summaryrefslogtreecommitdiff
path: root/utils/raspberrypi/ctt/ctt_lux.py
AgeCommit message (Collapse)Author
2022-07-27raspberrypi: Update Copyright statement in all Raspberry Pi source filesNaushir Patuck
s/Raspberry Pi (Trading) Limited/Raspberry Pi Ltd/ to reflect the new Raspberry Pi entity name. Signed-off-by: Naushir Patuck <naush@raspberrypi.com> Reviewed-by: Laurent Pinchart <laurent.pinchart@ideasonboard.com> Signed-off-by: Laurent Pinchart <laurent.pinchart@ideasonboard.com>
2020-05-13utils: raspberrypi: ctt: Fix pycodestyle E302Laurent Pinchart
E302 expected 2 blank lines, found 0 Note that issues are still flagged, due to the use of docstrings as multi-lines comments. This will be addressed separately. Signed-off-by: Laurent Pinchart <laurent.pinchart@ideasonboard.com> Reviewed-by: Kieran Bingham <kieran.bingham@ideasonboard.com> Reviewed-by: David Plowman <david.plowman@raspberrypi.com>
2020-05-13utils: raspberrypi: ctt: Fix pycodestyle E305Laurent Pinchart
E305 expected 2 blank lines after class or function definition Signed-off-by: Laurent Pinchart <laurent.pinchart@ideasonboard.com> Reviewed-by: Kieran Bingham <kieran.bingham@ideasonboard.com> Reviewed-by: David Plowman <david.plowman@raspberrypi.com>
2020-05-13utils: raspberrypi: ctt: Fix pycodestyle E231Laurent Pinchart
E231 missing whitespace after ',' E231 missing whitespace after ':' Signed-off-by: Laurent Pinchart <laurent.pinchart@ideasonboard.com> Reviewed-by: Kieran Bingham <kieran.bingham@ideasonboard.com> Reviewed-by: David Plowman <david.plowman@raspberrypi.com>
2020-05-11libcamera: utils: Raspberry Pi Camera Tuning ToolNaushir Patuck
Initial implementation of the Raspberry Pi (BCM2835) Camera Tuning Tool. All code is licensed under the BSD-2-Clause terms. Copyright (c) 2019-2020 Raspberry Pi Trading Ltd. Signed-off-by: Naushir Patuck <naush@raspberrypi.com> Acked-by: Laurent Pinchart <laurent.pinchart@ideasonboard.com> Signed-off-by: Laurent Pinchart <laurent.pinchart@ideasonboard.com>
id='n143' href='#n143'>143 144 145 146 147 148 149 150 151 152 153 154 155 156 157 158 159 160 161 162 163 164 165 166 167 168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 192 193 194 195 196 197 198 199 200 201 202 203 204 205 206 207 208 209 210 211 212 213 214 215 216 217 218 219 220 221 222 223 224 225 226 227 228 229 230 231 232 233 234 235 236 237 238 239 240 241 242 243 244 245 246 247 248 249 250 251 252 253 254 255 256 257 258 259 260 261 262 263 264 265 266 267 268 269 270 271 272 273 274 275 276 277 278 279 280 281 282 283 284 285 286 287 288 289 290 291 292 293 294 295 296 297 298 299 300 301 302 303 304 305 306 307 308 309 310 311 312 313 314 315 316 317 318 319 320 321 322 323 324 325 326 327 328 329 330 331 332 333 334 335 336 337 338 339 340 341 342 343 344 345 346 347 348 349 350 351 352 353 354 355 356 357 358 359 360 361 362 363 364 365 366 367 368 369 370 371 372 373 374 375 376 377 378 379 380 381 382 383 384 385 386 387 388 389 390 391 392 393 394 395 396 397 398 399 400 401 402 403 404 405 406 407 408 409 410 411 412 413 414 415 416 417 418 419 420 421 422 423 424 425 426 427 428 429 430 431 432 433 434 435 436 437 438 439 440 441 442 443 444 445 446 447 448 449 450 451 452 453 454 455 456 457 458 459 460 461 462 463 464 465 466 467 468 469 470 471 472 473 474 475 476 477 478 479 480 481 482 483 484 485 486 487 488 489 490 491 492 493 494 495 496 497 498 499 500 501 502 503 504 505 506 507 508 509 510 511 512 513 514 515 516 517 518 519 520 521 522 523 524 525 526 527 528 529 530 531 532 533 534 535 536 537 538 539 540 541 542 543 544 545 546 547 548 549 550 551 552 553 554 555 556 557 558 559 560 561 562 563 564 565 566 567 568 569 570 571 572 573 574 575 576 577 578 579 580 581 582 583 584 585 586 587 588 589 590 591 592 593 594 595 596 597 598 599 600 601 602 603 604 605 606 607 608 609 610 611 612 613 614 615 616 617 618 619 620 621 622 623 624 625 626 627 628 629 630 631 632 633 634 635 636 637 638 639 640 641 642 643 644 645 646 647 648 649 650 651 652 653 654 655 656 657 658 659 660 661 662 663 664 665 666 667 668 669 670 671 672 673 674 675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720 721 722 723 724 725 726 727 728 729 730 731 732 733 734 735 736 737 738 739 740 741 742 743 744 745 746 747 748 749 750 751 752 753 754 755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281 1282 1283 1284 1285 1286 1287 1288 1289 1290 1291 1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311 1312 1313 1314 1315 1316 1317 1318 1319 1320 1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338 1339 1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367 1368 1369 1370 1371 1372 1373 1374 1375 1376 1377 1378 1379 1380 1381 1382 1383 1384 1385 1386 1387 1388 1389 1390 1391 1392 1393 1394 1395 1396 1397 1398 1399 1400 1401 1402 1403 1404 1405 1406 1407 1408 1409 1410 1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428 1429 1430 1431 1432 1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474 1475 1476 1477 1478 1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502 1503 1504 1505 1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529 1530 1531 1532 1533 1534 1535 1536 1537 1538 1539 1540 1541 1542 1543 1544 1545 1546 1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573 1574 1575 1576 1577 1578 1579 1580 1581 1582 1583 1584 1585 1586 1587 1588 1589 1590 1591 1592 1593 1594 1595 1596 1597 1598 1599 1600 1601 1602 1603 1604 1605 1606 1607 1608
/* SPDX-License-Identifier: LGPL-2.1-or-later */
/*
 * Copyright (C) 2021, Google Inc.
 *
 * camera_capabilities.cpp - Camera static properties manager
 */

#include "camera_capabilities.h"

#include <algorithm>
#include <array>
#include <cmath>
#include <map>
#include <type_traits>

#include <hardware/camera3.h>

#include <libcamera/base/log.h>

#include <libcamera/control_ids.h>
#include <libcamera/controls.h>
#include <libcamera/property_ids.h>

#include "libcamera/internal/formats.h"

using namespace libcamera;

LOG_DECLARE_CATEGORY(HAL)

namespace {

/*
 * \var camera3Resolutions
 * \brief The list of image resolutions commonly supported by Android
 *
 * The following are defined as mandatory to be supported by the Android
 * Camera3 specification: (320x240), (640x480), (1280x720), (1920x1080).
 *
 * The following 4:3 resolutions are defined as optional, but commonly
 * supported by Android devices: (1280x960), (1600x1200).
 */
const std::vector<Size> camera3Resolutions = {
	{ 320, 240 },
	{ 640, 480 },
	{ 1280, 720 },
	{ 1280, 960 },
	{ 1600, 1200 },
	{ 1920, 1080 }
};

/*
 * \struct Camera3Format
 * \brief Data associated with an Android format identifier
 * \var libcameraFormats List of libcamera pixel formats compatible with the
 * Android format
 * \var name The human-readable representation of the Android format code
 */
struct Camera3Format {
	std::vector<PixelFormat> libcameraFormats;
	bool mandatory;
	const char *name;
};

/*
 * \var camera3FormatsMap
 * \brief Associate Android format code with ancillary data
 */
const std::map<int, const Camera3Format> camera3FormatsMap = {
	{
		HAL_PIXEL_FORMAT_BLOB, {
			{ formats::MJPEG },
			true,
			"BLOB"
		}
	}, {
		HAL_PIXEL_FORMAT_YCbCr_420_888, {
			{ formats::NV12, formats::NV21 },
			true,
			"YCbCr_420_888"
		}
	}, {
		/*
		 * \todo Translate IMPLEMENTATION_DEFINED inspecting the gralloc
		 * usage flag. For now, copy the YCbCr_420 configuration.
		 */
		HAL_PIXEL_FORMAT_IMPLEMENTATION_DEFINED, {
			{ formats::NV12, formats::NV21 },
			true,
			"IMPLEMENTATION_DEFINED"
		}
	}, {
		HAL_PIXEL_FORMAT_RAW10, {
			{
				formats::SBGGR10_CSI2P,
				formats::SGBRG10_CSI2P,
				formats::SGRBG10_CSI2P,
				formats::SRGGB10_CSI2P
			},
			false,
			"RAW10"
		}
	}, {
		HAL_PIXEL_FORMAT_RAW12, {
			{
				formats::SBGGR12_CSI2P,
				formats::SGBRG12_CSI2P,
				formats::SGRBG12_CSI2P,
				formats::SRGGB12_CSI2P
			},
			false,
			"RAW12"
		}
	}, {
		HAL_PIXEL_FORMAT_RAW16, {
			{
				formats::SBGGR16,
				formats::SGBRG16,
				formats::SGRBG16,
				formats::SRGGB16
			},
			false,
			"RAW16"
		}
	},
};

const std::map<camera_metadata_enum_android_info_supported_hardware_level, std::string>
hwLevelStrings = {
	{ ANDROID_INFO_SUPPORTED_HARDWARE_LEVEL_LIMITED,  "LIMITED" },
	{ ANDROID_INFO_SUPPORTED_HARDWARE_LEVEL_FULL,     "FULL" },
	{ ANDROID_INFO_SUPPORTED_HARDWARE_LEVEL_LEGACY,   "LEGACY" },
	{ ANDROID_INFO_SUPPORTED_HARDWARE_LEVEL_3,        "LEVEL_3" },
	{ ANDROID_INFO_SUPPORTED_HARDWARE_LEVEL_EXTERNAL, "EXTERNAL" },
};

enum class ControlRange {
	Min,
	Def,
	Max,
};

/**
 * \brief Set Android metadata from libcamera ControlInfo or a default value
 * \tparam T Type of the control in libcamera
 * \tparam U Type of the metadata in Android
 * \param[in] metadata Android metadata pack to add the control value to
 * \param[in] tag Android metadata tag
 * \param[in] controlsInfo libcamera ControlInfoMap from which to find the control info
 * \param[in] control libcamera ControlId to find from \a controlsInfo
 * \param[in] controlRange Whether to use the min, def, or max value from the control info
 * \param[in] defaultValue The value to set in \a metadata if \a control is not found
 *
 * Set the Android metadata entry in \a metadata with tag \a tag based on the
 * control info found for the libcamera control \a control in the libcamera
 * ControlInfoMap \a controlsInfo. If no libcamera ControlInfo is found, then
 * the Android metadata entry is set to \a defaultValue.
 *
 * This function is for scalar values.
 */
template<typename T, typename U>
U setMetadata(CameraMetadata *metadata, uint32_t tag,
	      const ControlInfoMap &controlsInfo, const Control<T> &control,
	      enum ControlRange controlRange, const U defaultValue)
{
	U value = defaultValue;

	const auto &info = controlsInfo.find(&control);
	if (info != controlsInfo.end()) {
		switch (controlRange) {
		case ControlRange::Min:
			value = static_cast<U>(info->second.min().template get<T>());
			break;
		case ControlRange::Def:
			value = static_cast<U>(info->second.def().template get<T>());
			break;
		case ControlRange::Max:
			value = static_cast<U>(info->second.max().template get<T>());
			break;
		}
	}

	metadata->addEntry(tag, value);
	return value;
}

/**
 * \brief Set Android metadata from libcamera ControlInfo or a default value
 * \tparam T Type of the control in libcamera
 * \tparam U Type of the metadata in Android
 * \param[in] metadata Android metadata pack to add the control value to
 * \param[in] tag Android metadata tag
 * \param[in] controlsInfo libcamera ControlInfoMap from which to find the control info
 * \param[in] control libcamera ControlId to find from \a controlsInfo
 * \param[in] defaultVector The value to set in \a metadata if \a control is not found
 *
 * Set the Android metadata entry in \a metadata with tag \a tag based on the
 * control info found for the libcamera control \a control in the libcamera
 * ControlInfoMap \a controlsInfo. If no libcamera ControlInfo is found, then
 * the Android metadata entry is set to \a defaultVector.
 *
 * This function is for vector values.
 */
template<typename T, typename U>
std::vector<U> setMetadata(CameraMetadata *metadata, uint32_t tag,
			   const ControlInfoMap &controlsInfo,
			   const Control<T> &control,
			   const std::vector<U> &defaultVector)
{
	const auto &info = controlsInfo.find(&control);
	if (info == controlsInfo.end()) {
		metadata->addEntry(tag, defaultVector);
		return defaultVector;
	}

	std::vector<U> values(info->second.values().size());
	for (const auto &value : info->second.values())
		values.push_back(static_cast<U>(value.template get<T>()));
	metadata->addEntry(tag, values);

	return values;
}

} /* namespace */

bool CameraCapabilities::validateManualSensorCapability()
{
	const char *noMode = "Manual sensor capability unavailable: ";

	if (!staticMetadata_->entryContains<uint8_t>(ANDROID_CONTROL_AE_AVAILABLE_MODES,
						     ANDROID_CONTROL_AE_MODE_OFF)) {
		LOG(HAL, Info) << noMode << "missing AE mode off";
		return false;
	}

	if (!staticMetadata_->entryContains<uint8_t>(ANDROID_CONTROL_AE_LOCK_AVAILABLE,
						     ANDROID_CONTROL_AE_LOCK_AVAILABLE_TRUE)) {
		LOG(HAL, Info) << noMode << "missing AE lock";
		return false;
	}

	/*
	 * \todo Return true here after we satisfy all the requirements:
	 * https://developer.android.com/reference/android/hardware/camera2/CameraMetadata#REQUEST_AVAILABLE_CAPABILITIES_MANUAL_SENSOR
	 * Manual frame duration control
	 *     android.sensor.frameDuration
	 *     android.sensor.info.maxFrameDuration
	 * Manual exposure control
	 *     android.sensor.exposureTime
	 *     android.sensor.info.exposureTimeRange
	 * Manual sensitivity control
	 *     android.sensor.sensitivity
	 *     android.sensor.info.sensitivityRange
	 * Manual lens control (if the lens is adjustable)
	 *     android.lens.*
	 * Manual flash control (if a flash unit is present)
	 *     android.flash.*
	 * Manual black level locking
	 *     android.blackLevel.lock
	 * Auto exposure lock
	 *     android.control.aeLock
	 */
	return false;
}

bool CameraCapabilities::validateManualPostProcessingCapability()
{
	const char *noMode = "Manual post processing capability unavailable: ";

	if (!staticMetadata_->entryContains<uint8_t>(ANDROID_CONTROL_AWB_AVAILABLE_MODES,
						     ANDROID_CONTROL_AWB_MODE_OFF)) {
		LOG(HAL, Info) << noMode << "missing AWB mode off";
		return false;
	}

	if (!staticMetadata_->entryContains<uint8_t>(ANDROID_CONTROL_AWB_LOCK_AVAILABLE,
						     ANDROID_CONTROL_AWB_LOCK_AVAILABLE_TRUE)) {
		LOG(HAL, Info) << noMode << "missing AWB lock";
		return false;
	}

	/*
	 * \todo return true here after we satisfy all the requirements:
	 * https://developer.android.com/reference/android/hardware/camera2/CameraMetadata#REQUEST_AVAILABLE_CAPABILITIES_MANUAL_POST_PROCESSING
	 * Manual tonemap control
	 *     android.tonemap.curve
	 *     android.tonemap.mode
	 *     android.tonemap.maxCurvePoints
	 *     android.tonemap.gamma
	 *     android.tonemap.presetCurve
	 * Manual white balance control
	 *     android.colorCorrection.transform
	 *     android.colorCorrection.gains
	 * Manual lens shading map control
	 *     android.shading.mode
	 *     android.statistics.lensShadingMapMode
	 *     android.statistics.lensShadingMap
	 *     android.lens.info.shadingMapSize
	 * Manual aberration correction control (if aberration correction is supported)
	 *     android.colorCorrection.aberrationMode
	 *     android.colorCorrection.availableAberrationModes
	 * Auto white balance lock
	 *     android.control.awbLock
	 */
	return false;
}

bool CameraCapabilities::validateBurstCaptureCapability()
{
	camera_metadata_ro_entry_t entry;
	bool found;

	const char *noMode = "Burst capture capability unavailable: ";

	if (!staticMetadata_->entryContains<uint8_t>(ANDROID_CONTROL_AE_LOCK_AVAILABLE,
						     ANDROID_CONTROL_AE_LOCK_AVAILABLE_TRUE)) {
		LOG(HAL, Info) << noMode << "missing AE lock";
		return false;
	}

	if (!staticMetadata_->entryContains<uint8_t>(ANDROID_CONTROL_AWB_LOCK_AVAILABLE,
						     ANDROID_CONTROL_AWB_LOCK_AVAILABLE_TRUE)) {
		LOG(HAL, Info) << noMode << "missing AWB lock";
		return false;
	}

	found = staticMetadata_->getEntry(ANDROID_SYNC_MAX_LATENCY, &entry);
	if (!found || *entry.data.i32 < 0 || 4 < *entry.data.i32) {
		LOG(HAL, Info)
			<< noMode << "max sync latency is "
			<< (found ? std::to_string(*entry.data.i32) : "not present");
		return false;
	}

	/*
	 * \todo return true here after we satisfy all the requirements
	 * https://developer.android.com/reference/android/hardware/camera2/CameraMetadata#REQUEST_AVAILABLE_CAPABILITIES_BURST_CAPTURE
	 */
	return false;
}

std::set<camera_metadata_enum_android_request_available_capabilities>
CameraCapabilities::computeCapabilities()
{
	std::set<camera_metadata_enum_android_request_available_capabilities>
		capabilities;

	capabilities.insert(ANDROID_REQUEST_AVAILABLE_CAPABILITIES_BACKWARD_COMPATIBLE);

	if (validateManualSensorCapability()) {
		capabilities.insert(ANDROID_REQUEST_AVAILABLE_CAPABILITIES_MANUAL_SENSOR);
		/* The requirements for READ_SENSOR_SETTINGS are a subset of MANUAL_SENSOR */
		capabilities.insert(ANDROID_REQUEST_AVAILABLE_CAPABILITIES_READ_SENSOR_SETTINGS);
	}

	if (validateManualPostProcessingCapability())
		capabilities.insert(ANDROID_REQUEST_AVAILABLE_CAPABILITIES_MANUAL_POST_PROCESSING);

	if (validateBurstCaptureCapability())
		capabilities.insert(ANDROID_REQUEST_AVAILABLE_CAPABILITIES_BURST_CAPTURE);

	if (rawStreamAvailable_)
		capabilities.insert(ANDROID_REQUEST_AVAILABLE_CAPABILITIES_RAW);

	return capabilities;
}

void CameraCapabilities::computeHwLevel(
	const std::set<camera_metadata_enum_android_request_available_capabilities> &caps)
{
	const char *noFull = "Hardware level FULL unavailable: ";
	camera_metadata_ro_entry_t entry;
	bool found;

	camera_metadata_enum_android_info_supported_hardware_level
		hwLevel = ANDROID_INFO_SUPPORTED_HARDWARE_LEVEL_FULL;

	if (!caps.count(ANDROID_REQUEST_AVAILABLE_CAPABILITIES_MANUAL_SENSOR)) {
		LOG(HAL, Info) << noFull << "missing manual sensor";
		hwLevel = ANDROID_INFO_SUPPORTED_HARDWARE_LEVEL_LIMITED;
	}

	if (!caps.count(ANDROID_REQUEST_AVAILABLE_CAPABILITIES_MANUAL_POST_PROCESSING)) {
		LOG(HAL, Info) << noFull << "missing manual post processing";
		hwLevel = ANDROID_INFO_SUPPORTED_HARDWARE_LEVEL_LIMITED;
	}

	if (!caps.count(ANDROID_REQUEST_AVAILABLE_CAPABILITIES_BURST_CAPTURE)) {
		LOG(HAL, Info) << noFull << "missing burst capture";
		hwLevel = ANDROID_INFO_SUPPORTED_HARDWARE_LEVEL_LIMITED;
	}

	found = staticMetadata_->getEntry(ANDROID_SYNC_MAX_LATENCY, &entry);
	if (!found || *entry.data.i32 != 0) {
		LOG(HAL, Info) << noFull << "missing or invalid max sync latency";
		hwLevel = ANDROID_INFO_SUPPORTED_HARDWARE_LEVEL_LIMITED;
	}

	hwLevel_ = hwLevel;
}

int CameraCapabilities::initialize(std::shared_ptr<Camera> camera,
				   int orientation, int facing)
{
	camera_ = camera;
	orientation_ = orientation;
	facing_ = facing;
	rawStreamAvailable_ = false;
	maxFrameDuration_ = 0;

	/* Acquire the camera and initialize available stream configurations. */
	int ret = camera_->acquire();
	if (ret) {
		LOG(HAL, Error) << "Failed to temporarily acquire the camera";
		return ret;
	}

	ret = initializeStreamConfigurations();
	if (ret) {
		camera_->release();
		return ret;
	}

	ret = initializeStaticMetadata();
	camera_->release();
	return ret;
}

std::vector<Size>
CameraCapabilities::initializeYUVResolutions(const PixelFormat &pixelFormat,
					     const std::vector<Size> &resolutions)
{
	std::vector<Size> supportedResolutions;
	std::unique_ptr<CameraConfiguration> cameraConfig =
		camera_->generateConfiguration({ StreamRole::Viewfinder });
	if (!cameraConfig) {
		LOG(HAL, Error) << "Failed to get supported YUV resolutions";
		return supportedResolutions;
	}

	StreamConfiguration &cfg = cameraConfig->at(0);

	for (const Size &res : resolutions) {
		cfg.pixelFormat = pixelFormat;
		cfg.size = res;

		CameraConfiguration::Status status = cameraConfig->validate();
		if (status != CameraConfiguration::Valid) {
			LOG(HAL, Debug) << cfg.toString() << " not supported";
			continue;
		}

		LOG(HAL, Debug) << cfg.toString() << " supported";

		supportedResolutions.push_back(res);
	}

	return supportedResolutions;
}

std::vector<Size>
CameraCapabilities::initializeRawResolutions(const PixelFormat &pixelFormat)
{
	std::vector<Size> supportedResolutions;
	std::unique_ptr<CameraConfiguration> cameraConfig =
		camera_->generateConfiguration({ StreamRole::Raw });
	if (!cameraConfig) {
		LOG(HAL, Error) << "Failed to get supported Raw resolutions";
		return supportedResolutions;
	}

	StreamConfiguration &cfg = cameraConfig->at(0);
	const StreamFormats &formats = cfg.formats();
	supportedResolutions = formats.sizes(pixelFormat);

	return supportedResolutions;
}

/*
 * Initialize the format conversion map to translate from Android format
 * identifier to libcamera pixel formats and fill in the list of supported
 * stream configurations to be reported to the Android camera framework through
 * the camera static metadata.
 */
int CameraCapabilities::initializeStreamConfigurations()
{
	/*
	 * Get the maximum output resolutions
	 * \todo Get this from the camera properties once defined
	 */
	std::unique_ptr<CameraConfiguration> cameraConfig =
		camera_->generateConfiguration({ StreamRole::StillCapture });
	if (!cameraConfig) {
		LOG(HAL, Error) << "Failed to get maximum resolution";
		return -EINVAL;
	}
	StreamConfiguration &cfg = cameraConfig->at(0);

	/*
	 * \todo JPEG - Adjust the maximum available resolution by taking the
	 * JPEG encoder requirements into account (alignment and aspect ratio).
	 */
	const Size maxRes = cfg.size;
	LOG(HAL, Debug) << "Maximum supported resolution: " << maxRes;

	/*
	 * Build the list of supported image resolutions.
	 *
	 * The resolutions listed in camera3Resolution are supported, up to the
	 * camera maximum resolution.
	 *
	 * Augment the list by adding resolutions calculated from the camera
	 * maximum one.
	 */
	std::vector<Size> cameraResolutions;
	std::copy_if(camera3Resolutions.begin(), camera3Resolutions.end(),
		     std::back_inserter(cameraResolutions),
		     [&](const Size &res) { return res < maxRes; });

	/*
	 * The Camera3 specification suggests adding 1/2 and 1/4 of the maximum
	 * resolution.
	 */
	for (unsigned int divider = 2;; divider <<= 1) {
		Size derivedSize{
			maxRes.width / divider,
			maxRes.height / divider,
		};

		if (derivedSize.width < 320 ||
		    derivedSize.height < 240)
			break;

		cameraResolutions.push_back(derivedSize);
	}
	cameraResolutions.push_back(maxRes);

	/* Remove duplicated entries from the list of supported resolutions. */
	std::sort(cameraResolutions.begin(), cameraResolutions.end());
	auto last = std::unique(cameraResolutions.begin(), cameraResolutions.end());
	cameraResolutions.erase(last, cameraResolutions.end());

	/*
	 * Build the list of supported camera formats.
	 *
	 * To each Android format a list of compatible libcamera formats is
	 * associated. The first libcamera format that tests successful is added
	 * to the format translation map used when configuring the streams.
	 * It is then tested against the list of supported camera resolutions to
	 * build the stream configuration map reported through the camera static
	 * metadata.
	 */
	Size maxJpegSize;
	for (const auto &format : camera3FormatsMap) {
		int androidFormat = format.first;
		const Camera3Format &camera3Format = format.second;
		const std::vector<PixelFormat> &libcameraFormats =
			camera3Format.libcameraFormats;

		LOG(HAL, Debug) << "Trying to map Android format "
				<< camera3Format.name;

		/*
		 * JPEG is always supported, either produced directly by the
		 * camera, or encoded in the HAL.
		 */
		if (androidFormat == HAL_PIXEL_FORMAT_BLOB) {
			formatsMap_[androidFormat] = formats::MJPEG;
			LOG(HAL, Debug) << "Mapped Android format "
					<< camera3Format.name << " to "
					<< formats::MJPEG
					<< " (fixed mapping)";
			continue;
		}

		/*
		 * Test the libcamera formats that can produce images
		 * compatible with the format defined by Android.
		 */
		PixelFormat mappedFormat;
		for (const PixelFormat &pixelFormat : libcameraFormats) {

			LOG(HAL, Debug) << "Testing " << pixelFormat;

			/*
			 * The stream configuration size can be adjusted,
			 * not the pixel format.
			 *
			 * \todo This could be simplified once all pipeline
			 * handlers will report the StreamFormats list of
			 * supported formats.
			 */
			cfg.pixelFormat = pixelFormat;

			CameraConfiguration::Status status = cameraConfig->validate();
			if (status != CameraConfiguration::Invalid &&
			    cfg.pixelFormat == pixelFormat) {
				mappedFormat = pixelFormat;
				break;
			}
		}

		if (!mappedFormat.isValid()) {
			/* If the format is not mandatory, skip it. */
			if (!camera3Format.mandatory)
				continue;

			LOG(HAL, Error)
				<< "Failed to map mandatory Android format "
				<< camera3Format.name << " ("
				<< utils::hex(androidFormat) << "): aborting";
			return -EINVAL;
		}

		/*
		 * Record the mapping and then proceed to generate the
		 * stream configurations map, by testing the image resolutions.
		 */
		formatsMap_[androidFormat] = mappedFormat;
		LOG(HAL, Debug) << "Mapped Android format "
				<< camera3Format.name << " to "
				<< mappedFormat;

		std::vector<Size> resolutions;
		const PixelFormatInfo &info = PixelFormatInfo::info(mappedFormat);
		switch (info.colourEncoding) {
		case PixelFormatInfo::ColourEncodingRAW:
			if (info.bitsPerPixel != 16)
				continue;

			rawStreamAvailable_ = true;
			resolutions = initializeRawResolutions(mappedFormat);
			break;

		case PixelFormatInfo::ColourEncodingYUV:
		case PixelFormatInfo::ColourEncodingRGB:
			/*
			 * We support enumerating RGB streams here to allow
			 * mapping IMPLEMENTATION_DEFINED format to RGB.
			 */
			resolutions = initializeYUVResolutions(mappedFormat,
							       cameraResolutions);
			break;
		}

		for (const Size &res : resolutions) {
			/*
			 * Configure the Camera with the collected format and
			 * resolution to get an updated list of controls.
			 *
			 * \todo Avoid the need to configure the camera when
			 * redesigning the configuration API.
			 */
			cfg.size = res;
			int ret = camera_->configure(cameraConfig.get());
			if (ret)
				return ret;

			const ControlInfoMap &controls = camera_->controls();
			const auto frameDurations = controls.find(
				&controls::FrameDurationLimits);
			if (frameDurations == controls.end()) {
				LOG(HAL, Error)
					<< "Camera does not report frame durations";
				return -EINVAL;
			}

			int64_t minFrameDuration = frameDurations->second.min().get<int64_t>() * 1000;
			int64_t maxFrameDuration = frameDurations->second.max().get<int64_t>() * 1000;

			/*
			 * Cap min frame duration to 30 FPS with 1% tolerance.
			 *
			 * 30 frames per second has been validated as the most
			 * opportune frame rate for quality tuning, and power
			 * vs performances budget on Intel IPU3-based
			 * Chromebooks.
			 *
			 * \todo This is a platform-specific decision that needs
			 * to be abstracted and delegated to the configuration
			 * file.
			 *
			 * \todo libcamera only allows to control frame duration
			 * through the per-request controls::FrameDuration
			 * control. If we cap the durations here, we should be
			 * capable of configuring the camera to operate at such
			 * duration without requiring to have the FrameDuration
			 * control to be specified for each Request. Defer this
			 * to the in-development configuration API rework.
			 */
			int64_t minFrameDurationCap = 1e9 / 30.0;
			if (minFrameDuration < minFrameDurationCap) {
				float tolerance =
					(minFrameDurationCap - minFrameDuration) * 100.0 / minFrameDurationCap;

				/*
				 * If the tolerance is less than 1%, do not cap
				 * the frame duration.
				 */
				if (tolerance > 1.0)
					minFrameDuration = minFrameDurationCap;
			}

			/*
			 * Calculate FPS as CTS does and adjust the minimum
			 * frame duration accordingly: see
			 * Camera2SurfaceViewTestCase.java:getSuitableFpsRangeForDuration()
			 */
			minFrameDuration =
				1e9 / static_cast<unsigned int>(floor(1e9 / minFrameDuration + 0.05f));

			streamConfigurations_.push_back({
				res, androidFormat, minFrameDuration, maxFrameDuration,
			});

			/*
			 * If the format is HAL_PIXEL_FORMAT_YCbCr_420_888
			 * from which JPEG is produced, add an entry for
			 * the JPEG stream.
			 *
			 * \todo Wire the JPEG encoder to query the supported
			 * sizes provided a list of formats it can encode.
			 *
			 * \todo Support JPEG streams produced by the camera
			 * natively.
			 *
			 * \todo HAL_PIXEL_FORMAT_BLOB is a 'stalling' format,
			 * its duration should take into account the time
			 * required for the YUV to JPEG encoding. For now
			 * use the same frame durations as collected for
			 * the YUV/RGB streams.
			 */
			if (androidFormat == HAL_PIXEL_FORMAT_YCbCr_420_888) {
				streamConfigurations_.push_back({
					res, HAL_PIXEL_FORMAT_BLOB,
					minFrameDuration, maxFrameDuration,
				});
				maxJpegSize = std::max(maxJpegSize, res);
			}

			maxFrameDuration_ = std::max(maxFrameDuration_,
						     maxFrameDuration);
		}

		/*
		 * \todo Calculate the maximum JPEG buffer size by asking the
		 * encoder giving the maximum frame size required.
		 */
		maxJpegBufferSize_ = maxJpegSize.width * maxJpegSize.height * 1.5;
	}

	LOG(HAL, Debug) << "Collected stream configuration map: ";
	for (const auto &entry : streamConfigurations_)
		LOG(HAL, Debug) << "{ " << entry.resolution << " - "
				<< utils::hex(entry.androidFormat) << " }";

	return 0;
}

int CameraCapabilities::initializeStaticMetadata()
{
	staticMetadata_ = std::make_unique<CameraMetadata>(64, 1024);
	if (!staticMetadata_->isValid()) {
		LOG(HAL, Error) << "Failed to allocate static metadata";
		staticMetadata_.reset();
		return -EINVAL;
	}

	/*
	 * Generate and apply a new configuration for the Viewfinder role to
	 * collect control limits and properties from a known state.
	 */
	std::unique_ptr<CameraConfiguration> cameraConfig =
		camera_->generateConfiguration({ StreamRole::Viewfinder });
	if (!cameraConfig) {
		LOG(HAL, Error) << "Failed to generate camera configuration";
		staticMetadata_.reset();
		return -ENODEV;
	}

	int ret = camera_->configure(cameraConfig.get());
	if (ret) {
		LOG(HAL, Error) << "Failed to initialize the camera state";
		staticMetadata_.reset();
		return ret;
	}

	const ControlInfoMap &controlsInfo = camera_->controls();
	const ControlList &properties = camera_->properties();

	availableCharacteristicsKeys_ = {
		ANDROID_COLOR_CORRECTION_AVAILABLE_ABERRATION_MODES,
		ANDROID_CONTROL_AE_AVAILABLE_ANTIBANDING_MODES,
		ANDROID_CONTROL_AE_AVAILABLE_MODES,
		ANDROID_CONTROL_AE_AVAILABLE_TARGET_FPS_RANGES,
		ANDROID_CONTROL_AE_COMPENSATION_RANGE,
		ANDROID_CONTROL_AE_COMPENSATION_STEP,
		ANDROID_CONTROL_AE_LOCK_AVAILABLE,
		ANDROID_CONTROL_AF_AVAILABLE_MODES,
		ANDROID_CONTROL_AVAILABLE_EFFECTS,
		ANDROID_CONTROL_AVAILABLE_MODES,
		ANDROID_CONTROL_AVAILABLE_SCENE_MODES,
		ANDROID_CONTROL_AVAILABLE_VIDEO_STABILIZATION_MODES,
		ANDROID_CONTROL_AWB_AVAILABLE_MODES,
		ANDROID_CONTROL_AWB_LOCK_AVAILABLE,
		ANDROID_CONTROL_MAX_REGIONS,
		ANDROID_CONTROL_SCENE_MODE_OVERRIDES,
		ANDROID_FLASH_INFO_AVAILABLE,
		ANDROID_INFO_SUPPORTED_HARDWARE_LEVEL,
		ANDROID_JPEG_AVAILABLE_THUMBNAIL_SIZES,
		ANDROID_JPEG_MAX_SIZE,
		ANDROID_LENS_FACING,
		ANDROID_LENS_INFO_AVAILABLE_APERTURES,
		ANDROID_LENS_INFO_AVAILABLE_FOCAL_LENGTHS,
		ANDROID_LENS_INFO_AVAILABLE_OPTICAL_STABILIZATION,
		ANDROID_LENS_INFO_HYPERFOCAL_DISTANCE,
		ANDROID_LENS_INFO_MINIMUM_FOCUS_DISTANCE,
		ANDROID_NOISE_REDUCTION_AVAILABLE_NOISE_REDUCTION_MODES,
		ANDROID_REQUEST_AVAILABLE_CAPABILITIES,
		ANDROID_REQUEST_MAX_NUM_INPUT_STREAMS,
		ANDROID_REQUEST_MAX_NUM_OUTPUT_STREAMS,
		ANDROID_REQUEST_PARTIAL_RESULT_COUNT,
		ANDROID_REQUEST_PIPELINE_MAX_DEPTH,
		ANDROID_SCALER_AVAILABLE_MAX_DIGITAL_ZOOM,
		ANDROID_SCALER_AVAILABLE_MIN_FRAME_DURATIONS,
		ANDROID_SCALER_AVAILABLE_STALL_DURATIONS,
		ANDROID_SCALER_AVAILABLE_STREAM_CONFIGURATIONS,
		ANDROID_SCALER_CROPPING_TYPE,
		ANDROID_SENSOR_AVAILABLE_TEST_PATTERN_MODES,
		ANDROID_SENSOR_INFO_ACTIVE_ARRAY_SIZE,
		ANDROID_SENSOR_INFO_COLOR_FILTER_ARRANGEMENT,
		ANDROID_SENSOR_INFO_EXPOSURE_TIME_RANGE,
		ANDROID_SENSOR_INFO_MAX_FRAME_DURATION,
		ANDROID_SENSOR_INFO_PHYSICAL_SIZE,
		ANDROID_SENSOR_INFO_PIXEL_ARRAY_SIZE,
		ANDROID_SENSOR_INFO_SENSITIVITY_RANGE,
		ANDROID_SENSOR_INFO_TIMESTAMP_SOURCE,
		ANDROID_SENSOR_ORIENTATION,
		ANDROID_STATISTICS_INFO_AVAILABLE_FACE_DETECT_MODES,
		ANDROID_STATISTICS_INFO_MAX_FACE_COUNT,
		ANDROID_SYNC_MAX_LATENCY,
	};

	availableRequestKeys_ = {
		ANDROID_COLOR_CORRECTION_ABERRATION_MODE,
		ANDROID_CONTROL_AE_ANTIBANDING_MODE,
		ANDROID_CONTROL_AE_EXPOSURE_COMPENSATION,
		ANDROID_CONTROL_AE_LOCK,
		ANDROID_CONTROL_AE_MODE,
		ANDROID_CONTROL_AE_PRECAPTURE_TRIGGER,
		ANDROID_CONTROL_AE_TARGET_FPS_RANGE,
		ANDROID_CONTROL_AF_MODE,
		ANDROID_CONTROL_AF_TRIGGER,
		ANDROID_CONTROL_AWB_LOCK,
		ANDROID_CONTROL_AWB_MODE,
		ANDROID_CONTROL_CAPTURE_INTENT,
		ANDROID_CONTROL_EFFECT_MODE,
		ANDROID_CONTROL_MODE,
		ANDROID_CONTROL_SCENE_MODE,
		ANDROID_CONTROL_VIDEO_STABILIZATION_MODE,
		ANDROID_FLASH_MODE,
		ANDROID_JPEG_ORIENTATION,
		ANDROID_JPEG_QUALITY,
		ANDROID_JPEG_THUMBNAIL_QUALITY,
		ANDROID_JPEG_THUMBNAIL_SIZE,
		ANDROID_LENS_APERTURE,
		ANDROID_LENS_OPTICAL_STABILIZATION_MODE,
		ANDROID_NOISE_REDUCTION_MODE,
		ANDROID_SCALER_CROP_REGION,
		ANDROID_STATISTICS_FACE_DETECT_MODE
	};

	availableResultKeys_ = {
		ANDROID_COLOR_CORRECTION_ABERRATION_MODE,
		ANDROID_CONTROL_AE_ANTIBANDING_MODE,
		ANDROID_CONTROL_AE_EXPOSURE_COMPENSATION,
		ANDROID_CONTROL_AE_LOCK,
		ANDROID_CONTROL_AE_MODE,
		ANDROID_CONTROL_AE_PRECAPTURE_TRIGGER,
		ANDROID_CONTROL_AE_STATE,
		ANDROID_CONTROL_AE_TARGET_FPS_RANGE,
		ANDROID_CONTROL_AF_MODE,
		ANDROID_CONTROL_AF_STATE,
		ANDROID_CONTROL_AF_TRIGGER,
		ANDROID_CONTROL_AWB_LOCK,
		ANDROID_CONTROL_AWB_MODE,
		ANDROID_CONTROL_AWB_STATE,
		ANDROID_CONTROL_CAPTURE_INTENT,
		ANDROID_CONTROL_EFFECT_MODE,
		ANDROID_CONTROL_MODE,
		ANDROID_CONTROL_SCENE_MODE,
		ANDROID_CONTROL_VIDEO_STABILIZATION_MODE,
		ANDROID_FLASH_MODE,
		ANDROID_FLASH_STATE,
		ANDROID_JPEG_GPS_COORDINATES,
		ANDROID_JPEG_GPS_PROCESSING_METHOD,
		ANDROID_JPEG_GPS_TIMESTAMP,
		ANDROID_JPEG_ORIENTATION,
		ANDROID_JPEG_QUALITY,
		ANDROID_JPEG_SIZE,
		ANDROID_JPEG_THUMBNAIL_QUALITY,
		ANDROID_JPEG_THUMBNAIL_SIZE,
		ANDROID_LENS_APERTURE,
		ANDROID_LENS_FOCAL_LENGTH,
		ANDROID_LENS_OPTICAL_STABILIZATION_MODE,
		ANDROID_LENS_STATE,
		ANDROID_NOISE_REDUCTION_MODE,
		ANDROID_REQUEST_PIPELINE_DEPTH,
		ANDROID_SCALER_CROP_REGION,
		ANDROID_SENSOR_EXPOSURE_TIME,
		ANDROID_SENSOR_FRAME_DURATION,
		ANDROID_SENSOR_ROLLING_SHUTTER_SKEW,
		ANDROID_SENSOR_TEST_PATTERN_MODE,
		ANDROID_SENSOR_TIMESTAMP,
		ANDROID_STATISTICS_FACE_DETECT_MODE,
		ANDROID_STATISTICS_LENS_SHADING_MAP_MODE,
		ANDROID_STATISTICS_HOT_PIXEL_MAP_MODE,
		ANDROID_STATISTICS_SCENE_FLICKER,
	};

	/* Color correction static metadata. */
	{
		std::vector<uint8_t> data;
		data.reserve(3);
		const auto &infoMap = controlsInfo.find(&controls::draft::ColorCorrectionAberrationMode);
		if (infoMap != controlsInfo.end()) {
			for (const auto &value : infoMap->second.values())
				data.push_back(value.get<int32_t>());
		} else {
			data.push_back(ANDROID_COLOR_CORRECTION_ABERRATION_MODE_OFF);
		}
		staticMetadata_->addEntry(ANDROID_COLOR_CORRECTION_AVAILABLE_ABERRATION_MODES,
					  data);
	}

	/* Control static metadata. */
	std::vector<uint8_t> aeAvailableAntiBandingModes = {
		ANDROID_CONTROL_AE_ANTIBANDING_MODE_OFF,
		ANDROID_CONTROL_AE_ANTIBANDING_MODE_50HZ,
		ANDROID_CONTROL_AE_ANTIBANDING_MODE_60HZ,
		ANDROID_CONTROL_AE_ANTIBANDING_MODE_AUTO,
	};
	staticMetadata_->addEntry(ANDROID_CONTROL_AE_AVAILABLE_ANTIBANDING_MODES,
				  aeAvailableAntiBandingModes);

	std::vector<uint8_t> aeAvailableModes = {
		ANDROID_CONTROL_AE_MODE_ON,
	};
	staticMetadata_->addEntry(ANDROID_CONTROL_AE_AVAILABLE_MODES,
				  aeAvailableModes);

	std::vector<int32_t> aeCompensationRange = {
		0, 0,
	};
	staticMetadata_->addEntry(ANDROID_CONTROL_AE_COMPENSATION_RANGE,
				  aeCompensationRange);

	const camera_metadata_rational_t aeCompensationStep[] = {
		{ 0, 1 }
	};
	staticMetadata_->addEntry(ANDROID_CONTROL_AE_COMPENSATION_STEP,
				  aeCompensationStep);

	std::vector<uint8_t> availableAfModes = {
		ANDROID_CONTROL_AF_MODE_OFF,
	};
	staticMetadata_->addEntry(ANDROID_CONTROL_AF_AVAILABLE_MODES,
				  availableAfModes);

	std::vector<uint8_t> availableEffects = {
		ANDROID_CONTROL_EFFECT_MODE_OFF,
	};
	staticMetadata_->addEntry(ANDROID_CONTROL_AVAILABLE_EFFECTS,
				  availableEffects);

	std::vector<uint8_t> availableSceneModes = {
		ANDROID_CONTROL_SCENE_MODE_DISABLED,
	};
	staticMetadata_->addEntry(ANDROID_CONTROL_AVAILABLE_SCENE_MODES,
				  availableSceneModes);

	std::vector<uint8_t> availableStabilizationModes = {
		ANDROID_CONTROL_VIDEO_STABILIZATION_MODE_OFF,
	};
	staticMetadata_->addEntry(ANDROID_CONTROL_AVAILABLE_VIDEO_STABILIZATION_MODES,
				  availableStabilizationModes);

	/*
	 * \todo Inspect the camera capabilities to report the available
	 * AWB modes. Default to AUTO as CTS tests require it.
	 */
	std::vector<uint8_t> availableAwbModes = {
		ANDROID_CONTROL_AWB_MODE_AUTO,
	};
	staticMetadata_->addEntry(ANDROID_CONTROL_AWB_AVAILABLE_MODES,
				  availableAwbModes);

	std::vector<int32_t> availableMaxRegions = {
		0, 0, 0,
	};
	staticMetadata_->addEntry(ANDROID_CONTROL_MAX_REGIONS,
				  availableMaxRegions);

	std::vector<uint8_t> sceneModesOverride = {
		ANDROID_CONTROL_AE_MODE_ON,
		ANDROID_CONTROL_AWB_MODE_AUTO,
		ANDROID_CONTROL_AF_MODE_OFF,
	};
	staticMetadata_->addEntry(ANDROID_CONTROL_SCENE_MODE_OVERRIDES,
				  sceneModesOverride);

	uint8_t aeLockAvailable = ANDROID_CONTROL_AE_LOCK_AVAILABLE_FALSE;
	staticMetadata_->addEntry(ANDROID_CONTROL_AE_LOCK_AVAILABLE,
				  aeLockAvailable);

	uint8_t awbLockAvailable = ANDROID_CONTROL_AWB_LOCK_AVAILABLE_FALSE;
	staticMetadata_->addEntry(ANDROID_CONTROL_AWB_LOCK_AVAILABLE,
				  awbLockAvailable);

	char availableControlModes = ANDROID_CONTROL_MODE_AUTO;
	staticMetadata_->addEntry(ANDROID_CONTROL_AVAILABLE_MODES,
				  availableControlModes);

	/* JPEG static metadata. */

	/*
	 * Create the list of supported thumbnail sizes by inspecting the
	 * available JPEG resolutions collected in streamConfigurations_ and
	 * generate one entry for each aspect ratio.
	 *
	 * The JPEG thumbnailer can freely scale, so pick an arbitrary
	 * (160, 160) size as the bounding rectangle, which is then cropped to
	 * the different supported aspect ratios.
	 */
	constexpr Size maxJpegThumbnail(160, 160);
	std::vector<Size> thumbnailSizes;
	thumbnailSizes.push_back({ 0, 0 });
	for (const auto &entry : streamConfigurations_) {
		if (entry.androidFormat != HAL_PIXEL_FORMAT_BLOB)
			continue;

		Size thumbnailSize = maxJpegThumbnail
				     .boundedToAspectRatio({ entry.resolution.width,
							     entry.resolution.height });
		thumbnailSizes.push_back(thumbnailSize);
	}

	std::sort(thumbnailSizes.begin(), thumbnailSizes.end());
	auto last = std::unique(thumbnailSizes.begin(), thumbnailSizes.end());
	thumbnailSizes.erase(last, thumbnailSizes.end());

	/* Transform sizes in to a list of integers that can be consumed. */
	std::vector<int32_t> thumbnailEntries;
	thumbnailEntries.reserve(thumbnailSizes.size() * 2);
	for (const auto &size : thumbnailSizes) {
		thumbnailEntries.push_back(size.width);
		thumbnailEntries.push_back(size.height);
	}
	staticMetadata_->addEntry(ANDROID_JPEG_AVAILABLE_THUMBNAIL_SIZES,
				  thumbnailEntries);

	staticMetadata_->addEntry(ANDROID_JPEG_MAX_SIZE, maxJpegBufferSize_);

	/* Sensor static metadata. */
	std::array<int32_t, 2> pixelArraySize;
	{
		const Size &size = properties.get(properties::PixelArraySize).value_or(Size{});
		pixelArraySize[0] = size.width;
		pixelArraySize[1] = size.height;
		staticMetadata_->addEntry(ANDROID_SENSOR_INFO_PIXEL_ARRAY_SIZE,
					  pixelArraySize);
	}

	const auto &cellSize = properties.get<Size>(properties::UnitCellSize);
	if (cellSize) {
		std::array<float, 2> physicalSize{
			cellSize->width * pixelArraySize[0] / 1e6f,
			cellSize->height * pixelArraySize[1] / 1e6f
		};
		staticMetadata_->addEntry(ANDROID_SENSOR_INFO_PHYSICAL_SIZE,
					  physicalSize);
	}

	{
		const Span<const Rectangle> &rects =
			properties.get(properties::PixelArrayActiveAreas).value_or(Span<const Rectangle>{});
		std::vector<int32_t> data{
			static_cast<int32_t>(rects[0].x),
			static_cast<int32_t>(rects[0].y),
			static_cast<int32_t>(rects[0].width),
			static_cast<int32_t>(rects[0].height),
		};
		staticMetadata_->addEntry(ANDROID_SENSOR_INFO_ACTIVE_ARRAY_SIZE,
					  data);
	}

	int32_t sensitivityRange[] = {
		32, 2400,
	};
	staticMetadata_->addEntry(ANDROID_SENSOR_INFO_SENSITIVITY_RANGE,
				  sensitivityRange);

	/* Report the color filter arrangement if the camera reports it. */
	const auto &filterArr = properties.get(properties::draft::ColorFilterArrangement);
	if (filterArr)
		staticMetadata_->addEntry(ANDROID_SENSOR_INFO_COLOR_FILTER_ARRANGEMENT,
					  *filterArr);

	const auto &exposureInfo = controlsInfo.find(&controls::ExposureTime);
	if (exposureInfo != controlsInfo.end()) {
		int64_t exposureTimeRange[2] = {
			exposureInfo->second.min().get<int32_t>() * 1000LL,
			exposureInfo->second.max().get<int32_t>() * 1000LL,
		};
		staticMetadata_->addEntry(ANDROID_SENSOR_INFO_EXPOSURE_TIME_RANGE,
					  exposureTimeRange, 2);
	}

	staticMetadata_->addEntry(ANDROID_SENSOR_ORIENTATION, orientation_);

	std::vector<int32_t> testPatternModes = {
		ANDROID_SENSOR_TEST_PATTERN_MODE_OFF
	};
	const auto &testPatternsInfo =
		controlsInfo.find(&controls::draft::TestPatternMode);
	if (testPatternsInfo != controlsInfo.end()) {
		const auto &values = testPatternsInfo->second.values();
		ASSERT(!values.empty());
		for (const auto &value : values) {
			switch (value.get<int32_t>()) {
			case controls::draft::TestPatternModeOff:
				/*
				 * ANDROID_SENSOR_TEST_PATTERN_MODE_OFF is
				 * already in testPatternModes.
				 */
				break;

			case controls::draft::TestPatternModeSolidColor:
				testPatternModes.push_back(
					ANDROID_SENSOR_TEST_PATTERN_MODE_SOLID_COLOR);
				break;

			case controls::draft::TestPatternModeColorBars:
				testPatternModes.push_back(
					ANDROID_SENSOR_TEST_PATTERN_MODE_COLOR_BARS);
				break;

			case controls::draft::TestPatternModeColorBarsFadeToGray:
				testPatternModes.push_back(
					ANDROID_SENSOR_TEST_PATTERN_MODE_COLOR_BARS_FADE_TO_GRAY);
				break;

			case controls::draft::TestPatternModePn9:
				testPatternModes.push_back(
					ANDROID_SENSOR_TEST_PATTERN_MODE_PN9);
				break;

			case controls::draft::TestPatternModeCustom1:
				/* We don't support this yet. */
				break;

			default:
				LOG(HAL, Error) << "Unknown test pattern mode: "
						<< value.get<int32_t>();
				continue;
			}
		}
	}
	staticMetadata_->addEntry(ANDROID_SENSOR_AVAILABLE_TEST_PATTERN_MODES,
				  testPatternModes);

	uint8_t timestampSource = ANDROID_SENSOR_INFO_TIMESTAMP_SOURCE_UNKNOWN;
	staticMetadata_->addEntry(ANDROID_SENSOR_INFO_TIMESTAMP_SOURCE,
				  timestampSource);

	staticMetadata_->addEntry(ANDROID_SENSOR_INFO_MAX_FRAME_DURATION,
				  maxFrameDuration_);

	/* Statistics static metadata. */
	uint8_t faceDetectMode = ANDROID_STATISTICS_FACE_DETECT_MODE_OFF;
	staticMetadata_->addEntry(ANDROID_STATISTICS_INFO_AVAILABLE_FACE_DETECT_MODES,
				  faceDetectMode);

	int32_t maxFaceCount = 0;
	staticMetadata_->addEntry(ANDROID_STATISTICS_INFO_MAX_FACE_COUNT,
				  maxFaceCount);

	{
		std::vector<uint8_t> data;
		data.reserve(2);
		const auto &infoMap = controlsInfo.find(&controls::draft::LensShadingMapMode);
		if (infoMap != controlsInfo.end()) {
			for (const auto &value : infoMap->second.values())
				data.push_back(value.get<int32_t>());
		} else {
			data.push_back(ANDROID_STATISTICS_LENS_SHADING_MAP_MODE_OFF);
		}
		staticMetadata_->addEntry(ANDROID_STATISTICS_INFO_AVAILABLE_LENS_SHADING_MAP_MODES,
					  data);
	}

	/* Sync static metadata. */
	setMetadata(staticMetadata_.get(), ANDROID_SYNC_MAX_LATENCY,
		    controlsInfo, controls::draft::MaxLatency,
		    ControlRange::Def,
		    ANDROID_SYNC_MAX_LATENCY_UNKNOWN);

	/* Flash static metadata. */
	char flashAvailable = ANDROID_FLASH_INFO_AVAILABLE_FALSE;
	staticMetadata_->addEntry(ANDROID_FLASH_INFO_AVAILABLE,
				  flashAvailable);

	/* Lens static metadata. */
	std::vector<float> lensApertures = {
		2.53 / 100,
	};
	staticMetadata_->addEntry(ANDROID_LENS_INFO_AVAILABLE_APERTURES,
				  lensApertures);

	uint8_t lensFacing;
	switch (facing_) {
	default:
	case CAMERA_FACING_FRONT:
		lensFacing = ANDROID_LENS_FACING_FRONT;
		break;
	case CAMERA_FACING_BACK:
		lensFacing = ANDROID_LENS_FACING_BACK;
		break;
	case CAMERA_FACING_EXTERNAL:
		lensFacing = ANDROID_LENS_FACING_EXTERNAL;
		break;
	}
	staticMetadata_->addEntry(ANDROID_LENS_FACING, lensFacing);

	std::vector<float> lensFocalLengths = {
		1,
	};
	staticMetadata_->addEntry(ANDROID_LENS_INFO_AVAILABLE_FOCAL_LENGTHS,
				  lensFocalLengths);

	std::vector<uint8_t> opticalStabilizations = {
		ANDROID_LENS_OPTICAL_STABILIZATION_MODE_OFF,
	};
	staticMetadata_->addEntry(ANDROID_LENS_INFO_AVAILABLE_OPTICAL_STABILIZATION,
				  opticalStabilizations);

	float hypeFocalDistance = 0;
	staticMetadata_->addEntry(ANDROID_LENS_INFO_HYPERFOCAL_DISTANCE,
				  hypeFocalDistance);

	float minFocusDistance = 0;
	staticMetadata_->addEntry(ANDROID_LENS_INFO_MINIMUM_FOCUS_DISTANCE,
				  minFocusDistance);

	/* Noise reduction modes. */
	{
		std::vector<uint8_t> data;
		data.reserve(5);
		const auto &infoMap = controlsInfo.find(&controls::draft::NoiseReductionMode);
		if (infoMap != controlsInfo.end()) {
			for (const auto &value : infoMap->second.values())
				data.push_back(value.get<int32_t>());
		} else {
			data.push_back(ANDROID_NOISE_REDUCTION_MODE_OFF);
		}
		staticMetadata_->addEntry(ANDROID_NOISE_REDUCTION_AVAILABLE_NOISE_REDUCTION_MODES,
					  data);
	}

	/* Scaler static metadata. */

	/*
	 * \todo The digital zoom factor is a property that depends on the
	 * desired output configuration and the sensor frame size input to the
	 * ISP. This information is not available to the Android HAL, not at
	 * initialization time at least.
	 *
	 * As a workaround rely on pipeline handlers initializing the
	 * ScalerCrop control with the camera default configuration and use the
	 * maximum and minimum crop rectangles to calculate the digital zoom
	 * factor.
	 */
	float maxZoom = 1.0f;
	const auto scalerCrop = controlsInfo.find(&controls::ScalerCrop);
	if (scalerCrop != controlsInfo.end()) {
		Rectangle min = scalerCrop->second.min().get<Rectangle>();
		Rectangle max = scalerCrop->second.max().get<Rectangle>();
		maxZoom = std::min(1.0f * max.width / min.width,
				   1.0f * max.height / min.height);
	}
	staticMetadata_->addEntry(ANDROID_SCALER_AVAILABLE_MAX_DIGITAL_ZOOM,
				  maxZoom);

	std::vector<uint32_t> availableStreamConfigurations;
	std::vector<int64_t> minFrameDurations;
	int maxYUVFps = 0;
	Size maxYUVSize;

	availableStreamConfigurations.reserve(streamConfigurations_.size() * 4);
	minFrameDurations.reserve(streamConfigurations_.size() * 4);

	for (const auto &entry : streamConfigurations_) {
		/*
		 * Filter out YUV streams not capable of running at 30 FPS.
		 *
		 * This requirement comes from CTS RecordingTest failures most
		 * probably related to a requirement of the camcoder video
		 * recording profile. Inspecting the Intel IPU3 HAL
		 * implementation confirms this but no reference has been found
		 * in the metadata documentation.
		 */
		unsigned int fps =
			static_cast<unsigned int>(floor(1e9 / entry.minFrameDurationNsec));

		if (entry.androidFormat != HAL_PIXEL_FORMAT_BLOB && fps < 30)
			continue;

		/*
		 * Collect the FPS of the maximum YUV output size to populate
		 * AE_AVAILABLE_TARGET_FPS_RANGE
		 */
		if (entry.androidFormat == HAL_PIXEL_FORMAT_YCbCr_420_888 &&
		    entry.resolution > maxYUVSize) {
			maxYUVSize = entry.resolution;
			maxYUVFps = fps;
		}

		/* Stream configuration map. */
		availableStreamConfigurations.push_back(entry.androidFormat);
		availableStreamConfigurations.push_back(entry.resolution.width);
		availableStreamConfigurations.push_back(entry.resolution.height);
		availableStreamConfigurations.push_back(
			ANDROID_SCALER_AVAILABLE_STREAM_CONFIGURATIONS_OUTPUT);

		/* Per-stream durations. */
		minFrameDurations.push_back(entry.androidFormat);
		minFrameDurations.push_back(entry.resolution.width);
		minFrameDurations.push_back(entry.resolution.height);
		minFrameDurations.push_back(entry.minFrameDurationNsec);

		LOG(HAL, Debug)
			<< "Output Stream: " << utils::hex(entry.androidFormat)
			<< " (" << entry.resolution << ")["
			<< entry.minFrameDurationNsec << "]"
			<< "@" << fps;
	}
	staticMetadata_->addEntry(ANDROID_SCALER_AVAILABLE_STREAM_CONFIGURATIONS,
				  availableStreamConfigurations);

	staticMetadata_->addEntry(ANDROID_SCALER_AVAILABLE_MIN_FRAME_DURATIONS,
				  minFrameDurations);

	/*
	 * Register to the camera service {min, max} and {max, max} with
	 * 'max' being the larger YUV stream maximum frame rate and 'min' being
	 * the globally minimum frame rate rounded to the next largest integer
	 * as the camera service expects the camera maximum frame duration to be
	 * smaller than 10^9 / minFps.
	 */
	int32_t minFps = std::ceil(1e9 / maxFrameDuration_);
	int32_t availableAeFpsTarget[] = {
		minFps, maxYUVFps, maxYUVFps, maxYUVFps,
	};
	staticMetadata_->addEntry(ANDROID_CONTROL_AE_AVAILABLE_TARGET_FPS_RANGES,
				  availableAeFpsTarget);

	std::vector<int64_t> availableStallDurations;
	for (const auto &entry : streamConfigurations_) {
		if (entry.androidFormat != HAL_PIXEL_FORMAT_BLOB)
			continue;

		availableStallDurations.push_back(entry.androidFormat);
		availableStallDurations.push_back(entry.resolution.width);
		availableStallDurations.push_back(entry.resolution.height);
		availableStallDurations.push_back(entry.minFrameDurationNsec);
	}
	staticMetadata_->addEntry(ANDROID_SCALER_AVAILABLE_STALL_DURATIONS,
				  availableStallDurations);

	uint8_t croppingType = ANDROID_SCALER_CROPPING_TYPE_CENTER_ONLY;
	staticMetadata_->addEntry(ANDROID_SCALER_CROPPING_TYPE, croppingType);

	/* Request static metadata. */
	int32_t partialResultCount = 1;
	staticMetadata_->addEntry(ANDROID_REQUEST_PARTIAL_RESULT_COUNT,
				  partialResultCount);

	{
		/* Default the value to 2 if not reported by the camera. */
		uint8_t maxPipelineDepth = 2;
		const auto &infoMap = controlsInfo.find(&controls::draft::PipelineDepth);
		if (infoMap != controlsInfo.end())
			maxPipelineDepth = infoMap->second.max().get<int32_t>();
		staticMetadata_->addEntry(ANDROID_REQUEST_PIPELINE_MAX_DEPTH,
					  maxPipelineDepth);
	}

	/* LIMITED does not support reprocessing. */
	uint32_t maxNumInputStreams = 0;
	staticMetadata_->addEntry(ANDROID_REQUEST_MAX_NUM_INPUT_STREAMS,
				  maxNumInputStreams);

	/* Number of { RAW, YUV, JPEG } supported output streams */
	int32_t numOutStreams[] = { rawStreamAvailable_, 2, 1 };
	staticMetadata_->addEntry(ANDROID_REQUEST_MAX_NUM_OUTPUT_STREAMS,
				  numOutStreams);

	/* Check capabilities */
	capabilities_ = computeCapabilities();
	/* This *must* be uint8_t. */
	std::vector<uint8_t> capsVec(capabilities_.begin(), capabilities_.end());
	staticMetadata_->addEntry(ANDROID_REQUEST_AVAILABLE_CAPABILITIES, capsVec);

	computeHwLevel(capabilities_);
	staticMetadata_->addEntry(ANDROID_INFO_SUPPORTED_HARDWARE_LEVEL, hwLevel_);

	LOG(HAL, Info)
		<< "Hardware level: " << hwLevelStrings.find(hwLevel_)->second;

	staticMetadata_->addEntry(ANDROID_REQUEST_AVAILABLE_CHARACTERISTICS_KEYS,
				  std::vector<int32_t>(availableCharacteristicsKeys_.begin(),
						       availableCharacteristicsKeys_.end()));

	staticMetadata_->addEntry(ANDROID_REQUEST_AVAILABLE_REQUEST_KEYS,
				  std::vector<int32_t>(availableRequestKeys_.begin(),
						       availableRequestKeys_.end()));

	staticMetadata_->addEntry(ANDROID_REQUEST_AVAILABLE_RESULT_KEYS,
				  std::vector<int32_t>(availableResultKeys_.begin(),
						       availableResultKeys_.end()));

	if (!staticMetadata_->isValid()) {
		LOG(HAL, Error) << "Failed to construct static metadata";
		staticMetadata_.reset();
		return -EINVAL;
	}

	if (staticMetadata_->resized()) {
		auto [entryCount, dataCount] = staticMetadata_->usage();
		LOG(HAL, Info)
			<< "Static metadata resized: " << entryCount
			<< " entries and " << dataCount << " bytes used";
	}

	return 0;
}

/* Translate Android format code to libcamera pixel format. */
PixelFormat CameraCapabilities::toPixelFormat(int format) const
{
	auto it = formatsMap_.find(format);
	if (it == formatsMap_.end()) {
		LOG(HAL, Error) << "Requested format " << utils::hex(format)
				<< " not supported";
		return PixelFormat();
	}

	return it->second;
}

std::unique_ptr<CameraMetadata> CameraCapabilities::requestTemplateManual() const
{
	if (!capabilities_.count(ANDROID_REQUEST_AVAILABLE_CAPABILITIES_MANUAL_SENSOR)) {
		LOG(HAL, Error) << "Manual template not supported";
		return nullptr;
	}

	std::unique_ptr<CameraMetadata> manualTemplate = requestTemplatePreview();
	if (!manualTemplate)
		return nullptr;

	return manualTemplate;
}

std::unique_ptr<CameraMetadata> CameraCapabilities::requestTemplatePreview() const
{
	/*
	 * Give initial hint of entries and number of bytes to be allocated.
	 * It is deliberate that the hint is slightly larger than required, to
	 * avoid resizing the container.
	 *
	 * CameraMetadata is capable of resizing the container on the fly, if
	 * adding a new entry will exceed its capacity.
	 */
	auto requestTemplate = std::make_unique<CameraMetadata>(22, 38);
	if (!requestTemplate->isValid()) {
		return nullptr;
	}

	/* Get the FPS range registered in the static metadata. */
	camera_metadata_ro_entry_t entry;
	bool found = staticMetadata_->getEntry(ANDROID_CONTROL_AE_AVAILABLE_TARGET_FPS_RANGES,
					       &entry);
	if (!found) {
		LOG(HAL, Error) << "Cannot create capture template without FPS range";
		return nullptr;
	}

	/*
	 * Assume the AE_AVAILABLE_TARGET_FPS_RANGE static metadata
	 * has been assembled as {{min, max} {max, max}}.
	 */
	requestTemplate->addEntry(ANDROID_CONTROL_AE_TARGET_FPS_RANGE,
				  entry.data.i32, 2);

	/*
	 * Get thumbnail sizes from static metadata and add the first non-zero
	 * size to the template.
	 */
	found = staticMetadata_->getEntry(ANDROID_JPEG_AVAILABLE_THUMBNAIL_SIZES,
					  &entry);
	ASSERT(found && entry.count >= 4);
	requestTemplate->addEntry(ANDROID_JPEG_THUMBNAIL_SIZE,
				  entry.data.i32 + 2, 2);

	uint8_t aeMode = ANDROID_CONTROL_AE_MODE_ON;
	requestTemplate->addEntry(ANDROID_CONTROL_AE_MODE, aeMode);

	int32_t aeExposureCompensation = 0;
	requestTemplate->addEntry(ANDROID_CONTROL_AE_EXPOSURE_COMPENSATION,
				  aeExposureCompensation);

	uint8_t aePrecaptureTrigger = ANDROID_CONTROL_AE_PRECAPTURE_TRIGGER_IDLE;
	requestTemplate->addEntry(ANDROID_CONTROL_AE_PRECAPTURE_TRIGGER,
				  aePrecaptureTrigger);

	uint8_t aeLock = ANDROID_CONTROL_AE_LOCK_OFF;
	requestTemplate->addEntry(ANDROID_CONTROL_AE_LOCK, aeLock);

	uint8_t aeAntibandingMode = ANDROID_CONTROL_AE_ANTIBANDING_MODE_AUTO;
	requestTemplate->addEntry(ANDROID_CONTROL_AE_ANTIBANDING_MODE,
				  aeAntibandingMode);

	uint8_t afMode = ANDROID_CONTROL_AF_MODE_OFF;
	requestTemplate->addEntry(ANDROID_CONTROL_AF_MODE, afMode);

	uint8_t afTrigger = ANDROID_CONTROL_AF_TRIGGER_IDLE;
	requestTemplate->addEntry(ANDROID_CONTROL_AF_TRIGGER, afTrigger);

	uint8_t awbMode = ANDROID_CONTROL_AWB_MODE_AUTO;
	requestTemplate->addEntry(ANDROID_CONTROL_AWB_MODE, awbMode);

	uint8_t awbLock = ANDROID_CONTROL_AWB_LOCK_OFF;
	requestTemplate->addEntry(ANDROID_CONTROL_AWB_LOCK, awbLock);

	uint8_t flashMode = ANDROID_FLASH_MODE_OFF;
	requestTemplate->addEntry(ANDROID_FLASH_MODE, flashMode);

	uint8_t faceDetectMode = ANDROID_STATISTICS_FACE_DETECT_MODE_OFF;
	requestTemplate->addEntry(ANDROID_STATISTICS_FACE_DETECT_MODE,
				  faceDetectMode);

	uint8_t noiseReduction = ANDROID_NOISE_REDUCTION_MODE_OFF;
	requestTemplate->addEntry(ANDROID_NOISE_REDUCTION_MODE,
				  noiseReduction);

	uint8_t aberrationMode = ANDROID_COLOR_CORRECTION_ABERRATION_MODE_OFF;
	requestTemplate->addEntry(ANDROID_COLOR_CORRECTION_ABERRATION_MODE,
				  aberrationMode);

	uint8_t controlMode = ANDROID_CONTROL_MODE_AUTO;
	requestTemplate->addEntry(ANDROID_CONTROL_MODE, controlMode);

	float lensAperture = 2.53 / 100;
	requestTemplate->addEntry(ANDROID_LENS_APERTURE, lensAperture);

	uint8_t opticalStabilization = ANDROID_LENS_OPTICAL_STABILIZATION_MODE_OFF;
	requestTemplate->addEntry(ANDROID_LENS_OPTICAL_STABILIZATION_MODE,
				  opticalStabilization);

	uint8_t captureIntent = ANDROID_CONTROL_CAPTURE_INTENT_PREVIEW;
	requestTemplate->addEntry(ANDROID_CONTROL_CAPTURE_INTENT,
				  captureIntent);

	return requestTemplate;
}

std::unique_ptr<CameraMetadata> CameraCapabilities::requestTemplateStill() const
{
	std::unique_ptr<CameraMetadata> stillTemplate = requestTemplatePreview();
	if (!stillTemplate)
		return nullptr;

	return stillTemplate;
}

std::unique_ptr<CameraMetadata> CameraCapabilities::requestTemplateVideo() const
{
	std::unique_ptr<CameraMetadata> previewTemplate = requestTemplatePreview();
	if (!previewTemplate)
		return nullptr;

	/*
	 * The video template requires a fixed FPS range. Everything else
	 * stays the same as the preview template.
	 */
	camera_metadata_ro_entry_t entry;
	staticMetadata_->getEntry(ANDROID_CONTROL_AE_AVAILABLE_TARGET_FPS_RANGES,
				  &entry);

	/*
	 * Assume the AE_AVAILABLE_TARGET_FPS_RANGE static metadata
	 * has been assembled as {{min, max} {max, max}}.
	 */
	previewTemplate->updateEntry(ANDROID_CONTROL_AE_TARGET_FPS_RANGE,
				     entry.data.i32 + 2, 2);

	return previewTemplate;
}