[PATCH] Update Documentation/kprobes.txt
Documentation/kprobes.txt updated to reflect: o In-kernel symbol resolution o CONFIG_KALLSYMS dependency o Usage of JPROBE_ENTRY o Addition of regs_return_value() Also update the references list and usage examples to use correct module interfaces. Signed-off-by: Ananth N Mavinakayanahalli <ananth@in.ibm.com> Acked-by: Jim Keniston <jkenisto@us.ibm.com> Signed-off-by: Andrew Morton <akpm@osdl.org> Signed-off-by: Linus Torvalds <torvalds@osdl.org>
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1 changed files with 56 additions and 33 deletions
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@ -151,9 +151,9 @@ So that you can load and unload Kprobes-based instrumentation modules,
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make sure "Loadable module support" (CONFIG_MODULES) and "Module
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unloading" (CONFIG_MODULE_UNLOAD) are set to "y".
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You may also want to ensure that CONFIG_KALLSYMS and perhaps even
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CONFIG_KALLSYMS_ALL are set to "y", since kallsyms_lookup_name()
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is a handy, version-independent way to find a function's address.
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Also make sure that CONFIG_KALLSYMS and perhaps even CONFIG_KALLSYMS_ALL
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are set to "y", since kallsyms_lookup_name() is used by the in-kernel
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kprobe address resolution code.
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If you need to insert a probe in the middle of a function, you may find
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it useful to "Compile the kernel with debug info" (CONFIG_DEBUG_INFO),
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@ -179,6 +179,27 @@ occurs during execution of kp->pre_handler or kp->post_handler,
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or during single-stepping of the probed instruction, Kprobes calls
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kp->fault_handler. Any or all handlers can be NULL.
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NOTE:
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1. With the introduction of the "symbol_name" field to struct kprobe,
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the probepoint address resolution will now be taken care of by the kernel.
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The following will now work:
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kp.symbol_name = "symbol_name";
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(64-bit powerpc intricacies such as function descriptors are handled
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transparently)
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2. Use the "offset" field of struct kprobe if the offset into the symbol
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to install a probepoint is known. This field is used to calculate the
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probepoint.
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3. Specify either the kprobe "symbol_name" OR the "addr". If both are
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specified, kprobe registration will fail with -EINVAL.
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4. With CISC architectures (such as i386 and x86_64), the kprobes code
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does not validate if the kprobe.addr is at an instruction boundary.
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Use "offset" with caution.
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register_kprobe() returns 0 on success, or a negative errno otherwise.
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User's pre-handler (kp->pre_handler):
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@ -225,6 +246,12 @@ control to Kprobes.) If the probed function is declared asmlinkage,
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fastcall, or anything else that affects how args are passed, the
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handler's declaration must match.
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NOTE: A macro JPROBE_ENTRY is provided to handle architecture-specific
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aliasing of jp->entry. In the interest of portability, it is advised
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to use:
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jp->entry = JPROBE_ENTRY(handler);
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register_jprobe() returns 0 on success, or a negative errno otherwise.
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4.3 register_kretprobe
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@ -251,6 +278,11 @@ of interest:
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- ret_addr: the return address
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- rp: points to the corresponding kretprobe object
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- task: points to the corresponding task struct
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The regs_return_value(regs) macro provides a simple abstraction to
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extract the return value from the appropriate register as defined by
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the architecture's ABI.
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The handler's return value is currently ignored.
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4.4 unregister_*probe
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@ -369,7 +401,6 @@ stack trace and selected i386 registers when do_fork() is called.
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#include <linux/kernel.h>
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#include <linux/module.h>
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#include <linux/kprobes.h>
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#include <linux/kallsyms.h>
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#include <linux/sched.h>
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/*For each probe you need to allocate a kprobe structure*/
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@ -403,18 +434,14 @@ int handler_fault(struct kprobe *p, struct pt_regs *regs, int trapnr)
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return 0;
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}
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int init_module(void)
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static int __init kprobe_init(void)
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{
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int ret;
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kp.pre_handler = handler_pre;
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kp.post_handler = handler_post;
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kp.fault_handler = handler_fault;
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kp.addr = (kprobe_opcode_t*) kallsyms_lookup_name("do_fork");
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/* register the kprobe now */
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if (!kp.addr) {
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printk("Couldn't find %s to plant kprobe\n", "do_fork");
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return -1;
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}
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kp.symbol_name = "do_fork";
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if ((ret = register_kprobe(&kp) < 0)) {
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printk("register_kprobe failed, returned %d\n", ret);
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return -1;
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@ -423,12 +450,14 @@ int init_module(void)
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return 0;
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}
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void cleanup_module(void)
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static void __exit kprobe_exit(void)
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{
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unregister_kprobe(&kp);
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printk("kprobe unregistered\n");
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}
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module_init(kprobe_init)
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module_exit(kprobe_exit)
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MODULE_LICENSE("GPL");
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----- cut here -----
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@ -463,7 +492,6 @@ the arguments of do_fork().
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#include <linux/fs.h>
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#include <linux/uio.h>
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#include <linux/kprobes.h>
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#include <linux/kallsyms.h>
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/*
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* Jumper probe for do_fork.
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@ -485,17 +513,13 @@ long jdo_fork(unsigned long clone_flags, unsigned long stack_start,
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}
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static struct jprobe my_jprobe = {
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.entry = (kprobe_opcode_t *) jdo_fork
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.entry = JPROBE_ENTRY(jdo_fork)
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};
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int init_module(void)
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static int __init jprobe_init(void)
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{
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int ret;
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my_jprobe.kp.addr = (kprobe_opcode_t *) kallsyms_lookup_name("do_fork");
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if (!my_jprobe.kp.addr) {
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printk("Couldn't find %s to plant jprobe\n", "do_fork");
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return -1;
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}
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my_jprobe.kp.symbol_name = "do_fork";
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if ((ret = register_jprobe(&my_jprobe)) <0) {
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printk("register_jprobe failed, returned %d\n", ret);
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@ -506,12 +530,14 @@ int init_module(void)
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return 0;
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}
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void cleanup_module(void)
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static void __exit jprobe_exit(void)
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{
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unregister_jprobe(&my_jprobe);
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printk("jprobe unregistered\n");
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}
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module_init(jprobe_init)
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module_exit(jprobe_exit)
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MODULE_LICENSE("GPL");
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----- cut here -----
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@ -530,16 +556,13 @@ report failed calls to sys_open().
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#include <linux/kernel.h>
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#include <linux/module.h>
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#include <linux/kprobes.h>
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#include <linux/kallsyms.h>
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static const char *probed_func = "sys_open";
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/* Return-probe handler: If the probed function fails, log the return value. */
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static int ret_handler(struct kretprobe_instance *ri, struct pt_regs *regs)
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{
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// Substitute the appropriate register name for your architecture --
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// e.g., regs->rax for x86_64, regs->gpr[3] for ppc64.
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int retval = (int) regs->eax;
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int retval = regs_return_value(regs);
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if (retval < 0) {
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printk("%s returns %d\n", probed_func, retval);
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}
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@ -552,15 +575,11 @@ static struct kretprobe my_kretprobe = {
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.maxactive = 20
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};
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int init_module(void)
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static int __init kretprobe_init(void)
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{
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int ret;
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my_kretprobe.kp.addr =
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(kprobe_opcode_t *) kallsyms_lookup_name(probed_func);
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if (!my_kretprobe.kp.addr) {
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printk("Couldn't find %s to plant return probe\n", probed_func);
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return -1;
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}
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my_kretprobe.kp.symbol_name = (char *)probed_func;
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if ((ret = register_kretprobe(&my_kretprobe)) < 0) {
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printk("register_kretprobe failed, returned %d\n", ret);
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return -1;
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@ -569,7 +588,7 @@ int init_module(void)
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return 0;
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}
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void cleanup_module(void)
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static void __exit kretprobe_exit(void)
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{
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unregister_kretprobe(&my_kretprobe);
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printk("kretprobe unregistered\n");
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@ -578,6 +597,8 @@ void cleanup_module(void)
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my_kretprobe.nmissed, probed_func);
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}
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module_init(kretprobe_init)
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module_exit(kretprobe_exit)
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MODULE_LICENSE("GPL");
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----- cut here -----
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@ -590,3 +611,5 @@ messages.)
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For additional information on Kprobes, refer to the following URLs:
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http://www-106.ibm.com/developerworks/library/l-kprobes.html?ca=dgr-lnxw42Kprobe
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http://www.redhat.com/magazine/005mar05/features/kprobes/
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http://www-users.cs.umn.edu/~boutcher/kprobes/
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http://www.linuxsymposium.org/2006/linuxsymposium_procv2.pdf (pages 101-115)
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