:00
Since pretty much always, we've declared console commands to take a "longhelp" argument with detailed explanations of what the command does. But since almost as long, we've never actually used that argument for anything - we just silently throw it away in the macro. There's only one command (usbchargemode) that even thinks it defines that argument. We're never going to use this, let's just get rid of it. BUG=none BRANCH=none CQ-DEPEND=CL:*279060 CQ-DEPEND=CL:*279158 CQ-DEPEND=CL:*279037 TEST=make buildall; tested on Cr50 hardware Everything builds. Since we never used this arg anyway, there had better not be any difference in the result. Change-Id: Id3f71a53d02e3dc625cfcc12aa71ecb50e35eb9f Signed-off-by: Bill Richardson <wfrichar@chromium.org> Reviewed-on: https://chromium-review.googlesource.com/374163 Reviewed-by: Myles Watson <mylesgw@chromium.org> Reviewed-by: Randall Spangler <rspangler@chromium.org>
520 lines
12 KiB
C
520 lines
12 KiB
C
/* Copyright (c) 2013 The Chromium OS Authors. All rights reserved.
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* Use of this source code is governed by a BSD-style license that can be
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* found in the LICENSE file.
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*/
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#include "clock.h"
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#include "common.h"
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#include "config.h"
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#include "console.h"
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#include "flash.h"
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#include "gpio.h"
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#include "hooks.h"
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#include "link_defs.h"
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#include "registers.h"
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#include "task.h"
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#include "timer.h"
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#include "util.h"
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#include "usb_descriptor.h"
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/* Console output macro */
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#define CPRINTF(format, args...) cprintf(CC_USB, format, ## args)
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#ifdef CONFIG_USB_BOS
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/* v2.01 (vs 2.00) BOS Descriptor provided */
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#define USB_DEV_BCDUSB 0x0201
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#else
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#define USB_DEV_BCDUSB 0x0200
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#endif
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#ifndef USB_DEV_CLASS
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#define USB_DEV_CLASS USB_CLASS_PER_INTERFACE
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#endif
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#ifndef CONFIG_USB_BCD_DEV
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#define CONFIG_USB_BCD_DEV 0x0100 /* 1.00 */
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#endif
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#ifndef USB_BMATTRIBUTES
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#ifdef CONFIG_USB_SELF_POWERED
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#define USB_BMATTRIBUTES 0xc0 /* Self powered. */
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#else
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#define USB_BMATTRIBUTES 0x80 /* Bus powered. */
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#endif
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#endif
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#ifndef CONFIG_USB_SERIALNO
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#define USB_STR_SERIALNO 0
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#else
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static int usb_load_serial(void);
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#endif
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/* USB Standard Device Descriptor */
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static const struct usb_device_descriptor dev_desc = {
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.bLength = USB_DT_DEVICE_SIZE,
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.bDescriptorType = USB_DT_DEVICE,
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.bcdUSB = USB_DEV_BCDUSB,
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.bDeviceClass = USB_DEV_CLASS,
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.bDeviceSubClass = 0x00,
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.bDeviceProtocol = 0x00,
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.bMaxPacketSize0 = USB_MAX_PACKET_SIZE,
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.idVendor = USB_VID_GOOGLE,
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.idProduct = CONFIG_USB_PID,
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.bcdDevice = CONFIG_USB_BCD_DEV,
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.iManufacturer = USB_STR_VENDOR,
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.iProduct = USB_STR_PRODUCT,
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.iSerialNumber = USB_STR_SERIALNO,
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.bNumConfigurations = 1
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};
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/* USB Configuration Descriptor */
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const struct usb_config_descriptor USB_CONF_DESC(conf) = {
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.bLength = USB_DT_CONFIG_SIZE,
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.bDescriptorType = USB_DT_CONFIGURATION,
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.wTotalLength = 0x0BAD, /* no of returned bytes, set at runtime */
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.bNumInterfaces = USB_IFACE_COUNT,
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.bConfigurationValue = 1,
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.iConfiguration = USB_STR_VERSION,
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.bmAttributes = USB_BMATTRIBUTES, /* bus or self powered */
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.bMaxPower = (CONFIG_USB_MAXPOWER_MA / 2),
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};
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const uint8_t usb_string_desc[] = {
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4, /* Descriptor size */
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USB_DT_STRING,
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0x09, 0x04 /* LangID = 0x0409: U.S. English */
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};
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/* Endpoint table in USB controller RAM */
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struct stm32_endpoint btable_ep[USB_EP_COUNT]
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__attribute__((section(".usb_ram.btable")));
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/* Control endpoint (EP0) buffers */
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static usb_uint ep0_buf_tx[USB_MAX_PACKET_SIZE / 2] __usb_ram;
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static usb_uint ep0_buf_rx[USB_MAX_PACKET_SIZE / 2] __usb_ram;
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#define EP0_BUF_TX_SRAM_ADDR ((void *) usb_sram_addr(ep0_buf_tx))
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static int set_addr;
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/* remaining size of descriptor data to transfer */
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static int desc_left;
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/* pointer to descriptor data if any */
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static const uint8_t *desc_ptr;
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void usb_read_setup_packet(usb_uint *buffer, struct usb_setup_packet *packet)
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{
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packet->bmRequestType = buffer[0] & 0xff;
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packet->bRequest = buffer[0] >> 8;
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packet->wValue = buffer[1];
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packet->wIndex = buffer[2];
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packet->wLength = buffer[3];
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}
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/* Requests on the control endpoint (aka EP0) */
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static void ep0_rx(void)
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{
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uint16_t req = ep0_buf_rx[0]; /* bRequestType | bRequest */
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/* reset any incomplete descriptor transfer */
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desc_ptr = NULL;
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/* interface specific requests */
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if ((req & USB_RECIP_MASK) == USB_RECIP_INTERFACE) {
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uint8_t iface = ep0_buf_rx[2] & 0xff;
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if (iface < USB_IFACE_COUNT &&
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usb_iface_request[iface](ep0_buf_rx, ep0_buf_tx))
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goto unknown_req;
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return;
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}
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/* TODO check setup bit ? */
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if (req == (USB_DIR_IN | (USB_REQ_GET_DESCRIPTOR << 8))) {
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uint8_t type = ep0_buf_rx[1] >> 8;
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uint8_t idx = ep0_buf_rx[1] & 0xff;
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const uint8_t *desc;
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int len;
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switch (type) {
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case USB_DT_DEVICE: /* Setup : Get device descriptor */
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desc = (void *)&dev_desc;
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len = sizeof(dev_desc);
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break;
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case USB_DT_CONFIGURATION: /* Setup : Get configuration desc */
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desc = __usb_desc;
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len = USB_DESC_SIZE;
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break;
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#ifdef CONFIG_USB_BOS
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case USB_DT_BOS: /* Setup : Get BOS descriptor */
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desc = bos_ctx.descp;
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len = bos_ctx.size;
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break;
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#endif
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case USB_DT_STRING: /* Setup : Get string descriptor */
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if (idx >= USB_STR_COUNT)
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/* The string does not exist : STALL */
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goto unknown_req;
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#ifdef CONFIG_USB_SERIALNO
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if (idx == USB_STR_SERIALNO)
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desc = (uint8_t *)usb_serialno_desc;
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else
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#endif
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desc = usb_strings[idx];
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len = desc[0];
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break;
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case USB_DT_DEVICE_QUALIFIER: /* Get device qualifier desc */
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/* Not high speed : STALL next IN used as handshake */
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goto unknown_req;
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default: /* unhandled descriptor */
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goto unknown_req;
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}
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/* do not send more than what the host asked for */
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len = MIN(ep0_buf_rx[3], len);
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/*
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* if we cannot transmit everything at once,
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* keep the remainder for the next IN packet
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*/
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if (len >= USB_MAX_PACKET_SIZE) {
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desc_left = len - USB_MAX_PACKET_SIZE;
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desc_ptr = desc + USB_MAX_PACKET_SIZE;
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len = USB_MAX_PACKET_SIZE;
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}
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memcpy_to_usbram(EP0_BUF_TX_SRAM_ADDR, desc, len);
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if (type == USB_DT_CONFIGURATION)
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/* set the real descriptor size */
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ep0_buf_tx[1] = USB_DESC_SIZE;
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btable_ep[0].tx_count = len;
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STM32_TOGGLE_EP(0, EP_TX_RX_MASK, EP_TX_RX_VALID,
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desc_left ? 0 : EP_STATUS_OUT);
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/* send the null OUT transaction if the transfer is complete */
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} else if (req == (USB_DIR_IN | (USB_REQ_GET_STATUS << 8))) {
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uint16_t zero = 0;
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/* Get status */
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memcpy_to_usbram(EP0_BUF_TX_SRAM_ADDR, (void *)&zero, 2);
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btable_ep[0].tx_count = 2;
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STM32_TOGGLE_EP(0, EP_TX_RX_MASK, EP_TX_RX_VALID,
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EP_STATUS_OUT /*null OUT transaction */);
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} else if ((req & 0xff) == USB_DIR_OUT) {
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switch (req >> 8) {
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case USB_REQ_SET_ADDRESS:
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/* set the address after we got IN packet handshake */
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set_addr = ep0_buf_rx[1] & 0xff;
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/* need null IN transaction -> TX Valid */
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btable_ep[0].tx_count = 0;
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STM32_TOGGLE_EP(0, EP_TX_RX_MASK, EP_TX_RX_VALID, 0);
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break;
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case USB_REQ_SET_CONFIGURATION:
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/* uint8_t cfg = ep0_buf_rx[1] & 0xff; */
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/* null IN for handshake */
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btable_ep[0].tx_count = 0;
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STM32_TOGGLE_EP(0, EP_TX_RX_MASK, EP_TX_RX_VALID, 0);
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break;
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default: /* unhandled request */
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goto unknown_req;
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}
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} else {
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goto unknown_req;
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}
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return;
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unknown_req:
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STM32_TOGGLE_EP(0, EP_TX_RX_MASK, EP_RX_VALID | EP_TX_STALL, 0);
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}
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static void ep0_tx(void)
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{
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if (set_addr) {
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STM32_USB_DADDR = set_addr | 0x80;
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set_addr = 0;
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CPRINTF("SETAD %02x\n", STM32_USB_DADDR);
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}
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if (desc_ptr) {
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/* we have an on-going descriptor transfer */
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int len = MIN(desc_left, USB_MAX_PACKET_SIZE);
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memcpy_to_usbram(EP0_BUF_TX_SRAM_ADDR, desc_ptr, len);
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btable_ep[0].tx_count = len;
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desc_left -= len;
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desc_ptr += len;
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STM32_TOGGLE_EP(0, EP_TX_MASK, EP_TX_VALID,
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desc_left ? 0 : EP_STATUS_OUT);
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/* send the null OUT transaction if the transfer is complete */
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return;
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}
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STM32_TOGGLE_EP(0, EP_TX_MASK, EP_TX_VALID, 0);
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}
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static void ep0_reset(void)
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{
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STM32_USB_EP(0) = (1 << 9) /* control EP */ |
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(2 << 4) /* TX NAK */ |
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(3 << 12) /* RX VALID */;
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btable_ep[0].tx_addr = usb_sram_addr(ep0_buf_tx);
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btable_ep[0].rx_addr = usb_sram_addr(ep0_buf_rx);
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btable_ep[0].rx_count = 0x8000 | ((USB_MAX_PACKET_SIZE/32-1) << 10);
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btable_ep[0].tx_count = 0;
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}
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USB_DECLARE_EP(0, ep0_tx, ep0_rx, ep0_reset);
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static void usb_reset(void)
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{
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int ep;
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for (ep = 0; ep < USB_EP_COUNT; ep++)
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usb_ep_reset[ep]();
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/*
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* set the default address : 0
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* as we are not configured yet
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*/
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STM32_USB_DADDR = 0 | 0x80;
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CPRINTF("RST EP0 %04x\n", STM32_USB_EP(0));
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}
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void usb_interrupt(void)
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{
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uint16_t status = STM32_USB_ISTR;
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if ((status & (1 << 10)))
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usb_reset();
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if (status & (1 << 15)) {
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int ep = status & 0x000f;
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if (ep < USB_EP_COUNT) {
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if (status & 0x0010)
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usb_ep_rx[ep]();
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else
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usb_ep_tx[ep]();
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}
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/* TODO: do it in a USB task */
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/* task_set_event(, 1 << ep_task); */
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}
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/* ack interrupts */
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STM32_USB_ISTR = 0;
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}
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DECLARE_IRQ(STM32_IRQ_USB_LP, usb_interrupt, 1);
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void usb_init(void)
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{
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/* Enable USB device clock. */
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STM32_RCC_APB1ENR |= STM32_RCC_PB1_USB;
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/* we need a proper 48MHz clock */
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clock_enable_module(MODULE_USB, 1);
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/* configure the pinmux */
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gpio_config_module(MODULE_USB, 1);
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/* power on sequence */
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/* keep FRES (USB reset) and remove PDWN (power down) */
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STM32_USB_CNTR = 0x01;
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udelay(1); /* startup time */
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/* reset FRES and keep interrupts masked */
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STM32_USB_CNTR = 0x00;
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/* clear pending interrupts */
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STM32_USB_ISTR = 0;
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/* set descriptors table offset in dedicated SRAM */
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STM32_USB_BTABLE = 0;
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/* EXTI18 is USB wake up interrupt */
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/* STM32_EXTI_RTSR |= 1 << 18; */
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/* STM32_EXTI_IMR |= 1 << 18; */
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/* Enable interrupt handlers */
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task_enable_irq(STM32_IRQ_USB_LP);
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/* set interrupts mask : reset/correct tranfer/errors */
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STM32_USB_CNTR = 0xe400;
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#ifdef CONFIG_USB_SERIALNO
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usb_load_serial();
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#endif
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#ifndef CONFIG_USB_INHIBIT_CONNECT
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usb_connect();
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#endif
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CPRINTF("USB init done\n");
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}
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#ifndef CONFIG_USB_INHIBIT_INIT
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DECLARE_HOOK(HOOK_INIT, usb_init, HOOK_PRIO_DEFAULT);
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#endif
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void usb_release(void)
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{
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/* signal disconnect to host */
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usb_disconnect();
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/* power down USB */
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STM32_USB_CNTR = 0;
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/* disable interrupt handlers */
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task_disable_irq(STM32_IRQ_USB_LP);
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/* unset pinmux */
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gpio_config_module(MODULE_USB, 0);
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/* disable 48MHz clock */
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clock_enable_module(MODULE_USB, 0);
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/* disable USB device clock */
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STM32_RCC_APB1ENR &= ~STM32_RCC_PB1_USB;
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}
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/* ensure the host disconnects and reconnects over a sysjump */
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DECLARE_HOOK(HOOK_SYSJUMP, usb_release, HOOK_PRIO_DEFAULT);
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int usb_is_enabled(void)
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{
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return (STM32_RCC_APB1ENR & STM32_RCC_PB1_USB) ? 1 : 0;
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}
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void *memcpy_to_usbram(void *dest, const void *src, size_t n)
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{
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int unaligned = (((uintptr_t) dest) & 1);
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usb_uint *d = &__usb_ram_start[((uintptr_t) dest) / 2];
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uint8_t *s = (uint8_t *) src;
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int i;
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/*
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* Handle unaligned leading byte via read/modify/write.
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*/
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if (unaligned && n) {
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*d = (*d & ~0xff00) | (*s << 8);
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n--;
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s++;
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d++;
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}
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for (i = 0; i < n / 2; i++, s += 2)
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*d++ = (s[1] << 8) | s[0];
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/*
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* There is a trailing byte to write into a final USB packet memory
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* location, use a read/modify/write to be safe.
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*/
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if (n & 1)
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*d = (*d & ~0x00ff) | *s;
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return dest;
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}
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void *memcpy_from_usbram(void *dest, const void *src, size_t n)
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{
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int unaligned = (((uintptr_t) src) & 1);
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usb_uint const *s = &__usb_ram_start[((uintptr_t) src) / 2];
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uint8_t *d = (uint8_t *) dest;
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int i;
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if (unaligned && n) {
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*d = *s >> 8;
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n--;
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s++;
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d++;
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}
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for (i = 0; i < n / 2; i++) {
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usb_uint value = *s++;
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*d++ = (value >> 0) & 0xff;
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*d++ = (value >> 8) & 0xff;
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}
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if (n & 1)
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*d = *s;
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return dest;
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}
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#ifdef CONFIG_USB_SERIALNO
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/* This will be subbed into USB_STR_SERIALNO. */
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struct usb_string_desc *usb_serialno_desc =
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USB_WR_STRING_DESC(DEFAULT_SERIALNO);
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/* Update serial number */
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static int usb_set_serial(const char *serialno)
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{
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struct usb_string_desc *sd = usb_serialno_desc;
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int i;
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if (!serialno)
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return EC_ERROR_INVAL;
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/* Convert into unicode usb string desc. */
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for (i = 0; i < USB_STRING_LEN; i++) {
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sd->_data[i] = serialno[i];
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if (serialno[i] == 0)
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break;
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}
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/* Count wchars (w/o null terminator) plus size & type bytes. */
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sd->_len = (i * 2) + 2;
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sd->_type = USB_DT_STRING;
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return EC_SUCCESS;
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}
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/* Retrieve serial number from pstate flash. */
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static int usb_load_serial(void)
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{
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const char *serialno;
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int rv;
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serialno = flash_read_serial();
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if (!serialno)
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return EC_ERROR_ACCESS_DENIED;
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rv = usb_set_serial(serialno);
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return rv;
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}
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/* Save serial number into pstate region. */
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static int usb_save_serial(const char *serialno)
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{
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int rv;
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if (!serialno)
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return EC_ERROR_INVAL;
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/* Save this new serial number to flash. */
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rv = flash_write_serial(serialno);
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if (rv)
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return rv;
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/* Load this new serial number to memory. */
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rv = usb_load_serial();
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return rv;
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}
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static int command_serialno(int argc, char **argv)
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{
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struct usb_string_desc *sd = usb_serialno_desc;
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char buf[USB_STRING_LEN];
|
|
int rv = EC_SUCCESS;
|
|
int i;
|
|
|
|
if (argc != 1) {
|
|
if ((strcasecmp(argv[1], "set") == 0) &&
|
|
(argc == 3)) {
|
|
ccprintf("Saving serial number\n");
|
|
rv = usb_save_serial(argv[2]);
|
|
} else if ((strcasecmp(argv[1], "load") == 0) &&
|
|
(argc == 2)) {
|
|
ccprintf("Loading serial number\n");
|
|
rv = usb_load_serial();
|
|
} else
|
|
return EC_ERROR_INVAL;
|
|
}
|
|
|
|
for (i = 0; i < USB_STRING_LEN; i++)
|
|
buf[i] = sd->_data[i];
|
|
ccprintf("Serial number: %s\n", buf);
|
|
return rv;
|
|
}
|
|
|
|
DECLARE_CONSOLE_COMMAND(serialno, command_serialno,
|
|
"load/set [value]",
|
|
"Read and write USB serial number");
|
|
#endif
|