Files
volatilityfoundation-volati…/volatility/plugins/linux/common.py
T
2012-09-10 15:06:57 +00:00

634 lines
17 KiB
Python

# Volatility
#
# This program is free software; you can redistribute it and/or modify
# it under the terms of the GNU General Public License as published by
# the Free Software Foundation; either version 2 of the License, or (at
# your option) any later version.
#
# This program is distributed in the hope that it will be useful, but
# WITHOUT ANY WARRANTY; without even the implied warranty of
# MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
# General Public License for more details.
#
# You should have received a copy of the GNU General Public License
# along with this program; if not, write to the Free Software
# Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
"""
@author: Andrew Case
@license: GNU General Public License 2.0 or later
@contact: atcuno@gmail.com
@organization: Digital Forensics Solutions
"""
import volatility.commands as commands
import volatility.utils as utils
import volatility.debug as debug
import volatility.obj as obj
import volatility.plugins.linux.flags as linux_flags
MAX_STRING_LENGTH = 256
import time
nsecs_per = 1000000000
def set_plugin_members(obj_ref):
obj_ref.addr_space = utils.load_as(obj_ref._config)
class AbstractLinuxCommand(commands.Command):
def __init__(self, *args, **kwargs):
self.addr_space = None
commands.Command.__init__(self, *args, **kwargs)
@property
def profile(self):
if self.addr_space:
return self.addr_space.profile
return None
def execute(self, *args, **kwargs):
commands.Command.execute(self, *args, **kwargs)
@staticmethod
def is_valid_profile(profile):
return profile.metadata.get('os', 'Unknown').lower() == 'linux'
def get_profile_symbol(self, sym_name, nm_type = "", sym_type = "", module = "kernel"):
'''
Gets a symbol out of the profile
syn_name -> name of the symbol
nm_tyes -> types as defined by 'nm' (man nm for examples)
sym_type -> the type of the symbol (passing Pointer will provide auto deref)
module -> which module to get the symbol from, default is kernel, otherwise can be any name seen in 'lsmod'
Just a wrapper for AbstractLinuxProfile.get_symbol
'''
return self.profile.get_symbol(sym_name, nm_type, sym_type, module)
# In 2.6.3x, Linux changed how the symbols for per_cpu variables were named
# This handles both formats so plugins needing per-cpu vars are cleaner
def get_per_cpu_symbol(self, sym_name, module = "kernel"):
ret = self.get_profile_symbol(sym_name, module = module)
if not ret:
ret = self.get_profile_symbol("per_cpu__" + sym_name, module = module)
return ret
## FIXME: This currently returns using localtime, we should probably use UTC?
def get_task_start_time(self, task):
start_time = task.start_time
start_secs = start_time.tv_sec + (start_time.tv_nsec / nsecs_per / 100)
sec = get_boot_time(self) + start_secs
return time.strftime("%a, %d %b %Y %H:%M:%S +0000", time.localtime(sec))
# returns a list of online cpus (the processor numbers)
def online_cpus(self):
cpu_online_bits_addr = self.get_profile_symbol("cpu_online_bits")
cpu_present_map_addr = self.get_profile_symbol("cpu_present_map")
#later kernels..
if cpu_online_bits_addr:
bmap = obj.Object("unsigned long", offset = cpu_online_bits_addr, vm = self.addr_space)
elif cpu_present_map_addr:
bmap = obj.Object("unsigned long", offset = cpu_present_map_addr, vm = self.addr_space)
else:
raise AttributeError, "Unable to determine number of online CPUs for memory capture"
cpus = []
for i in range(8):
if bmap & (1 << i):
cpus.append(i)
return cpus
def walk_per_cpu_var(obj_ref, per_var, var_type):
cpus = online_cpus(obj_ref)
# get the highest numbered cpu
max_cpu = cpus[-1] + 1
offset_var = obj_ref.get_profile_symbol("__per_cpu_offset")
per_offsets = obj.Object(theType = 'Array', targetType = 'unsigned long', count = max_cpu, offset = offset_var, vm = obj_ref.addr_space)
for i in range(max_cpu):
offset = per_offsets[i]
cpu_var = obj_ref.get_per_cpu_symbol(per_var)
addr = cpu_var + offset.v()
var = obj.Object(var_type, offset = addr, vm = obj_ref.addr_space)
yield i, var
def get_time_vars(obj_ref):
'''
Sometime in 3.[3-5], Linux switched to a global timekeeper structure
This just figures out which is in use and returns the correct variables
'''
wall_addr = obj_ref.get_profile_symbol("wall_to_monotonic")
# old way
if wall_addr:
wall = obj.Object("timespec", offset = wall_addr, vm = obj_ref.addr_space)
sleep_addr = obj_ref.get_profile_symbol("total_sleep_time")
timeo = obj.Object("timespec", offset = sleep_addr, vm = obj_ref.addr_space)
# timekeeper way
else:
timekeeper_addr = obj_ref.get_profile_symbol("timekeeper")
timekeeper = obj.Object("timekeeper", offset = timekeeper_addr, vm = obj_ref.addr_space)
wall = timekeeper.wall_to_monotonic
timeo = timekeeper.total_sleep_time
return (wall, timeo)
# based on 2.6.35 getboottime
def get_boot_time(obj_ref):
(wall, timeo) = get_time_vars(obj_ref)
secs = wall.tv_sec + timeo.tv_sec
nsecs = wall.tv_nsec + timeo.tv_nsec
secs = secs * -1
nsecs = nsecs * -1
while nsecs >= nsecs_per:
nsecs = nsecs - nsecs_per
secs = secs + 1
while nsecs < 0:
nsecs = nsecs + nsecs_per
secs = secs - 1
boot_time = secs + (nsecs / nsecs_per / 100)
return boot_time
# similar to for_each_process for this usage
def walk_list_head(struct_name, list_member, list_head_ptr, _addr_space):
debug.warning("Deprecated use of walk_list_head")
for item in list_head_ptr.list_of_type(struct_name, list_member):
yield item
def walk_internal_list(struct_name, list_member, list_start, addr_space = None):
if not addr_space:
addr_space = list_start.obj_vm
while list_start:
list_struct = obj.Object(struct_name, vm = addr_space, offset = list_start.v())
yield list_struct
list_start = getattr(list_struct, list_member)
# based on __d_path
# TODO: (deleted) support
def do_get_path(rdentry, rmnt, dentry, vfsmnt):
ret_path = []
inode = dentry.d_inode
if not rdentry.is_valid() or not dentry.is_valid():
return []
while (dentry != rdentry or vfsmnt != rmnt) and dentry.d_name.name.is_valid():
dname = dentry.d_name.name.dereference_as("String", length = MAX_STRING_LENGTH)
ret_path.append(dname.strip('/'))
if dentry == vfsmnt.mnt_root or dentry == dentry.d_parent:
if vfsmnt.mnt_parent == vfsmnt.v():
break
dentry = vfsmnt.mnt_mountpoint
vfsmnt = vfsmnt.mnt_parent
continue
parent = dentry.d_parent
dentry = parent
ret_path.reverse()
if ret_path == []:
return []
ret_val = '/'.join([str(p) for p in ret_path if p != ""])
if ret_val.startswith(("socket:", "pipe:")):
if ret_val.find("]") == -1:
ret_val = ret_val[:-1] + ":[{0}]".format(inode.i_ino)
else:
ret_val = ret_val.replace("/", "")
elif ret_val != "inotify":
ret_val = '/' + ret_val
return ret_val
def get_path(task, filp):
rdentry = task.fs.get_root_dentry()
rmnt = task.fs.get_root_mnt()
dentry = filp.dentry
vfsmnt = filp.vfsmnt
return do_get_path(rdentry, rmnt, dentry, vfsmnt)
def get_obj(self, ptr, sname, member):
offset = self.profile.get_obj_offset(sname, member)
addr = ptr - offset
return obj.Object(sname, offset = addr, vm = self.addr_space)
def S_ISDIR(mode):
return (mode & linux_flags.S_IFMT) == linux_flags.S_IFDIR
def S_ISREG(mode):
return (mode & linux_flags.S_IFMT) == linux_flags.S_IFREG
###################
# code to walk the page cache and mem_map / mem_section page structs
###################
'''
def SECTIONS_PER_ROOT(self, is_extreme):
if is_extreme:
secs_per_root = 4096 / self.profile.get_obj_size("mem_section")
else:
secs_per_root = 1
return secs_per_root
def SECTION_NR_TO_ROOT(self, nr, is_extreme):
secs_per_root = SECTIONS_PER_ROOT(self, is_extreme)
return nr / secs_per_root
def SECTION_ROOT_MASK(self, is_extreme):
return SECTIONS_PER_ROOT(self, is_extreme) - 1
def nr_to_section(self, secnum):
# check if CONFIG_SPARSEMEM_EXTREME is set
if "sparse_index_alloc" in self.smap:
# mem_section is a double array of type 'mem_section'
nr = SECTION_NR_TO_ROOT(self, secnum, 1)
addr = self.smap["mem_section"]
addr = addr + ( nr * self.profile.get_obj_size("mem_section") )
# check the object here
tmp = obj.Object("long", offset=addr, vm=self.addr_space)
if not tmp.is_valid() or tmp in [None, 0]:
return None
#print "tmp: %x" % (tmp & (2**64-1))
offset = (nr & SECTION_ROOT_MASK(self, 1)) * self.profile.get_obj_size("mem_section")
ret = tmp + offset
#print "extreme %s" % tohex(ret)
else:
off = SECTIONS_PER_ROOT(self, 0) * SECTION_NR_TO_ROOT(self, secnum, 0)
ret = self.smap["mem_section"] + (off + (nr & SECTION_ROOT_MASK(self, 0)) * self.profile.get_obj_size("mem_section"))
return ret
def read_mem_section(self, addr):
if addr in [0, None]:
return None
testobj = obj.Object("mem_section", offset=addr, vm=self.addr_space)
if testobj:
SECTION_MAP_LAST_BIT = 1 << 2
SECTION_MAP_MASK = ~(SECTION_MAP_LAST_BIT-1)
ret = testobj.section_mem_map & SECTION_MAP_MASK
else:
ret = None
return ret
def valid_section(self, addr):
mem_section = read_mem_section(self, addr)
return mem_section
def valid_section_nr(self, nr):
addr = nr_to_section(self, nr);
if valid_section(self, addr):
ret = addr
else:
ret = 0
return ret
# FIXME 32 bit
# [SECTION_SIZE_BITS, MAX_PHYSADDR_BITS, MAX_PHYSMEM_BITS]
def get_bit_size(self):
return [27, 44, 44]
def PFN_SECTION_SHIFT(self):
# ?FIXME? arm
return get_bit_size(self)[0] - 12
def section_nr_to_pfn(self, nr):
return nr << PFN_SECTION_SHIFT(self)
def sparse_decode_mem_map(self, addr, nr):
return addr + (section_nr_to_pfn(self, nr) * self.profile.get_obj_size("page"))
def section_mem_map_addr(self, addr):
return read_mem_section(self, addr)
# most of the mem_section related work was based on crash
def get_phys_addr_section(self, page):
(SECTION_SIZE_BITS, MAX_PHYSADDR_BITS, MAX_PHYSMEM_BITS) = get_bit_size(self)
SECTIONS_SHIFT = MAX_PHYSMEM_BITS - SECTION_SIZE_BITS
num_sections = 1 << SECTIONS_SHIFT
want_addr = page
for secnum in range(0, num_sections):
sec_addr = valid_section_nr(self, secnum)
if not sec_addr:
continue
coded_mem_map = section_mem_map_addr(self, sec_addr)
mem_map = sparse_decode_mem_map(self, coded_mem_map, secnum)
end_mem_map = mem_map + ((1 << PFN_SECTION_SHIFT(self)) * self.profile.get_obj_size("page"))
if mem_map <= want_addr < end_mem_map:
section_paddr = section_nr_to_pfn(self, secnum) << 12
pgnum = (want_addr - mem_map) / self.profile.get_obj_size("page")
phys_offset = section_paddr + (pgnum * 4096)
print "OFFSET: %d | %x || %s" % (phys_offset, phys_offset, tohex(coded_mem_map))
return phys_offset
debug.info("get_phys_addr_section: Unable to get address for page")
return -1
'''
# FIXME - use 'class page' overlay?
def phys_addr_of_page(self, page):
mem_map_addr = self.get_profile_symbol("mem_map")
mem_section_addr = self.get_profile_symbol("mem_section")
if mem_map_addr:
# FLATMEM kernels, usually 32 bit
mem_map_ptr = obj.Object("Pointer", offset = mem_map_addr, vm = self.addr_space)
elif mem_section_addr:
# this is hardcoded in the kernel - VMEMMAPSTART, usually 64 bit kernels
# NOTE: This is really 0xffff0xea0000000000 but we chop to its 48 bit equivalent
# FIXME: change in 2.3 when truncation no longer occurs
mem_map_ptr = 0xea0000000000
else:
debug.error("phys_addr_of_page: Unable to determine physical address of page\n")
phys_offset = (page - mem_map_ptr) / self.profile.get_obj_size("page")
phys_offset = phys_offset << 12
return phys_offset
def radix_tree_is_indirect_ptr(self, ptr):
return ptr & 1
def radix_tree_indirect_to_ptr(self, ptr):
return obj.Object("radix_tree_node", offset = ptr & ~1, vm = self.addr_space)
def radix_tree_lookup_slot(self, root, index):
self.RADIX_TREE_MAP_SHIFT = 6
self.RADIX_TREE_MAP_SIZE = 1 << self.RADIX_TREE_MAP_SHIFT
self.RADIX_TREE_MAP_MASK = self.RADIX_TREE_MAP_SIZE - 1
node = root.rnode
if radix_tree_is_indirect_ptr(self, node) == 0:
if index > 0:
#print "returning None: index > 0"
return None
#print "returning obj_Offset"
off = root.obj_offset + self.profile.get_obj_offset("radix_tree_root", "rnode")
page = obj.Object("Pointer", offset = off, vm = self.addr_space)
return page
node = radix_tree_indirect_to_ptr(self, node)
height = node.height
shift = (height - 1) * self.RADIX_TREE_MAP_SHIFT
slot = -1
while 1:
idx = (index >> shift) & self.RADIX_TREE_MAP_MASK
slot = node.slots[idx]
shift = shift - self.RADIX_TREE_MAP_SHIFT
height = height - 1
if height <= 0:
break
if slot == -1:
return None
return slot
def SHMEM_I(self, inode):
offset = self.profile.get_obj_offset("shmem_inode_info", "vfs_inode")
return obj.Object("shmem_inode_info", offset = inode.obj_offset - offset, vm = self.addr_space)
def find_get_page(self, inode, offset):
page = radix_tree_lookup_slot(self, inode.i_mapping.page_tree, offset)
#if not page:
# TODO swapper_space support
#print "no page"
return page
def get_page_contents(self, inode, idx):
page = find_get_page(self, inode, idx)
if page:
#print "inode: %lx | %lx page: %lx" % (inode, inode.v(), page)
phys_offset = phys_addr_of_page(self, page)
phys_as = utils.load_as(self._config, astype = 'physical')
data = phys_as.read(phys_offset, 4096)
else:
data = "\x00" * 4096
return data
# main function to be called, handles getting all the pages of an inode
# and handles the last page not being page_size aligned
def get_file_contents(self, inode):
data = ""
file_size = inode.i_size
extra = file_size % 4096
idxs = file_size / 4096
if extra != 0:
extra = 4096 - extra
idxs = idxs + 1
for idx in range(0, idxs):
data = data + get_page_contents(self, inode, idx)
# this is chop off any extra data on the last page
if extra != 0:
extra = extra * -1
data = data[:extra]
return data
def is_known_address(obj_ref, addr, modules):
text = obj_ref.profile.get_symbol("_text", sym_type = "Pointer")
etext = obj_ref.profile.get_symbol("_etext", sym_type = "Pointer")
if text <= addr < etext or address_in_module(modules, addr):
known = 1
else:
known = 0
return known
# This returns the name of the module that contains an address or None
# The module_list parameter comes from a call to get_modules
# This function will be updated after 2.2 to resolve symbols within the module as well
def address_in_module(module_list, address):
ret = None
for (name, start, end) in module_list:
if start <= address < end:
ret = name
break
return ret
def verify_ops(obj_ref, fops, op_members, modules):
for check in op_members:
addr = fops.m(check)
if addr and addr != 0:
if addr in obj_ref.known_addrs:
known = obj_ref.known_addrs[addr]
else:
known = is_known_address(obj_ref, addr, modules)
obj_ref.known_addrs[addr] = known
if known == 0:
yield (check, addr)
# we can't get the full path b/c we
# do not have a ref to the vfsmnt
def get_partial_path(dentry):
path = []
name = ""
while dentry and dentry != dentry.d_parent:
name = dentry.d_name.name.dereference_as("String", length = 255)
if name.is_valid():
path.append(str(name))
dentry = dentry.d_parent
path.reverse()
str_path = "/".join([p for p in path])
return str_path