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777 lines
22 KiB
PHP
777 lines
22 KiB
PHP
<?php
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/**
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* Class FinderPatternFinder
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*
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* @created 17.01.2021
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* @author ZXing Authors
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* @author Smiley <smiley@chillerlan.net>
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* @copyright 2021 Smiley
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* @license Apache-2.0
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*
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* @phan-file-suppress PhanTypePossiblyInvalidDimOffset
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*/
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namespace chillerlan\QRCode\Detector;
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use chillerlan\QRCode\Decoder\BitMatrix;
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use function abs;
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use function count;
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use function intdiv;
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use function usort;
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use const PHP_FLOAT_MAX;
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/**
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* This class attempts to find finder patterns in a QR Code. Finder patterns are the square
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* markers at three corners of a QR Code.
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*
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* This class is thread-safe but not reentrant. Each thread must allocate its own object.
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*
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* @author Sean Owen
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*/
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final class FinderPatternFinder{
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private const MIN_SKIP = 2;
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private const MAX_MODULES = 177; // 1 pixel/module times 3 modules/center
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private const CENTER_QUORUM = 2; // support up to version 10 for mobile clients
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private BitMatrix $matrix;
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/** @var \chillerlan\QRCode\Detector\FinderPattern[] */
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private array $possibleCenters;
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private bool $hasSkipped = false;
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/**
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* Creates a finder that will search the image for three finder patterns.
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*
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* @param BitMatrix $matrix image to search
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*/
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public function __construct(BitMatrix $matrix){
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$this->matrix = $matrix;
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$this->possibleCenters = [];
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}
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/**
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* @return \chillerlan\QRCode\Detector\FinderPattern[]
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*/
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public function find():array{
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$dimension = $this->matrix->getSize();
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// We are looking for black/white/black/white/black modules in
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// 1:1:3:1:1 ratio; this tracks the number of such modules seen so far
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// Let's assume that the maximum version QR Code we support takes up 1/4 the height of the
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// image, and then account for the center being 3 modules in size. This gives the smallest
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// number of pixels the center could be, so skip this often.
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$iSkip = intdiv((3 * $dimension), (4 * self::MAX_MODULES));
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if($iSkip < self::MIN_SKIP){
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$iSkip = self::MIN_SKIP;
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}
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$done = false;
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for($i = ($iSkip - 1); ($i < $dimension) && !$done; $i += $iSkip){
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// Get a row of black/white values
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$stateCount = $this->getCrossCheckStateCount();
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$currentState = 0;
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for($j = 0; $j < $dimension; $j++){
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// Black pixel
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if($this->matrix->check($j, $i)){
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// Counting white pixels
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if(($currentState & 1) === 1){
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$currentState++;
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}
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$stateCount[$currentState]++;
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}
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// White pixel
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else{
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// Counting black pixels
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if(($currentState & 1) === 0){
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// A winner?
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if($currentState === 4){
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// Yes
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if($this->foundPatternCross($stateCount)){
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$confirmed = $this->handlePossibleCenter($stateCount, $i, $j);
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if($confirmed){
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// Start examining every other line. Checking each line turned out to be too
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// expensive and didn't improve performance.
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$iSkip = 3;
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if($this->hasSkipped){
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$done = $this->haveMultiplyConfirmedCenters();
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}
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else{
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$rowSkip = $this->findRowSkip();
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if($rowSkip > $stateCount[2]){
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// Skip rows between row of lower confirmed center
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// and top of presumed third confirmed center
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// but back up a bit to get a full chance of detecting
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// it, entire width of center of finder pattern
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// Skip by rowSkip, but back off by $stateCount[2] (size of last center
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// of pattern we saw) to be conservative, and also back off by iSkip which
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// is about to be re-added
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$i += ($rowSkip - $stateCount[2] - $iSkip);
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$j = ($dimension - 1);
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}
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}
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}
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else{
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$stateCount = $this->doShiftCounts2($stateCount);
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$currentState = 3;
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continue;
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}
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// Clear state to start looking again
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$currentState = 0;
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$stateCount = $this->getCrossCheckStateCount();
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}
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// No, shift counts back by two
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else{
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$stateCount = $this->doShiftCounts2($stateCount);
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$currentState = 3;
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}
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}
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else{
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$stateCount[++$currentState]++;
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}
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}
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// Counting white pixels
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else{
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$stateCount[$currentState]++;
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}
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}
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}
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if($this->foundPatternCross($stateCount)){
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$confirmed = $this->handlePossibleCenter($stateCount, $i, $dimension);
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if($confirmed){
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$iSkip = $stateCount[0];
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if($this->hasSkipped){
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// Found a third one
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$done = $this->haveMultiplyConfirmedCenters();
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}
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}
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}
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}
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return $this->orderBestPatterns($this->selectBestPatterns());
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}
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/**
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* @return int[]
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*/
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private function getCrossCheckStateCount():array{
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return [0, 0, 0, 0, 0];
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}
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/**
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* @param int[] $stateCount
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*
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* @return int[]
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*/
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private function doShiftCounts2(array $stateCount):array{
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$stateCount[0] = $stateCount[2];
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$stateCount[1] = $stateCount[3];
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$stateCount[2] = $stateCount[4];
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$stateCount[3] = 1;
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$stateCount[4] = 0;
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return $stateCount;
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}
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/**
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* Given a count of black/white/black/white/black pixels just seen and an end position,
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* figures the location of the center of this run.
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*
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* @param int[] $stateCount
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*/
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private function centerFromEnd(array $stateCount, int $end):float{
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return (float)(($end - $stateCount[4] - $stateCount[3]) - $stateCount[2] / 2);
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}
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/**
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* @param int[] $stateCount
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*/
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private function foundPatternCross(array $stateCount):bool{
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// Allow less than 50% variance from 1-1-3-1-1 proportions
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return $this->foundPatternVariance($stateCount, 2.0);
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}
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/**
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* @param int[] $stateCount
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*/
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private function foundPatternDiagonal(array $stateCount):bool{
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// Allow less than 75% variance from 1-1-3-1-1 proportions
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return $this->foundPatternVariance($stateCount, 1.333);
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}
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/**
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* @param int[] $stateCount count of black/white/black/white/black pixels just read
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*
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* @return bool true if the proportions of the counts is close enough to the 1/1/3/1/1 ratios
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* used by finder patterns to be considered a match
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*/
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private function foundPatternVariance(array $stateCount, float $variance):bool{
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$totalModuleSize = 0;
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for($i = 0; $i < 5; $i++){
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$count = $stateCount[$i];
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if($count === 0){
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return false;
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}
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$totalModuleSize += $count;
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}
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if($totalModuleSize < 7){
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return false;
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}
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$moduleSize = ($totalModuleSize / 7.0);
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$maxVariance = ($moduleSize / $variance);
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return
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abs($moduleSize - $stateCount[0]) < $maxVariance
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&& abs($moduleSize - $stateCount[1]) < $maxVariance
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&& abs(3.0 * $moduleSize - $stateCount[2]) < (3 * $maxVariance)
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&& abs($moduleSize - $stateCount[3]) < $maxVariance
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&& abs($moduleSize - $stateCount[4]) < $maxVariance;
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}
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/**
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* After a vertical and horizontal scan finds a potential finder pattern, this method
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* "cross-cross-cross-checks" by scanning down diagonally through the center of the possible
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* finder pattern to see if the same proportion is detected.
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*
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* @param int $centerI row where a finder pattern was detected
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* @param int $centerJ center of the section that appears to cross a finder pattern
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*
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* @return bool true if proportions are withing expected limits
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*/
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private function crossCheckDiagonal(int $centerI, int $centerJ):bool{
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$stateCount = $this->getCrossCheckStateCount();
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// Start counting up, left from center finding black center mass
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$i = 0;
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while($centerI >= $i && $centerJ >= $i && $this->matrix->check(($centerJ - $i), ($centerI - $i))){
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$stateCount[2]++;
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$i++;
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}
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if($stateCount[2] === 0){
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return false;
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}
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// Continue up, left finding white space
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while($centerI >= $i && $centerJ >= $i && !$this->matrix->check(($centerJ - $i), ($centerI - $i))){
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$stateCount[1]++;
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$i++;
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}
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if($stateCount[1] === 0){
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return false;
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}
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// Continue up, left finding black border
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while($centerI >= $i && $centerJ >= $i && $this->matrix->check(($centerJ - $i), ($centerI - $i))){
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$stateCount[0]++;
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$i++;
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}
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if($stateCount[0] === 0){
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return false;
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}
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$dimension = $this->matrix->getSize();
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// Now also count down, right from center
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$i = 1;
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// phpcs:ignore
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while(($centerI + $i) < $dimension && ($centerJ + $i) < $dimension && $this->matrix->check(($centerJ + $i), ($centerI + $i))){
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$stateCount[2]++;
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$i++;
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}
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// phpcs:ignore
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while(($centerI + $i) < $dimension && ($centerJ + $i) < $dimension && !$this->matrix->check(($centerJ + $i), ($centerI + $i))){
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$stateCount[3]++;
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$i++;
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}
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if($stateCount[3] === 0){
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return false;
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}
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// phpcs:ignore
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while(($centerI + $i) < $dimension && ($centerJ + $i) < $dimension && $this->matrix->check(($centerJ + $i), ($centerI + $i))){
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$stateCount[4]++;
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$i++;
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}
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if($stateCount[4] === 0){
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return false;
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}
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return $this->foundPatternDiagonal($stateCount);
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}
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/**
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* After a horizontal scan finds a potential finder pattern, this method
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* "cross-checks" by scanning down vertically through the center of the possible
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* finder pattern to see if the same proportion is detected.
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*
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* @param int $startI row where a finder pattern was detected
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* @param int $centerJ center of the section that appears to cross a finder pattern
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* @param int $maxCount maximum reasonable number of modules that should be
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* observed in any reading state, based on the results of the horizontal scan
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* @param int $originalStateCountTotal
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*
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* @return float|null vertical center of finder pattern, or null if not found
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* @noinspection DuplicatedCode
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*/
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private function crossCheckVertical(int $startI, int $centerJ, int $maxCount, int $originalStateCountTotal):?float{
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$maxI = $this->matrix->getSize();
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$stateCount = $this->getCrossCheckStateCount();
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// Start counting up from center
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$i = $startI;
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while($i >= 0 && $this->matrix->check($centerJ, $i)){
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$stateCount[2]++;
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$i--;
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}
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if($i < 0){
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return null;
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}
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while($i >= 0 && !$this->matrix->check($centerJ, $i) && $stateCount[1] <= $maxCount){
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$stateCount[1]++;
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$i--;
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}
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// If already too many modules in this state or ran off the edge:
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if($i < 0 || $stateCount[1] > $maxCount){
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return null;
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}
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while($i >= 0 && $this->matrix->check($centerJ, $i) && $stateCount[0] <= $maxCount){
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$stateCount[0]++;
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$i--;
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}
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if($stateCount[0] > $maxCount){
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return null;
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}
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// Now also count down from center
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$i = ($startI + 1);
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while($i < $maxI && $this->matrix->check($centerJ, $i)){
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$stateCount[2]++;
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$i++;
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}
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if($i === $maxI){
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return null;
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}
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while($i < $maxI && !$this->matrix->check($centerJ, $i) && $stateCount[3] < $maxCount){
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$stateCount[3]++;
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$i++;
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}
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if($i === $maxI || $stateCount[3] >= $maxCount){
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return null;
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}
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while($i < $maxI && $this->matrix->check($centerJ, $i) && $stateCount[4] < $maxCount){
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$stateCount[4]++;
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$i++;
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}
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if($stateCount[4] >= $maxCount){
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return null;
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}
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// If we found a finder-pattern-like section, but its size is more than 40% different from
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// the original, assume it's a false positive
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$stateCountTotal = ($stateCount[0] + $stateCount[1] + $stateCount[2] + $stateCount[3] + $stateCount[4]);
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if((5 * abs($stateCountTotal - $originalStateCountTotal)) >= (2 * $originalStateCountTotal)){
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return null;
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}
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if(!$this->foundPatternCross($stateCount)){
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return null;
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}
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return $this->centerFromEnd($stateCount, $i);
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}
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/**
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* Like #crossCheckVertical(int, int, int, int), and in fact is basically identical,
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* except it reads horizontally instead of vertically. This is used to cross-cross
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* check a vertical cross-check and locate the real center of the alignment pattern.
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* @noinspection DuplicatedCode
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*/
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private function crossCheckHorizontal(int $startJ, int $centerI, int $maxCount, int $originalStateCountTotal):?float{
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$maxJ = $this->matrix->getSize();
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$stateCount = $this->getCrossCheckStateCount();
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$j = $startJ;
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while($j >= 0 && $this->matrix->check($j, $centerI)){
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$stateCount[2]++;
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$j--;
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}
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if($j < 0){
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return null;
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}
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while($j >= 0 && !$this->matrix->check($j, $centerI) && $stateCount[1] <= $maxCount){
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$stateCount[1]++;
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$j--;
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}
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if($j < 0 || $stateCount[1] > $maxCount){
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return null;
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}
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while($j >= 0 && $this->matrix->check($j, $centerI) && $stateCount[0] <= $maxCount){
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$stateCount[0]++;
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$j--;
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}
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if($stateCount[0] > $maxCount){
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return null;
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}
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$j = ($startJ + 1);
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while($j < $maxJ && $this->matrix->check($j, $centerI)){
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$stateCount[2]++;
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$j++;
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}
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if($j === $maxJ){
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return null;
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}
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while($j < $maxJ && !$this->matrix->check($j, $centerI) && $stateCount[3] < $maxCount){
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$stateCount[3]++;
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$j++;
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}
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if($j === $maxJ || $stateCount[3] >= $maxCount){
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return null;
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}
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while($j < $maxJ && $this->matrix->check($j, $centerI) && $stateCount[4] < $maxCount){
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$stateCount[4]++;
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$j++;
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}
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if($stateCount[4] >= $maxCount){
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return null;
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}
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// If we found a finder-pattern-like section, but its size is significantly different from
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// the original, assume it's a false positive
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$stateCountTotal = ($stateCount[0] + $stateCount[1] + $stateCount[2] + $stateCount[3] + $stateCount[4]);
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if((5 * abs($stateCountTotal - $originalStateCountTotal)) >= $originalStateCountTotal){
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return null;
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}
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if(!$this->foundPatternCross($stateCount)){
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return null;
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}
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return $this->centerFromEnd($stateCount, $j);
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}
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/**
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* This is called when a horizontal scan finds a possible alignment pattern. It will
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* cross-check with a vertical scan, and if successful, will, ah, cross-cross-check
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* with another horizontal scan. This is needed primarily to locate the real horizontal
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* center of the pattern in cases of extreme skew.
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* And then we cross-cross-cross check with another diagonal scan.
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*
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* If that succeeds the finder pattern location is added to a list that tracks
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* the number of times each location has been nearly-matched as a finder pattern.
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* Each additional find is more evidence that the location is in fact a finder
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* pattern center
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*
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* @param int[] $stateCount reading state module counts from horizontal scan
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* @param int $i row where finder pattern may be found
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* @param int $j end of possible finder pattern in row
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*
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* @return bool if a finder pattern candidate was found this time
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*/
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private function handlePossibleCenter(array $stateCount, int $i, int $j):bool{
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$stateCountTotal = ($stateCount[0] + $stateCount[1] + $stateCount[2] + $stateCount[3] + $stateCount[4]);
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$centerJ = $this->centerFromEnd($stateCount, $j);
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$centerI = $this->crossCheckVertical($i, (int)$centerJ, $stateCount[2], $stateCountTotal);
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if($centerI !== null){
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// Re-cross check
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$centerJ = $this->crossCheckHorizontal((int)$centerJ, (int)$centerI, $stateCount[2], $stateCountTotal);
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if($centerJ !== null && ($this->crossCheckDiagonal((int)$centerI, (int)$centerJ))){
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$estimatedModuleSize = ($stateCountTotal / 7.0);
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$found = false;
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|
|
|
// cautious (was in for fool in which $this->possibleCenters is updated)
|
|
$count = count($this->possibleCenters);
|
|
|
|
for($index = 0; $index < $count; $index++){
|
|
$center = $this->possibleCenters[$index];
|
|
// Look for about the same center and module size:
|
|
if($center->aboutEquals($estimatedModuleSize, $centerI, $centerJ)){
|
|
$this->possibleCenters[$index] = $center->combineEstimate($centerI, $centerJ, $estimatedModuleSize);
|
|
$found = true;
|
|
break;
|
|
}
|
|
}
|
|
|
|
if(!$found){
|
|
$point = new FinderPattern($centerJ, $centerI, $estimatedModuleSize);
|
|
$this->possibleCenters[] = $point;
|
|
}
|
|
|
|
return true;
|
|
}
|
|
}
|
|
|
|
return false;
|
|
}
|
|
|
|
/**
|
|
* @return int number of rows we could safely skip during scanning, based on the first
|
|
* two finder patterns that have been located. In some cases their position will
|
|
* allow us to infer that the third pattern must lie below a certain point farther
|
|
* down in the image.
|
|
*/
|
|
private function findRowSkip():int{
|
|
$max = count($this->possibleCenters);
|
|
|
|
if($max <= 1){
|
|
return 0;
|
|
}
|
|
|
|
$firstConfirmedCenter = null;
|
|
|
|
foreach($this->possibleCenters as $center){
|
|
|
|
if($center->getCount() >= self::CENTER_QUORUM){
|
|
|
|
if($firstConfirmedCenter === null){
|
|
$firstConfirmedCenter = $center;
|
|
}
|
|
else{
|
|
// We have two confirmed centers
|
|
// How far down can we skip before resuming looking for the next
|
|
// pattern? In the worst case, only the difference between the
|
|
// difference in the x / y coordinates of the two centers.
|
|
// This is the case where you find top left last.
|
|
$this->hasSkipped = true;
|
|
|
|
return (int)((abs($firstConfirmedCenter->getX() - $center->getX()) -
|
|
abs($firstConfirmedCenter->getY() - $center->getY())) / 2);
|
|
}
|
|
}
|
|
}
|
|
|
|
return 0;
|
|
}
|
|
|
|
/**
|
|
* @return bool true if we have found at least 3 finder patterns that have been detected
|
|
* at least #CENTER_QUORUM times each, and, the estimated module size of the
|
|
* candidates is "pretty similar"
|
|
*/
|
|
private function haveMultiplyConfirmedCenters():bool{
|
|
$confirmedCount = 0;
|
|
$totalModuleSize = 0.0;
|
|
$max = count($this->possibleCenters);
|
|
|
|
foreach($this->possibleCenters as $pattern){
|
|
if($pattern->getCount() >= self::CENTER_QUORUM){
|
|
$confirmedCount++;
|
|
$totalModuleSize += $pattern->getEstimatedModuleSize();
|
|
}
|
|
}
|
|
|
|
if($confirmedCount < 3){
|
|
return false;
|
|
}
|
|
// OK, we have at least 3 confirmed centers, but, it's possible that one is a "false positive"
|
|
// and that we need to keep looking. We detect this by asking if the estimated module sizes
|
|
// vary too much. We arbitrarily say that when the total deviation from average exceeds
|
|
// 5% of the total module size estimates, it's too much.
|
|
$average = ($totalModuleSize / (float)$max);
|
|
$totalDeviation = 0.0;
|
|
|
|
foreach($this->possibleCenters as $pattern){
|
|
$totalDeviation += abs($pattern->getEstimatedModuleSize() - $average);
|
|
}
|
|
|
|
return $totalDeviation <= (0.05 * $totalModuleSize);
|
|
}
|
|
|
|
/**
|
|
* @return \chillerlan\QRCode\Detector\FinderPattern[] the 3 best FinderPatterns from our list of candidates. The "best" are
|
|
* those that have been detected at least #CENTER_QUORUM times, and whose module
|
|
* size differs from the average among those patterns the least
|
|
* @throws \chillerlan\QRCode\Detector\QRCodeDetectorException if 3 such finder patterns do not exist
|
|
*/
|
|
private function selectBestPatterns():array{
|
|
$startSize = count($this->possibleCenters);
|
|
|
|
if($startSize < 3){
|
|
throw new QRCodeDetectorException('could not find enough finder patterns');
|
|
}
|
|
|
|
usort(
|
|
$this->possibleCenters,
|
|
fn(FinderPattern $a, FinderPattern $b) => ($a->getEstimatedModuleSize() <=> $b->getEstimatedModuleSize())
|
|
);
|
|
|
|
$distortion = PHP_FLOAT_MAX;
|
|
$bestPatterns = [];
|
|
|
|
for($i = 0; $i < ($startSize - 2); $i++){
|
|
$fpi = $this->possibleCenters[$i];
|
|
$minModuleSize = $fpi->getEstimatedModuleSize();
|
|
|
|
for($j = ($i + 1); $j < ($startSize - 1); $j++){
|
|
$fpj = $this->possibleCenters[$j];
|
|
$squares0 = $fpi->getSquaredDistance($fpj);
|
|
|
|
for($k = ($j + 1); $k < $startSize; $k++){
|
|
$fpk = $this->possibleCenters[$k];
|
|
$maxModuleSize = $fpk->getEstimatedModuleSize();
|
|
|
|
// module size is not similar
|
|
if($maxModuleSize > ($minModuleSize * 1.4)){
|
|
continue;
|
|
}
|
|
|
|
$a = $squares0;
|
|
$b = $fpj->getSquaredDistance($fpk);
|
|
$c = $fpi->getSquaredDistance($fpk);
|
|
|
|
// sorts ascending - inlined
|
|
if($a < $b){
|
|
if($b > $c){
|
|
if($a < $c){
|
|
$temp = $b;
|
|
$b = $c;
|
|
$c = $temp;
|
|
}
|
|
else{
|
|
$temp = $a;
|
|
$a = $c;
|
|
$c = $b;
|
|
$b = $temp;
|
|
}
|
|
}
|
|
}
|
|
else{
|
|
if($b < $c){
|
|
if($a < $c){
|
|
$temp = $a;
|
|
$a = $b;
|
|
$b = $temp;
|
|
}
|
|
else{
|
|
$temp = $a;
|
|
$a = $b;
|
|
$b = $c;
|
|
$c = $temp;
|
|
}
|
|
}
|
|
else{
|
|
$temp = $a;
|
|
$a = $c;
|
|
$c = $temp;
|
|
}
|
|
}
|
|
|
|
// a^2 + b^2 = c^2 (Pythagorean theorem), and a = b (isosceles triangle).
|
|
// Since any right triangle satisfies the formula c^2 - b^2 - a^2 = 0,
|
|
// we need to check both two equal sides separately.
|
|
// The value of |c^2 - 2 * b^2| + |c^2 - 2 * a^2| increases as dissimilarity
|
|
// from isosceles right triangle.
|
|
$d = (abs($c - 2 * $b) + abs($c - 2 * $a));
|
|
|
|
if($d < $distortion){
|
|
$distortion = $d;
|
|
$bestPatterns = [$fpi, $fpj, $fpk];
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
if($distortion === PHP_FLOAT_MAX){
|
|
throw new QRCodeDetectorException('finder patterns may be too distorted');
|
|
}
|
|
|
|
return $bestPatterns;
|
|
}
|
|
|
|
/**
|
|
* Orders an array of three ResultPoints in an order [A,B,C] such that AB is less than AC
|
|
* and BC is less than AC, and the angle between BC and BA is less than 180 degrees.
|
|
*
|
|
* @param \chillerlan\QRCode\Detector\FinderPattern[] $patterns array of three FinderPattern to order
|
|
*
|
|
* @return \chillerlan\QRCode\Detector\FinderPattern[]
|
|
*/
|
|
private function orderBestPatterns(array $patterns):array{
|
|
|
|
// Find distances between pattern centers
|
|
$zeroOneDistance = $patterns[0]->getDistance($patterns[1]);
|
|
$oneTwoDistance = $patterns[1]->getDistance($patterns[2]);
|
|
$zeroTwoDistance = $patterns[0]->getDistance($patterns[2]);
|
|
|
|
// Assume one closest to other two is B; A and C will just be guesses at first
|
|
if($oneTwoDistance >= $zeroOneDistance && $oneTwoDistance >= $zeroTwoDistance){
|
|
[$pointB, $pointA, $pointC] = $patterns;
|
|
}
|
|
elseif($zeroTwoDistance >= $oneTwoDistance && $zeroTwoDistance >= $zeroOneDistance){
|
|
[$pointA, $pointB, $pointC] = $patterns;
|
|
}
|
|
else{
|
|
[$pointA, $pointC, $pointB] = $patterns;
|
|
}
|
|
|
|
// Use cross product to figure out whether A and C are correct or flipped.
|
|
// This asks whether BC x BA has a positive z component, which is the arrangement
|
|
// we want for A, B, C. If it's negative, then we've got it flipped around and
|
|
// should swap A and C.
|
|
if($this->crossProductZ($pointA, $pointB, $pointC) < 0.0){
|
|
$temp = $pointA;
|
|
$pointA = $pointC;
|
|
$pointC = $temp;
|
|
}
|
|
|
|
return [$pointA, $pointB, $pointC];
|
|
}
|
|
|
|
/**
|
|
* Returns the z component of the cross product between vectors BC and BA.
|
|
*/
|
|
private function crossProductZ(FinderPattern $pointA, FinderPattern $pointB, FinderPattern $pointC):float{
|
|
$bX = $pointB->getX();
|
|
$bY = $pointB->getY();
|
|
|
|
return ((($pointC->getX() - $bX) * ($pointA->getY() - $bY)) - (($pointC->getY() - $bY) * ($pointA->getX() - $bX)));
|
|
}
|
|
|
|
}
|