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// pkt_normalizer.c - Implementation of packet normalizer for ETCP
#include "pkt_normalizer.h"
#include "etcp.h" // For ETCP_CONN and related structures
#include "etcp_api.h" // For etcp_recv callback
#include "routing.h" // For routing_add_conn/routing_del_conn
#include "utun_instance.h" // For UTUN_INSTANCE
#include "ll_queue.h" // For queue operations
#include "u_async.h" // For UASYNC
#include <stdlib.h>
#include <string.h>
#include <stdio.h> // For debugging (can be removed if not needed)
#include "../lib/debug_config.h" // For DEBUG macros
#include "../lib/mem.h"
// Forward declarations
static void packer_cb(struct ll_queue* q, void* arg);
static void pn_flush_cb(void* arg);
static void etcp_input_ready_cb(struct ll_queue* q, void* arg);
static void pn_unpacker_cb(struct ll_queue* q, void* arg);
static void pn_send_to_etcp(struct PKTNORM* pn);
// Initialization
struct PKTNORM* pn_init(struct ETCP_CONN* etcp) {
DEBUG_TRACE(DEBUG_CATEGORY_NORMALIZER, "");
if (!etcp) return NULL;
if (etcp->mtu<200) {
DEBUG_ERROR(DEBUG_CATEGORY_NORMALIZER, "ETCP MTU error=%d", etcp->mtu);
}
struct PKTNORM* pn = u_calloc(1, sizeof(struct PKTNORM));
if (!pn) {
DEBUG_ERROR(DEBUG_CATEGORY_NORMALIZER, "calloc failed");
return NULL;
}
DEBUG_DEBUG(DEBUG_CATEGORY_ETCP, "pn_init:[%s] init %p, mtu=%d", etcp->log_name, etcp, etcp->mtu);
pn->etcp = etcp;
pn->ua = etcp->instance->ua;
pn->frag_size = etcp->mtu - ACK_REZERV - UDP_HDR_SIZE - UDP_SC_HDR_SIZE;
int min_frag = UDP_HDR_SIZE + UDP_SC_HDR_SIZE + ACK_REZERV;
if (etcp->mtu < min_frag || pn->frag_size > etcp->mtu) {
DEBUG_ERROR(DEBUG_CATEGORY_NORMALIZER, "MTU %d too small (min %d)", etcp->mtu, min_frag);
pn->frag_size = etcp->mtu;
}
pn->tx_wait_time = 10;
pn->input = queue_new(pn->ua, 0, 0, 0, "pn_input"); // No hash needed
if (!pn->input) {
DEBUG_ERROR(DEBUG_CATEGORY_NORMALIZER, "queue_new(input) failed");
pn_deinit(pn);
return NULL;
}
queue_set_threshold(pn->input, 0, 0); // транзитные очереди: ждать полного освобождения
queue_set_waiter_defer(pn->input, 1); // defer чтобы избежать рекурсии drain_cb
pn->output = queue_new(pn->ua, 0, 0, 0, "pn_output"); // No hash needed
if (!pn->output) {
DEBUG_ERROR(DEBUG_CATEGORY_NORMALIZER, "queue_new(output) failed");
pn_deinit(pn);
return NULL;
}
queue_set_callback(pn->input, packer_cb, pn);
queue_set_callback(etcp->output_queue, pn_unpacker_cb, pn);
queue_set_callback(pn->output, etcp_int_recv, etcp);
pn->data = NULL;
pn->recvpart = NULL;
pn->flush_timer = NULL;
pn->input_waiter_handle.internal = NULL;
return pn;
}
// Deinitialization
void pn_deinit(struct PKTNORM* pn) {
DEBUG_TRACE(DEBUG_CATEGORY_NORMALIZER, "");
if (!pn) return;
// Unregister from routing module
if (pn->etcp) {
routing_del_conn(pn->etcp);
}
// Drain and free queues
if (pn->input) {
struct ll_entry* entry;
while ((entry = queue_data_get(pn->input)) != NULL) {
if (entry->dgram) {
u_free(entry->dgram);
}
queue_entry_free(entry);
}
queue_free(pn->input);
}
if (pn->output) {
struct ll_entry* entry;
while ((entry = queue_data_get(pn->output)) != NULL) {
if (entry->dgram) {
u_free(entry->dgram);
}
queue_entry_free(entry);
}
queue_free(pn->output);
}
if (pn->flush_timer) {
uasync_call_soon_cancel(pn->ua, pn->flush_timer);
}
if (pn->data) {
memory_pool_free(pn->etcp->instance->data_pool, pn->data);
}
if (pn->recvpart) {
queue_dgram_free(pn->recvpart);
queue_entry_free(pn->recvpart);
}
// Cancel waiter and clear callbacks on ETCP queues to prevent use-after-free
// during etcp_connection_close() when drain_and_free_fragment_queue() is called
if (pn->etcp) {
if (pn->etcp->input_queue) {
queue_waiter_cancel(pn->etcp->input_queue, &pn->input_waiter_handle);
}
if (pn->etcp->output_queue) {
queue_set_callback(pn->etcp->output_queue, NULL, NULL);
}
}
u_free(pn);
}
// Reset unpacker state
void pn_unpacker_reset_state(struct PKTNORM* pn) {
DEBUG_TRACE(DEBUG_CATEGORY_NORMALIZER, "");
if (!pn) return;
// Reset recvpart
if (pn->recvpart) {
queue_dgram_free(pn->recvpart);
queue_entry_free(pn->recvpart);
pn->recvpart = NULL;
}
}
// Reset packer and unpacker state (for reconnection)
void pn_reset(struct PKTNORM* pn) {
DEBUG_TRACE(DEBUG_CATEGORY_NORMALIZER, "");
if (!pn) return;
// Cancel flush timer
if (pn->flush_timer) {
uasync_call_soon_cancel(pn->ua, pn->flush_timer);
pn->flush_timer = NULL;
}
// Reset packer state
if (pn->data) {
memory_pool_free(pn->etcp->instance->data_pool, pn->data);
pn->data = NULL;
}
pn->data_ptr = 0;
pn->data_size = 0;
// Free pending if any
if (pn->pending) {
queue_dgram_free(pn->pending);
queue_entry_free(pn->pending);
pn->pending = NULL;
}
pn->pending_in_ptr = 0;
// Reset unpacker state
pn_unpacker_reset_state(pn);
queue_resume_callback(pn->input);
queue_resume_callback(pn->output);
}
// Send data to packer (copies and adds to input queue or pending, triggering callback) используется только в юниттесте
void pn_packer_send(struct PKTNORM* pn, uint8_t* data, uint16_t len) {
DEBUG_TRACE(DEBUG_CATEGORY_NORMALIZER, "");
if (!pn || !data || len == 0) return;
struct ll_entry* entry = ll_alloc_lldgram(len);
if (!entry) {
pn->alloc_errors++;
DEBUG_ERROR(DEBUG_CATEGORY_NORMALIZER, "ll_alloc_lldgram failed");
return;
}
memcpy(entry->dgram, data, len);
entry->len = len;
entry->dgram_pool = NULL;
// Cancel flush timer if active
if (pn->flush_timer) {
uasync_call_soon_cancel(pn->ua, pn->flush_timer);
pn->flush_timer = NULL;
}
DEBUG_TRACE(DEBUG_CATEGORY_NORMALIZER, "PUT to input");
int ret = queue_data_put(pn->input, entry);
pn->in_total_pkts++;
pn->in_total_bytes += len;
DEBUG_TRACE(DEBUG_CATEGORY_NORMALIZER, "PUT to input end");
// DEBUG_INFO(DEBUG_CATEGORY_NORMALIZER, "queue_data_put returned %d, input count=%d", ret, queue_entry_count(pn->input));
}
// Internal: Packer callback
static void packer_cb(struct ll_queue* q, void* arg) {
DEBUG_TRACE(DEBUG_CATEGORY_NORMALIZER, "");
struct PKTNORM* pn = (struct PKTNORM*)arg;
if (!pn) return;
DEBUG_TRACE(DEBUG_CATEGORY_NORMALIZER, "input_q->pn: waiting etcp input threshold");
queue_waiter_wait(pn->etcp->input_queue, &pn->input_waiter_handle, etcp_input_ready_cb, pn);
}
// Helper to send block to ETCP as ETCP_FRAGMENT
static void pn_send_to_etcp(struct PKTNORM* pn) {
DEBUG_TRACE(DEBUG_CATEGORY_NORMALIZER, "");
if (!pn || !pn->data || pn->data_ptr == 0) return;
// DEBUG_INFO(DEBUG_CATEGORY_NORMALIZER, "pn_send_to_etcp");
// Allocate ETCP_FRAGMENT from io_pool
struct ETCP_FRAGMENT* frag = (struct ETCP_FRAGMENT*)queue_entry_new_from_pool(pn->etcp->io_pool);
if (!frag) {// drop data
DEBUG_ERROR(DEBUG_CATEGORY_NORMALIZER, "send to etcp alloc error");
pn->alloc_errors++;
pn->data_ptr = 0;
return;
}
frag->seq = 0;
frag->timestamp = 0;
frag->ll.dgram = pn->data;
frag->ll.len = pn->data_ptr;
frag->ll.dgram_pool = pn->etcp->instance->data_pool;
frag->ll.memlen = pn->etcp->instance->data_pool->object_size;
DEBUG_INFO(DEBUG_CATEGORY_NORMALIZER, "pn->etcp: size=%d memlen=%d frag_size=%d", frag->ll.len, frag->ll.memlen, pn->frag_size);
if (debug_should_output(DEBUG_LEVEL_DEBUG, DEBUG_CATEGORY_DUMP)) log_dump(DEBUG_LEVEL_DEBUG, DEBUG_CATEGORY_DUMP, "NORM->ETCP", pn->data, frag->ll.len);
queue_data_put(pn->etcp->input_queue, (struct ll_entry*)frag);
// Сбросить структуру (dgram передан во фрагмент, не освобождаем)
pn->data = NULL;
pn->data_ptr = 0;
}
// Internal: Renew sndpart buffer
static void pn_buf_renew(struct PKTNORM* pn) {
DEBUG_TRACE(DEBUG_CATEGORY_NORMALIZER, "");
if (pn->data) {
int remain = pn->data_size - pn->data_ptr;
if (remain < 3) pn_send_to_etcp(pn);
}
if (!pn->data) {
pn->data = memory_pool_alloc(pn->etcp->instance->data_pool);
if (!pn->data) {
pn->alloc_errors++;
DEBUG_ERROR(DEBUG_CATEGORY_NORMALIZER, "memory_pool_alloc failed");
return;
}
int size=pn->etcp->instance->data_pool->object_size;
if (size>pn->frag_size) size=pn->frag_size;
pn->data_size = size;
pn->data_ptr=0;
// DEBUG_INFO(DEBUG_CATEGORY_NORMALIZER, "new bufer size=%d bytes",size);
}
}
// Internal: Process input when etcp->input_queue is ready (empty)
static void etcp_input_ready_cb(struct ll_queue* q, void* arg) {
struct PKTNORM* pn = (struct PKTNORM*)arg;
if (!pn || !pn->etcp) return;
// if (pn->etcp->initialized==0) return;// начинаем обработку очередей только когда готов etcp
DEBUG_TRACE(DEBUG_CATEGORY_NORMALIZER, "before get");
struct ll_entry* in_dgram = queue_data_get(pn->input);
DEBUG_TRACE(DEBUG_CATEGORY_NORMALIZER, "after get");
if (!in_dgram) {
DEBUG_ERROR(DEBUG_CATEGORY_NORMALIZER, "Q EMPTY");
queue_resume_callback(pn->input);
return;
}
if (debug_should_output(DEBUG_LEVEL_DEBUG, DEBUG_CATEGORY_DUMP)) log_dump(DEBUG_LEVEL_DEBUG, DEBUG_CATEGORY_DUMP, "->NORM", in_dgram->dgram, in_dgram->len);
pn_buf_renew(pn);
// DEBUG_INFO(DEBUG_CATEGORY_NORMALIZER, "new pkt hdrpos=%d",pn->data_ptr);
if (!pn->data) goto exit; // Allocation failed
pn->data[pn->data_ptr++] = in_dgram->len & 0xFF;
pn->data[pn->data_ptr++] = (in_dgram->len >> 8) & 0xFF;
uint16_t in_ptr = 0;
while (in_ptr < in_dgram->len) {
int remain = pn->data_size - pn->data_ptr;
int avail = in_dgram->len - in_ptr;
if (avail < remain) remain = avail;
// DEBUG_INFO(DEBUG_CATEGORY_NORMALIZER, "copy %d bytes (in_ptr=%d, out_ptr=%d)",remain, in_ptr, pn->data_ptr);
memcpy(pn->data + pn->data_ptr, in_dgram->dgram + in_ptr, remain);
pn->data_ptr += remain;
in_ptr += remain;
pn_buf_renew(pn);
if (!pn->data) goto exit;
}
exit:
queue_dgram_free(in_dgram);
queue_entry_free(in_dgram);
// Cancel flush timer if active
if (pn->flush_timer) {
uasync_call_soon_cancel(pn->ua, pn->flush_timer);
pn->flush_timer = NULL;
}
// Set flush timer if no more input
if (queue_entry_count(pn->input) == 0) {
pn->flush_timer = uasync_call_soon(pn->ua/*, pn->tx_wait_time*/, pn, pn_flush_cb);
}
queue_resume_callback(pn->input);
}
// Internal: Flush callback on timeout
static void pn_flush_cb(void* arg) {
DEBUG_TRACE(DEBUG_CATEGORY_NORMALIZER, "");
struct PKTNORM* pn = (struct PKTNORM*)arg;
if (!pn) return;
pn->flush_timer = NULL;
pn_send_to_etcp(pn);
}
// Internal: Unpacker callback (assembles fragments into original packets)
static void pn_unpacker_cb(struct ll_queue* q, void* arg) {
DEBUG_TRACE(DEBUG_CATEGORY_NORMALIZER, "");
struct PKTNORM* pn = (struct PKTNORM*)arg;
if (!pn) return;
while (1) {
void* data = queue_data_get(pn->etcp->output_queue);
if (!data) break;
struct ETCP_FRAGMENT* frag = (struct ETCP_FRAGMENT*)data; // Since data is ll_entry*
uint8_t* payload = frag->ll.dgram;
uint16_t len = frag->ll.len;
uint16_t ptr = 0;
if (debug_should_output(DEBUG_LEVEL_DEBUG, DEBUG_CATEGORY_DUMP)) log_dump(DEBUG_LEVEL_DEBUG, DEBUG_CATEGORY_DUMP, "ETCP->NORM", payload, len);
DEBUG_DEBUG(DEBUG_CATEGORY_NORMALIZER, "unpacking fragment len=%d", len);
while (ptr < len) {
if (!pn->recvpart) {
// Need length header for new packet
if (len - ptr < 2) {
pn->logic_errors++;
// Incomplete header, reset
DEBUG_ERROR(DEBUG_CATEGORY_NORMALIZER, "reset state");
// pn_unpacker_reset_state(pn);
etcp_conn_reinit(pn->etcp);
break;
}
uint16_t part_size = payload[ptr] | (payload[ptr + 1] << 8);
// DEBUG_INFO(DEBUG_CATEGORY_NORMALIZER, "new fragment pkt_len=%d (at %d)", part_size, ptr);
ptr += 2;
if (part_size<1 || part_size>16384) {
pn->logic_errors++;
DEBUG_ERROR(DEBUG_CATEGORY_NORMALIZER, "PART_SIZE ERROR!!! %d", part_size);
etcp_conn_reinit(pn->etcp);
break;
}
pn->recvpart = ll_alloc_lldgram(part_size);
if (!pn->recvpart) {
pn->alloc_errors++;
DEBUG_ERROR(DEBUG_CATEGORY_NORMALIZER, "ll_alloc_lldgram failed");
break;
}
pn->recvpart->len = 0;
}
uint16_t rem = pn->recvpart->memlen - pn->recvpart->len;// осталось собрать байт
uint16_t avail = len - ptr;// доступно байт сейчас
uint16_t cp = (rem < avail) ? rem : avail;
DEBUG_DEBUG(DEBUG_CATEGORY_NORMALIZER, "copy: remain=%d avail=%d in_ptr=%d out_ptr=%d", rem, avail, ptr, pn->recvpart->len);
memcpy(pn->recvpart->dgram + pn->recvpart->len, payload + ptr, cp);
pn->recvpart->len += cp;
ptr += cp;
if (pn->recvpart->len == pn->recvpart->memlen) {
uint32_t recv_len = pn->recvpart->len;
DEBUG_DEBUG(DEBUG_CATEGORY_NORMALIZER, "unpacked dgram (size=%d)", recv_len);
if (debug_should_output(DEBUG_LEVEL_DEBUG, DEBUG_CATEGORY_DUMP)) log_dump(DEBUG_LEVEL_DEBUG, DEBUG_CATEGORY_DUMP, "NORM->", pn->recvpart->dgram, recv_len);
queue_data_put(pn->output, pn->recvpart);
pn->out_total_pkts++;
pn->out_total_bytes += recv_len;
pn->recvpart = NULL;
}
}
// Free the fragment - dgram was malloc'd in pn_send_to_etcp
memory_pool_free(pn->etcp->instance->data_pool, frag->ll.dgram);
memory_pool_free(pn->etcp->io_pool, frag);
}
queue_resume_callback(q);
}