421 lines
		
	
	
		
			13 KiB
		
	
	
	
		
			C
		
	
	
	
			
		
		
	
	
			421 lines
		
	
	
		
			13 KiB
		
	
	
	
		
			C
		
	
	
	
/*
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 * Copyright (C) 2019 The Android Open Source Project
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 *
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 * Licensed under the Apache License, Version 2.0 (the "License");
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 * you may not use this file except in compliance with the License.
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 * 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
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 *
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 * Unless required by applicable law or agreed to in writing, software
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 * distributed under the License is distributed on an "AS IS" BASIS,
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 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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 * See the License for the specific language governing permissions and
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 * limitations under the License.
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 */
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#include "include/stats_event.h"
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#include <stdlib.h>
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#include <string.h>
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#include <time.h>
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#include "stats_buffer_writer.h"
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#define LOGGER_ENTRY_MAX_PAYLOAD 4068
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// Max payload size is 4 bytes less as 4 bytes are reserved for stats_eventTag.
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// See android_util_Stats_Log.cpp
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#define MAX_PUSH_EVENT_PAYLOAD (LOGGER_ENTRY_MAX_PAYLOAD - 4)
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#define MAX_PULL_EVENT_PAYLOAD (50 * 1024)  // 50 KB
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/* POSITIONS */
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#define POS_NUM_ELEMENTS 1
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#define POS_TIMESTAMP (POS_NUM_ELEMENTS + sizeof(uint8_t))
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#define POS_ATOM_ID (POS_TIMESTAMP + sizeof(uint8_t) + sizeof(uint64_t))
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/* LIMITS */
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#define MAX_ANNOTATION_COUNT 15
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#define MAX_BYTE_VALUE 127  // parsing side requires that lengths fit in 7 bits
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/* ERRORS */
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#define ERROR_NO_TIMESTAMP 0x1
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#define ERROR_NO_ATOM_ID 0x2
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#define ERROR_OVERFLOW 0x4
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#define ERROR_ATTRIBUTION_CHAIN_TOO_LONG 0x8
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#define ERROR_TOO_MANY_KEY_VALUE_PAIRS 0x10
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#define ERROR_ANNOTATION_DOES_NOT_FOLLOW_FIELD 0x20
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#define ERROR_INVALID_ANNOTATION_ID 0x40
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#define ERROR_ANNOTATION_ID_TOO_LARGE 0x80
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#define ERROR_TOO_MANY_ANNOTATIONS 0x100
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#define ERROR_TOO_MANY_FIELDS 0x200
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#define ERROR_INVALID_VALUE_TYPE 0x400
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#define ERROR_STRING_NOT_NULL_TERMINATED 0x800
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#define ERROR_ATOM_ID_INVALID_POSITION 0x2000
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#define ERROR_LIST_TOO_LONG 0x4000
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/* TYPE IDS */
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#define INT32_TYPE 0x00
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#define INT64_TYPE 0x01
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#define STRING_TYPE 0x02
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#define LIST_TYPE 0x03
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#define FLOAT_TYPE 0x04
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#define BOOL_TYPE 0x05
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#define BYTE_ARRAY_TYPE 0x06
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#define OBJECT_TYPE 0x07
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#define KEY_VALUE_PAIRS_TYPE 0x08
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#define ATTRIBUTION_CHAIN_TYPE 0x09
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#define ERROR_TYPE 0x0F
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// The AStatsEvent struct holds the serialized encoding of an event
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// within a buf. Also includes other required fields.
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struct AStatsEvent {
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    uint8_t* buf;
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    // Location of last field within the buf. Here, field denotes either a
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    // metadata field (e.g. timestamp) or an atom field.
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    size_t lastFieldPos;
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    // Number of valid bytes within the buffer.
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    size_t numBytesWritten;
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    uint32_t numElements;
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    uint32_t atomId;
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    uint32_t errors;
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    bool built;
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    size_t bufSize;
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};
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static int64_t get_elapsed_realtime_ns() {
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    struct timespec t;
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    t.tv_sec = t.tv_nsec = 0;
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    clock_gettime(CLOCK_BOOTTIME, &t);
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    return (int64_t)t.tv_sec * 1000000000LL + t.tv_nsec;
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}
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AStatsEvent* AStatsEvent_obtain() {
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    AStatsEvent* event = malloc(sizeof(AStatsEvent));
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    event->lastFieldPos = 0;
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    event->numBytesWritten = 2;  // reserve first 2 bytes for root event type and number of elements
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    event->numElements = 0;
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    event->atomId = 0;
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    event->errors = 0;
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    event->built = false;
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    event->bufSize = MAX_PUSH_EVENT_PAYLOAD;
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    event->buf = (uint8_t*)calloc(event->bufSize, 1);
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    event->buf[0] = OBJECT_TYPE;
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    AStatsEvent_writeInt64(event, get_elapsed_realtime_ns());  // write the timestamp
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    return event;
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}
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void AStatsEvent_release(AStatsEvent* event) {
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    free(event->buf);
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    free(event);
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}
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void AStatsEvent_setAtomId(AStatsEvent* event, uint32_t atomId) {
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    if (event->atomId != 0) return;
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    if (event->numElements != 1) {
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        event->errors |= ERROR_ATOM_ID_INVALID_POSITION;
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        return;
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    }
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    event->atomId = atomId;
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    AStatsEvent_writeInt32(event, atomId);
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}
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// Overwrites the timestamp populated in AStatsEvent_obtain with a custom
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// timestamp. Should only be called from test code.
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void AStatsEvent_overwriteTimestamp(AStatsEvent* event, uint64_t timestampNs) {
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    memcpy(&event->buf[POS_TIMESTAMP + sizeof(uint8_t)], ×tampNs, sizeof(timestampNs));
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    // Do not increment numElements because we already accounted for the timestamp
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    // within AStatsEvent_obtain.
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}
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// Side-effect: modifies event->errors if the buffer would overflow
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static bool overflows(AStatsEvent* event, size_t size) {
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    const size_t totalBytesNeeded = event->numBytesWritten + size;
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    if (totalBytesNeeded > MAX_PULL_EVENT_PAYLOAD) {
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        event->errors |= ERROR_OVERFLOW;
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        return true;
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    }
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    // Expand buffer if needed.
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    if (event->bufSize < MAX_PULL_EVENT_PAYLOAD && totalBytesNeeded > event->bufSize) {
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        do {
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            event->bufSize *= 2;
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        } while (event->bufSize <= totalBytesNeeded);
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        if (event->bufSize > MAX_PULL_EVENT_PAYLOAD) {
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            event->bufSize = MAX_PULL_EVENT_PAYLOAD;
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        }
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        event->buf = (uint8_t*)realloc(event->buf, event->bufSize);
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    }
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    return false;
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}
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// Side-effect: all append functions increment event->numBytesWritten if there is
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// sufficient space within the buffer to place the value
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static void append_byte(AStatsEvent* event, uint8_t value) {
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    if (!overflows(event, sizeof(value))) {
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        event->buf[event->numBytesWritten] = value;
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        event->numBytesWritten += sizeof(value);
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    }
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}
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static void append_bool(AStatsEvent* event, bool value) {
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    append_byte(event, (uint8_t)value);
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}
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static void append_int32(AStatsEvent* event, int32_t value) {
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    if (!overflows(event, sizeof(value))) {
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        memcpy(&event->buf[event->numBytesWritten], &value, sizeof(value));
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        event->numBytesWritten += sizeof(value);
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    }
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}
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static void append_int64(AStatsEvent* event, int64_t value) {
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    if (!overflows(event, sizeof(value))) {
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        memcpy(&event->buf[event->numBytesWritten], &value, sizeof(value));
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        event->numBytesWritten += sizeof(value);
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    }
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}
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static void append_float(AStatsEvent* event, float value) {
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    if (!overflows(event, sizeof(value))) {
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        memcpy(&event->buf[event->numBytesWritten], &value, sizeof(value));
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        event->numBytesWritten += sizeof(float);
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    }
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}
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static void append_byte_array(AStatsEvent* event, const uint8_t* buf, size_t size) {
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    if (!overflows(event, size)) {
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        memcpy(&event->buf[event->numBytesWritten], buf, size);
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        event->numBytesWritten += size;
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    }
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}
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// Side-effect: modifies event->errors if buf is not properly null-terminated
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static void append_string(AStatsEvent* event, const char* buf) {
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    size_t size = strnlen(buf, MAX_PULL_EVENT_PAYLOAD);
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    if (size == MAX_PULL_EVENT_PAYLOAD) {
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        event->errors |= ERROR_STRING_NOT_NULL_TERMINATED;
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        return;
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    }
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    append_int32(event, size);
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    append_byte_array(event, (uint8_t*)buf, size);
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}
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static void start_field(AStatsEvent* event, uint8_t typeId) {
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    event->lastFieldPos = event->numBytesWritten;
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    append_byte(event, typeId);
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    event->numElements++;
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}
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void AStatsEvent_writeInt32(AStatsEvent* event, int32_t value) {
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    start_field(event, INT32_TYPE);
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    append_int32(event, value);
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}
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void AStatsEvent_writeInt64(AStatsEvent* event, int64_t value) {
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    start_field(event, INT64_TYPE);
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    append_int64(event, value);
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}
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void AStatsEvent_writeFloat(AStatsEvent* event, float value) {
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    start_field(event, FLOAT_TYPE);
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    append_float(event, value);
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}
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void AStatsEvent_writeBool(AStatsEvent* event, bool value) {
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    start_field(event, BOOL_TYPE);
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    append_bool(event, value);
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}
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void AStatsEvent_writeByteArray(AStatsEvent* event, const uint8_t* buf, size_t numBytes) {
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    start_field(event, BYTE_ARRAY_TYPE);
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    if (buf == NULL) {
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        numBytes = 0;
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    }
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    append_int32(event, numBytes);
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    if (numBytes > 0) {
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        append_byte_array(event, buf, numBytes);
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    }
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}
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// Value is assumed to be encoded using UTF8
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void AStatsEvent_writeString(AStatsEvent* event, const char* value) {
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    start_field(event, STRING_TYPE);
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    append_string(event, value == NULL ? "" : value);
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}
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// Tags are assumed to be encoded using UTF8
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void AStatsEvent_writeAttributionChain(AStatsEvent* event, const uint32_t* uids,
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                                       const char* const* tags, uint8_t numNodes) {
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    if (numNodes > MAX_BYTE_VALUE) {
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        event->errors |= ERROR_ATTRIBUTION_CHAIN_TOO_LONG;
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        return;
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    }
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    start_field(event, ATTRIBUTION_CHAIN_TYPE);
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    append_byte(event, numNodes);
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    for (uint8_t i = 0; i < numNodes; i++) {
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        append_int32(event, uids[i]);
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        append_string(event, tags[i] == NULL ? "" : tags[i]);
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    }
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}
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static bool writeArrayMetadata(AStatsEvent* event, size_t numElements, uint8_t elementTypeId) {
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    if (numElements > MAX_BYTE_VALUE) {
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        event->errors |= ERROR_LIST_TOO_LONG;
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        return false;
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    }
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    start_field(event, LIST_TYPE);
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    append_byte(event, numElements);
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    append_byte(event, elementTypeId);
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    return true;
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}
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void AStatsEvent_writeInt32Array(AStatsEvent* event, const int32_t* elements, size_t numElements) {
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    if (!writeArrayMetadata(event, numElements, INT32_TYPE)) {
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        return;
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    }
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    for (size_t i = 0; i < numElements; i++) {
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        append_int32(event, elements[i]);
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    }
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}
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void AStatsEvent_writeInt64Array(AStatsEvent* event, const int64_t* elements, size_t numElements) {
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    if (!writeArrayMetadata(event, numElements, INT64_TYPE)) {
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        return;
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    }
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    for (size_t i = 0; i < numElements; i++) {
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        append_int64(event, elements[i]);
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    }
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}
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void AStatsEvent_writeFloatArray(AStatsEvent* event, const float* elements, size_t numElements) {
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    if (!writeArrayMetadata(event, numElements, FLOAT_TYPE)) {
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        return;
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    }
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    for (size_t i = 0; i < numElements; i++) {
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        append_float(event, elements[i]);
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    }
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}
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void AStatsEvent_writeBoolArray(AStatsEvent* event, const bool* elements, size_t numElements) {
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    if (!writeArrayMetadata(event, numElements, BOOL_TYPE)) {
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        return;
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    }
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    for (size_t i = 0; i < numElements; i++) {
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        append_bool(event, elements[i]);
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    }
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}
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void AStatsEvent_writeStringArray(AStatsEvent* event, const char* const* elements,
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                                  size_t numElements) {
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    if (!writeArrayMetadata(event, numElements, STRING_TYPE)) {
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        return;
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    }
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    for (size_t i = 0; i < numElements; i++) {
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        append_string(event, elements[i] == NULL ? "" : elements[i]);
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    }
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}
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// Side-effect: modifies event->errors if field has too many annotations
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static void increment_annotation_count(AStatsEvent* event) {
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    uint8_t fieldType = event->buf[event->lastFieldPos] & 0x0F;
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    uint32_t oldAnnotationCount = (event->buf[event->lastFieldPos] & 0xF0) >> 4;
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    uint32_t newAnnotationCount = oldAnnotationCount + 1;
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    if (newAnnotationCount > MAX_ANNOTATION_COUNT) {
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        event->errors |= ERROR_TOO_MANY_ANNOTATIONS;
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        return;
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    }
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    event->buf[event->lastFieldPos] = (((uint8_t)newAnnotationCount << 4) & 0xF0) | fieldType;
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}
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void AStatsEvent_addBoolAnnotation(AStatsEvent* event, uint8_t annotationId, bool value) {
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    if (event->numElements < 2) {
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        event->errors |= ERROR_ANNOTATION_DOES_NOT_FOLLOW_FIELD;
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        return;
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    } else if (annotationId > MAX_BYTE_VALUE) {
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        event->errors |= ERROR_ANNOTATION_ID_TOO_LARGE;
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        return;
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    }
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    append_byte(event, annotationId);
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    append_byte(event, BOOL_TYPE);
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    append_bool(event, value);
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    increment_annotation_count(event);
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}
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void AStatsEvent_addInt32Annotation(AStatsEvent* event, uint8_t annotationId, int32_t value) {
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    if (event->numElements < 2) {
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        event->errors |= ERROR_ANNOTATION_DOES_NOT_FOLLOW_FIELD;
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        return;
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    } else if (annotationId > MAX_BYTE_VALUE) {
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        event->errors |= ERROR_ANNOTATION_ID_TOO_LARGE;
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        return;
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    }
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    append_byte(event, annotationId);
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    append_byte(event, INT32_TYPE);
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    append_int32(event, value);
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    increment_annotation_count(event);
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}
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uint32_t AStatsEvent_getAtomId(AStatsEvent* event) {
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    return event->atomId;
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}
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uint8_t* AStatsEvent_getBuffer(AStatsEvent* event, size_t* size) {
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    if (size) *size = event->numBytesWritten;
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    return event->buf;
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}
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uint32_t AStatsEvent_getErrors(AStatsEvent* event) {
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    return event->errors;
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}
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static void build_internal(AStatsEvent* event, const bool push) {
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    if (event->numElements > MAX_BYTE_VALUE) event->errors |= ERROR_TOO_MANY_FIELDS;
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    if (0 == event->atomId) event->errors |= ERROR_NO_ATOM_ID;
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    if (push && event->numBytesWritten > MAX_PUSH_EVENT_PAYLOAD) event->errors |= ERROR_OVERFLOW;
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    // If there are errors, rewrite buffer.
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    if (event->errors) {
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        // Discard everything after the atom id (including atom-level
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        // annotations). This leaves only two elements (timestamp and atom id).
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        event->numElements = 2;
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        // Reset number of atom-level annotations to 0.
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        event->buf[POS_ATOM_ID] = INT32_TYPE;
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        // Now, write errors to the buffer immediately after the atom id.
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        event->numBytesWritten = POS_ATOM_ID + sizeof(uint8_t) + sizeof(uint32_t);
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        start_field(event, ERROR_TYPE);
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        append_int32(event, event->errors);
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    }
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    event->buf[POS_NUM_ELEMENTS] = event->numElements;
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}
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void AStatsEvent_build(AStatsEvent* event) {
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    if (event->built) return;
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    build_internal(event, false /* push */);
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    event->built = true;
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}
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int AStatsEvent_write(AStatsEvent* event) {
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    build_internal(event, true /* push */);
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    return write_buffer_to_statsd(event->buf, event->numBytesWritten, event->atomId);
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}
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