coda_bar reader passes

This commit is contained in:
Henry Schimke
2022-12-03 11:43:27 -06:00
parent 419f573f5d
commit 34e2473a5d
13 changed files with 1020 additions and 823 deletions

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@@ -22,6 +22,7 @@ image = {version = "0.24.3", optional = true}
imageproc = {version = "0.23.0", optional = true}
unicode-segmentation = "1.10.0"
codepage-437 = "0.1.0"
one-d-reader-derive = { path = "one-d-reader-derive" }
[dev-dependencies]
java-properties = "1.4.1"

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@@ -0,0 +1,13 @@
[package]
name = "one-d-reader-derive"
version = "0.1.0"
edition = "2021"
[lib]
proc-macro = true
# See more keys and their definitions at https://doc.rust-lang.org/cargo/reference/manifest.html
[dependencies]
syn = "1.0"
quote = "1.0"

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@@ -0,0 +1,84 @@
use proc_macro::TokenStream;
use quote::quote;
use syn;
#[proc_macro_derive(OneDReader)]
pub fn one_d_reader_derive(input: TokenStream) -> TokenStream {
// Construct a representation of Rust code as a syntax tree
// that we can manipulate
let ast = syn::parse(input).unwrap();
// Build the trait implementation
impl_one_d_reader_macro(&ast)
}
fn impl_one_d_reader_macro(ast: &syn::DeriveInput) -> TokenStream {
let name = &ast.ident;
let gen = quote! {
use std::collections::HashMap;
use crate::result_point::ResultPoint;
use crate::DecodeHintType;
use crate::DecodingHintDictionary;
use crate::RXingResultMetadataType;
use crate::RXingResultMetadataValue;
use crate::RXingResultPoint;
use crate::Reader;
impl Reader for #name {
fn decode(&mut self, image: &crate::BinaryBitmap) -> Result<crate::RXingResult, Exceptions> {
self.decode_with_hints(image, &HashMap::new())
}
// Note that we don't try rotation without the try harder flag, even if rotation was supported.
fn decode_with_hints(
&mut self,
image: &crate::BinaryBitmap,
hints: &DecodingHintDictionary,
) -> Result<crate::RXingResult, Exceptions> {
if let Ok(res) = self.doDecode(image, hints) {
Ok(res)
}else {
let tryHarder = hints.contains_key(&DecodeHintType::TRY_HARDER);
if tryHarder && image.isRotateSupported() {
let rotatedImage = image.rotateCounterClockwise();
let mut result = self.doDecode(&rotatedImage, hints)?;
// Record that we found it rotated 90 degrees CCW / 270 degrees CW
let metadata = result.getRXingResultMetadata();
let mut orientation = 270;
if metadata.contains_key(&RXingResultMetadataType::ORIENTATION) {
// But if we found it reversed in doDecode(), add in that result here:
orientation = (orientation +
if let Some(crate::RXingResultMetadataValue::Orientation(or)) = metadata.get(&RXingResultMetadataType::ORIENTATION) {
*or
}else {
0
}) % 360;
}
result.putMetadata(RXingResultMetadataType::ORIENTATION, RXingResultMetadataValue::Orientation(orientation));
// Update result points
// let points = result.getRXingResultPoints();
// if points != null {
let height = rotatedImage.getHeight();
// for point in result.getRXingResultPointsMut().iter_mut() {
let total_points = result.getRXingResultPoints().len();
let points = result.getRXingResultPointsMut();
for i in 0..total_points{
// for (int i = 0; i < points.length; i++) {
points[i] = RXingResultPoint::new(height as f32- points[i].getY() - 1.0, points[i].getX());
}
// }
Ok(result)
} else {
return Err(Exceptions::NotFoundException("".to_owned()))
}
}
}
fn reset(&mut self) {
// do nothing
}
}
};
gen.into()
}

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@@ -85,9 +85,9 @@ impl Binarizer for GlobalHistogramBinarizer {
let mut center = localLuminances[1]; // & 0xff;
for x in 1..width - 1 {
// for (int x = 1; x < width - 1; x++) {
let right = localLuminances[x + 1] & 0xff;
let right = localLuminances[x + 1];
// A simple -1 4 -1 box filter with a weight of 2.
if ((center * 4) - left - right) as u32 / 2 < blackPoint {
if ((center as i64 * 4) - left as i64 - right as i64) / 2 < blackPoint as i64 {
row.set(x);
}
left = center;

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@@ -1,343 +0,0 @@
/*
* Copyright 2008 ZXing authors
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
package com.google.zxing.oned;
import com.google.zxing.BarcodeFormat;
import com.google.zxing.DecodeHintType;
import com.google.zxing.NotFoundException;
import com.google.zxing.RXingResult;
import com.google.zxing.RXingResultMetadataType;
import com.google.zxing.RXingResultPoint;
import com.google.zxing.common.BitArray;
import java.util.Arrays;
import java.util.Map;
/**
* <p>Decodes Codabar barcodes.</p>
*
* @author Bas Vijfwinkel
* @author David Walker
*/
public final class CodaBarReader extends OneDReader {
// These values are critical for determining how permissive the decoding
// will be. All stripe sizes must be within the window these define, as
// compared to the average stripe size.
private static final float MAX_ACCEPTABLE = 2.0f;
private static final float PADDING = 1.5f;
private static final String ALPHABET_STRING = "0123456789-$:/.+ABCD";
static final char[] ALPHABET = ALPHABET_STRING.toCharArray();
/**
* These represent the encodings of characters, as patterns of wide and narrow bars. The 7 least-significant bits of
* each int correspond to the pattern of wide and narrow, with 1s representing "wide" and 0s representing narrow.
*/
static final int[] CHARACTER_ENCODINGS = {
0x003, 0x006, 0x009, 0x060, 0x012, 0x042, 0x021, 0x024, 0x030, 0x048, // 0-9
0x00c, 0x018, 0x045, 0x051, 0x054, 0x015, 0x01A, 0x029, 0x00B, 0x00E, // -$:/.+ABCD
};
// minimal number of characters that should be present (including start and stop characters)
// under normal circumstances this should be set to 3, but can be set higher
// as a last-ditch attempt to reduce false positives.
private static final int MIN_CHARACTER_LENGTH = 3;
// official start and end patterns
private static final char[] STARTEND_ENCODING = {'A', 'B', 'C', 'D'};
// some Codabar generator allow the Codabar string to be closed by every
// character. This will cause lots of false positives!
// some industries use a checksum standard but this is not part of the original Codabar standard
// for more information see : http://www.mecsw.com/specs/codabar.html
// Keep some instance variables to avoid reallocations
private final StringBuilder decodeRowRXingResult;
private int[] counters;
private int counterLength;
public CodaBarReader() {
decodeRowRXingResult = new StringBuilder(20);
counters = new int[80];
counterLength = 0;
}
@Override
public RXingResult decodeRow(int rowNumber, BitArray row, Map<DecodeHintType,?> hints) throws NotFoundException {
Arrays.fill(counters, 0);
setCounters(row);
int startOffset = findStartPattern();
int nextStart = startOffset;
decodeRowRXingResult.setLength(0);
do {
int charOffset = toNarrowWidePattern(nextStart);
if (charOffset == -1) {
throw NotFoundException.getNotFoundInstance();
}
// Hack: We store the position in the alphabet table into a
// StringBuilder, so that we can access the decoded patterns in
// validatePattern. We'll translate to the actual characters later.
decodeRowRXingResult.append((char) charOffset);
nextStart += 8;
// Stop as soon as we see the end character.
if (decodeRowRXingResult.length() > 1 &&
arrayContains(STARTEND_ENCODING, ALPHABET[charOffset])) {
break;
}
} while (nextStart < counterLength); // no fixed end pattern so keep on reading while data is available
// Look for whitespace after pattern:
int trailingWhitespace = counters[nextStart - 1];
int lastPatternSize = 0;
for (int i = -8; i < -1; i++) {
lastPatternSize += counters[nextStart + i];
}
// We need to see whitespace equal to 50% of the last pattern size,
// otherwise this is probably a false positive. The exception is if we are
// at the end of the row. (I.e. the barcode barely fits.)
if (nextStart < counterLength && trailingWhitespace < lastPatternSize / 2) {
throw NotFoundException.getNotFoundInstance();
}
validatePattern(startOffset);
// Translate character table offsets to actual characters.
for (int i = 0; i < decodeRowRXingResult.length(); i++) {
decodeRowRXingResult.setCharAt(i, ALPHABET[decodeRowRXingResult.charAt(i)]);
}
// Ensure a valid start and end character
char startchar = decodeRowRXingResult.charAt(0);
if (!arrayContains(STARTEND_ENCODING, startchar)) {
throw NotFoundException.getNotFoundInstance();
}
char endchar = decodeRowRXingResult.charAt(decodeRowRXingResult.length() - 1);
if (!arrayContains(STARTEND_ENCODING, endchar)) {
throw NotFoundException.getNotFoundInstance();
}
// remove stop/start characters character and check if a long enough string is contained
if (decodeRowRXingResult.length() <= MIN_CHARACTER_LENGTH) {
// Almost surely a false positive ( start + stop + at least 1 character)
throw NotFoundException.getNotFoundInstance();
}
if (hints == null || !hints.containsKey(DecodeHintType.RETURN_CODABAR_START_END)) {
decodeRowRXingResult.deleteCharAt(decodeRowRXingResult.length() - 1);
decodeRowRXingResult.deleteCharAt(0);
}
int runningCount = 0;
for (int i = 0; i < startOffset; i++) {
runningCount += counters[i];
}
float left = runningCount;
for (int i = startOffset; i < nextStart - 1; i++) {
runningCount += counters[i];
}
float right = runningCount;
RXingResult result = new RXingResult(
decodeRowRXingResult.toString(),
null,
new RXingResultPoint[]{
new RXingResultPoint(left, rowNumber),
new RXingResultPoint(right, rowNumber)},
BarcodeFormat.CODABAR);
result.putMetadata(RXingResultMetadataType.SYMBOLOGY_IDENTIFIER, "]F0");
return result;
}
private void validatePattern(int start) throws NotFoundException {
// First, sum up the total size of our four categories of stripe sizes;
int[] sizes = {0, 0, 0, 0};
int[] counts = {0, 0, 0, 0};
int end = decodeRowRXingResult.length() - 1;
// We break out of this loop in the middle, in order to handle
// inter-character spaces properly.
int pos = start;
for (int i = 0; i <= end; i++) {
int pattern = CHARACTER_ENCODINGS[decodeRowRXingResult.charAt(i)];
for (int j = 6; j >= 0; j--) {
// Even j = bars, while odd j = spaces. Categories 2 and 3 are for
// long stripes, while 0 and 1 are for short stripes.
int category = (j & 1) + (pattern & 1) * 2;
sizes[category] += counters[pos + j];
counts[category]++;
pattern >>= 1;
}
// We ignore the inter-character space - it could be of any size.
pos += 8;
}
// Calculate our allowable size thresholds using fixed-point math.
float[] maxes = new float[4];
float[] mins = new float[4];
// Define the threshold of acceptability to be the midpoint between the
// average small stripe and the average large stripe. No stripe lengths
// should be on the "wrong" side of that line.
for (int i = 0; i < 2; i++) {
mins[i] = 0.0f; // Accept arbitrarily small "short" stripes.
mins[i + 2] = ((float) sizes[i] / counts[i] + (float) sizes[i + 2] / counts[i + 2]) / 2.0f;
maxes[i] = mins[i + 2];
maxes[i + 2] = (sizes[i + 2] * MAX_ACCEPTABLE + PADDING) / counts[i + 2];
}
// Now verify that all of the stripes are within the thresholds.
pos = start;
for (int i = 0; i <= end; i++) {
int pattern = CHARACTER_ENCODINGS[decodeRowRXingResult.charAt(i)];
for (int j = 6; j >= 0; j--) {
// Even j = bars, while odd j = spaces. Categories 2 and 3 are for
// long stripes, while 0 and 1 are for short stripes.
int category = (j & 1) + (pattern & 1) * 2;
int size = counters[pos + j];
if (size < mins[category] || size > maxes[category]) {
throw NotFoundException.getNotFoundInstance();
}
pattern >>= 1;
}
pos += 8;
}
}
/**
* Records the size of all runs of white and black pixels, starting with white.
* This is just like recordPattern, except it records all the counters, and
* uses our builtin "counters" member for storage.
* @param row row to count from
*/
private void setCounters(BitArray row) throws NotFoundException {
counterLength = 0;
// Start from the first white bit.
int i = row.getNextUnset(0);
int end = row.getSize();
if (i >= end) {
throw NotFoundException.getNotFoundInstance();
}
boolean isWhite = true;
int count = 0;
while (i < end) {
if (row.get(i) != isWhite) {
count++;
} else {
counterAppend(count);
count = 1;
isWhite = !isWhite;
}
i++;
}
counterAppend(count);
}
private void counterAppend(int e) {
counters[counterLength] = e;
counterLength++;
if (counterLength >= counters.length) {
int[] temp = new int[counterLength * 2];
System.arraycopy(counters, 0, temp, 0, counterLength);
counters = temp;
}
}
private int findStartPattern() throws NotFoundException {
for (int i = 1; i < counterLength; i += 2) {
int charOffset = toNarrowWidePattern(i);
if (charOffset != -1 && arrayContains(STARTEND_ENCODING, ALPHABET[charOffset])) {
// Look for whitespace before start pattern, >= 50% of width of start pattern
// We make an exception if the whitespace is the first element.
int patternSize = 0;
for (int j = i; j < i + 7; j++) {
patternSize += counters[j];
}
if (i == 1 || counters[i - 1] >= patternSize / 2) {
return i;
}
}
}
throw NotFoundException.getNotFoundInstance();
}
static boolean arrayContains(char[] array, char key) {
if (array != null) {
for (char c : array) {
if (c == key) {
return true;
}
}
}
return false;
}
// Assumes that counters[position] is a bar.
private int toNarrowWidePattern(int position) {
int end = position + 7;
if (end >= counterLength) {
return -1;
}
int[] theCounters = counters;
int maxBar = 0;
int minBar = Integer.MAX_VALUE;
for (int j = position; j < end; j += 2) {
int currentCounter = theCounters[j];
if (currentCounter < minBar) {
minBar = currentCounter;
}
if (currentCounter > maxBar) {
maxBar = currentCounter;
}
}
int thresholdBar = (minBar + maxBar) / 2;
int maxSpace = 0;
int minSpace = Integer.MAX_VALUE;
for (int j = position + 1; j < end; j += 2) {
int currentCounter = theCounters[j];
if (currentCounter < minSpace) {
minSpace = currentCounter;
}
if (currentCounter > maxSpace) {
maxSpace = currentCounter;
}
}
int thresholdSpace = (minSpace + maxSpace) / 2;
int bitmask = 1 << 7;
int pattern = 0;
for (int i = 0; i < 7; i++) {
int threshold = (i & 1) == 0 ? thresholdBar : thresholdSpace;
bitmask >>= 1;
if (theCounters[position + i] > threshold) {
pattern |= bitmask;
}
}
for (int i = 0; i < CHARACTER_ENCODINGS.length; i++) {
if (CHARACTER_ENCODINGS[i] == pattern) {
return i;
}
}
return -1;
}
}

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@@ -1,171 +0,0 @@
/*
* Copyright (C) 2010 ZXing authors
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
package com.google.zxing.oned;
import java.util.ArrayList;
import java.util.List;
/**
* Records EAN prefix to GS1 Member Organization, where the member organization
* correlates strongly with a country. This is an imperfect means of identifying
* a country of origin by EAN-13 barcode value. See
* <a href="http://en.wikipedia.org/wiki/List_of_GS1_country_codes">
* http://en.wikipedia.org/wiki/List_of_GS1_country_codes</a>.
*
* @author Sean Owen
*/
final class EANManufacturerOrgSupport {
private final List<int[]> ranges = new ArrayList<>();
private final List<String> countryIdentifiers = new ArrayList<>();
String lookupCountryIdentifier(String productCode) {
initIfNeeded();
int prefix = Integer.parseInt(productCode.substring(0, 3));
int max = ranges.size();
for (int i = 0; i < max; i++) {
int[] range = ranges.get(i);
int start = range[0];
if (prefix < start) {
return null;
}
int end = range.length == 1 ? start : range[1];
if (prefix <= end) {
return countryIdentifiers.get(i);
}
}
return null;
}
private void add(int[] range, String id) {
ranges.add(range);
countryIdentifiers.add(id);
}
private synchronized void initIfNeeded() {
if (!ranges.isEmpty()) {
return;
}
add(new int[] {0,19}, "US/CA");
add(new int[] {30,39}, "US");
add(new int[] {60,139}, "US/CA");
add(new int[] {300,379}, "FR");
add(new int[] {380}, "BG");
add(new int[] {383}, "SI");
add(new int[] {385}, "HR");
add(new int[] {387}, "BA");
add(new int[] {400,440}, "DE");
add(new int[] {450,459}, "JP");
add(new int[] {460,469}, "RU");
add(new int[] {471}, "TW");
add(new int[] {474}, "EE");
add(new int[] {475}, "LV");
add(new int[] {476}, "AZ");
add(new int[] {477}, "LT");
add(new int[] {478}, "UZ");
add(new int[] {479}, "LK");
add(new int[] {480}, "PH");
add(new int[] {481}, "BY");
add(new int[] {482}, "UA");
add(new int[] {484}, "MD");
add(new int[] {485}, "AM");
add(new int[] {486}, "GE");
add(new int[] {487}, "KZ");
add(new int[] {489}, "HK");
add(new int[] {490,499}, "JP");
add(new int[] {500,509}, "GB");
add(new int[] {520}, "GR");
add(new int[] {528}, "LB");
add(new int[] {529}, "CY");
add(new int[] {531}, "MK");
add(new int[] {535}, "MT");
add(new int[] {539}, "IE");
add(new int[] {540,549}, "BE/LU");
add(new int[] {560}, "PT");
add(new int[] {569}, "IS");
add(new int[] {570,579}, "DK");
add(new int[] {590}, "PL");
add(new int[] {594}, "RO");
add(new int[] {599}, "HU");
add(new int[] {600,601}, "ZA");
add(new int[] {603}, "GH");
add(new int[] {608}, "BH");
add(new int[] {609}, "MU");
add(new int[] {611}, "MA");
add(new int[] {613}, "DZ");
add(new int[] {616}, "KE");
add(new int[] {618}, "CI");
add(new int[] {619}, "TN");
add(new int[] {621}, "SY");
add(new int[] {622}, "EG");
add(new int[] {624}, "LY");
add(new int[] {625}, "JO");
add(new int[] {626}, "IR");
add(new int[] {627}, "KW");
add(new int[] {628}, "SA");
add(new int[] {629}, "AE");
add(new int[] {640,649}, "FI");
add(new int[] {690,695}, "CN");
add(new int[] {700,709}, "NO");
add(new int[] {729}, "IL");
add(new int[] {730,739}, "SE");
add(new int[] {740}, "GT");
add(new int[] {741}, "SV");
add(new int[] {742}, "HN");
add(new int[] {743}, "NI");
add(new int[] {744}, "CR");
add(new int[] {745}, "PA");
add(new int[] {746}, "DO");
add(new int[] {750}, "MX");
add(new int[] {754,755}, "CA");
add(new int[] {759}, "VE");
add(new int[] {760,769}, "CH");
add(new int[] {770}, "CO");
add(new int[] {773}, "UY");
add(new int[] {775}, "PE");
add(new int[] {777}, "BO");
add(new int[] {779}, "AR");
add(new int[] {780}, "CL");
add(new int[] {784}, "PY");
add(new int[] {785}, "PE");
add(new int[] {786}, "EC");
add(new int[] {789,790}, "BR");
add(new int[] {800,839}, "IT");
add(new int[] {840,849}, "ES");
add(new int[] {850}, "CU");
add(new int[] {858}, "SK");
add(new int[] {859}, "CZ");
add(new int[] {860}, "YU");
add(new int[] {865}, "MN");
add(new int[] {867}, "KP");
add(new int[] {868,869}, "TR");
add(new int[] {870,879}, "NL");
add(new int[] {880}, "KR");
add(new int[] {885}, "TH");
add(new int[] {888}, "SG");
add(new int[] {890}, "IN");
add(new int[] {893}, "VN");
add(new int[] {896}, "PK");
add(new int[] {899}, "ID");
add(new int[] {900,919}, "AT");
add(new int[] {930,939}, "AU");
add(new int[] {940,949}, "AZ");
add(new int[] {955}, "MY");
add(new int[] {958}, "MO");
}
}

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@@ -1,296 +0,0 @@
/*
* Copyright 2008 ZXing authors
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
package com.google.zxing.oned;
import com.google.zxing.BinaryBitmap;
import com.google.zxing.ChecksumException;
import com.google.zxing.DecodeHintType;
import com.google.zxing.FormatException;
import com.google.zxing.NotFoundException;
import com.google.zxing.Reader;
import com.google.zxing.ReaderException;
import com.google.zxing.RXingResult;
import com.google.zxing.RXingResultMetadataType;
import com.google.zxing.RXingResultPoint;
import com.google.zxing.common.BitArray;
import java.util.Arrays;
import java.util.EnumMap;
import java.util.Map;
/**
* Encapsulates functionality and implementation that is common to all families
* of one-dimensional barcodes.
*
* @author dswitkin@google.com (Daniel Switkin)
* @author Sean Owen
*/
public abstract class OneDReader implements Reader {
@Override
public RXingResult decode(BinaryBitmap image) throws NotFoundException, FormatException {
return decode(image, null);
}
// Note that we don't try rotation without the try harder flag, even if rotation was supported.
@Override
public RXingResult decode(BinaryBitmap image,
Map<DecodeHintType,?> hints) throws NotFoundException, FormatException {
try {
return doDecode(image, hints);
} catch (NotFoundException nfe) {
boolean tryHarder = hints != null && hints.containsKey(DecodeHintType.TRY_HARDER);
if (tryHarder && image.isRotateSupported()) {
BinaryBitmap rotatedImage = image.rotateCounterClockwise();
RXingResult result = doDecode(rotatedImage, hints);
// Record that we found it rotated 90 degrees CCW / 270 degrees CW
Map<RXingResultMetadataType,?> metadata = result.getRXingResultMetadata();
int orientation = 270;
if (metadata != null && metadata.containsKey(RXingResultMetadataType.ORIENTATION)) {
// But if we found it reversed in doDecode(), add in that result here:
orientation = (orientation +
(Integer) metadata.get(RXingResultMetadataType.ORIENTATION)) % 360;
}
result.putMetadata(RXingResultMetadataType.ORIENTATION, orientation);
// Update result points
RXingResultPoint[] points = result.getRXingResultPoints();
if (points != null) {
int height = rotatedImage.getHeight();
for (int i = 0; i < points.length; i++) {
points[i] = new RXingResultPoint(height - points[i].getY() - 1, points[i].getX());
}
}
return result;
} else {
throw nfe;
}
}
}
@Override
public void reset() {
// do nothing
}
/**
* We're going to examine rows from the middle outward, searching alternately above and below the
* middle, and farther out each time. rowStep is the number of rows between each successive
* attempt above and below the middle. So we'd scan row middle, then middle - rowStep, then
* middle + rowStep, then middle - (2 * rowStep), etc.
* rowStep is bigger as the image is taller, but is always at least 1. We've somewhat arbitrarily
* decided that moving up and down by about 1/16 of the image is pretty good; we try more of the
* image if "trying harder".
*
* @param image The image to decode
* @param hints Any hints that were requested
* @return The contents of the decoded barcode
* @throws NotFoundException Any spontaneous errors which occur
*/
private RXingResult doDecode(BinaryBitmap image,
Map<DecodeHintType,?> hints) throws NotFoundException {
int width = image.getWidth();
int height = image.getHeight();
BitArray row = new BitArray(width);
boolean tryHarder = hints != null && hints.containsKey(DecodeHintType.TRY_HARDER);
int rowStep = Math.max(1, height >> (tryHarder ? 8 : 5));
int maxLines;
if (tryHarder) {
maxLines = height; // Look at the whole image, not just the center
} else {
maxLines = 15; // 15 rows spaced 1/32 apart is roughly the middle half of the image
}
int middle = height / 2;
for (int x = 0; x < maxLines; x++) {
// Scanning from the middle out. Determine which row we're looking at next:
int rowStepsAboveOrBelow = (x + 1) / 2;
boolean isAbove = (x & 0x01) == 0; // i.e. is x even?
int rowNumber = middle + rowStep * (isAbove ? rowStepsAboveOrBelow : -rowStepsAboveOrBelow);
if (rowNumber < 0 || rowNumber >= height) {
// Oops, if we run off the top or bottom, stop
break;
}
// Estimate black point for this row and load it:
try {
row = image.getBlackRow(rowNumber, row);
} catch (NotFoundException ignored) {
continue;
}
// While we have the image data in a BitArray, it's fairly cheap to reverse it in place to
// handle decoding upside down barcodes.
for (int attempt = 0; attempt < 2; attempt++) {
if (attempt == 1) { // trying again?
row.reverse(); // reverse the row and continue
// This means we will only ever draw result points *once* in the life of this method
// since we want to avoid drawing the wrong points after flipping the row, and,
// don't want to clutter with noise from every single row scan -- just the scans
// that start on the center line.
if (hints != null && hints.containsKey(DecodeHintType.NEED_RESULT_POINT_CALLBACK)) {
Map<DecodeHintType,Object> newHints = new EnumMap<>(DecodeHintType.class);
newHints.putAll(hints);
newHints.remove(DecodeHintType.NEED_RESULT_POINT_CALLBACK);
hints = newHints;
}
}
try {
// Look for a barcode
RXingResult result = decodeRow(rowNumber, row, hints);
// We found our barcode
if (attempt == 1) {
// But it was upside down, so note that
result.putMetadata(RXingResultMetadataType.ORIENTATION, 180);
// And remember to flip the result points horizontally.
RXingResultPoint[] points = result.getRXingResultPoints();
if (points != null) {
points[0] = new RXingResultPoint(width - points[0].getX() - 1, points[0].getY());
points[1] = new RXingResultPoint(width - points[1].getX() - 1, points[1].getY());
}
}
return result;
} catch (ReaderException re) {
// continue -- just couldn't decode this row
}
}
}
throw NotFoundException.getNotFoundInstance();
}
/**
* Records the size of successive runs of white and black pixels in a row, starting at a given point.
* The values are recorded in the given array, and the number of runs recorded is equal to the size
* of the array. If the row starts on a white pixel at the given start point, then the first count
* recorded is the run of white pixels starting from that point; likewise it is the count of a run
* of black pixels if the row begin on a black pixels at that point.
*
* @param row row to count from
* @param start offset into row to start at
* @param counters array into which to record counts
* @throws NotFoundException if counters cannot be filled entirely from row before running out
* of pixels
*/
protected static void recordPattern(BitArray row,
int start,
int[] counters) throws NotFoundException {
int numCounters = counters.length;
Arrays.fill(counters, 0, numCounters, 0);
int end = row.getSize();
if (start >= end) {
throw NotFoundException.getNotFoundInstance();
}
boolean isWhite = !row.get(start);
int counterPosition = 0;
int i = start;
while (i < end) {
if (row.get(i) != isWhite) {
counters[counterPosition]++;
} else {
if (++counterPosition == numCounters) {
break;
} else {
counters[counterPosition] = 1;
isWhite = !isWhite;
}
}
i++;
}
// If we read fully the last section of pixels and filled up our counters -- or filled
// the last counter but ran off the side of the image, OK. Otherwise, a problem.
if (!(counterPosition == numCounters || (counterPosition == numCounters - 1 && i == end))) {
throw NotFoundException.getNotFoundInstance();
}
}
protected static void recordPatternInReverse(BitArray row, int start, int[] counters)
throws NotFoundException {
// This could be more efficient I guess
int numTransitionsLeft = counters.length;
boolean last = row.get(start);
while (start > 0 && numTransitionsLeft >= 0) {
if (row.get(--start) != last) {
numTransitionsLeft--;
last = !last;
}
}
if (numTransitionsLeft >= 0) {
throw NotFoundException.getNotFoundInstance();
}
recordPattern(row, start + 1, counters);
}
/**
* Determines how closely a set of observed counts of runs of black/white values matches a given
* target pattern. This is reported as the ratio of the total variance from the expected pattern
* proportions across all pattern elements, to the length of the pattern.
*
* @param counters observed counters
* @param pattern expected pattern
* @param maxIndividualVariance The most any counter can differ before we give up
* @return ratio of total variance between counters and pattern compared to total pattern size
*/
protected static float patternMatchVariance(int[] counters,
int[] pattern,
float maxIndividualVariance) {
int numCounters = counters.length;
int total = 0;
int patternLength = 0;
for (int i = 0; i < numCounters; i++) {
total += counters[i];
patternLength += pattern[i];
}
if (total < patternLength) {
// If we don't even have one pixel per unit of bar width, assume this is too small
// to reliably match, so fail:
return Float.POSITIVE_INFINITY;
}
float unitBarWidth = (float) total / patternLength;
maxIndividualVariance *= unitBarWidth;
float totalVariance = 0.0f;
for (int x = 0; x < numCounters; x++) {
int counter = counters[x];
float scaledPattern = pattern[x] * unitBarWidth;
float variance = counter > scaledPattern ? counter - scaledPattern : scaledPattern - counter;
if (variance > maxIndividualVariance) {
return Float.POSITIVE_INFINITY;
}
totalVariance += variance;
}
return totalVariance / total;
}
/**
* <p>Attempts to decode a one-dimensional barcode format given a single row of
* an image.</p>
*
* @param rowNumber row number from top of the row
* @param row the black/white pixel data of the row
* @param hints decode hints
* @return {@link RXingResult} containing encoded string and start/end of barcode
* @throws NotFoundException if no potential barcode is found
* @throws ChecksumException if a potential barcode is found but does not pass its checksum
* @throws FormatException if a potential barcode is found but format is invalid
*/
public abstract RXingResult decodeRow(int rowNumber, BitArray row, Map<DecodeHintType,?> hints)
throws NotFoundException, ChecksumException, FormatException;
}

427
src/oned/coda_bar_reader.rs Normal file
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/*
* Copyright 2008 ZXing authors
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
use one_d_reader_derive::OneDReader;
use crate::common::BitArray;
use crate::BarcodeFormat;
use crate::Exceptions;
use crate::RXingResult;
use super::OneDReader;
/**
* <p>Decodes Codabar barcodes.</p>
*
* @author Bas Vijfwinkel
* @author David Walker
*/
#[derive(OneDReader)]
pub struct CodaBarReader {
// Keep some instance variables to avoid reallocations
decodeRowRXingResult: String,
counters: Vec<u32>,
counterLength: usize,
}
impl Default for CodaBarReader {
fn default() -> Self {
Self {
decodeRowRXingResult: Default::default(),
counters: Default::default(),
counterLength: Default::default(),
}
}
}
impl OneDReader for CodaBarReader {
fn decodeRow(
&mut self,
rowNumber: u32,
row: &crate::common::BitArray,
hints: &crate::DecodingHintDictionary,
) -> Result<crate::RXingResult, crate::Exceptions> {
self.counters.fill(0);
// Arrays.fill(counters, 0);
self.setCounters(row)?;
let startOffset = self.findStartPattern()? as usize;
let mut nextStart = startOffset;
self.decodeRowRXingResult.clear();
loop {
let charOffset = self.toNarrowWidePattern(nextStart);
if charOffset == -1 {
return Err(Exceptions::NotFoundException("".to_owned()));
}
// Hack: We store the position in the alphabet table into a
// StringBuilder, so that we can access the decoded patterns in
// validatePattern. We'll translate to the actual characters later.
self.decodeRowRXingResult
.push(char::from_u32(charOffset as u32).unwrap());
nextStart += 8;
// Stop as soon as we see the end character.
if self.decodeRowRXingResult.chars().count() > 1
&& Self::arrayContains(
&Self::STARTEND_ENCODING,
Self::ALPHABET[charOffset as usize],
)
{
break;
}
if !(nextStart < self.counterLength) {
break;
} // no fixed end pattern so keep on reading while data is available
} //while (nextStart < counterLength); // no fixed end pattern so keep on reading while data is available
// Look for whitespace after pattern:
let trailingWhitespace = self.counters[nextStart - 1];
let mut lastPatternSize = 0;
for i in -8isize..-1isize {
// for (int i = -8; i < -1; i++) {
lastPatternSize += self.counters[(nextStart as isize + i) as usize];
}
// We need to see whitespace equal to 50% of the last pattern size,
// otherwise this is probably a false positive. The exception is if we are
// at the end of the row. (I.e. the barcode barely fits.)
if nextStart < self.counterLength && trailingWhitespace < lastPatternSize / 2 {
return Err(Exceptions::NotFoundException("".to_owned()));
}
self.validatePattern(startOffset)?;
// Translate character table offsets to actual characters.
for i in 0..self.decodeRowRXingResult.chars().count() {
// for (int i = 0; i < decodeRowRXingResult.length(); i++) {
self.decodeRowRXingResult.replace_range(
i..=i,
&Self::ALPHABET[self.decodeRowRXingResult.chars().nth(i).unwrap() as usize]
.to_string(),
);
// self.decodeRowRXingResult.setCharAt(i, Self::ALPHABET[self.decodeRowRXingResult.chars().nth(i).unwrap() as usize]);
}
// Ensure a valid start and end character
let startchar = self.decodeRowRXingResult.chars().nth(0).unwrap();
if !Self::arrayContains(&Self::STARTEND_ENCODING, startchar) {
return Err(Exceptions::NotFoundException("".to_owned()));
}
let endchar = self
.decodeRowRXingResult
.chars()
.nth(self.decodeRowRXingResult.chars().count() - 1)
.unwrap();
if !Self::arrayContains(&Self::STARTEND_ENCODING, endchar) {
return Err(Exceptions::NotFoundException("".to_owned()));
}
// remove stop/start characters character and check if a long enough string is contained
if (self.decodeRowRXingResult.chars().count()) <= Self::MIN_CHARACTER_LENGTH as usize {
// Almost surely a false positive ( start + stop + at least 1 character)
return Err(Exceptions::NotFoundException("".to_owned()));
}
if !hints.contains_key(&DecodeHintType::RETURN_CODABAR_START_END) {
// self.decodeRowRXingResult.deleteCharAt(self.decodeRowRXingResult.chars().count() - 1);
// self.decodeRowRXingResult.deleteCharAt(0);
self.decodeRowRXingResult =
self.decodeRowRXingResult[1..self.decodeRowRXingResult.len()-1].to_owned();
}
let mut runningCount = 0;
for i in 0..startOffset {
// for (int i = 0; i < startOffset; i++) {
runningCount += self.counters[i];
}
let left: f32 = runningCount as f32;
for i in startOffset..(nextStart - 1) {
// for (int i = startOffset; i < nextStart - 1; i++) {
runningCount += self.counters[i];
}
let right: f32 = runningCount as f32;
let mut result = RXingResult::new(
&self.decodeRowRXingResult,
Vec::new(),
vec![
RXingResultPoint::new(left, rowNumber as f32),
RXingResultPoint::new(right, rowNumber as f32),
],
BarcodeFormat::CODABAR,
);
result.putMetadata(
RXingResultMetadataType::SYMBOLOGY_IDENTIFIER,
RXingResultMetadataValue::SymbologyIdentifier("]F0".to_owned()),
);
Ok(result)
}
}
impl CodaBarReader {
// These values are critical for determining how permissive the decoding
// will be. All stripe sizes must be within the window these define, as
// compared to the average stripe size.
const MAX_ACCEPTABLE: f32 = 2.0;
const PADDING: f32 = 1.5;
// const ALPHABET_STRING : &str= "0123456789-$:/.+ABCD";
const ALPHABET: [char; 20] = [
'0', '1', '2', '3', '4', '5', '6', '7', '8', '9', '-', '$', ':', '/', '.', '+', 'A', 'B',
'C', 'D',
];
/**
* These represent the encodings of characters, as patterns of wide and narrow bars. The 7 least-significant bits of
* each int correspond to the pattern of wide and narrow, with 1s representing "wide" and 0s representing narrow.
*/
const CHARACTER_ENCODINGS: [u32; 20] = [
0x003, 0x006, 0x009, 0x060, 0x012, 0x042, 0x021, 0x024, 0x030, 0x048, // 0-9
0x00c, 0x018, 0x045, 0x051, 0x054, 0x015, 0x01A, 0x029, 0x00B, 0x00E, // -$:/.+ABCD
];
// minimal number of characters that should be present (including start and stop characters)
// under normal circumstances this should be set to 3, but can be set higher
// as a last-ditch attempt to reduce false positives.
const MIN_CHARACTER_LENGTH: u32 = 3;
// official start and end patterns
const STARTEND_ENCODING: [char; 4] = ['A', 'B', 'C', 'D'];
// some Codabar generator allow the Codabar string to be closed by every
// character. This will cause lots of false positives!
// some industries use a checksum standard but this is not part of the original Codabar standard
// for more information see : http://www.mecsw.com/specs/codabar.html
pub fn new() -> Self {
Self {
decodeRowRXingResult: String::with_capacity(20),
counters: vec![0; 80], //Vec::with_capacity(80),
counterLength: 0,
}
}
fn validatePattern(&self, start: usize) -> Result<(), Exceptions> {
// First, sum up the total size of our four categories of stripe sizes;
let mut sizes = [0, 0, 0, 0];
let mut counts = [0, 0, 0, 0];
let end = self.decodeRowRXingResult.chars().count() - 1;
// We break out of this loop in the middle, in order to handle
// inter-character spaces properly.
let mut pos = start;
for i in 0..=end {
// for (int i = 0; i <= end; i++) {
let mut pattern = Self::CHARACTER_ENCODINGS
[self.decodeRowRXingResult.chars().nth(i).unwrap() as usize];
for j in (0_usize..=6).rev() {
// for (int j = 6; j >= 0; j--) {
// Even j = bars, while odd j = spaces. Categories 2 and 3 are for
// long stripes, while 0 and 1 are for short stripes.
let category = (j & 1) + ((pattern as usize) & 1) * 2;
sizes[category] += self.counters[(pos + j) as usize];
counts[category] += 1;
pattern >>= 1;
}
// We ignore the inter-character space - it could be of any size.
pos += 8;
}
// Calculate our allowable size thresholds using fixed-point math.
let mut maxes = [0.0; 4]; //new float[4];
let mut mins = [0.0; 4]; //new float[4];
// Define the threshold of acceptability to be the midpoint between the
// average small stripe and the average large stripe. No stripe lengths
// should be on the "wrong" side of that line.
for i in 0..2 {
// for (int i = 0; i < 2; i++) {
mins[i] = 0.0; // Accept arbitrarily small "short" stripes.
mins[i + 2] = ((sizes[i] as f32) / (counts[i] as f32)
+ (sizes[i + 2] as f32) / (counts[i + 2] as f32))
/ 2.0;
maxes[i] = mins[i + 2];
maxes[i + 2] = ((sizes[i + 2] as f32) * Self::MAX_ACCEPTABLE + Self::PADDING)
/ (counts[i + 2] as f32);
}
// Now verify that all of the stripes are within the thresholds.
pos = start;
for i in 0..=end {
// for (int i = 0; i <= end; i++) {
let mut pattern = Self::CHARACTER_ENCODINGS
[self.decodeRowRXingResult.chars().nth(i).unwrap() as usize];
for j in (0usize..=6).rev() {
// for (int j = 6; j >= 0; j--) {
// Even j = bars, while odd j = spaces. Categories 2 and 3 are for
// long stripes, while 0 and 1 are for short stripes.
let category = (j & 1) + ((pattern as usize) & 1) * 2;
let size = self.counters[(pos + j)];
if (size as f32) < mins[category] || (size as f32) > maxes[category] {
return Err(Exceptions::NotFoundException("".to_owned()));
}
pattern >>= 1;
}
pos += 8;
}
Ok(())
}
/**
* Records the size of all runs of white and black pixels, starting with white.
* This is just like recordPattern, except it records all the counters, and
* uses our builtin "counters" member for storage.
* @param row row to count from
*/
fn setCounters(&mut self, row: &BitArray) -> Result<(), Exceptions> {
self.counterLength = 0;
// Start from the first white bit.
let mut i = row.getNextUnset(0);
let end = row.getSize();
if i >= end {
return Err(Exceptions::NotFoundException("".to_owned()));
}
let mut isWhite = true;
let mut count = 0;
while i < end {
if row.get(i) != isWhite {
count += 1;
} else {
self.counterAppend(count);
count = 1;
isWhite = !isWhite;
}
i += 1;
}
self.counterAppend(count);
Ok(())
}
fn counterAppend(&mut self, e: u32) {
self.counters[self.counterLength] = e;
self.counterLength += 1;
if self.counterLength >= self.counters.len() {
let mut temp = vec![0; self.counterLength * 2]; //new int[counterLength * 2];
temp[0..self.counterLength].clone_from_slice(&self.counters[..]);
// System.arraycopy(counters, 0, temp, 0, counterLength);
self.counters = temp;
}
}
fn findStartPattern(&mut self) -> Result<u32, Exceptions> {
let mut i = 1;
while i < self.counterLength {
// for (int i = 1; i < counterLength; i += 2) {
let charOffset = self.toNarrowWidePattern(i);
if charOffset != -1
&& Self::arrayContains(
&Self::STARTEND_ENCODING,
Self::ALPHABET[charOffset as usize],
)
{
// Look for whitespace before start pattern, >= 50% of width of start pattern
// We make an exception if the whitespace is the first element.
let mut patternSize = 0;
for j in i..(i + 7) {
// for (int j = i; j < i + 7; j++) {
patternSize += self.counters[j];
}
if i == 1 || self.counters[i - 1] >= patternSize / 2 {
return Ok(i as u32);
}
}
i += 2;
}
Err(Exceptions::NotFoundException("".to_owned()))
}
pub fn arrayContains(array: &[char], key: char) -> bool {
// if (array != null) {
for c in array {
if c == &key {
return true;
}
}
// }
return false;
}
// Assumes that counters[position] is a bar.
fn toNarrowWidePattern(&mut self, position: usize) -> i32 {
let end = position + 7;
if end >= self.counterLength {
return -1;
}
let theCounters = &self.counters;
let mut maxBar = 0;
let mut minBar = u32::MAX;
let mut j = position;
while j < end {
// for (int j = position; j < end; j += 2) {
let currentCounter = theCounters[j];
if currentCounter < minBar {
minBar = currentCounter;
}
if currentCounter > maxBar {
maxBar = currentCounter;
}
j += 2;
}
let thresholdBar = (minBar + maxBar) / 2;
let mut maxSpace = 0;
let mut minSpace = u32::MAX;
let mut j = position + 1;
while j < end {
// for (int j = position + 1; j < end; j += 2) {
let currentCounter = theCounters[j];
if currentCounter < minSpace {
minSpace = currentCounter;
}
if currentCounter > maxSpace {
maxSpace = currentCounter;
}
j += 2;
}
let thresholdSpace = (minSpace + maxSpace) / 2;
let mut bitmask = 1 << 7;
let mut pattern = 0;
for i in 0..7 {
// for (int i = 0; i < 7; i++) {
let threshold = if (i & 1) == 0 {
thresholdBar
} else {
thresholdSpace
};
bitmask >>= 1;
if theCounters[position + i] > threshold {
pattern |= bitmask;
}
}
for i in 0..Self::CHARACTER_ENCODINGS.len() {
// for (int i = 0; i < CHARACTER_ENCODINGS.length; i++) {
if Self::CHARACTER_ENCODINGS[i] == pattern {
return i as i32;
}
}
return -1;
}
}

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/*
* Copyright (C) 2010 ZXing authors
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
/**
* Records EAN prefix to GS1 Member Organization, where the member organization
* correlates strongly with a country. This is an imperfect means of identifying
* a country of origin by EAN-13 barcode value. See
* <a href="http://en.wikipedia.org/wiki/List_of_GS1_country_codes">
* http://en.wikipedia.org/wiki/List_of_GS1_country_codes</a>.
*
* @author Sean Owen
*/
pub struct EANManufacturerOrgSupport {
ranges: Vec<Vec<u32>>, //= new ArrayList<>();
countryIdentifiers: Vec<String>, // = new ArrayList<>();
}
impl Default for EANManufacturerOrgSupport {
fn default() -> Self {
Self {
ranges: Default::default(),
countryIdentifiers: Default::default(),
}
}
}
impl EANManufacturerOrgSupport {
pub fn lookupCountryIdentifier(&mut self, productCode: &str) -> Option<String> {
self.initIfNeeded();
let prefix = productCode[0..3].parse::<u32>().expect("must parse prefix");
// let prefix = Integer.parseInt(productCode.substring(0, 3));
let max = self.ranges.len();
for i in 0..max {
// for (int i = 0; i < max; i++) {
let range = self.ranges.get(i).expect("must have index i or fail");
let start = range[0];
if prefix < start {
return None;
}
let end = if range.len() == 1 { start } else { range[1] };
if prefix <= end {
return Some(
self.countryIdentifiers
.get(i)
.expect("must have index i or fail")
.clone(),
);
}
}
None
}
fn add(&mut self, range: Vec<u32>, id: String) {
self.ranges.push(range);
self.countryIdentifiers.push(id);
}
fn initIfNeeded(&mut self) {
if !self.ranges.is_empty() {
return;
}
self.add(vec![0, 19], "US/CA".to_owned());
self.add(vec![30, 39], "US".to_owned());
self.add(vec![60, 139], "US/CA".to_owned());
self.add(vec![300, 379], "FR".to_owned());
self.add(vec![380], "BG".to_owned());
self.add(vec![383], "SI".to_owned());
self.add(vec![385], "HR".to_owned());
self.add(vec![387], "BA".to_owned());
self.add(vec![400, 440], "DE".to_owned());
self.add(vec![450, 459], "JP".to_owned());
self.add(vec![460, 469], "RU".to_owned());
self.add(vec![471], "TW".to_owned());
self.add(vec![474], "EE".to_owned());
self.add(vec![475], "LV".to_owned());
self.add(vec![476], "AZ".to_owned());
self.add(vec![477], "LT".to_owned());
self.add(vec![478], "UZ".to_owned());
self.add(vec![479], "LK".to_owned());
self.add(vec![480], "PH".to_owned());
self.add(vec![481], "BY".to_owned());
self.add(vec![482], "UA".to_owned());
self.add(vec![484], "MD".to_owned());
self.add(vec![485], "AM".to_owned());
self.add(vec![486], "GE".to_owned());
self.add(vec![487], "KZ".to_owned());
self.add(vec![489], "HK".to_owned());
self.add(vec![490, 499], "JP".to_owned());
self.add(vec![500, 509], "GB".to_owned());
self.add(vec![520], "GR".to_owned());
self.add(vec![528], "LB".to_owned());
self.add(vec![529], "CY".to_owned());
self.add(vec![531], "MK".to_owned());
self.add(vec![535], "MT".to_owned());
self.add(vec![539], "IE".to_owned());
self.add(vec![540, 549], "BE/LU".to_owned());
self.add(vec![560], "PT".to_owned());
self.add(vec![569], "IS".to_owned());
self.add(vec![570, 579], "DK".to_owned());
self.add(vec![590], "PL".to_owned());
self.add(vec![594], "RO".to_owned());
self.add(vec![599], "HU".to_owned());
self.add(vec![600, 601], "ZA".to_owned());
self.add(vec![603], "GH".to_owned());
self.add(vec![608], "BH".to_owned());
self.add(vec![609], "MU".to_owned());
self.add(vec![611], "MA".to_owned());
self.add(vec![613], "DZ".to_owned());
self.add(vec![616], "KE".to_owned());
self.add(vec![618], "CI".to_owned());
self.add(vec![619], "TN".to_owned());
self.add(vec![621], "SY".to_owned());
self.add(vec![622], "EG".to_owned());
self.add(vec![624], "LY".to_owned());
self.add(vec![625], "JO".to_owned());
self.add(vec![626], "IR".to_owned());
self.add(vec![627], "KW".to_owned());
self.add(vec![628], "SA".to_owned());
self.add(vec![629], "AE".to_owned());
self.add(vec![640, 649], "FI".to_owned());
self.add(vec![690, 695], "CN".to_owned());
self.add(vec![700, 709], "NO".to_owned());
self.add(vec![729], "IL".to_owned());
self.add(vec![730, 739], "SE".to_owned());
self.add(vec![740], "GT".to_owned());
self.add(vec![741], "SV".to_owned());
self.add(vec![742], "HN".to_owned());
self.add(vec![743], "NI".to_owned());
self.add(vec![744], "CR".to_owned());
self.add(vec![745], "PA".to_owned());
self.add(vec![746], "DO".to_owned());
self.add(vec![750], "MX".to_owned());
self.add(vec![754, 755], "CA".to_owned());
self.add(vec![759], "VE".to_owned());
self.add(vec![760, 769], "CH".to_owned());
self.add(vec![770], "CO".to_owned());
self.add(vec![773], "UY".to_owned());
self.add(vec![775], "PE".to_owned());
self.add(vec![777], "BO".to_owned());
self.add(vec![779], "AR".to_owned());
self.add(vec![780], "CL".to_owned());
self.add(vec![784], "PY".to_owned());
self.add(vec![785], "PE".to_owned());
self.add(vec![786], "EC".to_owned());
self.add(vec![789, 790], "BR".to_owned());
self.add(vec![800, 839], "IT".to_owned());
self.add(vec![840, 849], "ES".to_owned());
self.add(vec![850], "CU".to_owned());
self.add(vec![858], "SK".to_owned());
self.add(vec![859], "CZ".to_owned());
self.add(vec![860], "YU".to_owned());
self.add(vec![865], "MN".to_owned());
self.add(vec![867], "KP".to_owned());
self.add(vec![868, 869], "TR".to_owned());
self.add(vec![870, 879], "NL".to_owned());
self.add(vec![880], "KR".to_owned());
self.add(vec![885], "TH".to_owned());
self.add(vec![888], "SG".to_owned());
self.add(vec![890], "IN".to_owned());
self.add(vec![893], "VN".to_owned());
self.add(vec![896], "PK".to_owned());
self.add(vec![899], "ID".to_owned());
self.add(vec![900, 919], "AT".to_owned());
self.add(vec![930, 939], "AU".to_owned());
self.add(vec![940, 949], "AZ".to_owned());
self.add(vec![955], "MY".to_owned());
self.add(vec![958], "MO".to_owned());
}
}

View File

@@ -1 +1,10 @@
mod one_d_reader;
pub mod rss;
pub use one_d_reader::*;
mod ean_manufacturer_org_support;
pub use ean_manufacturer_org_support::*;
mod coda_bar_reader;
pub use coda_bar_reader::*;

284
src/oned/one_d_reader.rs Normal file
View File

@@ -0,0 +1,284 @@
/*
* Copyright 2008 ZXing authors
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
use crate::{
common::BitArray, BinaryBitmap, DecodeHintType, DecodingHintDictionary, Exceptions,
RXingResult, RXingResultMetadataType, RXingResultMetadataValue, RXingResultPoint, Reader,
ResultPoint,
};
/**
* Encapsulates functionality and implementation that is common to all families
* of one-dimensional barcodes.
*
* @author dswitkin@google.com (Daniel Switkin)
* @author Sean Owen
*/
pub trait OneDReader: Reader {
/**
* We're going to examine rows from the middle outward, searching alternately above and below the
* middle, and farther out each time. rowStep is the number of rows between each successive
* attempt above and below the middle. So we'd scan row middle, then middle - rowStep, then
* middle + rowStep, then middle - (2 * rowStep), etc.
* rowStep is bigger as the image is taller, but is always at least 1. We've somewhat arbitrarily
* decided that moving up and down by about 1/16 of the image is pretty good; we try more of the
* image if "trying harder".
*
* @param image The image to decode
* @param hints Any hints that were requested
* @return The contents of the decoded barcode
* @throws NotFoundException Any spontaneous errors which occur
*/
fn doDecode(
&mut self,
image: &BinaryBitmap,
hints: &DecodingHintDictionary,
) -> Result<RXingResult, Exceptions> {
let mut hints = hints.clone();
let width = image.getWidth();
let height = image.getHeight();
let mut row = BitArray::with_size(width);
let tryHarder = hints.contains_key(&DecodeHintType::TRY_HARDER);
let rowStep = 1.max(height >> (if tryHarder { 8 } else { 5 }));
let maxLines;
if tryHarder {
maxLines = height; // Look at the whole image, not just the center
} else {
maxLines = 15; // 15 rows spaced 1/32 apart is roughly the middle half of the image
}
let middle = height / 2;
for x in 0..maxLines {
// for (int x = 0; x < maxLines; x++) {
// Scanning from the middle out. Determine which row we're looking at next:
let rowStepsAboveOrBelow = (x + 1) / 2;
let isAbove = (x & 0x01) == 0; // i.e. is x even?
let rowNumber: isize = middle as isize
+ rowStep as isize
* (if isAbove {
rowStepsAboveOrBelow as isize
} else {
-(rowStepsAboveOrBelow as isize)
});
if rowNumber < 0 || rowNumber >= height as isize {
// Oops, if we run off the top or bottom, stop
break;
}
// Estimate black point for this row and load it:
let mut row = if let Ok(res) = image.getBlackRow(rowNumber as usize, &mut row) {
res
} else {
continue;
};
// try {
// row = image.getBlackRow(rowNumber, row);
// } catch (NotFoundException ignored) {
// continue;
// }
// While we have the image data in a BitArray, it's fairly cheap to reverse it in place to
// handle decoding upside down barcodes.
for attempt in 0..2 {
// for (int attempt = 0; attempt < 2; attempt++) {
if attempt == 1 {
// trying again?
row.reverse(); // reverse the row and continue
// This means we will only ever draw result points *once* in the life of this method
// since we want to avoid drawing the wrong points after flipping the row, and,
// don't want to clutter with noise from every single row scan -- just the scans
// that start on the center line.
if hints.contains_key(&DecodeHintType::NEED_RESULT_POINT_CALLBACK) {
// let newHints = HashMap::new();
// newHints.putAll(hints);
// newHints.remove(&DecodeHintType::NEED_RESULT_POINT_CALLBACK);
hints.remove(&DecodeHintType::NEED_RESULT_POINT_CALLBACK);
// hints = newHints;
}
}
//try {
// Look for a barcode
let Ok(mut result) = self.decodeRow(rowNumber as u32, &row, &hints) else {
continue
};
// We found our barcode
if attempt == 1 {
// But it was upside down, so note that
result.putMetadata(
RXingResultMetadataType::ORIENTATION,
RXingResultMetadataValue::Orientation(180),
);
// And remember to flip the result points horizontally.
let points = result.getRXingResultPointsMut();
if !points.is_empty() && points.len() >= 2 {
points[0] = RXingResultPoint::new(
width as f32 - points[0].getX() - 1.0,
points[0].getY(),
);
points[1] = RXingResultPoint::new(
width as f32 - points[1].getX() - 1.0,
points[1].getY(),
);
}
}
return Ok(result);
// } catch (ReaderException re) {
// // continue -- just couldn't decode this row
// }
}
}
return Err(Exceptions::NotFoundException("".to_owned()));
}
/**
* Records the size of successive runs of white and black pixels in a row, starting at a given point.
* The values are recorded in the given array, and the number of runs recorded is equal to the size
* of the array. If the row starts on a white pixel at the given start point, then the first count
* recorded is the run of white pixels starting from that point; likewise it is the count of a run
* of black pixels if the row begin on a black pixels at that point.
*
* @param row row to count from
* @param start offset into row to start at
* @param counters array into which to record counts
* @throws NotFoundException if counters cannot be filled entirely from row before running out
* of pixels
*/
fn recordPattern(row: &BitArray, start: usize, counters: &mut [u32]) -> Result<(), Exceptions> {
let numCounters = counters.len();
// Arrays.fill(counters, 0, numCounters, 0);
counters.fill(0);
let end = row.getSize();
if start >= end {
return Err(Exceptions::NotFoundException("".to_owned()));
}
let mut isWhite = !row.get(start);
let mut counterPosition = 0;
let mut i = start;
while i < end {
if row.get(i) != isWhite {
counters[counterPosition] += 1;
} else {
counterPosition += 1;
if counterPosition == numCounters {
break;
} else {
counters[counterPosition] = 1;
isWhite = !isWhite;
}
}
i += 1;
}
// If we read fully the last section of pixels and filled up our counters -- or filled
// the last counter but ran off the side of the image, OK. Otherwise, a problem.
if !(counterPosition == numCounters || (counterPosition == numCounters - 1 && i == end)) {
return Err(Exceptions::NotFoundException("".to_owned()));
}
Ok(())
}
fn recordPatternInReverse(
row: &BitArray,
start: usize,
counters: &mut [u32],
) -> Result<(), Exceptions> {
let mut start = start;
// This could be more efficient I guess
let mut numTransitionsLeft = counters.len() as isize;
let mut last = row.get(start);
while start > 0 && numTransitionsLeft >= 0 {
start -= 1;
if row.get(start) != last {
numTransitionsLeft -= 1;
last = !last;
}
}
if numTransitionsLeft >= 0 {
return Err(Exceptions::NotFoundException("".to_owned()));
}
Self::recordPattern(row, start + 1, counters)?;
Ok(())
}
/**
* Determines how closely a set of observed counts of runs of black/white values matches a given
* target pattern. This is reported as the ratio of the total variance from the expected pattern
* proportions across all pattern elements, to the length of the pattern.
*
* @param counters observed counters
* @param pattern expected pattern
* @param maxIndividualVariance The most any counter can differ before we give up
* @return ratio of total variance between counters and pattern compared to total pattern size
*/
fn patternMatchVariance(counters: &[u32], pattern: &[u32], maxIndividualVariance: f32) -> f32 {
let mut maxIndividualVariance = maxIndividualVariance;
let numCounters = counters.len();
let mut total = 0.0;
let mut patternLength = 0;
for i in 0..numCounters {
// for (int i = 0; i < numCounters; i++) {
total += counters[i] as f32;
patternLength += pattern[i];
}
if total < patternLength as f32 {
// If we don't even have one pixel per unit of bar width, assume this is too small
// to reliably match, so fail:
return f32::INFINITY;
}
let unitBarWidth = total / patternLength as f32;
maxIndividualVariance *= unitBarWidth as f32;
let mut totalVariance = 0.0;
for x in 0..numCounters {
// for (int x = 0; x < numCounters; x++) {
let counter = counters[x];
let scaledPattern = (pattern[x] as f32) * unitBarWidth;
let variance = if (counter as f32) > scaledPattern {
counter as f32 - scaledPattern
} else {
scaledPattern - counter as f32
};
if variance > maxIndividualVariance {
return f32::INFINITY;
}
totalVariance += variance;
}
return totalVariance / total;
}
/**
* <p>Attempts to decode a one-dimensional barcode format given a single row of
* an image.</p>
*
* @param rowNumber row number from top of the row
* @param row the black/white pixel data of the row
* @param hints decode hints
* @return {@link RXingResult} containing encoded string and start/end of barcode
* @throws NotFoundException if no potential barcode is found
* @throws ChecksumException if a potential barcode is found but does not pass its checksum
* @throws FormatException if a potential barcode is found but format is invalid
*/
fn decodeRow(
&mut self,
rowNumber: u32,
row: &BitArray,
hints: &DecodingHintDictionary,
) -> Result<RXingResult, Exceptions>;
}

View File

@@ -134,6 +134,10 @@ impl RXingResult {
return &self.resultPoints;
}
pub fn getRXingResultPointsMut(&mut self) -> &mut Vec<RXingResultPoint> {
&mut self.resultPoints
}
/**
* @return {@link BarcodeFormat} representing the format of the barcode that was decoded
*/

View File

@@ -14,21 +14,23 @@
* limitations under the License.
*/
package com.google.zxing.oned;
use rxing::{BarcodeFormat, MultiFormatReader, oned::{OneDReader, CodaBarReader}};
import com.google.zxing.BarcodeFormat;
import com.google.zxing.MultiFormatReader;
import com.google.zxing.common.AbstractBlackBoxTestCase;
mod common;
/**
* @author Sean Owen
*/
public final class CodabarBlackBox1TestCase extends AbstractBlackBoxTestCase {
public CodabarBlackBox1TestCase() {
super("src/test/resources/blackbox/codabar-1", new MultiFormatReader(), BarcodeFormat.CODABAR);
addTest(11, 11, 0.0f);
addTest(11, 11, 180.0f);
}
#[test]
fn codabar_black_box1_test_case() {
let mut tester = common::AbstractBlackBoxTestCase::new(
"test_resources/blackbox/codabar-1",
CodaBarReader::new(),
BarcodeFormat::CODABAR,
);
// super("src/test/resources/blackbox/codabar-1", new MultiFormatReader(), BarcodeFormat.CODABAR);
tester.add_test(11, 11, 0.0);
tester.add_test(11, 11, 180.0);
tester.test_black_box();
}