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393 lines
13 KiB
Dart
393 lines
13 KiB
Dart
// Copyright 2014 The Flutter Authors. All rights reserved.
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// Use of this source code is governed by a BSD-style license that can be
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// found in the LICENSE file.
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import 'dart:async';
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import 'dart:math' as math;
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import 'package:intl/intl.dart';
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import 'package:file/file.dart';
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import '../convert.dart';
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/// Convert `foo_bar` to `fooBar`.
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String camelCase(String str) {
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int index = str.indexOf('_');
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while (index != -1 && index < str.length - 2) {
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str = str.substring(0, index) +
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str.substring(index + 1, index + 2).toUpperCase() +
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str.substring(index + 2);
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index = str.indexOf('_');
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}
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return str;
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}
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final RegExp _upperRegex = RegExp(r'[A-Z]');
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/// Convert `fooBar` to `foo_bar`.
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String snakeCase(String str, [ String sep = '_' ]) {
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return str.replaceAllMapped(_upperRegex,
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(Match m) => '${m.start == 0 ? '' : sep}${m[0]!.toLowerCase()}');
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}
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String toTitleCase(String str) {
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if (str.isEmpty) {
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return str;
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}
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return str.substring(0, 1).toUpperCase() + str.substring(1);
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}
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/// Return the plural of the given word (`cat(s)`).
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String pluralize(String word, int count) => count == 1 ? word : word + 's';
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/// Return the name of an enum item.
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String getEnumName(dynamic enumItem) {
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final String name = '$enumItem';
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final int index = name.indexOf('.');
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return index == -1 ? name : name.substring(index + 1);
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}
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String toPrettyJson(Object jsonable) {
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return const JsonEncoder.withIndent(' ').convert(jsonable) + '\n';
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}
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final NumberFormat kSecondsFormat = NumberFormat('0.0');
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final NumberFormat kMillisecondsFormat = NumberFormat.decimalPattern();
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String getElapsedAsSeconds(Duration duration) {
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final double seconds = duration.inMilliseconds / Duration.millisecondsPerSecond;
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return '${kSecondsFormat.format(seconds)}s';
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}
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String getElapsedAsMilliseconds(Duration duration) {
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return '${kMillisecondsFormat.format(duration.inMilliseconds)}ms';
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}
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/// Return a String - with units - for the size in MB of the given number of bytes.
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String getSizeAsMB(int bytesLength) {
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return '${(bytesLength / (1024 * 1024)).toStringAsFixed(1)}MB';
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}
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/// A class to maintain a list of items, fire events when items are added or
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/// removed, and calculate a diff of changes when a new list of items is
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/// available.
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class ItemListNotifier<T> {
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ItemListNotifier(): _items = <T>{};
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ItemListNotifier.from(List<T> items) : _items = Set<T>.of(items);
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Set<T> _items;
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final StreamController<T> _addedController = StreamController<T>.broadcast();
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final StreamController<T> _removedController = StreamController<T>.broadcast();
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Stream<T> get onAdded => _addedController.stream;
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Stream<T> get onRemoved => _removedController.stream;
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List<T> get items => _items.toList();
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void updateWithNewList(List<T> updatedList) {
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final Set<T> updatedSet = Set<T>.of(updatedList);
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final Set<T> addedItems = updatedSet.difference(_items);
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final Set<T> removedItems = _items.difference(updatedSet);
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_items = updatedSet;
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addedItems.forEach(_addedController.add);
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removedItems.forEach(_removedController.add);
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}
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void removeItem(T item) {
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if (_items.remove(item)) {
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_removedController.add(item);
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}
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}
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/// Close the streams.
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void dispose() {
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_addedController.close();
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_removedController.close();
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}
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}
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class SettingsFile {
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SettingsFile();
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SettingsFile.parse(String contents) {
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for (String line in contents.split('\n')) {
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line = line.trim();
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if (line.startsWith('#') || line.isEmpty) {
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continue;
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}
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final int index = line.indexOf('=');
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if (index != -1) {
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values[line.substring(0, index)] = line.substring(index + 1);
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}
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}
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}
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factory SettingsFile.parseFromFile(File file) {
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return SettingsFile.parse(file.readAsStringSync());
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}
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final Map<String, String> values = <String, String>{};
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void writeContents(File file) {
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file.parent.createSync(recursive: true);
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file.writeAsStringSync(values.keys.map<String>((String key) {
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return '$key=${values[key]}';
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}).join('\n'));
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}
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}
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/// Given a data structure which is a Map of String to dynamic values, return
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/// the same structure (`Map<String, dynamic>`) with the correct runtime types.
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Map<String, dynamic>? castStringKeyedMap(dynamic untyped) {
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final Map<dynamic, dynamic>? map = untyped as Map<dynamic, dynamic>?;
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return map?.cast<String, dynamic>();
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}
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/// Smallest column that will be used for text wrapping. If the requested column
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/// width is smaller than this, then this is what will be used.
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const int kMinColumnWidth = 10;
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/// Wraps a block of text into lines no longer than [columnWidth].
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///
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/// Tries to split at whitespace, but if that's not good enough to keep it under
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/// the limit, then it splits in the middle of a word. If [columnWidth] (minus
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/// any indent) is smaller than [kMinColumnWidth], the text is wrapped at that
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/// [kMinColumnWidth] instead.
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///
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/// Preserves indentation (leading whitespace) for each line (delimited by '\n')
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/// in the input, and will indent wrapped lines that same amount, adding
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/// [indent] spaces in addition to any existing indent.
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///
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/// If [hangingIndent] is supplied, then that many additional spaces will be
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/// added to each line, except for the first line. The [hangingIndent] is added
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/// to the specified [indent], if any. This is useful for wrapping
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/// text with a heading prefix (e.g. "Usage: "):
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///
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/// ```dart
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/// String prefix = "Usage: ";
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/// print(prefix + wrapText(invocation, indent: 2, hangingIndent: prefix.length, columnWidth: 40));
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/// ```
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///
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/// yields:
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/// ```
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/// Usage: app main_command <subcommand>
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/// [arguments]
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/// ```
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///
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/// If [columnWidth] is not specified, then the column width will be the
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/// [outputPreferences.wrapColumn], which is set with the --wrap-column option.
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///
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/// If [outputPreferences.wrapText] is false, then the text will be returned
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/// unchanged. If [shouldWrap] is specified, then it overrides the
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/// [outputPreferences.wrapText] setting.
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///
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/// If the amount of indentation (from the text, [indent], and [hangingIndent])
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/// is such that less than [kMinColumnWidth] characters can fit in the
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/// [columnWidth], then the indent is truncated to allow the text to fit.
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String wrapText(String text, {
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required int columnWidth,
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required bool shouldWrap,
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int? hangingIndent,
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int? indent,
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}) {
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assert(columnWidth >= 0);
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if (text == null || text.isEmpty) {
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return '';
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}
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indent ??= 0;
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hangingIndent ??= 0;
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final List<String> splitText = text.split('\n');
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final List<String> result = <String>[];
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for (final String line in splitText) {
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String trimmedText = line.trimLeft();
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final String leadingWhitespace = line.substring(0, line.length - trimmedText.length);
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List<String> notIndented;
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if (hangingIndent != 0) {
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// When we have a hanging indent, we want to wrap the first line at one
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// width, and the rest at another (offset by hangingIndent), so we wrap
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// them twice and recombine.
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final List<String> firstLineWrap = _wrapTextAsLines(
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trimmedText,
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columnWidth: columnWidth - leadingWhitespace.length - indent,
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shouldWrap: shouldWrap,
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);
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notIndented = <String>[firstLineWrap.removeAt(0)];
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trimmedText = trimmedText.substring(notIndented[0].length).trimLeft();
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if (trimmedText.isNotEmpty) {
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notIndented.addAll(_wrapTextAsLines(
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trimmedText,
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columnWidth: columnWidth - leadingWhitespace.length - indent - hangingIndent,
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shouldWrap: shouldWrap,
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));
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}
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} else {
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notIndented = _wrapTextAsLines(
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trimmedText,
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columnWidth: columnWidth - leadingWhitespace.length - indent,
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shouldWrap: shouldWrap,
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);
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}
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String? hangingIndentString;
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final String indentString = ' ' * indent;
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result.addAll(notIndented.map<String>(
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(String line) {
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// Don't return any lines with just whitespace on them.
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if (line.isEmpty) {
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return '';
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}
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String truncatedIndent = '$indentString${hangingIndentString ?? ''}$leadingWhitespace';
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if (truncatedIndent.length > columnWidth - kMinColumnWidth) {
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truncatedIndent = truncatedIndent.substring(0, math.max(columnWidth - kMinColumnWidth, 0));
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}
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final String result = '$truncatedIndent$line';
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hangingIndentString ??= ' ' * hangingIndent!;
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return result;
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},
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));
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}
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return result.join('\n');
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}
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// Used to represent a run of ANSI control sequences next to a visible
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// character.
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class _AnsiRun {
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_AnsiRun(this.original, this.character);
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String original;
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String character;
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}
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/// Wraps a block of text into lines no longer than [columnWidth], starting at the
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/// [start] column, and returning the result as a list of strings.
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///
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/// Tries to split at whitespace, but if that's not good enough to keep it
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/// under the limit, then splits in the middle of a word. Preserves embedded
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/// newlines, but not indentation (it trims whitespace from each line).
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///
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/// If [columnWidth] is not specified, then the column width will be the width of the
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/// terminal window by default. If the stdout is not a terminal window, then the
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/// default will be [outputPreferences.wrapColumn].
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///
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/// The [columnWidth] is clamped to [kMinColumnWidth] at minimum (so passing negative
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/// widths is fine, for instance).
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///
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/// If [outputPreferences.wrapText] is false, then the text will be returned
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/// simply split at the newlines, but not wrapped. If [shouldWrap] is specified,
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/// then it overrides the [outputPreferences.wrapText] setting.
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List<String> _wrapTextAsLines(String text, {
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int start = 0,
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required int columnWidth,
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required bool shouldWrap,
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}) {
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if (text == null || text.isEmpty) {
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return <String>[''];
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}
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assert(start >= 0);
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// Splits a string so that the resulting list has the same number of elements
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// as there are visible characters in the string, but elements may include one
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// or more adjacent ANSI sequences. Joining the list elements again will
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// reconstitute the original string. This is useful for manipulating "visible"
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// characters in the presence of ANSI control codes.
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List<_AnsiRun> splitWithCodes(String input) {
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final RegExp characterOrCode = RegExp('(\u001b\\[[0-9;]*m|.)', multiLine: true);
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List<_AnsiRun> result = <_AnsiRun>[];
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final StringBuffer current = StringBuffer();
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for (final Match match in characterOrCode.allMatches(input)) {
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current.write(match[0]);
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if (match[0]!.length < 4) {
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// This is a regular character, write it out.
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result.add(_AnsiRun(current.toString(), match[0]!));
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current.clear();
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}
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}
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// If there's something accumulated, then it must be an ANSI sequence, so
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// add it to the end of the last entry so that we don't lose it.
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if (current.isNotEmpty) {
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if (result.isNotEmpty) {
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result.last.original += current.toString();
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} else {
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// If there is nothing in the string besides control codes, then just
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// return them as the only entry.
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result = <_AnsiRun>[_AnsiRun(current.toString(), '')];
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}
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}
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return result;
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}
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String joinRun(List<_AnsiRun> list, int start, [ int? end ]) {
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return list.sublist(start, end).map<String>((_AnsiRun run) => run.original).join().trim();
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}
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final List<String> result = <String>[];
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final int effectiveLength = math.max(columnWidth - start, kMinColumnWidth);
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for (final String line in text.split('\n')) {
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// If the line is short enough, even with ANSI codes, then we can just add
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// add it and move on.
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if (line.length <= effectiveLength || !shouldWrap) {
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result.add(line);
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continue;
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}
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final List<_AnsiRun> splitLine = splitWithCodes(line);
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if (splitLine.length <= effectiveLength) {
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result.add(line);
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continue;
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}
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int currentLineStart = 0;
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int? lastWhitespace;
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// Find the start of the current line.
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for (int index = 0; index < splitLine.length; ++index) {
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if (splitLine[index].character.isNotEmpty && isWhitespace(splitLine[index])) {
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lastWhitespace = index;
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}
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if (index - currentLineStart >= effectiveLength) {
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// Back up to the last whitespace, unless there wasn't any, in which
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// case we just split where we are.
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if (lastWhitespace != null) {
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index = lastWhitespace;
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}
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result.add(joinRun(splitLine, currentLineStart, index));
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// Skip any intervening whitespace.
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while (index < splitLine.length && isWhitespace(splitLine[index])) {
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index++;
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}
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currentLineStart = index;
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lastWhitespace = null;
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}
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}
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result.add(joinRun(splitLine, currentLineStart));
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}
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return result;
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}
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/// Returns true if the code unit at [index] in [text] is a whitespace
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/// character.
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///
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/// Based on: https://en.wikipedia.org/wiki/Whitespace_character#Unicode
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bool isWhitespace(_AnsiRun run) {
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final int rune = run.character.isNotEmpty ? run.character.codeUnitAt(0) : 0x0;
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return rune >= 0x0009 && rune <= 0x000D ||
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rune == 0x0020 ||
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rune == 0x0085 ||
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rune == 0x1680 ||
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rune == 0x180E ||
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rune >= 0x2000 && rune <= 0x200A ||
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rune == 0x2028 ||
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rune == 0x2029 ||
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rune == 0x202F ||
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rune == 0x205F ||
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rune == 0x3000 ||
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rune == 0xFEFF;
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}
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