797 lines
27 KiB
C++
797 lines
27 KiB
C++
/*
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* Copyright (C) 2010 The Android Open Source Project
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* Copyright (C) 2012-2015, The Linux Foundation. All rights reserved.
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*
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* Not a Contribution, Apache license notifications and license are
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* retained for attribution purposes only.
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#define DEBUG 0
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#include <fcntl.h>
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#include <linux/msm_mdp.h>
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#include <video/msm_hdmi_modes.h>
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#include <linux/fb.h>
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#include <sys/ioctl.h>
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#include <cutils/properties.h>
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#include "hwc_utils.h"
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#include "hdmi.h"
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#include "overlayUtils.h"
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#include "overlay.h"
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#include "qd_utils.h"
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using namespace android;
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using namespace qdutils;
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namespace qhwc {
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#define UNKNOWN_STRING "unknown"
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#define SPD_NAME_LENGTH 16
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/* The array gEDIDData contains a list of modes currently
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* supported by HDMI and display, and modes that are not
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* supported i.e. interlaced modes.
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* In order to add support for a new mode, the mode must be
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* appended to the end of the array.
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*
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* Each new entry must contain the following:
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* -Mode: a video format defined in msm_hdmi_modes.h
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* -Width: x resolution for the mode
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* -Height: y resolution for the mode
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* -FPS: the frame rate for the mode
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* -Mode Order: the priority for the new mode that is used when determining
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* the best mode when the HDMI display is connected.
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*/
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EDIDData gEDIDData [] = {
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EDIDData(HDMI_VFRMT_1440x480i60_4_3, 1440, 480, 60, 1),
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EDIDData(HDMI_VFRMT_1440x480i60_16_9, 1440, 480, 60, 2),
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EDIDData(HDMI_VFRMT_1440x576i50_4_3, 1440, 576, 50, 3),
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EDIDData(HDMI_VFRMT_1440x576i50_16_9, 1440, 576, 50, 4),
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EDIDData(HDMI_VFRMT_1920x1080i60_16_9, 1920, 1080, 60, 5),
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EDIDData(HDMI_VFRMT_640x480p60_4_3, 640, 480, 60, 6),
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EDIDData(HDMI_VFRMT_720x480p60_4_3, 720, 480, 60, 7),
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EDIDData(HDMI_VFRMT_720x480p60_16_9, 720, 480, 60, 8),
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EDIDData(HDMI_VFRMT_720x576p50_4_3, 720, 576, 50, 9),
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EDIDData(HDMI_VFRMT_720x576p50_16_9, 720, 576, 50, 10),
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EDIDData(HDMI_VFRMT_800x600p60_4_3, 800, 600, 60, 11),
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EDIDData(HDMI_VFRMT_848x480p60_16_9, 848, 480, 60, 12),
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EDIDData(HDMI_VFRMT_1024x768p60_4_3, 1024, 768, 60, 13),
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EDIDData(HDMI_VFRMT_1280x1024p60_5_4, 1280, 1024, 60, 14),
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EDIDData(HDMI_VFRMT_1280x720p50_16_9, 1280, 720, 50, 15),
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EDIDData(HDMI_VFRMT_1280x720p60_16_9, 1280, 720, 60, 16),
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EDIDData(HDMI_VFRMT_1280x800p60_16_10, 1280, 800, 60, 17),
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EDIDData(HDMI_VFRMT_1280x960p60_4_3, 1280, 960, 60, 18),
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EDIDData(HDMI_VFRMT_1360x768p60_16_9, 1360, 768, 60, 19),
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EDIDData(HDMI_VFRMT_1366x768p60_16_10, 1366, 768, 60, 20),
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EDIDData(HDMI_VFRMT_1440x900p60_16_10, 1440, 900, 60, 21),
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EDIDData(HDMI_VFRMT_1400x1050p60_4_3, 1400, 1050, 60, 22),
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EDIDData(HDMI_VFRMT_1680x1050p60_16_10, 1680, 1050, 60, 23),
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EDIDData(HDMI_VFRMT_1600x1200p60_4_3, 1600, 1200, 60, 24),
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EDIDData(HDMI_VFRMT_1920x1080p24_16_9, 1920, 1080, 24, 25),
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EDIDData(HDMI_VFRMT_1920x1080p25_16_9, 1920, 1080, 25, 26),
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EDIDData(HDMI_VFRMT_1920x1080p30_16_9, 1920, 1080, 30, 27),
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EDIDData(HDMI_VFRMT_1920x1080p50_16_9, 1920, 1080, 50, 28),
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EDIDData(HDMI_VFRMT_1920x1080p60_16_9, 1920, 1080, 60, 29),
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EDIDData(HDMI_VFRMT_1920x1200p60_16_10, 1920, 1200, 60, 30),
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EDIDData(HDMI_VFRMT_2560x1600p60_16_9, 2560, 1600, 60, 31),
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EDIDData(HDMI_VFRMT_3840x2160p24_16_9, 3840, 2160, 24, 32),
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EDIDData(HDMI_VFRMT_3840x2160p25_16_9, 3840, 2160, 25, 33),
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EDIDData(HDMI_VFRMT_3840x2160p30_16_9, 3840, 2160, 30, 34),
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EDIDData(HDMI_VFRMT_4096x2160p24_16_9, 4096, 2160, 24, 35),
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};
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// Number of modes in gEDIDData
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const int gEDIDCount = (sizeof(gEDIDData)/sizeof(gEDIDData)[0]);
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int HDMIDisplay::configure() {
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if(!openFrameBuffer()) {
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ALOGE("%s: Failed to open FB: %d", __FUNCTION__, mFbNum);
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return -1;
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}
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readCEUnderscanInfo();
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readResolution();
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/* Used for changing the resolution
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* getUserConfig will get the preferred
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* config index set thru adb shell */
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mActiveConfig = getUserConfig();
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if (mActiveConfig == -1) {
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//Get the best mode and set
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mActiveConfig = getBestConfig();
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}
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// Read the system property to determine if downscale feature is enabled.
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char value[PROPERTY_VALUE_MAX];
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mMDPDownscaleEnabled = false;
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if(property_get("sys.hwc.mdp_downscale_enabled", value, "false")
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&& !strcmp(value, "true")) {
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mMDPDownscaleEnabled = true;
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}
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// Set the mode corresponding to the active index
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mCurrentMode = mEDIDModes[mActiveConfig];
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setAttributes();
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// set system property
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property_set("hw.hdmiON", "1");
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// XXX: A debug property can be used to enable resolution change for
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// testing purposes: debug.hwc.enable_resolution_change
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mEnableResolutionChange = false;
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if(property_get("debug.hwc.enable_resolution_change", value, "false")
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&& !strcmp(value, "true")) {
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mEnableResolutionChange = true;
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}
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return 0;
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}
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void HDMIDisplay::getAttributes(uint32_t& width, uint32_t& height) {
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uint32_t fps = 0;
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getAttrForMode(width, height, fps);
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}
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int HDMIDisplay::teardown() {
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closeFrameBuffer();
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resetInfo();
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// unset system property
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property_set("hw.hdmiON", "0");
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return 0;
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}
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HDMIDisplay::HDMIDisplay():mFd(-1),
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mCurrentMode(-1), mModeCount(0), mPrimaryWidth(0), mPrimaryHeight(0),
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mUnderscanSupported(false), mMDPDownscaleEnabled(false)
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{
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memset(&mVInfo, 0, sizeof(mVInfo));
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mFbNum = qdutils::getHDMINode();
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mDisplayId = HWC_DISPLAY_EXTERNAL;
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// Update the display if HDMI is connected as primary
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if (isHDMIPrimaryDisplay()) {
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mDisplayId = HWC_DISPLAY_PRIMARY;
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}
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// Disable HPD at start if HDMI is external, it will be enabled later
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// when the display powers on
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// This helps for framework reboot or adb shell stop/start
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if (mDisplayId) {
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writeHPDOption(0);
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}
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// for HDMI - retreive all the modes supported by the driver
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if(mFbNum != -1) {
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supported_video_mode_lut =
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new msm_hdmi_mode_timing_info[HDMI_VFRMT_MAX];
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// Populate the mode table for supported modes
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MSM_HDMI_MODES_INIT_TIMINGS(supported_video_mode_lut);
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MSM_HDMI_MODES_SET_SUPP_TIMINGS(supported_video_mode_lut,
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MSM_HDMI_MODES_ALL);
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// Update the Source Product Information
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// Vendor Name
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setSPDInfo("vendor_name", "ro.product.manufacturer");
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// Product Description
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setSPDInfo("product_description", "ro.product.name");
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}
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ALOGD_IF(DEBUG, "%s mDisplayId(%d) mFbNum(%d)",
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__FUNCTION__, mDisplayId, mFbNum);
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}
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/* gets the product manufacturer and product name and writes it
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* to the sysfs node, so that the driver can get that information
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* Used to show QCOM 8974 instead of Input 1 for example
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*/
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void HDMIDisplay::setSPDInfo(const char* node, const char* property) {
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char info[PROPERTY_VALUE_MAX];
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ssize_t err = -1;
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int spdFile = openDeviceNode(node, O_RDWR);
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if (spdFile >= 0) {
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memset(info, 0, sizeof(info));
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property_get(property, info, UNKNOWN_STRING);
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ALOGD_IF(DEBUG, "In %s: %s = %s",
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__FUNCTION__, property, info);
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if (strncmp(info, UNKNOWN_STRING, SPD_NAME_LENGTH)) {
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err = write(spdFile, info, strlen(info));
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if (err <= 0) {
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ALOGE("%s: file write failed for '%s'"
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"err no = %d", __FUNCTION__, node, errno);
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}
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} else {
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ALOGD_IF(DEBUG, "%s: property_get failed for SPD %s",
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__FUNCTION__, node);
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}
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close(spdFile);
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}
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}
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void HDMIDisplay::setHPD(uint32_t value) {
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ALOGD_IF(DEBUG,"HPD enabled=%d", value);
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writeHPDOption(value);
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}
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void HDMIDisplay::setActionSafeDimension(int w, int h) {
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ALOGD_IF(DEBUG,"ActionSafe w=%d h=%d", w, h);
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char actionsafeWidth[PROPERTY_VALUE_MAX];
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char actionsafeHeight[PROPERTY_VALUE_MAX];
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snprintf(actionsafeWidth, sizeof(actionsafeWidth), "%d", w);
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property_set("persist.sys.actionsafe.width", actionsafeWidth);
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snprintf(actionsafeHeight, sizeof(actionsafeHeight), "%d", h);
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property_set("persist.sys.actionsafe.height", actionsafeHeight);
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}
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int HDMIDisplay::getModeCount() const {
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ALOGD_IF(DEBUG,"HPD mModeCount=%d", mModeCount);
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return mModeCount;
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}
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void HDMIDisplay::readCEUnderscanInfo()
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{
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int hdmiScanInfoFile = -1;
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ssize_t len = -1;
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char scanInfo[17];
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char *ce_info_str = NULL;
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char *save_ptr;
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const char token[] = ", \n";
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int ce_info = -1;
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memset(scanInfo, 0, sizeof(scanInfo));
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hdmiScanInfoFile = openDeviceNode("scan_info", O_RDONLY);
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if (hdmiScanInfoFile < 0) {
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return;
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} else {
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len = read(hdmiScanInfoFile, scanInfo, sizeof(scanInfo)-1);
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ALOGD("%s: Scan Info string: %s length = %zu",
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__FUNCTION__, scanInfo, len);
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if (len <= 0) {
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close(hdmiScanInfoFile);
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ALOGE("%s: Scan Info file empty", __FUNCTION__);
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return;
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}
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scanInfo[len] = '\0'; /* null terminate the string */
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close(hdmiScanInfoFile);
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}
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/*
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* The scan_info contains the three fields
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* PT - preferred video format
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* IT - video format
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* CE video format - containing the underscan support information
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*/
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/* PT */
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ce_info_str = strtok_r(scanInfo, token, &save_ptr);
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if (ce_info_str) {
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/* IT */
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ce_info_str = strtok_r(NULL, token, &save_ptr);
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if (ce_info_str) {
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/* CE */
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ce_info_str = strtok_r(NULL, token, &save_ptr);
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if (ce_info_str)
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ce_info = atoi(ce_info_str);
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}
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}
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if (ce_info_str) {
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// ce_info contains the underscan information
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if (ce_info == HDMI_SCAN_ALWAYS_UNDERSCANED ||
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ce_info == HDMI_SCAN_BOTH_SUPPORTED)
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// if TV supported underscan, then driver will always underscan
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// hence no need to apply action safe rectangle
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mUnderscanSupported = true;
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} else {
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ALOGE("%s: scan_info string error", __FUNCTION__);
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}
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// Store underscan support info in a system property
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const char* prop = (mUnderscanSupported) ? "1" : "0";
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property_set("hw.underscan_supported", prop);
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return;
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}
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HDMIDisplay::~HDMIDisplay()
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{
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delete [] supported_video_mode_lut;
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closeFrameBuffer();
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}
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/*
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* sets the fb_var_screeninfo from the hdmi_mode_timing_info
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*/
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void setDisplayTiming(struct fb_var_screeninfo &info,
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const msm_hdmi_mode_timing_info* mode)
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{
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info.reserved[0] = 0;
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info.reserved[1] = 0;
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info.reserved[2] = 0;
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#ifndef FB_METADATA_VIDEO_INFO_CODE_SUPPORT
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info.reserved[3] = (info.reserved[3] & 0xFFFF) |
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(mode->video_format << 16);
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#endif
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info.xoffset = 0;
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info.yoffset = 0;
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info.xres = mode->active_h;
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info.yres = mode->active_v;
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info.pixclock = (mode->pixel_freq)*1000;
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info.vmode = mode->interlaced ?
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FB_VMODE_INTERLACED : FB_VMODE_NONINTERLACED;
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info.right_margin = mode->front_porch_h;
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info.hsync_len = mode->pulse_width_h;
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info.left_margin = mode->back_porch_h;
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info.lower_margin = mode->front_porch_v;
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info.vsync_len = mode->pulse_width_v;
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info.upper_margin = mode->back_porch_v;
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}
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int HDMIDisplay::parseResolution(char* edidStr)
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{
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char delim = ',';
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int count = 0;
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char *start, *end;
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// EDIDs are string delimited by ','
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// Ex: 16,4,5,3,32,34,1
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// Parse this string to get mode(int)
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start = (char*) edidStr;
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end = &delim;
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while(*end == delim) {
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mEDIDModes[count] = (int) strtol(start, &end, 10);
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start = end+1;
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count++;
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}
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ALOGD_IF(DEBUG, "In %s: count = %d", __FUNCTION__, count);
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for (int i = 0; i < count; i++)
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ALOGD_IF(DEBUG, "Mode[%d] = %d", i, mEDIDModes[i]);
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return count;
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}
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bool HDMIDisplay::readResolution()
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{
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ssize_t len = -1;
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char edidStr[128] = {'\0'};
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int hdmiEDIDFile = openDeviceNode("edid_modes", O_RDONLY);
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if (hdmiEDIDFile < 0) {
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return false;
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} else {
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len = read(hdmiEDIDFile, edidStr, sizeof(edidStr)-1);
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ALOGD_IF(DEBUG, "%s: EDID string: %s length = %zu",
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__FUNCTION__, edidStr, len);
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if (len <= 0) {
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ALOGE("%s: edid_modes file empty", __FUNCTION__);
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edidStr[0] = '\0';
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}
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else {
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while (len > 1 && isspace(edidStr[len-1])) {
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--len;
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}
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edidStr[len] = '\0';
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}
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close(hdmiEDIDFile);
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}
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if(len > 0) {
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// Get EDID modes from the EDID strings
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mModeCount = parseResolution(edidStr);
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ALOGD_IF(DEBUG, "%s: mModeCount = %d", __FUNCTION__,
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mModeCount);
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}
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return (len > 0);
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}
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bool HDMIDisplay::openFrameBuffer()
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{
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if (mFd == -1) {
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char strDevPath[MAX_SYSFS_FILE_PATH];
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snprintf(strDevPath, MAX_SYSFS_FILE_PATH, "/dev/graphics/fb%d", mFbNum);
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mFd = open(strDevPath, O_RDWR);
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if (mFd < 0)
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ALOGE("%s: %s is not available", __FUNCTION__, strDevPath);
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}
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return (mFd > 0);
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}
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bool HDMIDisplay::closeFrameBuffer()
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{
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int ret = 0;
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if(mFd >= 0) {
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ret = close(mFd);
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mFd = -1;
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}
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return (ret == 0);
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}
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// clears the vinfo, edid, best modes
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void HDMIDisplay::resetInfo()
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{
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memset(&mVInfo, 0, sizeof(mVInfo));
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memset(mEDIDModes, 0, sizeof(mEDIDModes));
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mModeCount = 0;
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mCurrentMode = -1;
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mUnderscanSupported = false;
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mXres = 0;
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mYres = 0;
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mVsyncPeriod = 0;
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mMDPScalingMode = false;
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// Reset the underscan supported system property
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const char* prop = "0";
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property_set("hw.underscan_supported", prop);
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}
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int HDMIDisplay::getModeOrder(int mode)
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{
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for (int dataIndex = 0; dataIndex < gEDIDCount; dataIndex++) {
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if (gEDIDData[dataIndex].mMode == mode) {
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return gEDIDData[dataIndex].mModeOrder;
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}
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}
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ALOGE("%s Mode not found: %d", __FUNCTION__, mode);
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return -1;
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}
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/// Returns the index of the user mode set(if any) using adb shell
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int HDMIDisplay::getUserConfig() {
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/* Based on the property set the resolution */
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char property_value[PROPERTY_VALUE_MAX];
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property_get("hw.hdmi.resolution", property_value, "-1");
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int mode = atoi(property_value);
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// We dont support interlaced modes
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if(isValidMode(mode) && !isInterlacedMode(mode)) {
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ALOGD_IF(DEBUG, "%s: setting the HDMI mode = %d", __FUNCTION__, mode);
|
|
return getModeIndex(mode);
|
|
}
|
|
return -1;
|
|
}
|
|
|
|
// Get the index of the best mode for the current HD TV
|
|
int HDMIDisplay::getBestConfig() {
|
|
int bestOrder = 0;
|
|
int bestMode = HDMI_VFRMT_640x480p60_4_3;
|
|
int bestModeIndex = -1;
|
|
// for all the edid read, get the best mode
|
|
for(int i = 0; i < mModeCount; i++) {
|
|
int mode = mEDIDModes[i];
|
|
int order = getModeOrder(mode);
|
|
if (order > bestOrder) {
|
|
bestOrder = order;
|
|
bestMode = mode;
|
|
bestModeIndex = i;
|
|
}
|
|
}
|
|
// If we fail to read from EDID when HDMI is connected, then
|
|
// mModeCount will be 0 and bestModeIndex will be invalid.
|
|
// In this case, we populate the mEDIDModes structure with
|
|
// a default mode at index 0.
|
|
if (bestModeIndex == -1) {
|
|
bestModeIndex = 0;
|
|
mModeCount = 1;
|
|
mEDIDModes[bestModeIndex] = bestMode;
|
|
}
|
|
return bestModeIndex;
|
|
}
|
|
|
|
inline bool HDMIDisplay::isValidMode(int ID)
|
|
{
|
|
bool valid = false;
|
|
for (int i = 0; i < mModeCount; i++) {
|
|
if(ID == mEDIDModes[i]) {
|
|
valid = true;
|
|
break;
|
|
}
|
|
}
|
|
return valid;
|
|
}
|
|
|
|
// returns true if the mode(ID) is interlaced mode format
|
|
bool HDMIDisplay::isInterlacedMode(int ID) {
|
|
bool interlaced = false;
|
|
switch(ID) {
|
|
case HDMI_VFRMT_1440x480i60_4_3:
|
|
case HDMI_VFRMT_1440x480i60_16_9:
|
|
case HDMI_VFRMT_1440x576i50_4_3:
|
|
case HDMI_VFRMT_1440x576i50_16_9:
|
|
case HDMI_VFRMT_1920x1080i60_16_9:
|
|
interlaced = true;
|
|
break;
|
|
default:
|
|
interlaced = false;
|
|
break;
|
|
}
|
|
return interlaced;
|
|
}
|
|
|
|
// Does a put_vscreen info on the HDMI interface which will update
|
|
// the configuration (resolution, timing info) to match mCurrentMode
|
|
void HDMIDisplay::activateDisplay()
|
|
{
|
|
int ret = 0;
|
|
ret = ioctl(mFd, FBIOGET_VSCREENINFO, &mVInfo);
|
|
if(ret < 0) {
|
|
ALOGD("In %s: FBIOGET_VSCREENINFO failed Err Str = %s", __FUNCTION__,
|
|
strerror(errno));
|
|
}
|
|
ALOGD_IF(DEBUG, "%s: GET Info<ID=%d %dx%d (%d,%d,%d),"
|
|
"(%d,%d,%d) %dMHz>", __FUNCTION__,
|
|
mVInfo.reserved[3], mVInfo.xres, mVInfo.yres,
|
|
mVInfo.right_margin, mVInfo.hsync_len, mVInfo.left_margin,
|
|
mVInfo.lower_margin, mVInfo.vsync_len, mVInfo.upper_margin,
|
|
mVInfo.pixclock/1000/1000);
|
|
|
|
const struct msm_hdmi_mode_timing_info *mode =
|
|
&supported_video_mode_lut[0];
|
|
for (unsigned int i = 0; i < HDMI_VFRMT_MAX; ++i) {
|
|
const struct msm_hdmi_mode_timing_info *cur =
|
|
&supported_video_mode_lut[i];
|
|
if (cur->video_format == (uint32_t)mCurrentMode) {
|
|
mode = cur;
|
|
break;
|
|
}
|
|
}
|
|
setDisplayTiming(mVInfo, mode);
|
|
ALOGD_IF(DEBUG, "%s: SET Info<ID=%d => Info<ID=%d %dx %d"
|
|
"(%d,%d,%d), (%d,%d,%d) %dMHz>", __FUNCTION__, mCurrentMode,
|
|
mode->video_format, mVInfo.xres, mVInfo.yres,
|
|
mVInfo.right_margin, mVInfo.hsync_len, mVInfo.left_margin,
|
|
mVInfo.lower_margin, mVInfo.vsync_len, mVInfo.upper_margin,
|
|
mVInfo.pixclock/1000/1000);
|
|
#ifdef FB_METADATA_VIDEO_INFO_CODE_SUPPORT
|
|
struct msmfb_metadata metadata;
|
|
memset(&metadata, 0 , sizeof(metadata));
|
|
metadata.op = metadata_op_vic;
|
|
metadata.data.video_info_code = mode->video_format;
|
|
if (ioctl(mFd, MSMFB_METADATA_SET, &metadata) == -1) {
|
|
ALOGD("In %s: MSMFB_METADATA_SET failed Err Str = %s",
|
|
__FUNCTION__, strerror(errno));
|
|
}
|
|
#endif
|
|
mVInfo.activate = FB_ACTIVATE_NOW | FB_ACTIVATE_ALL | FB_ACTIVATE_FORCE;
|
|
ret = ioctl(mFd, FBIOPUT_VSCREENINFO, &mVInfo);
|
|
if(ret < 0) {
|
|
ALOGD("In %s: FBIOPUT_VSCREENINFO failed Err Str = %s",
|
|
__FUNCTION__, strerror(errno));
|
|
}
|
|
}
|
|
|
|
bool HDMIDisplay::writeHPDOption(int userOption) const
|
|
{
|
|
bool ret = true;
|
|
if(mFbNum != -1) {
|
|
int hdmiHPDFile = openDeviceNode("hpd", O_RDWR);
|
|
if (hdmiHPDFile >= 0) {
|
|
ssize_t err = -1;
|
|
ALOGD_IF(DEBUG, "%s: option = %d",
|
|
__FUNCTION__, userOption);
|
|
if(userOption)
|
|
err = write(hdmiHPDFile, "1", 2);
|
|
else
|
|
err = write(hdmiHPDFile, "0" , 2);
|
|
if (err <= 0) {
|
|
ALOGE("%s: file write failed 'hpd'", __FUNCTION__);
|
|
ret = false;
|
|
}
|
|
close(hdmiHPDFile);
|
|
}
|
|
}
|
|
return ret;
|
|
}
|
|
|
|
|
|
void HDMIDisplay::setAttributes() {
|
|
uint32_t fps = 0;
|
|
// Always set dpyAttr res to mVInfo res
|
|
getAttrForMode(mXres, mYres, fps);
|
|
mMDPScalingMode = false;
|
|
|
|
if(overlay::Overlay::getInstance()->isUIScalingOnExternalSupported()
|
|
&& mMDPDownscaleEnabled) {
|
|
// if primary resolution is more than the hdmi resolution
|
|
// configure dpy attr to primary resolution and set MDP
|
|
// scaling mode
|
|
// Restrict this upto 1080p resolution max, if target does not
|
|
// support source split feature.
|
|
uint32_t primaryArea = mPrimaryWidth * mPrimaryHeight;
|
|
if(((primaryArea) > (mXres * mYres)) &&
|
|
(((primaryArea) <= SUPPORTED_DOWNSCALE_AREA) ||
|
|
qdutils::MDPVersion::getInstance().isSrcSplit())) {
|
|
// tmpW and tmpH will hold the primary dimensions before we
|
|
// update the aspect ratio if necessary.
|
|
int tmpW = mPrimaryWidth;
|
|
int tmpH = mPrimaryHeight;
|
|
// HDMI is always in landscape, so always assign the higher
|
|
// dimension to hdmi's xres
|
|
if(mPrimaryHeight > mPrimaryWidth) {
|
|
tmpW = mPrimaryHeight;
|
|
tmpH = mPrimaryWidth;
|
|
}
|
|
// The aspect ratios of the external and primary displays
|
|
// can be different. As a result, directly assigning primary
|
|
// resolution could lead to an incorrect final image.
|
|
// We get around this by calculating a new resolution by
|
|
// keeping aspect ratio intact.
|
|
hwc_rect r = {0, 0, 0, 0};
|
|
qdutils::getAspectRatioPosition(tmpW, tmpH, mXres, mYres, r);
|
|
uint32_t newExtW = r.right - r.left;
|
|
uint32_t newExtH = r.bottom - r.top;
|
|
uint32_t alignedExtW;
|
|
uint32_t alignedExtH;
|
|
// On 8994 and below targets MDP supports only 4X downscaling,
|
|
// Restricting selected external resolution to be exactly 4X
|
|
// greater resolution than actual external resolution
|
|
uint32_t maxMDPDownScale =
|
|
qdutils::MDPVersion::getInstance().getMaxMDPDownscale();
|
|
if((mXres * mYres * maxMDPDownScale) < (newExtW * newExtH)) {
|
|
float upScaleFactor = (float)maxMDPDownScale / 2.0f;
|
|
newExtW = (int)((float)mXres * upScaleFactor);
|
|
newExtH = (int)((float)mYres * upScaleFactor);
|
|
}
|
|
// Align it down so that the new aligned resolution does not
|
|
// exceed the maxMDPDownscale factor
|
|
alignedExtW = overlay::utils::aligndown(newExtW, 4);
|
|
alignedExtH = overlay::utils::aligndown(newExtH, 4);
|
|
mXres = alignedExtW;
|
|
mYres = alignedExtH;
|
|
// Set External Display MDP Downscale mode indicator
|
|
mMDPScalingMode = true;
|
|
}
|
|
}
|
|
ALOGD_IF(DEBUG_MDPDOWNSCALE, "Selected external resolution [%d X %d] "
|
|
"maxMDPDownScale %d mMDPScalingMode %d srcSplitEnabled %d "
|
|
"MDPDownscale feature %d",
|
|
mXres, mYres,
|
|
qdutils::MDPVersion::getInstance().getMaxMDPDownscale(),
|
|
mMDPScalingMode, qdutils::MDPVersion::getInstance().isSrcSplit(),
|
|
mMDPDownscaleEnabled);
|
|
mVsyncPeriod = (int) 1000000000l / fps;
|
|
ALOGD_IF(DEBUG, "%s xres=%d, yres=%d", __FUNCTION__, mXres, mYres);
|
|
}
|
|
|
|
void HDMIDisplay::getAttrForMode(uint32_t& width, uint32_t& height,
|
|
uint32_t& fps) {
|
|
for (int dataIndex = 0; dataIndex < gEDIDCount; dataIndex++) {
|
|
if (gEDIDData[dataIndex].mMode == mCurrentMode) {
|
|
width = gEDIDData[dataIndex].mWidth;
|
|
height = gEDIDData[dataIndex].mHeight;
|
|
fps = gEDIDData[dataIndex].mFps;
|
|
return;
|
|
}
|
|
}
|
|
ALOGE("%s Unable to get attributes for %d", __FUNCTION__, mCurrentMode);
|
|
}
|
|
|
|
/* returns the fd related to the node specified*/
|
|
int HDMIDisplay::openDeviceNode(const char* node, int fileMode) const {
|
|
char sysFsFilePath[MAX_SYSFS_FILE_PATH];
|
|
memset(sysFsFilePath, 0, sizeof(sysFsFilePath));
|
|
snprintf(sysFsFilePath , sizeof(sysFsFilePath),
|
|
"/sys/devices/virtual/graphics/fb%d/%s",
|
|
mFbNum, node);
|
|
|
|
int fd = open(sysFsFilePath, fileMode, 0);
|
|
|
|
if (fd < 0) {
|
|
ALOGE("%s: file '%s' not found : ret = %d err str: %s",
|
|
__FUNCTION__, sysFsFilePath, fd, strerror(errno));
|
|
}
|
|
return fd;
|
|
}
|
|
|
|
bool HDMIDisplay::isHDMIPrimaryDisplay() {
|
|
return (mFbNum == HWC_DISPLAY_PRIMARY);
|
|
}
|
|
|
|
int HDMIDisplay::getConnectedState() {
|
|
int ret = -1;
|
|
int mFbNum = qdutils::getHDMINode();
|
|
int connectedNode = openDeviceNode("connected", O_RDONLY);
|
|
if(connectedNode >= 0) {
|
|
char opStr[4];
|
|
ssize_t bytesRead = read(connectedNode, opStr, sizeof(opStr) - 1);
|
|
if(bytesRead > 0) {
|
|
opStr[bytesRead] = '\0';
|
|
ret = atoi(opStr);
|
|
ALOGD_IF(DEBUG, "%s: Read %d from connected", __FUNCTION__, ret);
|
|
} else if(bytesRead == 0) {
|
|
ALOGE("%s: HDMI connected node empty", __FUNCTION__);
|
|
} else {
|
|
ALOGE("%s: Read from HDMI connected node failed with error %s",
|
|
__FUNCTION__, strerror(errno));
|
|
}
|
|
close(connectedNode);
|
|
} else {
|
|
ALOGD("%s: /sys/class/graphics/fb%d/connected could not be opened : %s",
|
|
__FUNCTION__, mFbNum, strerror(errno));
|
|
}
|
|
return ret;
|
|
}
|
|
|
|
void HDMIDisplay::setPrimaryAttributes(uint32_t primaryWidth,
|
|
uint32_t primaryHeight) {
|
|
mPrimaryHeight = primaryHeight;
|
|
mPrimaryWidth = primaryWidth;
|
|
}
|
|
|
|
int HDMIDisplay::setActiveConfig(int newConfig) {
|
|
if(newConfig < 0 || newConfig > mModeCount) {
|
|
ALOGE("%s Invalid configuration %d", __FUNCTION__, newConfig);
|
|
return -EINVAL;
|
|
}
|
|
|
|
// XXX: Currently, we only support a change in frame rate.
|
|
// We need to validate the new config before proceeding.
|
|
if (!isValidConfigChange(newConfig)) {
|
|
ALOGE("%s Invalid configuration %d", __FUNCTION__, newConfig);
|
|
return -EINVAL;
|
|
}
|
|
|
|
mCurrentMode = mEDIDModes[newConfig];
|
|
mActiveConfig = newConfig;
|
|
activateDisplay();
|
|
ALOGD("%s config(%d) mode(%d)", __FUNCTION__, mActiveConfig, mCurrentMode);
|
|
return 0;
|
|
}
|
|
|
|
// returns false if the xres or yres of the new config do
|
|
// not match the current config
|
|
bool HDMIDisplay::isValidConfigChange(int newConfig) {
|
|
int newMode = mEDIDModes[newConfig];
|
|
uint32_t width = 0, height = 0, refresh = 0;
|
|
getAttrForConfig(newConfig, width, height, refresh);
|
|
return ((mXres == width) && (mYres == height)) || mEnableResolutionChange;
|
|
}
|
|
|
|
int HDMIDisplay::getModeIndex(int mode) {
|
|
int modeIndex = -1;
|
|
for(int i = 0; i < mModeCount; i++) {
|
|
if(mode == mEDIDModes[i]) {
|
|
modeIndex = i;
|
|
break;
|
|
}
|
|
}
|
|
return modeIndex;
|
|
}
|
|
|
|
int HDMIDisplay::getAttrForConfig(int config, uint32_t& xres,
|
|
uint32_t& yres, uint32_t& refresh) const {
|
|
if(config < 0 || config > mModeCount) {
|
|
ALOGE("%s Invalid configuration %d", __FUNCTION__, config);
|
|
return -EINVAL;
|
|
}
|
|
int mode = mEDIDModes[config];
|
|
uint32_t fps = 0;
|
|
// Retrieve the mode attributes from gEDIDData
|
|
for (int dataIndex = 0; dataIndex < gEDIDCount; dataIndex++) {
|
|
if (gEDIDData[dataIndex].mMode == mode) {
|
|
xres = gEDIDData[dataIndex].mWidth;
|
|
yres = gEDIDData[dataIndex].mHeight;
|
|
fps = gEDIDData[dataIndex].mFps;
|
|
}
|
|
}
|
|
refresh = (uint32_t) 1000000000l / fps;
|
|
ALOGD_IF(DEBUG, "%s xres(%d) yres(%d) fps(%d) refresh(%d)", __FUNCTION__,
|
|
xres, yres, fps, refresh);
|
|
return 0;
|
|
}
|
|
|
|
int HDMIDisplay::getDisplayConfigs(uint32_t* configs,
|
|
size_t* numConfigs) const {
|
|
if (*numConfigs <= 0) {
|
|
ALOGE("%s Invalid number of configs (%zu)", __FUNCTION__, *numConfigs);
|
|
return -EINVAL;
|
|
}
|
|
*numConfigs = mModeCount;
|
|
for (int configIndex = 0; configIndex < mModeCount; configIndex++) {
|
|
configs[configIndex] = (uint32_t)configIndex;
|
|
}
|
|
return 0;
|
|
}
|
|
|
|
};
|