| 1 | // © 2017 and later: Unicode, Inc. and others. | 
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| 2 | // License & terms of use: http://www.unicode.org/copyright.html | 
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| 3 |  | 
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| 4 | #include "unicode/utypes.h" | 
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| 5 |  | 
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| 6 | #if !UCONFIG_NO_FORMATTING | 
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| 7 |  | 
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| 8 | #include <cstdlib> | 
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| 9 | #include "number_scientific.h" | 
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| 10 | #include "number_utils.h" | 
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| 11 | #include "formatted_string_builder.h" | 
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| 12 | #include "unicode/unum.h" | 
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| 13 | #include "number_microprops.h" | 
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| 14 |  | 
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| 15 | using namespace icu; | 
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| 16 | using namespace icu::number; | 
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| 17 | using namespace icu::number::impl; | 
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| 18 |  | 
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| 19 | // NOTE: The object lifecycle of ScientificModifier and ScientificHandler differ greatly in Java and C++. | 
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| 20 | // | 
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| 21 | // During formatting, we need to provide an object with state (the exponent) as the inner modifier. | 
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| 22 | // | 
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| 23 | // In Java, where the priority is put on reducing object creations, the unsafe code path re-uses the | 
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| 24 | // ScientificHandler as a ScientificModifier, and the safe code path pre-computes 25 ScientificModifier | 
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| 25 | // instances.  This scheme reduces the number of object creations by 1 in both safe and unsafe. | 
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| 26 | // | 
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| 27 | // In C++, MicroProps provides a pre-allocated ScientificModifier, and ScientificHandler simply populates | 
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| 28 | // the state (the exponent) into that ScientificModifier. There is no difference between safe and unsafe. | 
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| 29 |  | 
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| 30 | ScientificModifier::ScientificModifier() : fExponent(0), fHandler(nullptr) {} | 
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| 31 |  | 
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| 32 | void ScientificModifier::set(int32_t exponent, const ScientificHandler *handler) { | 
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| 33 | // ScientificModifier should be set only once. | 
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| 34 | U_ASSERT(fHandler == nullptr); | 
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| 35 | fExponent = exponent; | 
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| 36 | fHandler = handler; | 
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| 37 | } | 
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| 38 |  | 
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| 39 | int32_t ScientificModifier::apply(FormattedStringBuilder &output, int32_t /*leftIndex*/, int32_t rightIndex, | 
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| 40 | UErrorCode &status) const { | 
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| 41 | // FIXME: Localized exponent separator location. | 
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| 42 | int i = rightIndex; | 
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| 43 | // Append the exponent separator and sign | 
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| 44 | i += output.insert( | 
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| 45 | i, | 
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| 46 | fHandler->fSymbols->getSymbol(DecimalFormatSymbols::ENumberFormatSymbol::kExponentialSymbol), | 
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| 47 | UNUM_EXPONENT_SYMBOL_FIELD, | 
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| 48 | status); | 
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| 49 | if (fExponent < 0 && fHandler->fSettings.fExponentSignDisplay != UNUM_SIGN_NEVER) { | 
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| 50 | i += output.insert( | 
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| 51 | i, | 
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| 52 | fHandler->fSymbols | 
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| 53 | ->getSymbol(DecimalFormatSymbols::ENumberFormatSymbol::kMinusSignSymbol), | 
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| 54 | UNUM_EXPONENT_SIGN_FIELD, | 
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| 55 | status); | 
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| 56 | } else if (fExponent >= 0 && fHandler->fSettings.fExponentSignDisplay == UNUM_SIGN_ALWAYS) { | 
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| 57 | i += output.insert( | 
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| 58 | i, | 
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| 59 | fHandler->fSymbols | 
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| 60 | ->getSymbol(DecimalFormatSymbols::ENumberFormatSymbol::kPlusSignSymbol), | 
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| 61 | UNUM_EXPONENT_SIGN_FIELD, | 
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| 62 | status); | 
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| 63 | } | 
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| 64 | // Append the exponent digits (using a simple inline algorithm) | 
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| 65 | int32_t disp = std::abs(fExponent); | 
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| 66 | for (int j = 0; j < fHandler->fSettings.fMinExponentDigits || disp > 0; j++, disp /= 10) { | 
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| 67 | auto d = static_cast<int8_t>(disp % 10); | 
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| 68 | i += utils::insertDigitFromSymbols( | 
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| 69 | output, | 
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| 70 | i - j, | 
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| 71 | d, | 
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| 72 | *fHandler->fSymbols, | 
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| 73 | UNUM_EXPONENT_FIELD, | 
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| 74 | status); | 
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| 75 | } | 
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| 76 | return i - rightIndex; | 
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| 77 | } | 
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| 78 |  | 
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| 79 | int32_t ScientificModifier::getPrefixLength() const { | 
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| 80 | // TODO: Localized exponent separator location. | 
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| 81 | return 0; | 
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| 82 | } | 
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| 83 |  | 
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| 84 | int32_t ScientificModifier::getCodePointCount() const { | 
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| 85 | // NOTE: This method is only called one place, NumberRangeFormatterImpl. | 
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| 86 | // The call site only cares about != 0 and != 1. | 
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| 87 | // Return a very large value so that if this method is used elsewhere, we should notice. | 
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| 88 | return 999; | 
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| 89 | } | 
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| 90 |  | 
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| 91 | bool ScientificModifier::isStrong() const { | 
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| 92 | // Scientific is always strong | 
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| 93 | return true; | 
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| 94 | } | 
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| 95 |  | 
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| 96 | bool ScientificModifier::containsField(UNumberFormatFields field) const { | 
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| 97 | (void)field; | 
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| 98 | // This method is not used for inner modifiers. | 
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| 99 | UPRV_UNREACHABLE; | 
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| 100 | } | 
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| 101 |  | 
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| 102 | void ScientificModifier::getParameters(Parameters& output) const { | 
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| 103 | // Not part of any plural sets | 
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| 104 | output.obj = nullptr; | 
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| 105 | } | 
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| 106 |  | 
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| 107 | bool ScientificModifier::semanticallyEquivalent(const Modifier& other) const { | 
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| 108 | auto* _other = dynamic_cast<const ScientificModifier*>(&other); | 
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| 109 | if (_other == nullptr) { | 
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| 110 | return false; | 
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| 111 | } | 
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| 112 | // TODO: Check for locale symbols and settings as well? Could be less efficient. | 
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| 113 | return fExponent == _other->fExponent; | 
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| 114 | } | 
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| 115 |  | 
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| 116 | // Note: Visual Studio does not compile this function without full name space. Why? | 
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| 117 | icu::number::impl::ScientificHandler::ScientificHandler(const Notation *notation, const DecimalFormatSymbols *symbols, | 
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| 118 | const MicroPropsGenerator *parent) : | 
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| 119 | fSettings(notation->fUnion.scientific), fSymbols(symbols), fParent(parent) {} | 
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| 120 |  | 
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| 121 | void ScientificHandler::processQuantity(DecimalQuantity &quantity, MicroProps µs, | 
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| 122 | UErrorCode &status) const { | 
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| 123 | fParent->processQuantity(quantity, micros, status); | 
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| 124 | if (U_FAILURE(status)) { return; } | 
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| 125 |  | 
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| 126 | // Do not apply scientific notation to special doubles | 
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| 127 | if (quantity.isInfinite() || quantity.isNaN()) { | 
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| 128 | micros.modInner = µs.helpers.emptyStrongModifier; | 
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| 129 | return; | 
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| 130 | } | 
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| 131 |  | 
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| 132 | // Treat zero as if it had magnitude 0 | 
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| 133 | int32_t exponent; | 
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| 134 | if (quantity.isZeroish()) { | 
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| 135 | if (fSettings.fRequireMinInt && micros.rounder.isSignificantDigits()) { | 
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| 136 | // Show "00.000E0" on pattern "00.000E0" | 
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| 137 | micros.rounder.apply(quantity, fSettings.fEngineeringInterval, status); | 
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| 138 | exponent = 0; | 
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| 139 | } else { | 
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| 140 | micros.rounder.apply(quantity, status); | 
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| 141 | exponent = 0; | 
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| 142 | } | 
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| 143 | } else { | 
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| 144 | exponent = -micros.rounder.chooseMultiplierAndApply(quantity, *this, status); | 
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| 145 | } | 
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| 146 |  | 
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| 147 | // Use MicroProps's helper ScientificModifier and save it as the modInner. | 
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| 148 | ScientificModifier &mod = micros.helpers.scientificModifier; | 
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| 149 | mod.set(exponent, this); | 
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| 150 | micros.modInner = &mod; | 
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| 151 |  | 
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| 152 | // We already performed rounding. Do not perform it again. | 
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| 153 | micros.rounder = RoundingImpl::passThrough(); | 
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| 154 | } | 
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| 155 |  | 
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| 156 | int32_t ScientificHandler::getMultiplier(int32_t magnitude) const { | 
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| 157 | int32_t interval = fSettings.fEngineeringInterval; | 
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| 158 | int32_t digitsShown; | 
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| 159 | if (fSettings.fRequireMinInt) { | 
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| 160 | // For patterns like "000.00E0" and ".00E0" | 
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| 161 | digitsShown = interval; | 
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| 162 | } else if (interval <= 1) { | 
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| 163 | // For patterns like "0.00E0" and "@@@E0" | 
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| 164 | digitsShown = 1; | 
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| 165 | } else { | 
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| 166 | // For patterns like "##0.00" | 
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| 167 | digitsShown = ((magnitude % interval + interval) % interval) + 1; | 
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| 168 | } | 
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| 169 | return digitsShown - magnitude - 1; | 
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| 170 | } | 
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| 171 |  | 
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| 172 | #endif /* #if !UCONFIG_NO_FORMATTING */ | 
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| 173 |  | 
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