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@ -129,6 +129,7 @@ bool qrcodegen_encodeText(const char *text, uint8_t tempBuffer[], uint8_t qrcode
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enum qrcodegen_Ecc ecl, int minVersion, int maxVersion, enum qrcodegen_Mask mask, bool boostEcl) {
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size_t textLen = strlen(text);
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size_t i;
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if (textLen == 0)
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return qrcodegen_encodeSegmentsAdvanced(NULL, 0, ecl, minVersion, maxVersion, mask, boostEcl, tempBuffer, qrcode);
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size_t bufLen = qrcodegen_BUFFER_LEN_FOR_VERSION(maxVersion);
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@ -145,7 +146,7 @@ bool qrcodegen_encodeText(const char *text, uint8_t tempBuffer[], uint8_t qrcode
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} else {
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if (textLen > bufLen)
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goto fail;
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for (size_t i = 0; i < textLen; i++)
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for (i = 0; i < textLen; i++)
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tempBuffer[i] = (uint8_t)text[i];
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seg.mode = qrcodegen_Mode_BYTE;
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seg.bitLength = calcSegmentBitLength(seg.mode, textLen);
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@ -183,7 +184,8 @@ bool qrcodegen_encodeBinary(uint8_t dataAndTemp[], size_t dataLen, uint8_t qrcod
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// bit buffer, increasing the bit length. Requires 0 <= numBits <= 16 and val < 2^numBits.
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testable void appendBitsToBuffer(unsigned int val, int numBits, uint8_t buffer[], int *bitLen) {
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assert(0 <= numBits && numBits <= 16 && (unsigned long)val >> numBits == 0);
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for (int i = numBits - 1; i >= 0; i--, (*bitLen)++)
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int i;
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for (i = numBits - 1; i >= 0; i--, (*bitLen)++)
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buffer[*bitLen >> 3] |= ((val >> i) & 1) << (7 - (*bitLen & 7));
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}
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@ -208,6 +210,9 @@ bool qrcodegen_encodeSegmentsAdvanced(const struct qrcodegen_Segment segs[], siz
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// Find the minimal version number to use
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int version, dataUsedBits;
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int i, j;
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size_t k;
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uint8_t padByte;
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for (version = minVersion; ; version++) {
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int dataCapacityBits = getNumDataCodewords(version, ecl) * 8; // Number of data bits available
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dataUsedBits = getTotalBits(segs, len, version);
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@ -221,7 +226,7 @@ bool qrcodegen_encodeSegmentsAdvanced(const struct qrcodegen_Segment segs[], siz
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assert(dataUsedBits != -1);
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// Increase the error correction level while the data still fits in the current version number
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for (int i = (int)qrcodegen_Ecc_MEDIUM; i <= (int)qrcodegen_Ecc_HIGH; i++) { // From low to high
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for (i = (int)qrcodegen_Ecc_MEDIUM; i <= (int)qrcodegen_Ecc_HIGH; i++) { // From low to high
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if (boostEcl && dataUsedBits <= getNumDataCodewords(version, (enum qrcodegen_Ecc)i) * 8)
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ecl = (enum qrcodegen_Ecc)i;
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}
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@ -229,11 +234,11 @@ bool qrcodegen_encodeSegmentsAdvanced(const struct qrcodegen_Segment segs[], siz
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// Concatenate all segments to create the data bit string
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memset(qrcode, 0, qrcodegen_BUFFER_LEN_FOR_VERSION(version) * sizeof(qrcode[0]));
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int bitLen = 0;
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for (size_t i = 0; i < len; i++) {
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const struct qrcodegen_Segment *seg = &segs[i];
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for (k = 0; k < len; k++) {
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const struct qrcodegen_Segment *seg = &segs[k];
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appendBitsToBuffer((int)seg->mode, 4, qrcode, &bitLen);
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appendBitsToBuffer(seg->numChars, numCharCountBits(seg->mode, version), qrcode, &bitLen);
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for (int j = 0; j < seg->bitLength; j++)
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for (j = 0; j < seg->bitLength; j++)
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appendBitsToBuffer((seg->data[j >> 3] >> (7 - (j & 7))) & 1, 1, qrcode, &bitLen);
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}
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assert(bitLen == dataUsedBits);
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@ -249,7 +254,7 @@ bool qrcodegen_encodeSegmentsAdvanced(const struct qrcodegen_Segment segs[], siz
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assert(bitLen % 8 == 0);
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// Pad with alternating bytes until data capacity is reached
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for (uint8_t padByte = 0xEC; bitLen < dataCapacityBits; padByte ^= 0xEC ^ 0x11)
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for (padByte = 0xEC; bitLen < dataCapacityBits; padByte ^= 0xEC ^ 0x11)
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appendBitsToBuffer(padByte, 8, qrcode, &bitLen);
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// Draw function and data codeword modules
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@ -262,7 +267,7 @@ bool qrcodegen_encodeSegmentsAdvanced(const struct qrcodegen_Segment segs[], siz
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// Handle masking
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if (mask == qrcodegen_Mask_AUTO) { // Automatically choose best mask
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long minPenalty = LONG_MAX;
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for (int i = 0; i < 8; i++) {
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for (i = 0; i < 8; i++) {
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enum qrcodegen_Mask msk = (enum qrcodegen_Mask)i;
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applyMask(tempBuffer, qrcode, msk);
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drawFormatBits(ecl, msk, qrcode);
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@ -297,22 +302,22 @@ testable void addEccAndInterleave(uint8_t data[], int version, enum qrcodegen_Ec
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int dataLen = getNumDataCodewords(version, ecl);
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int numShortBlocks = numBlocks - rawCodewords % numBlocks;
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int shortBlockDataLen = rawCodewords / numBlocks - blockEccLen;
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int i, j, k;
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// Split data into blocks, calculate ECC, and interleave
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// (not concatenate) the bytes into a single sequence
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uint8_t generator[qrcodegen_REED_SOLOMON_DEGREE_MAX];
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calcReedSolomonGenerator(blockEccLen, generator);
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const uint8_t *dat = data;
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for (int i = 0; i < numBlocks; i++) {
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for (i = 0; i < numBlocks; i++) {
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int datLen = shortBlockDataLen + (i < numShortBlocks ? 0 : 1);
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uint8_t *ecc = &data[dataLen]; // Temporary storage
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calcReedSolomonRemainder(dat, datLen, generator, blockEccLen, ecc);
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for (int j = 0, k = i; j < datLen; j++, k += numBlocks) { // Copy data
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for (j = 0, k = i; j < datLen; j++, k += numBlocks) { // Copy data
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if (j == shortBlockDataLen)
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k -= numShortBlocks;
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result[k] = dat[j];
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}
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for (int j = 0, k = dataLen + i; j < blockEccLen; j++, k += numBlocks) // Copy ECC
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for (j = 0, k = dataLen + i; j < blockEccLen; j++, k += numBlocks) // Copy ECC
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result[k] = ecc[j];
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dat += datLen;
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}
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@ -353,16 +358,16 @@ testable int getNumRawDataModules(int ver) {
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testable void calcReedSolomonGenerator(int degree, uint8_t result[]) {
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// Start with the monomial x^0
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assert(1 <= degree && degree <= qrcodegen_REED_SOLOMON_DEGREE_MAX);
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int i, j;
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memset(result, 0, degree * sizeof(result[0]));
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result[degree - 1] = 1;
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// Compute the product polynomial (x - r^0) * (x - r^1) * (x - r^2) * ... * (x - r^{degree-1}),
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// drop the highest term, and store the rest of the coefficients in order of descending powers.
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// Note that r = 0x02, which is a generator element of this field GF(2^8/0x11D).
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uint8_t root = 1;
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for (int i = 0; i < degree; i++) {
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for (i = 0; i < degree; i++) {
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// Multiply the current product by (x - r^i)
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for (int j = 0; j < degree; j++) {
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for (j = 0; j < degree; j++) {
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result[j] = finiteFieldMultiply(result[j], root);
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if (j + 1 < degree)
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result[j] ^= result[j + 1];
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@ -379,12 +384,13 @@ testable void calcReedSolomonRemainder(const uint8_t data[], int dataLen,
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// Perform polynomial division
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assert(1 <= degree && degree <= qrcodegen_REED_SOLOMON_DEGREE_MAX);
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int i, j;
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memset(result, 0, degree * sizeof(result[0]));
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for (int i = 0; i < dataLen; i++) {
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for (i = 0; i < dataLen; i++) {
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uint8_t factor = data[i] ^ result[0];
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memmove(&result[0], &result[1], (degree - 1) * sizeof(result[0]));
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result[degree - 1] = 0;
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for (int j = 0; j < degree; j++)
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for (j = 0; j < degree; j++)
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result[j] ^= finiteFieldMultiply(generator[j], factor);
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}
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}
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@ -397,7 +403,8 @@ testable void calcReedSolomonRemainder(const uint8_t data[], int dataLen,
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testable uint8_t finiteFieldMultiply(uint8_t x, uint8_t y) {
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// Russian peasant multiplication
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uint8_t z = 0;
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for (int i = 7; i >= 0; i--) {
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int i;
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for (i = 7; i >= 0; i--) {
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z = (z << 1) ^ ((z >> 7) * 0x11D);
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z ^= ((y >> i) & 1) * x;
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}
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@ -413,6 +420,7 @@ testable uint8_t finiteFieldMultiply(uint8_t x, uint8_t y) {
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testable void initializeFunctionModules(int version, uint8_t qrcode[]) {
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// Initialize QR Code
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int qrsize = version * 4 + 17;
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int i, j;
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memset(qrcode, 0, ((qrsize * qrsize + 7) / 8 + 1) * sizeof(qrcode[0]));
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qrcode[0] = (uint8_t)qrsize;
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@ -428,8 +436,8 @@ testable void initializeFunctionModules(int version, uint8_t qrcode[]) {
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// Fill numerous alignment patterns
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uint8_t alignPatPos[7];
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int numAlign = getAlignmentPatternPositions(version, alignPatPos);
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for (int i = 0; i < numAlign; i++) {
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for (int j = 0; j < numAlign; j++) {
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for (i = 0; i < numAlign; i++) {
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for (j = 0; j < numAlign; j++) {
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// Don't draw on the three finder corners
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if (!((i == 0 && j == 0) || (i == 0 && j == numAlign - 1) || (i == numAlign - 1 && j == 0)))
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fillRectangle(alignPatPos[i] - 2, alignPatPos[j] - 2, 5, 5, qrcode);
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@ -450,14 +458,15 @@ testable void initializeFunctionModules(int version, uint8_t qrcode[]) {
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static void drawWhiteFunctionModules(uint8_t qrcode[], int version) {
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// Draw horizontal and vertical timing patterns
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int qrsize = qrcodegen_getSize(qrcode);
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for (int i = 7; i < qrsize - 7; i += 2) {
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int i, j, dy, dx;
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for (i = 7; i < qrsize - 7; i += 2) {
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setModule(qrcode, 6, i, false);
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setModule(qrcode, i, 6, false);
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}
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// Draw 3 finder patterns (all corners except bottom right; overwrites some timing modules)
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for (int dy = -4; dy <= 4; dy++) {
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for (int dx = -4; dx <= 4; dx++) {
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for (dy = -4; dy <= 4; dy++) {
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for (dx = -4; dx <= 4; dx++) {
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int dist = abs(dx);
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if (abs(dy) > dist)
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dist = abs(dy);
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@ -472,12 +481,12 @@ static void drawWhiteFunctionModules(uint8_t qrcode[], int version) {
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// Draw numerous alignment patterns
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uint8_t alignPatPos[7];
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int numAlign = getAlignmentPatternPositions(version, alignPatPos);
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for (int i = 0; i < numAlign; i++) {
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for (int j = 0; j < numAlign; j++) {
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for (i = 0; i < numAlign; i++) {
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for (j = 0; j < numAlign; j++) {
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if ((i == 0 && j == 0) || (i == 0 && j == numAlign - 1) || (i == numAlign - 1 && j == 0))
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continue; // Don't draw on the three finder corners
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for (int dy = -1; dy <= 1; dy++) {
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for (int dx = -1; dx <= 1; dx++)
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for (dy = -1; dy <= 1; dy++) {
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for (dx = -1; dx <= 1; dx++)
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setModule(qrcode, alignPatPos[i] + dx, alignPatPos[j] + dy, dx == 0 && dy == 0);
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}
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}
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@ -487,14 +496,14 @@ static void drawWhiteFunctionModules(uint8_t qrcode[], int version) {
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if (version >= 7) {
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// Calculate error correction code and pack bits
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int rem = version; // version is uint6, in the range [7, 40]
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for (int i = 0; i < 12; i++)
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for (i = 0; i < 12; i++)
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rem = (rem << 1) ^ ((rem >> 11) * 0x1F25);
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long bits = (long)version << 12 | rem; // uint18
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assert(bits >> 18 == 0);
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// Draw two copies
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for (int i = 0; i < 6; i++) {
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for (int j = 0; j < 3; j++) {
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for (i = 0; i < 6; i++) {
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for (j = 0; j < 3; j++) {
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int k = qrsize - 11 + j;
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setModule(qrcode, k, i, (bits & 1) != 0);
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setModule(qrcode, i, k, (bits & 1) != 0);
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@ -514,25 +523,26 @@ static void drawFormatBits(enum qrcodegen_Ecc ecl, enum qrcodegen_Mask mask, uin
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static const int table[] = {1, 0, 3, 2};
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int data = table[(int)ecl] << 3 | (int)mask; // errCorrLvl is uint2, mask is uint3
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int rem = data;
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for (int i = 0; i < 10; i++)
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int i;
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for (i = 0; i < 10; i++)
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rem = (rem << 1) ^ ((rem >> 9) * 0x537);
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int bits = (data << 10 | rem) ^ 0x5412; // uint15
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assert(bits >> 15 == 0);
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// Draw first copy
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for (int i = 0; i <= 5; i++)
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for (i = 0; i <= 5; i++)
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setModule(qrcode, 8, i, getBit(bits, i));
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setModule(qrcode, 8, 7, getBit(bits, 6));
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setModule(qrcode, 8, 8, getBit(bits, 7));
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setModule(qrcode, 7, 8, getBit(bits, 8));
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for (int i = 9; i < 15; i++)
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for (i = 9; i < 15; i++)
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setModule(qrcode, 14 - i, 8, getBit(bits, i));
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// Draw second copy
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int qrsize = qrcodegen_getSize(qrcode);
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for (int i = 0; i < 8; i++)
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for (i = 0; i < 8; i++)
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setModule(qrcode, qrsize - 1 - i, 8, getBit(bits, i));
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for (int i = 8; i < 15; i++)
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for (i = 8; i < 15; i++)
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setModule(qrcode, 8, qrsize - 15 + i, getBit(bits, i));
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setModule(qrcode, 8, qrsize - 8, true); // Always black
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}
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@ -543,12 +553,13 @@ static void drawFormatBits(enum qrcodegen_Ecc ecl, enum qrcodegen_Mask mask, uin
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// Each position is in the range [0,177), and are used on both the x and y axes.
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// This could be implemented as lookup table of 40 variable-length lists of unsigned bytes.
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testable int getAlignmentPatternPositions(int version, uint8_t result[7]) {
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int i, pos;
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if (version == 1)
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return 0;
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int numAlign = version / 7 + 2;
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int step = (version == 32) ? 26 :
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(version*4 + numAlign*2 + 1) / (numAlign*2 - 2) * 2;
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for (int i = numAlign - 1, pos = version * 4 + 10; i >= 1; i--, pos -= step)
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for (i = numAlign - 1, pos = version * 4 + 10; i >= 1; i--, pos -= step)
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result[i] = pos;
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result[0] = 6;
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return numAlign;
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@ -557,8 +568,9 @@ testable int getAlignmentPatternPositions(int version, uint8_t result[7]) {
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// Sets every pixel in the range [left : left + width] * [top : top + height] to black.
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static void fillRectangle(int left, int top, int width, int height, uint8_t qrcode[]) {
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for (int dy = 0; dy < height; dy++) {
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for (int dx = 0; dx < width; dx++)
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int dy, dx;
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for (dy = 0; dy < height; dy++) {
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for (dx = 0; dx < width; dx++)
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setModule(qrcode, left + dx, top + dy, true);
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}
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}
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@ -572,12 +584,13 @@ static void fillRectangle(int left, int top, int width, int height, uint8_t qrco
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static void drawCodewords(const uint8_t data[], int dataLen, uint8_t qrcode[]) {
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int qrsize = qrcodegen_getSize(qrcode);
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int i = 0; // Bit index into the data
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int j, right, vert;
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// Do the funny zigzag scan
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for (int right = qrsize - 1; right >= 1; right -= 2) { // Index of right column in each column pair
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for (right = qrsize - 1; right >= 1; right -= 2) { // Index of right column in each column pair
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if (right == 6)
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right = 5;
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for (int vert = 0; vert < qrsize; vert++) { // Vertical counter
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for (int j = 0; j < 2; j++) {
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for (vert = 0; vert < qrsize; vert++) { // Vertical counter
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for (j = 0; j < 2; j++) {
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int x = right - j; // Actual x coordinate
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bool upward = ((right + 1) & 2) == 0;
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int y = upward ? qrsize - 1 - vert : vert; // Actual y coordinate
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@ -603,8 +616,9 @@ static void drawCodewords(const uint8_t data[], int dataLen, uint8_t qrcode[]) {
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static void applyMask(const uint8_t functionModules[], uint8_t qrcode[], enum qrcodegen_Mask mask) {
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assert(0 <= (int)mask && (int)mask <= 7); // Disallows qrcodegen_Mask_AUTO
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int qrsize = qrcodegen_getSize(qrcode);
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for (int y = 0; y < qrsize; y++) {
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for (int x = 0; x < qrsize; x++) {
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int y, x;
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for (y = 0; y < qrsize; y++) {
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for (x = 0; x < qrsize; x++) {
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if (getModule(functionModules, x, y))
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continue;
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bool invert;
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@ -631,13 +645,13 @@ static void applyMask(const uint8_t functionModules[], uint8_t qrcode[], enum qr
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static long getPenaltyScore(const uint8_t qrcode[]) {
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int qrsize = qrcodegen_getSize(qrcode);
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long result = 0;
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int y, x;
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// Adjacent modules in row having same color, and finder-like patterns
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for (int y = 0; y < qrsize; y++) {
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for (y = 0; y < qrsize; y++) {
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unsigned char runHistory[7] = {0};
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bool color = false;
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unsigned char runX = 0;
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for (int x = 0; x < qrsize; x++) {
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for (x = 0; x < qrsize; x++) {
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if (getModule(qrcode, x, y) == color) {
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runX++;
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if (runX == 5)
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@ -659,11 +673,11 @@ static long getPenaltyScore(const uint8_t qrcode[]) {
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result += PENALTY_N3;
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}
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// Adjacent modules in column having same color, and finder-like patterns
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for (int x = 0; x < qrsize; x++) {
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for (x = 0; x < qrsize; x++) {
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unsigned char runHistory[7] = {0};
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bool color = false;
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unsigned char runY = 0;
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for (int y = 0; y < qrsize; y++) {
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for (y = 0; y < qrsize; y++) {
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if (getModule(qrcode, x, y) == color) {
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runY++;
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if (runY == 5)
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@ -686,8 +700,8 @@ static long getPenaltyScore(const uint8_t qrcode[]) {
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}
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// 2*2 blocks of modules having same color
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for (int y = 0; y < qrsize - 1; y++) {
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for (int x = 0; x < qrsize - 1; x++) {
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for (y = 0; y < qrsize - 1; y++) {
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for (x = 0; x < qrsize - 1; x++) {
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bool color = getModule(qrcode, x, y);
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if ( color == getModule(qrcode, x + 1, y) &&
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color == getModule(qrcode, x, y + 1) &&
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@ -698,8 +712,8 @@ static long getPenaltyScore(const uint8_t qrcode[]) {
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// Balance of black and white modules
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int black = 0;
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for (int y = 0; y < qrsize; y++) {
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for (int x = 0; x < qrsize; x++) {
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for (y = 0; y < qrsize; y++) {
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for (x = 0; x < qrsize; x++) {
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if (getModule(qrcode, x, y))
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black++;
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}
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@ -975,7 +989,8 @@ struct qrcodegen_Segment qrcodegen_makeEci(long assignVal, uint8_t buf[]) {
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testable int getTotalBits(const struct qrcodegen_Segment segs[], size_t len, int version) {
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assert(segs != NULL || len == 0);
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long result = 0;
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for (size_t i = 0; i < len; i++) {
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size_t i;
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for (i = 0; i < len; i++) {
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int numChars = segs[i].numChars;
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int bitLength = segs[i].bitLength;
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assert(0 <= numChars && numChars <= INT16_MAX);
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