USB device stack, with KL25Z fixes for USB 3.0 hosts and sleep/resume interrupt handling

Dependents:   frdm_Slider_Keyboard idd_hw2_figlax_PanType idd_hw2_appachu_finger_chording idd_hw3_AngieWangAntonioDeLimaFernandesDanielLim_BladeSymphony ... more

Fork of USBDevice by mbed official

This is an overhauled version of the standard mbed USB device-side driver library, with bug fixes for KL25Z devices. It greatly improves reliability and stability of USB on the KL25Z, especially with devices using multiple endpoints concurrently.

I've had some nagging problems with the base mbed implementation for a long time, manifesting as occasional random disconnects that required rebooting the device. Recently (late 2015), I started implementing a USB device on the KL25Z that used multiple endpoints, and suddenly the nagging, occasional problems turned into frequent and predictable crashes. This forced me to delve into the USB stack and figure out what was really going on. Happily, the frequent crashes made it possible to track down and fix the problems. This new version is working very reliably in my testing - the random disconnects seem completely eradicated, even under very stressful conditions for the device.

Summary

  • Overall stability improvements
  • USB 3.0 host support
  • Stalled endpoint fixes
  • Sleep/resume notifications
  • Smaller memory footprint
  • General code cleanup

Update - 2/15/2016

My recent fixes introduced a new problem that made the initial connection fail most of the time on certain hosts. It's not clear if the common thread was a particular type of motherboard or USB chip set, or a specific version of Windows, or what, but several people ran into it. We tracked the problem down to the "stall" fixes in the earlier updates, which we now know weren't quite the right fixes after all. The latest update (2/15/2016) fixes this. It has new and improved "unstall" handling that so far works well with diverse hosts.

Race conditions and overall stability

The base mbed KL25Z implementation has a lot of problems with "race conditions" - timing problems that can happen when hardware interrupts occur at inopportune moments. The library shares a bunch of static variable data between interrupt handler context and regular application context. This isn't automatically a bad thing, but it does require careful coordination to make sure that the interrupt handler doesn't corrupt data that the other code was in the middle of updating when an interrupt occurs. The base mbed code, though, doesn't do any of the necessary coordination. This makes it kind of amazing that the base code worked at all for anyone, but I guess the interrupt rate is low enough in most applications that the glitch rate was below anyone's threshold to seriously investigate.

This overhaul adds the necessary coordination for the interrupt handlers to protect against these data corruptions. I think it's very solid now, and hopefully entirely free of the numerous race conditions in the old code. It's always hard to be certain that you've fixed every possible bug like this because they strike (effectively) at random, but I'm pretty confident: my test application was reliably able to trigger glitches in the base code in a matter of minutes, but the same application (with the overhauled library) now runs for days on end without dropping the connection.

Stalled endpoint fixes

USB has a standard way of handling communications errors called a "stall", which basically puts the connection into an error mode to let both sides know that they need to reset their internal states and sync up again. The original mbed version of the USB device library doesn't seem to have the necessary code to recover from this condition properly. The KL25Z hardware does some of the work, but it also seems to require the software to take some steps to "un-stall" the connection. (I keep saying "seems to" because the hardware reference material is very sketchy about all of this. Most of what I've figured out is from observing the device in action with a Windows host.) This new version adds code to do the necessary re-syncing and get the connection going again, automatically, and transparently to the user.

USB 3.0 Hosts

The original mbed code sometimes didn't work when connecting to hosts with USB 3.0 ports. This didn't affect every host, but it affected many of them. The common element seemed to be the Intel Haswell chip set on the host, but there may be other chip sets affected as well. In any case, the problem affected many PCs from the Windows 7 and 8 generation, as well as many Macs. It was possible to work around the problem by avoiding USB 3.0 ports - you could use a USB 2 port on the host, or plug a USB 2 hub between the host and device. But I wanted to just fix the problem and eliminate the need for such workarounds. This modified version of the library has such a fix, which so far has worked for everyone who's tried.

Sleep/resume notifications

This modified version also contains an innocuous change to the KL25Z USB HAL code to handle sleep and resume interrupts with calls to suspendStateChanged(). The original KL25Z code omitted these calls (and in fact didn't even enable the interrupts), but I think this was an unintentional oversight - the notifier function is part of the generic API, and other supported boards all implement it. I use this feature in my own application so that I can distinguish sleep mode from actual disconnects and handle the two conditions correctly.

Smaller memory footprint

The base mbed version of the code allocates twice as much memory for USB buffers as it really needed to. It looks like the original developers intended to implement the KL25Z USB hardware's built-in double-buffering mechanism, but they ultimately abandoned that effort. But they left in the double memory allocation. This version removes that and allocates only what's actually needed. The USB buffers aren't that big (128 bytes per endpoint), so this doesn't save a ton of memory, but even a little memory is pretty precious on this machine given that it only has 16K.

(I did look into adding the double-buffering support that the original developers abandoned, but after some experimentation I decided they were right to skip it. It just doesn't seem to mesh well with the design of the rest of the mbed USB code. I think it would take a major rewrite to make it work, and it doesn't seem worth the effort given that most applications don't need it - it would only benefit applications that are moving so much data through USB that they're pushing the limits of the CPU. And even for those, I think it would be a lot simpler to build a purely software-based buffer rotation mechanism.)

General code cleanup

The KL25Z HAL code in this version has greatly expanded commentary and a lot of general cleanup. Some of the hardware constants were given the wrong symbolic names (e.g., EVEN and ODD were reversed), and many were just missing (written as hard-coded numbers without explanation). I fixed the misnomers and added symbolic names for formerly anonymous numbers. Hopefully the next person who has to overhaul this code will at least have an easier time understanding what I thought I was doing!

Committer:
mjr
Date:
Wed Apr 27 01:50:32 2016 +0000
Revision:
50:946bc763c068
Parent:
49:03527ce6840e
Child:
53:c8110529c24b
Error handling in the main code with the long explanation

Who changed what in which revision?

UserRevisionLine numberNew contents of line
samux 1:80ab0d068708 1 /* Copyright (c) 2010-2011 mbed.org, MIT License
samux 1:80ab0d068708 2 *
samux 1:80ab0d068708 3 * Permission is hereby granted, free of charge, to any person obtaining a copy of this software
samux 1:80ab0d068708 4 * and associated documentation files (the "Software"), to deal in the Software without
samux 1:80ab0d068708 5 * restriction, including without limitation the rights to use, copy, modify, merge, publish,
samux 1:80ab0d068708 6 * distribute, sublicense, and/or sell copies of the Software, and to permit persons to whom the
samux 1:80ab0d068708 7 * Software is furnished to do so, subject to the following conditions:
samux 1:80ab0d068708 8 *
samux 1:80ab0d068708 9 * The above copyright notice and this permission notice shall be included in all copies or
samux 1:80ab0d068708 10 * substantial portions of the Software.
samux 1:80ab0d068708 11 *
samux 1:80ab0d068708 12 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR IMPLIED, INCLUDING
samux 1:80ab0d068708 13 * BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
samux 1:80ab0d068708 14 * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM,
samux 1:80ab0d068708 15 * DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
samux 1:80ab0d068708 16 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
samux 1:80ab0d068708 17 */
samux 1:80ab0d068708 18
samux 1:80ab0d068708 19 #include "stdint.h"
samux 1:80ab0d068708 20 #include "USBHAL.h"
samux 1:80ab0d068708 21 #include "USBHID.h"
samux 1:80ab0d068708 22
samux 1:80ab0d068708 23
samux 1:80ab0d068708 24 USBHID::USBHID(uint8_t output_report_length, uint8_t input_report_length, uint16_t vendor_id, uint16_t product_id, uint16_t product_release, bool connect): USBDevice(vendor_id, product_id, product_release)
samux 1:80ab0d068708 25 {
samux 1:80ab0d068708 26 output_length = output_report_length;
samux 1:80ab0d068708 27 input_length = input_report_length;
samux 1:80ab0d068708 28 if(connect) {
samux 1:80ab0d068708 29 USBDevice::connect();
samux 1:80ab0d068708 30 }
samux 1:80ab0d068708 31 }
samux 1:80ab0d068708 32
samux 1:80ab0d068708 33
samux 1:80ab0d068708 34 bool USBHID::send(HID_REPORT *report)
samux 1:80ab0d068708 35 {
samux 1:80ab0d068708 36 return write(EPINT_IN, report->data, report->length, MAX_HID_REPORT_SIZE);
samux 1:80ab0d068708 37 }
samux 1:80ab0d068708 38
samux 1:80ab0d068708 39 bool USBHID::sendNB(HID_REPORT *report)
samux 1:80ab0d068708 40 {
samux 1:80ab0d068708 41 return writeNB(EPINT_IN, report->data, report->length, MAX_HID_REPORT_SIZE);
samux 1:80ab0d068708 42 }
samux 1:80ab0d068708 43
mjr 32:a8eb758f4074 44 bool USBHID::sendTO(HID_REPORT *report, int timeout_ms)
mjr 32:a8eb758f4074 45 {
mjr 32:a8eb758f4074 46 return writeTO(EPINT_IN, report->data, report->length, MAX_HID_REPORT_SIZE, timeout_ms);
mjr 32:a8eb758f4074 47 }
mjr 32:a8eb758f4074 48
samux 1:80ab0d068708 49
samux 1:80ab0d068708 50 bool USBHID::read(HID_REPORT *report)
samux 1:80ab0d068708 51 {
samux 1:80ab0d068708 52 uint32_t bytesRead = 0;
samux 1:80ab0d068708 53 bool result;
samux 1:80ab0d068708 54 result = USBDevice::readEP(EPINT_OUT, report->data, &bytesRead, MAX_HID_REPORT_SIZE);
samux 1:80ab0d068708 55 if(!readStart(EPINT_OUT, MAX_HID_REPORT_SIZE))
samux 1:80ab0d068708 56 return false;
samux 1:80ab0d068708 57 report->length = bytesRead;
samux 1:80ab0d068708 58 return result;
samux 1:80ab0d068708 59 }
samux 1:80ab0d068708 60
samux 1:80ab0d068708 61
samux 1:80ab0d068708 62 bool USBHID::readNB(HID_REPORT *report)
samux 1:80ab0d068708 63 {
samux 1:80ab0d068708 64 uint32_t bytesRead = 0;
samux 1:80ab0d068708 65 bool result;
samux 1:80ab0d068708 66 result = USBDevice::readEP_NB(EPINT_OUT, report->data, &bytesRead, MAX_HID_REPORT_SIZE);
mbed_official 21:ee9f2fa6bdbc 67 // if readEP_NB did not succeed, does not issue a readStart
mbed_official 21:ee9f2fa6bdbc 68 if (!result)
mbed_official 21:ee9f2fa6bdbc 69 return false;
samux 1:80ab0d068708 70 report->length = bytesRead;
samux 1:80ab0d068708 71 if(!readStart(EPINT_OUT, MAX_HID_REPORT_SIZE))
samux 1:80ab0d068708 72 return false;
samux 1:80ab0d068708 73 return result;
samux 1:80ab0d068708 74 }
samux 1:80ab0d068708 75
samux 1:80ab0d068708 76 //
samux 1:80ab0d068708 77 // Route callbacks from lower layers to class(es)
samux 1:80ab0d068708 78 //
samux 1:80ab0d068708 79
samux 1:80ab0d068708 80
samux 1:80ab0d068708 81 // Called in ISR context
samux 1:80ab0d068708 82 // Called by USBDevice on Endpoint0 request
samux 1:80ab0d068708 83 // This is used to handle extensions to standard requests
samux 1:80ab0d068708 84 // and class specific requests
samux 1:80ab0d068708 85 // Return true if class handles this request
samux 1:80ab0d068708 86 bool USBHID::USBCallback_request() {
samux 1:80ab0d068708 87 bool success = false;
mjr 50:946bc763c068 88 CONTROL_TRANSFER *transfer = getTransferPtr();
mjr 50:946bc763c068 89 const uint8_t *p;
mjr 50:946bc763c068 90 uint16_t len;
samux 1:80ab0d068708 91
samux 1:80ab0d068708 92 // Process additional standard requests
samux 1:80ab0d068708 93
samux 1:80ab0d068708 94 if ((transfer->setup.bmRequestType.Type == STANDARD_TYPE))
samux 1:80ab0d068708 95 {
samux 1:80ab0d068708 96 switch (transfer->setup.bRequest)
samux 1:80ab0d068708 97 {
mjr 50:946bc763c068 98 case GET_DESCRIPTOR:
mjr 50:946bc763c068 99 switch (DESCRIPTOR_TYPE(transfer->setup.wValue))
mjr 50:946bc763c068 100 {
mjr 50:946bc763c068 101 case REPORT_DESCRIPTOR:
mjr 50:946bc763c068 102 // if there's a valid descriptor, return it
mjr 50:946bc763c068 103 if ((p = reportDesc(transfer->setup.wIndex, len)) != NULL && len != 0)
samux 1:80ab0d068708 104 {
mjr 50:946bc763c068 105 transfer->ptr = p;
mjr 50:946bc763c068 106 transfer->remaining = len;
mjr 50:946bc763c068 107 transfer->direction = DEVICE_TO_HOST;
mjr 50:946bc763c068 108 success = true;
samux 1:80ab0d068708 109 }
samux 1:80ab0d068708 110 break;
mjr 50:946bc763c068 111
mjr 50:946bc763c068 112 case HID_DESCRIPTOR:
mjr 50:946bc763c068 113 // Find the HID descriptor, after the configuration descriptor
mjr 50:946bc763c068 114 p = findDescriptor(HID_DESCRIPTOR, transfer->setup.wIndex);
mjr 50:946bc763c068 115 if (p != NULL)
mjr 50:946bc763c068 116 {
mjr 50:946bc763c068 117 transfer->ptr = p;
mjr 50:946bc763c068 118 transfer->remaining = HID_DESCRIPTOR_LENGTH;
mjr 50:946bc763c068 119 transfer->direction = DEVICE_TO_HOST;
mjr 50:946bc763c068 120 success = true;
mjr 50:946bc763c068 121 }
mjr 50:946bc763c068 122 break;
mjr 50:946bc763c068 123
samux 1:80ab0d068708 124 default:
samux 1:80ab0d068708 125 break;
mjr 50:946bc763c068 126 }
mjr 50:946bc763c068 127 break;
mjr 50:946bc763c068 128
mjr 50:946bc763c068 129 default:
mjr 50:946bc763c068 130 break;
samux 1:80ab0d068708 131 }
samux 1:80ab0d068708 132 }
samux 1:80ab0d068708 133
samux 1:80ab0d068708 134 // Process class-specific requests
samux 1:80ab0d068708 135
samux 1:80ab0d068708 136 if (transfer->setup.bmRequestType.Type == CLASS_TYPE)
samux 1:80ab0d068708 137 {
samux 1:80ab0d068708 138 switch (transfer->setup.bRequest)
samux 1:80ab0d068708 139 {
mjr 37:c5ac4ccf6597 140 case GET_REPORT:
mjr 37:c5ac4ccf6597 141 // not implemented
mjr 37:c5ac4ccf6597 142 break;
mjr 37:c5ac4ccf6597 143
mjr 37:c5ac4ccf6597 144 case GET_IDLE:
mjr 37:c5ac4ccf6597 145 // retrieve the idle rate from an interface
mjr 37:c5ac4ccf6597 146 idleData = getIdleTime(transfer->setup.wIndex, LSB(transfer->setup.wValue));
mjr 37:c5ac4ccf6597 147 transfer->ptr = &idleData;
mjr 37:c5ac4ccf6597 148 transfer->remaining = 1;
mjr 37:c5ac4ccf6597 149 transfer->direction = DEVICE_TO_HOST;
mjr 37:c5ac4ccf6597 150 success = true;
mjr 37:c5ac4ccf6597 151 break;
mjr 37:c5ac4ccf6597 152
mjr 37:c5ac4ccf6597 153 case GET_PROTOCOL:
mjr 37:c5ac4ccf6597 154 // not implemented
mjr 37:c5ac4ccf6597 155 break;
mjr 37:c5ac4ccf6597 156
mjr 37:c5ac4ccf6597 157 case SET_REPORT:
samux 1:80ab0d068708 158 // First byte will be used for report ID
samux 1:80ab0d068708 159 outputReport.data[0] = transfer->setup.wValue & 0xff;
samux 1:80ab0d068708 160 outputReport.length = transfer->setup.wLength + 1;
samux 1:80ab0d068708 161
samux 1:80ab0d068708 162 transfer->remaining = sizeof(outputReport.data) - 1;
samux 1:80ab0d068708 163 transfer->ptr = &outputReport.data[1];
samux 1:80ab0d068708 164 transfer->direction = HOST_TO_DEVICE;
samux 1:80ab0d068708 165 transfer->notify = true;
samux 1:80ab0d068708 166 success = true;
mjr 48:b225d025ca1d 167 break;
mjr 34:884405d998bb 168
mjr 34:884405d998bb 169 case SET_IDLE:
mjr 34:884405d998bb 170 // Set idle time - time between INTERRUPT IN reports from the
mjr 34:884405d998bb 171 // device when there are no changes to report. setup.wIndex
mjr 34:884405d998bb 172 // is the interface index (we're setting the idle time for the
mjr 34:884405d998bb 173 // given interface only). MSB(setup.wValue) gives the interval
mjr 34:884405d998bb 174 // in 4ms units, with the special case that 0 means infinity.
mjr 37:c5ac4ccf6597 175 setIdleTime(transfer->setup.wIndex, LSB(transfer->setup.wValue), MSB(transfer->setup.wValue));
mjr 34:884405d998bb 176 transfer->remaining = 0;
mjr 34:884405d998bb 177 transfer->direction = DEVICE_TO_HOST;
mjr 34:884405d998bb 178 success = true;
mjr 48:b225d025ca1d 179 break;
mjr 34:884405d998bb 180
mjr 37:c5ac4ccf6597 181 case SET_PROTOCOL:
mjr 37:c5ac4ccf6597 182 // not implemented
mjr 37:c5ac4ccf6597 183 break;
mjr 37:c5ac4ccf6597 184
samux 1:80ab0d068708 185 default:
samux 1:80ab0d068708 186 break;
samux 1:80ab0d068708 187 }
samux 1:80ab0d068708 188 }
samux 1:80ab0d068708 189
samux 1:80ab0d068708 190 return success;
samux 1:80ab0d068708 191 }
samux 1:80ab0d068708 192
samux 1:80ab0d068708 193
samux 1:80ab0d068708 194 #define DEFAULT_CONFIGURATION (1)
samux 1:80ab0d068708 195
samux 1:80ab0d068708 196
samux 1:80ab0d068708 197 // Called in ISR context
samux 1:80ab0d068708 198 // Set configuration. Return false if the
samux 1:80ab0d068708 199 // configuration is not supported
samux 1:80ab0d068708 200 bool USBHID::USBCallback_setConfiguration(uint8_t configuration) {
samux 1:80ab0d068708 201 if (configuration != DEFAULT_CONFIGURATION) {
samux 1:80ab0d068708 202 return false;
samux 1:80ab0d068708 203 }
samux 1:80ab0d068708 204
samux 1:80ab0d068708 205 // Configure endpoints > 0
samux 1:80ab0d068708 206 addEndpoint(EPINT_IN, MAX_PACKET_SIZE_EPINT);
samux 1:80ab0d068708 207 addEndpoint(EPINT_OUT, MAX_PACKET_SIZE_EPINT);
samux 1:80ab0d068708 208
samux 1:80ab0d068708 209 // We activate the endpoint to be able to recceive data
samux 1:80ab0d068708 210 readStart(EPINT_OUT, MAX_PACKET_SIZE_EPINT);
samux 1:80ab0d068708 211 return true;
samux 1:80ab0d068708 212 }
samux 1:80ab0d068708 213
samux 1:80ab0d068708 214
mjr 49:03527ce6840e 215 const uint8_t *USBHID::stringIinterfaceDesc() {
mjr 49:03527ce6840e 216 static const uint8_t stringIinterfaceDescriptor[] = {
samux 1:80ab0d068708 217 0x08, //bLength
samux 1:80ab0d068708 218 STRING_DESCRIPTOR, //bDescriptorType 0x03
samux 1:80ab0d068708 219 'H',0,'I',0,'D',0, //bString iInterface - HID
samux 1:80ab0d068708 220 };
samux 1:80ab0d068708 221 return stringIinterfaceDescriptor;
samux 1:80ab0d068708 222 }
samux 1:80ab0d068708 223
mjr 49:03527ce6840e 224 const uint8_t *USBHID::stringIproductDesc() {
mjr 49:03527ce6840e 225 static const uint8_t stringIproductDescriptor[] = {
samux 1:80ab0d068708 226 0x16, //bLength
samux 1:80ab0d068708 227 STRING_DESCRIPTOR, //bDescriptorType 0x03
samux 1:80ab0d068708 228 'H',0,'I',0,'D',0,' ',0,'D',0,'E',0,'V',0,'I',0,'C',0,'E',0 //bString iProduct - HID device
samux 1:80ab0d068708 229 };
samux 1:80ab0d068708 230 return stringIproductDescriptor;
samux 1:80ab0d068708 231 }
samux 1:80ab0d068708 232
samux 1:80ab0d068708 233
samux 1:80ab0d068708 234
mjr 50:946bc763c068 235 const uint8_t *USBHID::reportDesc(int idx, uint16_t &len) {
mjr 49:03527ce6840e 236 static const uint8_t reportDescriptor[] = {
samux 1:80ab0d068708 237 0x06, LSB(0xFFAB), MSB(0xFFAB),
samux 1:80ab0d068708 238 0x0A, LSB(0x0200), MSB(0x0200),
samux 1:80ab0d068708 239 0xA1, 0x01, // Collection 0x01
samux 1:80ab0d068708 240 0x75, 0x08, // report size = 8 bits
samux 1:80ab0d068708 241 0x15, 0x00, // logical minimum = 0
samux 1:80ab0d068708 242 0x26, 0xFF, 0x00, // logical maximum = 255
emilmont 10:1e3d126a322b 243 0x95, input_length, // report count
samux 1:80ab0d068708 244 0x09, 0x01, // usage
samux 1:80ab0d068708 245 0x81, 0x02, // Input (array)
emilmont 10:1e3d126a322b 246 0x95, output_length,// report count
samux 1:80ab0d068708 247 0x09, 0x02, // usage
samux 1:80ab0d068708 248 0x91, 0x02, // Output (array)
samux 1:80ab0d068708 249 0xC0 // end collection
samux 1:80ab0d068708 250
samux 1:80ab0d068708 251 };
mjr 50:946bc763c068 252 if (idx != 0) {
mjr 50:946bc763c068 253 len = sizeof(reportDescriptor);
mjr 50:946bc763c068 254 return reportDescriptor;
mjr 50:946bc763c068 255 }
mjr 50:946bc763c068 256 else {
mjr 50:946bc763c068 257 len = 0;
mjr 50:946bc763c068 258 return 0;
mjr 50:946bc763c068 259 }
samux 1:80ab0d068708 260 }
samux 1:80ab0d068708 261
samux 1:80ab0d068708 262 #define DEFAULT_CONFIGURATION (1)
samux 1:80ab0d068708 263 #define TOTAL_DESCRIPTOR_LENGTH ((1 * CONFIGURATION_DESCRIPTOR_LENGTH) \
samux 1:80ab0d068708 264 + (1 * INTERFACE_DESCRIPTOR_LENGTH) \
samux 1:80ab0d068708 265 + (1 * HID_DESCRIPTOR_LENGTH) \
samux 1:80ab0d068708 266 + (2 * ENDPOINT_DESCRIPTOR_LENGTH))
samux 1:80ab0d068708 267
mjr 50:946bc763c068 268 const uint8_t *USBHID::configurationDesc()
mjr 50:946bc763c068 269 {
mjr 50:946bc763c068 270 const uint16_t rdl = reportDescLength(0);
mjr 49:03527ce6840e 271 static const uint8_t configurationDescriptor[] = {
samux 1:80ab0d068708 272 CONFIGURATION_DESCRIPTOR_LENGTH,// bLength
samux 1:80ab0d068708 273 CONFIGURATION_DESCRIPTOR, // bDescriptorType
samux 1:80ab0d068708 274 LSB(TOTAL_DESCRIPTOR_LENGTH), // wTotalLength (LSB)
samux 1:80ab0d068708 275 MSB(TOTAL_DESCRIPTOR_LENGTH), // wTotalLength (MSB)
samux 1:80ab0d068708 276 0x01, // bNumInterfaces
samux 1:80ab0d068708 277 DEFAULT_CONFIGURATION, // bConfigurationValue
samux 1:80ab0d068708 278 0x00, // iConfiguration
samux 1:80ab0d068708 279 C_RESERVED | C_SELF_POWERED, // bmAttributes
samux 1:80ab0d068708 280 C_POWER(0), // bMaxPower
samux 1:80ab0d068708 281
samux 1:80ab0d068708 282 INTERFACE_DESCRIPTOR_LENGTH, // bLength
samux 1:80ab0d068708 283 INTERFACE_DESCRIPTOR, // bDescriptorType
samux 1:80ab0d068708 284 0x00, // bInterfaceNumber
samux 1:80ab0d068708 285 0x00, // bAlternateSetting
samux 1:80ab0d068708 286 0x02, // bNumEndpoints
samux 1:80ab0d068708 287 HID_CLASS, // bInterfaceClass
samux 1:80ab0d068708 288 HID_SUBCLASS_NONE, // bInterfaceSubClass
samux 1:80ab0d068708 289 HID_PROTOCOL_NONE, // bInterfaceProtocol
samux 1:80ab0d068708 290 0x00, // iInterface
samux 1:80ab0d068708 291
samux 1:80ab0d068708 292 HID_DESCRIPTOR_LENGTH, // bLength
samux 1:80ab0d068708 293 HID_DESCRIPTOR, // bDescriptorType
samux 1:80ab0d068708 294 LSB(HID_VERSION_1_11), // bcdHID (LSB)
samux 1:80ab0d068708 295 MSB(HID_VERSION_1_11), // bcdHID (MSB)
samux 1:80ab0d068708 296 0x00, // bCountryCode
samux 1:80ab0d068708 297 0x01, // bNumDescriptors
samux 1:80ab0d068708 298 REPORT_DESCRIPTOR, // bDescriptorType
mjr 50:946bc763c068 299 (uint8_t)(LSB(rdl)), // wDescriptorLength (LSB)
mjr 50:946bc763c068 300 (uint8_t)(MSB(rdl)), // wDescriptorLength (MSB)
samux 1:80ab0d068708 301
samux 1:80ab0d068708 302 ENDPOINT_DESCRIPTOR_LENGTH, // bLength
samux 1:80ab0d068708 303 ENDPOINT_DESCRIPTOR, // bDescriptorType
samux 1:80ab0d068708 304 PHY_TO_DESC(EPINT_IN), // bEndpointAddress
samux 1:80ab0d068708 305 E_INTERRUPT, // bmAttributes
samux 1:80ab0d068708 306 LSB(MAX_PACKET_SIZE_EPINT), // wMaxPacketSize (LSB)
samux 1:80ab0d068708 307 MSB(MAX_PACKET_SIZE_EPINT), // wMaxPacketSize (MSB)
mjr 50:946bc763c068 308 1, // bInterval (milliseconds)
samux 1:80ab0d068708 309
samux 1:80ab0d068708 310 ENDPOINT_DESCRIPTOR_LENGTH, // bLength
samux 1:80ab0d068708 311 ENDPOINT_DESCRIPTOR, // bDescriptorType
mjr 50:946bc763c068 312 PHY_TO_DESC(EPINT_OUT), // bEndpointAddress
samux 1:80ab0d068708 313 E_INTERRUPT, // bmAttributes
samux 1:80ab0d068708 314 LSB(MAX_PACKET_SIZE_EPINT), // wMaxPacketSize (LSB)
samux 1:80ab0d068708 315 MSB(MAX_PACKET_SIZE_EPINT), // wMaxPacketSize (MSB)
mjr 50:946bc763c068 316 1 // bInterval (milliseconds)
samux 1:80ab0d068708 317 };
samux 1:80ab0d068708 318 return configurationDescriptor;
samux 1:80ab0d068708 319 }