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/*
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* Copyright 2012-2013 Andrew Smith
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* Copyright 2013 Con Kolivas <kernel@kolivas.org>
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*
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* This program is free software; you can redistribute it and/or modify it
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* under the terms of the GNU General Public License as published by the Free
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* Software Foundation; either version 3 of the License, or (at your option)
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* any later version. See COPYING for more details.
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*/
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#ifndef USBUTILS_H
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#define USBUTILS_H
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#include <libusb.h>
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#include "util.h"
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#define EPI(x) (LIBUSB_ENDPOINT_IN | (unsigned char)(x))
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#define EPO(x) (LIBUSB_ENDPOINT_OUT | (unsigned char)(x))
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// For 0x0403:0x6014/0x6001 FT232H (and possibly others?) - BFL, BAS, BLT, LLT, AVA
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#define FTDI_TYPE_OUT (LIBUSB_REQUEST_TYPE_VENDOR | LIBUSB_RECIPIENT_DEVICE | LIBUSB_ENDPOINT_OUT)
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#define FTDI_TYPE_IN (LIBUSB_REQUEST_TYPE_VENDOR | LIBUSB_RECIPIENT_DEVICE | LIBUSB_ENDPOINT_IN)
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#define FTDI_REQUEST_RESET ((uint8_t)0)
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#define FTDI_REQUEST_MODEM ((uint8_t)1)
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#define FTDI_REQUEST_FLOW ((uint8_t)2)
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#define FTDI_REQUEST_BAUD ((uint8_t)3)
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#define FTDI_REQUEST_DATA ((uint8_t)4)
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#define FTDI_REQUEST_LATENCY ((uint8_t)9)
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#define FTDI_VALUE_RESET 0
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#define FTDI_VALUE_PURGE_RX 1
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#define FTDI_VALUE_PURGE_TX 2
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#define FTDI_VALUE_LATENCY 1
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// Baud
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#define FTDI_VALUE_BAUD_BFL 0xc068
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#define FTDI_INDEX_BAUD_BFL 0x0200
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#define FTDI_VALUE_BAUD_BAS FTDI_VALUE_BAUD_BFL
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#define FTDI_INDEX_BAUD_BAS FTDI_INDEX_BAUD_BFL
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// LLT = BLT (same code)
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#define FTDI_VALUE_BAUD_BLT 0x001a
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#define FTDI_INDEX_BAUD_BLT 0x0000
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// Avalon
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#define FTDI_VALUE_BAUD_AVA 0x001A
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#define FTDI_INDEX_BAUD_AVA 0x0000
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#define FTDI_VALUE_DATA_AVA 8
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// BitBurner
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#define BITBURNER_REQUEST ((uint8_t)0x42)
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#define BITBURNER_VALUE 0x4242
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#define BITBURNER_INDEX_SET_VOLTAGE 1
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#define BITBURNER_INDEX_GET_VOLTAGE 2
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#define BITBURNER_INDEX_GET_VERSION 4
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// CMR = 115200 & 57600
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#define FTDI_VALUE_BAUD_CMR_115 0xc068
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#define FTDI_INDEX_BAUD_CMR_115 0x0200
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#define FTDI_VALUE_BAUD_CMR_57 0x80d0
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#define FTDI_INDEX_BAUD_CMR_57 0x0200
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// Data control
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#define FTDI_VALUE_DATA_BFL 0
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#define FTDI_VALUE_DATA_BAS FTDI_VALUE_DATA_BFL
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// LLT = BLT (same code)
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#define FTDI_VALUE_DATA_BLT 8
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#define FTDI_VALUE_FLOW 0
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#define FTDI_VALUE_MODEM 0x0303
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// For 0x10c4:0xea60 USB cp210x chip - AMU
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#define CP210X_TYPE_OUT 0x41
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#define CP210X_REQUEST_IFC_ENABLE 0x00
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#define CP210X_REQUEST_DATA 0x07
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#define CP210X_REQUEST_BAUD 0x1e
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#define CP210X_VALUE_UART_ENABLE 0x0001
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#define CP210X_VALUE_DATA 0x0303
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#define CP210X_DATA_BAUD 0x0001c200
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// For 0x067b:0x2303 Prolific PL2303 - ICA
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#define PL2303_CTRL_DTR 0x01
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#define PL2303_CTRL_RTS 0x02
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#define PL2303_CTRL_OUT 0x21
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#define PL2303_VENDOR_OUT 0x40
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#define PL2303_REQUEST_CTRL 0x22
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#define PL2303_REQUEST_LINE 0x20
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#define PL2303_REQUEST_VENDOR 0x01
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#define PL2303_REPLY_CTRL 0x21
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#define PL2303_VALUE_CTRL (PL2303_CTRL_DTR | PL2303_CTRL_RTS)
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#define PL2303_VALUE_LINE 0
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#define PL2303_VALUE_LINE0 0x0001c200
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#define PL2303_VALUE_LINE1 0x080000
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#define PL2303_VALUE_LINE_SIZE 7
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#define PL2303_VALUE_VENDOR 0
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// Use the device defined timeout
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#define DEVTIMEOUT 0
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// For endpoints defined in usb_find_devices.intinfos.epinfos,
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// the first two must be the default IN and OUT and both must always exist
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#define DEFAULT_EP_IN 0
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#define DEFAULT_EP_OUT 1
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struct usb_epinfo {
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uint8_t att;
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uint16_t size;
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unsigned char ep;
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bool found;
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};
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struct usb_intinfo {
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int interface;
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int epinfo_count;
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struct usb_epinfo *epinfos;
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};
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enum sub_ident {
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IDENT_UNK = 0,
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IDENT_BAJ,
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IDENT_BAL,
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IDENT_BAS,
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IDENT_BAM,
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IDENT_BFL,
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IDENT_MMQ,
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IDENT_AVA,
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IDENT_BTB,
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IDENT_ICA,
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IDENT_AMU,
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IDENT_BLT,
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IDENT_LLT,
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IDENT_CMR1,
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IDENT_CMR2,
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IDENT_ZTX
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};
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struct usb_find_devices {
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int drv;
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const char *name;
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enum sub_ident ident;
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uint16_t idVendor;
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uint16_t idProduct;
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char *iManufacturer;
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char *iProduct;
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int kernel;
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int config;
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unsigned int timeout;
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uint16_t wMaxPacketSize;
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uint16_t latency;
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int which_intinfo;
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int intinfo_count;
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struct usb_intinfo *intinfos;
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};
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/* Latency is set to 32ms to prevent a transfer ever being more than 512 bytes
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* +2 bytes of status such as the ftdi chip, when the chips emulate a 115200
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* baud rate, to avoid status bytes being interleaved in larger transfers. */
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#define LATENCY_UNUSED 0
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#define LATENCY_STD 32
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enum usb_types {
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USB_TYPE_STD = 0,
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USB_TYPE_FTDI
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};
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struct cg_usb_device {
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struct usb_find_devices *found;
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libusb_device_handle *handle;
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int claimed;
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pthread_mutex_t *mutex;
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struct libusb_device_descriptor *descriptor;
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enum usb_types usb_type;
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enum sub_ident ident;
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uint16_t usbver;
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int cps;
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bool usecps;
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char *prod_string;
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char *manuf_string;
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char *serial_string;
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unsigned char fwVersion; // ??
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unsigned char interfaceVersion; // ??
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char *buffer;
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uint32_t bufsiz;
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uint32_t bufamt;
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uint16_t PrefPacketSize;
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cgtimer_t cgt_last_write;
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size_t last_write_siz;
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};
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#define USB_NOSTAT 0
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#define USB_MAX_READ 8192
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#define USB_TMO_0 50
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#define USB_TMO_1 100
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#define USB_TMO_2 500
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#define USB_TMOS 3
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struct cg_usb_tmo {
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uint32_t count;
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uint32_t min_tmo;
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uint32_t max_tmo;
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uint64_t total_over;
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uint64_t total_tmo;
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};
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struct cg_usb_info {
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uint8_t bus_number;
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uint8_t device_address;
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int usbstat;
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bool nodev;
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int nodev_count;
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struct timeval last_nodev;
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uint32_t ioerr_count;
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uint32_t continuous_ioerr_count;
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/*
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* for nodev and cgusb access (read and write)
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* it's a pointer so MMQ can have it in multiple devices
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*
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* N.B. general mining code doesn't need to use the read
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* lock for 'nodev' if it calls a usb_read/write/etc function
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* that uses the lock - however, all usbutils code MUST use it
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* to avoid devices disappearing while in use by multiple threads
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*/
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pthread_rwlock_t *devlock;
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time_t last_pipe;
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uint64_t pipe_count;
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uint64_t clear_err_count;
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uint64_t retry_err_count;
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uint64_t clear_fail_count;
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uint64_t read_delay_count;
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double total_read_delay;
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uint64_t write_delay_count;
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double total_write_delay;
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/*
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* We add 4: 1 for null, 2 for FTDI status and 1 to round to 4 bytes
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* If a single device ever has multiple end points then it will need
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* multiple of these
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*/
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unsigned char bulkbuf[USB_MAX_READ+4];
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uint64_t tmo_count;
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struct cg_usb_tmo usb_tmo[USB_TMOS];
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};
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enum usb_cmds {
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C_REJECTED = 0,
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C_PING,
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C_CLEAR,
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C_REQUESTVERSION,
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C_GETVERSION,
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C_REQUESTFPGACOUNT,
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C_GETFPGACOUNT,
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C_STARTPROGRAM,
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C_STARTPROGRAMSTATUS,
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C_PROGRAM,
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C_PROGRAMSTATUS,
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C_PROGRAMSTATUS2,
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C_FINALPROGRAMSTATUS,
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C_SETCLOCK,
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C_REPLYSETCLOCK,
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C_REQUESTUSERCODE,
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C_GETUSERCODE,
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C_REQUESTTEMPERATURE,
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C_GETTEMPERATURE,
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C_SENDWORK,
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C_SENDWORKSTATUS,
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C_REQUESTWORKSTATUS,
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C_GETWORKSTATUS,
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C_REQUESTIDENTIFY,
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C_GETIDENTIFY,
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C_REQUESTFLASH,
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C_REQUESTSENDWORK,
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C_REQUESTSENDWORKSTATUS,
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C_RESET,
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C_SETBAUD,
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C_SETDATA,
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C_SETFLOW,
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C_SETMODEM,
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C_PURGERX,
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C_PURGETX,
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C_FLASHREPLY,
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C_REQUESTDETAILS,
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C_GETDETAILS,
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C_REQUESTRESULTS,
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C_GETRESULTS,
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C_REQUESTQUEJOB,
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C_REQUESTQUEJOBSTATUS,
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C_QUEJOB,
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C_QUEJOBSTATUS,
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C_QUEFLUSH,
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C_QUEFLUSHREPLY,
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C_REQUESTVOLTS,
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C_GETVOLTS,
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C_SENDTESTWORK,
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C_LATENCY,
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C_SETLINE,
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C_VENDOR,
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C_SETFAN,
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C_FANREPLY,
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C_AVALON_TASK,
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C_AVALON_READ,
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C_GET_AVALON_READY,
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C_AVALON_RESET,
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C_GET_AVALON_RESET,
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C_FTDI_STATUS,
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C_ENABLE_UART,
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C_BB_SET_VOLTAGE,
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C_BB_GET_VOLTAGE,
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C_MAX
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};
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struct device_drv;
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struct cgpu_info;
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void usb_all(int level);
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const char *usb_cmdname(enum usb_cmds cmd);
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void usb_applog(struct cgpu_info *bflsc, enum usb_cmds cmd, char *msg, int amount, int err);
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struct cgpu_info *usb_copy_cgpu(struct cgpu_info *orig);
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struct cgpu_info *usb_alloc_cgpu(struct device_drv *drv, int threads);
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struct cgpu_info *usb_free_cgpu_devlock(struct cgpu_info *cgpu, bool free_devlock);
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#define usb_free_cgpu(cgpu) usb_free_cgpu_devlock(cgpu, true)
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void usb_uninit(struct cgpu_info *cgpu);
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bool usb_init(struct cgpu_info *cgpu, struct libusb_device *dev, struct usb_find_devices *found);
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void usb_detect(struct device_drv *drv, bool (*device_detect)(struct libusb_device *, struct usb_find_devices *));
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struct api_data *api_usb_stats(int *count);
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void update_usb_stats(struct cgpu_info *cgpu);
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int _usb_read(struct cgpu_info *cgpu, int ep, char *buf, size_t bufsiz, int *processed, unsigned int timeout, const char *end, enum usb_cmds cmd, bool readonce);
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int _usb_write(struct cgpu_info *cgpu, int ep, char *buf, size_t bufsiz, int *processed, unsigned int timeout, enum usb_cmds);
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int _usb_transfer(struct cgpu_info *cgpu, uint8_t request_type, uint8_t bRequest, uint16_t wValue, uint16_t wIndex, uint32_t *data, int siz, unsigned int timeout, enum usb_cmds cmd);
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int _usb_transfer_read(struct cgpu_info *cgpu, uint8_t request_type, uint8_t bRequest, uint16_t wValue, uint16_t wIndex, char *buf, int bufsiz, int *amount, unsigned int timeout, enum usb_cmds cmd);
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int usb_ftdi_cts(struct cgpu_info *cgpu);
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int usb_ftdi_set_latency(struct cgpu_info *cgpu);
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void usb_buffer_enable(struct cgpu_info *cgpu);
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void usb_buffer_disable(struct cgpu_info *cgpu);
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void usb_buffer_clear(struct cgpu_info *cgpu);
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uint32_t usb_buffer_size(struct cgpu_info *cgpu);
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void usb_set_cps(struct cgpu_info *cgpu, int cps);
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void usb_enable_cps(struct cgpu_info *cgpu);
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void usb_disable_cps(struct cgpu_info *cgpu);
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int usb_interface(struct cgpu_info *cgpu);
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enum sub_ident usb_ident(struct cgpu_info *cgpu);
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void usb_set_pps(struct cgpu_info *cgpu, uint16_t PrefPacketSize);
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void usb_set_dev_start(struct cgpu_info *cgpu);
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void usb_cleanup();
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void usb_initialise();
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void *usb_resource_thread(void *userdata);
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#define usb_read(cgpu, buf, bufsiz, read, cmd) \
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_usb_read(cgpu, DEFAULT_EP_IN, buf, bufsiz, read, DEVTIMEOUT, NULL, cmd, false)
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#define usb_read_once(cgpu, buf, bufsiz, read, cmd) \
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_usb_read(cgpu, DEFAULT_EP_IN, buf, bufsiz, read, DEVTIMEOUT, NULL, cmd, true)
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#define usb_read_once_timeout(cgpu, buf, bufsiz, read, timeout, cmd) \
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_usb_read(cgpu, DEFAULT_EP_IN, buf, bufsiz, read, timeout, NULL, cmd, true)
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#define usb_read_nl(cgpu, buf, bufsiz, read, cmd) \
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_usb_read(cgpu, DEFAULT_EP_IN, buf, bufsiz, read, DEVTIMEOUT, "\n", cmd, false)
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#define usb_read_nl_timeout(cgpu, buf, bufsiz, read, timeout, cmd) \
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_usb_read(cgpu, DEFAULT_EP_IN, buf, bufsiz, read, timeout, "\n", cmd, false)
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#define usb_read_ok(cgpu, buf, bufsiz, read, cmd) \
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_usb_read(cgpu, DEFAULT_EP_IN, buf, bufsiz, read, DEVTIMEOUT, "OK\n", cmd, false)
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#define usb_read_ok_timeout(cgpu, buf, bufsiz, read, timeout, cmd) \
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_usb_read(cgpu, DEFAULT_EP_IN, buf, bufsiz, read, timeout, "OK\n", cmd, false)
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#define usb_read_ep(cgpu, ep, buf, bufsiz, read, cmd) \
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_usb_read(cgpu, ep, buf, bufsiz, read, DEVTIMEOUT, NULL, cmd, false)
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#define usb_read_timeout(cgpu, buf, bufsiz, read, timeout, cmd) \
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_usb_read(cgpu, DEFAULT_EP_IN, buf, bufsiz, read, timeout, NULL, cmd, false)
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#define usb_read_ep_timeout(cgpu, ep, buf, bufsiz, read, timeout, cmd) \
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_usb_read(cgpu, ep, buf, bufsiz, read, timeout, NULL, cmd, false)
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#define usb_write(cgpu, buf, bufsiz, wrote, cmd) \
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_usb_write(cgpu, DEFAULT_EP_OUT, buf, bufsiz, wrote, DEVTIMEOUT, cmd)
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#define usb_write_ep(cgpu, ep, buf, bufsiz, wrote, cmd) \
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_usb_write(cgpu, ep, buf, bufsiz, wrote, DEVTIMEOUT, cmd)
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#define usb_write_timeout(cgpu, buf, bufsiz, wrote, timeout, cmd) \
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_usb_write(cgpu, DEFAULT_EP_OUT, buf, bufsiz, wrote, timeout, cmd)
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#define usb_write_ep_timeout(cgpu, ep, buf, bufsiz, wrote, timeout, cmd) \
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_usb_write(cgpu, ep, buf, bufsiz, wrote, timeout, cmd)
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#define usb_transfer(cgpu, typ, req, val, idx, cmd) \
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_usb_transfer(cgpu, typ, req, val, idx, NULL, 0, DEVTIMEOUT, cmd)
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#define usb_transfer_data(cgpu, typ, req, val, idx, data, len, cmd) \
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_usb_transfer(cgpu, typ, req, val, idx, data, len, DEVTIMEOUT, cmd)
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#define usb_transfer_read(cgpu, typ, req, val, idx, buf, bufsiz, read, cmd) \
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_usb_transfer_read(cgpu, typ, req, val, idx, buf, bufsiz, read, DEVTIMEOUT, cmd)
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#endif
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