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666 lines
23 KiB
666 lines
23 KiB
// test_lwip_tcp.c — lwIP TCP stress tests |
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// ===== 1. Types ===== |
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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 "../src/lwip_tcp/lwip_tcp.h" |
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#include "../src/lwip_tcp/lwip_tcp_priv.h" |
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#include "../lib/u_async.h" |
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#include "../lib/debug_config.h" |
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#include "../lib/mem.h" |
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#define DROP_PCT 0 // 0=fast, 10=stress test with 10% packet loss |
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#define TEST1_ITERS 3 |
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#define TEST2_CYCLES 5 |
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#define TEST2_FLOWS 3 |
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#define TEST1_PORT 10000 |
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#define TEST2_PORT 10010 |
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#define MAX_BLOCK 1500 |
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#define MIN_BLOCK 10 |
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#define IP_A 0x0A000001u |
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#define IP_B 0x0A000002u |
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#define PROGRESS_MS 500 |
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#define PROGRESS_TB (PROGRESS_MS * 10) |
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#define POLL_TB 100 |
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struct conn_state; |
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struct pkt_node { struct pbuf *p; uint32_t s, d; struct pkt_node *n; }; |
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struct tcp_bridge { |
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struct UASYNC *ua; |
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struct lwip_tcp_ctx *a, *b; |
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int drop_pct; |
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struct pkt_node *qa_h, *qa_t; |
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struct pkt_node *qb_h, *qb_t; |
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void *pt; |
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int tn, iter, total; |
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struct conn_state **st; |
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int sc, ad; |
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int64_t t0; // iteration start timestamp (ms) |
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int stuck_cnt; // consecutive no-progress count |
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size_t last_td, last_rd; // previous progress values |
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int dumped; // already dumped trace |
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}; |
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struct conn_state { |
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struct tcp_pcb *pcb; |
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struct tcp_bridge *br; |
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int sd; // 0=server(A), 1=client(B) |
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uint8_t *sbuf, *rbuf; |
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size_t stot, soff, rtot, roff; |
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int sdone, rdone; // sent/received all |
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int err; // error flag |
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void *rt; // retry timer handle |
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uint8_t *ebuf; // echo buffer (server only) |
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size_t elen, ewr, ecap; |
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}; |
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// ===== 2. Bridge ===== |
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static void q_add(struct pkt_node **h, struct pkt_node **t, struct pbuf *p, uint32_t s, uint32_t d) |
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{ |
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struct pkt_node *e = u_malloc(sizeof(*e)); |
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if (!e) { pbuf_free(p); return; } |
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e->p = p; e->s = s; e->d = d; e->n = NULL; |
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if (*t) { (*t)->n = e; *t = e; } else { *h = *t = e; } |
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} |
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static void q_flush(struct lwip_tcp_ctx *ctx, struct pkt_node **h, struct pkt_node **t) |
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{ |
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struct pkt_node *e; |
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while ((e = *h)) { *h = e->n; lwip_tcp_input(ctx, e->p, e->s, e->d); u_free(e); } |
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*t = NULL; |
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} |
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static void bridge_deliver(void *arg) |
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{ |
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struct tcp_bridge *br = arg; |
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q_flush(br->a, &br->qa_h, &br->qa_t); |
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q_flush(br->b, &br->qb_h, &br->qb_t); |
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} |
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static err_t bridge_out(void *arg, struct pbuf *p, uint32_t s, uint32_t d, int to) |
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{ |
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struct tcp_bridge *br = arg; |
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uint16_t ih = (uint16_t)sizeof(struct ip_hdr); |
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uint16_t tl = p->tot_len - ih; |
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if (br->drop_pct > 0 && (rand() % 100) < br->drop_pct) { |
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struct tcp_hdr thdr_buf; |
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uint32_t seq = 0; |
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if (pbuf_copy_partial(p, &thdr_buf, sizeof(thdr_buf), ih) == sizeof(thdr_buf)) |
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seq = ntohl(thdr_buf.seqno); |
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struct lwip_tcp_ctx *ctx = (to == 0) ? br->b : br->a; |
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lwip_tcp_trace_record(ctx, 'L', seq, tl, 0, 0, 0, 0); |
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return LERR_OK; |
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} |
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struct pbuf *c = pbuf_alloc(PBUF_RAW, tl); |
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if (!c) return LERR_OK; |
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pbuf_copy_partial(p, c->payload, tl, ih); |
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if (to == 0) q_add(&br->qa_h, &br->qa_t, c, s, d); |
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else q_add(&br->qb_h, &br->qb_t, c, s, d); |
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return LERR_OK; |
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} |
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static err_t bo_a(void *a, struct pbuf *p, uint32_t s, uint32_t d) { return bridge_out(a, p, s, d, 1); } |
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static err_t bo_b(void *a, struct pbuf *p, uint32_t s, uint32_t d) { return bridge_out(a, p, s, d, 0); } |
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// ===== 3. Helpers ===== |
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static void retry_cb(void *arg); |
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static void check_close(struct conn_state *s) |
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{ |
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if (s->sdone && s->rdone) { tcp_close(s->pcb); } |
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} |
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static int send_block(struct conn_state *s) |
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{ |
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while (s->soff < s->stot) { |
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size_t r = s->stot - s->soff; |
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uint16_t b = (r > MAX_BLOCK) ? MAX_BLOCK : (uint16_t)r; |
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if (b > MIN_BLOCK + 1) b = (uint16_t)(MIN_BLOCK + (uint16_t)(rand() % (b - MIN_BLOCK))); |
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if (b > tcp_sndbuf(s->pcb)) { |
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if (!s->rt) s->rt = uasync_set_timeout(s->br->ua, 20, s, retry_cb, "rt"); |
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return -1; |
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} |
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if (tcp_write(s->pcb, s->sbuf + s->soff, b, TCP_WRITE_FLAG_COPY) != LERR_OK) { |
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if (!s->rt) s->rt = uasync_set_timeout(s->br->ua, 20, s, retry_cb, "rt"); |
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return -1; |
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} |
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s->soff += b; |
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} |
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s->sdone = 1; |
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if (s->rtot == 0) s->rdone = 1; |
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if (s->sdone && s->rdone) check_close(s); |
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return 0; |
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} |
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static void retry_cb(void *arg) |
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{ |
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struct conn_state *s = arg; |
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s->rt = NULL; |
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if (s->err || !s->pcb) return; |
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if (!s->sdone) send_block(s); |
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} |
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static int sent_cb(void *arg, struct tcp_pcb *pcb, uint16_t len) |
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{ |
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struct conn_state *s = arg; |
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(void)pcb; |
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if (s->rt) { uasync_cancel_timeout(s->br->ua, s->rt); s->rt = NULL; } |
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if (s->err) return LERR_OK; |
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if (!s->sdone) send_block(s); |
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// all data sent? close when recv is also done |
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if (s->sdone && s->rdone) check_close(s); |
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return LERR_OK; |
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} |
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static void err_cb(void *arg, int e) |
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{ |
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struct conn_state *s = arg; |
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(void)e; |
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s->err = 1; |
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if (s->rt) { uasync_cancel_timeout(s->br->ua, s->rt); s->rt = NULL; } |
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} |
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static void setup_pcb_server(struct conn_state *s, void *rf) |
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{ |
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tcp_arg(s->pcb, s); |
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tcp_recv(s->pcb, (tcp_recv_fn)rf); |
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tcp_err(s->pcb, (tcp_err_fn)err_cb); |
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tcp_nagle_disable(s->pcb); |
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} |
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static void setup_pcb(struct conn_state *s, void *rf) |
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{ |
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tcp_arg(s->pcb, s); |
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tcp_recv(s->pcb, (tcp_recv_fn)rf); |
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tcp_sent(s->pcb, sent_cb); |
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tcp_err(s->pcb, (tcp_err_fn)err_cb); |
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tcp_nagle_disable(s->pcb); |
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} |
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static char stc(struct conn_state *s) |
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{ |
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if (!s || !s->pcb) return '.'; |
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switch (s->pcb->state) { |
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case SYN_SENT: return 'S'; |
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case SYN_RCVD: return 'R'; |
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case ESTABLISHED: return 'E'; |
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case FIN_WAIT_1: return '1'; |
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case FIN_WAIT_2: return '2'; |
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case CLOSE_WAIT: return 'C'; |
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case CLOSING: return 'G'; |
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case LAST_ACK: return 'A'; |
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case TIME_WAIT: return 'W'; |
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case CLOSED: return 'T'; |
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default: return '?'; |
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} |
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} |
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static void progress_timer(void *arg) |
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{ |
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struct tcp_bridge *br = arg; |
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double el = (double)((int64_t)(get_time_tb() / 10) - br->t0) / 1000.0; |
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int done = 0, err = 0; |
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size_t ts = 0, td = 0, tr = 0, rd = 0; |
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for (int i = 0; i < br->sc; i++) { |
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struct conn_state *c = br->st[i]; |
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if (!c) continue; |
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if (c->err) { err++; done++; } |
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else if (!c->pcb) { done++; } |
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else if (c->pcb->state >= FIN_WAIT_1) { done++; } |
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else if (c->sdone && c->rdone) { done++; } |
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else { ts += c->stot; td += c->soff; tr += c->rtot; rd += c->roff; } |
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} |
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// build per-connection detail line |
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char detail[256] = ""; |
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int di = 0; |
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if (br->sc == 2) { |
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struct conn_state *a = br->st[0], *b = br->st[1]; |
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if (!a) { a = b; b = NULL; } |
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int a_ok = a && a->pcb, b_ok = b && b->pcb; |
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di += snprintf(detail + di, sizeof(detail) - di, " A=[%c", a_ok ? stc(a) : '.'); |
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if (a_ok) di += snprintf(detail + di, sizeof(detail) - di, " sd=%zu/%zu rd=%zu/%zu cw=%u ua=%d", |
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a->soff, a->stot, a->roff, a->rtot, (unsigned)a->pcb->cwnd, a->pcb->unacked ? 1 : 0); |
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di += snprintf(detail + di, sizeof(detail) - di, "]"); |
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di += snprintf(detail + di, sizeof(detail) - di, " B=[%c", b_ok ? stc(b) : '.'); |
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if (b_ok) di += snprintf(detail + di, sizeof(detail) - di, " sd=%zu/%zu rd=%zu/%zu cw=%u ua=%d", |
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b->soff, b->stot, b->roff, b->rtot, (unsigned)b->pcb->cwnd, b->pcb->unacked ? 1 : 0); |
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di += snprintf(detail + di, sizeof(detail) - di, "]"); |
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} else { |
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char st[64]; int si = 0; |
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for (int i = 0; i < br->sc && si < 60; i++) st[si++] = stc(br->st[i]); |
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st[si] = '\0'; |
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di += snprintf(detail + di, sizeof(detail) - di, " flows=%s sd=%zu/%zu rd=%zu/%zu", st, td, ts, rd, tr); |
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} |
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printf(" Test%d #%d/%d | %5.1fs |%s\n", |
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br->tn, br->iter, br->total, el, detail); |
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int stuck = 0; |
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if (done + err >= br->sc) { br->ad = 1; } |
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else if (ts == br->last_td && tr == br->last_rd) { |
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br->stuck_cnt++; |
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if (br->stuck_cnt >= 10 && !br->dumped) { |
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br->dumped = 1; |
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printf("=== STUCK for %.1fs, dumping trace ===\n", (float)br->stuck_cnt * PROGRESS_MS / 1000.0f); |
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printf(" Per-flow state:\n"); |
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for (int j = 0; j < br->sc; j++) { |
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struct conn_state *c = br->st[j]; |
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if (!c) continue; |
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printf(" [%d] %s pcb=%p st=%c so=%zu/%zu ro=%zu/%zu err=%d\n", |
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j, j%2==0?"sv":"cl", (void*)(c->pcb), stc(c), |
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c->soff, c->stot, c->roff, c->rtot, c->err); |
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if (c->pcb) printf(" pcb: lport=%u rport=%u cwnd=%u sndbuf=%u snd_wnd=%u rto=%d rtime=%d\n", |
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c->pcb->local_port, c->pcb->remote_port, c->pcb->cwnd, |
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(unsigned)tcp_sndbuf(c->pcb), c->pcb->snd_wnd, c->pcb->rto, c->pcb->rtime); |
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} |
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lwip_tcp_trace_dump(br->a); |
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lwip_tcp_trace_dump(br->b); |
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lwip_tcp_stats_dump(br->a); |
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lwip_tcp_stats_dump(br->b); |
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// NOTE: no forced exit — let RTO retransmission complete naturally |
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} |
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stuck = 1; |
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} else { |
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br->stuck_cnt = 0; |
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br->last_td = ts; |
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br->last_rd = tr; |
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br->dumped = 0; |
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} |
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if (!stuck || !br->dumped) |
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br->pt = uasync_set_timeout(br->ua, PROGRESS_TB, br, progress_timer, "pg"); |
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} |
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// ===== 4. Test 1: bidirectional exchange ===== |
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static int t1_recv(void *arg, struct tcp_pcb *pcb, struct pbuf *p, int e) |
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{ |
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struct conn_state *s = arg; |
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if (p) { |
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uint16_t l = p->tot_len; |
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if (s->roff + l > s->rtot) { s->err = 1; return LERR_OK; } |
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pbuf_copy_partial(p, s->rbuf + s->roff, l, 0); |
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s->roff += l; |
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tcp_recved(pcb, l); |
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if (s->roff == s->rtot) { s->rdone = 1; check_close(s); } |
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} else { |
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// FIN: close when both sides done |
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s->rdone = 1; |
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check_close(s); |
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} |
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return LERR_OK; |
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} |
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static int t2_client_recv(void *arg, struct tcp_pcb *pcb, struct pbuf *p, int e) |
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{ |
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struct conn_state *s = arg; |
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if (p) { |
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uint16_t l = p->tot_len; |
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if (s->roff + l > s->rtot) { s->err = 1; return LERR_OK; } |
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pbuf_copy_partial(p, s->rbuf + s->roff, l, 0); |
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s->roff += l; |
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tcp_recved(pcb, l); |
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if (s->roff == s->rtot) { s->rdone = 1; check_close(s); } |
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} else { |
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s->rdone = 1; |
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check_close(s); |
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} |
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return LERR_OK; |
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} |
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static int t1_accept(void *arg, struct tcp_pcb *n, int e) |
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{ |
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struct tcp_bridge *br = arg; |
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if (e || !n) return LERR_ABRT; |
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struct conn_state *s = br->st[0]; |
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s->pcb = n; |
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setup_pcb(s, t1_recv); |
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send_block(s); |
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return LERR_OK; |
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} |
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static int t1_connected(void *arg, struct tcp_pcb *pcb, int e) |
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{ |
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(void)pcb; |
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struct conn_state *s = arg; |
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if (e) { s->err = 1; return LERR_ABRT; } |
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send_block(s); |
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return LERR_OK; |
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} |
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static void cleanup_lists(struct tcp_bridge *br) |
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{ |
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struct tcp_pcb *t; |
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while ((t = br->a->tw_pcbs)) { t->errf = NULL; t->callback_arg = NULL; TCP_RMV(&br->a->tw_pcbs, t); tcp_free(t); } |
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while ((t = br->b->tw_pcbs)) { t->errf = NULL; t->callback_arg = NULL; TCP_RMV(&br->b->tw_pcbs, t); tcp_free(t); } |
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while ((t = br->a->active_pcbs)) { t->errf = NULL; t->callback_arg = NULL; TCP_RMV(&br->a->active_pcbs, t); tcp_free(t); } |
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while ((t = br->b->active_pcbs)) { t->errf = NULL; t->callback_arg = NULL; TCP_RMV(&br->b->active_pcbs, t); tcp_free(t); } |
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while ((t = br->a->bound_pcbs)) { t->errf = NULL; t->callback_arg = NULL; TCP_RMV(&br->a->bound_pcbs, t); tcp_free(t); } |
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while ((t = br->b->bound_pcbs)) { t->errf = NULL; t->callback_arg = NULL; TCP_RMV(&br->b->bound_pcbs, t); tcp_free(t); } |
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br->a->active_pcbs = br->a->tw_pcbs = br->a->bound_pcbs = NULL; |
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br->b->active_pcbs = br->b->tw_pcbs = br->b->bound_pcbs = NULL; |
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} |
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static int run_test1(struct tcp_bridge *br) |
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{ |
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br->tn = 1; br->total = TEST1_ITERS; |
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int ok = 1; |
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for (int iter = 0; iter < TEST1_ITERS && ok; iter++) { |
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br->iter = iter + 1; br->ad = 0; |
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br->stuck_cnt = 0; br->last_td = 0; br->last_rd = 0; br->dumped = 0; |
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lwip_tcp_trace_clear(br->a); |
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lwip_tcp_trace_clear(br->b); |
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lwip_tcp_stats_clear(br->a); |
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lwip_tcp_stats_clear(br->b); |
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br->t0 = (int64_t)(get_time_tb() / 10); |
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uint16_t port = htons((uint16_t)(TEST1_PORT + iter)); |
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// create listen PCB with accept callback |
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struct tcp_pcb *lp = tcp_new(br->a); |
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tcp_bind(lp, IP_A, port); |
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lp = tcp_listen(lp); |
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tcp_arg(lp, br); |
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tcp_accept(lp, (tcp_accept_fn)t1_accept); |
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// create client conn_state with send/recv buffers |
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struct conn_state *sv = u_calloc(1, sizeof(*sv)); |
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sv->br = br; sv->sd = 0; |
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struct conn_state *cl = u_calloc(1, sizeof(*cl)); |
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cl->br = br; cl->sd = 1; |
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size_t bs = (size_t)(4096 + rand() % 12288); |
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size_t bc = (size_t)(4096 + rand() % 12288); |
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printf(" Test1 #%d start: port=%d A→B=%zuB B→A=%zuB\n", |
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iter + 1, (int)ntohs(port), bs, bc); |
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sv->stot = bs; sv->sbuf = u_malloc(bs); |
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sv->rtot = bc; sv->rbuf = u_malloc(bc); |
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cl->stot = bc; cl->sbuf = u_malloc(bc); |
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cl->rtot = bs; cl->rbuf = u_malloc(bs); |
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for (size_t i = 0; i < bs; i++) sv->sbuf[i] = (uint8_t)(rand() & 0xFF); |
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for (size_t i = 0; i < bc; i++) cl->sbuf[i] = (uint8_t)(rand() & 0xFF); |
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struct conn_state *states[2] = { sv, cl }; |
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br->st = states; br->sc = 2; |
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br->pt = uasync_set_timeout(br->ua, PROGRESS_TB, br, progress_timer, "pg"); |
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// create client PCB and connect |
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cl->pcb = tcp_new(br->b); |
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tcp_bind(cl->pcb, IP_B, 0); |
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setup_pcb(cl, t1_recv); |
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tcp_connect(cl->pcb, IP_A, port, (tcp_connected_fn)t1_connected); |
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// poll until done |
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while (!br->ad && !sv->err && !cl->err) { |
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uasync_poll(br->ua, POLL_TB); |
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bridge_deliver(br); |
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} |
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uasync_poll(br->ua, POLL_TB); |
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bridge_deliver(br); |
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if (br->pt) { uasync_cancel_timeout(br->ua, br->pt); br->pt = NULL; } |
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if (sv->err || cl->err) { |
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fprintf(stderr, "[FAIL] Test1 iter %d: error\n", iter); |
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ok = 0; |
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} |
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if (sv->soff != bs || cl->roff != bs) { |
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fprintf(stderr, "[FAIL] Test1 iter %d: A→B %zu/%zu\n", iter, cl->roff, bs); |
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ok = 0; |
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} |
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if (cl->soff != bc || sv->roff != bc) { |
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fprintf(stderr, "[FAIL] Test1 iter %d: B→A %zu/%zu\n", iter, sv->roff, bc); |
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ok = 0; |
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} |
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if (ok && memcmp(cl->rbuf, sv->sbuf, bs) != 0) { |
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fprintf(stderr, "[FAIL] Test1 iter %d: A→B mismatch\n", iter); |
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ok = 0; |
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} |
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if (ok && memcmp(sv->rbuf, cl->sbuf, bc) != 0) { |
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fprintf(stderr, "[FAIL] Test1 iter %d: B→A mismatch\n", iter); |
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ok = 0; |
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} |
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if (ok) printf(" Test1 #%d/%d PASS\n", iter + 1, TEST1_ITERS); |
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if (lp) tcp_close(lp); |
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u_free(sv->sbuf); u_free(sv->rbuf); u_free(sv); |
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u_free(cl->sbuf); u_free(cl->rbuf); u_free(cl); |
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cleanup_lists(br); |
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} |
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printf(" Test1: %s\n", ok ? "PASS" : "FAIL"); |
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return ok ? 0 : 1; |
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} |
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|
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// ===== 5. Test 2: client-server echo ===== |
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static int t2_server_recv(void *arg, struct tcp_pcb *pcb, struct pbuf *p, int e) |
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{ |
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struct conn_state *s = arg; |
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if (p) { |
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uint16_t l = p->tot_len; |
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uint8_t *tmp = u_malloc(l); |
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if (!tmp) { tcp_recved(pcb, l); pbuf_free(p); return LERR_OK; } |
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pbuf_copy_partial(p, tmp, l, 0); |
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tcp_recved(pcb, l); |
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pbuf_free(p); |
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if (s->elen + l > s->ecap) { |
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size_t nc = s->ecap ? s->ecap * 2 : 65536; |
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while (nc < s->elen + l) nc *= 2; |
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uint8_t *nb = u_realloc(s->ebuf, nc); |
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if (!nb) { u_free(tmp); return LERR_OK; } |
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s->ebuf = nb; |
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s->ecap = nc; |
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} |
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memcpy(s->ebuf + s->elen, tmp, l); |
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u_free(tmp); |
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s->elen += l; |
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while (s->ewr < s->elen) { |
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size_t rem = s->elen - s->ewr; |
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uint16_t c = (rem > MAX_BLOCK) ? MAX_BLOCK : (uint16_t)rem; |
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if (c > tcp_sndbuf(s->pcb)) break; |
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if (tcp_write(s->pcb, s->ebuf + s->ewr, c, TCP_WRITE_FLAG_COPY) != LERR_OK) break; |
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s->ewr += c; |
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} |
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tcp_output(s->pcb); |
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if (s->ewr == s->elen) { |
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u_free(s->ebuf); |
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s->ebuf = NULL; |
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s->elen = s->ewr = s->ecap = 0; |
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} |
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} else { |
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if (s->elen == 0 && s->pcb) tcp_close(s->pcb); |
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} |
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return LERR_OK; |
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} |
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static int t2_accept(void *arg, struct tcp_pcb *n, int e) |
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{ |
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struct tcp_bridge *br = arg; |
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if (e || !n) return LERR_ABRT; |
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for (int i = 0; i < br->sc; i += 2) { |
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struct conn_state *s = br->st[i]; |
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if (s && !s->pcb) { |
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s->pcb = n; |
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setup_pcb_server(s, t2_server_recv); |
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return LERR_OK; |
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} |
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} |
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return LERR_ABRT; |
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} |
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static int t2_connected(void *arg, struct tcp_pcb *pcb, int e) |
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{ |
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(void)pcb; |
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struct conn_state *s = arg; |
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if (e) { s->err = 1; return LERR_ABRT; } |
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send_block(s); |
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return LERR_OK; |
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} |
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static int run_test2(struct tcp_bridge *br) |
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{ |
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br->tn = 2; br->total = TEST2_CYCLES; |
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int ok = 1; |
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int N = TEST2_FLOWS; |
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// create N listen PCBs once |
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struct tcp_pcb *ls[N]; |
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for (int i = 0; i < N; i++) { |
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struct tcp_pcb *l = tcp_new(br->a); |
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tcp_bind(l, IP_A, htons((uint16_t)(TEST2_PORT + i))); |
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ls[i] = tcp_listen(l); |
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tcp_arg(ls[i], br); |
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tcp_accept(ls[i], (tcp_accept_fn)t2_accept); |
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} |
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for (int cy = 0; cy < TEST2_CYCLES && ok; cy++) { |
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br->iter = cy + 1; br->ad = 0; |
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br->stuck_cnt = 0; br->last_td = 0; br->last_rd = 0; br->dumped = 0; |
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lwip_tcp_trace_clear(br->a); |
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lwip_tcp_trace_clear(br->b); |
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lwip_tcp_stats_clear(br->a); |
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lwip_tcp_stats_clear(br->b); |
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br->t0 = (int64_t)(get_time_tb() / 10); |
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struct conn_state **sv = u_calloc(N, sizeof(*sv)); |
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struct conn_state **cl = u_calloc(N, sizeof(*cl)); |
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struct conn_state **all = u_calloc(2 * N, sizeof(*all)); |
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// create client PCBs and connect |
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for (int i = 0; i < N; i++) { |
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sv[i] = u_calloc(1, sizeof(**sv)); |
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sv[i]->br = br; sv[i]->sd = 0; sv[i]->err = 0; sv[i]->sdone = 0; sv[i]->rdone = 0; |
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all[2 * i] = sv[i]; |
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cl[i] = u_calloc(1, sizeof(**cl)); |
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cl[i]->br = br; cl[i]->sd = 1; |
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cl[i]->err = 0; cl[i]->sdone = 0; cl[i]->rdone = 0; |
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all[2 * i + 1] = cl[i]; |
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cl[i]->pcb = tcp_new(br->b); |
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tcp_bind(cl[i]->pcb, IP_B, 0); |
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setup_pcb(cl[i], t2_client_recv); |
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// generate random data before connect |
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int nb = rand() % 31; |
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if (nb > 0) { |
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size_t tot = 0; |
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for (int b = 0; b < nb; b++) |
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tot += (size_t)(MIN_BLOCK + rand() % (MAX_BLOCK - MIN_BLOCK + 1)); |
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cl[i]->stot = tot; |
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cl[i]->sbuf = u_malloc(tot); |
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cl[i]->rtot = tot; |
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cl[i]->rbuf = u_malloc(tot); |
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for (size_t j = 0; j < tot; j++) |
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cl[i]->sbuf[j] = (uint8_t)(rand() & 0xFF); |
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} |
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} |
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br->st = all; br->sc = 2 * N; |
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br->pt = uasync_set_timeout(br->ua, PROGRESS_TB, br, progress_timer, "pg"); |
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// connect all (triggers handshake via bridge) |
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for (int i = 0; i < N; i++) { |
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uint16_t port = htons((uint16_t)(TEST2_PORT + i)); |
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tcp_connect(cl[i]->pcb, IP_A, port, (tcp_connected_fn)t2_connected); |
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} |
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// poll until all done |
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while (!br->ad) { |
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uasync_poll(br->ua, POLL_TB); |
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bridge_deliver(br); |
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} |
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uasync_poll(br->ua, POLL_TB); |
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bridge_deliver(br); |
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if (br->pt) { uasync_cancel_timeout(br->ua, br->pt); br->pt = NULL; } |
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// verify |
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for (int i = 0; i < N && ok; i++) { |
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if (cl[i]->err) { |
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fprintf(stderr, "[FAIL] Test2 cy %d flow %d: error\n", cy, i); |
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ok = 0; |
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} |
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if (cl[i]->stot > 0 && |
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memcmp(cl[i]->rbuf, cl[i]->sbuf, cl[i]->stot) != 0) { |
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fprintf(stderr, "[FAIL] Test2 cy %d flow %d: mismatch\n", cy, i); |
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ok = 0; |
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} |
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} |
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if (ok && ((cy + 1) % 5 == 0 || cy == TEST2_CYCLES - 1)) |
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printf(" Test2 #%d/%d PASS\n", cy + 1, TEST2_CYCLES); |
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// cleanup |
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for (int i = 0; i < N; i++) { |
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if (cl[i]) { |
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u_free(cl[i]->sbuf); u_free(cl[i]->rbuf); |
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u_free(cl[i]); |
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} |
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if (sv[i]) { |
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u_free(sv[i]->ebuf); |
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u_free(sv[i]); |
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} |
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} |
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cleanup_lists(br); |
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u_free(sv); u_free(cl); u_free(all); |
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} |
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for (int i = 0; i < N; i++) |
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if (ls[i]) tcp_close(ls[i]); |
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if (!ok) { lwip_tcp_stats_dump(br->a); lwip_tcp_stats_dump(br->b); } |
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printf(" Test2: %s\n", ok ? "PASS" : "FAIL"); |
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return ok ? 0 : 1; |
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} |
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// ===== 6. main ===== |
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int main(int argc, char *argv[]) |
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{ |
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unsigned int seed; |
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if (argc >= 2) { |
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seed = (unsigned int)strtoul(argv[1], NULL, 0); |
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} else { |
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seed = (unsigned int)time(NULL); |
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} |
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srand(seed); |
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printf("seed=%u\n", seed); |
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debug_config_init(); |
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debug_set_console_level(DEBUG_LEVEL_NONE); |
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debug_set_category_level(DEBUG_CATEGORY_ALL, DEBUG_LEVEL_ERROR); |
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setlinebuf(stdout); |
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struct UASYNC *ua = uasync_create(); |
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if (!ua) return 1; |
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struct tcp_bridge *br = u_calloc(1, sizeof(*br)); |
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br->ua = ua; br->drop_pct = DROP_PCT; |
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br->a = lwip_tcp_init(ua, bo_a, br); |
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br->b = lwip_tcp_init(ua, bo_b, br); |
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if (!br->a || !br->b) { fprintf(stderr, "[FAIL] init\n"); return 1; } |
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br->a->trace_id = 'A'; br->b->trace_id = 'B'; |
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lwip_tcp_set_timer(br->a, 1, 10, 40); |
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lwip_tcp_set_timer(br->b, 1, 10, 40); |
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int r1 = run_test1(br); |
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// rebuild contexts for Test 2 — fresh memory pools |
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lwip_tcp_destroy(br->a); lwip_tcp_destroy(br->b); |
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br->a = lwip_tcp_init(ua, bo_a, br); |
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br->b = lwip_tcp_init(ua, bo_b, br); |
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if (!br->a || !br->b) { fprintf(stderr, "[FAIL] reinit\n"); return 1; } |
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br->a->trace_id = 'A'; br->b->trace_id = 'B'; |
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lwip_tcp_set_timer(br->a, 1, 10, 40); |
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lwip_tcp_set_timer(br->b, 1, 10, 40); |
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int r2 = run_test2(br); |
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lwip_tcp_destroy(br->a); lwip_tcp_destroy(br->b); |
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uasync_destroy(ua, 0); u_free(br); |
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printf("\n%s\n", (r1 == 0 && r2 == 0) ? "[PASS] test_lwip_tcp" : "[FAIL] test_lwip_tcp"); |
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return (r1 == 0 && r2 == 0) ? 0 : 1; |
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}
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