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The 3D mouse only worked on Linux, through spacenavd. This adds a second backend that reads the device directly over USB through hidapi, with no 3Dconnexion driver or SDK: the route to Windows and macOS (discussion #599), and usable on Linux without spacenavd. SpaceMouseHid decodes the raw reports from the device's own report descriptor -- where each axis and button sits, its range, absolute or relative -- so no per-model table is needed, with the classic report 1/2/3 layout as a fallback when the descriptor cannot be read and the 0x1c button list newer devices send. Absolute axes are rescaled to +-500 exactly as spacenavd does, so both backends give QET the same values. HidBackend polls from the main thread (fast while moving, slow when still), emits one sample per poll, and looks for a device every 3 s so plugging one in or back in needs no restart. QET_SPACEMOUSE_BACKEND (auto, spnav, hid) picks the backend; auto keeps libspnav on Linux when it is found and uses hidapi otherwise. hidapi is found through pkg-config as hidapi-hidraw (Linux) or hidapi (MSYS2, Homebrew). A sample arriving in the same millisecond as the previous one now counts for no time instead of a full period, so a burst of queued samples no longer moves the view further than the time it covers. Tested without a device: tst_spacemousehid (descriptor parsing, broken and hostile descriptors, every report form, recordings from real devices once they are added to fixtures/spacemouse), and end to end on Linux through a virtual USB device created with /dev/uhid: the same moves give byte-identical screenshots through the hidapi and libspnav backends, an absolute axis is rescaled as spacenavd does, buttons trigger their bound action, and unplugging and replugging while QET runs (including with a dialog open that a device button opened) reconnects cleanly. Not tested on Windows, macOS or real hardware. Co-Authored-By: Claude Opus 5.5 <noreply@anthropic.com>
358 lines
11 KiB
C++
358 lines
11 KiB
C++
/*
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Copyright 2006-2026 The QElectroTech Team
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This file is part of QElectroTech.
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QElectroTech is free software: you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation, either version 2 of the License, or
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(at your option) any later version.
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QElectroTech is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with QElectroTech. If not, see <http://www.gnu.org/licenses/>.
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*/
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#include "spacemousehid.h"
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#include <QHash>
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#include <algorithm>
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namespace {
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constexpr unsigned short PAGE_GENERIC_DESKTOP = 0x01;
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constexpr unsigned short PAGE_BUTTON = 0x09;
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constexpr unsigned short USAGE_MULTI_AXIS = 0x08;
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constexpr unsigned short USAGE_X = 0x30; // X, Y, Z, Rx, Ry, Rz follow
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//Newer devices (SpaceMouse Enterprise, the wireless ones) report the
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//buttons held as a list of 16-bit button numbers in this report,
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//outside the Button usage page.
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constexpr int REPORT_BUTTON_LIST = 0x1c;
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//spacenavd rescales absolute axes to this range, so doing the same
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//makes both backends hand QET the same numbers.
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constexpr int SCALED_MIN = -500;
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constexpr int SCALED_MAX = 500;
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//Limits on what a descriptor can make the parser walk.
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constexpr quint32 MAX_FIELDS = 1024;
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constexpr qint64 MAX_BITS = 1 << 20;
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//3D mice sold under Logitech's vendor id, for the ones whose
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//interface does not report a usage.
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const QSet<unsigned short> LOGITECH_3D_MICE = {
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0xc603, 0xc605, 0xc606, 0xc621, 0xc623, 0xc625,
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0xc626, 0xc627, 0xc628, 0xc629, 0xc62b
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};
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/// Read \a size bits at \a offset, little-endian as HID packs them.
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bool extract(const QByteArray &payload, int offset, int size, bool is_signed, int *value)
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{
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if (size <= 0 || size > 32 || offset < 0
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|| (offset + size + 7) / 8 > payload.size()) {
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return false;
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}
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quint32 raw = 0;
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for (int b = 0; b < size; ++b) {
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const int bit = offset + b;
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if (static_cast<quint8>(payload.at(bit / 8)) & (1u << (bit % 8))) {
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raw |= 1u << b;
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}
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}
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if (is_signed && size < 32 && (raw & (1u << (size - 1)))) {
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raw |= ~((1u << size) - 1);
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}
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*value = static_cast<qint32>(raw);
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return true;
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}
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int scaled(const SpaceMouseHid::Field &field, int value)
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{
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if (field.relative || field.logical_max <= field.logical_min) {
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return value;
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}
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const qint64 range = qint64(field.logical_max) - field.logical_min;
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return static_cast<int>((qint64(value) - field.logical_min)
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* (SCALED_MAX - SCALED_MIN) / range + SCALED_MIN);
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}
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}
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bool SpaceMouseHid::isSpaceMouse(unsigned short vendor, unsigned short product,
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unsigned short usage_page, unsigned short usage)
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{
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const bool multi_axis = usage_page == PAGE_GENERIC_DESKTOP && usage == USAGE_MULTI_AXIS;
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const bool usage_unknown = usage_page == 0 && usage == 0;
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if (vendor == VENDOR_3DCONNEXION) {
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return multi_axis || usage_unknown;
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}
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if (vendor == VENDOR_LOGITECH) {
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return multi_axis || (usage_unknown && LOGITECH_3D_MICE.contains(product));
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}
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return false;
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}
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bool SpaceMouseHid::Layout::hasAxes() const
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{
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for (const Field &f : axes) {
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if (f.isValid()) {
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return true;
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}
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}
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return false;
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}
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/**
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@brief SpaceMouseHid::parseDescriptor
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Walks the short items of a HID report descriptor (HID 1.11, 6.2.2),
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keeping only what the decoder needs: the Input fields carrying the six
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Generic Desktop axes and the Button page.
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@param descriptor
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@return see the declaration
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*/
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SpaceMouseHid::Layout SpaceMouseHid::parseDescriptor(const QByteArray &descriptor)
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{
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struct Globals {
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quint32 usage_page = 0;
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qint32 logical_min = 0;
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qint32 logical_max = 0;
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quint32 report_size = 0;
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quint32 report_count = 0;
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quint32 report_id = 0;
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};
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Layout layout;
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Globals globals;
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QList<Globals> stack;
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QList<quint32> usages; // full 32-bit usages (page << 16 | id)
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quint32 usage_min = 0, usage_max = 0;
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bool have_range = false;
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QHash<quint32, int> next_bit; // per report id
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auto clearLocals = [&]() {
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usages.clear();
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have_range = false;
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usage_min = usage_max = 0;
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};
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auto fullUsage = [&](quint32 value, int size) {
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return size == 4 ? value : (globals.usage_page << 16) | value;
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};
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int i = 0;
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const int n = descriptor.size();
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while (i < n)
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{
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const quint8 prefix = static_cast<quint8>(descriptor.at(i));
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if (prefix == 0xfe) { // long item: never used by these devices
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if (i + 1 >= n) break;
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i += 3 + static_cast<quint8>(descriptor.at(i + 1));
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continue;
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}
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const int size = (prefix & 0x03) == 3 ? 4 : (prefix & 0x03);
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const int type = (prefix >> 2) & 0x03;
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const int tag = prefix >> 4;
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if (i + 1 + size > n) break;
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quint32 uvalue = 0;
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for (int b = 0; b < size; ++b) {
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uvalue |= quint32(static_cast<quint8>(descriptor.at(i + 1 + b))) << (8 * b);
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}
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qint32 svalue = static_cast<qint32>(uvalue);
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if (size > 0 && size < 4 && (uvalue & (1u << (8 * size - 1)))) {
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svalue = static_cast<qint32>(uvalue | ~((1u << (8 * size)) - 1));
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}
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i += 1 + size;
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if (type == 1) // global
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{
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switch (tag) {
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case 0: globals.usage_page = uvalue; break;
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case 1: globals.logical_min = svalue; break;
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case 2: globals.logical_max = svalue; break;
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case 7: globals.report_size = uvalue; break;
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case 8: globals.report_id = uvalue; layout.numbered_reports = true; break;
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case 9: globals.report_count = uvalue; break;
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case 10: stack.append(globals); break;
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case 11: if (!stack.isEmpty()) globals = stack.takeLast(); break;
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}
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}
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else if (type == 2) // local
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{
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switch (tag) {
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case 0: usages.append(fullUsage(uvalue, size)); break;
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case 1: usage_min = fullUsage(uvalue, size); have_range = true; break;
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case 2: usage_max = fullUsage(uvalue, size); have_range = true; break;
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}
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}
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else if (type == 0) // main
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{
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if (tag == 8) // Input
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{
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const bool constant = uvalue & 0x01;
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const bool variable = uvalue & 0x02;
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const bool relative = uvalue & 0x04;
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int &bit = next_bit[globals.report_id];
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//A real report is at most a few hundred bytes; a count
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//beyond that is a broken (or hostile) descriptor, and
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//walking it field by field would stall the application.
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const quint32 count = qMin<quint32>(globals.report_count, MAX_FIELDS);
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for (quint32 k = 0; k < count; ++k)
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{
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quint32 usage = 0;
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if (have_range && usage_max >= usage_min) {
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usage = qMin(usage_min + k, usage_max);
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} else if (!usages.isEmpty()) {
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usage = usages.at(qMin<int>(k, usages.size() - 1));
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}
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Field field;
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field.report_id = static_cast<int>(globals.report_id);
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field.bit_offset = bit + static_cast<int>(k * globals.report_size);
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field.bit_size = static_cast<int>(globals.report_size);
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field.logical_min = globals.logical_min;
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field.logical_max = globals.logical_max;
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field.relative = relative;
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if (!constant && variable) {
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const quint32 page = usage >> 16, id = usage & 0xffff;
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if (page == PAGE_GENERIC_DESKTOP && id >= USAGE_X && id < USAGE_X + 6) {
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layout.axes[id - USAGE_X] = field;
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} else if (page == PAGE_BUTTON && id >= 1 && id <= 64) {
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if (layout.buttons.size() < int(id)) {
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layout.buttons.resize(id);
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}
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layout.buttons[id - 1] = field;
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}
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}
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}
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bit = static_cast<int>(qMin<qint64>(
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bit + qint64(count) * globals.report_size, MAX_BITS));
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}
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clearLocals(); // every main item (Input, Collection, ...) ends the locals
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}
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}
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return layout;
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}
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SpaceMouseHid::Layout SpaceMouseHid::fallbackLayout()
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{
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Layout layout;
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layout.numbered_reports = true;
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for (int a = 0; a < 6; ++a) {
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Field &f = layout.axes[a];
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f.report_id = a < 3 ? 1 : 2;
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f.bit_offset = (a % 3) * 16;
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f.bit_size = 16;
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f.logical_min = -32768; // signed, and relative: passed through as sent
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f.logical_max = 32767;
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f.relative = true;
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}
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layout.buttons.resize(32);
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for (int b = 0; b < 32; ++b) {
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Field &f = layout.buttons[b];
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f.report_id = 3;
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f.bit_offset = b;
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f.bit_size = 1;
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f.logical_max = 1;
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}
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return layout;
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}
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SpaceMouseHid::Decoder::Decoder(const Layout &layout) :
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m_layout(layout)
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{}
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/**
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@brief SpaceMouseHid::Decoder::feed
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@param report : one report as read from the device, report id first
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when the device numbers its reports
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@return see Result
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*/
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SpaceMouseHid::Decoder::Result SpaceMouseHid::Decoder::feed(const QByteArray &report)
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{
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Result result;
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if (report.isEmpty()) {
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return result;
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}
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const int id = m_layout.numbered_reports ? static_cast<quint8>(report.at(0)) : 0;
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const QByteArray payload = m_layout.numbered_reports ? report.mid(1) : report;
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for (int a = 0; a < 6; ++a)
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{
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const Field &f = m_layout.axes[a];
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int value = 0;
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if (f.isValid() && f.report_id == id
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&& extract(payload, f.bit_offset, f.bit_size, f.logical_min < 0, &value)) {
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m_axes[a] = scaled(f, value);
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result.motion = true;
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}
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}
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//Some devices send rotation after translation in one longer report
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//1, while their layout (or the fallback, which has no descriptor)
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//puts rotation in a report of its own: read it from report 1 too.
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if (id == 1 && payload.size() >= 12
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&& m_layout.axes[3].isValid() && m_layout.axes[3].report_id != 1) {
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for (int a = 3; a < 6; ++a) {
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const Field &f = m_layout.axes[a];
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int value = 0;
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if (extract(payload, 48 + f.bit_offset, f.bit_size, f.logical_min < 0, &value)) {
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m_axes[a] = scaled(f, value);
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}
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}
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}
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QSet<int> down;
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bool buttons_in_report = false;
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for (int b = 0; b < m_layout.buttons.size(); ++b)
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{
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const Field &f = m_layout.buttons.at(b);
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int value = 0;
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if (f.isValid() && f.report_id == id
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&& extract(payload, f.bit_offset, f.bit_size, false, &value)) {
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buttons_in_report = true;
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if (value) {
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down.insert(b);
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}
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}
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}
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if (!buttons_in_report && m_layout.numbered_reports && id == REPORT_BUTTON_LIST)
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{
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buttons_in_report = true;
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for (int offset = 0; offset + 1 < payload.size(); offset += 2) {
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const int number = static_cast<quint8>(payload.at(offset))
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| static_cast<quint8>(payload.at(offset + 1)) << 8;
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//0 means no button, so the numbers start at 1: count from
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//0 like the Button page and spacenavd do.
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if (number) {
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down.insert(number - 1);
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}
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}
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}
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if (buttons_in_report)
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{
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for (int b : down) {
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if (!m_down.contains(b)) {
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result.pressed.append(b);
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}
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}
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std::sort(result.pressed.begin(), result.pressed.end());
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m_down = down;
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}
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if (result.motion) {
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result.sample.x = m_axes[0];
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result.sample.y = m_axes[1];
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result.sample.z = m_axes[2];
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result.sample.rx = m_axes[3];
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result.sample.ry = m_axes[4];
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result.sample.rz = m_axes[5];
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}
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return result;
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}
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