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/*
** $Id: ltable.c,v 2.32.1.2 2007/12/28 15:32:23 roberto Exp $
** Lua tables (hash)
** See Copyright Notice in lua.h
*/


/*
** Implementation of tables (aka arrays, objects, or hash tables).
** Tables keep its elements in two parts: an array part and a hash part.
** Non-negative integer keys are all candidates to be kept in the array
** part. The actual size of the array is the largest `n' such that at
** least half the slots between 0 and n are in use.
** Hash uses a mix of chained scatter table with Brent's variation.
** A main invariant of these tables is that, if an element is not
** in its main position (i.e. the `original' position that its hash gives
** to it), then the colliding element is in its own main position.
** Hence even when the load factor reaches 100%, performance remains good.
*/

#include <math.h>
#include <string.h>

#define ltable_c
#define LUA_CORE

#include "lua.h"

#include "ldebug.h"
#include "ldo.h"
#include "lgc.h"
#include "lmem.h"
#include "lobject.h"
#include "lstate.h"
#include "ltable.h"


/*
** max size of array part is 2^MAXBITS
*/
#if LUAI_BITSINT > 26
#define MAXBITS		26
#else
#define MAXBITS		(LUAI_BITSINT-2)
#endif

#define MAXASIZE	(1 << MAXBITS)


#define hashpow2(t,n)      (gnode(t, lmod((n), sizenode(t))))
  
#define hashstr(t,str)  hashpow2(t, (str)->tsv.hash)
#define hashboolean(t,p)        hashpow2(t, p)


/*
** for some types, it is better to avoid modulus by power of 2, as
** they tend to have many 2 factors.
*/
#define hashmod(t,n)	(gnode(t, ((n) % ((sizenode(t)-1)|1))))


#define hashpointer(t,p)	hashmod(t, IntPoint(p))


/*
** number of ints inside a lua_Number
*/
#define numints		cast_int(sizeof(lua_Number)/sizeof(int))



#define dummynode		(&dummynode_)

static const Node dummynode_ = {
  {{NULL}, LUA_TNIL},  /* value */
  {{{NULL}, LUA_TNIL, NULL}}  /* key */
};


/*
** hash for lua_Numbers
*/
static Node *hashnum (const Table *t, lua_Number n) {
  unsigned int a[numints];
  int i;
  if (luai_numeq(n, 0))  /* avoid problems with -0 */
    return gnode(t, 0);
  memcpy(a, &n, sizeof(a));
  for (i = 1; i < numints; i++) a[0] += a[i];
  return hashmod(t, a[0]);
}



/*
** returns the `main' position of an element in a table (that is, the index
** of its hash value)
*/
static Node *mainposition (const Table *t, const TValue *key) {
  switch (ttype(key)) {
    case LUA_TNUMBER:
      return hashnum(t, nvalue(key));
    case LUA_TSTRING:
      return hashstr(t, rawtsvalue(key));
    case LUA_TBOOLEAN:
      return hashboolean(t, bvalue(key));
    case LUA_TLIGHTUSERDATA:
      return hashpointer(t, pvalue(key));
    default:
      return hashpointer(t, gcvalue(key));
  }
}


/*
** returns the index for `key' if `key' is an appropriate key to live in
** the array part of the table, -1 otherwise.
*/
static int arrayindex (const TValue *key) {
  if (ttisnumber(key)) {
    lua_Number n = nvalue(key);
    int k;
    lua_number2int(k, n);
    if (luai_numeq(cast_num(k), n))
      return k;
  }
  return -1;  /* `key' did not match some condition */
}


/*
** returns the index of a `key' for table traversals. First goes all
** elements in the array part, then elements in the hash part. The
** beginning of a traversal is signalled by -1.
*/
static int findindex (lua_State *L, Table *t, StkId key) {
  int i;
  if (ttisnil(key)) return -1;  /* first iteration */
  i = arrayindex(key);
  if (0 < i && i <= t->sizearray)  /* is `key' inside array part? */
    return i-1;  /* yes; that's the index (corrected to C) */
  else {
    Node *n = mainposition(t, key);
    do {  /* check whether `key' is somewhere in the chain */
      /* key may be dead already, but it is ok to use it in `next' */
      if (luaO_rawequalObj(key2tval(n), key) ||
            (ttype(gkey(n)) == LUA_TDEADKEY && iscollectable(key) &&
             gcvalue(gkey(n)) == gcvalue(key))) {
        i = cast_int(n - gnode(t, 0));  /* key index in hash table */
        /* hash elements are numbered after array ones */
        return i + t->sizearray;
      }
      else n = gnext(n);
    } while (n);
    luaG_runerror(L, "invalid key to " LUA_QL("next"));  /* key not found */
    return 0;  /* to avoid warnings */
  }
}


int luaH_next (lua_State *L, Table *t, StkId key) {
  int i = findindex(L, t, key);  /* find original element */
  for (i++; i < t->sizearray; i++) {  /* try first array part */
    if (!ttisnil(&t->array[i])) {  /* a non-nil value? */
      setnvalue(key, cast_num(i+1));
      setobj2s(L, key+1, &t->array[i]);
      return 1;
    }
  }
  for (i -= t->sizearray; i < sizenode(t); i++) {  /* then hash part */
    if (!ttisnil(gval(gnode(t, i)))) {  /* a non-nil value? */
      setobj2s(L, key, key2tval(gnode(t, i)));
      setobj2s(L, key+1, gval(gnode(t, i)));
      return 1;
    }
  }
  return 0;  /* no more elements */
}


/*
** {=============================================================
** Rehash
** ==============================================================
*/


static int computesizes (int nums[], int *narray) {
  int i;
  int twotoi;  /* 2^i */
  int a = 0;  /* number of elements smaller than 2^i */
  int na = 0;  /* number of elements to go to array part */
  int n = 0;  /* optimal size for array part */
  for (i = 0, twotoi = 1; twotoi/2 < *narray; i++, twotoi *= 2) {
    if (nums[i] > 0) {
      a += nums[i];
      if (a > twotoi/2) {  /* more than half elements present? */
        n = twotoi;  /* optimal size (till now) */
        na = a;  /* all elements smaller than n will go to array part */
      }
    }
    if (a == *narray) break;  /* all elements already counted */
  }
  *narray = n;
  lua_assert(*narray/2 <= na && na <= *narray);
  return na;
}


static int countint (const TValue *key, int *nums) {
  int k = arrayindex(key);
  if (0 < k && k <= MAXASIZE) {  /* is `key' an appropriate array index? */
    nums[ceillog2(k)]++;  /* count as such */
    return 1;
  }
  else
    return 0;
}


static int numusearray (const Table *t, int *nums) {
  int lg;
  int ttlg;  /* 2^lg */
  int ause = 0;  /* summation of `nums' */
  int i = 1;  /* count to traverse all array keys */
  for (lg=0, ttlg=1; lg<=MAXBITS; lg++, ttlg*=2) {  /* for each slice */
    int lc = 0;  /* counter */
    int lim = ttlg;
    if (lim > t->sizearray) {
      lim = t->sizearray;  /* adjust upper limit */
      if (i > lim)
        break;  /* no more elements to count */
    }
    /* count elements in range (2^(lg-1), 2^lg] */
    for (; i <= lim; i++) {
      if (!ttisnil(&t->array[i-1]))
        lc++;
    }
    nums[lg] += lc;
    ause += lc;
  }
  return ause;
}


static int numusehash (const Table *t, int *nums, int *pnasize) {
  int totaluse = 0;  /* total number of elements */
  int ause = 0;  /* summation of `nums' */
  int i = sizenode(t);
  while (i--) {
    Node *n = &t->node[i];
    if (!ttisnil(gval(n))) {
      ause += countint(key2tval(n), nums);
      totaluse++;
    }
  }
  *pnasize += ause;
  return totaluse;
}


static void setarrayvector (lua_State *L, Table *t, int size) {
  int i;
  luaM_reallocvector(L, t->array, t->sizearray, size, TValue);
  for (i=t->sizearray; i<size; i++)
     setnilvalue(&t->array[i]);
  t->sizearray = size;
}


static void setnodevector (lua_State *L, Table *t, int size) {
  int lsize;
  if (size == 0) {  /* no elements to hash part? */
    t->node = cast(Node *, dummynode);  /* use common `dummynode' */
    lsize = 0;
  }
  else {
    int i;
    lsize = ceillog2(size);
    if (lsize > MAXBITS)
      luaG_runerror(L, "table overflow");
    size = twoto(lsize);
    t->node = luaM_newvector(L, size, Node);
    for (i=0; i<size; i++) {
      Node *n = gnode(t, i);
      gnext(n) = NULL;
      setnilvalue(gkey(n));
      setnilvalue(gval(n));
    }
  }
  t->lsizenode = cast_byte(lsize);
  t->lastfree = gnode(t, size);  /* all positions are free */
}


static void resize (lua_State *L, Table *t, int nasize, int nhsize) {
  int i;
  int oldasize = t->sizearray;
  int oldhsize = t->lsizenode;
  Node *nold = t->node;  /* save old hash ... */
  if (nasize > oldasize)  /* array part must grow? */
    setarrayvector(L, t, nasize);
  /* create new hash part with appropriate size */
  setnodevector(L, t, nhsize);  
  if (nasize < oldasize) {  /* array part must shrink? */
    t->sizearray = nasize;
    /* re-insert elements from vanishing slice */
    for (i=nasize; i<oldasize; i++) {
      if (!ttisnil(&t->array[i]))
        setobjt2t(L, luaH_setnum(L, t, i+1), &t->array[i]);
    }
    /* shrink array */
    luaM_reallocvector(L, t->array, oldasize, nasize, TValue);
  }
  /* re-insert elements from hash part */
  for (i = twoto(oldhsize) - 1; i >= 0; i--) {
    Node *old = nold+i;
    if (!ttisnil(gval(old)))
      setobjt2t(L, luaH_set(L, t, key2tval(old)), gval(old));
  }
  if (nold != dummynode)
    luaM_freearray(L, nold, twoto(oldhsize), Node);  /* free old array */
}


void luaH_resizearray (lua_State *L, Table *t, int nasize) {
  int nsize = (t->node == dummynode) ? 0 : sizenode(t);
  resize(L, t, nasize, nsize);
}


static void rehash (lua_State *L, Table *t, const TValue *ek) {
  int nasize, na;
  int nums[MAXBITS+1];  /* nums[i] = number of keys between 2^(i-1) and 2^i */
  int i;
  int totaluse;
  for (i=0; i<=MAXBITS; i++) nums[i] = 0;  /* reset counts */
  nasize = numusearray(t, nums);  /* count keys in array part */
  totaluse = nasize;  /* all those keys are integer keys */
  totaluse += numusehash(t, nums, &nasize);  /* count keys in hash part */
  /* count extra key */
  nasize += countint(ek, nums);
  totaluse++;
  /* compute new size for array part */
  na = computesizes(nums, &nasize);
  /* resize the table to new computed sizes */
  resize(L, t, nasize, totaluse - na);
}



/*
** }=============================================================
*/


Table *luaH_new (lua_State *L, int narray, int nhash) {
  Table *t = luaM_new(L, Table);
  luaC_link(L, obj2gco(t), LUA_TTABLE);
  t->metatable = NULL;
  t->flags = cast_byte(~0);
  /* temporary values (kept only if some malloc fails) */
  t->array = NULL;
  t->sizearray = 0;
  t->lsizenode = 0;
  t->node = cast(Node *, dummynode);
  setarrayvector(L, t, narray);
  setnodevector(L, t, nhash);
  return t;
}


void luaH_free (lua_State *L, Table *t) {
  if (t->node != dummynode)
    luaM_freearray(L, t->node, sizenode(t), Node);
  luaM_freearray(L, t->array, t->sizearray, TValue);
  luaM_free(L, t);
}


static Node *getfreepos (Table *t) {
  while (t->lastfree-- > t->node) {
    if (ttisnil(gkey(t->lastfree)))
      return t->lastfree;
  }
  return NULL;  /* could not find a free place */
}



/*
** inserts a new key into a hash table; first, check whether key's main 
** position is free. If not, check whether colliding node is in its main 
** position or not: if it is not, move colliding node to an empty place and 
** put new key in its main position; otherwise (colliding node is in its main 
** position), new key goes to an empty position. 
*/
static TValue *newkey (lua_State *L, Table *t, const TValue *key) {
  Node *mp = mainposition(t, key);
  if (!ttisnil(gval(mp)) || mp == dummynode) {
    Node *othern;
    Node *n = getfreepos(t);  /* get a free place */
    if (n == NULL) {  /* cannot find a free place? */
      rehash(L, t, key);  /* grow table */
      return luaH_set(L, t, key);  /* re-insert key into grown table */
    }
    lua_assert(n != dummynode);
    othern = mainposition(t, key2tval(mp));
    if (othern != mp) {  /* is colliding node out of its main position? */
      /* yes; move colliding node into free position */
      while (gnext(othern) != mp) othern = gnext(othern);  /* find previous */
      gnext(othern) = n;  /* redo the chain with `n' in place of `mp' */
      *n = *mp;  /* copy colliding node into free pos. (mp->next also goes) */
      gnext(mp) = NULL;  /* now `mp' is free */
      setnilvalue(gval(mp));
    }
    else {  /* colliding node is in its own main position */
      /* new node will go into free position */
      gnext(n) = gnext(mp);  /* chain new position */
      gnext(mp) = n;
      mp = n;
    }
  }
  gkey(mp)->value = key->value; gkey(mp)->tt = key->tt;
  luaC_barriert(L, t, key);
  lua_assert(ttisnil(gval(mp)));
  return gval(mp);
}


/*
** search function for integers
*/
const TValue *luaH_getnum (Table *t, int key) {
  /* (1 <= key && key <= t->sizearray) */
  if (cast(unsigned int, key-1) < cast(unsigned int, t->sizearray))
    return &t->array[key-1];
  else {
    lua_Number nk = cast_num(key);
    Node *n = hashnum(t, nk);
    do {  /* check whether `key' is somewhere in the chain */
      if (ttisnumber(gkey(n)) && luai_numeq(nvalue(gkey(n)), nk))
        return gval(n);  /* that's it */
      else n = gnext(n);
    } while (n);
    return luaO_nilobject;
  }
}


/*
** search function for strings
*/
const TValue *luaH_getstr (Table *t, TString *key) {
  Node *n = hashstr(t, key);
  do {  /* check whether `key' is somewhere in the chain */
    if (ttisstring(gkey(n)) && rawtsvalue(gkey(n)) == key)
      return gval(n);  /* that's it */
    else n = gnext(n);
  } while (n);
  return luaO_nilobject;
}


/*
** main search function
*/
const TValue *luaH_get (Table *t, const TValue *key) {
  switch (ttype(key)) {
    case LUA_TNIL: return luaO_nilobject;
    case LUA_TSTRING: return luaH_getstr(t, rawtsvalue(key));
    case LUA_TNUMBER: {
      int k;
      lua_Number n = nvalue(key);
      lua_number2int(k, n);
      if (luai_numeq(cast_num(k), nvalue(key))) /* index is int? */
        return luaH_getnum(t, k);  /* use specialized version */
      /* else go through */
    }
    default: {
      Node *n = mainposition(t, key);
      do {  /* check whether `key' is somewhere in the chain */
        if (luaO_rawequalObj(key2tval(n), key))
          return gval(n);  /* that's it */
        else n = gnext(n);
      } while (n);
      return luaO_nilobject;
    }
  }
}


TValue *luaH_set (lua_State *L, Table *t, const TValue *key) {
  const TValue *p = luaH_get(t, key);
  t->flags = 0;
  if (p != luaO_nilobject)
    return cast(TValue *, p);
  else {
    if (ttisnil(key)) luaG_runerror(L, "table index is nil");
    else if (ttisnumber(key) && luai_numisnan(nvalue(key)))
      luaG_runerror(L, "table index is NaN");
    return newkey(L, t, key);
  }
}


TValue *luaH_setnum (lua_State *L, Table *t, int key) {
  const TValue *p = luaH_getnum(t, key);
  if (p != luaO_nilobject)
    return cast(TValue *, p);
  else {
    TValue k;
    setnvalue(&k, cast_num(key));
    return newkey(L, t, &k);
  }
}


TValue *luaH_setstr (lua_State *L, Table *t, TString *key) {
  const TValue *p = luaH_getstr(t, key);
  if (p != luaO_nilobject)
    return cast(TValue *, p);
  else {
    TValue k;
    setsvalue(L, &k, key);
    return newkey(L, t, &k);
  }
}


static int unbound_search (Table *t, unsigned int j) {
  unsigned int i = j;  /* i is zero or a present index */
  j++;
  /* find `i' and `j' such that i is present and j is not */
  while (!ttisnil(luaH_getnum(t, j))) {
    i = j;
    j *= 2;
    if (j > cast(unsigned int, MAX_INT)) {  /* overflow? */
      /* table was built with bad purposes: resort to linear search */
      i = 1;
      while (!ttisnil(luaH_getnum(t, i))) i++;
      return i - 1;
    }
  }
  /* now do a binary search between them */
  while (j - i > 1) {
    unsigned int m = (i+j)/2;
    if (ttisnil(luaH_getnum(t, m))) j = m;
    else i = m;
  }
  return i;
}


/*
** Try to find a boundary in table `t'. A `boundary' is an integer index
** such that t[i] is non-nil and t[i+1] is nil (and 0 if t[1] is nil).
*/
int luaH_getn (Table *t) {
  unsigned int j = t->sizearray;
  if (j > 0 && ttisnil(&t->array[j - 1])) {
    /* there is a boundary in the array part: (binary) search for it */
    unsigned int i = 0;
    while (j - i > 1) {
      unsigned int m = (i+j)/2;
      if (ttisnil(&t->array[m - 1])) j = m;
      else i = m;
    }
    return i;
  }
  /* else must find a boundary in hash part */
  else if (t->node == dummynode)  /* hash part is empty? */
    return j;  /* that is easy... */
  else return unbound_search(t, j);
}



#if defined(LUA_DEBUG)

Node *luaH_mainposition (const Table *t, const TValue *key) {
  return mainposition(t, key);
}

int luaH_isdummy (Node *n) { return n == dummynode; }

#endif
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/*
Minetest
Copyright (C) 2013 celeron55, Perttu Ahola <celeron55@gmail.com>

This program is free software; you can redistribute it and/or modify
it under the terms of the GNU Lesser General Public License as published by
the Free Software Foundation; either version 2.1 of the License, or
(at your option) any later version.

This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
GNU Lesser General Public License for more details.

You should have received a copy of the GNU Lesser General Public License along
with this program; if not, write to the Free Software Foundation, Inc.,
51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA.
*/

#include <iomanip>
#include <errno.h>
#include "connection.h"
#include "main.h"
#include "serialization.h"
#include "log.h"
#include "porting.h"
#include "util/serialize.h"
#include "util/numeric.h"
#include "util/string.h"
#include "settings.h"
#include "profiler.h"
#include "main.h" // for profiling

namespace con
{

/******************************************************************************/
/* defines used for debugging and profiling                                   */
/******************************************************************************/
#ifdef NDEBUG
#define LOG(a) a
#define PROFILE(a)
#undef DEBUG_CONNECTION_KBPS
#else
/* this mutex is used to achieve log message consistency */
JMutex log_message_mutex;
#define LOG(a)                                                                 \
	{                                                                          \
	JMutexAutoLock loglock(log_message_mutex);                                 \
	a;                                                                         \
	}
#define PROFILE(a) a
//#define DEBUG_CONNECTION_KBPS
#undef DEBUG_CONNECTION_KBPS
#endif


static inline float CALC_DTIME(unsigned int lasttime, unsigned int curtime) {
	float value = ( curtime - lasttime) / 1000.0;
	return MYMAX(MYMIN(value,0.1),0.0);
}

/* maximum window size to use, 0xFFFF is theoretical maximum  don't think about
 * touching it, the less you're away from it the more likely data corruption
 * will occur
 */
#define MAX_RELIABLE_WINDOW_SIZE 0x8000
 /* starting value for window size */
#define MIN_RELIABLE_WINDOW_SIZE 0x40

#define MAX_UDP_PEERS 65535

#define PING_TIMEOUT 5.0

static u16 readPeerId(u8 *packetdata)
{
	return readU16(&packetdata[4]);
}
static u8 readChannel(u8 *packetdata)
{
	return readU8(&packetdata[6]);
}

BufferedPacket makePacket(Address &address, u8 *data, u32 datasize,
		u32 protocol_id, u16 sender_peer_id, u8 channel)
{
	u32 packet_size = datasize + BASE_HEADER_SIZE;
	BufferedPacket p(packet_size);
	p.address = address;

	writeU32(&p.data[0], protocol_id);
	writeU16(&p.data[4], sender_peer_id);
	writeU8(&p.data[6], channel);

	memcpy(&p.data[BASE_HEADER_SIZE], data, datasize);

	return p;
}

BufferedPacket makePacket(Address &address, SharedBuffer<u8> &data,
		u32 protocol_id, u16 sender_peer_id, u8 channel)
{
	return makePacket(address, *data, data.getSize(),
			protocol_id, sender_peer_id, channel);
}

SharedBuffer<u8> makeOriginalPacket(
		SharedBuffer<u8> data)
{
	u32 header_size = 1;
	u32 packet_size = data.getSize() + header_size;
	SharedBuffer<u8> b(packet_size);

	writeU8(&(b[0]), TYPE_ORIGINAL);
	if (data.getSize() > 0) {
		memcpy(&(b[header_size]), *data, data.getSize());
	}
	return b;
}

std::list<SharedBuffer<u8> > makeSplitPacket(
		SharedBuffer<u8> data,
		u32 chunksize_max,
		u16 seqnum)
{
	// Chunk packets, containing the TYPE_SPLIT header
	std::list<SharedBuffer<u8> > chunks;

	u32 chunk_header_size = 7;
	u32 maximum_data_size = chunksize_max - chunk_header_size;
	u32 start = 0;
	u32 end = 0;
	u32 chunk_num = 0;
	u16 chunk_count = 0;
	do{
		end = start + maximum_data_size - 1;
		if(end > data.getSize() - 1)
			end = data.getSize() - 1;

		u32 payload_size = end - start + 1;
		u32 packet_size = chunk_header_size + payload_size;

		SharedBuffer<u8> chunk(packet_size);

		writeU8(&chunk[0], TYPE_SPLIT);
		writeU16(&chunk[1], seqnum);
		// [3] u16 chunk_count is written at next stage
		writeU16(&chunk[5], chunk_num);
		memcpy(&chunk[chunk_header_size], &data[start], payload_size);

		chunks.push_back(chunk);
		chunk_count++;

		start = end + 1;
		chunk_num++;
	}
	while(end != data.getSize() - 1);

	for(std::list<SharedBuffer<u8> >::iterator i = chunks.begin();
		i != chunks.end(); ++i)
	{
		// Write chunk_count
		writeU16(&((*i)[3]), chunk_count);
	}

	return chunks;
}

std::list<SharedBuffer<u8> > makeAutoSplitPacket(
		SharedBuffer<u8> data,
		u32 chunksize_max,
		u16 &split_seqnum)
{
	u32 original_header_size = 1;
	std::list<SharedBuffer<u8> > list;
	if(data.getSize() + original_header_size > chunksize_max)
	{
		list = makeSplitPacket(data, chunksize_max, split_seqnum);
		split_seqnum++;
		return list;
	}
	else
	{
		list.push_back(makeOriginalPacket(data));
	}
	return list;
}

SharedBuffer<u8> makeReliablePacket(
		SharedBuffer<u8> data,
		u16 seqnum)
{
	u32 header_size = 3;
	u32 packet_size = data.getSize() + header_size;
	SharedBuffer<u8> b(packet_size);

	writeU8(&b[0], TYPE_RELIABLE);
	writeU16(&b[1], seqnum);

	memcpy(&b[header_size], *data, data.getSize());

	return b;
}

/*
	ReliablePacketBuffer
*/

ReliablePacketBuffer::ReliablePacketBuffer(): m_list_size(0) {}

void ReliablePacketBuffer::print()
{
	JMutexAutoLock listlock(m_list_mutex);
	LOG(dout_con<<"Dump of ReliablePacketBuffer:" << std::endl);
	unsigned int index = 0;
	for(std::list<BufferedPacket>::iterator i = m_list.begin();
		i != m_list.end();
		++i)
	{
		u16 s = readU16(&(i->data[BASE_HEADER_SIZE+1]));
		LOG(dout_con<<index<< ":" << s << std::endl);
		index++;
	}
}
bool ReliablePacketBuffer::empty()
{
	JMutexAutoLock listlock(m_list_mutex);
	return m_list.empty();
}

u32 ReliablePacketBuffer::size()
{
	return m_list_size;
}

bool ReliablePacketBuffer::containsPacket(u16 seqnum)
{
	return !(findPacket(seqnum) == m_list.end());
}

RPBSearchResult ReliablePacketBuffer::findPacket(u16 seqnum)
{
	std::list<BufferedPacket>::iterator i = m_list.begin();
	for(; i != m_list.end(); ++i)
	{
		u16 s = readU16(&(i->data[BASE_HEADER_SIZE+1]));
		/*dout_con<<"findPacket(): finding seqnum="<<seqnum
				<<", comparing to s="<<s<<std::endl;*/
		if(s == seqnum)
			break;
	}
	return i;
}
RPBSearchResult ReliablePacketBuffer::notFound()
{
	return m_list.end();
}
bool ReliablePacketBuffer::getFirstSeqnum(u16& result)
{
	JMutexAutoLock listlock(m_list_mutex);
	if(m_list.empty())
		return false;
	BufferedPacket p = *m_list.begin();
	result = readU16(&p.data[BASE_HEADER_SIZE+1]);
	return true;
}

BufferedPacket ReliablePacketBuffer::popFirst()
{
	JMutexAutoLock listlock(m_list_mutex);
	if(m_list.empty())
		throw NotFoundException("Buffer is empty");
	BufferedPacket p = *m_list.begin();
	m_list.erase(m_list.begin());
	--m_list_size;

	if (m_list_size == 0) {
		m_oldest_non_answered_ack = 0;
	} else {
		m_oldest_non_answered_ack =
				readU16(&(*m_list.begin()).data[BASE_HEADER_SIZE+1]);
	}
	return p;
}
BufferedPacket ReliablePacketBuffer::popSeqnum(u16 seqnum)
{
	JMutexAutoLock listlock(m_list_mutex);
	RPBSearchResult r = findPacket(seqnum);
	if(r == notFound()){
		LOG(dout_con<<"Sequence number: " << seqnum
				<< " not found in reliable buffer"<<std::endl);
		throw NotFoundException("seqnum not found in buffer");
	}
	BufferedPacket p = *r;


	RPBSearchResult next = r;
	next++;
	if (next != notFound()) {
		u16 s = readU16(&(next->data[BASE_HEADER_SIZE+1]));
		m_oldest_non_answered_ack = s;
	}

	m_list.erase(r);
	--m_list_size;

	if (m_list_size == 0)
	{ m_oldest_non_answered_ack = 0; }
	else
	{ m_oldest_non_answered_ack = readU16(&(*m_list.begin()).data[BASE_HEADER_SIZE+1]);	}
	return p;
}
void ReliablePacketBuffer::insert(BufferedPacket &p,u16 next_expected)
{
	JMutexAutoLock listlock(m_list_mutex);
	assert(p.data.getSize() >= BASE_HEADER_SIZE+3);
	u8 type = readU8(&p.data[BASE_HEADER_SIZE+0]);
	assert(type == TYPE_RELIABLE);
	u16 seqnum = readU16(&p.data[BASE_HEADER_SIZE+1]);

	assert(seqnum_in_window(seqnum,next_expected,MAX_RELIABLE_WINDOW_SIZE));
	assert(seqnum != next_expected);

	++m_list_size;
	assert(m_list_size <= SEQNUM_MAX+1);

	// Find the right place for the packet and insert it there
	// If list is empty, just add it
	if(m_list.empty())
	{
		m_list.push_back(p);
		m_oldest_non_answered_ack = seqnum;
		// Done.
		return;
	}

	// Otherwise find the right place
	std::list<BufferedPacket>::iterator i = m_list.begin();
	// Find the first packet in the list which has a higher seqnum
	u16 s = readU16(&(i->data[BASE_HEADER_SIZE+1]));

	/* case seqnum is smaller then next_expected seqnum */
	/* this is true e.g. on wrap around */
	if (seqnum < next_expected) {
		while(((s < seqnum) || (s >= next_expected)) && (i != m_list.end())) {
			i++;
			if (i != m_list.end())
				s = readU16(&(i->data[BASE_HEADER_SIZE+1]));
		}
	}
	/* non wrap around case (at least for incoming and next_expected */
	else
	{
		while(((s < seqnum) && (s >= next_expected)) && (i != m_list.end())) {
			i++;
			if (i != m_list.end())
				s = readU16(&(i->data[BASE_HEADER_SIZE+1]));
		}
	}

	if (s == seqnum) {
		if (
			(readU16(&(i->data[BASE_HEADER_SIZE+1])) != seqnum) ||
			(i->data.getSize() != p.data.getSize()) ||
			(i->address != p.address)
			)
		{
			/* if this happens your maximum transfer window may be to big */
			fprintf(stderr,
					"Duplicated seqnum %d non matching packet detected:\n",
					seqnum);
			fprintf(stderr, "Old: seqnum: %05d size: %04d, address: %s\n",
					readU16(&(i->data[BASE_HEADER_SIZE+1])),i->data.getSize(),
					i->address.serializeString().c_str());
			fprintf(stderr, "New: seqnum: %05d size: %04d, address: %s\n",
					readU16(&(p.data[BASE_HEADER_SIZE+1])),p.data.getSize(),
					p.address.serializeString().c_str());
			throw IncomingDataCorruption("duplicated packet isn't same as original one");
		}

		assert(readU16(&(i->data[BASE_HEADER_SIZE+1])) == seqnum);
		assert(i->data.getSize() == p.data.getSize());
		assert(i->address == p.address);

		/* nothing to do this seems to be a resent packet */
		/* for paranoia reason data should be compared */
		--m_list_size;
	}
	/* insert or push back */
	else if (i != m_list.end()) {
		m_list.insert(i, p);
	}
	else {
		m_list.push_back(p);
	}

	/* update last packet number */
	m_oldest_non_answered_ack = readU16(&(*m_list.begin()).data[BASE_HEADER_SIZE+1]);
}

void ReliablePacketBuffer::incrementTimeouts(float dtime)
{
	JMutexAutoLock listlock(m_list_mutex);
	for(std::list<BufferedPacket>::iterator i = m_list.begin();
		i != m_list.end(); ++i)
	{
		i->time += dtime;
		i->totaltime += dtime;
	}
}

std::list<BufferedPacket> ReliablePacketBuffer::getTimedOuts(float timeout,
													unsigned int max_packets)
{
	JMutexAutoLock listlock(m_list_mutex);
	std::list<BufferedPacket> timed_outs;
	for(std::list<BufferedPacket>::iterator i = m_list.begin();
		i != m_list.end(); ++i)
	{
		if(i->time >= timeout) {
			timed_outs.push_back(*i);

			//this packet will be sent right afterwards reset timeout here
			i->time = 0.0;
			if (timed_outs.size() >= max_packets)
				break;
		}
	}
	return timed_outs;
}

/*
	IncomingSplitBuffer
*/

IncomingSplitBuffer::~IncomingSplitBuffer()
{
	JMutexAutoLock listlock(m_map_mutex);
	for(std::map<u16, IncomingSplitPacket*>::iterator i = m_buf.begin();
		i != m_buf.end(); ++i)
	{
		delete i->second;
	}
}
/*
	This will throw a GotSplitPacketException when a full
	split packet is constructed.
*/
SharedBuffer<u8> IncomingSplitBuffer::insert(BufferedPacket &p, bool reliable)
{
	JMutexAutoLock listlock(m_map_mutex);
	u32 headersize = BASE_HEADER_SIZE + 7;
	assert(p.data.getSize() >= headersize);
	u8 type = readU8(&p.data[BASE_HEADER_SIZE+0]);
	assert(type == TYPE_SPLIT);
	u16 seqnum = readU16(&p.data[BASE_HEADER_SIZE+1]);
	u16 chunk_count = readU16(&p.data[BASE_HEADER_SIZE+3]);
	u16 chunk_num = readU16(&p.data[BASE_HEADER_SIZE+5]);

	// Add if doesn't exist
	if(m_buf.find(seqnum) == m_buf.end())
	{
		IncomingSplitPacket *sp = new IncomingSplitPacket();
		sp->chunk_count = chunk_count;
		sp->reliable = reliable;
		m_buf[seqnum] = sp;
	}

	IncomingSplitPacket *sp = m_buf[seqnum];

	// TODO: These errors should be thrown or something? Dunno.
	if(chunk_count != sp->chunk_count)
		LOG(derr_con<<"Connection: WARNING: chunk_count="<<chunk_count
				<<" != sp->chunk_count="<<sp->chunk_count
				<<std::endl);
	if(reliable != sp->reliable)
		LOG(derr_con<<"Connection: WARNING: reliable="<<reliable
				<<" != sp->reliable="<<sp->reliable
				<<std::endl);

	// If chunk already exists, ignore it.
	// Sometimes two identical packets may arrive when there is network
	// lag and the server re-sends stuff.
	if(sp->chunks.find(chunk_num) != sp->chunks.end())
		return SharedBuffer<u8>();

	// Cut chunk data out of packet
	u32 chunkdatasize = p.data.getSize() - headersize;
	SharedBuffer<u8> chunkdata(chunkdatasize);
	memcpy(*chunkdata, &(p.data[headersize]), chunkdatasize);

	// Set chunk data in buffer
	sp->chunks[chunk_num] = chunkdata;

	// If not all chunks are received, return empty buffer
	if(sp->allReceived() == false)
		return SharedBuffer<u8>();

	// Calculate total size
	u32 totalsize = 0;
	for(std::map<u16, SharedBuffer<u8> >::iterator i = sp->chunks.begin();
		i != sp->chunks.end(); ++i)
	{
		totalsize += i->second.getSize();
	}

	SharedBuffer<u8> fulldata(totalsize);

	// Copy chunks to data buffer
	u32 start = 0;
	for(u32 chunk_i=0; chunk_i<sp->chunk_count;
			chunk_i++)
	{
		SharedBuffer<u8> buf = sp->chunks[chunk_i];
		u16 chunkdatasize = buf.getSize();
		memcpy(&fulldata[start], *buf, chunkdatasize);
		start += chunkdatasize;;
	}

	// Remove sp from buffer
	m_buf.erase(seqnum);
	delete sp;

	return fulldata;
}
void IncomingSplitBuffer::removeUnreliableTimedOuts(float dtime, float timeout)
{
	std::list<u16> remove_queue;
	{
		JMutexAutoLock listlock(m_map_mutex);
		for(std::map<u16, IncomingSplitPacket*>::iterator i = m_buf.begin();
			i != m_buf.end(); ++i)
		{
			IncomingSplitPacket *p = i->second;
			// Reliable ones are not removed by timeout
			if(p->reliable == true)
				continue;
			p->time += dtime;
			if(p->time >= timeout)
				remove_queue.push_back(i->first);
		}
	}
	for(std::list<u16>::iterator j = remove_queue.begin();
		j != remove_queue.end(); ++j)
	{
		JMutexAutoLock listlock(m_map_mutex);
		LOG(dout_con<<"NOTE: Removing timed out unreliable split packet"<<std::endl);
		delete m_buf[*j];
		m_buf.erase(*j);
	}
}

/*
	Channel
*/

Channel::Channel() :
		window_size(MIN_RELIABLE_WINDOW_SIZE),
		next_incoming_seqnum(SEQNUM_INITIAL),
		next_outgoing_seqnum(SEQNUM_INITIAL),
		next_outgoing_split_seqnum(SEQNUM_INITIAL),
		current_packet_loss(0),
		current_packet_too_late(0),
		current_packet_successfull(0),
		packet_loss_counter(0),
		current_bytes_transfered(0),
		current_bytes_received(0),
		current_bytes_lost(0),
		max_kbps(0.0),
		cur_kbps(0.0),
		avg_kbps(0.0),
		max_incoming_kbps(0.0),
		cur_incoming_kbps(0.0),
		avg_incoming_kbps(0.0),
		max_kbps_lost(0.0),
		cur_kbps_lost(0.0),
		avg_kbps_lost(0.0),
		bpm_counter(0.0),
		rate_samples(0)
{
}

Channel::~Channel()
{
}

u16 Channel::readNextIncomingSeqNum()
{
	JMutexAutoLock internal(m_internal_mutex);
	return next_incoming_seqnum;
}

u16 Channel::incNextIncomingSeqNum()
{
	JMutexAutoLock internal(m_internal_mutex);
	u16 retval = next_incoming_seqnum;
	next_incoming_seqnum++;
	return retval;
}

u16 Channel::readNextSplitSeqNum()
{
	JMutexAutoLock internal(m_internal_mutex);
	return next_outgoing_split_seqnum;
}
void Channel::setNextSplitSeqNum(u16 seqnum)
{
	JMutexAutoLock internal(m_internal_mutex);
	next_outgoing_split_seqnum = seqnum;
}

u16 Channel::getOutgoingSequenceNumber(bool& successfull)
{
	JMutexAutoLock internal(m_internal_mutex);
	u16 retval = next_outgoing_seqnum;
	u16 lowest_unacked_seqnumber;

	/* shortcut if there ain't any packet in outgoing list */
	if (outgoing_reliables_sent.empty())
	{
		next_outgoing_seqnum++;
		return retval;
	}

	if (outgoing_reliables_sent.getFirstSeqnum(lowest_unacked_seqnumber))
	{
		if (lowest_unacked_seqnumber < next_outgoing_seqnum) {
			// ugly cast but this one is required in order to tell compiler we
			// know about difference of two unsigned may be negative in general
			// but we already made sure it won't happen in this case
			if (((u16)(next_outgoing_seqnum - lowest_unacked_seqnumber)) > window_size) {
				successfull = false;
				return 0;
			}
		}
		else {
			// ugly cast but this one is required in order to tell compiler we
			// know about difference of two unsigned may be negative in general
			// but we already made sure it won't happen in this case
			if ((next_outgoing_seqnum + (u16)(SEQNUM_MAX - lowest_unacked_seqnumber)) >
				window_size) {
				successfull = false;
				return 0;
			}
		}
	}

	next_outgoing_seqnum++;
	return retval;
}

u16 Channel::readOutgoingSequenceNumber()
{
	JMutexAutoLock internal(m_internal_mutex);
	return next_outgoing_seqnum;
}

bool Channel::putBackSequenceNumber(u16 seqnum)
{
	if (((seqnum + 1) % (SEQNUM_MAX+1)) == next_outgoing_seqnum) {

		next_outgoing_seqnum = seqnum;
		return true;
	}
	return false;
}

void Channel::UpdateBytesSent(unsigned int bytes, unsigned int packets)
{
	JMutexAutoLock internal(m_internal_mutex);
	current_bytes_transfered += bytes;
	current_packet_successfull += packets;
}

void Channel::UpdateBytesReceived(unsigned int bytes) {
	JMutexAutoLock internal(m_internal_mutex);
	current_bytes_received += bytes;
}

void Channel::UpdateBytesLost(unsigned int bytes)
{
	JMutexAutoLock internal(m_internal_mutex);
	current_bytes_lost += bytes;
}


void Channel::UpdatePacketLossCounter(unsigned int count)
{
	JMutexAutoLock internal(m_internal_mutex);
	current_packet_loss += count;
}

void Channel::UpdatePacketTooLateCounter()
{
	JMutexAutoLock internal(m_internal_mutex);
	current_packet_too_late++;
}

void Channel::UpdateTimers(float dtime,bool legacy_peer)
{
	bpm_counter += dtime;
	packet_loss_counter += dtime;

	if (packet_loss_counter > 1.0)
	{
		packet_loss_counter -= 1.0;

		unsigned int packet_loss = 11; /* use a neutral value for initialization */
		unsigned int packets_successfull = 0;
		unsigned int packet_too_late = 0;

		bool reasonable_amount_of_data_transmitted = false;

		{
			JMutexAutoLock internal(m_internal_mutex);
			packet_loss = current_packet_loss;
			packet_too_late = current_packet_too_late;
			packets_successfull = current_packet_successfull;

			if (current_bytes_transfered > (unsigned int) (window_size*512/2))
			{
				reasonable_amount_of_data_transmitted = true;
			}
			current_packet_loss = 0;
			current_packet_too_late = 0;
			current_packet_successfull = 0;
		}

		/* dynamic window size is only available for non legacy peers */
		if (!legacy_peer) {
			float successfull_to_lost_ratio = 0.0;
			bool done = false;

			if (packets_successfull > 0) {
				successfull_to_lost_ratio = packet_loss/packets_successfull;
			}
			else if (packet_loss > 0)
			{
				window_size = MYMAX(
						(window_size - 10),
						MIN_RELIABLE_WINDOW_SIZE);
				done = true;
			}

			if (!done)
			{
				if ((successfull_to_lost_ratio < 0.01) &&
					(window_size < MAX_RELIABLE_WINDOW_SIZE))
				{
					/* don't even think about increasing if we didn't even
					 * use major parts of our window */
					if (reasonable_amount_of_data_transmitted)
						window_size = MYMIN(
								(window_size + 100),
								MAX_RELIABLE_WINDOW_SIZE);
				}
				else if ((successfull_to_lost_ratio < 0.05) &&
						(window_size < MAX_RELIABLE_WINDOW_SIZE))
				{
					/* don't even think about increasing if we didn't even
					 * use major parts of our window */
					if (reasonable_amount_of_data_transmitted)
						window_size = MYMIN(
								(window_size + 50),
								MAX_RELIABLE_WINDOW_SIZE);
				}
				else if (successfull_to_lost_ratio > 0.15)
				{
					window_size = MYMAX(
							(window_size - 100),
							MIN_RELIABLE_WINDOW_SIZE);
				}
				else if (successfull_to_lost_ratio > 0.1)
				{
					window_size = MYMAX(
							(window_size - 50),
							MIN_RELIABLE_WINDOW_SIZE);
				}
			}
		}
	}

	if (bpm_counter > 10.0)
	{
		{
			JMutexAutoLock internal(m_internal_mutex);
			cur_kbps                 =
					(((float) current_bytes_transfered)/bpm_counter)/1024.0;
			current_bytes_transfered = 0;
			cur_kbps_lost            =
					(((float) current_bytes_lost)/bpm_counter)/1024.0;
			current_bytes_lost       = 0;
			cur_incoming_kbps        =
					(((float) current_bytes_received)/bpm_counter)/1024.0;
			current_bytes_received   = 0;
			bpm_counter              = 0;
		}

		if (cur_kbps > max_kbps)
		{
			max_kbps = cur_kbps;
		}

		if (cur_kbps_lost > max_kbps_lost)
		{
			max_kbps_lost = cur_kbps_lost;
		}

		if (cur_incoming_kbps > max_incoming_kbps) {
			max_incoming_kbps = cur_incoming_kbps;
		}

		rate_samples       = MYMIN(rate_samples+1,10);
		float old_fraction = ((float) (rate_samples-1) )/( (float) rate_samples);
		avg_kbps           = avg_kbps * old_fraction +
				cur_kbps * (1.0 - old_fraction);
		avg_kbps_lost      = avg_kbps_lost * old_fraction +
				cur_kbps_lost * (1.0 - old_fraction);
		avg_incoming_kbps  = avg_incoming_kbps * old_fraction +
				cur_incoming_kbps * (1.0 - old_fraction);
	}
}


/*
	Peer
*/

PeerHelper::PeerHelper() :
	m_peer(0)
{}

PeerHelper::PeerHelper(Peer* peer) :
	m_peer(peer)
{
	if (peer != NULL)
	{
		if (!peer->IncUseCount())
		{
			m_peer = 0;
		}
	}
}

PeerHelper::~PeerHelper()
{
	if (m_peer != 0)
		m_peer->DecUseCount();

	m_peer = 0;
}

PeerHelper& PeerHelper::operator=(Peer* peer)
{
	m_peer = peer;
	if (peer != NULL)
	{
		if (!peer->IncUseCount())
		{
			m_peer = 0;
		}
	}
	return *this;
}

Peer* PeerHelper::operator->() const
{
	return m_peer;
}

Peer* PeerHelper::operator&() const
{
	return m_peer;
}

bool PeerHelper::operator!() {
	return ! m_peer;
}

bool PeerHelper::operator!=(void* ptr)
{
	return ((void*) m_peer != ptr);
}

bool Peer::IncUseCount()
{
	JMutexAutoLock lock(m_exclusive_access_mutex);

	if (!m_pending_deletion)
	{
		this->m_usage++;
		return true;
	}

	return false;
}

void Peer::DecUseCount()
{
	{
		JMutexAutoLock lock(m_exclusive_access_mutex);
		assert(m_usage > 0);
		m_usage--;

		if (!((m_pending_deletion) && (m_usage == 0)))
			return;
	}
	delete this;
}

void Peer::RTTStatistics(float rtt, std::string profiler_id,
		unsigned int num_samples) {

	if (m_last_rtt > 0) {
		/* set min max values */
		if (rtt < m_rtt.min_rtt)
			m_rtt.min_rtt = rtt;
		if (rtt >= m_rtt.max_rtt)
			m_rtt.max_rtt = rtt;

		/* do average calculation */
		if(m_rtt.avg_rtt < 0.0)
			m_rtt.avg_rtt  = rtt;
		else
			m_rtt.avg_rtt  = m_rtt.avg_rtt * (num_samples/(num_samples-1)) +
								rtt * (1/num_samples);

		/* do jitter calculation */

		//just use some neutral value at beginning
		float jitter = m_rtt.jitter_min;

		if (rtt > m_last_rtt)
			jitter = rtt-m_last_rtt;

		if (rtt <= m_last_rtt)
			jitter = m_last_rtt - rtt;

		if (jitter < m_rtt.jitter_min)
			m_rtt.jitter_min = jitter;
		if (jitter >= m_rtt.jitter_max)
			m_rtt.jitter_max = jitter;

		if(m_rtt.jitter_avg < 0.0)
			m_rtt.jitter_avg  = jitter;
		else
			m_rtt.jitter_avg  = m_rtt.jitter_avg * (num_samples/(num_samples-1)) +
								jitter * (1/num_samples);

		if (profiler_id != "")
		{
			g_profiler->graphAdd(profiler_id + "_rtt", rtt);
			g_profiler->graphAdd(profiler_id + "_jitter", jitter);
		}
	}
	/* save values required for next loop */
	m_last_rtt = rtt;
}

bool Peer::isTimedOut(float timeout)
{
	JMutexAutoLock lock(m_exclusive_access_mutex);
	u32 current_time = porting::getTimeMs();

	float dtime = CALC_DTIME(m_last_timeout_check,current_time);
	m_last_timeout_check = current_time;

	m_timeout_counter += dtime;

	return m_timeout_counter > timeout;
}

void Peer::Drop()
{
	{
		JMutexAutoLock usage_lock(m_exclusive_access_mutex);
		m_pending_deletion = true;
		if (m_usage != 0)
			return;
	}

	PROFILE(std::stringstream peerIdentifier1);
	PROFILE(peerIdentifier1 << "runTimeouts[" << m_connection->getDesc()
			<< ";" << id << ";RELIABLE]");
	PROFILE(g_profiler->remove(peerIdentifier1.str()));
	PROFILE(std::stringstream peerIdentifier2);
	PROFILE(peerIdentifier2 << "sendPackets[" << m_connection->getDesc()
			<< ";" << id << ";RELIABLE]");
	PROFILE(ScopeProfiler peerprofiler(g_profiler, peerIdentifier2.str(), SPT_AVG));

	delete this;
}

UDPPeer::UDPPeer(u16 a_id, Address a_address, Connection* connection) :
	Peer(a_address,a_id,connection),
	m_pending_disconnect(false),
	resend_timeout(0.5),
	m_legacy_peer(true)
{
}

bool UDPPeer::getAddress(MTProtocols type,Address& toset)
{
	if ((type == MTP_UDP) || (type == MTP_MINETEST_RELIABLE_UDP) || (type == MTP_PRIMARY))
	{
		toset = address;
		return true;
	}

	return false;
}

void UDPPeer::setNonLegacyPeer()
{
	m_legacy_peer = false;
	for(unsigned int i=0; i< CHANNEL_COUNT; i++)
	{
		channels->setWindowSize(g_settings->getU16("max_packets_per_iteration"));
	}
}

void UDPPeer::reportRTT(float rtt)
{
	if (rtt < 0.0) {
		return;
	}
	RTTStatistics(rtt,"rudp",MAX_RELIABLE_WINDOW_SIZE*10);

	float timeout = getStat(AVG_RTT) * RESEND_TIMEOUT_FACTOR;
	if(timeout < RESEND_TIMEOUT_MIN)
		timeout = RESEND_TIMEOUT_MIN;
	if(timeout > RESEND_TIMEOUT_MAX)
		timeout = RESEND_TIMEOUT_MAX;

	JMutexAutoLock usage_lock(m_exclusive_access_mutex);
	resend_timeout = timeout;
}

bool UDPPeer::Ping(float dtime,SharedBuffer<u8>& data)
{
	m_ping_timer += dtime;
	if(m_ping_timer >= PING_TIMEOUT)
	{
		// Create and send PING packet
		writeU8(&data[0], TYPE_CONTROL);
		writeU8(&data[1], CONTROLTYPE_PING);
		m_ping_timer = 0.0;
		return true;
	}
	return false;
}

void UDPPeer::PutReliableSendCommand(ConnectionCommand &c,
		unsigned int max_packet_size)
{
	if (m_pending_disconnect)
		return;

	if ( channels[c.channelnum].queued_commands.empty() &&
			/* don't queue more packets then window size */
			(channels[c.channelnum].queued_reliables.size()
			< (channels[c.channelnum].getWindowSize()/2)))
	{
		LOG(dout_con<<m_connection->getDesc()
				<<" processing reliable command for peer id: " << c.peer_id
				<<" data size: " << c.data.getSize() << std::endl);
		if (!processReliableSendCommand(c,max_packet_size))
		{
			channels[c.channelnum].queued_commands.push_back(c);
		}
	}
	else
	{
		LOG(dout_con<<m_connection->getDesc()
				<<" Queueing reliable command for peer id: " << c.peer_id
				<<" data size: " << c.data.getSize() <<std::endl);
		channels[c.channelnum].queued_commands.push_back(c);
	}
}

bool UDPPeer::processReliableSendCommand(
				ConnectionCommand &c,
				unsigned int max_packet_size)
{
	if (m_pending_disconnect)
		return true;

	u32 chunksize_max = max_packet_size
							- BASE_HEADER_SIZE
							- RELIABLE_HEADER_SIZE;

	assert(c.data.getSize() < MAX_RELIABLE_WINDOW_SIZE*512);

	std::list<SharedBuffer<u8> > originals;
	u16 split_sequence_number = channels[c.channelnum].readNextSplitSeqNum();

	if (c.raw)
	{
		originals.push_back(c.data);
	}
	else {
		originals = makeAutoSplitPacket(c.data, chunksize_max,split_sequence_number);
		channels[c.channelnum].setNextSplitSeqNum(split_sequence_number);
	}

	bool have_sequence_number = true;
	bool have_initial_sequence_number = false;
	Queue<BufferedPacket> toadd;
	volatile u16 initial_sequence_number = 0;

	for(std::list<SharedBuffer<u8> >::iterator i = originals.begin();
		i != originals.end(); ++i)
	{
		u16 seqnum = channels[c.channelnum].getOutgoingSequenceNumber(have_sequence_number);

		/* oops, we don't have enough sequence numbers to send this packet */
		if (!have_sequence_number)
			break;

		if (!have_initial_sequence_number)
		{
			initial_sequence_number = seqnum;
			have_initial_sequence_number = true;
		}

		SharedBuffer<u8> reliable = makeReliablePacket(*i, seqnum);

		// Add base headers and make a packet
		BufferedPacket p = con::makePacket(address, reliable,
				m_connection->GetProtocolID(), m_connection->GetPeerID(),
				c.channelnum);

		toadd.push_back(p);
	}

	if (have_sequence_number) {
		volatile u16 pcount = 0;
		while(toadd.size() > 0) {
			BufferedPacket p = toadd.pop_front();
//			LOG(dout_con<<connection->getDesc()
//					<< " queuing reliable packet for peer_id: " << c.peer_id
//					<< " channel: " << (c.channelnum&0xFF)
//					<< " seqnum: " << readU16(&p.data[BASE_HEADER_SIZE+1])
//					<< std::endl)
			channels[c.channelnum].queued_reliables.push_back(p);
			pcount++;
		}
		assert(channels[c.channelnum].queued_reliables.size() < 0xFFFF);
		return true;
	}
	else {
		volatile u16 packets_available = toadd.size();
		/* we didn't get a single sequence number no need to fill queue */
		if (!have_initial_sequence_number)
		{
			return false;
		}
		while(toadd.size() > 0) {
			/* remove packet */
			toadd.pop_front();

			bool successfully_put_back_sequence_number
				= channels[c.channelnum].putBackSequenceNumber(
					(initial_sequence_number+toadd.size() % (SEQNUM_MAX+1)));

			assert(successfully_put_back_sequence_number);
		}
		LOG(dout_con<<m_connection->getDesc()
				<< " Windowsize exceeded on reliable sending "
				<< c.data.getSize() << " bytes"
				<< std::endl << "\t\tinitial_sequence_number: "
				<< initial_sequence_number
				<< std::endl << "\t\tgot at most            : "
				<< packets_available << " packets"
				<< std::endl << "\t\tpackets queued         : "
				<< channels[c.channelnum].outgoing_reliables_sent.size()
				<< std::endl);
		return false;
	}
}

void UDPPeer::RunCommandQueues(
							unsigned int max_packet_size,
							unsigned int maxcommands,
							unsigned int maxtransfer)
{

	for (unsigned int i = 0; i < CHANNEL_COUNT; i++)
	{
		unsigned int commands_processed = 0;

		if ((channels[i].queued_commands.size() > 0) &&
				(channels[i].queued_reliables.size() < maxtransfer) &&
				(commands_processed < maxcommands))
		{
			try {
				ConnectionCommand c = channels[i].queued_commands.pop_front();
				LOG(dout_con<<m_connection->getDesc()
						<<" processing queued reliable command "<<std::endl);
				if (!processReliableSendCommand(c,max_packet_size)) {
					LOG(dout_con<<m_connection->getDesc()
							<< " Failed to queue packets for peer_id: " << c.peer_id
							<< ", delaying sending of " << c.data.getSize()
							<< " bytes" << std::endl);
					channels[i].queued_commands.push_front(c);
				}
			}
			catch (ItemNotFoundException &e) {
				// intentionally empty
			}
		}
	}
}

u16 UDPPeer::getNextSplitSequenceNumber(u8 channel)
{
	assert(channel < CHANNEL_COUNT);
	return channels[channel].readNextIncomingSeqNum();
}

void UDPPeer::setNextSplitSequenceNumber(u8 channel, u16 seqnum)
{
	assert(channel < CHANNEL_COUNT);
	channels[channel].setNextSplitSeqNum(seqnum);
}

SharedBuffer<u8> UDPPeer::addSpiltPacket(u8 channel,
											BufferedPacket toadd,
											bool reliable)
{
	assert(channel < CHANNEL_COUNT);
	return channels[channel].incoming_splits.insert(toadd,reliable);
}

/******************************************************************************/
/* Connection Threads                                                         */
/******************************************************************************/

ConnectionSendThread::ConnectionSendThread(Connection* parent,
											unsigned int max_packet_size,
											float timeout) :
	m_connection(parent),
	m_max_packet_size(max_packet_size),
	m_timeout(timeout),
	m_max_commands_per_iteration(1),
	m_max_data_packets_per_iteration(g_settings->getU16("max_packets_per_iteration")),
	m_max_packets_requeued(256)
{
}

void * ConnectionSendThread::Thread()
{
	ThreadStarted();
	log_register_thread("ConnectionSend");

	LOG(dout_con<<m_connection->getDesc()
			<<"ConnectionSend thread started"<<std::endl);

	u32 curtime = porting::getTimeMs();
	u32 lasttime = curtime;

	PROFILE(std::stringstream ThreadIdentifier);
	PROFILE(ThreadIdentifier << "ConnectionSend: [" << m_connection->getDesc() << "]");

	porting::setThreadName("ConnectionSend");

	/* if stop is requested don't stop immediately but try to send all        */
	/* packets first */
	while(!StopRequested() || packetsQueued()) {
		BEGIN_DEBUG_EXCEPTION_HANDLER
		PROFILE(ScopeProfiler sp(g_profiler, ThreadIdentifier.str(), SPT_AVG));

		m_iteration_packets_avaialble = m_max_data_packets_per_iteration;

		/* wait for trigger or timeout */
		m_send_sleep_semaphore.Wait(50);

		/* remove all triggers */
		while(m_send_sleep_semaphore.Wait(0)) {}

		lasttime = curtime;
		curtime = porting::getTimeMs();
		float dtime = CALC_DTIME(lasttime,curtime);

		/* first do all the reliable stuff */
		runTimeouts(dtime);

		/* translate commands to packets */
		ConnectionCommand c = m_connection->m_command_queue.pop_frontNoEx(0);
		while(c.type != CONNCMD_NONE)
				{
			if (c.reliable)
				processReliableCommand(c);
			else
				processNonReliableCommand(c);

			c = m_connection->m_command_queue.pop_frontNoEx(0);
		}

		/* send non reliable packets */
		sendPackets(dtime);

		END_DEBUG_EXCEPTION_HANDLER(errorstream);
	}

	PROFILE(g_profiler->remove(ThreadIdentifier.str()));
	return NULL;
}

void ConnectionSendThread::Trigger()
{
	m_send_sleep_semaphore.Post();
}

bool ConnectionSendThread::packetsQueued()
{
	std::list<u16> peerIds = m_connection->getPeerIDs();

	if (!m_outgoing_queue.empty() && !peerIds.empty())
		return true;

	for(std::list<u16>::iterator j = peerIds.begin();
			j != peerIds.end(); ++j)
	{
		PeerHelper peer = m_connection->getPeerNoEx(*j);

		if (!peer)
			continue;

		if (dynamic_cast<UDPPeer*>(&peer) == 0)
			continue;

		for(u16 i=0; i<CHANNEL_COUNT; i++)
		{
			Channel *channel = &(dynamic_cast<UDPPeer*>(&peer))->channels[i];

			if (channel->queued_commands.size() > 0)
			{
				return true;
			}
		}
	}


	return false;
}

void ConnectionSendThread::runTimeouts(float dtime)
{
	std::list<u16> timeouted_peers;
	std::list<u16> peerIds = m_connection->getPeerIDs();

	for(std::list<u16>::iterator j = peerIds.begin();
		j != peerIds.end(); ++j)
	{
		PeerHelper peer = m_connection->getPeerNoEx(*j);

		if (!peer)
			continue;

		if(dynamic_cast<UDPPeer*>(&peer) == 0)
			continue;

		PROFILE(std::stringstream peerIdentifier);
		PROFILE(peerIdentifier << "runTimeouts[" << m_connection->getDesc()
				<< ";" << *j << ";RELIABLE]");
		PROFILE(ScopeProfiler peerprofiler(g_profiler, peerIdentifier.str(), SPT_AVG));

		SharedBuffer<u8> data(2); // data for sending ping, required here because of goto

		/*
			Check peer timeout
		*/
		if(peer->isTimedOut(m_timeout))
		{
			infostream<<m_connection->getDesc()
					<<"RunTimeouts(): Peer "<<peer->id
					<<" has timed out."
					<<" (source=peer->timeout_counter)"
					<<std::endl;
			// Add peer to the list
			timeouted_peers.push_back(peer->id);
			// Don't bother going through the buffers of this one
			continue;
		}

		float resend_timeout = dynamic_cast<UDPPeer*>(&peer)->getResendTimeout();
		for(u16 i=0; i<CHANNEL_COUNT; i++)
		{
			std::list<BufferedPacket> timed_outs;
			Channel *channel = &(dynamic_cast<UDPPeer*>(&peer))->channels[i];

			if (dynamic_cast<UDPPeer*>(&peer)->getLegacyPeer())
				channel->setWindowSize(g_settings->getU16("workaround_window_size"));

			// Remove timed out incomplete unreliable split packets
			channel->incoming_splits.removeUnreliableTimedOuts(dtime, m_timeout);

			// Increment reliable packet times
			channel->outgoing_reliables_sent.incrementTimeouts(dtime);

			unsigned int numpeers = m_connection->m_peers.size();

			if (numpeers == 0)
				return;

			// Re-send timed out outgoing reliables
			timed_outs = channel->
					outgoing_reliables_sent.getTimedOuts(resend_timeout,
							(m_max_data_packets_per_iteration/numpeers));

			channel->UpdatePacketLossCounter(timed_outs.size());
			g_profiler->graphAdd("packets_lost", timed_outs.size());

			m_iteration_packets_avaialble -= timed_outs.size();

			for(std::list<BufferedPacket>::iterator k = timed_outs.begin();
				k != timed_outs.end(); ++k)
			{
				u16 peer_id = readPeerId(*(k->data));
				u8 channelnum  = readChannel(*(k->data));
				u16 seqnum  = readU16(&(k->data[BASE_HEADER_SIZE+1]));

				channel->UpdateBytesLost(k->data.getSize());
				k->resend_count++;

				LOG(derr_con<<m_connection->getDesc()
						<<"RE-SENDING timed-out RELIABLE to "
						<< k->address.serializeString()
						<< "(t/o="<<resend_timeout<<"): "
						<<"from_peer_id="<<peer_id
						<<", channel="<<((int)channelnum&0xff)
						<<", seqnum="<<seqnum
						<<std::endl);

				rawSend(*k);

				// do not handle rtt here as we can't decide if this packet was
				// lost or really takes more time to transmit
			}
			channel->UpdateTimers(dtime,dynamic_cast<UDPPeer*>(&peer)->getLegacyPeer());
		}

		/* send ping if necessary */
		if (dynamic_cast<UDPPeer*>(&peer)->Ping(dtime,data)) {
			LOG(dout_con<<m_connection->getDesc()
					<<"Sending ping for peer_id: "
					<< dynamic_cast<UDPPeer*>(&peer)->id <<std::endl);
			/* this may fail if there ain't a sequence number left */
			if (!rawSendAsPacket(dynamic_cast<UDPPeer*>(&peer)->id, 0, data, true))
			{
				//retrigger with reduced ping interval
				dynamic_cast<UDPPeer*>(&peer)->Ping(4.0,data);
			}
		}

		dynamic_cast<UDPPeer*>(&peer)->RunCommandQueues(m_max_packet_size,
								m_max_commands_per_iteration,
								m_max_packets_requeued);
	}

	// Remove timed out peers
	for(std::list<u16>::iterator i = timeouted_peers.begin();
		i != timeouted_peers.end(); ++i)
	{
		LOG(derr_con<<m_connection->getDesc()
				<<"RunTimeouts(): Removing peer "<<(*i)<<std::endl);
		m_connection->deletePeer(*i, true);
	}
}

void ConnectionSendThread::rawSend(const BufferedPacket &packet)
{
	try{
		m_connection->m_udpSocket.Send(packet.address, *packet.data,
				packet.data.getSize());
		LOG(dout_con <<m_connection->getDesc()
				<< " rawSend: " << packet.data.getSize()
				<< " bytes sent" << std::endl);
	} catch(SendFailedException &e){
		LOG(derr_con<<m_connection->getDesc()
				<<"Connection::rawSend(): SendFailedException: "
				<<packet.address.serializeString()<<std::endl);
	}
}

void ConnectionSendThread::sendAsPacketReliable(BufferedPacket& p, Channel* channel)
{
	try{
		p.absolute_send_time = porting::getTimeMs();
		// Buffer the packet
		channel->outgoing_reliables_sent.insert(p,
			(channel->readOutgoingSequenceNumber() - MAX_RELIABLE_WINDOW_SIZE)
			% (MAX_RELIABLE_WINDOW_SIZE+1));
	}
	catch(AlreadyExistsException &e)
	{
		LOG(derr_con<<m_connection->getDesc()
				<<"WARNING: Going to send a reliable packet"
				<<" in outgoing buffer" <<std::endl);
		//assert(0);
	}

	// Send the packet
	rawSend(p);
}

bool ConnectionSendThread::rawSendAsPacket(u16 peer_id, u8 channelnum,
		SharedBuffer<u8> data, bool reliable)
{
	PeerHelper peer = m_connection->getPeerNoEx(peer_id);
	if(!peer) {
		LOG(dout_con<<m_connection->getDesc()
				<<" INFO: dropped packet for non existent peer_id: "
				<< peer_id << std::endl);
		assert(reliable && "trying to send raw packet reliable but no peer found!");
		return false;
	}
	Channel *channel = &(dynamic_cast<UDPPeer*>(&peer)->channels[channelnum]);

	if(reliable)
	{
		bool have_sequence_number_for_raw_packet = true;
		u16 seqnum =
				channel->getOutgoingSequenceNumber(have_sequence_number_for_raw_packet);

		if (!have_sequence_number_for_raw_packet)
			return false;

		SharedBuffer<u8> reliable = makeReliablePacket(data, seqnum);
		Address peer_address;
		peer->getAddress(MTP_MINETEST_RELIABLE_UDP, peer_address);

		// Add base headers and make a packet
		BufferedPacket p = con::makePacket(peer_address, reliable,
				m_connection->GetProtocolID(), m_connection->GetPeerID(),
				channelnum);

		// first check if our send window is already maxed out
		if (channel->outgoing_reliables_sent.size()
				< channel->getWindowSize()) {
			LOG(dout_con<<m_connection->getDesc()
					<<" INFO: sending a reliable packet to peer_id " << peer_id
					<<" channel: " << channelnum
					<<" seqnum: " << seqnum << std::endl);
			sendAsPacketReliable(p,channel);
			return true;
		}
		else {
			LOG(dout_con<<m_connection->getDesc()
					<<" INFO: queueing reliable packet for peer_id: " << peer_id
					<<" channel: " << channelnum
					<<" seqnum: " << seqnum << std::endl);
			channel->queued_reliables.push_back(p);
			return false;
		}
	}
	else
	{
		Address peer_address;

		if (peer->getAddress(MTP_UDP, peer_address))
		{
			// Add base headers and make a packet
			BufferedPacket p = con::makePacket(peer_address, data,
					m_connection->GetProtocolID(), m_connection->GetPeerID(),
					channelnum);

			// Send the packet