maomaowm/src/layout/dwindle.h

601 lines
No EOL
16 KiB
C

static DwindleNode *dwindle_locked_h_node = NULL;
static DwindleNode *dwindle_locked_v_node = NULL;
static DwindleNode *dwindle_new_leaf(Client *c) {
DwindleNode *n = calloc(1, sizeof(DwindleNode));
n->client = c;
return n;
}
// 统计同方向上的节点总和 (N_old)
static int count_block_items(DwindleNode *node, bool split_h) {
if (!node)
return 0;
if (!node->is_split || node->split_h != split_h)
return 1;
return count_block_items(node->first, split_h) +
count_block_items(node->second, split_h);
}
// 向上查找方向块路径,并计算每个祖先节点的绝对占比
static int get_block_path_and_ratios(DwindleNode *target, bool split_h,
DwindleNode **path, float *p) {
int path_len = 0;
path[path_len++] = target;
DwindleNode *curr = target->parent;
while (curr && curr->split_h == split_h) {
path[path_len++] = curr;
curr = curr->parent;
}
p[path_len - 1] = 1.0f; // 方向块根节点占比为 100%
for (int i = path_len - 1; i > 0; i--) {
DwindleNode *S = path[i];
DwindleNode *child = path[i - 1];
if (S->first == child)
p[i - 1] = p[i] * S->ratio;
else
p[i - 1] = p[i] * (1.0f - S->ratio);
}
return path_len;
}
static DwindleNode *dwindle_find_leaf(DwindleNode *node, Client *c) {
if (!node)
return NULL;
if (!node->is_split)
return node->client == c ? node : NULL;
DwindleNode *r = dwindle_find_leaf(node->first, c);
return r ? r : dwindle_find_leaf(node->second, c);
}
static DwindleNode *dwindle_first_leaf(DwindleNode *node) {
if (!node)
return NULL;
while (node->is_split)
node = node->first;
return node;
}
static void dwindle_free_tree(DwindleNode *node) {
if (!node)
return;
dwindle_free_tree(node->first);
dwindle_free_tree(node->second);
free(node);
}
static void dwindle_insert(DwindleNode **root, Client *new_c, Client *focused,
float ratio, bool as_first, bool split_h,
bool lock) {
DwindleNode *new_leaf = dwindle_new_leaf(new_c);
if (!*root) {
new_leaf->custom_leaf_split_h = true;
*root = new_leaf;
return;
}
DwindleNode *target = focused ? dwindle_find_leaf(*root, focused) : NULL;
if (!target)
target = dwindle_first_leaf(*root);
// ================= 保持其他窗口比例缩减逻辑 =================
if (config.dwindle_manual_split) {
DwindleNode *path[512];
float p[512];
int path_len = get_block_path_and_ratios(target, split_h, path, p);
int n_old = 1;
if (path_len > 1) {
n_old = count_block_items(path[path_len - 1], split_h);
}
float N = (float)(n_old + 1);
for (int i = path_len - 1; i > 0; i--) {
DwindleNode *S = path[i];
DwindleNode *child = path[i - 1];
float p_S = p[i];
float p_first = p_S * S->ratio;
if (S->first == child) {
float p_first_new = p_first * (N - 1.0f) / N + 1.0f / N;
float p_S_new = p_S * (N - 1.0f) / N + 1.0f / N;
S->ratio = p_first_new / p_S_new;
} else {
float p_first_new = p_first * (N - 1.0f) / N;
float p_S_new = p_S * (N - 1.0f) / N + 1.0f / N;
S->ratio = p_first_new / p_S_new;
}
if (S->ratio < 0.001f)
S->ratio = 0.001f;
if (S->ratio > 0.999f)
S->ratio = 0.999f;
}
}
// ============================================================
DwindleNode *split = calloc(1, sizeof(DwindleNode));
split->is_split = true;
split->split_h = split_h;
split->split_locked = lock;
split->custom_leaf_split_h = target->custom_leaf_split_h;
new_leaf->custom_leaf_split_h = target->custom_leaf_split_h;
if (as_first) {
split->first = new_leaf;
split->second = target;
} else {
split->first = target;
split->second = new_leaf;
}
// 通用逻辑
split->ratio = ratio;
split->parent = target->parent;
target->parent = split;
new_leaf->parent = split;
if (!split->parent) {
*root = split;
} else {
if (split->parent->first == target)
split->parent->first = split;
else
split->parent->second = split;
}
}
static void dwindle_remove(DwindleNode **root, Client *c) {
DwindleNode *leaf = dwindle_find_leaf(*root, c);
if (!leaf)
return;
DwindleNode *parent = leaf->parent;
if (dwindle_locked_h_node == leaf || dwindle_locked_h_node == parent)
dwindle_locked_h_node = NULL;
if (dwindle_locked_v_node == leaf || dwindle_locked_v_node == parent)
dwindle_locked_v_node = NULL;
if (!parent) {
free(leaf);
*root = NULL;
return;
}
// 开始删除空间的比例回退逻辑
// 查找连续的同方向块路径
if (config.dwindle_manual_split) {
bool split_h = parent->split_h;
DwindleNode *path[512];
int path_len = 0;
path[path_len++] = parent;
DwindleNode *curr = parent->parent;
while (curr && curr->split_h == split_h) {
path[path_len++] = curr;
curr = curr->parent;
}
// 计算各祖先的旧绝对占比
float p[512];
p[path_len - 1] = 1.0f;
for (int i = path_len - 1; i > 0; i--) {
DwindleNode *S = path[i];
DwindleNode *child = path[i - 1];
if (S->first == child)
p[i - 1] = p[i] * S->ratio;
else
p[i - 1] = p[i] * (1.0f - S->ratio);
}
// 计算即将被删除的叶子节点,在该方向块中所占的绝对面积比例 (P_del)
float p_del = p[0] * (parent->first == leaf ? parent->ratio
: (1.0f - parent->ratio));
if (p_del > 0.999f)
p_del = 0.999f; // 兜底
// 重算祖先比例:将 P_del 空出来的空间,按原定比例无缝分配给其他窗口
for (int i = path_len - 1; i > 0; i--) {
DwindleNode *S = path[i];
DwindleNode *child = path[i - 1];
float p_S = p[i];
float p_first = p_S * S->ratio;
float denom = p_S - p_del;
if (denom < 0.0001f)
denom = 0.0001f;
if (S->first == child) {
S->ratio = (p_first - p_del) / denom;
} else {
S->ratio = p_first / denom;
}
if (S->ratio < 0.001f)
S->ratio = 0.001f;
if (S->ratio > 0.999f)
S->ratio = 0.999f;
}
}
// 比例重算结束
// 基础的二叉树摘除节点逻辑
DwindleNode *sibling =
(parent->first == leaf) ? parent->second : parent->first;
DwindleNode *grandparent = parent->parent;
sibling->parent = grandparent;
if (!sibling->is_split ||
(!config.dwindle_preserve_split && !config.dwindle_smart_split)) {
sibling->container_w = 0;
sibling->container_h = 0;
}
if (!grandparent) {
*root = sibling;
} else {
if (grandparent->first == parent)
grandparent->first = sibling;
else
grandparent->second = sibling;
}
free(leaf);
free(parent);
}
static void dwindle_assign(DwindleNode *node, int32_t ax, int32_t ay,
int32_t aw, int32_t ah, int32_t gap_h,
int32_t gap_v) {
if (!node)
return;
if (!node->is_split) {
if (node->client) {
struct wlr_box box = {ax, ay, MAX(1, aw), MAX(1, ah)};
resize(node->client, box, 0);
}
return;
}
if (!node->split_locked && node->container_w == 0 && node->container_h == 0)
node->split_h = (aw >= ah);
node->container_x = ax;
node->container_y = ay;
node->container_w = aw;
node->container_h = ah;
if (node->split_h) {
int32_t w1 = MAX(1, (int32_t)(aw * node->ratio) - gap_h / 2);
dwindle_assign(node->first, ax, ay, w1, ah, gap_h, gap_v);
dwindle_assign(node->second, ax + w1 + gap_h, ay, aw - w1 - gap_h, ah,
gap_h, gap_v);
} else {
int32_t h1 = MAX(1, (int32_t)(ah * node->ratio) - gap_v / 2);
dwindle_assign(node->first, ax, ay, aw, h1, gap_h, gap_v);
dwindle_assign(node->second, ax, ay + h1 + gap_v, aw, ah - h1 - gap_v,
gap_h, gap_v);
}
}
static void dwindle_move_client(DwindleNode **root, Client *c, Client *target,
float ratio, int32_t dir) {
if (!c || !target || c == target)
return;
if (!dwindle_find_leaf(*root, c) || !dwindle_find_leaf(*root, target))
return;
dwindle_remove(root, c);
bool as_first = (dir == UP || dir == LEFT);
bool split_h = (dir == LEFT || dir == RIGHT);
dwindle_insert(root, c, target, ratio, as_first, split_h, true);
}
static void dwindle_swap_clients(DwindleNode **root, Client *a, Client *b) {
DwindleNode *la = dwindle_find_leaf(*root, a);
DwindleNode *lb = dwindle_find_leaf(*root, b);
if (!la || !lb || la == lb)
return;
la->client = b;
lb->client = a;
}
static void dwindle_resize_client(Monitor *m, Client *c) {
uint32_t tag = m->pertag->curtag;
DwindleNode *leaf = dwindle_find_leaf(m->pertag->dwindle_root[tag], c);
if (!leaf)
return;
if (!start_drag_window) {
start_drag_window = true;
dwindle_locked_h_node = NULL;
dwindle_locked_v_node = NULL;
drag_begin_cursorx = cursor->x;
drag_begin_cursory = cursor->y;
DwindleNode *node = leaf->parent;
while (node) {
if (node->split_h && !dwindle_locked_h_node) {
dwindle_locked_h_node = node;
node->drag_init_ratio = node->ratio;
}
if (!node->split_h && !dwindle_locked_v_node) {
dwindle_locked_v_node = node;
node->drag_init_ratio = node->ratio;
}
if (dwindle_locked_h_node && dwindle_locked_v_node)
break;
node = node->parent;
}
}
if (!dwindle_locked_h_node && !dwindle_locked_v_node)
return;
if (dwindle_locked_h_node) {
float cw = (float)MAX(1, dwindle_locked_h_node->container_w);
float ox = (float)(cursor->x - drag_begin_cursorx);
if (config.dwindle_smart_resize) {
/* Move the boundary toward the cursor: invert direction when
* the drag started on the right side of the split line. */
float split_x = dwindle_locked_h_node->container_x +
cw * dwindle_locked_h_node->drag_init_ratio;
if (drag_begin_cursorx >= split_x)
ox = -ox;
}
dwindle_locked_h_node->ratio =
dwindle_locked_h_node->drag_init_ratio + ox / cw;
dwindle_locked_h_node->ratio =
CLAMP_FLOAT(dwindle_locked_h_node->ratio, 0.05f, 0.95f);
}
if (dwindle_locked_v_node) {
float ch = (float)MAX(1, dwindle_locked_v_node->container_h);
float oy = (float)(cursor->y - drag_begin_cursory);
if (config.dwindle_smart_resize) {
/* Same logic for the vertical split line. */
float split_y = dwindle_locked_v_node->container_y +
ch * dwindle_locked_v_node->drag_init_ratio;
if (drag_begin_cursory >= split_y)
oy = -oy;
}
dwindle_locked_v_node->ratio =
dwindle_locked_v_node->drag_init_ratio + oy / ch;
dwindle_locked_v_node->ratio =
CLAMP_FLOAT(dwindle_locked_v_node->ratio, 0.05f, 0.95f);
}
int32_t n = m->visible_tiling_clients;
int32_t gap_ih = enablegaps ? m->gappih : 0;
int32_t gap_iv = enablegaps ? m->gappiv : 0;
int32_t gap_oh = enablegaps ? m->gappoh : 0;
int32_t gap_ov = enablegaps ? m->gappov : 0;
if (config.smartgaps && n == 1)
gap_ih = gap_iv = gap_oh = gap_ov = 0;
dwindle_assign(m->pertag->dwindle_root[tag], m->w.x + gap_oh,
m->w.y + gap_ov, m->w.width - 2 * gap_oh,
m->w.height - 2 * gap_ov, gap_ih, gap_iv);
}
static void dwindle_resize_client_step(Monitor *m, Client *c, int32_t dx,
int32_t dy) {
uint32_t tag = m->pertag->curtag;
DwindleNode *leaf = dwindle_find_leaf(m->pertag->dwindle_root[tag], c);
if (!leaf)
return;
DwindleNode *h_node = NULL;
DwindleNode *v_node = NULL;
DwindleNode *node = leaf->parent;
while (node) {
if (node->split_h && !h_node)
h_node = node;
if (!node->split_h && !v_node)
v_node = node;
if (h_node && v_node)
break;
node = node->parent;
}
if (!h_node && !v_node)
return;
if (h_node && dx) {
float cw = (float)MAX(1, h_node->container_w);
float delta = (float)dx / cw;
h_node->ratio = CLAMP_FLOAT(h_node->ratio + delta, 0.05f, 0.95f);
}
if (v_node && dy) {
float ch = (float)MAX(1, v_node->container_h);
float delta = (float)dy / ch;
v_node->ratio = CLAMP_FLOAT(v_node->ratio + delta, 0.05f, 0.95f);
}
int32_t n_clients = m->visible_tiling_clients;
int32_t gap_ih = enablegaps ? m->gappih : 0;
int32_t gap_iv = enablegaps ? m->gappiv : 0;
int32_t gap_oh = enablegaps ? m->gappoh : 0;
int32_t gap_ov = enablegaps ? m->gappov : 0;
if (config.smartgaps && n_clients == 1)
gap_ih = gap_iv = gap_oh = gap_ov = 0;
dwindle_assign(m->pertag->dwindle_root[tag], m->w.x + gap_oh,
m->w.y + gap_ov, m->w.width - 2 * gap_oh,
m->w.height - 2 * gap_ov, gap_ih, gap_iv);
}
static void dwindle_remove_client(Client *c) {
Monitor *m;
wl_list_for_each(m, &mons, link) {
for (uint32_t t = 0; t < LENGTH(tags) + 1; t++)
dwindle_remove(&m->pertag->dwindle_root[t], c);
}
}
/* Insert a new client respecting dwindle_vsplit, dwindle_hsplit, and
* dwindle_smart_split config options. */
static void dwindle_insert_with_config(DwindleNode **root, Client *new_c,
Client *focused, float ratio) {
if (!new_c || !focused)
return;
bool as_first = false;
bool split_h = false;
bool lock = false;
struct wlr_box *fg = &focused->geom;
double fcx = fg->x + fg->width * 0.5;
double fcy = fg->y + fg->height * 0.5;
if (config.dwindle_smart_split) {
double nx = (cursor->x - fcx) / (fg->width * 0.5);
double ny = (cursor->y - fcy) / (fg->height * 0.5);
if (fabs(ny) > fabs(nx)) {
split_h = false; // vertical split
as_first = (ny < 0); // top → new window on top
} else {
split_h = true; // horizontal split
as_first = (nx < 0); // left → new window on left
}
lock = true; // lock split direction
} else {
// normal mode, auto split
bool likely_h = (fg->width >= fg->height);
split_h = likely_h;
if (likely_h) {
if (config.dwindle_hsplit == 0)
as_first = (cursor->x < fcx);
else
as_first = (config.dwindle_hsplit == 2);
} else {
if (config.dwindle_vsplit == 0)
as_first = (cursor->y < fcy);
else
as_first = (config.dwindle_vsplit == 2);
}
}
DwindleNode *target = focused ? dwindle_find_leaf(*root, focused) : NULL;
if (!target && *root)
target = dwindle_first_leaf(*root);
// 当且仅当 manual_split=1 时,计算精确的 1/N 新节点比例
if (config.dwindle_manual_split && target) {
split_h = target->custom_leaf_split_h;
lock = true;
as_first = false;
// ================= 计算新节点的 1/N 比例 =================
DwindleNode *path[512];
float p[512];
int path_len = get_block_path_and_ratios(target, split_h, path, p);
int n_old = 1;
if (path_len > 1) {
n_old = count_block_items(path[path_len - 1], split_h);
}
float N = (float)(n_old + 1);
float p_target_old = p[0];
float p_split_new = p_target_old * (N - 1.0f) / N + 1.0f / N;
if (as_first) {
ratio = (1.0f / N) / p_split_new;
} else {
ratio = (p_target_old * (N - 1.0f) / N) / p_split_new;
}
if (ratio < 0.001f)
ratio = 0.001f;
if (ratio > 0.999f)
ratio = 0.999f;
// =========================================================
}
// 调用通用插入函数
dwindle_insert(root, new_c, focused, ratio, as_first, split_h, lock);
}
void dwindle(Monitor *m) {
int32_t n = m->visible_tiling_clients;
if (n == 0)
return;
uint32_t tag = m->pertag->curtag;
DwindleNode **root = &m->pertag->dwindle_root[tag];
float ratio = config.dwindle_split_ratio;
Client *vis[512];
int32_t count = 0;
Client *c;
wl_list_for_each(c, &clients, link) {
if (VISIBLEON(c, m) && ISTILED(c))
vis[count++] = c;
if (count >= 512)
break;
}
{
DwindleNode *leaves[512];
int32_t lc = 0;
DwindleNode *stack[1024];
int32_t sp = 0;
if (*root)
stack[sp++] = *root;
while (sp > 0) {
DwindleNode *nd = stack[--sp];
if (!nd->is_split) {
leaves[lc++] = nd;
} else {
if (nd->second)
stack[sp++] = nd->second;
if (nd->first)
stack[sp++] = nd->first;
}
}
for (int32_t i = 0; i < lc; i++) {
bool found = false;
for (int32_t j = 0; j < count; j++)
if (vis[j] == leaves[i]->client) {
found = true;
break;
}
if (!found)
dwindle_remove(root, leaves[i]->client);
}
}
Client *focused = focustop(m);
if (focused && !dwindle_find_leaf(*root, focused))
focused = m->sel;
for (int32_t i = 0; i < count; i++) {
if (!dwindle_find_leaf(*root, vis[i]))
dwindle_insert_with_config(root, vis[i], focused, ratio);
}
int32_t gap_ih = enablegaps ? m->gappih : 0;
int32_t gap_iv = enablegaps ? m->gappiv : 0;
int32_t gap_oh = enablegaps ? m->gappoh : 0;
int32_t gap_ov = enablegaps ? m->gappov : 0;
if (config.smartgaps && n == 1)
gap_ih = gap_iv = gap_oh = gap_ov = 0;
dwindle_assign(*root, m->w.x + gap_oh, m->w.y + gap_ov,
m->w.width - 2 * gap_oh, m->w.height - 2 * gap_ov, gap_ih,
gap_iv);
}
void cleanup_monitor_dwindle(Monitor *m) {
for (uint32_t t = 0; t < LENGTH(tags) + 1; t++)
dwindle_free_tree(m->pertag->dwindle_root[t]);
}