mirror of
https://github.com/starovoid/rxing.git
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510 lines
18 KiB
Rust
510 lines
18 KiB
Rust
/*
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* Copyright 2021 ZXing authors
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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// package com.google.zxing.common;
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// import java.nio.charset.Charset;
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// import java.util.ArrayList;
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// import java.util.List;
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use std::{fmt, rc::Rc};
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use encoding::EncodingRef;
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use unicode_segmentation::UnicodeSegmentation;
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use crate::Exceptions;
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use super::{ECIEncoderSet, ECIInput};
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//* approximated (latch + 2 codewords)
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pub const COST_PER_ECI: usize = 3;
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/**
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* Class that converts a character string into a sequence of ECIs and bytes
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*
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* The implementation uses the Dijkstra algorithm to produce minimal encodings
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*
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* @author Alex Geller
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*/
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pub struct MinimalECIInput {
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bytes: Vec<u16>,
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fnc1: u16,
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}
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impl ECIInput for MinimalECIInput {
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/**
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* Returns the length of this input. The length is the number
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* of {@code byte}s, FNC1 characters or ECIs in the sequence.
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*
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* @return the number of {@code char}s in this sequence
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*/
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fn length(&self) -> usize {
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return self.bytes.len();
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}
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/**
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* Returns the {@code byte} value at the specified index. An index ranges from zero
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* to {@code length() - 1}. The first {@code byte} value of the sequence is at
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* index zero, the next at index one, and so on, as for array
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* indexing.
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*
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* @param index the index of the {@code byte} value to be returned
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*
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* @return the specified {@code byte} value as character or the FNC1 character
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*
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* @throws IndexOutOfBoundsException
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* if the {@code index} argument is negative or not less than
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* {@code length()}
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* @throws IllegalArgumentException
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* if the value at the {@code index} argument is an ECI (@see #isECI)
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*/
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fn charAt(&self, index: usize) -> Result<char, Exceptions> {
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if index >= self.length() {
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return Err(Exceptions::IndexOutOfBoundsException(index.to_string()));
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}
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if self.isECI(index as u32)? {
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return Err(Exceptions::IllegalArgumentException(format!(
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"value at {} is not a character but an ECI",
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index
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)));
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}
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if self.isFNC1(index)? {
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Ok(self.fnc1 as u8 as char)
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} else {
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Ok(self.bytes[index] as u8 as char)
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}
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}
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/**
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* Returns a {@code CharSequence} that is a subsequence of this sequence.
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* The subsequence starts with the {@code char} value at the specified index and
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* ends with the {@code char} value at index {@code end - 1}. The length
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* (in {@code char}s) of the
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* returned sequence is {@code end - start}, so if {@code start == end}
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* then an empty sequence is returned.
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*
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* @param start the start index, inclusive
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* @param end the end index, exclusive
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*
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* @return the specified subsequence
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*
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* @throws IndexOutOfBoundsException
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* if {@code start} or {@code end} are negative,
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* if {@code end} is greater than {@code length()},
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* or if {@code start} is greater than {@code end}
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* @throws IllegalArgumentException
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* if a value in the range {@code start}-{@code end} is an ECI (@see #isECI)
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*/
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fn subSequence(&self, start: usize, end: usize) -> Result<Vec<char>, Exceptions> {
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if start > end || end > self.length() {
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return Err(Exceptions::IndexOutOfBoundsException(start.to_string()));
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}
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let mut result = String::new();
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for i in start..end {
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// for (int i = start; i < end; i++) {
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if self.isECI(i as u32)? {
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return Err(Exceptions::IllegalArgumentException(format!(
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"value at {} is not a character but an ECI",
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i
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)));
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}
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result.push_str(&self.charAt(i)?.to_string());
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}
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Ok(result.chars().collect())
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}
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/**
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* Determines if a value is an ECI
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*
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* @param index the index of the value
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*
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* @return true if the value at position {@code index} is an ECI
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*
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* @throws IndexOutOfBoundsException
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* if the {@code index} argument is negative or not less than
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* {@code length()}
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*/
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fn isECI(&self, index: u32) -> Result<bool, Exceptions> {
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if index >= self.length() as u32 {
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return Err(Exceptions::IndexOutOfBoundsException(index.to_string()));
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}
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Ok(self.bytes[index as usize] > 255) // && self.bytes[index as usize] <= u16::MAX)
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}
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/**
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* Returns the {@code int} ECI value at the specified index. An index ranges from zero
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* to {@code length() - 1}. The first {@code byte} value of the sequence is at
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* index zero, the next at index one, and so on, as for array
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* indexing.
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*
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* @param index the index of the {@code int} value to be returned
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*
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* @return the specified {@code int} ECI value.
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* The ECI specified the encoding of all bytes with a higher index until the
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* next ECI or until the end of the input if no other ECI follows.
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*
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* @throws IndexOutOfBoundsException
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* if the {@code index} argument is negative or not less than
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* {@code length()}
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* @throws IllegalArgumentException
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* if the value at the {@code index} argument is not an ECI (@see #isECI)
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*/
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fn getECIValue(&self, index: usize) -> Result<i32, Exceptions> {
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if index >= self.length() {
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return Err(Exceptions::IndexOutOfBoundsException(index.to_string()));
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}
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if !self.isECI(index as u32)? {
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return Err(Exceptions::IllegalArgumentException(format!(
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"value at {} is not an ECI but a character",
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index
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)));
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}
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Ok((self.bytes[index] as u32 - 256) as i32)
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}
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fn haveNCharacters(&self, index: usize, n: usize) -> bool {
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if index + n - 1 >= self.bytes.len() {
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return false;
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}
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for i in 0..n {
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// for (int i = 0; i < n; i++) {
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if self.isECI(index as u32 + i as u32).unwrap() {
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return false;
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}
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}
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return true;
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}
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}
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impl MinimalECIInput {
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/**
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* Constructs a minimal input
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*
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* @param stringToEncode the character string to encode
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* @param priorityCharset The preferred {@link Charset}. When the value of the argument is null, the algorithm
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* chooses charsets that leads to a minimal representation. Otherwise the algorithm will use the priority
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* charset to encode any character in the input that can be encoded by it if the charset is among the
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* supported charsets.
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* @param fnc1 denotes the character in the input that represents the FNC1 character or -1 if this is not GS1
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* input.
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*/
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pub fn new(
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stringToEncodeInput: &str,
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priorityCharset: Option<EncodingRef>,
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fnc1: Option<&str>,
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) -> Self {
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let stringToEncode = stringToEncodeInput.graphemes(true).collect::<Vec<&str>>();
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let encoderSet = ECIEncoderSet::new(stringToEncodeInput, priorityCharset, fnc1);
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let bytes = if encoderSet.len() == 1 {
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//optimization for the case when all can be encoded without ECI in ISO-8859-1
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let mut bytes_hld = vec![0; stringToEncode.len()];
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for i in 0..stringToEncode.len() {
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// for (int i = 0; i < bytes.length; i++) {
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let c = stringToEncode.get(i).unwrap();
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bytes_hld[i] = if fnc1.is_some() && c == fnc1.as_ref().unwrap() {
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1000
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} else {
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c.chars().nth(0).unwrap() as u16
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};
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}
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bytes_hld
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} else {
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Self::encodeMinimally(stringToEncodeInput, &encoderSet, fnc1)
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};
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Self {
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bytes: bytes,
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fnc1: if let Some(fnc1_exists) = fnc1 {
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//}.as_ref().unwrap().chars().nth(0).unwrap() as u16,
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fnc1_exists.chars().nth(0).unwrap() as u16
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} else {
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1000
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},
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}
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}
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pub fn getFNC1Character(&self) -> u16 {
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self.fnc1
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}
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/**
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* Determines if a value is the FNC1 character
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*
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* @param index the index of the value
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*
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* @return true if the value at position {@code index} is the FNC1 character
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*
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* @throws IndexOutOfBoundsException
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* if the {@code index} argument is negative or not less than
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* {@code length()}
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*/
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pub fn isFNC1(&self, index: usize) -> Result<bool, Exceptions> {
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if index >= self.length() {
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return Err(Exceptions::IndexOutOfBoundsException(index.to_string()));
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}
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Ok(self.bytes[index] == 1000)
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}
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fn addEdge(edges: &mut Vec<Vec<Option<Rc<InputEdge>>>>, to: usize, edge: Rc<InputEdge>) {
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if edges[to][edge.encoderIndex].is_none()
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|| edges[to][edge.encoderIndex]
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.clone()
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.unwrap()
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.cachedTotalSize
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> edge.cachedTotalSize
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{
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edges[to][edge.encoderIndex] = Some(edge.clone());
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}
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}
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fn addEdges(
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stringToEncode: &str,
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encoderSet: &ECIEncoderSet,
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edges: &mut Vec<Vec<Option<Rc<InputEdge>>>>,
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from: usize,
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previous: Option<Rc<InputEdge>>,
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fnc1: Option<&str>,
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) {
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// let ch = stringToEncode.chars().nth(from).unwrap() as i16;
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let ch = stringToEncode.graphemes(true).nth(from).unwrap();
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let mut start = 0;
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let mut end = encoderSet.len();
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//if let Some(fnc1) = fnc1 {
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if encoderSet.getPriorityEncoderIndex().is_some()
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&& ((fnc1.is_some()
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&& ch.chars().nth(0).unwrap() == fnc1.as_ref().unwrap().chars().nth(0).unwrap())
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|| encoderSet.canEncode(ch, encoderSet.getPriorityEncoderIndex().unwrap()))
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{
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start = encoderSet.getPriorityEncoderIndex().unwrap();
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end = start + 1;
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}
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//}
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for i in start..end {
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// for (int i = start; i < end; i++) {
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if (fnc1.is_some()
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&& ch.chars().nth(0).unwrap() == fnc1.as_ref().unwrap().chars().nth(0).unwrap())
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|| encoderSet.canEncode(ch, i)
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{
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Self::addEdge(
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edges,
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from + 1,
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Rc::new(InputEdge::new(ch, encoderSet, i, previous.clone(), fnc1)),
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);
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}
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}
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}
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pub fn encodeMinimally(
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stringToEncode: &str,
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encoderSet: &ECIEncoderSet,
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fnc1: Option<&str>,
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) -> Vec<u16> {
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// let inputLength = stringToEncode.chars().count();
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let inputLength = stringToEncode.graphemes(true).count();
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// Array that represents vertices. There is a vertex for every character and encoding.
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let mut edges = vec![vec![None; encoderSet.len()]; inputLength + 1]; //InputEdge[inputLength + 1][encoderSet.length()];
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Self::addEdges(stringToEncode, encoderSet, &mut edges, 0, None, fnc1);
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for i in 1..=inputLength {
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// for (int i = 1; i <= inputLength; i++) {
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for j in 0..encoderSet.len() {
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// for (int j = 0; j < encoderSet.length(); j++) {
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if edges[i][j].is_some() && i < inputLength {
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let edg = edges[i][j].clone();
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Self::addEdges(stringToEncode, encoderSet, &mut edges, i, edg, fnc1);
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}
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}
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//optimize memory by removing edges that have been passed.
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for j in 0..encoderSet.len() {
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// for (int j = 0; j < encoderSet.length(); j++) {
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edges[i - 1][j] = None;
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}
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}
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let mut minimalJ: i32 = -1;
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let mut minimalSize: i32 = i32::MAX;
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for j in 0..encoderSet.len() {
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// for (int j = 0; j < encoderSet.length(); j++) {
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if edges[inputLength][j].is_some() {
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let edge = edges[inputLength][j].clone().unwrap();
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if (edge.cachedTotalSize as i32) < minimalSize {
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minimalSize = edge.cachedTotalSize as i32;
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minimalJ = j as i32;
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}
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}
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}
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if minimalJ < 0 {
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panic!("Internal error: failed to encode \"{}\"", stringToEncode);
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}
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let mut intsAL: Vec<u16> = Vec::new();
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let mut current = edges[inputLength][minimalJ as usize].clone();
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while let Some(c) = current {
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//let c = current.unwrap().clone();
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if c.isFNC1() {
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intsAL.splice(0..0, [1000]);
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} else {
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let bytes: Vec<u16> = encoderSet
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.encode_char(&c.c, c.encoderIndex)
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.iter()
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.map(|x| *x as u16)
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.collect();
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let mut i = bytes.len() as isize - 1;
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while i >= 0 {
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// for (int i = bytes.length - 1; i >= 0; i--) {
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// intsAL.splice(0..0, [bytes[i as usize]]);
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intsAL.insert(0, bytes[i as usize]);
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i -= 1;
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}
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}
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let previousEncoderIndex = if c.previous.is_none() {
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0
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} else {
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c.previous.clone().unwrap().encoderIndex
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};
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if previousEncoderIndex != c.encoderIndex {
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// intsAL.splice(
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// 0..0,
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// [256 as u16 + encoderSet.getECIValue(c.encoderIndex) as u16],
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// );
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intsAL.insert(
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0,
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256 as u16 + encoderSet.getECIValue(c.encoderIndex) as u16,
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);
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}
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current = c.previous.clone();
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}
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let mut ints = vec![0; intsAL.len()];
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for i in 0..ints.len() {
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// for (int i = 0; i < ints.length; i++) {
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ints[i] = *intsAL.get(i).unwrap() as u16;
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}
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return ints;
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}
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}
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struct InputEdge {
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c: String,
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encoderIndex: usize, //the encoding of this edge
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previous: Option<Rc<InputEdge>>,
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cachedTotalSize: usize,
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}
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impl InputEdge {
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pub fn new(
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c: &str,
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encoderSet: &ECIEncoderSet,
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encoderIndex: usize,
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previous: Option<Rc<InputEdge>>,
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fnc1: Option<&str>,
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) -> Self {
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let mut size = if c == "\u{1000}" {
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1
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} else {
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encoderSet.encode_char(c, encoderIndex).len()
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};
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//let fnc1Str = String::from_utf16(&[fnc1]).unwrap();
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if let Some(prev) = previous {
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let previousEncoderIndex = prev.encoderIndex;
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if previousEncoderIndex != encoderIndex {
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size += COST_PER_ECI;
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}
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size += prev.cachedTotalSize;
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Self {
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c: if fnc1.is_some() && &c == fnc1.as_ref().unwrap() {
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String::from("\u{1000}")
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} else {
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String::from(c)
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},
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encoderIndex,
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previous: Some(prev.clone()),
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cachedTotalSize: size,
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}
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} else {
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let previousEncoderIndex = 0;
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if previousEncoderIndex != encoderIndex {
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size += COST_PER_ECI;
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}
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Self {
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c: if fnc1.is_some() && &c == fnc1.as_ref().unwrap() {
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String::from("\u{1000}")
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} else {
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String::from(c)
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},
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encoderIndex,
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previous: None,
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cachedTotalSize: size,
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}
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}
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// int size = this.c == 1000 ? 1 : encoderSet.encode(c, encoderIndex).length;
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// let previousEncoderIndex = if previous.is_none() {
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// 0
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// } else {
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// previous.unwrap().encoderIndex
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// };
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// int previousEncoderIndex = previous == null ? 0 : previous.encoderIndex;
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// if previousEncoderIndex != encoderIndex {
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// size += COST_PER_ECI;
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// }
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// if prev_is_some {
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// size += previous.unwrap().cachedTotalSize;
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// }
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// Self {
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// c: if c == fnc1 { 1000 as char } else { c },
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// encoderIndex,
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// previous: previous,
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// cachedTotalSize: size,
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// }
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// this.c = c == fnc1 ? 1000 : c;
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// this.encoderIndex = encoderIndex;
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// this.previous = previous;
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// this.cachedTotalSize = size;
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}
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pub fn isFNC1(&self) -> bool {
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self.c == "\u{1000}"
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}
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}
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impl fmt::Display for MinimalECIInput {
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fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
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let mut result = String::new();
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for i in 0..self.length() {
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// for (int i = 0; i < length(); i++) {
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if i > 0 {
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result.push_str(", ");
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}
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if self.isECI(i as u32).unwrap() {
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result.push_str("ECI(");
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result.push_str(&self.getECIValue(i).unwrap().to_string());
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result.push(')');
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} else if (self.charAt(i).unwrap() as u8) < 128 {
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result.push('\'');
|
|
result.push(self.charAt(i).unwrap());
|
|
result.push('\'');
|
|
} else {
|
|
result.push(self.charAt(i).unwrap());
|
|
}
|
|
}
|
|
write!(f, "{}", result)
|
|
}
|
|
}
|