Coverage Report

Created: 2026-06-18 14:05

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
be/src/util/string_parser.cpp
Line
Count
Source
1
// Licensed to the Apache Software Foundation (ASF) under one
2
// or more contributor license agreements.  See the NOTICE file
3
// distributed with this work for additional information
4
// regarding copyright ownership.  The ASF licenses this file
5
// to you under the Apache License, Version 2.0 (the
6
// "License"); you may not use this file except in compliance
7
// with the License.  You may obtain a copy of the License at
8
//
9
//   http://www.apache.org/licenses/LICENSE-2.0
10
//
11
// Unless required by applicable law or agreed to in writing,
12
// software distributed under the License is distributed on an
13
// "AS IS" BASIS, WITHOUT WARRANTIES OR CONDITIONS OF ANY
14
// KIND, either express or implied.  See the License for the
15
// specific language governing permissions and limitations
16
// under the License.
17
18
#include "util/string_parser.hpp"
19
20
#include <limits>
21
22
#include "core/extended_types.h"
23
#include "core/types.h"
24
namespace doris {
25
#include "common/compile_check_avoid_begin.h"
26
// Supported decimal number format:
27
// <decimal> ::= <whitespace>* <value> <whitespace>*
28
//
29
// <whitespace> ::= " " | "\t" | "\n" | "\r" | "\f" | "\v"
30
//
31
// <value> ::= <sign>? <significand> <exponent>?
32
//
33
// <sign> ::= "+" | "-"
34
//
35
// <significand> ::= <digits> "." <digits> | <digits> | <digits> "." | "." <digits>
36
//
37
// <digits> ::= <digit>+
38
//
39
// <digit> ::= "0" | "1" | "2" | "3" | "4" | "5" | "6" | "7" | "8" | "9"
40
//
41
// <exponent> ::= <e_marker> <sign>? <digits>
42
//
43
// <e_marker> ::= "e" | "E"
44
//
45
// Parsing algorithm:
46
// 1. Trim spaces and the sign, then normalize the significand by skipping leading zeros and an
47
//    optional leading dot. During this scan, count digits that belong to the original integral
48
//    part (`int_part_count`) and remember where the significand ends (`end_digit_index`).
49
// 2. Parse the optional exponent. Scientific notation is handled by moving the decimal point:
50
//    `result_int_part_digit_count = int_part_count + exponent`. For example, "12.34e-1" has
51
//    int_part_count=2 and exponent=-1, so the result has one integral digit: "1.234".
52
// 3. Build the result in scaled-integer form: first collect the integral digits up to the shifted
53
//    decimal point, then collect up to `type_scale` fractional digits, padding with zeros when the
54
//    input has fewer fractional digits than the target scale.
55
// 4. If there are extra fractional digits, round half up using the first discarded digit. Finally,
56
//    check the integral digit count against `type_precision - type_scale` and return the signed
57
//    scaled integer value.
58
template <PrimitiveType P>
59
typename PrimitiveTypeTraits<P>::CppType::NativeType StringParser::string_to_decimal(
60
        const char* __restrict s, size_t len, int type_precision, int type_scale,
61
2.08M
        ParseResult* result) {
62
2.08M
    using T = typename PrimitiveTypeTraits<P>::CppType::NativeType;
63
2.08M
    static_assert(std::is_same_v<T, int32_t> || std::is_same_v<T, int64_t> ||
64
2.08M
                          std::is_same_v<T, __int128> || std::is_same_v<T, wide::Int256>,
65
2.08M
                  "Cast string to decimal only support target type int32_t, int64_t, __int128 or "
66
2.08M
                  "wide::Int256.");
67
68
    // Parse in two logical coordinate systems:
69
    // 1. `s[0, end_digit_index)` is the normalized significand after trimming spaces, sign and
70
    //    leading zeros. If the original value starts with '.', the dot is also skipped so
71
    //    ".14E+3" is parsed as significand "14" with exponent 3.
72
    // 2. `result_int_part_digit_count = int_part_count + exponent` is the decimal point position
73
    //    after applying scientific notation. For example, "1.4E+2" has int_part_count=1,
74
    //    exponent=2, result_int_part_digit_count=3, so "14" becomes integer 140.
75
    // `digit_index` always indexes the normalized significand string, which may still contain a
76
    // dot for inputs like "1.4E+2"; loops that build numbers skip that dot explicitly.
77
    // Ignore leading and trailing spaces.
78
2.08M
    s = skip_ascii_whitespaces(s, len);
79
80
2.08M
    bool is_negative = false;
81
2.08M
    if (len > 0) {
82
2.08M
        switch (*s) {
83
257k
        case '-':
84
257k
            is_negative = true;
85
257k
            [[fallthrough]];
86
284k
        case '+':
87
284k
            ++s;
88
284k
            --len;
89
2.08M
        }
90
2.08M
    }
91
    // Ignore leading zeros.
92
2.08M
    bool found_value = false;
93
2.42M
    while (len > 0 && UNLIKELY(*s == '0')) {
94
338k
        found_value = true;
95
338k
        ++s;
96
338k
        --len;
97
338k
    }
98
99
2.08M
    int found_dot = 0;
100
2.08M
    if (len > 0 && *s == '.') {
101
84.8k
        found_dot = 1;
102
84.8k
        ++s;
103
84.8k
        --len;
104
84.8k
    }
105
2.08M
    int int_part_count = 0;
106
2.08M
    int i = 0;
107
25.8M
    for (; i != len; ++i) {
108
23.8M
        const char& c = s[i];
109
23.8M
        if (LIKELY('0' <= c && c <= '9')) {
110
21.8M
            found_value = true;
111
21.8M
            if (!found_dot) {
112
5.63M
                ++int_part_count;
113
5.63M
            }
114
21.8M
        } else if (c == '.') {
115
1.88M
            if (found_dot) {
116
2
                *result = StringParser::PARSE_FAILURE;
117
2
                return 0;
118
2
            }
119
1.88M
            found_dot = 1;
120
1.88M
        } else {
121
108k
            break;
122
108k
        }
123
23.8M
    }
124
2.08M
    if (!found_value) {
125
        // '', '.'
126
392
        *result = StringParser::PARSE_FAILURE;
127
392
        return 0;
128
392
    }
129
    // Parse exponent if any. Keep `end_digit_index` before consuming 'e/E' so later digit counts
130
    // ignore exponent syntax. For "1.4E+2", end_digit_index points just after "1.4", not after
131
    // "E+2".
132
2.08M
    int64_t exponent = 0;
133
2.08M
    auto end_digit_index = i;
134
2.08M
    if (i != len) {
135
110k
        bool negative_exponent = false;
136
110k
        if (s[i] == 'e' || s[i] == 'E') {
137
110k
            ++i;
138
110k
            if (i != len) {
139
110k
                switch (s[i]) {
140
11.6k
                case '-':
141
11.6k
                    negative_exponent = true;
142
11.6k
                    [[fallthrough]];
143
79.2k
                case '+':
144
79.2k
                    ++i;
145
110k
                }
146
110k
            }
147
110k
            if (i == len) {
148
                // '123e', '123e+', '123e-'
149
6
                *result = StringParser::PARSE_FAILURE;
150
6
                return 0;
151
6
            }
152
322k
            for (; i != len; ++i) {
153
211k
                const char& c = s[i];
154
211k
                if (LIKELY('0' <= c && c <= '9')) {
155
211k
                    exponent = exponent * 10 + (c - '0');
156
                    // max string len is config::string_type_length_soft_limit_bytes,
157
                    // whose max value is std::numeric_limits<int32_t>::max() - 4,
158
                    // just check overflow of int32_t to simplify the logic
159
                    // For edge cases like 0.{2147483647 zeros}e+2147483647
160
211k
                    if (exponent > std::numeric_limits<int32_t>::max()) {
161
0
                        *result = StringParser::PARSE_OVERFLOW;
162
0
                        return 0;
163
0
                    }
164
211k
                } else {
165
                    // '123e12abc', '123e1.2'
166
22
                    *result = StringParser::PARSE_FAILURE;
167
22
                    return 0;
168
22
                }
169
211k
            }
170
110k
            if (negative_exponent) {
171
11.6k
                exponent = -exponent;
172
11.6k
            }
173
110k
        } else {
174
115
            *result = StringParser::PARSE_FAILURE;
175
115
            return 0;
176
115
        }
177
110k
    }
178
    // TODO: check limit values of exponent and add UT
179
    // max string len is config::string_type_length_soft_limit_bytes,
180
    // whose max value is std::numeric_limits<int32_t>::max() - 4,
181
    // so int_part_count will be in range of int32_t,
182
    // and int_part_count + exponent will be in range of int64_t
183
2.08M
    int64_t tmp_result_int_part_digit_count = int_part_count + exponent;
184
2.08M
    if (tmp_result_int_part_digit_count > std::numeric_limits<int>::max() ||
185
2.08M
        tmp_result_int_part_digit_count < std::numeric_limits<int>::min()) {
186
0
        *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
187
0
        return 0;
188
0
    }
189
2.08M
    int result_int_part_digit_count = tmp_result_int_part_digit_count;
190
2.08M
    T int_part_number = 0;
191
2.08M
    T frac_part_number = 0;
192
2.08M
    int actual_frac_part_count = 0;
193
2.08M
    int digit_index = 0;
194
2.08M
    if (result_int_part_digit_count >= 0) {
195
        // `max_index` is the raw significand index where integer-part digits stop. Add one extra
196
        // raw character only when crossing an in-buffer dot, e.g. "1.4E+2" must scan "1.4" to
197
        // collect three integer digits after the exponent shift. It is capped by end_digit_index
198
        // because missing digits are appended later by multiplying with powers of 10.
199
2.07M
        int max_index = std::min(found_dot ? (result_int_part_digit_count +
200
1.97M
                                              ((int_part_count > 0 && exponent > 0) ? 1 : 0))
201
2.07M
                                           : result_int_part_digit_count,
202
2.07M
                                 end_digit_index);
203
2.07M
        max_index = (max_index == std::numeric_limits<int>::min() ? end_digit_index : max_index);
204
        // skip zero number
205
2.93M
        for (; digit_index != max_index && s[digit_index] == '0'; ++digit_index) {
206
855k
        }
207
        // test 0.00, .00, 0.{00...}e2147483647
208
        // 0.00000e2147483647
209
2.07M
        if (digit_index != max_index &&
210
2.07M
            (result_int_part_digit_count - digit_index > type_precision - type_scale)) {
211
11.8k
            *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
212
11.8k
            return 0;
213
11.8k
        }
214
        // get int part number
215
8.49M
        for (; digit_index != max_index; ++digit_index) {
216
6.42M
            if (UNLIKELY(s[digit_index] == '.')) {
217
72.0k
                continue;
218
72.0k
            }
219
6.35M
            int_part_number = int_part_number * 10 + (s[digit_index] - '0');
220
6.35M
        }
221
        // Count only significand digits, not exponent syntax. If the exponent moves the decimal
222
        // point past all available significant digits, append zeros by scaling the integer part:
223
        // "1.4E+2" scans integer 14, total_significant_digit_count=2, then multiplies by 10.
224
2.06M
        auto total_significant_digit_count =
225
2.06M
                end_digit_index - ((found_dot && int_part_count > 0) ? 1 : 0);
226
2.06M
        if (result_int_part_digit_count > total_significant_digit_count) {
227
65.7k
            int_part_number *= get_scale_multiplier<T>(result_int_part_digit_count -
228
65.7k
                                                       total_significant_digit_count);
229
65.7k
        }
230
2.06M
    } else {
231
        // leading zeros of fraction part
232
4.56k
        actual_frac_part_count = -result_int_part_digit_count;
233
4.56k
    }
234
    // get fraction part number
235
18.0M
    for (; digit_index != end_digit_index && actual_frac_part_count < type_scale; ++digit_index) {
236
15.9M
        if (UNLIKELY(s[digit_index] == '.')) {
237
1.79M
            continue;
238
1.79M
        }
239
14.1M
        frac_part_number = frac_part_number * 10 + (s[digit_index] - '0');
240
14.1M
        ++actual_frac_part_count;
241
14.1M
    }
242
2.07M
    auto type_scale_multiplier = get_scale_multiplier<T>(type_scale);
243
    // Round only when the next parsed significand digit is exactly the first discarded fractional
244
    // digit. If `actual_frac_part_count` is already greater than type_scale, the missing positions
245
    // are implicit zeros from a negative exponent, so "5e-17" to scale 15 must stay 0 instead of
246
    // rounding up.
247
2.07M
    if (actual_frac_part_count == type_scale && digit_index != end_digit_index) {
248
80.8k
        if (UNLIKELY(s[digit_index] == '.')) {
249
3.46k
            ++digit_index;
250
3.46k
        }
251
80.8k
        if (digit_index != end_digit_index) {
252
            // example: test 1.5 -> decimal(1, 0)
253
79.8k
            if (s[digit_index] >= '5') {
254
32.9k
                ++frac_part_number;
255
32.9k
                if (frac_part_number == type_scale_multiplier) {
256
3.43k
                    frac_part_number = 0;
257
3.43k
                    ++int_part_number;
258
3.43k
                }
259
32.9k
            }
260
79.8k
        }
261
1.99M
    } else {
262
1.99M
        if (actual_frac_part_count < type_scale) {
263
199k
            frac_part_number *= get_scale_multiplier<T>(type_scale - actual_frac_part_count);
264
199k
        }
265
1.99M
    }
266
2.07M
    if (int_part_number >= get_scale_multiplier<T>(type_precision - type_scale)) {
267
72
        *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
268
72
        return 0;
269
72
    }
270
271
2.07M
    T value = int_part_number * type_scale_multiplier + frac_part_number;
272
2.07M
    *result = StringParser::PARSE_SUCCESS;
273
2.07M
    return is_negative ? T(-value) : T(value);
274
2.07M
}
_ZN5doris12StringParser17string_to_decimalILNS_13PrimitiveTypeE28EEENS_19PrimitiveTypeTraitsIXT_EE7CppType10NativeTypeEPKcmiiPNS0_11ParseResultE
Line
Count
Source
61
914k
        ParseResult* result) {
62
914k
    using T = typename PrimitiveTypeTraits<P>::CppType::NativeType;
63
914k
    static_assert(std::is_same_v<T, int32_t> || std::is_same_v<T, int64_t> ||
64
914k
                          std::is_same_v<T, __int128> || std::is_same_v<T, wide::Int256>,
65
914k
                  "Cast string to decimal only support target type int32_t, int64_t, __int128 or "
66
914k
                  "wide::Int256.");
67
68
    // Parse in two logical coordinate systems:
69
    // 1. `s[0, end_digit_index)` is the normalized significand after trimming spaces, sign and
70
    //    leading zeros. If the original value starts with '.', the dot is also skipped so
71
    //    ".14E+3" is parsed as significand "14" with exponent 3.
72
    // 2. `result_int_part_digit_count = int_part_count + exponent` is the decimal point position
73
    //    after applying scientific notation. For example, "1.4E+2" has int_part_count=1,
74
    //    exponent=2, result_int_part_digit_count=3, so "14" becomes integer 140.
75
    // `digit_index` always indexes the normalized significand string, which may still contain a
76
    // dot for inputs like "1.4E+2"; loops that build numbers skip that dot explicitly.
77
    // Ignore leading and trailing spaces.
78
914k
    s = skip_ascii_whitespaces(s, len);
79
80
914k
    bool is_negative = false;
81
915k
    if (len > 0) {
82
915k
        switch (*s) {
83
107k
        case '-':
84
107k
            is_negative = true;
85
107k
            [[fallthrough]];
86
114k
        case '+':
87
114k
            ++s;
88
114k
            --len;
89
915k
        }
90
915k
    }
91
    // Ignore leading zeros.
92
914k
    bool found_value = false;
93
968k
    while (len > 0 && UNLIKELY(*s == '0')) {
94
53.7k
        found_value = true;
95
53.7k
        ++s;
96
53.7k
        --len;
97
53.7k
    }
98
99
914k
    int found_dot = 0;
100
914k
    if (len > 0 && *s == '.') {
101
17.9k
        found_dot = 1;
102
17.9k
        ++s;
103
17.9k
        --len;
104
17.9k
    }
105
914k
    int int_part_count = 0;
106
914k
    int i = 0;
107
5.74M
    for (; i != len; ++i) {
108
4.83M
        const char& c = s[i];
109
4.83M
        if (LIKELY('0' <= c && c <= '9')) {
110
4.01M
            found_value = true;
111
4.01M
            if (!found_dot) {
112
1.69M
                ++int_part_count;
113
1.69M
            }
114
4.01M
        } else if (c == '.') {
115
813k
            if (found_dot) {
116
2
                *result = StringParser::PARSE_FAILURE;
117
2
                return 0;
118
2
            }
119
813k
            found_dot = 1;
120
813k
        } else {
121
8.18k
            break;
122
8.18k
        }
123
4.83M
    }
124
914k
    if (!found_value) {
125
        // '', '.'
126
152
        *result = StringParser::PARSE_FAILURE;
127
152
        return 0;
128
152
    }
129
    // Parse exponent if any. Keep `end_digit_index` before consuming 'e/E' so later digit counts
130
    // ignore exponent syntax. For "1.4E+2", end_digit_index points just after "1.4", not after
131
    // "E+2".
132
914k
    int64_t exponent = 0;
133
914k
    auto end_digit_index = i;
134
914k
    if (i != len) {
135
9.39k
        bool negative_exponent = false;
136
9.39k
        if (s[i] == 'e' || s[i] == 'E') {
137
9.33k
            ++i;
138
9.33k
            if (i != len) {
139
9.33k
                switch (s[i]) {
140
1.54k
                case '-':
141
1.54k
                    negative_exponent = true;
142
1.54k
                    [[fallthrough]];
143
1.54k
                case '+':
144
1.54k
                    ++i;
145
9.33k
                }
146
9.33k
            }
147
9.33k
            if (i == len) {
148
                // '123e', '123e+', '123e-'
149
6
                *result = StringParser::PARSE_FAILURE;
150
6
                return 0;
151
6
            }
152
24.6k
            for (; i != len; ++i) {
153
15.3k
                const char& c = s[i];
154
15.3k
                if (LIKELY('0' <= c && c <= '9')) {
155
15.3k
                    exponent = exponent * 10 + (c - '0');
156
                    // max string len is config::string_type_length_soft_limit_bytes,
157
                    // whose max value is std::numeric_limits<int32_t>::max() - 4,
158
                    // just check overflow of int32_t to simplify the logic
159
                    // For edge cases like 0.{2147483647 zeros}e+2147483647
160
15.3k
                    if (exponent > std::numeric_limits<int32_t>::max()) {
161
0
                        *result = StringParser::PARSE_OVERFLOW;
162
0
                        return 0;
163
0
                    }
164
15.3k
                } else {
165
                    // '123e12abc', '123e1.2'
166
12
                    *result = StringParser::PARSE_FAILURE;
167
12
                    return 0;
168
12
                }
169
15.3k
            }
170
9.31k
            if (negative_exponent) {
171
1.53k
                exponent = -exponent;
172
1.53k
            }
173
9.31k
        } else {
174
63
            *result = StringParser::PARSE_FAILURE;
175
63
            return 0;
176
63
        }
177
9.39k
    }
178
    // TODO: check limit values of exponent and add UT
179
    // max string len is config::string_type_length_soft_limit_bytes,
180
    // whose max value is std::numeric_limits<int32_t>::max() - 4,
181
    // so int_part_count will be in range of int32_t,
182
    // and int_part_count + exponent will be in range of int64_t
183
914k
    int64_t tmp_result_int_part_digit_count = int_part_count + exponent;
184
914k
    if (tmp_result_int_part_digit_count > std::numeric_limits<int>::max() ||
185
914k
        tmp_result_int_part_digit_count < std::numeric_limits<int>::min()) {
186
0
        *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
187
0
        return 0;
188
0
    }
189
914k
    int result_int_part_digit_count = tmp_result_int_part_digit_count;
190
914k
    T int_part_number = 0;
191
914k
    T frac_part_number = 0;
192
914k
    int actual_frac_part_count = 0;
193
914k
    int digit_index = 0;
194
914k
    if (result_int_part_digit_count >= 0) {
195
        // `max_index` is the raw significand index where integer-part digits stop. Add one extra
196
        // raw character only when crossing an in-buffer dot, e.g. "1.4E+2" must scan "1.4" to
197
        // collect three integer digits after the exponent shift. It is capped by end_digit_index
198
        // because missing digits are appended later by multiplying with powers of 10.
199
914k
        int max_index = std::min(found_dot ? (result_int_part_digit_count +
200
831k
                                              ((int_part_count > 0 && exponent > 0) ? 1 : 0))
201
914k
                                           : result_int_part_digit_count,
202
914k
                                 end_digit_index);
203
914k
        max_index = (max_index == std::numeric_limits<int>::min() ? end_digit_index : max_index);
204
        // skip zero number
205
1.12M
        for (; digit_index != max_index && s[digit_index] == '0'; ++digit_index) {
206
212k
        }
207
        // test 0.00, .00, 0.{00...}e2147483647
208
        // 0.00000e2147483647
209
914k
        if (digit_index != max_index &&
210
914k
            (result_int_part_digit_count - digit_index > type_precision - type_scale)) {
211
1.32k
            *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
212
1.32k
            return 0;
213
1.32k
        }
214
        // get int part number
215
2.55M
        for (; digit_index != max_index; ++digit_index) {
216
1.64M
            if (UNLIKELY(s[digit_index] == '.')) {
217
1.60k
                continue;
218
1.60k
            }
219
1.63M
            int_part_number = int_part_number * 10 + (s[digit_index] - '0');
220
1.63M
        }
221
        // Count only significand digits, not exponent syntax. If the exponent moves the decimal
222
        // point past all available significant digits, append zeros by scaling the integer part:
223
        // "1.4E+2" scans integer 14, total_significant_digit_count=2, then multiplies by 10.
224
912k
        auto total_significant_digit_count =
225
912k
                end_digit_index - ((found_dot && int_part_count > 0) ? 1 : 0);
226
912k
        if (result_int_part_digit_count > total_significant_digit_count) {
227
100
            int_part_number *= get_scale_multiplier<T>(result_int_part_digit_count -
228
100
                                                       total_significant_digit_count);
229
100
        }
230
912k
    } else {
231
        // leading zeros of fraction part
232
224
        actual_frac_part_count = -result_int_part_digit_count;
233
224
    }
234
    // get fraction part number
235
3.79M
    for (; digit_index != end_digit_index && actual_frac_part_count < type_scale; ++digit_index) {
236
2.88M
        if (UNLIKELY(s[digit_index] == '.')) {
237
809k
            continue;
238
809k
        }
239
2.07M
        frac_part_number = frac_part_number * 10 + (s[digit_index] - '0');
240
2.07M
        ++actual_frac_part_count;
241
2.07M
    }
242
913k
    auto type_scale_multiplier = get_scale_multiplier<T>(type_scale);
243
    // Round only when the next parsed significand digit is exactly the first discarded fractional
244
    // digit. If `actual_frac_part_count` is already greater than type_scale, the missing positions
245
    // are implicit zeros from a negative exponent, so "5e-17" to scale 15 must stay 0 instead of
246
    // rounding up.
247
913k
    if (actual_frac_part_count == type_scale && digit_index != end_digit_index) {
248
21.4k
        if (UNLIKELY(s[digit_index] == '.')) {
249
904
            ++digit_index;
250
904
        }
251
21.4k
        if (digit_index != end_digit_index) {
252
            // example: test 1.5 -> decimal(1, 0)
253
21.1k
            if (s[digit_index] >= '5') {
254
8.96k
                ++frac_part_number;
255
8.96k
                if (frac_part_number == type_scale_multiplier) {
256
856
                    frac_part_number = 0;
257
856
                    ++int_part_number;
258
856
                }
259
8.96k
            }
260
21.1k
        }
261
891k
    } else {
262
891k
        if (actual_frac_part_count < type_scale) {
263
28.0k
            frac_part_number *= get_scale_multiplier<T>(type_scale - actual_frac_part_count);
264
28.0k
        }
265
891k
    }
266
913k
    if (int_part_number >= get_scale_multiplier<T>(type_precision - type_scale)) {
267
24
        *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
268
24
        return 0;
269
24
    }
270
271
913k
    T value = int_part_number * type_scale_multiplier + frac_part_number;
272
913k
    *result = StringParser::PARSE_SUCCESS;
273
913k
    return is_negative ? T(-value) : T(value);
274
913k
}
_ZN5doris12StringParser17string_to_decimalILNS_13PrimitiveTypeE29EEENS_19PrimitiveTypeTraitsIXT_EE7CppType10NativeTypeEPKcmiiPNS0_11ParseResultE
Line
Count
Source
61
642k
        ParseResult* result) {
62
642k
    using T = typename PrimitiveTypeTraits<P>::CppType::NativeType;
63
642k
    static_assert(std::is_same_v<T, int32_t> || std::is_same_v<T, int64_t> ||
64
642k
                          std::is_same_v<T, __int128> || std::is_same_v<T, wide::Int256>,
65
642k
                  "Cast string to decimal only support target type int32_t, int64_t, __int128 or "
66
642k
                  "wide::Int256.");
67
68
    // Parse in two logical coordinate systems:
69
    // 1. `s[0, end_digit_index)` is the normalized significand after trimming spaces, sign and
70
    //    leading zeros. If the original value starts with '.', the dot is also skipped so
71
    //    ".14E+3" is parsed as significand "14" with exponent 3.
72
    // 2. `result_int_part_digit_count = int_part_count + exponent` is the decimal point position
73
    //    after applying scientific notation. For example, "1.4E+2" has int_part_count=1,
74
    //    exponent=2, result_int_part_digit_count=3, so "14" becomes integer 140.
75
    // `digit_index` always indexes the normalized significand string, which may still contain a
76
    // dot for inputs like "1.4E+2"; loops that build numbers skip that dot explicitly.
77
    // Ignore leading and trailing spaces.
78
642k
    s = skip_ascii_whitespaces(s, len);
79
80
642k
    bool is_negative = false;
81
643k
    if (len > 0) {
82
643k
        switch (*s) {
83
63.0k
        case '-':
84
63.0k
            is_negative = true;
85
63.0k
            [[fallthrough]];
86
69.6k
        case '+':
87
69.6k
            ++s;
88
69.6k
            --len;
89
643k
        }
90
643k
    }
91
    // Ignore leading zeros.
92
642k
    bool found_value = false;
93
718k
    while (len > 0 && UNLIKELY(*s == '0')) {
94
76.1k
        found_value = true;
95
76.1k
        ++s;
96
76.1k
        --len;
97
76.1k
    }
98
99
642k
    int found_dot = 0;
100
642k
    if (len > 0 && *s == '.') {
101
23.9k
        found_dot = 1;
102
23.9k
        ++s;
103
23.9k
        --len;
104
23.9k
    }
105
642k
    int int_part_count = 0;
106
642k
    int i = 0;
107
7.70M
    for (; i != len; ++i) {
108
7.07M
        const char& c = s[i];
109
7.07M
        if (LIKELY('0' <= c && c <= '9')) {
110
6.45M
            found_value = true;
111
6.45M
            if (!found_dot) {
112
1.39M
                ++int_part_count;
113
1.39M
            }
114
6.45M
        } else if (c == '.') {
115
609k
            if (found_dot) {
116
0
                *result = StringParser::PARSE_FAILURE;
117
0
                return 0;
118
0
            }
119
609k
            found_dot = 1;
120
609k
        } else {
121
10.9k
            break;
122
10.9k
        }
123
7.07M
    }
124
642k
    if (!found_value) {
125
        // '', '.'
126
71
        *result = StringParser::PARSE_FAILURE;
127
71
        return 0;
128
71
    }
129
    // Parse exponent if any. Keep `end_digit_index` before consuming 'e/E' so later digit counts
130
    // ignore exponent syntax. For "1.4E+2", end_digit_index points just after "1.4", not after
131
    // "E+2".
132
642k
    int64_t exponent = 0;
133
642k
    auto end_digit_index = i;
134
642k
    if (i != len) {
135
11.6k
        bool negative_exponent = false;
136
11.6k
        if (s[i] == 'e' || s[i] == 'E') {
137
11.6k
            ++i;
138
11.6k
            if (i != len) {
139
11.6k
                switch (s[i]) {
140
3.87k
                case '-':
141
3.87k
                    negative_exponent = true;
142
3.87k
                    [[fallthrough]];
143
3.87k
                case '+':
144
3.87k
                    ++i;
145
11.6k
                }
146
11.6k
            }
147
11.6k
            if (i == len) {
148
                // '123e', '123e+', '123e-'
149
0
                *result = StringParser::PARSE_FAILURE;
150
0
                return 0;
151
0
            }
152
32.4k
            for (; i != len; ++i) {
153
20.8k
                const char& c = s[i];
154
20.8k
                if (LIKELY('0' <= c && c <= '9')) {
155
20.8k
                    exponent = exponent * 10 + (c - '0');
156
                    // max string len is config::string_type_length_soft_limit_bytes,
157
                    // whose max value is std::numeric_limits<int32_t>::max() - 4,
158
                    // just check overflow of int32_t to simplify the logic
159
                    // For edge cases like 0.{2147483647 zeros}e+2147483647
160
20.8k
                    if (exponent > std::numeric_limits<int32_t>::max()) {
161
0
                        *result = StringParser::PARSE_OVERFLOW;
162
0
                        return 0;
163
0
                    }
164
20.8k
                } else {
165
                    // '123e12abc', '123e1.2'
166
0
                    *result = StringParser::PARSE_FAILURE;
167
0
                    return 0;
168
0
                }
169
20.8k
            }
170
11.6k
            if (negative_exponent) {
171
3.87k
                exponent = -exponent;
172
3.87k
            }
173
11.6k
        } else {
174
24
            *result = StringParser::PARSE_FAILURE;
175
24
            return 0;
176
24
        }
177
11.6k
    }
178
    // TODO: check limit values of exponent and add UT
179
    // max string len is config::string_type_length_soft_limit_bytes,
180
    // whose max value is std::numeric_limits<int32_t>::max() - 4,
181
    // so int_part_count will be in range of int32_t,
182
    // and int_part_count + exponent will be in range of int64_t
183
642k
    int64_t tmp_result_int_part_digit_count = int_part_count + exponent;
184
642k
    if (tmp_result_int_part_digit_count > std::numeric_limits<int>::max() ||
185
643k
        tmp_result_int_part_digit_count < std::numeric_limits<int>::min()) {
186
0
        *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
187
0
        return 0;
188
0
    }
189
642k
    int result_int_part_digit_count = tmp_result_int_part_digit_count;
190
642k
    T int_part_number = 0;
191
642k
    T frac_part_number = 0;
192
642k
    int actual_frac_part_count = 0;
193
642k
    int digit_index = 0;
194
642k
    if (result_int_part_digit_count >= 0) {
195
        // `max_index` is the raw significand index where integer-part digits stop. Add one extra
196
        // raw character only when crossing an in-buffer dot, e.g. "1.4E+2" must scan "1.4" to
197
        // collect three integer digits after the exponent shift. It is capped by end_digit_index
198
        // because missing digits are appended later by multiplying with powers of 10.
199
641k
        int max_index = std::min(found_dot ? (result_int_part_digit_count +
200
633k
                                              ((int_part_count > 0 && exponent > 0) ? 1 : 0))
201
641k
                                           : result_int_part_digit_count,
202
641k
                                 end_digit_index);
203
641k
        max_index = (max_index == std::numeric_limits<int>::min() ? end_digit_index : max_index);
204
        // skip zero number
205
853k
        for (; digit_index != max_index && s[digit_index] == '0'; ++digit_index) {
206
212k
        }
207
        // test 0.00, .00, 0.{00...}e2147483647
208
        // 0.00000e2147483647
209
641k
        if (digit_index != max_index &&
210
641k
            (result_int_part_digit_count - digit_index > type_precision - type_scale)) {
211
10.2k
            *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
212
10.2k
            return 0;
213
10.2k
        }
214
        // get int part number
215
1.84M
        for (; digit_index != max_index; ++digit_index) {
216
1.21M
            if (UNLIKELY(s[digit_index] == '.')) {
217
960
                continue;
218
960
            }
219
1.21M
            int_part_number = int_part_number * 10 + (s[digit_index] - '0');
220
1.21M
        }
221
        // Count only significand digits, not exponent syntax. If the exponent moves the decimal
222
        // point past all available significant digits, append zeros by scaling the integer part:
223
        // "1.4E+2" scans integer 14, total_significant_digit_count=2, then multiplies by 10.
224
631k
        auto total_significant_digit_count =
225
631k
                end_digit_index - ((found_dot && int_part_count > 0) ? 1 : 0);
226
631k
        if (result_int_part_digit_count > total_significant_digit_count) {
227
76
            int_part_number *= get_scale_multiplier<T>(result_int_part_digit_count -
228
76
                                                       total_significant_digit_count);
229
76
        }
230
631k
    } else {
231
        // leading zeros of fraction part
232
1.43k
        actual_frac_part_count = -result_int_part_digit_count;
233
1.43k
    }
234
    // get fraction part number
235
6.02M
    for (; digit_index != end_digit_index && actual_frac_part_count < type_scale; ++digit_index) {
236
5.38M
        if (UNLIKELY(s[digit_index] == '.')) {
237
597k
            continue;
238
597k
        }
239
4.79M
        frac_part_number = frac_part_number * 10 + (s[digit_index] - '0');
240
4.79M
        ++actual_frac_part_count;
241
4.79M
    }
242
632k
    auto type_scale_multiplier = get_scale_multiplier<T>(type_scale);
243
    // Round only when the next parsed significand digit is exactly the first discarded fractional
244
    // digit. If `actual_frac_part_count` is already greater than type_scale, the missing positions
245
    // are implicit zeros from a negative exponent, so "5e-17" to scale 15 must stay 0 instead of
246
    // rounding up.
247
632k
    if (actual_frac_part_count == type_scale && digit_index != end_digit_index) {
248
20.0k
        if (UNLIKELY(s[digit_index] == '.')) {
249
852
            ++digit_index;
250
852
        }
251
20.0k
        if (digit_index != end_digit_index) {
252
            // example: test 1.5 -> decimal(1, 0)
253
19.8k
            if (s[digit_index] >= '5') {
254
7.95k
                ++frac_part_number;
255
7.95k
                if (frac_part_number == type_scale_multiplier) {
256
836
                    frac_part_number = 0;
257
836
                    ++int_part_number;
258
836
                }
259
7.95k
            }
260
19.8k
        }
261
612k
    } else {
262
612k
        if (actual_frac_part_count < type_scale) {
263
32.0k
            frac_part_number *= get_scale_multiplier<T>(type_scale - actual_frac_part_count);
264
32.0k
        }
265
612k
    }
266
632k
    if (int_part_number >= get_scale_multiplier<T>(type_precision - type_scale)) {
267
16
        *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
268
16
        return 0;
269
16
    }
270
271
632k
    T value = int_part_number * type_scale_multiplier + frac_part_number;
272
632k
    *result = StringParser::PARSE_SUCCESS;
273
632k
    return is_negative ? T(-value) : T(value);
274
632k
}
_ZN5doris12StringParser17string_to_decimalILNS_13PrimitiveTypeE30EEENS_19PrimitiveTypeTraitsIXT_EE7CppType10NativeTypeEPKcmiiPNS0_11ParseResultE
Line
Count
Source
61
395k
        ParseResult* result) {
62
395k
    using T = typename PrimitiveTypeTraits<P>::CppType::NativeType;
63
395k
    static_assert(std::is_same_v<T, int32_t> || std::is_same_v<T, int64_t> ||
64
395k
                          std::is_same_v<T, __int128> || std::is_same_v<T, wide::Int256>,
65
395k
                  "Cast string to decimal only support target type int32_t, int64_t, __int128 or "
66
395k
                  "wide::Int256.");
67
68
    // Parse in two logical coordinate systems:
69
    // 1. `s[0, end_digit_index)` is the normalized significand after trimming spaces, sign and
70
    //    leading zeros. If the original value starts with '.', the dot is also skipped so
71
    //    ".14E+3" is parsed as significand "14" with exponent 3.
72
    // 2. `result_int_part_digit_count = int_part_count + exponent` is the decimal point position
73
    //    after applying scientific notation. For example, "1.4E+2" has int_part_count=1,
74
    //    exponent=2, result_int_part_digit_count=3, so "14" becomes integer 140.
75
    // `digit_index` always indexes the normalized significand string, which may still contain a
76
    // dot for inputs like "1.4E+2"; loops that build numbers skip that dot explicitly.
77
    // Ignore leading and trailing spaces.
78
395k
    s = skip_ascii_whitespaces(s, len);
79
80
395k
    bool is_negative = false;
81
395k
    if (len > 0) {
82
395k
        switch (*s) {
83
62.8k
        case '-':
84
62.8k
            is_negative = true;
85
62.8k
            [[fallthrough]];
86
69.5k
        case '+':
87
69.5k
            ++s;
88
69.5k
            --len;
89
395k
        }
90
395k
    }
91
    // Ignore leading zeros.
92
395k
    bool found_value = false;
93
471k
    while (len > 0 && UNLIKELY(*s == '0')) {
94
75.6k
        found_value = true;
95
75.6k
        ++s;
96
75.6k
        --len;
97
75.6k
    }
98
99
395k
    int found_dot = 0;
100
395k
    if (len > 0 && *s == '.') {
101
25.0k
        found_dot = 1;
102
25.0k
        ++s;
103
25.0k
        --len;
104
25.0k
    }
105
395k
    int int_part_count = 0;
106
395k
    int i = 0;
107
8.21M
    for (; i != len; ++i) {
108
7.83M
        const char& c = s[i];
109
7.83M
        if (LIKELY('0' <= c && c <= '9')) {
110
7.46M
            found_value = true;
111
7.46M
            if (!found_dot) {
112
1.41M
                ++int_part_count;
113
1.41M
            }
114
7.46M
        } else if (c == '.') {
115
358k
            if (found_dot) {
116
0
                *result = StringParser::PARSE_FAILURE;
117
0
                return 0;
118
0
            }
119
358k
            found_dot = 1;
120
358k
        } else {
121
12.2k
            break;
122
12.2k
        }
123
7.83M
    }
124
395k
    if (!found_value) {
125
        // '', '.'
126
93
        *result = StringParser::PARSE_FAILURE;
127
93
        return 0;
128
93
    }
129
    // Parse exponent if any. Keep `end_digit_index` before consuming 'e/E' so later digit counts
130
    // ignore exponent syntax. For "1.4E+2", end_digit_index points just after "1.4", not after
131
    // "E+2".
132
395k
    int64_t exponent = 0;
133
395k
    auto end_digit_index = i;
134
395k
    if (i != len) {
135
12.4k
        bool negative_exponent = false;
136
12.4k
        if (s[i] == 'e' || s[i] == 'E') {
137
12.4k
            ++i;
138
12.4k
            if (i != len) {
139
12.4k
                switch (s[i]) {
140
4.66k
                case '-':
141
4.66k
                    negative_exponent = true;
142
4.66k
                    [[fallthrough]];
143
4.67k
                case '+':
144
4.67k
                    ++i;
145
12.4k
                }
146
12.4k
            }
147
12.4k
            if (i == len) {
148
                // '123e', '123e+', '123e-'
149
0
                *result = StringParser::PARSE_FAILURE;
150
0
                return 0;
151
0
            }
152
35.8k
            for (; i != len; ++i) {
153
23.4k
                const char& c = s[i];
154
23.4k
                if (LIKELY('0' <= c && c <= '9')) {
155
23.4k
                    exponent = exponent * 10 + (c - '0');
156
                    // max string len is config::string_type_length_soft_limit_bytes,
157
                    // whose max value is std::numeric_limits<int32_t>::max() - 4,
158
                    // just check overflow of int32_t to simplify the logic
159
                    // For edge cases like 0.{2147483647 zeros}e+2147483647
160
23.4k
                    if (exponent > std::numeric_limits<int32_t>::max()) {
161
0
                        *result = StringParser::PARSE_OVERFLOW;
162
0
                        return 0;
163
0
                    }
164
23.4k
                } else {
165
                    // '123e12abc', '123e1.2'
166
0
                    *result = StringParser::PARSE_FAILURE;
167
0
                    return 0;
168
0
                }
169
23.4k
            }
170
12.4k
            if (negative_exponent) {
171
4.66k
                exponent = -exponent;
172
4.66k
            }
173
12.4k
        } else {
174
13
            *result = StringParser::PARSE_FAILURE;
175
13
            return 0;
176
13
        }
177
12.4k
    }
178
    // TODO: check limit values of exponent and add UT
179
    // max string len is config::string_type_length_soft_limit_bytes,
180
    // whose max value is std::numeric_limits<int32_t>::max() - 4,
181
    // so int_part_count will be in range of int32_t,
182
    // and int_part_count + exponent will be in range of int64_t
183
395k
    int64_t tmp_result_int_part_digit_count = int_part_count + exponent;
184
395k
    if (tmp_result_int_part_digit_count > std::numeric_limits<int>::max() ||
185
396k
        tmp_result_int_part_digit_count < std::numeric_limits<int>::min()) {
186
0
        *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
187
0
        return 0;
188
0
    }
189
395k
    int result_int_part_digit_count = tmp_result_int_part_digit_count;
190
395k
    T int_part_number = 0;
191
395k
    T frac_part_number = 0;
192
395k
    int actual_frac_part_count = 0;
193
395k
    int digit_index = 0;
194
395k
    if (result_int_part_digit_count >= 0) {
195
        // `max_index` is the raw significand index where integer-part digits stop. Add one extra
196
        // raw character only when crossing an in-buffer dot, e.g. "1.4E+2" must scan "1.4" to
197
        // collect three integer digits after the exponent shift. It is capped by end_digit_index
198
        // because missing digits are appended later by multiplying with powers of 10.
199
392k
        int max_index = std::min(found_dot ? (result_int_part_digit_count +
200
382k
                                              ((int_part_count > 0 && exponent > 0) ? 1 : 0))
201
392k
                                           : result_int_part_digit_count,
202
392k
                                 end_digit_index);
203
392k
        max_index = (max_index == std::numeric_limits<int>::min() ? end_digit_index : max_index);
204
        // skip zero number
205
606k
        for (; digit_index != max_index && s[digit_index] == '0'; ++digit_index) {
206
213k
        }
207
        // test 0.00, .00, 0.{00...}e2147483647
208
        // 0.00000e2147483647
209
392k
        if (digit_index != max_index &&
210
392k
            (result_int_part_digit_count - digit_index > type_precision - type_scale)) {
211
141
            *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
212
141
            return 0;
213
141
        }
214
        // get int part number
215
1.76M
        for (; digit_index != max_index; ++digit_index) {
216
1.37M
            if (UNLIKELY(s[digit_index] == '.')) {
217
962
                continue;
218
962
            }
219
1.37M
            int_part_number = int_part_number * 10 + (s[digit_index] - '0');
220
1.37M
        }
221
        // Count only significand digits, not exponent syntax. If the exponent moves the decimal
222
        // point past all available significant digits, append zeros by scaling the integer part:
223
        // "1.4E+2" scans integer 14, total_significant_digit_count=2, then multiplies by 10.
224
392k
        auto total_significant_digit_count =
225
392k
                end_digit_index - ((found_dot && int_part_count > 0) ? 1 : 0);
226
392k
        if (result_int_part_digit_count > total_significant_digit_count) {
227
80
            int_part_number *= get_scale_multiplier<T>(result_int_part_digit_count -
228
80
                                                       total_significant_digit_count);
229
80
        }
230
392k
    } else {
231
        // leading zeros of fraction part
232
2.86k
        actual_frac_part_count = -result_int_part_digit_count;
233
2.86k
    }
234
    // get fraction part number
235
6.52M
    for (; digit_index != end_digit_index && actual_frac_part_count < type_scale; ++digit_index) {
236
6.13M
        if (UNLIKELY(s[digit_index] == '.')) {
237
355k
            continue;
238
355k
        }
239
5.77M
        frac_part_number = frac_part_number * 10 + (s[digit_index] - '0');
240
5.77M
        ++actual_frac_part_count;
241
5.77M
    }
242
395k
    auto type_scale_multiplier = get_scale_multiplier<T>(type_scale);
243
    // Round only when the next parsed significand digit is exactly the first discarded fractional
244
    // digit. If `actual_frac_part_count` is already greater than type_scale, the missing positions
245
    // are implicit zeros from a negative exponent, so "5e-17" to scale 15 must stay 0 instead of
246
    // rounding up.
247
395k
    if (actual_frac_part_count == type_scale && digit_index != end_digit_index) {
248
20.1k
        if (UNLIKELY(s[digit_index] == '.')) {
249
852
            ++digit_index;
250
852
        }
251
20.1k
        if (digit_index != end_digit_index) {
252
            // example: test 1.5 -> decimal(1, 0)
253
19.9k
            if (s[digit_index] >= '5') {
254
8.03k
                ++frac_part_number;
255
8.03k
                if (frac_part_number == type_scale_multiplier) {
256
907
                    frac_part_number = 0;
257
907
                    ++int_part_number;
258
907
                }
259
8.03k
            }
260
19.9k
        }
261
375k
    } else {
262
375k
        if (actual_frac_part_count < type_scale) {
263
49.2k
            frac_part_number *= get_scale_multiplier<T>(type_scale - actual_frac_part_count);
264
49.2k
        }
265
375k
    }
266
395k
    if (int_part_number >= get_scale_multiplier<T>(type_precision - type_scale)) {
267
16
        *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
268
16
        return 0;
269
16
    }
270
271
395k
    T value = int_part_number * type_scale_multiplier + frac_part_number;
272
395k
    *result = StringParser::PARSE_SUCCESS;
273
395k
    return is_negative ? T(-value) : T(value);
274
395k
}
_ZN5doris12StringParser17string_to_decimalILNS_13PrimitiveTypeE20EEENS_19PrimitiveTypeTraitsIXT_EE7CppType10NativeTypeEPKcmiiPNS0_11ParseResultE
Line
Count
Source
61
13.7k
        ParseResult* result) {
62
13.7k
    using T = typename PrimitiveTypeTraits<P>::CppType::NativeType;
63
13.7k
    static_assert(std::is_same_v<T, int32_t> || std::is_same_v<T, int64_t> ||
64
13.7k
                          std::is_same_v<T, __int128> || std::is_same_v<T, wide::Int256>,
65
13.7k
                  "Cast string to decimal only support target type int32_t, int64_t, __int128 or "
66
13.7k
                  "wide::Int256.");
67
68
    // Parse in two logical coordinate systems:
69
    // 1. `s[0, end_digit_index)` is the normalized significand after trimming spaces, sign and
70
    //    leading zeros. If the original value starts with '.', the dot is also skipped so
71
    //    ".14E+3" is parsed as significand "14" with exponent 3.
72
    // 2. `result_int_part_digit_count = int_part_count + exponent` is the decimal point position
73
    //    after applying scientific notation. For example, "1.4E+2" has int_part_count=1,
74
    //    exponent=2, result_int_part_digit_count=3, so "14" becomes integer 140.
75
    // `digit_index` always indexes the normalized significand string, which may still contain a
76
    // dot for inputs like "1.4E+2"; loops that build numbers skip that dot explicitly.
77
    // Ignore leading and trailing spaces.
78
13.7k
    s = skip_ascii_whitespaces(s, len);
79
80
13.7k
    bool is_negative = false;
81
13.7k
    if (len > 0) {
82
13.7k
        switch (*s) {
83
6.72k
        case '-':
84
6.72k
            is_negative = true;
85
6.72k
            [[fallthrough]];
86
6.72k
        case '+':
87
6.72k
            ++s;
88
6.72k
            --len;
89
13.7k
        }
90
13.7k
    }
91
    // Ignore leading zeros.
92
13.7k
    bool found_value = false;
93
52.6k
    while (len > 0 && UNLIKELY(*s == '0')) {
94
38.8k
        found_value = true;
95
38.8k
        ++s;
96
38.8k
        --len;
97
38.8k
    }
98
99
13.7k
    int found_dot = 0;
100
13.7k
    if (len > 0 && *s == '.') {
101
2.04k
        found_dot = 1;
102
2.04k
        ++s;
103
2.04k
        --len;
104
2.04k
    }
105
13.7k
    int int_part_count = 0;
106
13.7k
    int i = 0;
107
283k
    for (; i != len; ++i) {
108
269k
        const char& c = s[i];
109
269k
        if (LIKELY('0' <= c && c <= '9')) {
110
257k
            found_value = true;
111
257k
            if (!found_dot) {
112
137k
                ++int_part_count;
113
137k
            }
114
257k
        } else if (c == '.') {
115
11.6k
            if (found_dot) {
116
0
                *result = StringParser::PARSE_FAILURE;
117
0
                return 0;
118
0
            }
119
11.6k
            found_dot = 1;
120
11.6k
        } else {
121
11
            break;
122
11
        }
123
269k
    }
124
13.7k
    if (!found_value) {
125
        // '', '.'
126
10
        *result = StringParser::PARSE_FAILURE;
127
10
        return 0;
128
10
    }
129
    // Parse exponent if any. Keep `end_digit_index` before consuming 'e/E' so later digit counts
130
    // ignore exponent syntax. For "1.4E+2", end_digit_index points just after "1.4", not after
131
    // "E+2".
132
13.7k
    int64_t exponent = 0;
133
13.7k
    auto end_digit_index = i;
134
13.7k
    if (i != len) {
135
1
        bool negative_exponent = false;
136
1
        if (s[i] == 'e' || s[i] == 'E') {
137
0
            ++i;
138
0
            if (i != len) {
139
0
                switch (s[i]) {
140
0
                case '-':
141
0
                    negative_exponent = true;
142
0
                    [[fallthrough]];
143
0
                case '+':
144
0
                    ++i;
145
0
                }
146
0
            }
147
0
            if (i == len) {
148
                // '123e', '123e+', '123e-'
149
0
                *result = StringParser::PARSE_FAILURE;
150
0
                return 0;
151
0
            }
152
0
            for (; i != len; ++i) {
153
0
                const char& c = s[i];
154
0
                if (LIKELY('0' <= c && c <= '9')) {
155
0
                    exponent = exponent * 10 + (c - '0');
156
                    // max string len is config::string_type_length_soft_limit_bytes,
157
                    // whose max value is std::numeric_limits<int32_t>::max() - 4,
158
                    // just check overflow of int32_t to simplify the logic
159
                    // For edge cases like 0.{2147483647 zeros}e+2147483647
160
0
                    if (exponent > std::numeric_limits<int32_t>::max()) {
161
0
                        *result = StringParser::PARSE_OVERFLOW;
162
0
                        return 0;
163
0
                    }
164
0
                } else {
165
                    // '123e12abc', '123e1.2'
166
0
                    *result = StringParser::PARSE_FAILURE;
167
0
                    return 0;
168
0
                }
169
0
            }
170
0
            if (negative_exponent) {
171
0
                exponent = -exponent;
172
0
            }
173
1
        } else {
174
1
            *result = StringParser::PARSE_FAILURE;
175
1
            return 0;
176
1
        }
177
1
    }
178
    // TODO: check limit values of exponent and add UT
179
    // max string len is config::string_type_length_soft_limit_bytes,
180
    // whose max value is std::numeric_limits<int32_t>::max() - 4,
181
    // so int_part_count will be in range of int32_t,
182
    // and int_part_count + exponent will be in range of int64_t
183
13.7k
    int64_t tmp_result_int_part_digit_count = int_part_count + exponent;
184
13.7k
    if (tmp_result_int_part_digit_count > std::numeric_limits<int>::max() ||
185
13.7k
        tmp_result_int_part_digit_count < std::numeric_limits<int>::min()) {
186
0
        *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
187
0
        return 0;
188
0
    }
189
13.7k
    int result_int_part_digit_count = tmp_result_int_part_digit_count;
190
13.7k
    T int_part_number = 0;
191
13.7k
    T frac_part_number = 0;
192
13.7k
    int actual_frac_part_count = 0;
193
13.7k
    int digit_index = 0;
194
13.7k
    if (result_int_part_digit_count >= 0) {
195
        // `max_index` is the raw significand index where integer-part digits stop. Add one extra
196
        // raw character only when crossing an in-buffer dot, e.g. "1.4E+2" must scan "1.4" to
197
        // collect three integer digits after the exponent shift. It is capped by end_digit_index
198
        // because missing digits are appended later by multiplying with powers of 10.
199
13.7k
        int max_index = std::min(found_dot ? (result_int_part_digit_count +
200
13.6k
                                              ((int_part_count > 0 && exponent > 0) ? 1 : 0))
201
13.7k
                                           : result_int_part_digit_count,
202
13.7k
                                 end_digit_index);
203
13.7k
        max_index = (max_index == std::numeric_limits<int>::min() ? end_digit_index : max_index);
204
        // skip zero number
205
13.7k
        for (; digit_index != max_index && s[digit_index] == '0'; ++digit_index) {
206
0
        }
207
        // test 0.00, .00, 0.{00...}e2147483647
208
        // 0.00000e2147483647
209
13.7k
        if (digit_index != max_index &&
210
13.7k
            (result_int_part_digit_count - digit_index > type_precision - type_scale)) {
211
8
            *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
212
8
            return 0;
213
8
        }
214
        // get int part number
215
151k
        for (; digit_index != max_index; ++digit_index) {
216
137k
            if (UNLIKELY(s[digit_index] == '.')) {
217
0
                continue;
218
0
            }
219
137k
            int_part_number = int_part_number * 10 + (s[digit_index] - '0');
220
137k
        }
221
        // Count only significand digits, not exponent syntax. If the exponent moves the decimal
222
        // point past all available significant digits, append zeros by scaling the integer part:
223
        // "1.4E+2" scans integer 14, total_significant_digit_count=2, then multiplies by 10.
224
13.7k
        auto total_significant_digit_count =
225
13.7k
                end_digit_index - ((found_dot && int_part_count > 0) ? 1 : 0);
226
13.7k
        if (result_int_part_digit_count > total_significant_digit_count) {
227
0
            int_part_number *= get_scale_multiplier<T>(result_int_part_digit_count -
228
0
                                                       total_significant_digit_count);
229
0
        }
230
13.7k
    } else {
231
        // leading zeros of fraction part
232
0
        actual_frac_part_count = -result_int_part_digit_count;
233
0
    }
234
    // get fraction part number
235
145k
    for (; digit_index != end_digit_index && actual_frac_part_count < type_scale; ++digit_index) {
236
131k
        if (UNLIKELY(s[digit_index] == '.')) {
237
11.6k
            continue;
238
11.6k
        }
239
120k
        frac_part_number = frac_part_number * 10 + (s[digit_index] - '0');
240
120k
        ++actual_frac_part_count;
241
120k
    }
242
13.7k
    auto type_scale_multiplier = get_scale_multiplier<T>(type_scale);
243
    // Round only when the next parsed significand digit is exactly the first discarded fractional
244
    // digit. If `actual_frac_part_count` is already greater than type_scale, the missing positions
245
    // are implicit zeros from a negative exponent, so "5e-17" to scale 15 must stay 0 instead of
246
    // rounding up.
247
13.7k
    if (actual_frac_part_count == type_scale && digit_index != end_digit_index) {
248
17
        if (UNLIKELY(s[digit_index] == '.')) {
249
0
            ++digit_index;
250
0
        }
251
17
        if (digit_index != end_digit_index) {
252
            // example: test 1.5 -> decimal(1, 0)
253
17
            if (s[digit_index] >= '5') {
254
17
                ++frac_part_number;
255
17
                if (frac_part_number == type_scale_multiplier) {
256
0
                    frac_part_number = 0;
257
0
                    ++int_part_number;
258
0
                }
259
17
            }
260
17
        }
261
13.7k
    } else {
262
13.7k
        if (actual_frac_part_count < type_scale) {
263
1.94k
            frac_part_number *= get_scale_multiplier<T>(type_scale - actual_frac_part_count);
264
1.94k
        }
265
13.7k
    }
266
13.7k
    if (int_part_number >= get_scale_multiplier<T>(type_precision - type_scale)) {
267
0
        *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
268
0
        return 0;
269
0
    }
270
271
13.7k
    T value = int_part_number * type_scale_multiplier + frac_part_number;
272
13.7k
    *result = StringParser::PARSE_SUCCESS;
273
13.7k
    return is_negative ? T(-value) : T(value);
274
13.7k
}
_ZN5doris12StringParser17string_to_decimalILNS_13PrimitiveTypeE35EEENS_19PrimitiveTypeTraitsIXT_EE7CppType10NativeTypeEPKcmiiPNS0_11ParseResultE
Line
Count
Source
61
116k
        ParseResult* result) {
62
116k
    using T = typename PrimitiveTypeTraits<P>::CppType::NativeType;
63
116k
    static_assert(std::is_same_v<T, int32_t> || std::is_same_v<T, int64_t> ||
64
116k
                          std::is_same_v<T, __int128> || std::is_same_v<T, wide::Int256>,
65
116k
                  "Cast string to decimal only support target type int32_t, int64_t, __int128 or "
66
116k
                  "wide::Int256.");
67
68
    // Parse in two logical coordinate systems:
69
    // 1. `s[0, end_digit_index)` is the normalized significand after trimming spaces, sign and
70
    //    leading zeros. If the original value starts with '.', the dot is also skipped so
71
    //    ".14E+3" is parsed as significand "14" with exponent 3.
72
    // 2. `result_int_part_digit_count = int_part_count + exponent` is the decimal point position
73
    //    after applying scientific notation. For example, "1.4E+2" has int_part_count=1,
74
    //    exponent=2, result_int_part_digit_count=3, so "14" becomes integer 140.
75
    // `digit_index` always indexes the normalized significand string, which may still contain a
76
    // dot for inputs like "1.4E+2"; loops that build numbers skip that dot explicitly.
77
    // Ignore leading and trailing spaces.
78
116k
    s = skip_ascii_whitespaces(s, len);
79
80
116k
    bool is_negative = false;
81
116k
    if (len > 0) {
82
116k
        switch (*s) {
83
17.3k
        case '-':
84
17.3k
            is_negative = true;
85
17.3k
            [[fallthrough]];
86
23.9k
        case '+':
87
23.9k
            ++s;
88
23.9k
            --len;
89
116k
        }
90
116k
    }
91
    // Ignore leading zeros.
92
116k
    bool found_value = false;
93
210k
    while (len > 0 && UNLIKELY(*s == '0')) {
94
93.9k
        found_value = true;
95
93.9k
        ++s;
96
93.9k
        --len;
97
93.9k
    }
98
99
116k
    int found_dot = 0;
100
116k
    if (len > 0 && *s == '.') {
101
15.8k
        found_dot = 1;
102
15.8k
        ++s;
103
15.8k
        --len;
104
15.8k
    }
105
116k
    int int_part_count = 0;
106
116k
    int i = 0;
107
3.91M
    for (; i != len; ++i) {
108
3.87M
        const char& c = s[i];
109
3.87M
        if (LIKELY('0' <= c && c <= '9')) {
110
3.69M
            found_value = true;
111
3.69M
            if (!found_dot) {
112
991k
                ++int_part_count;
113
991k
            }
114
3.69M
        } else if (c == '.') {
115
94.5k
            if (found_dot) {
116
0
                *result = StringParser::PARSE_FAILURE;
117
0
                return 0;
118
0
            }
119
94.5k
            found_dot = 1;
120
94.5k
        } else {
121
76.9k
            break;
122
76.9k
        }
123
3.87M
    }
124
116k
    if (!found_value) {
125
        // '', '.'
126
66
        *result = StringParser::PARSE_FAILURE;
127
66
        return 0;
128
66
    }
129
    // Parse exponent if any. Keep `end_digit_index` before consuming 'e/E' so later digit counts
130
    // ignore exponent syntax. For "1.4E+2", end_digit_index points just after "1.4", not after
131
    // "E+2".
132
116k
    int64_t exponent = 0;
133
116k
    auto end_digit_index = i;
134
116k
    if (i != len) {
135
76.8k
        bool negative_exponent = false;
136
76.8k
        if (s[i] == 'e' || s[i] == 'E') {
137
76.8k
            ++i;
138
76.8k
            if (i != len) {
139
76.8k
                switch (s[i]) {
140
1.53k
                case '-':
141
1.53k
                    negative_exponent = true;
142
1.53k
                    [[fallthrough]];
143
69.1k
                case '+':
144
69.1k
                    ++i;
145
76.8k
                }
146
76.8k
            }
147
76.8k
            if (i == len) {
148
                // '123e', '123e+', '123e-'
149
0
                *result = StringParser::PARSE_FAILURE;
150
0
                return 0;
151
0
            }
152
229k
            for (; i != len; ++i) {
153
152k
                const char& c = s[i];
154
152k
                if (LIKELY('0' <= c && c <= '9')) {
155
152k
                    exponent = exponent * 10 + (c - '0');
156
                    // max string len is config::string_type_length_soft_limit_bytes,
157
                    // whose max value is std::numeric_limits<int32_t>::max() - 4,
158
                    // just check overflow of int32_t to simplify the logic
159
                    // For edge cases like 0.{2147483647 zeros}e+2147483647
160
152k
                    if (exponent > std::numeric_limits<int32_t>::max()) {
161
0
                        *result = StringParser::PARSE_OVERFLOW;
162
0
                        return 0;
163
0
                    }
164
152k
                } else {
165
                    // '123e12abc', '123e1.2'
166
10
                    *result = StringParser::PARSE_FAILURE;
167
10
                    return 0;
168
10
                }
169
152k
            }
170
76.8k
            if (negative_exponent) {
171
1.53k
                exponent = -exponent;
172
1.53k
            }
173
76.8k
        } else {
174
14
            *result = StringParser::PARSE_FAILURE;
175
14
            return 0;
176
14
        }
177
76.8k
    }
178
    // TODO: check limit values of exponent and add UT
179
    // max string len is config::string_type_length_soft_limit_bytes,
180
    // whose max value is std::numeric_limits<int32_t>::max() - 4,
181
    // so int_part_count will be in range of int32_t,
182
    // and int_part_count + exponent will be in range of int64_t
183
116k
    int64_t tmp_result_int_part_digit_count = int_part_count + exponent;
184
116k
    if (tmp_result_int_part_digit_count > std::numeric_limits<int>::max() ||
185
116k
        tmp_result_int_part_digit_count < std::numeric_limits<int>::min()) {
186
0
        *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
187
0
        return 0;
188
0
    }
189
116k
    int result_int_part_digit_count = tmp_result_int_part_digit_count;
190
116k
    T int_part_number = 0;
191
116k
    T frac_part_number = 0;
192
116k
    int actual_frac_part_count = 0;
193
116k
    int digit_index = 0;
194
116k
    if (result_int_part_digit_count >= 0) {
195
        // `max_index` is the raw significand index where integer-part digits stop. Add one extra
196
        // raw character only when crossing an in-buffer dot, e.g. "1.4E+2" must scan "1.4" to
197
        // collect three integer digits after the exponent shift. It is capped by end_digit_index
198
        // because missing digits are appended later by multiplying with powers of 10.
199
116k
        int max_index = std::min(found_dot ? (result_int_part_digit_count +
200
110k
                                              ((int_part_count > 0 && exponent > 0) ? 1 : 0))
201
116k
                                           : result_int_part_digit_count,
202
116k
                                 end_digit_index);
203
116k
        max_index = (max_index == std::numeric_limits<int>::min() ? end_digit_index : max_index);
204
        // skip zero number
205
332k
        for (; digit_index != max_index && s[digit_index] == '0'; ++digit_index) {
206
216k
        }
207
        // test 0.00, .00, 0.{00...}e2147483647
208
        // 0.00000e2147483647
209
116k
        if (digit_index != max_index &&
210
116k
            (result_int_part_digit_count - digit_index > type_precision - type_scale)) {
211
112
            *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
212
112
            return 0;
213
112
        }
214
        // get int part number
215
2.18M
        for (; digit_index != max_index; ++digit_index) {
216
2.06M
            if (UNLIKELY(s[digit_index] == '.')) {
217
68.5k
                continue;
218
68.5k
            }
219
1.99M
            int_part_number = int_part_number * 10 + (s[digit_index] - '0');
220
1.99M
        }
221
        // Count only significand digits, not exponent syntax. If the exponent moves the decimal
222
        // point past all available significant digits, append zeros by scaling the integer part:
223
        // "1.4E+2" scans integer 14, total_significant_digit_count=2, then multiplies by 10.
224
116k
        auto total_significant_digit_count =
225
116k
                end_digit_index - ((found_dot && int_part_count > 0) ? 1 : 0);
226
116k
        if (result_int_part_digit_count > total_significant_digit_count) {
227
65.5k
            int_part_number *= get_scale_multiplier<T>(result_int_part_digit_count -
228
65.5k
                                                       total_significant_digit_count);
229
65.5k
        }
230
116k
    } else {
231
        // leading zeros of fraction part
232
48
        actual_frac_part_count = -result_int_part_digit_count;
233
48
    }
234
    // get fraction part number
235
1.51M
    for (; digit_index != end_digit_index && actual_frac_part_count < type_scale; ++digit_index) {
236
1.39M
        if (UNLIKELY(s[digit_index] == '.')) {
237
24.1k
            continue;
238
24.1k
        }
239
1.37M
        frac_part_number = frac_part_number * 10 + (s[digit_index] - '0');
240
1.37M
        ++actual_frac_part_count;
241
1.37M
    }
242
116k
    auto type_scale_multiplier = get_scale_multiplier<T>(type_scale);
243
    // Round only when the next parsed significand digit is exactly the first discarded fractional
244
    // digit. If `actual_frac_part_count` is already greater than type_scale, the missing positions
245
    // are implicit zeros from a negative exponent, so "5e-17" to scale 15 must stay 0 instead of
246
    // rounding up.
247
116k
    if (actual_frac_part_count == type_scale && digit_index != end_digit_index) {
248
19.0k
        if (UNLIKELY(s[digit_index] == '.')) {
249
852
            ++digit_index;
250
852
        }
251
19.0k
        if (digit_index != end_digit_index) {
252
            // example: test 1.5 -> decimal(1, 0)
253
18.8k
            if (s[digit_index] >= '5') {
254
7.94k
                ++frac_part_number;
255
7.94k
                if (frac_part_number == type_scale_multiplier) {
256
836
                    frac_part_number = 0;
257
836
                    ++int_part_number;
258
836
                }
259
7.94k
            }
260
18.8k
        }
261
97.4k
    } else {
262
97.4k
        if (actual_frac_part_count < type_scale) {
263
88.2k
            frac_part_number *= get_scale_multiplier<T>(type_scale - actual_frac_part_count);
264
88.2k
        }
265
97.4k
    }
266
116k
    if (int_part_number >= get_scale_multiplier<T>(type_precision - type_scale)) {
267
16
        *result = is_negative ? StringParser::PARSE_UNDERFLOW : StringParser::PARSE_OVERFLOW;
268
16
        return 0;
269
16
    }
270
271
116k
    T value = int_part_number * type_scale_multiplier + frac_part_number;
272
116k
    *result = StringParser::PARSE_SUCCESS;
273
116k
    return is_negative ? T(-value) : T(value);
274
116k
}
275
276
template Int32 StringParser::string_to_decimal<PrimitiveType::TYPE_DECIMAL32>(
277
        const char* __restrict s, size_t len, int type_precision, int type_scale,
278
        ParseResult* result);
279
template Int64 StringParser::string_to_decimal<PrimitiveType::TYPE_DECIMAL64>(
280
        const char* __restrict s, size_t len, int type_precision, int type_scale,
281
        ParseResult* result);
282
template Int128 StringParser::string_to_decimal<PrimitiveType::TYPE_DECIMAL128I>(
283
        const char* __restrict s, size_t len, int type_precision, int type_scale,
284
        ParseResult* result);
285
template Int128 StringParser::string_to_decimal<PrimitiveType::TYPE_DECIMALV2>(
286
        const char* __restrict s, size_t len, int type_precision, int type_scale,
287
        ParseResult* result);
288
template wide::Int256 StringParser::string_to_decimal<PrimitiveType::TYPE_DECIMAL256>(
289
        const char* __restrict s, size_t len, int type_precision, int type_scale,
290
        ParseResult* result);
291
} // end namespace doris
292
#include "common/compile_check_avoid_end.h"