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does KMALLOC allocates only in page size memory or it can allocate less ? what are the sizes that the kmalloc can allocate ? where can i find description of it , since everyone i looked it doesn't really say how much memory it allocates ? what i want to know is what are the actual sizes that KMALLOC allocates. does it allocate size of power of 2 ? does it just find free objects from the cache that is ready ?

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The source code of kmalloc() can give you all this information. As for the actual amount of memory allocated, see ksize() function. Sometimes, kmalloc() indeed looks for a free object in an approprate cache, sometimes it resorts to allocating the whole pages. Yes, kmalloc may allocate blocks with the actual size less than a page. The implementation is changing over time, so it could be more useful to analyze the source code of kmalloc() than to look for any other documentation. –  Eugene Sep 24 '12 at 16:43

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My understanding is as follows: the kernel is dealing with the physical memory of the system, which is available only in page-sized chunks; thus when you call kmalloc() you are going to get only certain predefined, fixed-size byte arrays.

The actual memory you get back is dependent on the system's architecture, but the smallest allocation that kmalloc can handle is as big as 32 or 64 bytes. You will get back from a call to kmalloc() at least as much memory as you asked for (usually more). Typically you will not get more than 128 KB (again, architecture dependent)

To get the page size (in bytes) of your system you can execute the command:

getconf PAGESIZE

or

getconf PAGE_SIZE

This information on max page size is in /usr/src/linux/include/linux/slab.h

And yes, the page sizes are generally powers of 2, but again, you're not going to get exactly what you ask for, but a little bit more.

You can use some code like this:

void * stuff;
stuff = kmalloc(1,GFP_KERNEL);
printk("I got: %zu bytes of memory\n", ksize(stuff));
kfree(stuff);

To show the actual amount of memory allocated:

[90144.702588] I got: 32 bytes of memory
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You can see some common sizes used by kmalloc() int your system with:

cat /proc/slabinfo  | grep kmalloc

More important than the consideration of whether kmalloc can allocate less than a page is the question of whether it can allocate more than a page: if you are calling kmalloc() in atomic context (with the GFP_ATOMIC flag), it can't and won't try very hard to find contiguous pages in memory, so if your memory is very fragmented, and the order of your allocation is high (allocation size → pagesize*2^(allocation order)), the allocation may fail. So, in atomic context, big allocations are likely to fail.

There is an example of a failed allocation of order 7 (512 Kb) at this other SO question about maximum AF_UNIX datagram size.

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