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#define NEUROFLOW_MEMORY_HPP
/**
* NeuroFlow 记忆系统
*
* 核心技术:
* 1. MLA (Multi-head Latent Attention) - DeepSeek KV压缩
* 2. 滑动窗口长记忆
* 3. 记忆分页与磁盘溢出
* 4. 记忆巩固 (LTP模拟)
*/
#include <fstream>
#include <memory>
#include <queue>
#include <string>
#include <unordered_map>
#include <vector>
#include "networks.hpp"
#include "tensor.hpp"
namespace neuroflow {
/**
* MLA压缩KV Cache
*
* DeepSeek核心技术:将KV压缩到潜在空间
* 内存节省:87.5%+
*/
class LatentKVCache {
public:
size_t d_model;
size_t n_heads;
size_t d_latent; // 压缩维度
size_t head_dim;
// 投影矩阵
std::shared_ptr<Linear> W_q; // Q投影
std::shared_ptr<Linear> W_dkv; // KV压缩投影
std::shared_ptr<Linear> W_uk; // K解压
std::shared_ptr<Linear> W_uv; // V解压
std::shared_ptr<Linear> W_o; // 输出投影
// Cache存储 (压缩形式)
Tensor cache; // (max_seq, d_latent)
size_t cache_len;
size_t max_cache_len;
LatentKVCache(size_t model_dim, size_t heads, size_t latent_dim, size_t max_len = 4096)
: d_model(model_dim), n_heads(heads), d_latent(latent_dim),
head_dim(model_dim / heads), max_cache_len(max_len), cache_len(0) {
W_q = std::make_shared<Linear>(d_model, d_model, false);
W_dkv = std::make_shared<Linear>(d_model, d_latent, false); // 压缩!
W_uk = std::make_shared<Linear>(d_latent, d_model, false);
W_uv = std::make_shared<Linear>(d_latent, d_model, false);
W_o = std::make_shared<Linear>(d_model, d_model, false);
// 初始化cache
cache = Tensor({max_len, d_latent}, QuantType::FP32);
}
// 前向传播 (带cache)
Tensor forward(const Tensor& x, bool use_cache = true) {
size_t batch = x.shape_[0];
size_t seq_len = x.shape_.size() > 1 ? x.shape_[1] : 1;
size_t input_dim = x.shape_.size() > 2 ? x.shape_[2] : (x.shape_.size() > 1 ? x.shape_[1] : d_model);
// 确定实际维度
if (x.shape_.size() == 2 && x.shape_[1] == d_model) {
// 输入是 {batch, d_model},seq_len=1
seq_len = 1;
input_dim = d_model;
} else if (x.shape_.size() == 2) {
// 输入可能是 {batch, seq_len} 但缺少 d_model
// 将 seq_len 视为实际序列长度,假设每个位置是 d_model 维
// 这需要特殊处理
seq_len = 1;
input_dim = x.shape_[1];
}
// Q投影 - 输入需要是 {batch * seq_len, d_model}
size_t flat_batch = batch * seq_len;
Tensor x_flat({flat_batch, d_model}, QuantType::FP32);
float* xf = x_flat.as_fp32();
const float* xd = x.as_fp32();
// 如果输入维度小于 d_model,补零
size_t copy_size = std::min(input_dim, d_model);
for (size_t i = 0; i < flat_batch; ++i) {
for (size_t j = 0; j < copy_size; ++j) {
xf[i * d_model + j] = xd[i * input_dim + j];
}
for (size_t j = copy_size; j < d_model; ++j) {
xf[i * d_model + j] = 0.0f;
}
}
Tensor q = W_q->forward(x_flat);
q = q.reshape({batch, seq_len, n_heads, head_dim});
// KV压缩到潜在空间 (MLA核心!)
Tensor c_kv = W_dkv->forward(x_flat);
c_kv = c_kv.reshape({batch, seq_len, d_latent});
// 拼接历史cache
if (use_cache && cache_len > 0) {
size_t new_len = cache_len + seq_len;
Tensor new_cache({new_len, d_latent}, QuantType::FP32);
float* nc = new_cache.as_fp32();
float* old = cache.as_fp32();
// 拷贝旧cache
memcpy(nc, old, cache_len * d_latent * sizeof(float));
// 拷贝新cache (取batch=0)
float* new_kv = c_kv.as_fp32();
for (size_t s = 0; s < seq_len; ++s) {
memcpy(nc + (cache_len + s) * d_latent,
new_kv + s * d_latent,
d_latent * sizeof(float));
}
c_kv = new_cache.reshape({1, new_len, d_latent});
}
// 解压K, V
size_t total_len = use_cache && cache_len > 0 ? (cache_len + seq_len) : seq_len;
// 正确reshape c_kv到二维 - 注意batch维度处理
// 当有历史cache时,c_kv 被 reshape 到 {1, new_len, d_latent}
// 需要正确处理batch扩展
size_t c_kv_batch = use_cache && cache_len > 0 ? 1 : batch;
size_t actual_elements = c_kv_batch * total_len * d_latent;
Tensor c_kv_flat({batch * total_len, d_latent}, QuantType::FP32);
float* ckf = c_kv_flat.as_fp32();
const float* ck = c_kv.as_fp32();
// 正确拷贝:只拷贝实际存在的数据
for (size_t b = 0; b < batch; ++b) {
for (size_t t = 0; t < total_len; ++t) {
for (size_t d = 0; d < d_latent; ++d) {
// 当有历史cache时,所有batch共享同一份cache数据
size_t src_idx = (c_kv_batch == 1 ? t : b * total_len + t) * d_latent + d;
size_t dst_idx = (b * total_len + t) * d_latent + d;
ckf[dst_idx] = ck[src_idx];
}
}
}
Tensor k = W_uk->forward(c_kv_flat);
Tensor v = W_uv->forward(c_kv_flat);
k = k.reshape({batch, total_len, n_heads, head_dim});
v = v.reshape({batch, total_len, n_heads, head_dim});
// 注意力计算
Tensor output({batch, seq_len, d_model}, QuantType::FP32);
float* out = output.as_fp32();
float* qp = q.as_fp32();
float* kp = k.as_fp32();
float* vp = v.as_fp32();
float scale = 1.0f / std::sqrt(static_cast<float>(head_dim));
for (size_t b = 0; b < batch; ++b) {
for (size_t h = 0; h < n_heads; ++h) {
for (size_t s = 0; s < seq_len; ++s) {
// 计算注意力分数
std::vector<float> scores(total_len);
for (size_t t = 0; t < total_len; ++t) {
float dot = 0;
for (size_t d = 0; d < head_dim; ++d) {
dot += qp[b * seq_len * n_heads * head_dim + s * n_heads * head_dim + h * head_dim + d]
* kp[b * total_len * n_heads * head_dim + t * n_heads * head_dim + h * head_dim + d];
}
scores[t] = dot * scale;
}
// Softmax
float max_s = scores[0];
for (auto& sc : scores) max_s = std::max(max_s, sc);
float sum = 0;
for (auto& sc : scores) {
sc = std::exp(sc - max_s);
sum += sc;
}
for (auto& sc : scores) sc /= sum;
// 加权求和
for (size_t d = 0; d < head_dim; ++d) {
float val = 0;
for (size_t t = 0; t < total_len; ++t) {
val += scores[t] * vp[b * total_len * n_heads * head_dim + t * n_heads * head_dim + h * head_dim + d];
}
out[b * seq_len * d_model + s * d_model + h * head_dim + d] = val;
}
}
}
}
output = W_o->forward(output.reshape({batch * seq_len, d_model}));
output = output.reshape({batch, seq_len, d_model});
// 更新cache
if (use_cache) {
float* c = cache.as_fp32();
float* nk = c_kv.as_fp32();
// 只保留最新的部分
size_t keep = std::min(seq_len, max_cache_len - cache_len);
if (cache_len + seq_len > max_cache_len) {
// 滑动:丢弃旧的
size_t shift = cache_len + seq_len - max_cache_len;
memmove(c, c + shift * d_latent, (cache_len - shift) * d_latent * sizeof(float));
cache_len -= shift;
}
memcpy(c + cache_len * d_latent, nk, seq_len * d_latent * sizeof(float));
cache_len += seq_len;
}
return output.reshape({batch, d_model});
}
// 清空cache
void clear_cache() {
cache_len = 0;
memset(cache.data_.get(), 0, cache.data_size_);
}
// 获取cache大小 (字节)
size_t cache_size_bytes() const {
return cache_len * d_latent * sizeof(float);
}
// 相比传统KV节省的内存比例
float memory_saving_ratio() const {
size_t traditional_size = cache_len * d_model * 2 * sizeof(float); // K + V
size_t mla_size = cache_len * d_latent * sizeof(float);
return 1.0f - static_cast<float>(mla_size) / traditional_size;
}
};
/**
* MemoryConsolidationModule
*
* 模拟海马体记忆巩固:
* 1. Encoding - 记忆编码
* 2. Retrieval - 注意力检索
* 3. Consolidation - LTP增强
*/
class MemoryConsolidationModule {
public:
size_t memory_slots;
size_t memory_dim;
float ltp_rate;
// 记忆库
Tensor memory_bank; // (slots, dim)
// 投影
std::shared_ptr<Linear> encode_proj;
std::shared_ptr<Linear> retrieve_proj;
std::shared_ptr<Linear> query_proj;
MemoryConsolidationModule(size_t input_dim, size_t slots = 64, size_t dim = 128, float ltp = 0.01f)
: memory_slots(slots), memory_dim(dim), ltp_rate(ltp) {
memory_bank = Tensor({slots, dim}, QuantType::FP32);
float* m = memory_bank.as_fp32();
std::mt19937 init_rng(42);
std::uniform_real_distribution<float> init_dist(-0.02f, 0.02f);
for (size_t i = 0; i < memory_bank.numel(); ++i) {
m[i] = init_dist(init_rng);
}
encode_proj = std::make_shared<Linear>(input_dim, dim);
retrieve_proj = std::make_shared<Linear>(dim, input_dim);
query_proj = std::make_shared<Linear>(input_dim, dim);
}
// 编码
Tensor encode(const Tensor& x) {
return encode_proj->forward(x);
}
// 检索
struct RetrievalResult {
Tensor retrieved;
Tensor attention;
};
RetrievalResult retrieve(const Tensor& query) {
RetrievalResult result;
Tensor q = query_proj->forward(query); // (batch, dim)
// 注意力: query @ memory_bank.T
size_t batch = q.shape_[0];
result.attention = Tensor({batch, memory_slots}, QuantType::FP32);
float* qp = q.as_fp32();
float* mp = memory_bank.as_fp32();
float* ap = result.attention.as_fp32();
float scale = 1.0f / std::sqrt(static_cast<float>(memory_dim));
for (size_t b = 0; b < batch; ++b) {
// 计算分数
std::vector<float> scores(memory_slots);
for (size_t s = 0; s < memory_slots; ++s) {
float dot = 0;
for (size_t d = 0; d < memory_dim; ++d) {
dot += qp[b * memory_dim + d] * mp[s * memory_dim + d];
}
scores[s] = dot * scale;
}
// Softmax
float max_s = scores[0];
for (auto& sc : scores) max_s = std::max(max_s, sc);
float sum = 0;
for (auto& sc : scores) {
sc = std::exp(sc - max_s);
sum += sc;
}
for (size_t s = 0; s < memory_slots; ++s) {
ap[b * memory_slots + s] = scores[s] / sum;
}
}
// 检索: attention @ memory_bank
Tensor retrieved_mem({batch, memory_dim}, QuantType::FP32);
float* rp = retrieved_mem.as_fp32();
for (size_t b = 0; b < batch; ++b) {
for (size_t d = 0; d < memory_dim; ++d) {
float val = 0;
for (size_t s = 0; s < memory_slots; ++s) {
val += ap[b * memory_slots + s] * mp[s * memory_dim + d];
}
rp[b * memory_dim + d] = val;
}
}
result.retrieved = retrieve_proj->forward(retrieved_mem);
return result;
}
// 记忆巩固 (LTP模拟)
void consolidate(const Tensor& x) {
Tensor encoded = encode(x);
Tensor q = query_proj->forward(x);
float* qp = q.as_fp32();
float* mp = memory_bank.as_fp32();
float* ep = encoded.as_fp32();
size_t batch = x.shape_[0];
// 计算注意力
std::vector<std::vector<float>> attentions(batch);
for (size_t b = 0; b < batch; ++b) {
attentions[b].resize(memory_slots);
for (size_t s = 0; s < memory_slots; ++s) {
float dot = 0;
for (size_t d = 0; d < memory_dim; ++d) {
dot += qp[b * memory_dim + d] * mp[s * memory_dim + d];
}
attentions[b][s] = dot;
}
float max_s = attentions[b][0];
for (auto& sc : attentions[b]) max_s = std::max(max_s, sc);
float sum = 0;
for (auto& sc : attentions[b]) {
sc = std::exp(sc - max_s);
sum += sc;
}
for (auto& sc : attentions[b]) sc /= sum;
}
// 更新记忆槽 (加权平均)
for (size_t s = 0; s < memory_slots; ++s) {
float update = 0;
float weight_sum = 0;
for (size_t b = 0; b < batch; ++b) {
float w = attentions[b][s];
weight_sum += w;
for (size_t d = 0; d < memory_dim; ++d) {
update += w * ep[b * memory_dim + d];
}
}
if (weight_sum > 0) {
for (size_t d = 0; d < memory_dim; ++d) {
mp[s * memory_dim + d] += ltp_rate * (update / weight_sum - mp[s * memory_dim + d]);
}
}
}
}
// 前向
RetrievalResult forward(const Tensor& x) {
auto result = retrieve(x);
return result;
}
};
/**
* PagedMemoryManager
*
* 支持长记忆的分页系统:
* 1. 内存中的活跃页
* 2. 磁盘上的历史页
* 3. 自动页换入换出
*/
class PagedMemoryManager {
public:
struct MemoryPage {
Tensor data;
size_t page_id;
size_t access_count;
bool in_memory;
std::string disk_path;
};
size_t page_size; // 每页槽数量
size_t max_memory_pages; // 内存最大页数
size_t memory_dim;
std::unordered_map<size_t, MemoryPage> pages;
std::queue<size_t> page_order; // 用于LRU
size_t next_page_id;
std::string disk_dir;
PagedMemoryManager(size_t page_sz, size_t max_pages, size_t dim, const std::string& dir = "/tmp/neuroflow_mem")
: page_size(page_sz), max_memory_pages(max_pages), memory_dim(dim),
next_page_id(0), disk_dir(dir) {
// 创建磁盘目录
// mkdir(disk_dir.c_str(), 0755); // 实际应用中添加
}
// 创建新页
size_t create_page() {
size_t id = next_page_id++;
MemoryPage page;
page.page_id = id;
page.data = Tensor({page_size, memory_dim}, QuantType::FP32);
page.access_count = 0;
page.in_memory = true;
page.disk_path = disk_dir + "/page_" + std::to_string(id) + ".bin";
pages[id] = page;
page_order.push(id);
// 如果超过内存限制,换出最旧页
if (pages.size() > max_memory_pages) {
evict_oldest();
}
return id;
}
// 获取页数据
Tensor* get_page(size_t id) {
if (pages.find(id) == pages.end()) return nullptr;
auto& page = pages[id];
page.access_count++;
// 如果在磁盘,换入
if (!page.in_memory) {
load_from_disk(id);
}
return &page.data;
}
// 换出最旧页
void evict_oldest() {
while (page_order.size() > max_memory_pages) {
size_t old_id = page_order.front();
page_order.pop();
auto& page = pages[old_id];
if (page.in_memory) {
save_to_disk(old_id);
page.in_memory = false;
}
}
}
// 保存到磁盘
void save_to_disk(size_t id) {
auto& page = pages[id];
if (page.data.dtype_ != QuantType::FP32)
throw std::runtime_error("save_to_disk: page " + std::to_string(id) + " is not FP32");
if (!page.data.data_ || page.data.data_size_ == 0)
throw std::runtime_error("save_to_disk: page " + std::to_string(id) + " has no data");
std::ofstream f(page.disk_path, std::ios::binary);
if (!f) throw std::runtime_error("Cannot save page to disk: " + page.disk_path);
const float* data = page.data.as_fp32();
f.write(reinterpret_cast<const char*>(data), page.data.data_size_);
if (!f.good()) throw std::runtime_error("Write error saving page: " + page.disk_path);
f.close();
}
void load_from_disk(size_t id) {
auto& page = pages[id];
if (page.data.dtype_ != QuantType::FP32)
throw std::runtime_error("load_from_disk: page " + std::to_string(id) + " is not FP32");
if (!page.data.data_ || page.data.data_size_ == 0)
throw std::runtime_error("load_from_disk: page " + std::to_string(id) + " has no data");
std::ifstream f(page.disk_path, std::ios::binary);
if (!f) throw std::runtime_error("Cannot load page from disk: " + page.disk_path);
float* data = page.data.as_fp32();
f.read(reinterpret_cast<char*>(data), page.data.data_size_);
if (!f.good()) throw std::runtime_error("Read error loading page: " + page.disk_path);
f.close();
page.in_memory = true;
page_order.push(id);
}
// 获取统计
struct Stats {
size_t total_pages;
size_t in_memory_pages;
size_t on_disk_pages;
size_t total_memory_bytes;
};
Stats get_stats() {
Stats s;
s.total_pages = pages.size();
s.in_memory_pages = 0;
s.on_disk_pages = 0;
s.total_memory_bytes = 0;
for (auto& [id, page] : pages) {
if (page.in_memory) {
s.in_memory_pages++;
s.total_memory_bytes += page.data.data_size_;
} else {
s.on_disk_pages++;
}
}
return s;
}
};
} // namespace neuroflow
#endif // NEUROFLOW_MEMORY_HPP |