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    /*
     *  linux/fs/exec.c
     *
     *  Copyright (C) 1991, 1992  Linus Torvalds
     */
    
    /*
     * #!-checking implemented by tytso.
     */
    /*
     * Demand-loading implemented 01.12.91 - no need to read anything but
     * the header into memory. The inode of the executable is put into
     * "current->executable", and page faults do the actual loading. Clean.
     *
     * Once more I can proudly say that linux stood up to being changed: it
     * was less than 2 hours work to get demand-loading completely implemented.
     *
     * Demand loading changed July 1993 by Eric Youngdale.   Use mmap instead,
     * current->executable is only used by the procfs.  This allows a dispatch
     * table to check for several different types  of binary formats.  We keep
     * trying until we recognize the file or we run out of supported binary
     * formats. 
     */
    
    #include <linux/slab.h>
    #include <linux/file.h>
    #include <linux/mman.h>
    #include <linux/a.out.h>
    #include <linux/stat.h>
    #include <linux/fcntl.h>
    #include <linux/smp_lock.h>
    #include <linux/init.h>
    #include <linux/pagemap.h>
    #include <linux/highmem.h>
    #include <linux/spinlock.h>
    #include <linux/key.h>
    #include <linux/personality.h>
    #include <linux/binfmts.h>
    #include <linux/swap.h>
    #include <linux/utsname.h>
    
    #include <linux/pid_namespace.h>
    
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    #include <linux/module.h>
    #include <linux/namei.h>
    #include <linux/proc_fs.h>
    #include <linux/ptrace.h>
    #include <linux/mount.h>
    #include <linux/security.h>
    #include <linux/syscalls.h>
    #include <linux/rmap.h>
    
    #include <linux/tsacct_kern.h>
    
    #include <linux/cn_proc.h>
    
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    #include <linux/audit.h>
    
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    #include <asm/uaccess.h>
    #include <asm/mmu_context.h>
    
    #include <asm/tlb.h>
    
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    #ifdef CONFIG_KMOD
    #include <linux/kmod.h>
    #endif
    
    int core_uses_pid;
    
    char core_pattern[CORENAME_MAX_SIZE] = "core";
    
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    int suid_dumpable = 0;
    
    EXPORT_SYMBOL(suid_dumpable);
    
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    /* The maximal length of core_pattern is also specified in sysctl.c */
    
    static struct linux_binfmt *formats;
    static DEFINE_RWLOCK(binfmt_lock);
    
    int register_binfmt(struct linux_binfmt * fmt)
    {
    	struct linux_binfmt ** tmp = &formats;
    
    	if (!fmt)
    		return -EINVAL;
    	if (fmt->next)
    		return -EBUSY;
    	write_lock(&binfmt_lock);
    	while (*tmp) {
    		if (fmt == *tmp) {
    			write_unlock(&binfmt_lock);
    			return -EBUSY;
    		}
    		tmp = &(*tmp)->next;
    	}
    	fmt->next = formats;
    	formats = fmt;
    	write_unlock(&binfmt_lock);
    	return 0;	
    }
    
    EXPORT_SYMBOL(register_binfmt);
    
    int unregister_binfmt(struct linux_binfmt * fmt)
    {
    	struct linux_binfmt ** tmp = &formats;
    
    	write_lock(&binfmt_lock);
    	while (*tmp) {
    		if (fmt == *tmp) {
    			*tmp = fmt->next;
    
    			fmt->next = NULL;
    
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    			write_unlock(&binfmt_lock);
    			return 0;
    		}
    		tmp = &(*tmp)->next;
    	}
    	write_unlock(&binfmt_lock);
    	return -EINVAL;
    }
    
    EXPORT_SYMBOL(unregister_binfmt);
    
    static inline void put_binfmt(struct linux_binfmt * fmt)
    {
    	module_put(fmt->module);
    }
    
    /*
     * Note that a shared library must be both readable and executable due to
     * security reasons.
     *
     * Also note that we take the address to load from from the file itself.
     */
    asmlinkage long sys_uselib(const char __user * library)
    {
    	struct file * file;
    	struct nameidata nd;
    	int error;
    
    
    	error = __user_path_lookup_open(library, LOOKUP_FOLLOW, &nd, FMODE_READ|FMODE_EXEC);
    
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    	if (error)
    		goto out;
    
    
    	error = -EACCES;
    	if (nd.mnt->mnt_flags & MNT_NOEXEC)
    		goto exit;
    
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    	error = -EINVAL;
    	if (!S_ISREG(nd.dentry->d_inode->i_mode))
    		goto exit;
    
    
    	error = vfs_permission(&nd, MAY_READ | MAY_EXEC);
    
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    	if (error)
    		goto exit;
    
    
    	file = nameidata_to_filp(&nd, O_RDONLY);
    
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    	error = PTR_ERR(file);
    	if (IS_ERR(file))
    		goto out;
    
    	error = -ENOEXEC;
    	if(file->f_op) {
    		struct linux_binfmt * fmt;
    
    		read_lock(&binfmt_lock);
    		for (fmt = formats ; fmt ; fmt = fmt->next) {
    			if (!fmt->load_shlib)
    				continue;
    			if (!try_module_get(fmt->module))
    				continue;
    			read_unlock(&binfmt_lock);
    			error = fmt->load_shlib(file);
    			read_lock(&binfmt_lock);
    			put_binfmt(fmt);
    			if (error != -ENOEXEC)
    				break;
    		}
    		read_unlock(&binfmt_lock);
    	}
    	fput(file);
    out:
      	return error;
    exit:
    
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    	path_release(&nd);
    	goto out;
    }
    
    
    #ifdef CONFIG_MMU
    
    static struct page *get_arg_page(struct linux_binprm *bprm, unsigned long pos,
    		int write)
    {
    	struct page *page;
    	int ret;
    
    #ifdef CONFIG_STACK_GROWSUP
    	if (write) {
    		ret = expand_stack_downwards(bprm->vma, pos);
    		if (ret < 0)
    			return NULL;
    	}
    #endif
    	ret = get_user_pages(current, bprm->mm, pos,
    			1, write, 1, &page, NULL);
    	if (ret <= 0)
    		return NULL;
    
    	if (write) {
    		struct rlimit *rlim = current->signal->rlim;
    		unsigned long size = bprm->vma->vm_end - bprm->vma->vm_start;
    
    		/*
    		 * Limit to 1/4-th the stack size for the argv+env strings.
    		 * This ensures that:
    		 *  - the remaining binfmt code will not run out of stack space,
    		 *  - the program will have a reasonable amount of stack left
    		 *    to work from.
    		 */
    		if (size > rlim[RLIMIT_STACK].rlim_cur / 4) {
    			put_page(page);
    			return NULL;
    		}
    	}
    
    	return page;
    }
    
    static void put_arg_page(struct page *page)
    {
    	put_page(page);
    }
    
    static void free_arg_page(struct linux_binprm *bprm, int i)
    {
    }
    
    static void free_arg_pages(struct linux_binprm *bprm)
    {
    }
    
    static void flush_arg_page(struct linux_binprm *bprm, unsigned long pos,
    		struct page *page)
    {
    	flush_cache_page(bprm->vma, pos, page_to_pfn(page));
    }
    
    static int __bprm_mm_init(struct linux_binprm *bprm)
    {
    	int err = -ENOMEM;
    	struct vm_area_struct *vma = NULL;
    	struct mm_struct *mm = bprm->mm;
    
    	bprm->vma = vma = kmem_cache_zalloc(vm_area_cachep, GFP_KERNEL);
    	if (!vma)
    		goto err;
    
    	down_write(&mm->mmap_sem);
    	vma->vm_mm = mm;
    
    	/*
    	 * Place the stack at the largest stack address the architecture
    	 * supports. Later, we'll move this to an appropriate place. We don't
    	 * use STACK_TOP because that can depend on attributes which aren't
    	 * configured yet.
    	 */
    	vma->vm_end = STACK_TOP_MAX;
    	vma->vm_start = vma->vm_end - PAGE_SIZE;
    
    	vma->vm_flags = VM_STACK_FLAGS;
    	vma->vm_page_prot = protection_map[vma->vm_flags & 0x7];
    	err = insert_vm_struct(mm, vma);
    	if (err) {
    		up_write(&mm->mmap_sem);
    		goto err;
    	}
    
    	mm->stack_vm = mm->total_vm = 1;
    	up_write(&mm->mmap_sem);
    
    	bprm->p = vma->vm_end - sizeof(void *);
    
    	return 0;
    
    err:
    	if (vma) {
    		bprm->vma = NULL;
    		kmem_cache_free(vm_area_cachep, vma);
    	}
    
    	return err;
    }
    
    static bool valid_arg_len(struct linux_binprm *bprm, long len)
    {
    	return len <= MAX_ARG_STRLEN;
    }
    
    #else
    
    static struct page *get_arg_page(struct linux_binprm *bprm, unsigned long pos,
    		int write)
    {
    	struct page *page;
    
    	page = bprm->page[pos / PAGE_SIZE];
    	if (!page && write) {
    		page = alloc_page(GFP_HIGHUSER|__GFP_ZERO);
    		if (!page)
    			return NULL;
    		bprm->page[pos / PAGE_SIZE] = page;
    	}
    
    	return page;
    }
    
    static void put_arg_page(struct page *page)
    {
    }
    
    static void free_arg_page(struct linux_binprm *bprm, int i)
    {
    	if (bprm->page[i]) {
    		__free_page(bprm->page[i]);
    		bprm->page[i] = NULL;
    	}
    }
    
    static void free_arg_pages(struct linux_binprm *bprm)
    {
    	int i;
    
    	for (i = 0; i < MAX_ARG_PAGES; i++)
    		free_arg_page(bprm, i);
    }
    
    static void flush_arg_page(struct linux_binprm *bprm, unsigned long pos,
    		struct page *page)
    {
    }
    
    static int __bprm_mm_init(struct linux_binprm *bprm)
    {
    	bprm->p = PAGE_SIZE * MAX_ARG_PAGES - sizeof(void *);
    	return 0;
    }
    
    static bool valid_arg_len(struct linux_binprm *bprm, long len)
    {
    	return len <= bprm->p;
    }
    
    #endif /* CONFIG_MMU */
    
    /*
     * Create a new mm_struct and populate it with a temporary stack
     * vm_area_struct.  We don't have enough context at this point to set the stack
     * flags, permissions, and offset, so we use temporary values.  We'll update
     * them later in setup_arg_pages().
     */
    int bprm_mm_init(struct linux_binprm *bprm)
    {
    	int err;
    	struct mm_struct *mm = NULL;
    
    	bprm->mm = mm = mm_alloc();
    	err = -ENOMEM;
    	if (!mm)
    		goto err;
    
    	err = init_new_context(current, mm);
    	if (err)
    		goto err;
    
    	err = __bprm_mm_init(bprm);
    	if (err)
    		goto err;
    
    	return 0;
    
    err:
    	if (mm) {
    		bprm->mm = NULL;
    		mmdrop(mm);
    	}
    
    	return err;
    }
    
    
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    /*
     * count() counts the number of strings in array ARGV.
     */
    static int count(char __user * __user * argv, int max)
    {
    	int i = 0;
    
    	if (argv != NULL) {
    		for (;;) {
    			char __user * p;
    
    			if (get_user(p, argv))
    				return -EFAULT;
    			if (!p)
    				break;
    			argv++;
    			if(++i > max)
    				return -E2BIG;
    			cond_resched();
    		}
    	}
    	return i;
    }
    
    /*
    
     * 'copy_strings()' copies argument/environment strings from the old
     * processes's memory to the new process's stack.  The call to get_user_pages()
     * ensures the destination page is created and not swapped out.
    
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     */
    
    static int copy_strings(int argc, char __user * __user * argv,
    			struct linux_binprm *bprm)
    
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    {
    	struct page *kmapped_page = NULL;
    	char *kaddr = NULL;
    
    	unsigned long kpos = 0;
    
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    	int ret;
    
    	while (argc-- > 0) {
    		char __user *str;
    		int len;
    		unsigned long pos;
    
    		if (get_user(str, argv+argc) ||
    
    				!(len = strnlen_user(str, MAX_ARG_STRLEN))) {
    
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    			ret = -EFAULT;
    			goto out;
    		}
    
    
    		if (!valid_arg_len(bprm, len)) {
    
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    			ret = -E2BIG;
    			goto out;
    		}
    
    
    		/* We're going to work our way backwords. */
    
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    		pos = bprm->p;
    
    		str += len;
    		bprm->p -= len;
    
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    		while (len > 0) {
    			int offset, bytes_to_copy;
    
    			offset = pos % PAGE_SIZE;
    
    			if (offset == 0)
    				offset = PAGE_SIZE;
    
    			bytes_to_copy = offset;
    			if (bytes_to_copy > len)
    				bytes_to_copy = len;
    
    			offset -= bytes_to_copy;
    			pos -= bytes_to_copy;
    			str -= bytes_to_copy;
    			len -= bytes_to_copy;
    
    			if (!kmapped_page || kpos != (pos & PAGE_MASK)) {
    				struct page *page;
    
    				page = get_arg_page(bprm, pos, 1);
    
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    				if (!page) {
    
    					ret = -E2BIG;
    
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    					goto out;
    				}
    
    
    				if (kmapped_page) {
    					flush_kernel_dcache_page(kmapped_page);
    
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    					kunmap(kmapped_page);
    
    					put_arg_page(kmapped_page);
    				}
    
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    				kmapped_page = page;
    				kaddr = kmap(kmapped_page);
    
    				kpos = pos & PAGE_MASK;
    				flush_arg_page(bprm, kpos, kmapped_page);
    
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    			}
    
    			if (copy_from_user(kaddr+offset, str, bytes_to_copy)) {
    
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    				ret = -EFAULT;
    				goto out;
    			}
    		}
    	}
    	ret = 0;
    out:
    
    	if (kmapped_page) {
    		flush_kernel_dcache_page(kmapped_page);
    
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    		kunmap(kmapped_page);
    
    		put_arg_page(kmapped_page);
    	}
    
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    	return ret;
    }
    
    /*
     * Like copy_strings, but get argv and its values from kernel memory.
     */
    int copy_strings_kernel(int argc,char ** argv, struct linux_binprm *bprm)
    {
    	int r;
    	mm_segment_t oldfs = get_fs();
    	set_fs(KERNEL_DS);
    	r = copy_strings(argc, (char __user * __user *)argv, bprm);
    	set_fs(oldfs);
    	return r;
    }
    EXPORT_SYMBOL(copy_strings_kernel);
    
    #ifdef CONFIG_MMU
    
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    /*
    
     * During bprm_mm_init(), we create a temporary stack at STACK_TOP_MAX.  Once
     * the binfmt code determines where the new stack should reside, we shift it to
     * its final location.  The process proceeds as follows:
    
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     *
    
     * 1) Use shift to calculate the new vma endpoints.
     * 2) Extend vma to cover both the old and new ranges.  This ensures the
     *    arguments passed to subsequent functions are consistent.
     * 3) Move vma's page tables to the new range.
     * 4) Free up any cleared pgd range.
     * 5) Shrink the vma to cover only the new range.
    
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     */
    
    static int shift_arg_pages(struct vm_area_struct *vma, unsigned long shift)
    
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    {
    	struct mm_struct *mm = vma->vm_mm;
    
    	unsigned long old_start = vma->vm_start;
    	unsigned long old_end = vma->vm_end;
    	unsigned long length = old_end - old_start;
    	unsigned long new_start = old_start - shift;
    	unsigned long new_end = old_end - shift;
    	struct mmu_gather *tlb;
    
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    	BUG_ON(new_start > new_end);
    
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    	/*
    	 * ensure there are no vmas between where we want to go
    	 * and where we are
    	 */
    	if (vma != find_vma(mm, new_start))
    		return -EFAULT;
    
    	/*
    	 * cover the whole range: [new_start, old_end)
    	 */
    	vma_adjust(vma, new_start, old_end, vma->vm_pgoff, NULL);
    
    	/*
    	 * move the page tables downwards, on failure we rely on
    	 * process cleanup to remove whatever mess we made.
    	 */
    	if (length != move_page_tables(vma, old_start,
    				       vma, new_start, length))
    		return -ENOMEM;
    
    	lru_add_drain();
    	tlb = tlb_gather_mmu(mm, 0);
    	if (new_end > old_start) {
    		/*
    		 * when the old and new regions overlap clear from new_end.
    		 */
    		free_pgd_range(&tlb, new_end, old_end, new_end,
    			vma->vm_next ? vma->vm_next->vm_start : 0);
    	} else {
    		/*
    		 * otherwise, clean from old_start; this is done to not touch
    		 * the address space in [new_end, old_start) some architectures
    		 * have constraints on va-space that make this illegal (IA64) -
    		 * for the others its just a little faster.
    		 */
    		free_pgd_range(&tlb, old_start, old_end, new_end,
    			vma->vm_next ? vma->vm_next->vm_start : 0);
    
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    	}
    
    	tlb_finish_mmu(tlb, new_end, old_end);
    
    	/*
    	 * shrink the vma to just the new range.
    	 */
    	vma_adjust(vma, new_start, new_end, vma->vm_pgoff, NULL);
    
    	return 0;
    
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    }
    
    #define EXTRA_STACK_VM_PAGES	20	/* random */
    
    
    /*
     * Finalizes the stack vm_area_struct. The flags and permissions are updated,
     * the stack is optionally relocated, and some extra space is added.
     */
    
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    int setup_arg_pages(struct linux_binprm *bprm,
    		    unsigned long stack_top,
    		    int executable_stack)
    {
    
    	unsigned long ret;
    	unsigned long stack_shift;
    
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    	struct mm_struct *mm = current->mm;
    
    	struct vm_area_struct *vma = bprm->vma;
    	struct vm_area_struct *prev = NULL;
    	unsigned long vm_flags;
    	unsigned long stack_base;
    
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    #ifdef CONFIG_STACK_GROWSUP
    	/* Limit stack size to 1GB */
    	stack_base = current->signal->rlim[RLIMIT_STACK].rlim_max;
    	if (stack_base > (1 << 30))
    		stack_base = 1 << 30;
    
    
    	/* Make sure we didn't let the argument array grow too large. */
    	if (vma->vm_end - vma->vm_start > stack_base)
    		return -ENOMEM;
    
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    	stack_base = PAGE_ALIGN(stack_top - stack_base);
    
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    	stack_shift = vma->vm_start - stack_base;
    	mm->arg_start = bprm->p - stack_shift;
    	bprm->p = vma->vm_end - stack_shift;
    
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    #else
    
    	stack_top = arch_align_stack(stack_top);
    	stack_top = PAGE_ALIGN(stack_top);
    	stack_shift = vma->vm_end - stack_top;
    
    	bprm->p -= stack_shift;
    
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    	mm->arg_start = bprm->p;
    #endif
    
    	if (bprm->loader)
    
    		bprm->loader -= stack_shift;
    	bprm->exec -= stack_shift;
    
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    	down_write(&mm->mmap_sem);
    
    	vm_flags = vma->vm_flags;
    
    	/*
    	 * Adjust stack execute permissions; explicitly enable for
    	 * EXSTACK_ENABLE_X, disable for EXSTACK_DISABLE_X and leave alone
    	 * (arch default) otherwise.
    	 */
    	if (unlikely(executable_stack == EXSTACK_ENABLE_X))
    		vm_flags |= VM_EXEC;
    	else if (executable_stack == EXSTACK_DISABLE_X)
    		vm_flags &= ~VM_EXEC;
    	vm_flags |= mm->def_flags;
    
    	ret = mprotect_fixup(vma, &prev, vma->vm_start, vma->vm_end,
    			vm_flags);
    	if (ret)
    		goto out_unlock;
    	BUG_ON(prev != vma);
    
    	/* Move stack pages down in memory. */
    	if (stack_shift) {
    		ret = shift_arg_pages(vma, stack_shift);
    		if (ret) {
    
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    			up_write(&mm->mmap_sem);
    			return ret;
    		}
    	}
    
    
    #ifdef CONFIG_STACK_GROWSUP
    	stack_base = vma->vm_end + EXTRA_STACK_VM_PAGES * PAGE_SIZE;
    #else
    	stack_base = vma->vm_start - EXTRA_STACK_VM_PAGES * PAGE_SIZE;
    #endif
    	ret = expand_stack(vma, stack_base);
    	if (ret)
    		ret = -EFAULT;
    
    out_unlock:
    
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    	up_write(&mm->mmap_sem);
    	return 0;
    }
    EXPORT_SYMBOL(setup_arg_pages);
    
    #endif /* CONFIG_MMU */
    
    struct file *open_exec(const char *name)
    {
    	struct nameidata nd;
    	int err;
    	struct file *file;
    
    
    	err = path_lookup_open(AT_FDCWD, name, LOOKUP_FOLLOW, &nd, FMODE_READ|FMODE_EXEC);
    
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    	file = ERR_PTR(err);
    
    	if (!err) {
    		struct inode *inode = nd.dentry->d_inode;
    		file = ERR_PTR(-EACCES);
    		if (!(nd.mnt->mnt_flags & MNT_NOEXEC) &&
    		    S_ISREG(inode->i_mode)) {
    
    			int err = vfs_permission(&nd, MAY_EXEC);
    
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    			file = ERR_PTR(err);
    			if (!err) {
    
    				file = nameidata_to_filp(&nd, O_RDONLY);
    
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    				if (!IS_ERR(file)) {
    					err = deny_write_access(file);
    					if (err) {
    						fput(file);
    						file = ERR_PTR(err);
    					}
    				}
    out:
    				return file;
    			}
    		}
    
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    		path_release(&nd);
    	}
    	goto out;
    }
    
    EXPORT_SYMBOL(open_exec);
    
    int kernel_read(struct file *file, unsigned long offset,
    	char *addr, unsigned long count)
    {
    	mm_segment_t old_fs;
    	loff_t pos = offset;
    	int result;
    
    	old_fs = get_fs();
    	set_fs(get_ds());
    	/* The cast to a user pointer is valid due to the set_fs() */
    	result = vfs_read(file, (void __user *)addr, count, &pos);
    	set_fs(old_fs);
    	return result;
    }
    
    EXPORT_SYMBOL(kernel_read);
    
    static int exec_mmap(struct mm_struct *mm)
    {
    	struct task_struct *tsk;
    	struct mm_struct * old_mm, *active_mm;
    
    	/* Notify parent that we're no longer interested in the old VM */
    	tsk = current;
    	old_mm = current->mm;
    	mm_release(tsk, old_mm);
    
    	if (old_mm) {
    		/*
    		 * Make sure that if there is a core dump in progress
    		 * for the old mm, we get out and die instead of going
    		 * through with the exec.  We must hold mmap_sem around
    		 * checking core_waiters and changing tsk->mm.  The
    		 * core-inducing thread will increment core_waiters for
    		 * each thread whose ->mm == old_mm.
    		 */
    		down_read(&old_mm->mmap_sem);
    		if (unlikely(old_mm->core_waiters)) {
    			up_read(&old_mm->mmap_sem);
    			return -EINTR;
    		}
    	}
    	task_lock(tsk);
    	active_mm = tsk->active_mm;
    	tsk->mm = mm;
    	tsk->active_mm = mm;
    	activate_mm(active_mm, mm);
    	task_unlock(tsk);
    	arch_pick_mmap_layout(mm);
    	if (old_mm) {
    		up_read(&old_mm->mmap_sem);
    
    		BUG_ON(active_mm != old_mm);
    
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    		mmput(old_mm);
    		return 0;
    	}
    	mmdrop(active_mm);
    	return 0;
    }
    
    /*
     * This function makes sure the current process has its own signal table,
     * so that flush_signal_handlers can later reset the handlers without
     * disturbing other processes.  (Other processes might share the signal
     * table via the CLONE_SIGHAND option to clone().)
     */
    
    static int de_thread(struct task_struct *tsk)
    
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    {
    	struct signal_struct *sig = tsk->signal;
    	struct sighand_struct *newsighand, *oldsighand = tsk->sighand;
    	spinlock_t *lock = &oldsighand->siglock;
    
    	struct task_struct *leader = NULL;
    
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    	int count;
    
    	/*
    	 * If we don't share sighandlers, then we aren't sharing anything
    	 * and we can just re-use it all.
    	 */
    	if (atomic_read(&oldsighand->count) <= 1) {
    		exit_itimers(sig);
    		return 0;
    	}
    
    	newsighand = kmem_cache_alloc(sighand_cachep, GFP_KERNEL);
    	if (!newsighand)
    		return -ENOMEM;
    
    
    	if (thread_group_empty(tsk))
    
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    		goto no_thread_group;
    
    	/*
    	 * Kill all other threads in the thread group.
    	 * We must hold tasklist_lock to call zap_other_threads.
    	 */
    	read_lock(&tasklist_lock);
    	spin_lock_irq(lock);
    	if (sig->flags & SIGNAL_GROUP_EXIT) {
    		/*
    		 * Another group action in progress, just
    		 * return so that the signal is processed.
    		 */
    		spin_unlock_irq(lock);
    		read_unlock(&tasklist_lock);
    		kmem_cache_free(sighand_cachep, newsighand);
    		return -EAGAIN;
    	}
    
    
    	/*
    	 * child_reaper ignores SIGKILL, change it now.
    	 * Reparenting needs write_lock on tasklist_lock,
    	 * so it is safe to do it under read_lock.
    	 */
    
    	if (unlikely(tsk->group_leader == child_reaper(tsk)))
    		tsk->nsproxy->pid_ns->child_reaper = tsk;
    
    	zap_other_threads(tsk);
    
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    	read_unlock(&tasklist_lock);
    
    	/*
    	 * Account for the thread group leader hanging around:
    	 */
    
    	count = 1;
    
    	if (!thread_group_leader(tsk)) {
    
    		count = 2;
    
    		/*
    		 * The SIGALRM timer survives the exec, but needs to point
    		 * at us as the new group leader now.  We have a race with
    		 * a timer firing now getting the old leader, so we need to
    		 * synchronize with any firing (by calling del_timer_sync)
    		 * before we can safely let the old group leader die.
    		 */
    
    		sig->tsk = tsk;
    
    		spin_unlock_irq(lock);
    
    		if (hrtimer_cancel(&sig->real_timer))
    			hrtimer_restart(&sig->real_timer);
    
    		spin_lock_irq(lock);
    
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    	while (atomic_read(&sig->count) > count) {
    
    		sig->group_exit_task = tsk;
    
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    		sig->notify_count = count;
    		__set_current_state(TASK_UNINTERRUPTIBLE);
    		spin_unlock_irq(lock);
    		schedule();
    		spin_lock_irq(lock);
    	}
    	sig->group_exit_task = NULL;
    	sig->notify_count = 0;
    	spin_unlock_irq(lock);
    
    	/*
    	 * At this point all other threads have exited, all we have to
    	 * do is to wait for the thread group leader to become inactive,
    	 * and to assume its PID:
    	 */
    
    	if (!thread_group_leader(tsk)) {
    
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    		/*
    		 * Wait for the thread group leader to be a zombie.
    		 * It should already be zombie at this point, most
    		 * of the time.
    		 */
    
    		leader = tsk->group_leader;
    
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    		while (leader->exit_state != EXIT_ZOMBIE)
    			yield();
    
    
    		/*
    		 * The only record we have of the real-time age of a
    		 * process, regardless of execs it's done, is start_time.
    		 * All the past CPU time is accumulated in signal_struct
    		 * from sister threads now dead.  But in this non-leader
    		 * exec, nothing survives from the original leader thread,
    		 * whose birth marks the true age of this process now.
    		 * When we take on its identity by switching to its PID, we
    		 * also take its birthdate (always earlier than our own).
    		 */
    
    		tsk->start_time = leader->start_time;
    
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    		write_lock_irq(&tasklist_lock);
    
    
    		BUG_ON(leader->tgid != tsk->tgid);
    		BUG_ON(tsk->pid == tsk->tgid);
    
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    		/*
    		 * An exec() starts a new thread group with the
    		 * TGID of the previous thread group. Rehash the
    		 * two threads with a switched PID, and release
    		 * the former thread group leader:
    		 */
    
    
    		/* Become a process group leader with the old leader's pid.
    
    		 * The old leader becomes a thread of the this thread group.
    		 * Note: The old leader also uses this pid until release_task
    
    		 *       is called.  Odd but simple and correct.
    		 */
    
    		detach_pid(tsk, PIDTYPE_PID);
    		tsk->pid = leader->pid;
    
    		attach_pid(tsk, PIDTYPE_PID,  find_pid(tsk->pid));
    
    		transfer_pid(leader, tsk, PIDTYPE_PGID);
    		transfer_pid(leader, tsk, PIDTYPE_SID);
    		list_replace_rcu(&leader->tasks, &tsk->tasks);
    
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    		tsk->group_leader = tsk;
    		leader->group_leader = tsk;
    
    		tsk->exit_signal = SIGCHLD;
    
    
    		BUG_ON(leader->exit_state != EXIT_ZOMBIE);
    		leader->exit_state = EXIT_DEAD;
    
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    		write_unlock_irq(&tasklist_lock);
            }
    
    	/*
    
    	 * There may be one thread left which is just exiting,
    	 * but it's safe to stop telling the group to kill themselves.
    
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    	 */
    	sig->flags = 0;
    
    no_thread_group:
    	exit_itimers(sig);
    
    	if (leader)
    		release_task(leader);
    
    
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    	if (atomic_read(&oldsighand->count) == 1) {
    		/*
    		 * Now that we nuked the rest of the thread group,
    		 * it turns out we are not sharing sighand any more either.
    		 * So we can just keep it.
    		 */
    		kmem_cache_free(sighand_cachep, newsighand);
    	} else {
    		/*
    		 * Move our state over to newsighand and switch it in.
    		 */
    		atomic_set(&newsighand->count, 1);
    		memcpy(newsighand->action, oldsighand->action,
    		       sizeof(newsighand->action));
    
    		write_lock_irq(&tasklist_lock);
    		spin_lock(&oldsighand->siglock);
    
    		spin_lock_nested(&newsighand->siglock, SINGLE_DEPTH_NESTING);
    
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    		rcu_assign_pointer(tsk->sighand, newsighand);
    
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    		recalc_sigpending();
    
    		spin_unlock(&newsighand->siglock);
    		spin_unlock(&oldsighand->siglock);
    		write_unlock_irq(&tasklist_lock);
    
    
    		__cleanup_sighand(oldsighand);
    
    	BUG_ON(!thread_group_leader(tsk));
    
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    	return 0;
    }
    	
    /*
     * These functions flushes out all traces of the currently running executable
     * so that a new one can be started
     */
    
    
    static void flush_old_files(struct files_struct * files)
    
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    {
    	long j = -1;
    
    	struct fdtable *fdt;
    
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    	spin_lock(&files->file_lock);
    	for (;;) {
    		unsigned long set, i;
    
    		j++;
    		i = j * __NFDBITS;
    
    		fdt = files_fdtable(files);
    
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    			break;
    
    		set = fdt->close_on_exec->fds_bits[j];
    
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    		if (!set)
    			continue;
    
    		fdt->close_on_exec->fds_bits[j] = 0;
    
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    		spin_unlock(&files->file_lock);
    		for ( ; set ; i++,set >>= 1) {
    			if (set & 1) {
    				sys_close(i);
    			}
    		}
    		spin_lock(&files->file_lock);
    
    	}
    	spin_unlock(&files->file_lock);
    }
    
    void get_task_comm(char *buf, struct task_struct *tsk)
    {
    	/* buf must be at least sizeof(tsk->comm) in size */
    	task_lock(tsk);
    	strncpy(buf, tsk->comm, sizeof(tsk->comm));