2021-09-05 07:44:13 -04:00
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/*
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* Copyright (c) 2018-2021, The Linux Foundation. All rights reserved.
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*
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* Redistribution and use in source and binary forms, with or without
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* modification, are permitted provided that the following conditions are
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* met:
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* * Redistributions of source code must retain the above copyright
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* notice, this list of conditions and the following disclaimer.
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* * Redistributions in binary form must reproduce the above
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* copyright notice, this list of conditions and the following
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* disclaimer in the documentation and/or other materials provided
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* with the distribution.
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* * Neither the name of The Linux Foundation nor the names of its
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* contributors may be used to endorse or promote products derived
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* from this software without specific prior written permission.
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*
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* THIS SOFTWARE IS PROVIDED "AS IS" AND ANY EXPRESS OR IMPLIED
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* WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
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* MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NON-INFRINGEMENT
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* ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS
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* BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
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* CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
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* SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR
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* BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY,
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* WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE
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* OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN
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* IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*/
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#define LOG_TAG "vendor.qti.vibrator"
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#include <cutils/properties.h>
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#include <dirent.h>
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#include <inttypes.h>
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#include <linux/input.h>
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#include <log/log.h>
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#include <string.h>
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#include <sys/ioctl.h>
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#include <thread>
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#include "include/Vibrator.h"
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namespace aidl {
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namespace android {
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namespace hardware {
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namespace vibrator {
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#define STRONG_MAGNITUDE 0x7fff
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#define MEDIUM_MAGNITUDE 0x5fff
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#define LIGHT_MAGNITUDE 0x3fff
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#define INVALID_VALUE -1
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#define CUSTOM_DATA_LEN 3
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#define NAME_BUF_SIZE 32
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#define MSM_CPU_LAHAINA 415
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#define APQ_CPU_LAHAINA 439
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#define MSM_CPU_SHIMA 450
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#define MSM_CPU_SM8325 501
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#define APQ_CPU_SM8325P 502
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#define MSM_CPU_YUPIK 475
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#define test_bit(bit, array) ((array)[(bit)/8] & (1<<((bit)%8)))
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InputFFDevice::InputFFDevice()
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{
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DIR *dp;
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FILE *fp = NULL;
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struct dirent *dir;
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uint8_t ffBitmask[FF_CNT / 8];
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char devicename[PATH_MAX];
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const char *INPUT_DIR = "/dev/input/";
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char name[NAME_BUF_SIZE];
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int fd, ret;
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int soc = property_get_int32("ro.vendor.qti.soc_id", -1);
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mVibraFd = INVALID_VALUE;
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mSupportGain = false;
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mSupportEffects = false;
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mSupportExternalControl = false;
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mCurrAppId = INVALID_VALUE;
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mCurrMagnitude = 0x7fff;
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mInExternalControl = false;
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dp = opendir(INPUT_DIR);
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if (!dp) {
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ALOGE("open %s failed, errno = %d", INPUT_DIR, errno);
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return;
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}
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memset(ffBitmask, 0, sizeof(ffBitmask));
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while ((dir = readdir(dp)) != NULL){
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if (dir->d_name[0] == '.' &&
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(dir->d_name[1] == '\0' ||
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(dir->d_name[1] == '.' && dir->d_name[2] == '\0')))
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continue;
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snprintf(devicename, PATH_MAX, "%s%s", INPUT_DIR, dir->d_name);
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fd = TEMP_FAILURE_RETRY(open(devicename, O_RDWR));
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if (fd < 0) {
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ALOGE("open %s failed, errno = %d", devicename, errno);
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continue;
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}
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ret = TEMP_FAILURE_RETRY(ioctl(fd, EVIOCGNAME(sizeof(name)), name));
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if (ret == -1) {
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ALOGE("get input device name %s failed, errno = %d\n", devicename, errno);
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close(fd);
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continue;
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}
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2021-09-05 08:18:35 -04:00
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if (strcmp(name, "qcom-hv-haptics") && strcmp(name, "qti-haptics")
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&& strcmp(name, "aw8697_haptic")) {
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2021-09-05 07:44:13 -04:00
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ALOGD("not a qcom/qti haptics device\n");
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close(fd);
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continue;
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}
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ALOGI("%s is detected at %s\n", name, devicename);
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ret = TEMP_FAILURE_RETRY(ioctl(fd, EVIOCGBIT(EV_FF, sizeof(ffBitmask)), ffBitmask));
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if (ret == -1) {
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ALOGE("ioctl failed, errno = %d", errno);
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close(fd);
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continue;
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}
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if (test_bit(FF_CONSTANT, ffBitmask) ||
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test_bit(FF_PERIODIC, ffBitmask)) {
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mVibraFd = fd;
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if (test_bit(FF_CUSTOM, ffBitmask))
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mSupportEffects = true;
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if (test_bit(FF_GAIN, ffBitmask))
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mSupportGain = true;
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if (soc <= 0 && (fp = fopen("/sys/devices/soc0/soc_id", "r")) != NULL) {
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fscanf(fp, "%u", &soc);
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fclose(fp);
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}
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switch (soc) {
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case MSM_CPU_LAHAINA:
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case APQ_CPU_LAHAINA:
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case MSM_CPU_SHIMA:
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case MSM_CPU_SM8325:
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case APQ_CPU_SM8325P:
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case MSM_CPU_YUPIK:
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mSupportExternalControl = true;
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break;
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default:
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mSupportExternalControl = false;
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break;
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}
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break;
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}
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close(fd);
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}
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closedir(dp);
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}
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/** Play vibration
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*
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* @param effectId: ID of the predefined effect will be played. If effectId is valid
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* (non-negative value), the timeoutMs value will be ignored, and the
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* real playing length will be set in param@playLengtMs and returned
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* to VibratorService. If effectId is invalid, value in param@timeoutMs
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* will be used as the play length for playing a constant effect.
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* @param timeoutMs: playing length, non-zero means playing, zero means stop playing.
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* @param playLengthMs: the playing length in ms unit which will be returned to
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* VibratorService if the request is playing a predefined effect.
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* The custom_data in periodic is reused for returning the playLengthMs
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* from kernel space to userspace if the pattern is defined in kernel
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* driver. It's been defined with following format:
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* <effect-ID, play-time-in-seconds, play-time-in-milliseconds>.
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* The effect-ID is used for passing down the predefined effect to
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* kernel driver, and the rest two parameters are used for returning
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* back the real playing length from kernel driver.
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*/
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int InputFFDevice::play(int effectId, uint32_t timeoutMs, long *playLengthMs) {
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struct ff_effect effect;
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struct input_event play;
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int16_t data[CUSTOM_DATA_LEN] = {0, 0, 0};
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int ret;
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/* For QMAA compliance, return OK even if vibrator device doesn't exist */
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if (mVibraFd == INVALID_VALUE) {
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if (playLengthMs != NULL)
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*playLengthMs = 0;
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return 0;
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}
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if (timeoutMs != 0) {
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if (mCurrAppId != INVALID_VALUE) {
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ret = TEMP_FAILURE_RETRY(ioctl(mVibraFd, EVIOCRMFF, mCurrAppId));
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if (ret == -1) {
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ALOGE("ioctl EVIOCRMFF failed, errno = %d", -errno);
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goto errout;
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}
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mCurrAppId = INVALID_VALUE;
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}
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memset(&effect, 0, sizeof(effect));
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if (effectId != INVALID_VALUE) {
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data[0] = effectId;
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effect.type = FF_PERIODIC;
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effect.u.periodic.waveform = FF_CUSTOM;
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effect.u.periodic.magnitude = mCurrMagnitude;
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effect.u.periodic.custom_data = data;
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effect.u.periodic.custom_len = sizeof(int16_t) * CUSTOM_DATA_LEN;
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} else {
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effect.type = FF_CONSTANT;
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effect.u.constant.level = mCurrMagnitude;
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effect.replay.length = timeoutMs;
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}
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effect.id = mCurrAppId;
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effect.replay.delay = 0;
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ret = TEMP_FAILURE_RETRY(ioctl(mVibraFd, EVIOCSFF, &effect));
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if (ret == -1) {
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ALOGE("ioctl EVIOCSFF failed, errno = %d", -errno);
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goto errout;
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}
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mCurrAppId = effect.id;
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if (effectId != INVALID_VALUE && playLengthMs != NULL) {
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*playLengthMs = data[1] * 1000 + data[2];
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}
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play.value = 1;
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play.type = EV_FF;
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play.code = mCurrAppId;
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play.time.tv_sec = 0;
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play.time.tv_usec = 0;
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ret = TEMP_FAILURE_RETRY(write(mVibraFd, (const void*)&play, sizeof(play)));
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if (ret == -1) {
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ALOGE("write failed, errno = %d\n", -errno);
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ret = TEMP_FAILURE_RETRY(ioctl(mVibraFd, EVIOCRMFF, mCurrAppId));
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if (ret == -1)
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ALOGE("ioctl EVIOCRMFF failed, errno = %d", -errno);
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goto errout;
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}
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} else if (mCurrAppId != INVALID_VALUE) {
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ret = TEMP_FAILURE_RETRY(ioctl(mVibraFd, EVIOCRMFF, mCurrAppId));
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if (ret == -1) {
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ALOGE("ioctl EVIOCRMFF failed, errno = %d", -errno);
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goto errout;
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}
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mCurrAppId = INVALID_VALUE;
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}
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return 0;
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errout:
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mCurrAppId = INVALID_VALUE;
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return ret;
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}
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int InputFFDevice::on(int32_t timeoutMs) {
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return play(INVALID_VALUE, timeoutMs, NULL);
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}
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int InputFFDevice::off() {
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return play(INVALID_VALUE, 0, NULL);
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}
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int InputFFDevice::setAmplitude(uint8_t amplitude) {
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int tmp, ret;
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struct input_event ie;
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/* For QMAA compliance, return OK even if vibrator device doesn't exist */
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if (mVibraFd == INVALID_VALUE)
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return 0;
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tmp = amplitude * (STRONG_MAGNITUDE - LIGHT_MAGNITUDE) / 255;
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tmp += LIGHT_MAGNITUDE;
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ie.type = EV_FF;
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ie.code = FF_GAIN;
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ie.value = tmp;
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ret = TEMP_FAILURE_RETRY(write(mVibraFd, &ie, sizeof(ie)));
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if (ret == -1) {
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ALOGE("write FF_GAIN failed, errno = %d", -errno);
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return ret;
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}
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mCurrMagnitude = tmp;
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return 0;
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}
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int InputFFDevice::playEffect(int effectId, EffectStrength es, long *playLengthMs) {
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switch (es) {
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case EffectStrength::LIGHT:
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mCurrMagnitude = LIGHT_MAGNITUDE;
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break;
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case EffectStrength::MEDIUM:
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mCurrMagnitude = MEDIUM_MAGNITUDE;
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break;
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case EffectStrength::STRONG:
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mCurrMagnitude = STRONG_MAGNITUDE;
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break;
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default:
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return -1;
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}
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return play(effectId, INVALID_VALUE, playLengthMs);
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}
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ndk::ScopedAStatus Vibrator::getCapabilities(int32_t* _aidl_return) {
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*_aidl_return = IVibrator::CAP_ON_CALLBACK;
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if (ff.mSupportGain)
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*_aidl_return |= IVibrator::CAP_AMPLITUDE_CONTROL;
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if (ff.mSupportEffects)
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*_aidl_return |= IVibrator::CAP_PERFORM_CALLBACK;
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if (ff.mSupportExternalControl)
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*_aidl_return |= IVibrator::CAP_EXTERNAL_CONTROL;
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ALOGD("QTI Vibrator reporting capabilities: %d", *_aidl_return);
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return ndk::ScopedAStatus::ok();
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}
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ndk::ScopedAStatus Vibrator::off() {
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int ret;
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ALOGD("QTI Vibrator off");
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2021-09-05 07:56:57 -04:00
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ret = ff.off();
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2021-09-05 07:44:13 -04:00
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if (ret != 0)
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_SERVICE_SPECIFIC));
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return ndk::ScopedAStatus::ok();
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}
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ndk::ScopedAStatus Vibrator::on(int32_t timeoutMs,
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const std::shared_ptr<IVibratorCallback>& callback) {
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int ret;
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ALOGD("Vibrator on for timeoutMs: %d", timeoutMs);
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2021-09-05 07:56:57 -04:00
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ret = ff.on(timeoutMs);
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2021-09-05 07:44:13 -04:00
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if (ret != 0)
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_SERVICE_SPECIFIC));
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if (callback != nullptr) {
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std::thread([=] {
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ALOGD("Starting on on another thread");
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usleep(timeoutMs * 1000);
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ALOGD("Notifying on complete");
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if (!callback->onComplete().isOk()) {
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ALOGE("Failed to call onComplete");
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}
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}).detach();
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}
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return ndk::ScopedAStatus::ok();
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}
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ndk::ScopedAStatus Vibrator::perform(Effect effect, EffectStrength es, const std::shared_ptr<IVibratorCallback>& callback, int32_t* _aidl_return) {
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long playLengthMs;
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int ret;
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ALOGD("Vibrator perform effect %d", effect);
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if (effect < Effect::CLICK ||
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effect > Effect::HEAVY_CLICK)
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_UNSUPPORTED_OPERATION));
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if (es != EffectStrength::LIGHT && es != EffectStrength::MEDIUM && es != EffectStrength::STRONG)
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_UNSUPPORTED_OPERATION));
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ret = ff.playEffect((static_cast<int>(effect)), es, &playLengthMs);
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if (ret != 0)
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_SERVICE_SPECIFIC));
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if (callback != nullptr) {
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std::thread([=] {
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ALOGD("Starting perform on another thread");
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usleep(playLengthMs * 1000);
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ALOGD("Notifying perform complete");
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callback->onComplete();
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}).detach();
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}
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*_aidl_return = playLengthMs;
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return ndk::ScopedAStatus::ok();
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}
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ndk::ScopedAStatus Vibrator::getSupportedEffects(std::vector<Effect>* _aidl_return) {
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*_aidl_return = {Effect::CLICK, Effect::DOUBLE_CLICK, Effect::TICK, Effect::THUD,
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Effect::POP, Effect::HEAVY_CLICK};
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return ndk::ScopedAStatus::ok();
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}
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ndk::ScopedAStatus Vibrator::setAmplitude(float amplitude) {
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uint8_t tmp;
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int ret;
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ALOGD("Vibrator set amplitude: %f", amplitude);
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if (amplitude <= 0.0f || amplitude > 1.0f)
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_ILLEGAL_ARGUMENT));
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if (ff.mInExternalControl)
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_UNSUPPORTED_OPERATION));
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tmp = (uint8_t)(amplitude * 0xff);
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ret = ff.setAmplitude(tmp);
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if (ret != 0)
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_SERVICE_SPECIFIC));
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return ndk::ScopedAStatus::ok();
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}
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ndk::ScopedAStatus Vibrator::setExternalControl(bool enabled) {
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ALOGD("Vibrator set external control: %d", enabled);
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if (!ff.mSupportExternalControl)
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_UNSUPPORTED_OPERATION));
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ff.mInExternalControl = enabled;
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return ndk::ScopedAStatus::ok();
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}
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ndk::ScopedAStatus Vibrator::getCompositionDelayMax(int32_t* maxDelayMs __unused) {
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_UNSUPPORTED_OPERATION));
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}
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ndk::ScopedAStatus Vibrator::getCompositionSizeMax(int32_t* maxSize __unused) {
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_UNSUPPORTED_OPERATION));
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}
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ndk::ScopedAStatus Vibrator::getSupportedPrimitives(std::vector<CompositePrimitive>* supported __unused) {
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_UNSUPPORTED_OPERATION));
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}
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ndk::ScopedAStatus Vibrator::getPrimitiveDuration(CompositePrimitive primitive __unused,
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int32_t* durationMs __unused) {
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_UNSUPPORTED_OPERATION));
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}
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ndk::ScopedAStatus Vibrator::compose(const std::vector<CompositeEffect>& composite __unused,
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const std::shared_ptr<IVibratorCallback>& callback __unused) {
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_UNSUPPORTED_OPERATION));
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}
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ndk::ScopedAStatus Vibrator::getSupportedAlwaysOnEffects(std::vector<Effect>* _aidl_return __unused) {
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_UNSUPPORTED_OPERATION));
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}
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ndk::ScopedAStatus Vibrator::alwaysOnEnable(int32_t id __unused, Effect effect __unused,
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EffectStrength strength __unused) {
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_UNSUPPORTED_OPERATION));
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}
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ndk::ScopedAStatus Vibrator::alwaysOnDisable(int32_t id __unused) {
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return ndk::ScopedAStatus(AStatus_fromExceptionCode(EX_UNSUPPORTED_OPERATION));
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}
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} // namespace vibrator
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} // namespace hardware
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} // namespace android
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} // namespace aidl
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