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Compare commits
| Author | SHA1 | Date | |
|---|---|---|---|
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50e392ab1a | ||
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d2c2db92a9 |
@@ -1647,6 +1647,20 @@ class binary_writer
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return 'D'; // float 64
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return 'D'; // float 64
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}
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}
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/*!
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@brief checks whether a JSON number fits into @a TargetType
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@param[in] el a JSON number of either the signed or unsigned integer kind
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@return whether @a el's value can be represented by @a TargetType without
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wrapping, regardless of which of the two kinds it is stored as
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*/
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template<typename TargetType>
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static bool bjdata_ndarray_value_in_range(const BasicJsonType& el)
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{
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return el.is_number_unsigned()
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? value_in_range_of<TargetType>(el.template get<std::uint64_t>())
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: value_in_range_of<TargetType>(el.template get<std::int64_t>());
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}
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/*!
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/*!
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@return false if the object is successfully converted to a bjdata ndarray, true if the type or size is invalid
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@return false if the object is successfully converted to a bjdata ndarray, true if the type or size is invalid
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*/
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*/
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@@ -1667,6 +1681,16 @@ class binary_writer
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}
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}
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CharType dtype = it->second;
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CharType dtype = it->second;
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// the 'B' (byte) marker is only defined by BJData Draft 3; emitting it
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// under the default Draft 2 mode would produce a stream that Draft 2
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// readers reject, so such an object falls back to a plain object
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// encoding instead (see the "Binary values" section of the BJData
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// documentation)
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if (dtype == 'B' && bjdata_version != bjdata_version_t::draft3)
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{
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return true;
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}
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key = "_ArraySize_";
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key = "_ArraySize_";
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// the dimensions are written verbatim as the header length below, so a
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// the dimensions are written verbatim as the header length below, so a
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// value that is not an array cannot produce a valid one: null emits 'Z'
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// value that is not an array cannot produce a valid one: null emits 'Z'
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@@ -1731,6 +1755,60 @@ class binary_writer
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}
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}
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}
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}
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// every element is cast to the (possibly narrower) C++ type matching
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// dtype below; a value that does not fit that type would silently
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// wrap (integers) or overflow to infinity (the "single" precision
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// float) instead of being reported, so such an object falls back to
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// a plain object encoding as well
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for (const auto& el : value.at(key))
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{
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bool in_range = true;
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switch (dtype)
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{
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case 'U':
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case 'C':
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case 'B':
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in_range = bjdata_ndarray_value_in_range<std::uint8_t>(el);
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break;
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case 'i':
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in_range = bjdata_ndarray_value_in_range<std::int8_t>(el);
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break;
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case 'u':
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in_range = bjdata_ndarray_value_in_range<std::uint16_t>(el);
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break;
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case 'I':
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in_range = bjdata_ndarray_value_in_range<std::int16_t>(el);
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break;
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case 'm':
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in_range = bjdata_ndarray_value_in_range<std::uint32_t>(el);
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break;
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case 'l':
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in_range = bjdata_ndarray_value_in_range<std::int32_t>(el);
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break;
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case 'M':
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in_range = bjdata_ndarray_value_in_range<std::uint64_t>(el);
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break;
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case 'L':
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in_range = bjdata_ndarray_value_in_range<std::int64_t>(el);
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break;
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case 'd':
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{
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const auto dval = el.template get<double>();
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in_range = !std::isfinite(dval) ||
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(dval >= static_cast<double>(std::numeric_limits<float>::lowest()) &&
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dval <= static_cast<double>((std::numeric_limits<float>::max)()));
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break;
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}
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default:
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// 'D' (double) already spans the full range of number_float_t
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break;
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}
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if (!in_range)
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{
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return true;
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}
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}
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oa->write_character('[');
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oa->write_character('[');
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oa->write_character('$');
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oa->write_character('$');
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oa->write_character(dtype);
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oa->write_character(dtype);
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@@ -18655,6 +18655,20 @@ class binary_writer
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return 'D'; // float 64
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return 'D'; // float 64
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}
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}
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/*!
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@brief checks whether a JSON number fits into @a TargetType
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@param[in] el a JSON number of either the signed or unsigned integer kind
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@return whether @a el's value can be represented by @a TargetType without
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|
wrapping, regardless of which of the two kinds it is stored as
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*/
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template<typename TargetType>
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static bool bjdata_ndarray_value_in_range(const BasicJsonType& el)
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{
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return el.is_number_unsigned()
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? value_in_range_of<TargetType>(el.template get<std::uint64_t>())
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: value_in_range_of<TargetType>(el.template get<std::int64_t>());
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}
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/*!
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/*!
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@return false if the object is successfully converted to a bjdata ndarray, true if the type or size is invalid
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@return false if the object is successfully converted to a bjdata ndarray, true if the type or size is invalid
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*/
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*/
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@@ -18675,6 +18689,16 @@ class binary_writer
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}
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}
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CharType dtype = it->second;
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CharType dtype = it->second;
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||||||
|
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||||||
|
// the 'B' (byte) marker is only defined by BJData Draft 3; emitting it
|
||||||
|
// under the default Draft 2 mode would produce a stream that Draft 2
|
||||||
|
// readers reject, so such an object falls back to a plain object
|
||||||
|
// encoding instead (see the "Binary values" section of the BJData
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||||||
|
// documentation)
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if (dtype == 'B' && bjdata_version != bjdata_version_t::draft3)
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{
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return true;
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}
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|
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key = "_ArraySize_";
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key = "_ArraySize_";
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// the dimensions are written verbatim as the header length below, so a
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// the dimensions are written verbatim as the header length below, so a
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||||||
// value that is not an array cannot produce a valid one: null emits 'Z'
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// value that is not an array cannot produce a valid one: null emits 'Z'
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@@ -18739,6 +18763,60 @@ class binary_writer
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}
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}
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||||||
}
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}
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||||||
|
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||||||
|
// every element is cast to the (possibly narrower) C++ type matching
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||||||
|
// dtype below; a value that does not fit that type would silently
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||||||
|
// wrap (integers) or overflow to infinity (the "single" precision
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||||||
|
// float) instead of being reported, so such an object falls back to
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||||||
|
// a plain object encoding as well
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||||||
|
for (const auto& el : value.at(key))
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{
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bool in_range = true;
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switch (dtype)
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{
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case 'U':
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case 'C':
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case 'B':
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in_range = bjdata_ndarray_value_in_range<std::uint8_t>(el);
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break;
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case 'i':
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in_range = bjdata_ndarray_value_in_range<std::int8_t>(el);
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break;
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case 'u':
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in_range = bjdata_ndarray_value_in_range<std::uint16_t>(el);
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break;
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case 'I':
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in_range = bjdata_ndarray_value_in_range<std::int16_t>(el);
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break;
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case 'm':
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in_range = bjdata_ndarray_value_in_range<std::uint32_t>(el);
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break;
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case 'l':
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in_range = bjdata_ndarray_value_in_range<std::int32_t>(el);
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break;
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case 'M':
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in_range = bjdata_ndarray_value_in_range<std::uint64_t>(el);
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break;
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case 'L':
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in_range = bjdata_ndarray_value_in_range<std::int64_t>(el);
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break;
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case 'd':
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{
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const auto dval = el.template get<double>();
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in_range = !std::isfinite(dval) ||
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(dval >= static_cast<double>(std::numeric_limits<float>::lowest()) &&
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|
dval <= static_cast<double>((std::numeric_limits<float>::max)()));
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break;
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|
}
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default:
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// 'D' (double) already spans the full range of number_float_t
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break;
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|
}
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|
if (!in_range)
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|
{
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return true;
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||||||
|
}
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||||||
|
}
|
||||||
|
|
||||||
oa->write_character('[');
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oa->write_character('[');
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oa->write_character('$');
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oa->write_character('$');
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oa->write_character(dtype);
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oa->write_character(dtype);
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@@ -177,24 +177,6 @@ json_test_add_test_for(src/unit-comparison.cpp
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MAIN test_main CXX_STANDARDS ${test_cxx_standards} ${test_force}
|
MAIN test_main CXX_STANDARDS ${test_cxx_standards} ${test_force}
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||||||
)
|
)
|
||||||
|
|
||||||
# test the parser again with JSON_DIAGNOSTIC_POSITIONS enabled
|
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||||||
json_test_set_test_options(test-class_parser_diagnostic_positions
|
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||||||
COMPILE_DEFINITIONS JSON_DIAGNOSTIC_POSITIONS=1
|
|
||||||
)
|
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||||||
json_test_add_test_for(src/unit-class_parser.cpp
|
|
||||||
NAME test-class_parser_diagnostic_positions
|
|
||||||
MAIN test_main CXX_STANDARDS ${test_cxx_standards} ${test_force}
|
|
||||||
)
|
|
||||||
|
|
||||||
# test diagnostic positions again without regular diagnostics (JSON pointer paths)
|
|
||||||
json_test_set_test_options(test-diagnostic-positions_only
|
|
||||||
COMPILE_DEFINITIONS JSON_DIAGNOSTICS=0
|
|
||||||
)
|
|
||||||
json_test_add_test_for(src/unit-diagnostic-positions.cpp
|
|
||||||
NAME test-diagnostic-positions_only
|
|
||||||
MAIN test_main CXX_STANDARDS ${test_cxx_standards} ${test_force}
|
|
||||||
)
|
|
||||||
|
|
||||||
# *DO NOT* use json_test_set_test_options() below this line
|
# *DO NOT* use json_test_set_test_options() below this line
|
||||||
|
|
||||||
#############################################################################
|
#############################################################################
|
||||||
|
|||||||
@@ -2586,7 +2586,12 @@ TEST_CASE("BJData")
|
|||||||
CHECK(json::to_bjdata(json::from_bjdata(v_d), true, true) == v_d);
|
CHECK(json::to_bjdata(json::from_bjdata(v_d), true, true) == v_d);
|
||||||
CHECK(json::to_bjdata(json::from_bjdata(v_D), true, true) == v_D);
|
CHECK(json::to_bjdata(json::from_bjdata(v_D), true, true) == v_D);
|
||||||
CHECK(json::to_bjdata(json::from_bjdata(v_C), true, true) == v_C);
|
CHECK(json::to_bjdata(json::from_bjdata(v_C), true, true) == v_C);
|
||||||
CHECK(json::to_bjdata(json::from_bjdata(v_B), true, true) == v_B);
|
// v_B uses the Draft-3-only 'B' marker, so it round-trips only when
|
||||||
|
// Draft 3 is explicitly selected (see GitHub issue #5404); the
|
||||||
|
// default Draft 2 falls back to a plain object instead, covered by
|
||||||
|
// the "ndarray with _ArrayType_ "byte" is gated by the BJData draft
|
||||||
|
// version" section below
|
||||||
|
CHECK(json::to_bjdata(json::from_bjdata(v_B), true, true, json::bjdata_version_t::draft3) == v_B);
|
||||||
}
|
}
|
||||||
|
|
||||||
SECTION("ndarray with data not matching _ArrayType_ is written as an object")
|
SECTION("ndarray with data not matching _ArrayType_ is written as an object")
|
||||||
@@ -2629,8 +2634,10 @@ TEST_CASE("BJData")
|
|||||||
// the C++ API stores an int literal as number_integer, so _ArrayType_
|
// the C++ API stores an int literal as number_integer, so _ArrayType_
|
||||||
// names the wire type rather than the storage. Both storages have to
|
// names the wire type rather than the storage. Both storages have to
|
||||||
// produce the same typed array for every type.
|
// produce the same typed array for every type.
|
||||||
|
// "byte" is checked separately below since it additionally requires
|
||||||
|
// BJData Draft 3 to be selected explicitly (see GitHub issue #5404).
|
||||||
for (const char* type :
|
for (const char* type :
|
||||||
{"uint8", "int8", "uint16", "int16", "uint32", "int32", "uint64", "int64", "char", "byte"
|
{"uint8", "int8", "uint16", "int16", "uint32", "int32", "uint64", "int64", "char"
|
||||||
})
|
})
|
||||||
{
|
{
|
||||||
CAPTURE(type);
|
CAPTURE(type);
|
||||||
@@ -2641,6 +2648,14 @@ TEST_CASE("BJData")
|
|||||||
CHECK(from_text == json::to_bjdata(json({{"_ArrayType_", type}, {"_ArraySize_", {2, 3}}, {"_ArrayData_", {1, 2, 3, 4, 5, 6}}})));
|
CHECK(from_text == json::to_bjdata(json({{"_ArrayType_", type}, {"_ArraySize_", {2, 3}}, {"_ArrayData_", {1, 2, 3, 4, 5, 6}}})));
|
||||||
}
|
}
|
||||||
|
|
||||||
|
{
|
||||||
|
const std::string text = R"({"_ArrayType_":"byte","_ArraySize_":[2,3],"_ArrayData_":[1,2,3,4,5,6]})";
|
||||||
|
const auto from_text = json::to_bjdata(json::parse(text), true, true, json::bjdata_version_t::draft3);
|
||||||
|
CHECK(from_text.at(0) == '[');
|
||||||
|
CHECK(from_text == json::to_bjdata(json({{"_ArrayType_", "byte"}, {"_ArraySize_", {2, 3}}, {"_ArrayData_", {1, 2, 3, 4, 5, 6}}}),
|
||||||
|
true, true, json::bjdata_version_t::draft3));
|
||||||
|
}
|
||||||
|
|
||||||
// negative values under a signed type behave the same way
|
// negative values under a signed type behave the same way
|
||||||
const auto from_neg = json::to_bjdata(json::parse(R"({"_ArrayType_":"int32","_ArraySize_":[2],"_ArrayData_":[-5,7]})"));
|
const auto from_neg = json::to_bjdata(json::parse(R"({"_ArrayType_":"int32","_ArraySize_":[2],"_ArrayData_":[-5,7]})"));
|
||||||
CHECK(from_neg.at(0) == '[');
|
CHECK(from_neg.at(0) == '[');
|
||||||
@@ -2776,6 +2791,83 @@ TEST_CASE("BJData")
|
|||||||
CHECK(out_num.at(0) == '{');
|
CHECK(out_num.at(0) == '{');
|
||||||
CHECK(json::from_bjdata(out_num) == j_num);
|
CHECK(json::from_bjdata(out_num) == j_num);
|
||||||
}
|
}
|
||||||
|
|
||||||
|
SECTION("ndarray with out-of-range _ArrayData_ elements stays as object")
|
||||||
|
{
|
||||||
|
// each element is cast to the (possibly narrower) C++ type
|
||||||
|
// named by _ArrayType_ before being written; a value that
|
||||||
|
// does not fit that type would silently wrap instead of
|
||||||
|
// being reported, so such an object falls back to a plain
|
||||||
|
// object encoding that still round-trips (see GitHub issue #5403)
|
||||||
|
|
||||||
|
// an unsigned element that does not fit uint8
|
||||||
|
json const j_uint8 = json({{"_ArrayType_", "uint8"}, {"_ArraySize_", {2}}, {"_ArrayData_", {1, 256}}});
|
||||||
|
const auto out_uint8 = json::to_bjdata(j_uint8);
|
||||||
|
CHECK(out_uint8.at(0) == '{');
|
||||||
|
CHECK(json::from_bjdata(out_uint8) == j_uint8);
|
||||||
|
|
||||||
|
// a signed element that does not fit int8
|
||||||
|
json const j_int8 = json({{"_ArrayType_", "int8"}, {"_ArraySize_", {2}}, {"_ArrayData_", {1, 200}}});
|
||||||
|
const auto out_int8 = json::to_bjdata(j_int8);
|
||||||
|
CHECK(out_int8.at(0) == '{');
|
||||||
|
CHECK(json::from_bjdata(out_int8) == j_int8);
|
||||||
|
|
||||||
|
// a negative element is likewise out of range for an
|
||||||
|
// unsigned _ArrayType_
|
||||||
|
json const j_uint16_neg = json({{"_ArrayType_", "uint16"}, {"_ArraySize_", {2}}, {"_ArrayData_", {1, -1}}});
|
||||||
|
const auto out_uint16_neg = json::to_bjdata(j_uint16_neg);
|
||||||
|
CHECK(out_uint16_neg.at(0) == '{');
|
||||||
|
CHECK(json::from_bjdata(out_uint16_neg) == j_uint16_neg);
|
||||||
|
|
||||||
|
// a double element that overflows to infinity when narrowed
|
||||||
|
// to the "single" (float) precision named by _ArrayType_
|
||||||
|
json const j_single = json({{"_ArrayType_", "single"}, {"_ArraySize_", {2}}, {"_ArrayData_", {1.5, 1e40}}});
|
||||||
|
const auto out_single = json::to_bjdata(j_single);
|
||||||
|
CHECK(out_single.at(0) == '{');
|
||||||
|
CHECK(json::from_bjdata(out_single) == j_single);
|
||||||
|
|
||||||
|
// in-range boundary values still use the compact ndarray encoding
|
||||||
|
json const j_uint8_ok = json({{"_ArrayType_", "uint8"}, {"_ArraySize_", {2}}, {"_ArrayData_", {0, 255}}});
|
||||||
|
CHECK(json::to_bjdata(j_uint8_ok) == std::vector<uint8_t>({'[', '$', 'U', '#', '[', 'i', 2, ']', 0, 255}));
|
||||||
|
|
||||||
|
json const j_int8_ok = json({{"_ArrayType_", "int8"}, {"_ArraySize_", {2}}, {"_ArrayData_", {-128, 127}}});
|
||||||
|
CHECK(json::to_bjdata(j_int8_ok) == std::vector<uint8_t>({'[', '$', 'i', '#', '[', 'i', 2, ']', 0x80, 0x7F}));
|
||||||
|
|
||||||
|
json const j_single_ok = json({{"_ArrayType_", "single"}, {"_ArraySize_", {1}}, {"_ArrayData_", {1.5}}});
|
||||||
|
const auto out_single_ok = json::to_bjdata(j_single_ok);
|
||||||
|
CHECK(out_single_ok.at(0) == '[');
|
||||||
|
CHECK(json::from_bjdata(out_single_ok) == json({1.5f}));
|
||||||
|
}
|
||||||
|
|
||||||
|
SECTION("ndarray with _ArrayType_ \"byte\" is gated by the BJData draft version")
|
||||||
|
{
|
||||||
|
// the 'B' (byte) marker used by _ArrayType_ "byte" is only defined
|
||||||
|
// by BJData Draft 3; Draft 2 (the default) has no such marker, so
|
||||||
|
// emitting it unconditionally produced a stream that a Draft 2
|
||||||
|
// reader could not parse as intended (see GitHub issue #5404).
|
||||||
|
// Two dimensions are used so that a successfully written ndarray
|
||||||
|
// round-trips back into the annotated object (a single dimension
|
||||||
|
// is, by the BJData ndarray convention, read back as a plain
|
||||||
|
// binary value rather than the annotated object, same as every
|
||||||
|
// other single-dimension ndarray of a non-"byte" type is read
|
||||||
|
// back as a plain array instead of the annotated object).
|
||||||
|
json const j_byte = json({{"_ArrayType_", "byte"}, {"_ArraySize_", {2, 3}}, {"_ArrayData_", {1, 2, 3, 4, 5, 6}}});
|
||||||
|
|
||||||
|
// default (Draft 2): falls back to a plain object and round-trips
|
||||||
|
const auto out_draft2 = json::to_bjdata(j_byte);
|
||||||
|
CHECK(out_draft2.at(0) == '{');
|
||||||
|
CHECK(json::from_bjdata(out_draft2) == j_byte);
|
||||||
|
|
||||||
|
// explicit Draft 2: same as the default
|
||||||
|
const auto out_draft2_explicit = json::to_bjdata(j_byte, true, true, json::bjdata_version_t::draft2);
|
||||||
|
CHECK(out_draft2_explicit.at(0) == '{');
|
||||||
|
CHECK(json::from_bjdata(out_draft2_explicit) == j_byte);
|
||||||
|
|
||||||
|
// Draft 3 explicitly selected: still uses the compact 'B' ndarray encoding
|
||||||
|
const auto out_draft3 = json::to_bjdata(j_byte, true, true, json::bjdata_version_t::draft3);
|
||||||
|
CHECK(out_draft3 == std::vector<uint8_t>({'[', '$', 'B', '#', '[', '$', 'i', '#', 'i', 2, 2, 3, 1, 2, 3, 4, 5, 6}));
|
||||||
|
CHECK(json::from_bjdata(out_draft3) == j_byte);
|
||||||
|
}
|
||||||
}
|
}
|
||||||
}
|
}
|
||||||
|
|
||||||
|
|||||||
@@ -17,8 +17,6 @@ using nlohmann::json;
|
|||||||
|
|
||||||
#include <valarray>
|
#include <valarray>
|
||||||
#include <algorithm>
|
#include <algorithm>
|
||||||
#include <cstdio>
|
|
||||||
#include <fstream>
|
|
||||||
#include <list>
|
#include <list>
|
||||||
#include <sstream>
|
#include <sstream>
|
||||||
#include <string>
|
#include <string>
|
||||||
@@ -346,50 +344,6 @@ void trailing_comma_helper(const std::string& s)
|
|||||||
}
|
}
|
||||||
}
|
}
|
||||||
|
|
||||||
#if JSON_DIAGNOSTIC_POSITIONS
|
|
||||||
/**
|
|
||||||
* Validates that the generated JSON object is the same as expected
|
|
||||||
* Validates that the start position and end position match the start and end of the string
|
|
||||||
*
|
|
||||||
* This check assumes that there is no whitespace around the json object in the original string.
|
|
||||||
*/
|
|
||||||
void validate_generated_json_and_start_end_pos_helper(const std::string& original_string, const json& j, const json& check)
|
|
||||||
{
|
|
||||||
CHECK(j == check);
|
|
||||||
CHECK(j.start_pos() == 0);
|
|
||||||
CHECK(j.end_pos() == original_string.size());
|
|
||||||
}
|
|
||||||
|
|
||||||
/**
|
|
||||||
* Parses the root object from the given root string and validates that the start and end positions for the nested object are correct.
|
|
||||||
*
|
|
||||||
* This checks that whitespace around the nested object is included in the start and end positions of the root object.
|
|
||||||
*/
|
|
||||||
void validate_start_end_pos_for_nested_obj_helper(const std::string& nested_type_json_str, const std::string& root_type_json_str, const json& expected_json, const json::parser_callback_t& cb = nullptr)
|
|
||||||
{
|
|
||||||
json j;
|
|
||||||
|
|
||||||
// 1. If callback is provided, use callback version of parse()
|
|
||||||
if (cb)
|
|
||||||
{
|
|
||||||
j = json::parse(root_type_json_str, cb);
|
|
||||||
}
|
|
||||||
else
|
|
||||||
{
|
|
||||||
j = json::parse(root_type_json_str);
|
|
||||||
}
|
|
||||||
|
|
||||||
// 2. Check if the generated JSON is as expected
|
|
||||||
// Assumptions: The root_type_json_str does not have any whitespace around the json object
|
|
||||||
validate_generated_json_and_start_end_pos_helper(root_type_json_str, j, expected_json);
|
|
||||||
|
|
||||||
// 3. Get the nested object
|
|
||||||
const auto& nested = j["nested"];
|
|
||||||
// 4. Check if the start and end positions are generated correctly for nested objects and arrays
|
|
||||||
CHECK(nested_type_json_str == root_type_json_str.substr(nested.start_pos(), nested.end_pos() - nested.start_pos()));
|
|
||||||
}
|
|
||||||
#endif
|
|
||||||
|
|
||||||
} // namespace
|
} // namespace
|
||||||
|
|
||||||
TEST_CASE("parser class")
|
TEST_CASE("parser class")
|
||||||
@@ -1825,228 +1779,6 @@ TEST_CASE("parser class")
|
|||||||
CHECK_THROWS_WITH_AS(_ = json::parse("/a", nullptr, true, true), "[json.exception.parse_error.101] parse error at line 1, column 2: syntax error while parsing value - invalid comment; expecting '/' or '*' after '/'; last read: '/a'", json::parse_error);
|
CHECK_THROWS_WITH_AS(_ = json::parse("/a", nullptr, true, true), "[json.exception.parse_error.101] parse error at line 1, column 2: syntax error while parsing value - invalid comment; expecting '/' or '*' after '/'; last read: '/a'", json::parse_error);
|
||||||
CHECK_THROWS_WITH_AS(_ = json::parse("/*", nullptr, true, true), "[json.exception.parse_error.101] parse error at line 1, column 3: syntax error while parsing value - invalid comment; missing closing '*/'; last read: '/*<U+0000>'", json::parse_error);
|
CHECK_THROWS_WITH_AS(_ = json::parse("/*", nullptr, true, true), "[json.exception.parse_error.101] parse error at line 1, column 3: syntax error while parsing value - invalid comment; missing closing '*/'; last read: '/*<U+0000>'", json::parse_error);
|
||||||
}
|
}
|
||||||
|
|
||||||
#if JSON_DIAGNOSTIC_POSITIONS
|
|
||||||
// Macro for all test cases for start_pos and end_pos
|
|
||||||
#define SETUP_TESTCASES() \
|
|
||||||
SECTION("with callback") \
|
|
||||||
{ \
|
|
||||||
SECTION("filter nothing") \
|
|
||||||
{ \
|
|
||||||
json::parser_callback_t const cb = [](int /*unused*/, json::parse_event_t /*unused*/, json& /*unused*/) noexcept \
|
|
||||||
{ \
|
|
||||||
return true; \
|
|
||||||
}; \
|
|
||||||
validate_start_end_pos_for_nested_obj_helper(nested_type_json_str, root_type_json_str, expected, cb); \
|
|
||||||
} \
|
|
||||||
SECTION("filter element") \
|
|
||||||
{ \
|
|
||||||
json::parser_callback_t const cb = [](int /*unused*/, json::parse_event_t event, json& j) noexcept \
|
|
||||||
{ \
|
|
||||||
return (event != json::parse_event_t::key && event != json::parse_event_t::value) || j != json("a"); \
|
|
||||||
}; \
|
|
||||||
validate_start_end_pos_for_nested_obj_helper(nested_type_json_str, root_type_json_str, filteredExpected, cb); \
|
|
||||||
} \
|
|
||||||
} \
|
|
||||||
SECTION("without callback") \
|
|
||||||
{ \
|
|
||||||
validate_start_end_pos_for_nested_obj_helper(nested_type_json_str, root_type_json_str, expected); \
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("retrieve start position and end position")
|
|
||||||
{
|
|
||||||
SECTION("for object")
|
|
||||||
{
|
|
||||||
// Create an object with spaces to test the start and end positions. Spaces will not be included in the
|
|
||||||
// JSON object, however, the start and end positions should include the spaces from the input JSON string.
|
|
||||||
const std::string nested_type_json_str = R"({ "a": 1,"b" : "test1"})";
|
|
||||||
const std::string root_type_json_str = R"({ "nested": )" + nested_type_json_str + R"(, "anotherValue": "test2"})";
|
|
||||||
auto expected = json({{"nested", {{"a", 1}, {"b", "test1"}}}, {"anotherValue", "test2"}});
|
|
||||||
auto filteredExpected = expected;
|
|
||||||
filteredExpected["nested"].erase("a");
|
|
||||||
|
|
||||||
SETUP_TESTCASES()
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("for array")
|
|
||||||
{
|
|
||||||
const std::string nested_type_json_str = R"(["a", "test", 45])";
|
|
||||||
const std::string root_type_json_str = R"({ "nested": )" + nested_type_json_str + R"(, "anotherValue": "test" })";
|
|
||||||
auto expected = json({{"nested", {"a", "test", 45}}, {"anotherValue", "test"}});
|
|
||||||
auto filteredExpected = expected;
|
|
||||||
filteredExpected["nested"] = json({"test", 45});
|
|
||||||
SETUP_TESTCASES()
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("for array with objects")
|
|
||||||
{
|
|
||||||
const std::string nested_type_json_str = R"([{"a": 1, "b": "test"}, {"c": 2, "d": "test2"}])";
|
|
||||||
const std::string root_type_json_str = R"({ "nested": )" + nested_type_json_str + R"(, "anotherValue": "test" })";
|
|
||||||
auto expected = json({{"nested", {{{"a", 1}, {"b", "test"}}, {{"c", 2}, {"d", "test2"}}}}, {"anotherValue", "test"}});
|
|
||||||
auto filteredExpected = expected;
|
|
||||||
filteredExpected["nested"][0].erase("a");
|
|
||||||
SETUP_TESTCASES()
|
|
||||||
|
|
||||||
auto j = json::parse(root_type_json_str);
|
|
||||||
auto nested_array = j["nested"];
|
|
||||||
const auto& nested_obj = nested_array[0];
|
|
||||||
CHECK(nested_type_json_str.substr(1, 21) == root_type_json_str.substr(nested_obj.start_pos(), nested_obj.end_pos() - nested_obj.start_pos()));
|
|
||||||
CHECK(nested_type_json_str.substr(24, 22) == root_type_json_str.substr(nested_array[1].start_pos(), nested_array[1].end_pos() - nested_array[1].start_pos()));
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("for two levels of nesting objects")
|
|
||||||
{
|
|
||||||
const std::string nested_type_json_str = R"({"nested2": {"b": "test"}})";
|
|
||||||
const std::string root_type_json_str = R"({ "a": 2, "nested": )" + nested_type_json_str + R"(, "anotherValue": "test" })";
|
|
||||||
auto expected = json({{"a", 2}, {"nested", {{"nested2", {{"b", "test"}}}}}, {"anotherValue", "test"}});
|
|
||||||
auto filteredExpected = expected;
|
|
||||||
filteredExpected.erase("a");
|
|
||||||
SETUP_TESTCASES()
|
|
||||||
|
|
||||||
auto j = json::parse(root_type_json_str);
|
|
||||||
auto nested_obj = j["nested"]["nested2"];
|
|
||||||
CHECK(nested_type_json_str.substr(12, 13) == root_type_json_str.substr(nested_obj.start_pos(), nested_obj.end_pos() - nested_obj.start_pos()));
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("for simple types")
|
|
||||||
{
|
|
||||||
SECTION("no nested")
|
|
||||||
{
|
|
||||||
SECTION("with callback")
|
|
||||||
{
|
|
||||||
json::parser_callback_t const cb = [](int /*unused*/, json::parse_event_t /*unused*/, json& /*unused*/) noexcept
|
|
||||||
{
|
|
||||||
return true;
|
|
||||||
};
|
|
||||||
|
|
||||||
// 1. string type
|
|
||||||
std::string json_str = R"("test")";
|
|
||||||
auto j = json::parse(json_str, cb);
|
|
||||||
validate_generated_json_and_start_end_pos_helper(json_str, j, "test");
|
|
||||||
|
|
||||||
// 2. number type
|
|
||||||
json_str = R"(1)";
|
|
||||||
j = json::parse(json_str, cb);
|
|
||||||
validate_generated_json_and_start_end_pos_helper(json_str, j, 1);
|
|
||||||
|
|
||||||
// 3. boolean type
|
|
||||||
json_str = R"(true)";
|
|
||||||
j = json::parse(json_str, cb);
|
|
||||||
validate_generated_json_and_start_end_pos_helper(json_str, j, true);
|
|
||||||
|
|
||||||
// 4. null type
|
|
||||||
json_str = R"(null)";
|
|
||||||
j = json::parse(json_str, cb);
|
|
||||||
validate_generated_json_and_start_end_pos_helper(json_str, j, nullptr);
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("without callback")
|
|
||||||
{
|
|
||||||
// 1. string type
|
|
||||||
std::string json_str = R"("test")";
|
|
||||||
auto j = json::parse(json_str);
|
|
||||||
validate_generated_json_and_start_end_pos_helper(json_str, j, "test");
|
|
||||||
|
|
||||||
// 2. number type
|
|
||||||
json_str = R"(1)";
|
|
||||||
j = json::parse(json_str);
|
|
||||||
validate_generated_json_and_start_end_pos_helper(json_str, j, 1);
|
|
||||||
|
|
||||||
json_str = R"(1.001239923)";
|
|
||||||
j = json::parse(json_str);
|
|
||||||
validate_generated_json_and_start_end_pos_helper(json_str, j, 1.001239923);
|
|
||||||
|
|
||||||
json_str = R"(1.123812389000000)";
|
|
||||||
j = json::parse(json_str);
|
|
||||||
validate_generated_json_and_start_end_pos_helper(json_str, j, 1.123812389);
|
|
||||||
|
|
||||||
// 3. boolean type
|
|
||||||
json_str = R"(true)";
|
|
||||||
j = json::parse(json_str);
|
|
||||||
validate_generated_json_and_start_end_pos_helper(json_str, j, true);
|
|
||||||
|
|
||||||
json_str = R"(false)";
|
|
||||||
j = json::parse(json_str);
|
|
||||||
validate_generated_json_and_start_end_pos_helper(json_str, j, false);
|
|
||||||
|
|
||||||
// 4. null type
|
|
||||||
json_str = R"(null)";
|
|
||||||
j = json::parse(json_str);
|
|
||||||
validate_generated_json_and_start_end_pos_helper(json_str, j, nullptr);
|
|
||||||
}
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("string type")
|
|
||||||
{
|
|
||||||
const std::string nested_type_json_str = R"("test")";
|
|
||||||
const std::string root_type_json_str = R"({ "a": 1, "nested": )" + nested_type_json_str + R"(, "anotherValue": "test" })";
|
|
||||||
auto expected = json({{"nested", "test"}, {"anotherValue", "test"}, {"a", 1}});
|
|
||||||
auto filteredExpected = expected;
|
|
||||||
filteredExpected.erase("a");
|
|
||||||
SETUP_TESTCASES()
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("number type")
|
|
||||||
{
|
|
||||||
const std::string nested_type_json_str = R"(2)";
|
|
||||||
const std::string root_type_json_str = R"({ "a": 1, "nested": )" + nested_type_json_str + R"(, "anotherValue": "test" })";
|
|
||||||
auto expected = json({{"nested", 2}, {"anotherValue", "test"}, {"a", 1}});
|
|
||||||
auto filteredExpected = expected;
|
|
||||||
filteredExpected.erase("a");
|
|
||||||
SETUP_TESTCASES()
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("boolean type")
|
|
||||||
{
|
|
||||||
const std::string nested_type_json_str = R"(true)";
|
|
||||||
const std::string root_type_json_str = R"({ "a": 1, "nested": )" + nested_type_json_str + R"(, "anotherValue": "test" })";
|
|
||||||
auto expected = json({{"nested", true}, {"anotherValue", "test"}, {"a", 1}});
|
|
||||||
auto filteredExpected = expected;
|
|
||||||
filteredExpected.erase("a");
|
|
||||||
SETUP_TESTCASES()
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("null type")
|
|
||||||
{
|
|
||||||
const std::string nested_type_json_str = R"(null)";
|
|
||||||
const std::string root_type_json_str = R"({ "a": 1, "nested": )" + nested_type_json_str + R"(, "anotherValue": "test" })";
|
|
||||||
auto expected = json({{"nested", nullptr}, {"anotherValue", "test"}, {"a", 1}});
|
|
||||||
auto filteredExpected = expected;
|
|
||||||
filteredExpected.erase("a");
|
|
||||||
SETUP_TESTCASES()
|
|
||||||
}
|
|
||||||
}
|
|
||||||
SECTION("with leading whitespace and newlines around root JSON")
|
|
||||||
{
|
|
||||||
const std::string initial_whitespace = R"(
|
|
||||||
|
|
||||||
)";
|
|
||||||
const std::string nested_type_json_str = R"({
|
|
||||||
"a": 1,
|
|
||||||
"nested": {
|
|
||||||
"b": "test"
|
|
||||||
},
|
|
||||||
"anotherValue": "test"
|
|
||||||
})";
|
|
||||||
const std::string end_whitespace = R"(
|
|
||||||
|
|
||||||
)";
|
|
||||||
const std::string root_type_json_str = initial_whitespace + nested_type_json_str + end_whitespace;
|
|
||||||
|
|
||||||
auto expected = json({{"a", 1}, {"nested", {{"b", "test"}}}, {"anotherValue", "test"}});
|
|
||||||
|
|
||||||
auto j = json::parse(root_type_json_str);
|
|
||||||
|
|
||||||
// 2. Check if the generated JSON is as expected
|
|
||||||
CHECK(j == expected);
|
|
||||||
|
|
||||||
// 3. Check if the start and end positions do not include the surrounding whitespace
|
|
||||||
CHECK(j.start_pos() == initial_whitespace.size());
|
|
||||||
CHECK(j.end_pos() == root_type_json_str.size() - end_whitespace.size());
|
|
||||||
}
|
|
||||||
}
|
|
||||||
#undef SETUP_TESTCASES
|
|
||||||
#endif
|
|
||||||
}
|
}
|
||||||
|
|
||||||
// this test relies on parse errors being thrown, so it is skipped when
|
// this test relies on parse errors being thrown, so it is skipped when
|
||||||
@@ -2155,321 +1887,3 @@ TEST_CASE("last-read diagnostics are identical across input adapters")
|
|||||||
}
|
}
|
||||||
}
|
}
|
||||||
#endif // !defined(JSON_NOEXCEPTION)
|
#endif // !defined(JSON_NOEXCEPTION)
|
||||||
|
|
||||||
// this test characterizes the current (documented-by-example, not otherwise
|
|
||||||
// specified) behavior of JSON_DIAGNOSTIC_POSITIONS positions with respect to
|
|
||||||
// value lifetime (copy/move/swap/mutation), the various input adapters, and
|
|
||||||
// user-driven SAX usage. It is regression protection, not a behavior
|
|
||||||
// specification: if any of these checks fail after a change to json.hpp,
|
|
||||||
// that change deliberately altered observable behavior and the test (and
|
|
||||||
// this comment) should be updated accordingly, rather than "fixed" blindly.
|
|
||||||
#if JSON_DIAGNOSTIC_POSITIONS
|
|
||||||
TEST_CASE("diagnostic positions: value lifetime, input adapters, and SAX")
|
|
||||||
{
|
|
||||||
SECTION("value lifetime")
|
|
||||||
{
|
|
||||||
SECTION("copy constructor copies positions, recursively")
|
|
||||||
{
|
|
||||||
// basic_json(const basic_json&) (json.hpp, around line 1192) copies
|
|
||||||
// start_position/end_position for the value itself; nested values
|
|
||||||
// are copied via their own copy constructor (through the copied
|
|
||||||
// object/array container), so positions are preserved throughout
|
|
||||||
// the whole tree.
|
|
||||||
const std::string s = R"({"a":1,"b":[1,2,3]})";
|
|
||||||
const json a = json::parse(s);
|
|
||||||
const json b = a; // NOLINT(performance-unnecessary-copy-initialization)
|
|
||||||
|
|
||||||
CHECK(b.start_pos() == a.start_pos());
|
|
||||||
CHECK(b.end_pos() == a.end_pos());
|
|
||||||
CHECK(b["b"].start_pos() == a["b"].start_pos());
|
|
||||||
CHECK(b["b"].end_pos() == a["b"].end_pos());
|
|
||||||
CHECK(b["b"][0].start_pos() == a["b"][0].start_pos());
|
|
||||||
CHECK(b["b"][0].end_pos() == a["b"][0].end_pos());
|
|
||||||
|
|
||||||
// sanity: the positions are meaningful (not all npos)
|
|
||||||
CHECK(b.start_pos() == 0);
|
|
||||||
CHECK(b.end_pos() == s.size());
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("move constructor resets the moved-from value to npos")
|
|
||||||
{
|
|
||||||
// basic_json(basic_json&&) (json.hpp, around line 1265) copies
|
|
||||||
// other's start_position/end_position into *this and then resets
|
|
||||||
// other's to npos (see the cppcheck-suppress[accessForwarded]
|
|
||||||
// annotation there, which flags this reset as worth a second
|
|
||||||
// look). Only the top-level moved-from value is affected; its
|
|
||||||
// (moved-away) children are gone along with it.
|
|
||||||
const std::string s = R"({"a":1,"b":[1,2,3]})";
|
|
||||||
json a = json::parse(s);
|
|
||||||
const auto a_start = a.start_pos();
|
|
||||||
const auto a_end = a.end_pos();
|
|
||||||
const auto nested_start = a["b"].start_pos();
|
|
||||||
const auto nested_end = a["b"].end_pos();
|
|
||||||
|
|
||||||
const json b(std::move(a));
|
|
||||||
|
|
||||||
// the destination retains the original positions, recursively
|
|
||||||
CHECK(b.start_pos() == a_start);
|
|
||||||
CHECK(b.end_pos() == a_end);
|
|
||||||
CHECK(b["b"].start_pos() == nested_start);
|
|
||||||
CHECK(b["b"].end_pos() == nested_end);
|
|
||||||
|
|
||||||
// the moved-from value is reset to a null and reports npos
|
|
||||||
CHECK(a.is_null()); // NOLINT(bugprone-use-after-move,clang-analyzer-cplusplus.Move)
|
|
||||||
CHECK(a.start_pos() == std::string::npos); // NOLINT(bugprone-use-after-move,clang-analyzer-cplusplus.Move)
|
|
||||||
CHECK(a.end_pos() == std::string::npos); // NOLINT(bugprone-use-after-move,clang-analyzer-cplusplus.Move)
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("swap() does NOT exchange positions (likely a real bug, see below)")
|
|
||||||
{
|
|
||||||
// NOTE (characterizing, not fixing, for #5420): basic_json::swap()
|
|
||||||
// (json.hpp, around line 3540, and the friend swap() that forwards
|
|
||||||
// to it) swaps m_data.m_type and m_data.m_value but -- unlike
|
|
||||||
// copy-assignment's operator=(basic_json) (json.hpp, around line
|
|
||||||
// 1291), which swaps start_position/end_position as part of its
|
|
||||||
// copy-and-swap implementation -- it never touches
|
|
||||||
// start_position/end_position. So after swap(a, b), the *values*
|
|
||||||
// of a and b are exchanged, but their *positions* are not: each
|
|
||||||
// ends up with its own original position describing the other's
|
|
||||||
// new content. This looks like an oversight/inconsistency rather
|
|
||||||
// than intended behavior, and is flagged to the maintainer; this
|
|
||||||
// test only pins the current (surprising) behavior so a fix (or a
|
|
||||||
// deliberate decision to keep it) shows up here as an intentional
|
|
||||||
// change rather than a silent regression.
|
|
||||||
json a = json::parse(R"({"a":1})");
|
|
||||||
json b = json::parse(R"([1,2,3,4,5])");
|
|
||||||
const auto a_start = a.start_pos();
|
|
||||||
const auto a_end = a.end_pos();
|
|
||||||
const auto b_start = b.start_pos();
|
|
||||||
const auto b_end = b.end_pos();
|
|
||||||
// both start at 0 (root values start right away), but their
|
|
||||||
// lengths (and thus end positions) differ, which is enough to
|
|
||||||
// tell after the swap whether positions actually moved with
|
|
||||||
// the values
|
|
||||||
CHECK(a_end != b_end);
|
|
||||||
|
|
||||||
using std::swap;
|
|
||||||
swap(a, b);
|
|
||||||
|
|
||||||
// values were exchanged as expected ...
|
|
||||||
CHECK(a == json::parse(R"([1,2,3,4,5])"));
|
|
||||||
CHECK(b == json::parse(R"({"a":1})"));
|
|
||||||
|
|
||||||
// ... but positions were NOT: each variable kept its own
|
|
||||||
// original position, now describing the other's content
|
|
||||||
CHECK(a.start_pos() == a_start);
|
|
||||||
CHECK(a.end_pos() == a_end);
|
|
||||||
CHECK(b.start_pos() == b_start);
|
|
||||||
CHECK(b.end_pos() == b_end);
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("mutating a parsed document leaves positions of unrelated values untouched")
|
|
||||||
{
|
|
||||||
// Positions are recorded once, during parsing, and are not
|
|
||||||
// recomputed on mutation. As a consequence, after a mutation the
|
|
||||||
// parent's own recorded span may no longer describe its current
|
|
||||||
// (serialized) content -- it still describes what was originally
|
|
||||||
// parsed. This is characterized here as current behavior, not
|
|
||||||
// asserted to be desirable or specified.
|
|
||||||
SECTION("operator[] adding a new object key")
|
|
||||||
{
|
|
||||||
const std::string s = R"({"a":1})";
|
|
||||||
json j = json::parse(s);
|
|
||||||
const auto root_start = j.start_pos();
|
|
||||||
const auto root_end = j.end_pos();
|
|
||||||
const auto a_start = j["a"].start_pos();
|
|
||||||
const auto a_end = j["a"].end_pos();
|
|
||||||
|
|
||||||
j["c"] = 42;
|
|
||||||
|
|
||||||
// the newly-added value was never parsed, so it has no position
|
|
||||||
CHECK(j["c"].start_pos() == std::string::npos);
|
|
||||||
CHECK(j["c"].end_pos() == std::string::npos);
|
|
||||||
|
|
||||||
// the existing sibling's position is unaffected
|
|
||||||
CHECK(j["a"].start_pos() == a_start);
|
|
||||||
CHECK(j["a"].end_pos() == a_end);
|
|
||||||
|
|
||||||
// the parent's own recorded span is left as-is (now stale:
|
|
||||||
// it still reflects the original, shorter `{"a":1}` string)
|
|
||||||
CHECK(j.start_pos() == root_start);
|
|
||||||
CHECK(j.end_pos() == root_end);
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("push_back on a parsed array")
|
|
||||||
{
|
|
||||||
const std::string s = R"([1,2,3])";
|
|
||||||
json j = json::parse(s);
|
|
||||||
const auto root_start = j.start_pos();
|
|
||||||
const auto root_end = j.end_pos();
|
|
||||||
const auto first_start = j[0].start_pos();
|
|
||||||
|
|
||||||
j.push_back(4);
|
|
||||||
|
|
||||||
CHECK(j.back().start_pos() == std::string::npos);
|
|
||||||
CHECK(j.back().end_pos() == std::string::npos);
|
|
||||||
CHECK(j[0].start_pos() == first_start);
|
|
||||||
CHECK(j.start_pos() == root_start);
|
|
||||||
CHECK(j.end_pos() == root_end);
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("erase on a parsed array shifts elements but keeps their own positions")
|
|
||||||
{
|
|
||||||
const std::string s = R"([1,2,3])";
|
|
||||||
json j = json::parse(s);
|
|
||||||
const auto second_start = j[1].start_pos();
|
|
||||||
const auto third_start = j[2].start_pos();
|
|
||||||
const auto root_start = j.start_pos();
|
|
||||||
const auto root_end = j.end_pos();
|
|
||||||
|
|
||||||
j.erase(0);
|
|
||||||
|
|
||||||
// remaining elements moved down an index, but each one still
|
|
||||||
// reports the position it had *before* the erase (i.e. its
|
|
||||||
// position in the original source string, not a
|
|
||||||
// recalculated one)
|
|
||||||
CHECK(j[0].start_pos() == second_start);
|
|
||||||
CHECK(j[1].start_pos() == third_start);
|
|
||||||
|
|
||||||
// the parent's own recorded span is again left as-is
|
|
||||||
CHECK(j.start_pos() == root_start);
|
|
||||||
CHECK(j.end_pos() == root_end);
|
|
||||||
}
|
|
||||||
}
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("input adapters")
|
|
||||||
{
|
|
||||||
SECTION("wide string input: positions count transcoded UTF-8 bytes, not wide characters")
|
|
||||||
{
|
|
||||||
// 'é' (U+00E9) is a single code unit in a wchar_t/UTF-16 string, but
|
|
||||||
// transcodes to 2 bytes in UTF-8; the lexer only ever sees the
|
|
||||||
// transcoded UTF-8 byte stream, so reported positions are byte
|
|
||||||
// offsets into that UTF-8 stream, not indices into the original
|
|
||||||
// std::wstring.
|
|
||||||
// é (rather than a literal 'é' byte sequence in this source
|
|
||||||
// file) so the wide-string literal's meaning does not depend on
|
|
||||||
// the compiler's assumed source character set (MSVC, without
|
|
||||||
// /utf-8, would otherwise decode the raw UTF-8 bytes using the
|
|
||||||
// system code page instead of as UTF-8)
|
|
||||||
const std::wstring ws = L"{\"a\":\"\u00e9\u00e9\"}";
|
|
||||||
CHECK(ws.size() == 10); // 10 wide characters
|
|
||||||
|
|
||||||
const json j = json::parse(ws);
|
|
||||||
CHECK(j.start_pos() == 0);
|
|
||||||
// the transcoded UTF-8 form is 2 bytes longer than the wide string,
|
|
||||||
// because each of the two 'é' characters becomes 2 UTF-8 bytes
|
|
||||||
CHECK(j.end_pos() == 12);
|
|
||||||
CHECK(j.end_pos() != ws.size());
|
|
||||||
|
|
||||||
const json& a = j["a"];
|
|
||||||
CHECK(a.start_pos() == 5);
|
|
||||||
CHECK(a.end_pos() == 11);
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("BOM-prefixed input: start_pos() reflects the skipped 3-byte BOM")
|
|
||||||
{
|
|
||||||
const std::string s = "\xEF\xBB\xBF{\"a\":1}";
|
|
||||||
const json j = json::parse(s);
|
|
||||||
|
|
||||||
// the lexer silently skips the BOM before parsing the value, so
|
|
||||||
// the root value's recorded span starts right after it
|
|
||||||
CHECK(j.start_pos() == 3);
|
|
||||||
CHECK(j.end_pos() == s.size());
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("std::istringstream: positions are consistent, not npos")
|
|
||||||
{
|
|
||||||
const std::string s = R"({"a":1,"b":2})";
|
|
||||||
std::istringstream ss(s);
|
|
||||||
const json j = json::parse(ss);
|
|
||||||
|
|
||||||
CHECK(j.start_pos() == 0);
|
|
||||||
CHECK(j.end_pos() == s.size());
|
|
||||||
CHECK(j["a"].start_pos() == 5);
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("std::ifstream: positions are consistent, not npos")
|
|
||||||
{
|
|
||||||
const std::string s = R"({"a":1,"b":2})";
|
|
||||||
{
|
|
||||||
std::ofstream file("unit-class_parser_diagnostic_positions.tmp");
|
|
||||||
file << s;
|
|
||||||
}
|
|
||||||
|
|
||||||
{
|
|
||||||
std::ifstream f("unit-class_parser_diagnostic_positions.tmp");
|
|
||||||
const json j = json::parse(f);
|
|
||||||
|
|
||||||
CHECK(j.start_pos() == 0);
|
|
||||||
CHECK(j.end_pos() == s.size());
|
|
||||||
CHECK(j["a"].start_pos() == 5);
|
|
||||||
}
|
|
||||||
|
|
||||||
static_cast<void>(std::remove("unit-class_parser_diagnostic_positions.tmp"));
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("iterator-pair input: positions are consistent, not npos")
|
|
||||||
{
|
|
||||||
const std::string s = R"({"a":1,"b":2})";
|
|
||||||
const json j = json::parse(s.begin(), s.end());
|
|
||||||
|
|
||||||
CHECK(j.start_pos() == 0);
|
|
||||||
CHECK(j.end_pos() == s.size());
|
|
||||||
CHECK(j["a"].start_pos() == 5);
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("binary formats have no text positions")
|
|
||||||
{
|
|
||||||
// binary formats (CBOR, MessagePack, UBJSON, BSON, BJData) are
|
|
||||||
// parsed via detail::binary_reader, which never sets
|
|
||||||
// start_position/end_position on the values it produces (they
|
|
||||||
// have no notion of a text offset), so every value's position
|
|
||||||
// stays at its default of npos.
|
|
||||||
const json src = json::parse(R"({"a":1,"b":[1,2]})");
|
|
||||||
|
|
||||||
const json from_cbor = json::from_cbor(json::to_cbor(src));
|
|
||||||
CHECK(from_cbor.start_pos() == std::string::npos);
|
|
||||||
CHECK(from_cbor.end_pos() == std::string::npos);
|
|
||||||
CHECK(from_cbor["a"].start_pos() == std::string::npos);
|
|
||||||
CHECK(from_cbor["b"][0].start_pos() == std::string::npos);
|
|
||||||
|
|
||||||
const json from_msgpack = json::from_msgpack(json::to_msgpack(src));
|
|
||||||
CHECK(from_msgpack.start_pos() == std::string::npos);
|
|
||||||
CHECK(from_msgpack.end_pos() == std::string::npos);
|
|
||||||
|
|
||||||
const json from_ubjson = json::from_ubjson(json::to_ubjson(src));
|
|
||||||
CHECK(from_ubjson.start_pos() == std::string::npos);
|
|
||||||
CHECK(from_ubjson.end_pos() == std::string::npos);
|
|
||||||
|
|
||||||
const json from_bson_val = json::from_bson(json::to_bson(src));
|
|
||||||
CHECK(from_bson_val.start_pos() == std::string::npos);
|
|
||||||
CHECK(from_bson_val.end_pos() == std::string::npos);
|
|
||||||
}
|
|
||||||
}
|
|
||||||
|
|
||||||
SECTION("user-driven SAX consumers with no lexer report npos")
|
|
||||||
{
|
|
||||||
// json::parse() internally wires up its json_sax_dom_parser with a
|
|
||||||
// pointer to its own lexer (see parser.hpp), which is how positions
|
|
||||||
// get set at all. A user who constructs a json_sax_dom_parser
|
|
||||||
// directly (e.g. to drive it via json::sax_parse()) and does not
|
|
||||||
// supply a lexer pointer gets a consumer with m_lexer_ref == nullptr;
|
|
||||||
// every "if (m_lexer_ref)" guard in json_sax.hpp is then skipped, so
|
|
||||||
// every value it produces keeps its default, unset position (npos).
|
|
||||||
// This was previously true but silently unasserted (operator==
|
|
||||||
// ignores positions), see #5420.
|
|
||||||
json result;
|
|
||||||
nlohmann::detail::json_sax_dom_parser<json, nlohmann::detail::string_input_adapter_type> sdp(result);
|
|
||||||
const std::string s = R"({"a":1,"b":[1,2,3]})";
|
|
||||||
CHECK(json::sax_parse(s, &sdp));
|
|
||||||
|
|
||||||
CHECK(result.start_pos() == std::string::npos);
|
|
||||||
CHECK(result.end_pos() == std::string::npos);
|
|
||||||
CHECK(result["a"].start_pos() == std::string::npos);
|
|
||||||
CHECK(result["a"].end_pos() == std::string::npos);
|
|
||||||
CHECK(result["b"][0].start_pos() == std::string::npos);
|
|
||||||
CHECK(result["b"][0].end_pos() == std::string::npos);
|
|
||||||
}
|
|
||||||
}
|
|
||||||
#endif
|
|
||||||
|
|||||||
File diff suppressed because it is too large
Load Diff
@@ -0,0 +1,44 @@
|
|||||||
|
// __ _____ _____ _____
|
||||||
|
// __| | __| | | | JSON for Modern C++ (supporting code)
|
||||||
|
// | | |__ | | | | | | version 3.12.0
|
||||||
|
// |_____|_____|_____|_|___| https://github.com/nlohmann/json
|
||||||
|
//
|
||||||
|
// SPDX-FileCopyrightText: 2013-2026 Niels Lohmann <https://nlohmann.me>
|
||||||
|
// SPDX-License-Identifier: MIT
|
||||||
|
|
||||||
|
#include "doctest_compatibility.h"
|
||||||
|
|
||||||
|
#ifdef JSON_DIAGNOSTICS
|
||||||
|
#undef JSON_DIAGNOSTICS
|
||||||
|
#endif
|
||||||
|
|
||||||
|
#define JSON_DIAGNOSTICS 0
|
||||||
|
#define JSON_DIAGNOSTIC_POSITIONS 1
|
||||||
|
#include <nlohmann/json.hpp>
|
||||||
|
|
||||||
|
using json = nlohmann::json;
|
||||||
|
|
||||||
|
TEST_CASE("Better diagnostics with positions only")
|
||||||
|
{
|
||||||
|
SECTION("invalid type")
|
||||||
|
{
|
||||||
|
const std::string json_invalid_string = R"(
|
||||||
|
{
|
||||||
|
"address": {
|
||||||
|
"street": "Fake Street",
|
||||||
|
"housenumber": "1"
|
||||||
|
}
|
||||||
|
}
|
||||||
|
)";
|
||||||
|
json j = json::parse(json_invalid_string);
|
||||||
|
CHECK_THROWS_WITH_AS(j.at("address").at("housenumber").get<int>(),
|
||||||
|
"[json.exception.type_error.302] (bytes 108-111) type must be number, but is string", json::type_error);
|
||||||
|
}
|
||||||
|
|
||||||
|
SECTION("invalid type without positions")
|
||||||
|
{
|
||||||
|
const json j = "foo";
|
||||||
|
CHECK_THROWS_WITH_AS(j.get<int>(),
|
||||||
|
"[json.exception.type_error.302] type must be number, but is string", json::type_error);
|
||||||
|
}
|
||||||
|
}
|
||||||
@@ -8,9 +8,7 @@
|
|||||||
|
|
||||||
#include "doctest_compatibility.h"
|
#include "doctest_compatibility.h"
|
||||||
|
|
||||||
#ifndef JSON_DIAGNOSTICS
|
#define JSON_DIAGNOSTICS 1
|
||||||
#define JSON_DIAGNOSTICS 1
|
|
||||||
#endif
|
|
||||||
#define JSON_DIAGNOSTIC_POSITIONS 1
|
#define JSON_DIAGNOSTIC_POSITIONS 1
|
||||||
#include <nlohmann/json.hpp>
|
#include <nlohmann/json.hpp>
|
||||||
|
|
||||||
@@ -29,13 +27,8 @@ TEST_CASE("Better diagnostics with positions")
|
|||||||
}
|
}
|
||||||
)";
|
)";
|
||||||
json j = json::parse(json_invalid_string);
|
json j = json::parse(json_invalid_string);
|
||||||
#if JSON_DIAGNOSTICS
|
|
||||||
CHECK_THROWS_WITH_AS(j.at("address").at("housenumber").get<int>(),
|
CHECK_THROWS_WITH_AS(j.at("address").at("housenumber").get<int>(),
|
||||||
"[json.exception.type_error.302] (/address/housenumber) (bytes 108-111) type must be number, but is string", json::type_error);
|
"[json.exception.type_error.302] (/address/housenumber) (bytes 108-111) type must be number, but is string", json::type_error);
|
||||||
#else
|
|
||||||
CHECK_THROWS_WITH_AS(j.at("address").at("housenumber").get<int>(),
|
|
||||||
"[json.exception.type_error.302] (bytes 108-111) type must be number, but is string", json::type_error);
|
|
||||||
#endif
|
|
||||||
}
|
}
|
||||||
|
|
||||||
SECTION("invalid type without positions")
|
SECTION("invalid type without positions")
|
||||||
@@ -81,12 +74,7 @@ TEST_CASE("Better diagnostics with positions")
|
|||||||
// (/foo/bar); the position of that parent is reported in the message
|
// (/foo/bar); the position of that parent is reported in the message
|
||||||
const json doc = json::parse(R"({"foo":{"bar":"a string"}})");
|
const json doc = json::parse(R"({"foo":{"bar":"a string"}})");
|
||||||
const json patch = json::parse(R"([{"op":"add","path":"/foo/bar/baz","value":1}])");
|
const json patch = json::parse(R"([{"op":"add","path":"/foo/bar/baz","value":1}])");
|
||||||
#if JSON_DIAGNOSTICS
|
|
||||||
CHECK_THROWS_WITH_AS(doc.patch(patch),
|
CHECK_THROWS_WITH_AS(doc.patch(patch),
|
||||||
"[json.exception.out_of_range.411] (/foo/bar) (bytes 14-24) cannot add value: the JSON Patch 'add' target's parent is of type string, but must be an object or array", json::out_of_range);
|
"[json.exception.out_of_range.411] (/foo/bar) (bytes 14-24) cannot add value: the JSON Patch 'add' target's parent is of type string, but must be an object or array", json::out_of_range);
|
||||||
#else
|
|
||||||
CHECK_THROWS_WITH_AS(doc.patch(patch),
|
|
||||||
"[json.exception.out_of_range.411] (bytes 14-24) cannot add value: the JSON Patch 'add' target's parent is of type string, but must be an object or array", json::out_of_range);
|
|
||||||
#endif
|
|
||||||
}
|
}
|
||||||
}
|
}
|
||||||
|
|||||||
Reference in New Issue
Block a user