static inline void *cow_malloc(int size)
{
- return um_kmalloc(size);
+ return kmalloc(size, UM_GFP_KERNEL);
}
static inline void cow_free(void *ptr)
{
struct sockaddr_un *sun;
- sun = um_kmalloc(sizeof(struct sockaddr_un));
+ sun = kmalloc(sizeof(struct sockaddr_un), UM_GFP_KERNEL);
if(sun == NULL){
printk("new_addr: allocation of sockaddr_un failed\n");
return NULL;
goto out_close;
}
- sun = um_kmalloc(sizeof(struct sockaddr_un));
+ sun = kmalloc(sizeof(struct sockaddr_un), UM_GFP_KERNEL);
if(sun == NULL){
printk("new_addr: allocation of sockaddr_un failed\n");
err = -ENOMEM;
printk("fd_init : couldn't parse file descriptor '%s'\n", str);
return(NULL);
}
- data = um_kmalloc(sizeof(*data));
+ data = kmalloc(sizeof(*data), UM_GFP_KERNEL);
if(data == NULL) return(NULL);
*data = ((struct fd_chan) { .fd = n,
.raw = opts->raw });
{
struct sockaddr_in *sin;
- sin = um_kmalloc(sizeof(struct sockaddr_in));
+ sin = kmalloc(sizeof(struct sockaddr_in), UM_GFP_KERNEL);
if(sin == NULL){
printk("new_addr: allocation of sockaddr_in failed\n");
return NULL;
netmask[2], netmask[3]);
output_len = UM_KERN_PAGE_SIZE;
- output = um_kmalloc(output_len);
+ output = kmalloc(output_len, UM_GFP_KERNEL);
if(output == NULL)
printk("change : failed to allocate output buffer\n");
if(kern_data == NULL)
return NULL;
- data = um_kmalloc(sizeof(*data));
+ data = kmalloc(sizeof(*data), UM_GFP_KERNEL);
if(data == NULL)
goto err;
{
struct pty_chan *data;
- data = um_kmalloc(sizeof(*data));
+ data = kmalloc(sizeof(*data), UM_GFP_KERNEL);
if (data == NULL)
return NULL;
pid = err;
output_len = UM_KERN_PAGE_SIZE;
- output = um_kmalloc(output_len);
+ output = kmalloc(output_len, UM_GFP_KERNEL);
if(output == NULL){
printk("slip_tramp : failed to allocate output buffer\n");
os_kill_process(pid, 1);
}
str++;
- data = um_kmalloc(sizeof(*data));
+ data = kmalloc(sizeof(*data), UM_GFP_KERNEL);
if(data == NULL)
return NULL;
*data = ((struct tty_chan) { .dev = str,
DEFINE(UM_NR_CPUS, NR_CPUS);
+DEFINE(UM_GFP_KERNEL, GFP_KERNEL);
+DEFINE(UM_GFP_ATOMIC, GFP_ATOMIC);
+
/* For crypto assembler code. */
DEFINE(crypto_tfm_ctx_offset, offsetof(struct crypto_tfm, __crt_ctx));
#ifndef __UM_MALLOC_H__
#define __UM_MALLOC_H__
-extern void *um_kmalloc(int size);
-extern void *um_kmalloc_atomic(int size);
+#include "kern_constants.h"
+
+extern void *__kmalloc(int size, int flags);
+static inline void *kmalloc(int size, int flags)
+{
+ return __kmalloc(size, flags);
+}
+
extern void kfree(const void *ptr);
-extern void *um_vmalloc(int size);
+extern void *vmalloc(unsigned long size);
extern void vfree(void *ptr);
#endif /* __UM_MALLOC_H__ */
#include "irq_kern.h"
#include "os.h"
#include "sigio.h"
-#include "um_malloc.h"
#include "misc_constants.h"
#include "as-layout.h"
#include "mode.h"
#include "mode_kern.h"
#include "choose-mode.h"
-#include "um_malloc.h"
/* This is a per-cpu array. A processor only modifies its entry and it only
* cares about its entry, so it's OK if another processor is modifying its
{
}
-void *um_kmalloc(int size)
-{
- return kmalloc(size, GFP_KERNEL);
-}
-
-void *um_kmalloc_atomic(int size)
-{
- return kmalloc(size, GFP_ATOMIC);
-}
-
-void *um_vmalloc(int size)
-{
- return vmalloc(size);
-}
-
int __cant_sleep(void) {
return in_atomic() || irqs_disabled() || in_interrupt();
/* Is in_interrupt() really needed? */
return;
}
- output = um_kmalloc(UM_KERN_PAGE_SIZE);
+ output = kmalloc(UM_KERN_PAGE_SIZE, UM_GFP_KERNEL);
if(output == NULL)
printk("etap_change : Failed to allocate output buffer\n");
read_output(fd, output, UM_KERN_PAGE_SIZE);
err = etap_tramp(pri->dev_name, pri->gate_addr, control_fds[0],
control_fds[1], data_fds[0], data_fds[1]);
output_len = UM_KERN_PAGE_SIZE;
- output = um_kmalloc(output_len);
+ output = kmalloc(output_len, UM_GFP_KERNEL);
read_output(control_fds[0], output, output_len);
if(output == NULL)
data.pre_data = pre_data;
data.argv = argv;
data.fd = fds[1];
- data.buf = __cant_sleep() ? um_kmalloc_atomic(PATH_MAX) :
- um_kmalloc(PATH_MAX);
+ data.buf = __cant_sleep() ? kmalloc(PATH_MAX, UM_GFP_ATOMIC) :
+ kmalloc(PATH_MAX, UM_GFP_KERNEL);
pid = clone(helper_child, (void *) sp, CLONE_VM | SIGCHLD, &data);
if (pid < 0) {
ret = -errno;
return __real_malloc(size);
else if(size <= UM_KERN_PAGE_SIZE)
/* finding contiguous pages can be hard*/
- ret = um_kmalloc(size);
- else ret = um_vmalloc(size);
+ ret = kmalloc(size, UM_GFP_KERNEL);
+ else ret = vmalloc(size);
/* glibc people insist that if malloc fails, errno should be
* set by malloc as well. So we do.
if(n <= polls->size)
return 0;
- new = um_kmalloc_atomic(n * sizeof(struct pollfd));
+ new = kmalloc(n * sizeof(struct pollfd), UM_GFP_ATOMIC);
if(new == NULL){
printk("need_poll : failed to allocate new pollfds\n");
return -ENOMEM;
{
struct pollfd *p;
- p = um_kmalloc(sizeof(struct pollfd));
+ p = kmalloc(sizeof(struct pollfd), UM_GFP_KERNEL);
if (p == NULL) {
printk("setup_initial_poll : failed to allocate poll\n");
return NULL;