Coverage Report

Created: 2026-08-21 08:02

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
be/src/util/rle_encoding.h
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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
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//
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//   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
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// under the License.
17
#pragma once
18
19
#include <glog/logging.h>
20
21
#include <limits> // IWYU pragma: keep
22
23
#include "common/cast_set.h"
24
#include "util/bit_stream_utils.inline.h"
25
#include "util/bit_util.h"
26
27
namespace doris {
28
29
// Utility classes to do run length encoding (RLE) for fixed bit width values.  If runs
30
// are sufficiently long, RLE is used, otherwise, the values are just bit-packed
31
// (literal encoding).
32
// For both types of runs, there is a byte-aligned indicator which encodes the length
33
// of the run and the type of the run.
34
// This encoding has the benefit that when there aren't any long enough runs, values
35
// are always decoded at fixed (can be precomputed) bit offsets OR both the value and
36
// the run length are byte aligned. This allows for very efficient decoding
37
// implementations.
38
// The encoding is:
39
//    encoded-block := run*
40
//    run := literal-run | repeated-run
41
//    literal-run := literal-indicator < literal bytes >
42
//    repeated-run := repeated-indicator < repeated value. padded to byte boundary >
43
//    literal-indicator := varint_encode( number_of_groups << 1 | 1)
44
//    repeated-indicator := varint_encode( number_of_repetitions << 1 )
45
//
46
// Each run is preceded by a varint. The varint's least significant bit is
47
// used to indicate whether the run is a literal run or a repeated run. The rest
48
// of the varint is used to determine the length of the run (eg how many times the
49
// value repeats).
50
//
51
// In the case of literal runs, the run length is always a multiple of 8 (i.e. encode
52
// in groups of 8), so that no matter the bit-width of the value, the sequence will end
53
// on a byte boundary without padding.
54
// Given that we know it is a multiple of 8, we store the number of 8-groups rather than
55
// the actual number of encoded ints. (This means that the total number of encoded values
56
// can not be determined from the encoded data, since the number of values in the last
57
// group may not be a multiple of 8).
58
// There is a break-even point when it is more storage efficient to do run length
59
// encoding.  For 1 bit-width values, that point is 8 values.  They require 2 bytes
60
// for both the repeated encoding or the literal encoding.  This value can always
61
// be computed based on the bit-width.
62
// TODO: think about how to use this for strings.  The bit packing isn't quite the same.
63
//
64
// Examples with bit-width 1 (eg encoding booleans):
65
// ----------------------------------------
66
// 100 1s followed by 100 0s:
67
// <varint(100 << 1)> <1, padded to 1 byte> <varint(100 << 1)> <0, padded to 1 byte>
68
//  - (total 4 bytes)
69
//
70
// alternating 1s and 0s (200 total):
71
// 200 ints = 25 groups of 8
72
// <varint((25 << 1) | 1)> <25 bytes of values, bitpacked>
73
// (total 26 bytes, 1 byte overhead)
74
//
75
76
// Decoder class for RLE encoded data.
77
//
78
// NOTE: the encoded format does not have any length prefix or any other way of
79
// indicating that the encoded sequence ends at a certain point, so the Decoder
80
// methods may return some extra bits at the end before the read methods start
81
// to return 0/false.
82
template <typename T>
83
class RleDecoder {
84
public:
85
    // Create a decoder object. buffer/buffer_len is the decoded data.
86
    // bit_width is the width of each value (before encoding).
87
    RleDecoder(const uint8_t* buffer, int buffer_len, int bit_width)
88
235k
            : bit_reader_(buffer, buffer_len),
89
235k
              bit_width_(bit_width),
90
235k
              current_value_(0),
91
235k
              repeat_count_(0),
92
235k
              literal_count_(0),
93
235k
              rewind_state_(CANT_REWIND) {
94
235k
        DCHECK_GE(bit_width_, 1);
95
235k
        DCHECK_LE(bit_width_, 64);
96
235k
    }
_ZN5doris10RleDecoderIsEC2EPKhii
Line
Count
Source
88
5.28k
            : bit_reader_(buffer, buffer_len),
89
5.28k
              bit_width_(bit_width),
90
5.28k
              current_value_(0),
91
5.28k
              repeat_count_(0),
92
5.28k
              literal_count_(0),
93
5.28k
              rewind_state_(CANT_REWIND) {
94
5.28k
        DCHECK_GE(bit_width_, 1);
95
        DCHECK_LE(bit_width_, 64);
96
5.28k
    }
_ZN5doris10RleDecoderIhEC2EPKhii
Line
Count
Source
88
31.9k
            : bit_reader_(buffer, buffer_len),
89
31.9k
              bit_width_(bit_width),
90
31.9k
              current_value_(0),
91
31.9k
              repeat_count_(0),
92
31.9k
              literal_count_(0),
93
31.9k
              rewind_state_(CANT_REWIND) {
94
31.9k
        DCHECK_GE(bit_width_, 1);
95
        DCHECK_LE(bit_width_, 64);
96
31.9k
    }
_ZN5doris10RleDecoderIbEC2EPKhii
Line
Count
Source
88
197k
            : bit_reader_(buffer, buffer_len),
89
197k
              bit_width_(bit_width),
90
197k
              current_value_(0),
91
197k
              repeat_count_(0),
92
197k
              literal_count_(0),
93
197k
              rewind_state_(CANT_REWIND) {
94
197k
        DCHECK_GE(bit_width_, 1);
95
        DCHECK_LE(bit_width_, 64);
96
197k
    }
97
98
29.0M
    RleDecoder() {}
_ZN5doris10RleDecoderIsEC2Ev
Line
Count
Source
98
9.39k
    RleDecoder() {}
_ZN5doris10RleDecoderIhEC2Ev
Line
Count
Source
98
30.2k
    RleDecoder() {}
_ZN5doris10RleDecoderIbEC2Ev
Line
Count
Source
98
28.9M
    RleDecoder() {}
99
100
    // Skip n values, and returns the number of non-zero entries skipped.
101
    size_t Skip(size_t to_skip);
102
103
    // Gets the next value.  Returns false if there are no more.
104
    bool Get(T* val);
105
106
    // Seek to the previous value.
107
    void RewindOne();
108
109
    // Gets the next run of the same 'val'. Returns 0 if there is no
110
    // more data to be decoded. Will return a run of at most 'max_run'
111
    // values. If there are more values than this, the next call to
112
    // GetNextRun will return more from the same run.
113
    size_t GetNextRun(T* val, size_t max_run);
114
115
    size_t get_values(T* values, size_t num_values);
116
117
    // Get the count of current repeated value
118
    size_t repeated_count();
119
120
    // Get current repeated value, make sure that count equals repeated_count()
121
    T get_repeated_value(size_t count);
122
123
0
    const BitReader& bit_reader() const { return bit_reader_; }
124
125
private:
126
    bool ReadHeader();
127
128
    enum RewindState { REWIND_LITERAL, REWIND_RUN, CANT_REWIND };
129
130
    BitReader bit_reader_;
131
    int bit_width_;
132
    uint64_t current_value_;
133
    uint32_t repeat_count_;
134
    uint32_t literal_count_;
135
    RewindState rewind_state_;
136
};
137
138
// Class to incrementally build the rle data.
139
// The encoding has two modes: encoding repeated runs and literal runs.
140
// If the run is sufficiently short, it is more efficient to encode as a literal run.
141
// This class does so by buffering 8 values at a time.  If they are not all the same
142
// they are added to the literal run.  If they are the same, they are added to the
143
// repeated run.  When we switch modes, the previous run is flushed out.
144
template <typename T>
145
class RleEncoder {
146
public:
147
    // buffer: buffer to write bits to.
148
    // bit_width: max number of bits for value.
149
    // TODO: consider adding a min_repeated_run_length so the caller can control
150
    // when values should be encoded as repeated runs.  Currently this is derived
151
    // based on the bit_width, which can determine a storage optimal choice.
152
    explicit RleEncoder(faststring* buffer, int bit_width)
153
579k
            : bit_width_(bit_width), bit_writer_(buffer) {
154
579k
        DCHECK_GE(bit_width_, 1);
155
579k
        DCHECK_LE(bit_width_, 64);
156
579k
        Clear();
157
579k
    }
_ZN5doris10RleEncoderIbEC2EPNS_10faststringEi
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Count
Source
153
564k
            : bit_width_(bit_width), bit_writer_(buffer) {
154
564k
        DCHECK_GE(bit_width_, 1);
155
        DCHECK_LE(bit_width_, 64);
156
564k
        Clear();
157
564k
    }
_ZN5doris10RleEncoderIhEC2EPNS_10faststringEi
Line
Count
Source
153
15.0k
            : bit_width_(bit_width), bit_writer_(buffer) {
154
15.0k
        DCHECK_GE(bit_width_, 1);
155
        DCHECK_LE(bit_width_, 64);
156
15.0k
        Clear();
157
15.0k
    }
158
159
    // Reserve 'num_bytes' bytes for a plain encoded header, set each
160
    // byte with 'val': this is used for the RLE-encoded data blocks in
161
    // order to be able to able to store the initial ordinal position
162
    // and number of elements. This is a part of RleEncoder in order to
163
    // maintain the correct offset in 'buffer'.
164
    void Reserve(int num_bytes, uint8_t val);
165
166
    // Encode value. This value must be representable with bit_width_ bits.
167
    void Put(T value, size_t run_length = 1);
168
169
    // Flushes any pending values to the underlying buffer.
170
    // Returns the total number of bytes written
171
    int Flush();
172
173
    // Resets all the state in the encoder.
174
    void Clear();
175
176
226k
    int32_t len() const { return bit_writer_.bytes_written(); }
177
178
private:
179
    // Flushes any buffered values.  If this is part of a repeated run, this is largely
180
    // a no-op.
181
    // If it is part of a literal run, this will call FlushLiteralRun, which writes
182
    // out the buffered literal values.
183
    // If 'done' is true, the current run would be written even if it would normally
184
    // have been buffered more.  This should only be called at the end, when the
185
    // encoder has received all values even if it would normally continue to be
186
    // buffered.
187
    void FlushBufferedValues(bool done);
188
189
    // Flushes literal values to the underlying buffer.  If update_indicator_byte,
190
    // then the current literal run is complete and the indicator byte is updated.
191
    void FlushLiteralRun(bool update_indicator_byte);
192
193
    // Flushes a repeated run to the underlying buffer.
194
    void FlushRepeatedRun();
195
196
    // Number of bits needed to encode the value.
197
    const int bit_width_;
198
199
    // Underlying buffer.
200
    BitWriter bit_writer_;
201
202
    // We need to buffer at most 8 values for literals.  This happens when the
203
    // bit_width is 1 (so 8 values fit in one byte).
204
    // TODO: generalize this to other bit widths
205
    uint64_t buffered_values_[8];
206
207
    // Number of values in buffered_values_
208
    int num_buffered_values_;
209
210
    // The current (also last) value that was written and the count of how
211
    // many times in a row that value has been seen.  This is maintained even
212
    // if we are in a literal run.  If the repeat_count_ get high enough, we switch
213
    // to encoding repeated runs.
214
    uint64_t current_value_;
215
    int repeat_count_;
216
217
    // Number of literals in the current run.  This does not include the literals
218
    // that might be in buffered_values_.  Only after we've got a group big enough
219
    // can we decide if they should part of the literal_count_ or repeat_count_
220
    int literal_count_;
221
222
    // Index of a byte in the underlying buffer that stores the indicator byte.
223
    // This is reserved as soon as we need a literal run but the value is written
224
    // when the literal run is complete. We maintain an index rather than a pointer
225
    // into the underlying buffer because the pointer value may become invalid if
226
    // the underlying buffer is resized.
227
    int literal_indicator_byte_idx_;
228
};
229
230
template <typename T>
231
15.2M
bool RleDecoder<T>::ReadHeader() {
232
15.2M
    DCHECK(bit_reader_.is_initialized());
233
15.2M
    if (literal_count_ == 0 && repeat_count_ == 0) [[unlikely]] {
234
        // Read the next run's indicator int, it could be a literal or repeated run
235
        // The int is encoded as a vlq-encoded value.
236
1.21M
        uint32_t indicator_value = 0;
237
1.21M
        bool result = bit_reader_.GetVlqInt(&indicator_value);
238
1.21M
        if (!result) [[unlikely]] {
239
11.4k
            return false;
240
11.4k
        }
241
242
        // lsb indicates if it is a literal run or repeated run
243
1.20M
        bool is_literal = indicator_value & 1;
244
1.20M
        if (is_literal) {
245
589k
            literal_count_ = (indicator_value >> 1) * 8;
246
589k
            DCHECK_GT(literal_count_, 0);
247
619k
        } else {
248
619k
            repeat_count_ = indicator_value >> 1;
249
619k
            DCHECK_GT(repeat_count_, 0);
250
619k
            bool result1 = bit_reader_.GetAligned<T>(BitUtil::Ceil(bit_width_, 8),
251
619k
                                                     reinterpret_cast<T*>(&current_value_));
252
619k
            DCHECK(result1);
253
619k
        }
254
1.20M
    }
255
15.1M
    return true;
256
15.2M
}
_ZN5doris10RleDecoderIsE10ReadHeaderEv
Line
Count
Source
231
1.00M
bool RleDecoder<T>::ReadHeader() {
232
1.00M
    DCHECK(bit_reader_.is_initialized());
233
1.00M
    if (literal_count_ == 0 && repeat_count_ == 0) [[unlikely]] {
234
        // Read the next run's indicator int, it could be a literal or repeated run
235
        // The int is encoded as a vlq-encoded value.
236
25.2k
        uint32_t indicator_value = 0;
237
25.2k
        bool result = bit_reader_.GetVlqInt(&indicator_value);
238
25.2k
        if (!result) [[unlikely]] {
239
0
            return false;
240
0
        }
241
242
        // lsb indicates if it is a literal run or repeated run
243
25.2k
        bool is_literal = indicator_value & 1;
244
25.2k
        if (is_literal) {
245
10.5k
            literal_count_ = (indicator_value >> 1) * 8;
246
10.5k
            DCHECK_GT(literal_count_, 0);
247
14.7k
        } else {
248
14.7k
            repeat_count_ = indicator_value >> 1;
249
14.7k
            DCHECK_GT(repeat_count_, 0);
250
14.7k
            bool result1 = bit_reader_.GetAligned<T>(BitUtil::Ceil(bit_width_, 8),
251
14.7k
                                                     reinterpret_cast<T*>(&current_value_));
252
14.7k
            DCHECK(result1);
253
14.7k
        }
254
25.2k
    }
255
1.00M
    return true;
256
1.00M
}
_ZN5doris10RleDecoderIhE10ReadHeaderEv
Line
Count
Source
231
8.04M
bool RleDecoder<T>::ReadHeader() {
232
8.04M
    DCHECK(bit_reader_.is_initialized());
233
8.04M
    if (literal_count_ == 0 && repeat_count_ == 0) [[unlikely]] {
234
        // Read the next run's indicator int, it could be a literal or repeated run
235
        // The int is encoded as a vlq-encoded value.
236
102k
        uint32_t indicator_value = 0;
237
102k
        bool result = bit_reader_.GetVlqInt(&indicator_value);
238
102k
        if (!result) [[unlikely]] {
239
0
            return false;
240
0
        }
241
242
        // lsb indicates if it is a literal run or repeated run
243
102k
        bool is_literal = indicator_value & 1;
244
102k
        if (is_literal) {
245
63.2k
            literal_count_ = (indicator_value >> 1) * 8;
246
63.2k
            DCHECK_GT(literal_count_, 0);
247
63.2k
        } else {
248
39.6k
            repeat_count_ = indicator_value >> 1;
249
39.6k
            DCHECK_GT(repeat_count_, 0);
250
39.6k
            bool result1 = bit_reader_.GetAligned<T>(BitUtil::Ceil(bit_width_, 8),
251
39.6k
                                                     reinterpret_cast<T*>(&current_value_));
252
39.6k
            DCHECK(result1);
253
39.6k
        }
254
102k
    }
255
8.04M
    return true;
256
8.04M
}
_ZN5doris10RleDecoderIbE10ReadHeaderEv
Line
Count
Source
231
6.16M
bool RleDecoder<T>::ReadHeader() {
232
6.16M
    DCHECK(bit_reader_.is_initialized());
233
6.16M
    if (literal_count_ == 0 && repeat_count_ == 0) [[unlikely]] {
234
        // Read the next run's indicator int, it could be a literal or repeated run
235
        // The int is encoded as a vlq-encoded value.
236
1.09M
        uint32_t indicator_value = 0;
237
1.09M
        bool result = bit_reader_.GetVlqInt(&indicator_value);
238
1.09M
        if (!result) [[unlikely]] {
239
11.4k
            return false;
240
11.4k
        }
241
242
        // lsb indicates if it is a literal run or repeated run
243
1.08M
        bool is_literal = indicator_value & 1;
244
1.08M
        if (is_literal) {
245
515k
            literal_count_ = (indicator_value >> 1) * 8;
246
515k
            DCHECK_GT(literal_count_, 0);
247
564k
        } else {
248
564k
            repeat_count_ = indicator_value >> 1;
249
564k
            DCHECK_GT(repeat_count_, 0);
250
564k
            bool result1 = bit_reader_.GetAligned<T>(BitUtil::Ceil(bit_width_, 8),
251
564k
                                                     reinterpret_cast<T*>(&current_value_));
252
564k
            DCHECK(result1);
253
564k
        }
254
1.08M
    }
255
6.15M
    return true;
256
6.16M
}
257
258
template <typename T>
259
8.70M
bool RleDecoder<T>::Get(T* val) {
260
8.70M
    DCHECK(bit_reader_.is_initialized());
261
8.70M
    if (!ReadHeader()) [[unlikely]] {
262
0
        return false;
263
0
    }
264
265
8.70M
    if (repeat_count_ > 0) [[likely]] {
266
1.17M
        *val = cast_set<T>(current_value_);
267
1.17M
        --repeat_count_;
268
1.17M
        rewind_state_ = REWIND_RUN;
269
7.53M
    } else {
270
7.53M
        DCHECK(literal_count_ > 0);
271
7.53M
        bool result = bit_reader_.GetValue(bit_width_, val);
272
7.53M
        DCHECK(result);
273
7.53M
        --literal_count_;
274
7.53M
        rewind_state_ = REWIND_LITERAL;
275
7.53M
    }
276
277
8.70M
    return true;
278
8.70M
}
_ZN5doris10RleDecoderIsE3GetEPs
Line
Count
Source
259
994k
bool RleDecoder<T>::Get(T* val) {
260
994k
    DCHECK(bit_reader_.is_initialized());
261
994k
    if (!ReadHeader()) [[unlikely]] {
262
0
        return false;
263
0
    }
264
265
994k
    if (repeat_count_ > 0) [[likely]] {
266
898k
        *val = cast_set<T>(current_value_);
267
898k
        --repeat_count_;
268
898k
        rewind_state_ = REWIND_RUN;
269
898k
    } else {
270
96.1k
        DCHECK(literal_count_ > 0);
271
96.1k
        bool result = bit_reader_.GetValue(bit_width_, val);
272
96.1k
        DCHECK(result);
273
96.1k
        --literal_count_;
274
96.1k
        rewind_state_ = REWIND_LITERAL;
275
96.1k
    }
276
277
994k
    return true;
278
994k
}
_ZN5doris10RleDecoderIhE3GetEPh
Line
Count
Source
259
7.71M
bool RleDecoder<T>::Get(T* val) {
260
7.71M
    DCHECK(bit_reader_.is_initialized());
261
7.71M
    if (!ReadHeader()) [[unlikely]] {
262
0
        return false;
263
0
    }
264
265
7.71M
    if (repeat_count_ > 0) [[likely]] {
266
273k
        *val = cast_set<T>(current_value_);
267
273k
        --repeat_count_;
268
273k
        rewind_state_ = REWIND_RUN;
269
7.43M
    } else {
270
7.43M
        DCHECK(literal_count_ > 0);
271
7.43M
        bool result = bit_reader_.GetValue(bit_width_, val);
272
7.43M
        DCHECK(result);
273
7.43M
        --literal_count_;
274
7.43M
        rewind_state_ = REWIND_LITERAL;
275
7.43M
    }
276
277
7.71M
    return true;
278
7.71M
}
279
280
template <typename T>
281
1.01k
void RleDecoder<T>::RewindOne() {
282
1.01k
    DCHECK(bit_reader_.is_initialized());
283
284
1.01k
    switch (rewind_state_) {
285
0
    case CANT_REWIND:
286
0
        throw Exception(Status::FatalError("Can't rewind more than once after each read!"));
287
0
        break;
288
2
    case REWIND_RUN:
289
2
        ++repeat_count_;
290
2
        break;
291
1.01k
    case REWIND_LITERAL: {
292
1.01k
        bit_reader_.Rewind(bit_width_);
293
1.01k
        ++literal_count_;
294
1.01k
        break;
295
0
    }
296
1.01k
    }
297
298
1.01k
    rewind_state_ = CANT_REWIND;
299
1.01k
}
300
301
template <typename T>
302
5.16M
size_t RleDecoder<T>::GetNextRun(T* val, size_t max_run) {
303
5.16M
    DCHECK(bit_reader_.is_initialized());
304
5.16M
    DCHECK_GT(max_run, 0);
305
5.16M
    size_t ret = 0;
306
5.16M
    size_t rem = max_run;
307
5.77M
    while (ReadHeader()) {
308
5.76M
        if (repeat_count_ > 0) [[likely]] {
309
3.59M
            if (ret > 0 && *val != current_value_) [[unlikely]] {
310
46.7k
                return ret;
311
46.7k
            }
312
3.54M
            *val = cast_set<T>(current_value_);
313
3.54M
            if (repeat_count_ >= rem) {
314
                // The next run is longer than the amount of remaining data
315
                // that the caller wants to read. Only consume it partially.
316
3.23M
                repeat_count_ -= rem;
317
3.23M
                ret += rem;
318
3.23M
                return ret;
319
3.23M
            }
320
313k
            ret += repeat_count_;
321
313k
            rem -= repeat_count_;
322
313k
            repeat_count_ = 0;
323
2.17M
        } else {
324
2.17M
            DCHECK(literal_count_ > 0);
325
2.17M
            if (ret == 0) {
326
1.88M
                bool has_more = bit_reader_.GetValue(bit_width_, val);
327
1.88M
                DCHECK(has_more);
328
1.88M
                literal_count_--;
329
1.88M
                ret++;
330
1.88M
                rem--;
331
1.88M
            }
332
333
5.32M
            while (literal_count_ > 0) {
334
5.03M
                bool result = bit_reader_.GetValue(bit_width_, &current_value_);
335
5.03M
                DCHECK(result);
336
5.03M
                if (current_value_ != *val || rem == 0) {
337
1.87M
                    bit_reader_.Rewind(bit_width_);
338
1.87M
                    return ret;
339
1.87M
                }
340
3.15M
                ret++;
341
3.15M
                rem--;
342
3.15M
                literal_count_--;
343
3.15M
            }
344
2.17M
        }
345
5.76M
    }
346
3.82k
    return ret;
347
5.16M
}
_ZN5doris10RleDecoderIsE10GetNextRunEPsm
Line
Count
Source
302
1.32k
size_t RleDecoder<T>::GetNextRun(T* val, size_t max_run) {
303
1.32k
    DCHECK(bit_reader_.is_initialized());
304
1.32k
    DCHECK_GT(max_run, 0);
305
1.32k
    size_t ret = 0;
306
1.32k
    size_t rem = max_run;
307
1.40k
    while (ReadHeader()) {
308
1.40k
        if (repeat_count_ > 0) [[likely]] {
309
1.22k
            if (ret > 0 && *val != current_value_) [[unlikely]] {
310
42
                return ret;
311
42
            }
312
1.17k
            *val = cast_set<T>(current_value_);
313
1.17k
            if (repeat_count_ >= rem) {
314
                // The next run is longer than the amount of remaining data
315
                // that the caller wants to read. Only consume it partially.
316
1.11k
                repeat_count_ -= rem;
317
1.11k
                ret += rem;
318
1.11k
                return ret;
319
1.11k
            }
320
64
            ret += repeat_count_;
321
64
            rem -= repeat_count_;
322
64
            repeat_count_ = 0;
323
179
        } else {
324
179
            DCHECK(literal_count_ > 0);
325
179
            if (ret == 0) {
326
155
                bool has_more = bit_reader_.GetValue(bit_width_, val);
327
155
                DCHECK(has_more);
328
155
                literal_count_--;
329
155
                ret++;
330
155
                rem--;
331
155
            }
332
333
495
            while (literal_count_ > 0) {
334
480
                bool result = bit_reader_.GetValue(bit_width_, &current_value_);
335
480
                DCHECK(result);
336
480
                if (current_value_ != *val || rem == 0) {
337
164
                    bit_reader_.Rewind(bit_width_);
338
164
                    return ret;
339
164
                }
340
316
                ret++;
341
316
                rem--;
342
316
                literal_count_--;
343
316
            }
344
179
        }
345
1.40k
    }
346
0
    return ret;
347
1.32k
}
_ZN5doris10RleDecoderIbE10GetNextRunEPbm
Line
Count
Source
302
5.16M
size_t RleDecoder<T>::GetNextRun(T* val, size_t max_run) {
303
5.16M
    DCHECK(bit_reader_.is_initialized());
304
5.16M
    DCHECK_GT(max_run, 0);
305
5.16M
    size_t ret = 0;
306
5.16M
    size_t rem = max_run;
307
5.76M
    while (ReadHeader()) {
308
5.76M
        if (repeat_count_ > 0) [[likely]] {
309
3.59M
            if (ret > 0 && *val != current_value_) [[unlikely]] {
310
46.6k
                return ret;
311
46.6k
            }
312
3.54M
            *val = cast_set<T>(current_value_);
313
3.54M
            if (repeat_count_ >= rem) {
314
                // The next run is longer than the amount of remaining data
315
                // that the caller wants to read. Only consume it partially.
316
3.23M
                repeat_count_ -= rem;
317
3.23M
                ret += rem;
318
3.23M
                return ret;
319
3.23M
            }
320
313k
            ret += repeat_count_;
321
313k
            rem -= repeat_count_;
322
313k
            repeat_count_ = 0;
323
2.17M
        } else {
324
2.17M
            DCHECK(literal_count_ > 0);
325
2.17M
            if (ret == 0) {
326
1.88M
                bool has_more = bit_reader_.GetValue(bit_width_, val);
327
1.88M
                DCHECK(has_more);
328
1.88M
                literal_count_--;
329
1.88M
                ret++;
330
1.88M
                rem--;
331
1.88M
            }
332
333
5.32M
            while (literal_count_ > 0) {
334
5.03M
                bool result = bit_reader_.GetValue(bit_width_, &current_value_);
335
5.03M
                DCHECK(result);
336
5.03M
                if (current_value_ != *val || rem == 0) {
337
1.87M
                    bit_reader_.Rewind(bit_width_);
338
1.87M
                    return ret;
339
1.87M
                }
340
3.15M
                ret++;
341
3.15M
                rem--;
342
3.15M
                literal_count_--;
343
3.15M
            }
344
2.17M
        }
345
5.76M
    }
346
3.82k
    return ret;
347
5.16M
}
348
349
template <typename T>
350
7.38k
size_t RleDecoder<T>::get_values(T* values, size_t num_values) {
351
7.38k
    size_t read_num = 0;
352
18.7k
    while (read_num < num_values) {
353
11.3k
        size_t read_this_time = num_values - read_num;
354
355
11.3k
        if (LIKELY(repeat_count_ > 0)) {
356
6.69k
            read_this_time = std::min((size_t)repeat_count_, read_this_time);
357
6.69k
            std::fill(values, values + read_this_time, current_value_);
358
6.69k
            values += read_this_time;
359
6.69k
            repeat_count_ -= read_this_time;
360
6.69k
            read_num += read_this_time;
361
6.69k
        } else if (literal_count_ > 0) {
362
345
            read_this_time = std::min((size_t)literal_count_, read_this_time);
363
2.71k
            for (int i = 0; i < read_this_time; ++i) {
364
2.36k
                bool result = bit_reader_.GetValue(bit_width_, values);
365
2.36k
                DCHECK(result);
366
2.36k
                values++;
367
2.36k
            }
368
345
            literal_count_ -= read_this_time;
369
345
            read_num += read_this_time;
370
4.30k
        } else {
371
4.30k
            if (!ReadHeader()) {
372
0
                return read_num;
373
0
            }
374
4.30k
        }
375
11.3k
    }
376
7.38k
    return read_num;
377
7.38k
}
_ZN5doris10RleDecoderIsE10get_valuesEPsm
Line
Count
Source
350
7.37k
size_t RleDecoder<T>::get_values(T* values, size_t num_values) {
351
7.37k
    size_t read_num = 0;
352
18.7k
    while (read_num < num_values) {
353
11.3k
        size_t read_this_time = num_values - read_num;
354
355
11.3k
        if (LIKELY(repeat_count_ > 0)) {
356
6.69k
            read_this_time = std::min((size_t)repeat_count_, read_this_time);
357
6.69k
            std::fill(values, values + read_this_time, current_value_);
358
6.69k
            values += read_this_time;
359
6.69k
            repeat_count_ -= read_this_time;
360
6.69k
            read_num += read_this_time;
361
6.69k
        } else if (literal_count_ > 0) {
362
340
            read_this_time = std::min((size_t)literal_count_, read_this_time);
363
2.67k
            for (int i = 0; i < read_this_time; ++i) {
364
2.33k
                bool result = bit_reader_.GetValue(bit_width_, values);
365
2.33k
                DCHECK(result);
366
2.33k
                values++;
367
2.33k
            }
368
340
            literal_count_ -= read_this_time;
369
340
            read_num += read_this_time;
370
4.30k
        } else {
371
4.30k
            if (!ReadHeader()) {
372
0
                return read_num;
373
0
            }
374
4.30k
        }
375
11.3k
    }
376
7.37k
    return read_num;
377
7.37k
}
_ZN5doris10RleDecoderIhE10get_valuesEPhm
Line
Count
Source
350
5
size_t RleDecoder<T>::get_values(T* values, size_t num_values) {
351
5
    size_t read_num = 0;
352
14
    while (read_num < num_values) {
353
9
        size_t read_this_time = num_values - read_num;
354
355
9
        if (LIKELY(repeat_count_ > 0)) {
356
0
            read_this_time = std::min((size_t)repeat_count_, read_this_time);
357
0
            std::fill(values, values + read_this_time, current_value_);
358
0
            values += read_this_time;
359
0
            repeat_count_ -= read_this_time;
360
0
            read_num += read_this_time;
361
9
        } else if (literal_count_ > 0) {
362
5
            read_this_time = std::min((size_t)literal_count_, read_this_time);
363
40
            for (int i = 0; i < read_this_time; ++i) {
364
35
                bool result = bit_reader_.GetValue(bit_width_, values);
365
35
                DCHECK(result);
366
35
                values++;
367
35
            }
368
5
            literal_count_ -= read_this_time;
369
5
            read_num += read_this_time;
370
5
        } else {
371
4
            if (!ReadHeader()) {
372
0
                return read_num;
373
0
            }
374
4
        }
375
9
    }
376
5
    return read_num;
377
5
}
378
379
template <typename T>
380
size_t RleDecoder<T>::repeated_count() {
381
    if (repeat_count_ > 0) {
382
        return repeat_count_;
383
    }
384
    if (literal_count_ == 0) {
385
        ReadHeader();
386
    }
387
    return repeat_count_;
388
}
389
390
template <typename T>
391
T RleDecoder<T>::get_repeated_value(size_t count) {
392
    DCHECK_GE(repeat_count_, count);
393
    repeat_count_ -= count;
394
    return current_value_;
395
}
396
397
template <typename T>
398
1.31M
size_t RleDecoder<T>::Skip(size_t to_skip) {
399
1.31M
    DCHECK(bit_reader_.is_initialized());
400
401
1.31M
    size_t set_count = 0;
402
1.98M
    while (to_skip > 0) {
403
667k
        bool result = ReadHeader();
404
667k
        DCHECK(result);
405
406
667k
        if (repeat_count_ > 0) [[likely]] {
407
231k
            size_t nskip = (repeat_count_ < to_skip) ? repeat_count_ : to_skip;
408
231k
            repeat_count_ -= nskip;
409
231k
            to_skip -= nskip;
410
231k
            if (current_value_ != 0) {
411
165k
                set_count += nskip;
412
165k
            }
413
436k
        } else {
414
436k
            DCHECK(literal_count_ > 0);
415
436k
            size_t nskip = (literal_count_ < to_skip) ? literal_count_ : to_skip;
416
436k
            literal_count_ -= nskip;
417
436k
            to_skip -= nskip;
418
15.3M
            for (; nskip > 0; nskip--) {
419
14.9M
                T value = 0;
420
14.9M
                bool result1 = bit_reader_.GetValue(bit_width_, &value);
421
14.9M
                DCHECK(result1);
422
14.9M
                if (value != 0) {
423
8.08M
                    set_count++;
424
8.08M
                }
425
14.9M
            }
426
436k
        }
427
667k
    }
428
1.31M
    return set_count;
429
1.31M
}
_ZN5doris10RleDecoderIhE4SkipEm
Line
Count
Source
398
1.20M
size_t RleDecoder<T>::Skip(size_t to_skip) {
399
1.20M
    DCHECK(bit_reader_.is_initialized());
400
401
1.20M
    size_t set_count = 0;
402
1.49M
    while (to_skip > 0) {
403
291k
        bool result = ReadHeader();
404
291k
        DCHECK(result);
405
406
291k
        if (repeat_count_ > 0) [[likely]] {
407
19.5k
            size_t nskip = (repeat_count_ < to_skip) ? repeat_count_ : to_skip;
408
19.5k
            repeat_count_ -= nskip;
409
19.5k
            to_skip -= nskip;
410
19.5k
            if (current_value_ != 0) {
411
9.29k
                set_count += nskip;
412
9.29k
            }
413
271k
        } else {
414
271k
            DCHECK(literal_count_ > 0);
415
271k
            size_t nskip = (literal_count_ < to_skip) ? literal_count_ : to_skip;
416
271k
            literal_count_ -= nskip;
417
271k
            to_skip -= nskip;
418
13.3M
            for (; nskip > 0; nskip--) {
419
13.0M
                T value = 0;
420
13.0M
                bool result1 = bit_reader_.GetValue(bit_width_, &value);
421
13.0M
                DCHECK(result1);
422
13.0M
                if (value != 0) {
423
6.62M
                    set_count++;
424
6.62M
                }
425
13.0M
            }
426
271k
        }
427
291k
    }
428
1.20M
    return set_count;
429
1.20M
}
_ZN5doris10RleDecoderIbE4SkipEm
Line
Count
Source
398
109k
size_t RleDecoder<T>::Skip(size_t to_skip) {
399
109k
    DCHECK(bit_reader_.is_initialized());
400
401
109k
    size_t set_count = 0;
402
484k
    while (to_skip > 0) {
403
375k
        bool result = ReadHeader();
404
375k
        DCHECK(result);
405
406
375k
        if (repeat_count_ > 0) [[likely]] {
407
211k
            size_t nskip = (repeat_count_ < to_skip) ? repeat_count_ : to_skip;
408
211k
            repeat_count_ -= nskip;
409
211k
            to_skip -= nskip;
410
211k
            if (current_value_ != 0) {
411
156k
                set_count += nskip;
412
156k
            }
413
211k
        } else {
414
164k
            DCHECK(literal_count_ > 0);
415
164k
            size_t nskip = (literal_count_ < to_skip) ? literal_count_ : to_skip;
416
164k
            literal_count_ -= nskip;
417
164k
            to_skip -= nskip;
418
2.05M
            for (; nskip > 0; nskip--) {
419
1.89M
                T value = 0;
420
1.89M
                bool result1 = bit_reader_.GetValue(bit_width_, &value);
421
1.89M
                DCHECK(result1);
422
1.89M
                if (value != 0) {
423
1.46M
                    set_count++;
424
1.46M
                }
425
1.89M
            }
426
164k
        }
427
375k
    }
428
109k
    return set_count;
429
109k
}
430
431
// This function buffers input values 8 at a time.  After seeing all 8 values,
432
// it decides whether they should be encoded as a literal or repeated run.
433
template <typename T>
434
12.1M
void RleEncoder<T>::Put(T value, size_t run_length) {
435
12.1M
    DCHECK(bit_width_ == 64 || value < (1LL << bit_width_));
436
437
    // Fast path: if this is a continuation of the current repeated run and
438
    // we've already buffered enough values, just increment repeat_count_
439
12.1M
    if (current_value_ == value && repeat_count_ >= 8 && run_length > 0) [[likely]] {
440
1.16M
        repeat_count_ += run_length;
441
1.16M
        return;
442
1.16M
    }
443
444
    // Handle run_length > 1 more efficiently
445
25.9M
    while (run_length > 0) {
446
16.4M
        if (current_value_ == value) [[likely]] {
447
            // Need to buffer values until we reach 8
448
7.72M
            size_t to_buffer = std::min(run_length, size_t(8 - num_buffered_values_));
449
36.7M
            for (size_t i = 0; i < to_buffer; ++i) {
450
29.0M
                buffered_values_[num_buffered_values_++] = value;
451
29.0M
                ++repeat_count_;
452
29.0M
            }
453
7.72M
            run_length -= to_buffer;
454
7.72M
            if (num_buffered_values_ == 8) {
455
3.87M
                DCHECK_EQ(literal_count_ % 8, 0);
456
3.87M
                FlushBufferedValues(false);
457
                // After flushing, if we still have a repeated run and more values,
458
                // we can add them directly to repeat_count_
459
3.87M
                if (repeat_count_ >= 8 && run_length > 0) {
460
1.50M
                    repeat_count_ += run_length;
461
1.50M
                    return;
462
1.50M
                }
463
3.87M
            }
464
8.70M
        } else {
465
            // Value changed
466
8.70M
            if (repeat_count_ >= 8) {
467
                // We had a run that was long enough but it has ended.  Flush the
468
                // current repeated run.
469
1.42M
                DCHECK_EQ(literal_count_, 0);
470
1.42M
                FlushRepeatedRun();
471
1.42M
            }
472
8.70M
            repeat_count_ = 1;
473
8.70M
            current_value_ = value;
474
475
8.70M
            buffered_values_[num_buffered_values_++] = value;
476
8.70M
            --run_length;
477
8.70M
            if (num_buffered_values_ == 8) {
478
749k
                DCHECK_EQ(literal_count_ % 8, 0);
479
749k
                FlushBufferedValues(false);
480
749k
            }
481
8.70M
        }
482
16.4M
    }
483
10.9M
}
_ZN5doris10RleEncoderIbE3PutEbm
Line
Count
Source
434
7.94M
void RleEncoder<T>::Put(T value, size_t run_length) {
435
7.94M
    DCHECK(bit_width_ == 64 || value < (1LL << bit_width_));
436
437
    // Fast path: if this is a continuation of the current repeated run and
438
    // we've already buffered enough values, just increment repeat_count_
439
7.94M
    if (current_value_ == value && repeat_count_ >= 8 && run_length > 0) [[likely]] {
440
654k
        repeat_count_ += run_length;
441
654k
        return;
442
654k
    }
443
444
    // Handle run_length > 1 more efficiently
445
18.5M
    while (run_length > 0) {
446
12.7M
        if (current_value_ == value) [[likely]] {
447
            // Need to buffer values until we reach 8
448
5.86M
            size_t to_buffer = std::min(run_length, size_t(8 - num_buffered_values_));
449
33.0M
            for (size_t i = 0; i < to_buffer; ++i) {
450
27.1M
                buffered_values_[num_buffered_values_++] = value;
451
27.1M
                ++repeat_count_;
452
27.1M
            }
453
5.86M
            run_length -= to_buffer;
454
5.86M
            if (num_buffered_values_ == 8) {
455
3.63M
                DCHECK_EQ(literal_count_ % 8, 0);
456
3.63M
                FlushBufferedValues(false);
457
                // After flushing, if we still have a repeated run and more values,
458
                // we can add them directly to repeat_count_
459
3.63M
                if (repeat_count_ >= 8 && run_length > 0) {
460
1.50M
                    repeat_count_ += run_length;
461
1.50M
                    return;
462
1.50M
                }
463
3.63M
            }
464
6.85M
        } else {
465
            // Value changed
466
6.85M
            if (repeat_count_ >= 8) {
467
                // We had a run that was long enough but it has ended.  Flush the
468
                // current repeated run.
469
1.42M
                DCHECK_EQ(literal_count_, 0);
470
1.42M
                FlushRepeatedRun();
471
1.42M
            }
472
6.85M
            repeat_count_ = 1;
473
6.85M
            current_value_ = value;
474
475
6.85M
            buffered_values_[num_buffered_values_++] = value;
476
6.85M
            --run_length;
477
6.85M
            if (num_buffered_values_ == 8) {
478
                DCHECK_EQ(literal_count_ % 8, 0);
479
521k
                FlushBufferedValues(false);
480
521k
            }
481
6.85M
        }
482
12.7M
    }
483
7.29M
}
_ZN5doris10RleEncoderIhE3PutEhm
Line
Count
Source
434
4.21M
void RleEncoder<T>::Put(T value, size_t run_length) {
435
4.21M
    DCHECK(bit_width_ == 64 || value < (1LL << bit_width_));
436
437
    // Fast path: if this is a continuation of the current repeated run and
438
    // we've already buffered enough values, just increment repeat_count_
439
4.21M
    if (current_value_ == value && repeat_count_ >= 8 && run_length > 0) [[likely]] {
440
510k
        repeat_count_ += run_length;
441
510k
        return;
442
510k
    }
443
444
    // Handle run_length > 1 more efficiently
445
7.40M
    while (run_length > 0) {
446
3.70M
        if (current_value_ == value) [[likely]] {
447
            // Need to buffer values until we reach 8
448
1.86M
            size_t to_buffer = std::min(run_length, size_t(8 - num_buffered_values_));
449
3.72M
            for (size_t i = 0; i < to_buffer; ++i) {
450
1.86M
                buffered_values_[num_buffered_values_++] = value;
451
1.86M
                ++repeat_count_;
452
1.86M
            }
453
1.86M
            run_length -= to_buffer;
454
1.86M
            if (num_buffered_values_ == 8) {
455
233k
                DCHECK_EQ(literal_count_ % 8, 0);
456
233k
                FlushBufferedValues(false);
457
                // After flushing, if we still have a repeated run and more values,
458
                // we can add them directly to repeat_count_
459
233k
                if (repeat_count_ >= 8 && run_length > 0) {
460
3
                    repeat_count_ += run_length;
461
3
                    return;
462
3
                }
463
233k
            }
464
1.86M
        } else {
465
            // Value changed
466
1.84M
            if (repeat_count_ >= 8) {
467
                // We had a run that was long enough but it has ended.  Flush the
468
                // current repeated run.
469
6.22k
                DCHECK_EQ(literal_count_, 0);
470
6.22k
                FlushRepeatedRun();
471
6.22k
            }
472
1.84M
            repeat_count_ = 1;
473
1.84M
            current_value_ = value;
474
475
1.84M
            buffered_values_[num_buffered_values_++] = value;
476
1.84M
            --run_length;
477
1.84M
            if (num_buffered_values_ == 8) {
478
                DCHECK_EQ(literal_count_ % 8, 0);
479
227k
                FlushBufferedValues(false);
480
227k
            }
481
1.84M
        }
482
3.70M
    }
483
3.70M
}
484
485
template <typename T>
486
4.45M
void RleEncoder<T>::FlushLiteralRun(bool update_indicator_byte) {
487
4.45M
    if (literal_indicator_byte_idx_ < 0) {
488
        // The literal indicator byte has not been reserved yet, get one now.
489
1.46M
        literal_indicator_byte_idx_ = cast_set<int>(bit_writer_.GetByteIndexAndAdvance(1));
490
1.46M
        DCHECK_GE(literal_indicator_byte_idx_, 0);
491
1.46M
    }
492
493
    // Write all the buffered values as bit packed literals
494
28.5M
    for (int i = 0; i < num_buffered_values_; ++i) {
495
24.0M
        bit_writer_.PutValue(buffered_values_[i], bit_width_);
496
24.0M
    }
497
4.45M
    num_buffered_values_ = 0;
498
499
4.45M
    if (update_indicator_byte) {
500
        // At this point we need to write the indicator byte for the literal run.
501
        // We only reserve one byte, to allow for streaming writes of literal values.
502
        // The logic makes sure we flush literal runs often enough to not overrun
503
        // the 1 byte.
504
1.46M
        int num_groups = BitUtil::Ceil(literal_count_, 8);
505
1.46M
        int32_t indicator_value = (num_groups << 1) | 1;
506
1.46M
        DCHECK_EQ(indicator_value & 0xFFFFFF00, 0);
507
1.46M
        bit_writer_.buffer()->data()[literal_indicator_byte_idx_] =
508
1.46M
                cast_set<uint8_t>(indicator_value);
509
1.46M
        literal_indicator_byte_idx_ = -1;
510
1.46M
        literal_count_ = 0;
511
1.46M
    }
512
4.45M
}
_ZN5doris10RleEncoderIbE15FlushLiteralRunEb
Line
Count
Source
486
3.99M
void RleEncoder<T>::FlushLiteralRun(bool update_indicator_byte) {
487
3.99M
    if (literal_indicator_byte_idx_ < 0) {
488
        // The literal indicator byte has not been reserved yet, get one now.
489
1.44M
        literal_indicator_byte_idx_ = cast_set<int>(bit_writer_.GetByteIndexAndAdvance(1));
490
1.44M
        DCHECK_GE(literal_indicator_byte_idx_, 0);
491
1.44M
    }
492
493
    // Write all the buffered values as bit packed literals
494
24.4M
    for (int i = 0; i < num_buffered_values_; ++i) {
495
20.4M
        bit_writer_.PutValue(buffered_values_[i], bit_width_);
496
20.4M
    }
497
3.99M
    num_buffered_values_ = 0;
498
499
3.99M
    if (update_indicator_byte) {
500
        // At this point we need to write the indicator byte for the literal run.
501
        // We only reserve one byte, to allow for streaming writes of literal values.
502
        // The logic makes sure we flush literal runs often enough to not overrun
503
        // the 1 byte.
504
1.44M
        int num_groups = BitUtil::Ceil(literal_count_, 8);
505
1.44M
        int32_t indicator_value = (num_groups << 1) | 1;
506
        DCHECK_EQ(indicator_value & 0xFFFFFF00, 0);
507
1.44M
        bit_writer_.buffer()->data()[literal_indicator_byte_idx_] =
508
1.44M
                cast_set<uint8_t>(indicator_value);
509
1.44M
        literal_indicator_byte_idx_ = -1;
510
1.44M
        literal_count_ = 0;
511
1.44M
    }
512
3.99M
}
_ZN5doris10RleEncoderIhE15FlushLiteralRunEb
Line
Count
Source
486
460k
void RleEncoder<T>::FlushLiteralRun(bool update_indicator_byte) {
487
460k
    if (literal_indicator_byte_idx_ < 0) {
488
        // The literal indicator byte has not been reserved yet, get one now.
489
13.9k
        literal_indicator_byte_idx_ = cast_set<int>(bit_writer_.GetByteIndexAndAdvance(1));
490
13.9k
        DCHECK_GE(literal_indicator_byte_idx_, 0);
491
13.9k
    }
492
493
    // Write all the buffered values as bit packed literals
494
4.07M
    for (int i = 0; i < num_buffered_values_; ++i) {
495
3.61M
        bit_writer_.PutValue(buffered_values_[i], bit_width_);
496
3.61M
    }
497
460k
    num_buffered_values_ = 0;
498
499
460k
    if (update_indicator_byte) {
500
        // At this point we need to write the indicator byte for the literal run.
501
        // We only reserve one byte, to allow for streaming writes of literal values.
502
        // The logic makes sure we flush literal runs often enough to not overrun
503
        // the 1 byte.
504
13.9k
        int num_groups = BitUtil::Ceil(literal_count_, 8);
505
13.9k
        int32_t indicator_value = (num_groups << 1) | 1;
506
        DCHECK_EQ(indicator_value & 0xFFFFFF00, 0);
507
13.9k
        bit_writer_.buffer()->data()[literal_indicator_byte_idx_] =
508
13.9k
                cast_set<uint8_t>(indicator_value);
509
13.9k
        literal_indicator_byte_idx_ = -1;
510
13.9k
        literal_count_ = 0;
511
13.9k
    }
512
460k
}
513
514
template <typename T>
515
1.57M
void RleEncoder<T>::FlushRepeatedRun() {
516
1.57M
    DCHECK_GT(repeat_count_, 0);
517
    // The lsb of 0 indicates this is a repeated run
518
1.57M
    int32_t indicator_value = repeat_count_ << 1 | 0;
519
1.57M
    bit_writer_.PutVlqInt(indicator_value);
520
1.57M
    bit_writer_.PutAligned(current_value_, BitUtil::Ceil(bit_width_, 8));
521
1.57M
    num_buffered_values_ = 0;
522
1.57M
    repeat_count_ = 0;
523
1.57M
}
_ZN5doris10RleEncoderIbE16FlushRepeatedRunEv
Line
Count
Source
515
1.56M
void RleEncoder<T>::FlushRepeatedRun() {
516
1.56M
    DCHECK_GT(repeat_count_, 0);
517
    // The lsb of 0 indicates this is a repeated run
518
1.56M
    int32_t indicator_value = repeat_count_ << 1 | 0;
519
1.56M
    bit_writer_.PutVlqInt(indicator_value);
520
1.56M
    bit_writer_.PutAligned(current_value_, BitUtil::Ceil(bit_width_, 8));
521
1.56M
    num_buffered_values_ = 0;
522
1.56M
    repeat_count_ = 0;
523
1.56M
}
_ZN5doris10RleEncoderIhE16FlushRepeatedRunEv
Line
Count
Source
515
15.9k
void RleEncoder<T>::FlushRepeatedRun() {
516
15.9k
    DCHECK_GT(repeat_count_, 0);
517
    // The lsb of 0 indicates this is a repeated run
518
15.9k
    int32_t indicator_value = repeat_count_ << 1 | 0;
519
15.9k
    bit_writer_.PutVlqInt(indicator_value);
520
15.9k
    bit_writer_.PutAligned(current_value_, BitUtil::Ceil(bit_width_, 8));
521
15.9k
    num_buffered_values_ = 0;
522
15.9k
    repeat_count_ = 0;
523
15.9k
}
524
525
// Flush the values that have been buffered.  At this point we decide whether
526
// we need to switch between the run types or continue the current one.
527
template <typename T>
528
4.60M
void RleEncoder<T>::FlushBufferedValues(bool done) {
529
4.60M
    if (repeat_count_ >= 8) {
530
        // Clear the buffered values.  They are part of the repeated run now and we
531
        // don't want to flush them out as literals.
532
1.60M
        num_buffered_values_ = 0;
533
1.60M
        if (literal_count_ != 0) {
534
            // There was a current literal run.  All the values in it have been flushed
535
            // but we still need to update the indicator byte.
536
1.39M
            DCHECK_EQ(literal_count_ % 8, 0);
537
1.39M
            DCHECK_EQ(repeat_count_, 8);
538
1.39M
            FlushLiteralRun(true);
539
1.39M
        }
540
1.60M
        DCHECK_EQ(literal_count_, 0);
541
1.60M
        return;
542
1.60M
    }
543
544
2.99M
    literal_count_ += num_buffered_values_;
545
2.99M
    int num_groups = BitUtil::Ceil(literal_count_, 8);
546
2.99M
    if (num_groups + 1 >= (1 << 6)) {
547
        // We need to start a new literal run because the indicator byte we've reserved
548
        // cannot store more values.
549
6.42k
        DCHECK_GE(literal_indicator_byte_idx_, 0);
550
6.42k
        FlushLiteralRun(true);
551
2.99M
    } else {
552
2.99M
        FlushLiteralRun(done);
553
2.99M
    }
554
2.99M
    repeat_count_ = 0;
555
2.99M
}
_ZN5doris10RleEncoderIbE19FlushBufferedValuesEb
Line
Count
Source
528
4.14M
void RleEncoder<T>::FlushBufferedValues(bool done) {
529
4.14M
    if (repeat_count_ >= 8) {
530
        // Clear the buffered values.  They are part of the repeated run now and we
531
        // don't want to flush them out as literals.
532
1.60M
        num_buffered_values_ = 0;
533
1.60M
        if (literal_count_ != 0) {
534
            // There was a current literal run.  All the values in it have been flushed
535
            // but we still need to update the indicator byte.
536
1.39M
            DCHECK_EQ(literal_count_ % 8, 0);
537
1.39M
            DCHECK_EQ(repeat_count_, 8);
538
1.39M
            FlushLiteralRun(true);
539
1.39M
        }
540
1.60M
        DCHECK_EQ(literal_count_, 0);
541
1.60M
        return;
542
1.60M
    }
543
544
2.54M
    literal_count_ += num_buffered_values_;
545
2.54M
    int num_groups = BitUtil::Ceil(literal_count_, 8);
546
2.54M
    if (num_groups + 1 >= (1 << 6)) {
547
        // We need to start a new literal run because the indicator byte we've reserved
548
        // cannot store more values.
549
1.10k
        DCHECK_GE(literal_indicator_byte_idx_, 0);
550
1.10k
        FlushLiteralRun(true);
551
2.54M
    } else {
552
2.54M
        FlushLiteralRun(done);
553
2.54M
    }
554
2.54M
    repeat_count_ = 0;
555
2.54M
}
_ZN5doris10RleEncoderIhE19FlushBufferedValuesEb
Line
Count
Source
528
460k
void RleEncoder<T>::FlushBufferedValues(bool done) {
529
460k
    if (repeat_count_ >= 8) {
530
        // Clear the buffered values.  They are part of the repeated run now and we
531
        // don't want to flush them out as literals.
532
8.32k
        num_buffered_values_ = 0;
533
8.32k
        if (literal_count_ != 0) {
534
            // There was a current literal run.  All the values in it have been flushed
535
            // but we still need to update the indicator byte.
536
4.98k
            DCHECK_EQ(literal_count_ % 8, 0);
537
4.98k
            DCHECK_EQ(repeat_count_, 8);
538
4.98k
            FlushLiteralRun(true);
539
4.98k
        }
540
8.32k
        DCHECK_EQ(literal_count_, 0);
541
8.32k
        return;
542
8.32k
    }
543
544
452k
    literal_count_ += num_buffered_values_;
545
452k
    int num_groups = BitUtil::Ceil(literal_count_, 8);
546
452k
    if (num_groups + 1 >= (1 << 6)) {
547
        // We need to start a new literal run because the indicator byte we've reserved
548
        // cannot store more values.
549
5.31k
        DCHECK_GE(literal_indicator_byte_idx_, 0);
550
5.31k
        FlushLiteralRun(true);
551
447k
    } else {
552
447k
        FlushLiteralRun(done);
553
447k
    }
554
452k
    repeat_count_ = 0;
555
452k
}
556
557
template <typename T>
558
28.9k
void RleEncoder<T>::Reserve(int num_bytes, uint8_t val) {
559
144k
    for (int i = 0; i < num_bytes; ++i) {
560
115k
        bit_writer_.PutValue(val, 8);
561
115k
    }
562
28.9k
}
563
564
template <typename T>
565
209k
int RleEncoder<T>::Flush() {
566
209k
    if (literal_count_ > 0 || repeat_count_ > 0 || num_buffered_values_ > 0) {
567
208k
        bool all_repeat = literal_count_ == 0 &&
568
208k
                          (repeat_count_ == num_buffered_values_ || num_buffered_values_ == 0);
569
        // There is something pending, figure out if it's a repeated or literal run
570
208k
        if (repeat_count_ > 0 && all_repeat) {
571
150k
            FlushRepeatedRun();
572
150k
        } else {
573
58.5k
            literal_count_ += num_buffered_values_;
574
58.5k
            FlushLiteralRun(true);
575
58.5k
            repeat_count_ = 0;
576
58.5k
        }
577
208k
    }
578
209k
    bit_writer_.Flush();
579
209k
    DCHECK_EQ(num_buffered_values_, 0);
580
209k
    DCHECK_EQ(literal_count_, 0);
581
209k
    DCHECK_EQ(repeat_count_, 0);
582
209k
    return bit_writer_.bytes_written();
583
209k
}
_ZN5doris10RleEncoderIbE5FlushEv
Line
Count
Source
565
195k
int RleEncoder<T>::Flush() {
566
195k
    if (literal_count_ > 0 || repeat_count_ > 0 || num_buffered_values_ > 0) {
567
195k
        bool all_repeat = literal_count_ == 0 &&
568
195k
                          (repeat_count_ == num_buffered_values_ || num_buffered_values_ == 0);
569
        // There is something pending, figure out if it's a repeated or literal run
570
195k
        if (repeat_count_ > 0 && all_repeat) {
571
140k
            FlushRepeatedRun();
572
140k
        } else {
573
54.8k
            literal_count_ += num_buffered_values_;
574
54.8k
            FlushLiteralRun(true);
575
54.8k
            repeat_count_ = 0;
576
54.8k
        }
577
195k
    }
578
195k
    bit_writer_.Flush();
579
195k
    DCHECK_EQ(num_buffered_values_, 0);
580
195k
    DCHECK_EQ(literal_count_, 0);
581
    DCHECK_EQ(repeat_count_, 0);
582
195k
    return bit_writer_.bytes_written();
583
195k
}
_ZN5doris10RleEncoderIhE5FlushEv
Line
Count
Source
565
13.9k
int RleEncoder<T>::Flush() {
566
13.9k
    if (literal_count_ > 0 || repeat_count_ > 0 || num_buffered_values_ > 0) {
567
13.4k
        bool all_repeat = literal_count_ == 0 &&
568
13.4k
                          (repeat_count_ == num_buffered_values_ || num_buffered_values_ == 0);
569
        // There is something pending, figure out if it's a repeated or literal run
570
13.4k
        if (repeat_count_ > 0 && all_repeat) {
571
9.77k
            FlushRepeatedRun();
572
9.77k
        } else {
573
3.63k
            literal_count_ += num_buffered_values_;
574
3.63k
            FlushLiteralRun(true);
575
3.63k
            repeat_count_ = 0;
576
3.63k
        }
577
13.4k
    }
578
13.9k
    bit_writer_.Flush();
579
13.9k
    DCHECK_EQ(num_buffered_values_, 0);
580
13.9k
    DCHECK_EQ(literal_count_, 0);
581
    DCHECK_EQ(repeat_count_, 0);
582
13.9k
    return bit_writer_.bytes_written();
583
13.9k
}
584
585
template <typename T>
586
1.17M
void RleEncoder<T>::Clear() {
587
1.17M
    current_value_ = 0;
588
1.17M
    repeat_count_ = 0;
589
1.17M
    num_buffered_values_ = 0;
590
1.17M
    literal_count_ = 0;
591
1.17M
    literal_indicator_byte_idx_ = -1;
592
1.17M
    bit_writer_.Clear();
593
1.17M
}
_ZN5doris10RleEncoderIbE5ClearEv
Line
Count
Source
586
1.12M
void RleEncoder<T>::Clear() {
587
1.12M
    current_value_ = 0;
588
1.12M
    repeat_count_ = 0;
589
1.12M
    num_buffered_values_ = 0;
590
1.12M
    literal_count_ = 0;
591
1.12M
    literal_indicator_byte_idx_ = -1;
592
1.12M
    bit_writer_.Clear();
593
1.12M
}
_ZN5doris10RleEncoderIhE5ClearEv
Line
Count
Source
586
43.9k
void RleEncoder<T>::Clear() {
587
43.9k
    current_value_ = 0;
588
43.9k
    repeat_count_ = 0;
589
43.9k
    num_buffered_values_ = 0;
590
43.9k
    literal_count_ = 0;
591
43.9k
    literal_indicator_byte_idx_ = -1;
592
43.9k
    bit_writer_.Clear();
593
43.9k
}
594
595
// Copy from https://github.com/apache/impala/blob/master/be/src/util/rle-encoding.h
596
// Utility classes to do run length encoding (RLE) for fixed bit width values.  If runs
597
// are sufficiently long, RLE is used, otherwise, the values are just bit-packed
598
// (literal encoding).
599
//
600
// For both types of runs, there is a byte-aligned indicator which encodes the length
601
// of the run and the type of the run.
602
//
603
// This encoding has the benefit that when there aren't any long enough runs, values
604
// are always decoded at fixed (can be precomputed) bit offsets OR both the value and
605
// the run length are byte aligned. This allows for very efficient decoding
606
// implementations.
607
// The encoding is:
608
//    encoded-block := run*
609
//    run := literal-run | repeated-run
610
//    literal-run := literal-indicator < literal bytes >
611
//    repeated-run := repeated-indicator < repeated value. padded to byte boundary >
612
//    literal-indicator := varint_encode( number_of_groups << 1 | 1)
613
//    repeated-indicator := varint_encode( number_of_repetitions << 1 )
614
//
615
// Each run is preceded by a varint. The varint's least significant bit is
616
// used to indicate whether the run is a literal run or a repeated run. The rest
617
// of the varint is used to determine the length of the run (eg how many times the
618
// value repeats).
619
//
620
// In the case of literal runs, the run length is always a multiple of 8 (i.e. encode
621
// in groups of 8), so that no matter the bit-width of the value, the sequence will end
622
// on a byte boundary without padding.
623
// Given that we know it is a multiple of 8, we store the number of 8-groups rather than
624
// the actual number of encoded ints. (This means that the total number of encoded values
625
// can not be determined from the encoded data, since the number of values in the last
626
// group may not be a multiple of 8). For the last group of literal runs, we pad
627
// the group to 8 with zeros. This allows for 8 at a time decoding on the read side
628
// without the need for additional checks.
629
//
630
// There is a break-even point when it is more storage efficient to do run length
631
// encoding.  For 1 bit-width values, that point is 8 values.  They require 2 bytes
632
// for both the repeated encoding or the literal encoding.  This value can always
633
// be computed based on the bit-width.
634
// TODO: For 1 bit-width values it can be optimal to use 16 or 24 values, but more
635
// investigation is needed to do this efficiently, see the reverted IMPALA-6658.
636
// TODO: think about how to use this for strings.  The bit packing isn't quite the same.
637
//
638
// Examples with bit-width 1 (eg encoding booleans):
639
// ----------------------------------------
640
// 100 1s followed by 100 0s:
641
// <varint(100 << 1)> <1, padded to 1 byte> <varint(100 << 1)> <0, padded to 1 byte>
642
//  - (total 4 bytes)
643
//
644
// alternating 1s and 0s (200 total):
645
// 200 ints = 25 groups of 8
646
// <varint((25 << 1) | 1)> <25 bytes of values, bitpacked>
647
// (total 26 bytes, 1 byte overhead)
648
649
// RLE decoder with a batch-oriented interface that enables fast decoding.
650
// Users of this class must first initialize the class to point to a buffer of
651
// RLE-encoded data, passed into the constructor or Reset(). The provided
652
// bit_width must be at most min(sizeof(T) * 8, BatchedBitReader::MAX_BITWIDTH).
653
// Then they can decode data by checking NextNumRepeats()/NextNumLiterals() to
654
// see if the next run is a repeated or literal run, then calling
655
// GetRepeatedValue() or GetLiteralValues() respectively to read the values.
656
//
657
// End-of-input is signalled by NextNumRepeats() == NextNumLiterals() == 0.
658
// Other decoding errors are signalled by functions returning false. If an
659
// error is encountered then it is not valid to read any more data until
660
// Reset() is called.
661
662
//bit-packed-run-len and rle-run-len must be in the range [1, 2^31 - 1].
663
// This means that a Parquet implementation can always store the run length in a signed 32-bit integer.
664
template <typename T>
665
class RleBatchDecoder {
666
public:
667
6.06k
    RleBatchDecoder(uint8_t* buffer, int buffer_len, int bit_width) {
668
6.06k
        Reset(buffer, buffer_len, bit_width);
669
6.06k
    }
_ZN5doris15RleBatchDecoderIjEC2EPhii
Line
Count
Source
667
5.17k
    RleBatchDecoder(uint8_t* buffer, int buffer_len, int bit_width) {
668
5.17k
        Reset(buffer, buffer_len, bit_width);
669
5.17k
    }
_ZN5doris15RleBatchDecoderItEC2EPhii
Line
Count
Source
667
884
    RleBatchDecoder(uint8_t* buffer, int buffer_len, int bit_width) {
668
884
        Reset(buffer, buffer_len, bit_width);
669
884
    }
_ZN5doris15RleBatchDecoderIhEC2EPhii
Line
Count
Source
667
6
    RleBatchDecoder(uint8_t* buffer, int buffer_len, int bit_width) {
668
6
        Reset(buffer, buffer_len, bit_width);
669
6
    }
670
671
2.30k
    RleBatchDecoder() = default;
_ZN5doris15RleBatchDecoderItEC2Ev
Line
Count
Source
671
2.29k
    RleBatchDecoder() = default;
_ZN5doris15RleBatchDecoderIhEC2Ev
Line
Count
Source
671
8
    RleBatchDecoder() = default;
672
673
    // Reset the decoder to read from a new buffer.
674
    void Reset(uint8_t* buffer, int buffer_len, int bit_width);
675
676
    // Return the size of the current repeated run. Returns zero if the current run is
677
    // a literal run or if no more runs can be read from the input.
678
    int32_t NextNumRepeats();
679
680
    // Get the value of the current repeated run and consume the given number of repeats.
681
    // Only valid to call when NextNumRepeats() > 0. The given number of repeats cannot
682
    // be greater than the remaining number of repeats in the run. 'num_repeats_to_consume'
683
    // can be set to 0 to peek at the value without consuming repeats.
684
    T GetRepeatedValue(int32_t num_repeats_to_consume);
685
686
    // Return the size of the current literal run. Returns zero if the current run is
687
    // a repeated run or if no more runs can be read from the input.
688
    int32_t NextNumLiterals();
689
690
    // Consume 'num_literals_to_consume' literals from the current literal run,
691
    // copying the values to 'values'. 'num_literals_to_consume' must be <=
692
    // NextNumLiterals(). Returns true if the requested number of literals were
693
    // successfully read or false if an error was encountered, e.g. the input was
694
    // truncated.
695
    bool GetLiteralValues(int32_t num_literals_to_consume, T* values) WARN_UNUSED_RESULT;
696
697
    // Consume 'num_values_to_consume' values and copy them to 'values'.
698
    // Returns the number of consumed values or 0 if an error occurred.
699
    uint32_t GetBatch(T* values, uint32_t batch_num);
700
701
private:
702
    // Called when both 'literal_count_' and 'repeat_count_' have been exhausted.
703
    // Sets either 'literal_count_' or 'repeat_count_' to the size of the next literal
704
    // or repeated run, or leaves both at 0 if no more values can be read (either because
705
    // the end of the input was reached or an error was encountered decoding).
706
    void NextCounts();
707
708
    /// Fill the literal buffer. Invalid to call if there are already buffered literals.
709
    /// Return false if the input was truncated. This does not advance 'literal_count_'.
710
    bool FillLiteralBuffer() WARN_UNUSED_RESULT;
711
712
810k
    bool HaveBufferedLiterals() const { return literal_buffer_pos_ < num_buffered_literals_; }
_ZNK5doris15RleBatchDecoderIjE20HaveBufferedLiteralsEv
Line
Count
Source
712
20.6k
    bool HaveBufferedLiterals() const { return literal_buffer_pos_ < num_buffered_literals_; }
_ZNK5doris15RleBatchDecoderItE20HaveBufferedLiteralsEv
Line
Count
Source
712
789k
    bool HaveBufferedLiterals() const { return literal_buffer_pos_ < num_buffered_literals_; }
_ZNK5doris15RleBatchDecoderIhE20HaveBufferedLiteralsEv
Line
Count
Source
712
9
    bool HaveBufferedLiterals() const { return literal_buffer_pos_ < num_buffered_literals_; }
713
714
    /// Output buffered literals, advancing 'literal_buffer_pos_' and decrementing
715
    /// 'literal_count_'. Returns the number of literals outputted.
716
    int32_t OutputBufferedLiterals(int32_t max_to_output, T* values);
717
718
    BatchedBitReader bit_reader_;
719
720
    // Number of bits needed to encode the value. Must be between 0 and 64 after
721
    // the decoder is initialized with a buffer. -1 indicates the decoder was not
722
    // initialized.
723
    int bit_width_ = -1;
724
725
    // If a repeated run, the number of repeats remaining in the current run to be read.
726
    // If the current run is a literal run, this is 0.
727
    int32_t repeat_count_ = 0;
728
729
    // If a literal run, the number of literals remaining in the current run to be read.
730
    // If the current run is a repeated run, this is 0.
731
    int32_t literal_count_ = 0;
732
733
    // If a repeated run, the current repeated value.
734
    T repeated_value_;
735
736
    // Size of buffer for literal values. Large enough to decode a full batch of 32
737
    // literals. The buffer is needed to allow clients to read in batches that are not
738
    // multiples of 32.
739
    static constexpr int LITERAL_BUFFER_LEN = 32;
740
741
    // Buffer containing 'num_buffered_literals_' values. 'literal_buffer_pos_' is the
742
    // position of the next literal to be read from the buffer.
743
    T literal_buffer_[LITERAL_BUFFER_LEN];
744
    int num_buffered_literals_ = 0;
745
    int literal_buffer_pos_ = 0;
746
};
747
748
template <typename T>
749
810k
int32_t RleBatchDecoder<T>::OutputBufferedLiterals(int32_t max_to_output, T* values) {
750
810k
    int32_t num_to_output =
751
810k
            std::min<int32_t>(max_to_output, num_buffered_literals_ - literal_buffer_pos_);
752
810k
    memcpy(values, &literal_buffer_[literal_buffer_pos_], sizeof(T) * num_to_output);
753
810k
    literal_buffer_pos_ += num_to_output;
754
810k
    literal_count_ -= num_to_output;
755
810k
    return num_to_output;
756
810k
}
_ZN5doris15RleBatchDecoderIjE22OutputBufferedLiteralsEiPj
Line
Count
Source
749
20.6k
int32_t RleBatchDecoder<T>::OutputBufferedLiterals(int32_t max_to_output, T* values) {
750
20.6k
    int32_t num_to_output =
751
20.6k
            std::min<int32_t>(max_to_output, num_buffered_literals_ - literal_buffer_pos_);
752
20.6k
    memcpy(values, &literal_buffer_[literal_buffer_pos_], sizeof(T) * num_to_output);
753
20.6k
    literal_buffer_pos_ += num_to_output;
754
20.6k
    literal_count_ -= num_to_output;
755
20.6k
    return num_to_output;
756
20.6k
}
_ZN5doris15RleBatchDecoderItE22OutputBufferedLiteralsEiPt
Line
Count
Source
749
789k
int32_t RleBatchDecoder<T>::OutputBufferedLiterals(int32_t max_to_output, T* values) {
750
789k
    int32_t num_to_output =
751
789k
            std::min<int32_t>(max_to_output, num_buffered_literals_ - literal_buffer_pos_);
752
789k
    memcpy(values, &literal_buffer_[literal_buffer_pos_], sizeof(T) * num_to_output);
753
789k
    literal_buffer_pos_ += num_to_output;
754
789k
    literal_count_ -= num_to_output;
755
789k
    return num_to_output;
756
789k
}
_ZN5doris15RleBatchDecoderIhE22OutputBufferedLiteralsEiPh
Line
Count
Source
749
6
int32_t RleBatchDecoder<T>::OutputBufferedLiterals(int32_t max_to_output, T* values) {
750
6
    int32_t num_to_output =
751
6
            std::min<int32_t>(max_to_output, num_buffered_literals_ - literal_buffer_pos_);
752
6
    memcpy(values, &literal_buffer_[literal_buffer_pos_], sizeof(T) * num_to_output);
753
6
    literal_buffer_pos_ += num_to_output;
754
6
    literal_count_ -= num_to_output;
755
6
    return num_to_output;
756
6
}
757
758
template <typename T>
759
6.06k
void RleBatchDecoder<T>::Reset(uint8_t* buffer, int buffer_len, int bit_width) {
760
6.06k
    bit_reader_.Reset(buffer, buffer_len);
761
6.06k
    bit_width_ = bit_width;
762
6.06k
    repeat_count_ = 0;
763
6.06k
    literal_count_ = 0;
764
6.06k
    num_buffered_literals_ = 0;
765
6.06k
    literal_buffer_pos_ = 0;
766
6.06k
}
_ZN5doris15RleBatchDecoderIjE5ResetEPhii
Line
Count
Source
759
5.17k
void RleBatchDecoder<T>::Reset(uint8_t* buffer, int buffer_len, int bit_width) {
760
5.17k
    bit_reader_.Reset(buffer, buffer_len);
761
5.17k
    bit_width_ = bit_width;
762
5.17k
    repeat_count_ = 0;
763
5.17k
    literal_count_ = 0;
764
5.17k
    num_buffered_literals_ = 0;
765
5.17k
    literal_buffer_pos_ = 0;
766
5.17k
}
_ZN5doris15RleBatchDecoderItE5ResetEPhii
Line
Count
Source
759
884
void RleBatchDecoder<T>::Reset(uint8_t* buffer, int buffer_len, int bit_width) {
760
884
    bit_reader_.Reset(buffer, buffer_len);
761
884
    bit_width_ = bit_width;
762
884
    repeat_count_ = 0;
763
884
    literal_count_ = 0;
764
884
    num_buffered_literals_ = 0;
765
884
    literal_buffer_pos_ = 0;
766
884
}
_ZN5doris15RleBatchDecoderIhE5ResetEPhii
Line
Count
Source
759
6
void RleBatchDecoder<T>::Reset(uint8_t* buffer, int buffer_len, int bit_width) {
760
6
    bit_reader_.Reset(buffer, buffer_len);
761
6
    bit_width_ = bit_width;
762
6
    repeat_count_ = 0;
763
6
    literal_count_ = 0;
764
6
    num_buffered_literals_ = 0;
765
6
    literal_buffer_pos_ = 0;
766
6
}
767
768
template <typename T>
769
8.31M
int32_t RleBatchDecoder<T>::NextNumRepeats() {
770
8.31M
    if (repeat_count_ > 0) return repeat_count_;
771
895k
    if (literal_count_ == 0) NextCounts();
772
895k
    return repeat_count_;
773
8.31M
}
_ZN5doris15RleBatchDecoderIjE14NextNumRepeatsEv
Line
Count
Source
769
21.7k
int32_t RleBatchDecoder<T>::NextNumRepeats() {
770
21.7k
    if (repeat_count_ > 0) return repeat_count_;
771
21.3k
    if (literal_count_ == 0) NextCounts();
772
21.3k
    return repeat_count_;
773
21.7k
}
_ZN5doris15RleBatchDecoderItE14NextNumRepeatsEv
Line
Count
Source
769
8.28M
int32_t RleBatchDecoder<T>::NextNumRepeats() {
770
8.28M
    if (repeat_count_ > 0) return repeat_count_;
771
874k
    if (literal_count_ == 0) NextCounts();
772
874k
    return repeat_count_;
773
8.28M
}
_ZN5doris15RleBatchDecoderIhE14NextNumRepeatsEv
Line
Count
Source
769
265
int32_t RleBatchDecoder<T>::NextNumRepeats() {
770
265
    if (repeat_count_ > 0) return repeat_count_;
771
10
    if (literal_count_ == 0) NextCounts();
772
10
    return repeat_count_;
773
265
}
774
775
template <typename T>
776
186k
void RleBatchDecoder<T>::NextCounts() {
777
    // Read the next run's indicator int, it could be a literal or repeated run.
778
    // The int is encoded as a ULEB128-encoded value.
779
186k
    uint32_t indicator_value = 0;
780
186k
    if (UNLIKELY(!bit_reader_.GetUleb128<uint32_t>(&indicator_value))) {
781
2
        return;
782
2
    }
783
784
    // lsb indicates if it is a literal run or repeated run
785
186k
    bool is_literal = indicator_value & 1;
786
787
    // Don't try to handle run lengths that don't fit in an int32_t - just fail gracefully.
788
    // The Parquet standard does not allow longer runs - see PARQUET-1290.
789
186k
    uint32_t run_len = indicator_value >> 1;
790
186k
    if (is_literal) {
791
        // Use int64_t to avoid overflowing multiplication.
792
101k
        int64_t literal_count = static_cast<int64_t>(run_len) * 8;
793
101k
        if (UNLIKELY(literal_count > std::numeric_limits<int32_t>::max())) return;
794
101k
        literal_count_ = cast_set<int32_t>(literal_count);
795
101k
    } else {
796
85.0k
        if (UNLIKELY(run_len == 0)) return;
797
85.0k
        bool result = bit_reader_.GetBytes<T>(BitUtil::Ceil(bit_width_, 8), &repeated_value_);
798
85.0k
        if (UNLIKELY(!result)) return;
799
85.0k
        repeat_count_ = run_len;
800
85.0k
    }
801
186k
}
_ZN5doris15RleBatchDecoderIjE10NextCountsEv
Line
Count
Source
776
17.8k
void RleBatchDecoder<T>::NextCounts() {
777
    // Read the next run's indicator int, it could be a literal or repeated run.
778
    // The int is encoded as a ULEB128-encoded value.
779
17.8k
    uint32_t indicator_value = 0;
780
17.8k
    if (UNLIKELY(!bit_reader_.GetUleb128<uint32_t>(&indicator_value))) {
781
0
        return;
782
0
    }
783
784
    // lsb indicates if it is a literal run or repeated run
785
17.8k
    bool is_literal = indicator_value & 1;
786
787
    // Don't try to handle run lengths that don't fit in an int32_t - just fail gracefully.
788
    // The Parquet standard does not allow longer runs - see PARQUET-1290.
789
17.8k
    uint32_t run_len = indicator_value >> 1;
790
17.8k
    if (is_literal) {
791
        // Use int64_t to avoid overflowing multiplication.
792
17.1k
        int64_t literal_count = static_cast<int64_t>(run_len) * 8;
793
17.1k
        if (UNLIKELY(literal_count > std::numeric_limits<int32_t>::max())) return;
794
17.1k
        literal_count_ = cast_set<int32_t>(literal_count);
795
17.1k
    } else {
796
711
        if (UNLIKELY(run_len == 0)) return;
797
711
        bool result = bit_reader_.GetBytes<T>(BitUtil::Ceil(bit_width_, 8), &repeated_value_);
798
711
        if (UNLIKELY(!result)) return;
799
711
        repeat_count_ = run_len;
800
711
    }
801
17.8k
}
_ZN5doris15RleBatchDecoderItE10NextCountsEv
Line
Count
Source
776
168k
void RleBatchDecoder<T>::NextCounts() {
777
    // Read the next run's indicator int, it could be a literal or repeated run.
778
    // The int is encoded as a ULEB128-encoded value.
779
168k
    uint32_t indicator_value = 0;
780
168k
    if (UNLIKELY(!bit_reader_.GetUleb128<uint32_t>(&indicator_value))) {
781
2
        return;
782
2
    }
783
784
    // lsb indicates if it is a literal run or repeated run
785
168k
    bool is_literal = indicator_value & 1;
786
787
    // Don't try to handle run lengths that don't fit in an int32_t - just fail gracefully.
788
    // The Parquet standard does not allow longer runs - see PARQUET-1290.
789
168k
    uint32_t run_len = indicator_value >> 1;
790
168k
    if (is_literal) {
791
        // Use int64_t to avoid overflowing multiplication.
792
84.2k
        int64_t literal_count = static_cast<int64_t>(run_len) * 8;
793
84.2k
        if (UNLIKELY(literal_count > std::numeric_limits<int32_t>::max())) return;
794
84.2k
        literal_count_ = cast_set<int32_t>(literal_count);
795
84.3k
    } else {
796
84.3k
        if (UNLIKELY(run_len == 0)) return;
797
84.3k
        bool result = bit_reader_.GetBytes<T>(BitUtil::Ceil(bit_width_, 8), &repeated_value_);
798
84.3k
        if (UNLIKELY(!result)) return;
799
84.3k
        repeat_count_ = run_len;
800
84.3k
    }
801
168k
}
_ZN5doris15RleBatchDecoderIhE10NextCountsEv
Line
Count
Source
776
8
void RleBatchDecoder<T>::NextCounts() {
777
    // Read the next run's indicator int, it could be a literal or repeated run.
778
    // The int is encoded as a ULEB128-encoded value.
779
8
    uint32_t indicator_value = 0;
780
8
    if (UNLIKELY(!bit_reader_.GetUleb128<uint32_t>(&indicator_value))) {
781
0
        return;
782
0
    }
783
784
    // lsb indicates if it is a literal run or repeated run
785
8
    bool is_literal = indicator_value & 1;
786
787
    // Don't try to handle run lengths that don't fit in an int32_t - just fail gracefully.
788
    // The Parquet standard does not allow longer runs - see PARQUET-1290.
789
8
    uint32_t run_len = indicator_value >> 1;
790
8
    if (is_literal) {
791
        // Use int64_t to avoid overflowing multiplication.
792
7
        int64_t literal_count = static_cast<int64_t>(run_len) * 8;
793
7
        if (UNLIKELY(literal_count > std::numeric_limits<int32_t>::max())) return;
794
7
        literal_count_ = cast_set<int32_t>(literal_count);
795
7
    } else {
796
1
        if (UNLIKELY(run_len == 0)) return;
797
1
        bool result = bit_reader_.GetBytes<T>(BitUtil::Ceil(bit_width_, 8), &repeated_value_);
798
1
        if (UNLIKELY(!result)) return;
799
1
        repeat_count_ = run_len;
800
1
    }
801
8
}
802
803
template <typename T>
804
7.50M
T RleBatchDecoder<T>::GetRepeatedValue(int32_t num_repeats_to_consume) {
805
7.50M
    repeat_count_ -= num_repeats_to_consume;
806
7.50M
    return repeated_value_;
807
7.50M
}
_ZN5doris15RleBatchDecoderIjE16GetRepeatedValueEi
Line
Count
Source
804
1.18k
T RleBatchDecoder<T>::GetRepeatedValue(int32_t num_repeats_to_consume) {
805
1.18k
    repeat_count_ -= num_repeats_to_consume;
806
1.18k
    return repeated_value_;
807
1.18k
}
_ZN5doris15RleBatchDecoderItE16GetRepeatedValueEi
Line
Count
Source
804
7.49M
T RleBatchDecoder<T>::GetRepeatedValue(int32_t num_repeats_to_consume) {
805
7.49M
    repeat_count_ -= num_repeats_to_consume;
806
7.49M
    return repeated_value_;
807
7.49M
}
_ZN5doris15RleBatchDecoderIhE16GetRepeatedValueEi
Line
Count
Source
804
256
T RleBatchDecoder<T>::GetRepeatedValue(int32_t num_repeats_to_consume) {
805
256
    repeat_count_ -= num_repeats_to_consume;
806
256
    return repeated_value_;
807
256
}
808
809
template <typename T>
810
810k
int32_t RleBatchDecoder<T>::NextNumLiterals() {
811
810k
    if (literal_count_ > 0) return literal_count_;
812
1
    if (repeat_count_ == 0) NextCounts();
813
1
    return literal_count_;
814
810k
}
_ZN5doris15RleBatchDecoderIjE15NextNumLiteralsEv
Line
Count
Source
810
20.6k
int32_t RleBatchDecoder<T>::NextNumLiterals() {
811
20.6k
    if (literal_count_ > 0) return literal_count_;
812
0
    if (repeat_count_ == 0) NextCounts();
813
0
    return literal_count_;
814
20.6k
}
_ZN5doris15RleBatchDecoderItE15NextNumLiteralsEv
Line
Count
Source
810
789k
int32_t RleBatchDecoder<T>::NextNumLiterals() {
811
789k
    if (literal_count_ > 0) return literal_count_;
812
1
    if (repeat_count_ == 0) NextCounts();
813
1
    return literal_count_;
814
789k
}
_ZN5doris15RleBatchDecoderIhE15NextNumLiteralsEv
Line
Count
Source
810
9
int32_t RleBatchDecoder<T>::NextNumLiterals() {
811
9
    if (literal_count_ > 0) return literal_count_;
812
0
    if (repeat_count_ == 0) NextCounts();
813
0
    return literal_count_;
814
9
}
815
816
template <typename T>
817
810k
bool RleBatchDecoder<T>::GetLiteralValues(int32_t num_literals_to_consume, T* values) {
818
810k
    int32_t num_consumed = 0;
819
    // Copy any buffered literals left over from previous calls.
820
810k
    if (HaveBufferedLiterals()) {
821
705k
        num_consumed = OutputBufferedLiterals(num_literals_to_consume, values);
822
705k
    }
823
824
810k
    int32_t num_remaining = num_literals_to_consume - num_consumed;
825
    // Copy literals directly to the output, bypassing 'literal_buffer_' when possible.
826
    // Need to round to a batch of 32 if the caller is consuming only part of the current
827
    // run avoid ending on a non-byte boundary.
828
810k
    int32_t num_to_bypass =
829
810k
            std::min<int32_t>(literal_count_, BitUtil::RoundDownToPowerOf2(num_remaining, 32));
830
810k
    if (num_to_bypass > 0) {
831
13.4k
        int num_read = bit_reader_.UnpackBatch(bit_width_, num_to_bypass, values + num_consumed);
832
        // If we couldn't read the expected number, that means the input was truncated.
833
13.4k
        if (num_read < num_to_bypass) return false;
834
13.4k
        literal_count_ -= num_to_bypass;
835
13.4k
        num_consumed += num_to_bypass;
836
13.4k
        num_remaining = num_literals_to_consume - num_consumed;
837
13.4k
    }
838
839
810k
    if (num_remaining > 0) {
840
        // We weren't able to copy all the literals requested directly from the input.
841
        // Buffer literals and copy over the requested number.
842
104k
        if (UNLIKELY(!FillLiteralBuffer())) return false;
843
104k
        OutputBufferedLiterals(num_remaining, values + num_consumed);
844
104k
    }
845
810k
    return true;
846
810k
}
_ZN5doris15RleBatchDecoderIjE16GetLiteralValuesEiPj
Line
Count
Source
817
20.6k
bool RleBatchDecoder<T>::GetLiteralValues(int32_t num_literals_to_consume, T* values) {
818
20.6k
    int32_t num_consumed = 0;
819
    // Copy any buffered literals left over from previous calls.
820
20.6k
    if (HaveBufferedLiterals()) {
821
3.32k
        num_consumed = OutputBufferedLiterals(num_literals_to_consume, values);
822
3.32k
    }
823
824
20.6k
    int32_t num_remaining = num_literals_to_consume - num_consumed;
825
    // Copy literals directly to the output, bypassing 'literal_buffer_' when possible.
826
    // Need to round to a batch of 32 if the caller is consuming only part of the current
827
    // run avoid ending on a non-byte boundary.
828
20.6k
    int32_t num_to_bypass =
829
20.6k
            std::min<int32_t>(literal_count_, BitUtil::RoundDownToPowerOf2(num_remaining, 32));
830
20.6k
    if (num_to_bypass > 0) {
831
13.4k
        int num_read = bit_reader_.UnpackBatch(bit_width_, num_to_bypass, values + num_consumed);
832
        // If we couldn't read the expected number, that means the input was truncated.
833
13.4k
        if (num_read < num_to_bypass) return false;
834
13.4k
        literal_count_ -= num_to_bypass;
835
13.4k
        num_consumed += num_to_bypass;
836
13.4k
        num_remaining = num_literals_to_consume - num_consumed;
837
13.4k
    }
838
839
20.6k
    if (num_remaining > 0) {
840
        // We weren't able to copy all the literals requested directly from the input.
841
        // Buffer literals and copy over the requested number.
842
17.3k
        if (UNLIKELY(!FillLiteralBuffer())) return false;
843
17.3k
        OutputBufferedLiterals(num_remaining, values + num_consumed);
844
17.3k
    }
845
20.6k
    return true;
846
20.6k
}
_ZN5doris15RleBatchDecoderItE16GetLiteralValuesEiPt
Line
Count
Source
817
789k
bool RleBatchDecoder<T>::GetLiteralValues(int32_t num_literals_to_consume, T* values) {
818
789k
    int32_t num_consumed = 0;
819
    // Copy any buffered literals left over from previous calls.
820
789k
    if (HaveBufferedLiterals()) {
821
702k
        num_consumed = OutputBufferedLiterals(num_literals_to_consume, values);
822
702k
    }
823
824
789k
    int32_t num_remaining = num_literals_to_consume - num_consumed;
825
    // Copy literals directly to the output, bypassing 'literal_buffer_' when possible.
826
    // Need to round to a batch of 32 if the caller is consuming only part of the current
827
    // run avoid ending on a non-byte boundary.
828
789k
    int32_t num_to_bypass =
829
789k
            std::min<int32_t>(literal_count_, BitUtil::RoundDownToPowerOf2(num_remaining, 32));
830
789k
    if (num_to_bypass > 0) {
831
4
        int num_read = bit_reader_.UnpackBatch(bit_width_, num_to_bypass, values + num_consumed);
832
        // If we couldn't read the expected number, that means the input was truncated.
833
4
        if (num_read < num_to_bypass) return false;
834
4
        literal_count_ -= num_to_bypass;
835
4
        num_consumed += num_to_bypass;
836
4
        num_remaining = num_literals_to_consume - num_consumed;
837
4
    }
838
839
789k
    if (num_remaining > 0) {
840
        // We weren't able to copy all the literals requested directly from the input.
841
        // Buffer literals and copy over the requested number.
842
87.0k
        if (UNLIKELY(!FillLiteralBuffer())) return false;
843
87.0k
        OutputBufferedLiterals(num_remaining, values + num_consumed);
844
87.0k
    }
845
789k
    return true;
846
789k
}
_ZN5doris15RleBatchDecoderIhE16GetLiteralValuesEiPh
Line
Count
Source
817
9
bool RleBatchDecoder<T>::GetLiteralValues(int32_t num_literals_to_consume, T* values) {
818
9
    int32_t num_consumed = 0;
819
    // Copy any buffered literals left over from previous calls.
820
9
    if (HaveBufferedLiterals()) {
821
2
        num_consumed = OutputBufferedLiterals(num_literals_to_consume, values);
822
2
    }
823
824
9
    int32_t num_remaining = num_literals_to_consume - num_consumed;
825
    // Copy literals directly to the output, bypassing 'literal_buffer_' when possible.
826
    // Need to round to a batch of 32 if the caller is consuming only part of the current
827
    // run avoid ending on a non-byte boundary.
828
9
    int32_t num_to_bypass =
829
9
            std::min<int32_t>(literal_count_, BitUtil::RoundDownToPowerOf2(num_remaining, 32));
830
9
    if (num_to_bypass > 0) {
831
0
        int num_read = bit_reader_.UnpackBatch(bit_width_, num_to_bypass, values + num_consumed);
832
        // If we couldn't read the expected number, that means the input was truncated.
833
0
        if (num_read < num_to_bypass) return false;
834
0
        literal_count_ -= num_to_bypass;
835
0
        num_consumed += num_to_bypass;
836
0
        num_remaining = num_literals_to_consume - num_consumed;
837
0
    }
838
839
9
    if (num_remaining > 0) {
840
        // We weren't able to copy all the literals requested directly from the input.
841
        // Buffer literals and copy over the requested number.
842
7
        if (UNLIKELY(!FillLiteralBuffer())) return false;
843
4
        OutputBufferedLiterals(num_remaining, values + num_consumed);
844
4
    }
845
6
    return true;
846
9
}
847
848
template <typename T>
849
104k
bool RleBatchDecoder<T>::FillLiteralBuffer() {
850
104k
    int32_t num_to_buffer = std::min<int32_t>(LITERAL_BUFFER_LEN, literal_count_);
851
104k
    num_buffered_literals_ = bit_reader_.UnpackBatch(bit_width_, num_to_buffer, literal_buffer_);
852
    // If we couldn't read the expected number, that means the input was truncated.
853
104k
    if (UNLIKELY(num_buffered_literals_ < num_to_buffer)) return false;
854
104k
    literal_buffer_pos_ = 0;
855
104k
    return true;
856
104k
}
_ZN5doris15RleBatchDecoderIjE17FillLiteralBufferEv
Line
Count
Source
849
17.3k
bool RleBatchDecoder<T>::FillLiteralBuffer() {
850
17.3k
    int32_t num_to_buffer = std::min<int32_t>(LITERAL_BUFFER_LEN, literal_count_);
851
17.3k
    num_buffered_literals_ = bit_reader_.UnpackBatch(bit_width_, num_to_buffer, literal_buffer_);
852
    // If we couldn't read the expected number, that means the input was truncated.
853
17.3k
    if (UNLIKELY(num_buffered_literals_ < num_to_buffer)) return false;
854
17.3k
    literal_buffer_pos_ = 0;
855
17.3k
    return true;
856
17.3k
}
_ZN5doris15RleBatchDecoderItE17FillLiteralBufferEv
Line
Count
Source
849
87.0k
bool RleBatchDecoder<T>::FillLiteralBuffer() {
850
87.0k
    int32_t num_to_buffer = std::min<int32_t>(LITERAL_BUFFER_LEN, literal_count_);
851
87.0k
    num_buffered_literals_ = bit_reader_.UnpackBatch(bit_width_, num_to_buffer, literal_buffer_);
852
    // If we couldn't read the expected number, that means the input was truncated.
853
87.0k
    if (UNLIKELY(num_buffered_literals_ < num_to_buffer)) return false;
854
87.0k
    literal_buffer_pos_ = 0;
855
87.0k
    return true;
856
87.0k
}
_ZN5doris15RleBatchDecoderIhE17FillLiteralBufferEv
Line
Count
Source
849
7
bool RleBatchDecoder<T>::FillLiteralBuffer() {
850
7
    int32_t num_to_buffer = std::min<int32_t>(LITERAL_BUFFER_LEN, literal_count_);
851
7
    num_buffered_literals_ = bit_reader_.UnpackBatch(bit_width_, num_to_buffer, literal_buffer_);
852
    // If we couldn't read the expected number, that means the input was truncated.
853
7
    if (UNLIKELY(num_buffered_literals_ < num_to_buffer)) return false;
854
4
    literal_buffer_pos_ = 0;
855
4
    return true;
856
7
}
857
858
template <typename T>
859
8.29M
uint32_t RleBatchDecoder<T>::GetBatch(T* values, uint32_t batch_num) {
860
8.29M
    uint32_t num_consumed = 0;
861
16.5M
    while (num_consumed < batch_num) {
862
        // Add RLE encoded values by repeating the current value this number of times.
863
8.30M
        uint32_t num_repeats = NextNumRepeats();
864
8.30M
        if (num_repeats > 0) {
865
7.49M
            int32_t num_repeats_to_set = std::min(num_repeats, batch_num - num_consumed);
866
7.49M
            T repeated_value = GetRepeatedValue(num_repeats_to_set);
867
25.4M
            for (int i = 0; i < num_repeats_to_set; ++i) {
868
17.9M
                values[num_consumed + i] = repeated_value;
869
17.9M
            }
870
7.49M
            num_consumed += num_repeats_to_set;
871
7.49M
            continue;
872
7.49M
        }
873
874
        // Add remaining literal values, if any.
875
801k
        uint32_t num_literals = NextNumLiterals();
876
801k
        if (num_literals == 0) {
877
1
            break;
878
1
        }
879
801k
        uint32_t num_literals_to_set = std::min(num_literals, batch_num - num_consumed);
880
801k
        if (!GetLiteralValues(num_literals_to_set, values + num_consumed)) {
881
4
            return 0;
882
4
        }
883
801k
        num_consumed += num_literals_to_set;
884
801k
    }
885
8.29M
    return num_consumed;
886
8.29M
}
_ZN5doris15RleBatchDecoderIjE8GetBatchEPjj
Line
Count
Source
859
8.60k
uint32_t RleBatchDecoder<T>::GetBatch(T* values, uint32_t batch_num) {
860
8.60k
    uint32_t num_consumed = 0;
861
21.8k
    while (num_consumed < batch_num) {
862
        // Add RLE encoded values by repeating the current value this number of times.
863
13.2k
        uint32_t num_repeats = NextNumRepeats();
864
13.2k
        if (num_repeats > 0) {
865
974
            int32_t num_repeats_to_set = std::min(num_repeats, batch_num - num_consumed);
866
974
            T repeated_value = GetRepeatedValue(num_repeats_to_set);
867
1.12M
            for (int i = 0; i < num_repeats_to_set; ++i) {
868
1.12M
                values[num_consumed + i] = repeated_value;
869
1.12M
            }
870
974
            num_consumed += num_repeats_to_set;
871
974
            continue;
872
974
        }
873
874
        // Add remaining literal values, if any.
875
12.2k
        uint32_t num_literals = NextNumLiterals();
876
12.2k
        if (num_literals == 0) {
877
0
            break;
878
0
        }
879
12.2k
        uint32_t num_literals_to_set = std::min(num_literals, batch_num - num_consumed);
880
12.2k
        if (!GetLiteralValues(num_literals_to_set, values + num_consumed)) {
881
0
            return 0;
882
0
        }
883
12.2k
        num_consumed += num_literals_to_set;
884
12.2k
    }
885
8.60k
    return num_consumed;
886
8.60k
}
_ZN5doris15RleBatchDecoderItE8GetBatchEPtj
Line
Count
Source
859
8.28M
uint32_t RleBatchDecoder<T>::GetBatch(T* values, uint32_t batch_num) {
860
8.28M
    uint32_t num_consumed = 0;
861
16.5M
    while (num_consumed < batch_num) {
862
        // Add RLE encoded values by repeating the current value this number of times.
863
8.28M
        uint32_t num_repeats = NextNumRepeats();
864
8.28M
        if (num_repeats > 0) {
865
7.49M
            int32_t num_repeats_to_set = std::min(num_repeats, batch_num - num_consumed);
866
7.49M
            T repeated_value = GetRepeatedValue(num_repeats_to_set);
867
23.2M
            for (int i = 0; i < num_repeats_to_set; ++i) {
868
15.7M
                values[num_consumed + i] = repeated_value;
869
15.7M
            }
870
7.49M
            num_consumed += num_repeats_to_set;
871
7.49M
            continue;
872
7.49M
        }
873
874
        // Add remaining literal values, if any.
875
789k
        uint32_t num_literals = NextNumLiterals();
876
789k
        if (num_literals == 0) {
877
1
            break;
878
1
        }
879
789k
        uint32_t num_literals_to_set = std::min(num_literals, batch_num - num_consumed);
880
789k
        if (!GetLiteralValues(num_literals_to_set, values + num_consumed)) {
881
1
            return 0;
882
1
        }
883
789k
        num_consumed += num_literals_to_set;
884
789k
    }
885
8.28M
    return num_consumed;
886
8.28M
}
_ZN5doris15RleBatchDecoderIhE8GetBatchEPhj
Line
Count
Source
859
263
uint32_t RleBatchDecoder<T>::GetBatch(T* values, uint32_t batch_num) {
860
263
    uint32_t num_consumed = 0;
861
525
    while (num_consumed < batch_num) {
862
        // Add RLE encoded values by repeating the current value this number of times.
863
265
        uint32_t num_repeats = NextNumRepeats();
864
265
        if (num_repeats > 0) {
865
256
            int32_t num_repeats_to_set = std::min(num_repeats, batch_num - num_consumed);
866
256
            T repeated_value = GetRepeatedValue(num_repeats_to_set);
867
1.04M
            for (int i = 0; i < num_repeats_to_set; ++i) {
868
1.04M
                values[num_consumed + i] = repeated_value;
869
1.04M
            }
870
256
            num_consumed += num_repeats_to_set;
871
256
            continue;
872
256
        }
873
874
        // Add remaining literal values, if any.
875
9
        uint32_t num_literals = NextNumLiterals();
876
9
        if (num_literals == 0) {
877
0
            break;
878
0
        }
879
9
        uint32_t num_literals_to_set = std::min(num_literals, batch_num - num_consumed);
880
9
        if (!GetLiteralValues(num_literals_to_set, values + num_consumed)) {
881
3
            return 0;
882
3
        }
883
6
        num_consumed += num_literals_to_set;
884
6
    }
885
260
    return num_consumed;
886
263
}
887
} // namespace doris